Skip to main content
NEW BERLIN SANITARY LIQUEUR——Gesundheits-Liqueur, neuer Berliner
Photo: Mae Mu

NEW BERLIN SANITARY LIQUEUR——Gesundheits-Liqueur, neuer Berliner

678 ingredients 1 steps gutenberg
Share this recipe

Estimated Nutrition (whole recipe, rough)

1704
Calories
67g
Protein
73g
Fat
198g
Carbs

Counts 26 of 40 ingredients — the other 14 aren't in our nutrition table and contribute nothing above, so the real totals are higher.

What these numbers assume — 26 portions →
Ingredient Portion assumed kcal
Flour 1 cup (125g) all-purpose 455
Salmon 100g cooked 208
Oat 1/2 cup dry (40g) 154
Milk 1 cup (244ml) whole 149
Olive Oil 1 tbsp (14g) 119
Lard 1 tbsp (12.8g) 115
Butter 1 tbsp (14g) 102
Oyster 6 medium (84g) 81
Egg 1 large egg (50g) 78
Orange 1 medium (131g) 62
Peach 1 medium (150g) 59
Sugar 1 tbsp (12.5g) granulated 49
Lemon juice of 1 lemon (48ml) 12
Lime juice of 1 lime (44ml) 11
Almond 1 almond (1.2g) 7
Clove 1 tsp ground (2g) 7
Cinnamon 1 tsp ground (2.6g) 6
Black Pepper 1 tsp ground (2.3g) 6
Cayenne 1 tsp (1.8g) 6
Rosemary 1 tsp dried (1.2g) 4
Thyme 1 tsp dried (1.4g) 4
Mustard 1 tsp (5g) yellow 3
Vinegar 1 tbsp (15ml) distilled 3
Ginger 1 tsp grated fresh (2g) 2
Sage 1 tsp ground (0.7g) 2
Salt 1 tsp (6g) 0
Water not in our table 0
Brandy not in our table 0
Spirit not in our table 0
Rose not in our table 0
Seed not in our table 0
Mace not in our table 0
Tobacco not in our table 0
Rapeseed Oil not in our table 0
Flower not in our table 0
Peppermint not in our table 0
Plant not in our table 0
Camphor not in our table 0
Nut not in our table 0
Animal not in our table 0

Totals for the whole recipe, adding one typical portion per ingredient — listed above. Quantities in the recipe are not counted, so this is a rough guide only — not suitable for medical or dietary planning.

Ingredients

  • 15 drops of sulphuric acid
  • ten drops of commercial aniline to 50 c
  • 15 drops to 1/2 fl
  • ten drops of the suspected essence
  • 12 quarts may be breathed
  • 15 drops in water
  • 15 drops of oil
  • 20 drops of oil
  • 40 square centimètres
  • 18 gallons
  • 2 drops are poured into the ear
  • 12 grains of phosphorus
  • 1 pint of oil agreeably fragrant
  • 3/4 pint of fresh oil
  • 12 drops of the oil are placed on a perfectly dry watch-glass
  • 5 drops in gonorrhœa
  • 3 drops on a lump of sugar
  • one drop of the oil
  • 12 drops every 3
  • 7 drops will spoil a hogshead of brandy
  • two drops of the suspected oil are put into a watch-glass
  • 20 drops of the respective oils
  • 3 drops of oil to the dr
  • 24 drops to the oz
  • 1/2 teaspoonful of salt
  • 1 tablespoonful daily
  • 30 drops each of dilute sulphuric acid
  • 4 grains of the crude opium
  • 1/2 pint of warm water
  • 6 drops of oil of orange peel
  • 2 drops of oil of orange peel
  • 3 quarts of chloride of tin
  • 2-1/2 quarts of yellow spirits
  • 5 quarts
  • three pieces of well-burnt lime of slightly hydraulic quality
  • two spoonfuls of this powder
  • 2 teaspoonfuls of sugar
  • 1/2 pint of milk
  • ten grains emulsify two drachms of cod-liver oil
  • 3 drops of hydrochloric acid have been thrown
  • 10 drops of carbolic acid are to be added to the paste
  • 4 drops of otto of roses
  • 1/2 pint of water
  • 2 squares of windsor soap previously reduced to a paste
  • 2 drops to the oz
  • 16 drops of laudanum
  • 1/3 teaspoonful
  • three pinches of this powder
  • a teaspoonful of aromatic spirits of ammonia
  • a piece of platinum
  • a grain of mustard seed
  • a piece of phosphorus stuck on the point of a penknife
  • a piece of soft leather
  • a small drop of concentrated sulphuric acid
  • a handful of cotton waste is embued
  • a piece of cotton wool
  • a piece of white
  • a piece of white paper
  • a piece of potassium
  • a piece of porous paper
  • a piece of bright copper
  • a small piece of pig's bladder
  • a large piece of loaf sugar on it until the yellow rind is completely removed
  • a grain of sand
  • an ounce of boiling water
  • an ounce of hot water
  • a wineglass of laudanum had to be administered several times in 24 hours
  • a gallon of water
  • a piece of bent glass tube of small bore
  • a stick of phosphorus is left
  • a cup of lime not more than 0·8 inch thick be filled
  • a bunch of oysters
  • a small piece of mace
  • a piece of phosphorus
  • a piece of canvas
  • a drop of tincture of iodine placed on the surface of metallic palladium
  • a piece of flannel
  • a piece of soft rag
  • a piece of clean muslin
  • a small piece of paraffin added to starch will be found to give a gloss
  • a pint of water
  • a teaspoonful of salt
  • a piece of red flannel backed
  • 3 parts
  • 1 part
  • 6 parts of water
  • one which may still contain a little cobalt
  • one fourth to one half its weight of iron filings
  • two tubulures
  • 85 per cent
  • 50 cubic centimètres of the filtered liquid
  • 5 grams of tobacco
  • half their bulk of strong sulphuric acid
  • 10 lbs
  • half fill
  • 6 salt-glazed stoneware receivers
  • six volumes of distilled water
  • 5 measures of acid
  • 6-1/2 measures
  • two liquids
  • 1 part b
  • one part of nitrite of potassium in 30
  • 5 milligramme equivalents of nitric acid
  • 5 milligrammes of potassium nitrate per litre
  • 10 drops
  • two together
  • 4 atoms of water
  • 15 per cent
  • six fluid drachms
  • 3 grains
  • one equivalent in grains of anhydrous acid
  • 30 minims
  • 2 parts
  • 20 per cent
  • 1 volume
  • 3 vols
  • one measure of a solution of nitrite of potassium
  • three measures of a solution of chloride of ammonium
  • 5 distinct compounds
  • three wash-bottles
  • one containing water
  • 30 atmospheres
  • 1 part of powdered starch
  • 8 parts of nitric acid of sp
  • two combine
  • 3 atoms of hydrogen have been replaced by 3 molecules of nitroxyl
  • 3 molecules of nitroxyl
  • 3 parts of sulphuric acid
  • 1 part of fuming nitric acid
  • 20 parts
  • one part by bulk will yield by combustion
  • one volume of the substance will yield 10
  • one part by bulk of gunpowder only yields 800 volumes of gas
  • one volume of the most concentrated nitric acid
  • two volumes of the strongest sulphuric acid
  • two acids
  • 2 parts of powdered ferrocyanide of sodium in 5 parts of common nitric acid
  • 5 parts of common nitric acid
  • one acid compound
  • two acid compounds containing oxygen
  • one containing the smaller proportion of that substance ends in -ous
  • 1 atom of nitrogen
  • one basic compound
  • one compound
  • one out of the number has a strongly marked basic character
  • 1 atom of each of its constituents
  • one from the other the former is called di_acetate
  • two atoms of lead
  • one series of salts
  • two terminations
  • 3 pints
  • 1 quart
  • 1 pint
  • 3/4 pint
  • 3 lbs
  • 24 lbs
  • 2-1/2 galls
  • 5 galls
  • two after a meal it is thin
  • one several times its age
  • 0 loss 4·0 -- -- -- -- -- -- 100·0
  • one hand
  • two classes
  • two varieties
  • 20 bushels per acre in poor soils
  • 80 bushels per acre in rich soils
  • 45 lbs
  • one half the weight of the oats
  • three envelopes
  • 0 kreusler has shown that the nitrogenous principle of oatmeal contains gluten
  • one half
  • 36 per cent
  • two latter substances
  • 1 gall
  • 7 lbs
  • 1/2 gall
  • 6 lbs
  • 14 lbs
  • 10 parts
  • three have useful applications in the arts
  • 12 drops
  • 30 drops
  • 20 drops
  • 6 drops
  • two portions -- -- the one solid
  • one solid
  • 2 lbs
  • 4 lbs
  • 25 lbs
  • 9 lbs
  • 50 lbs
  • 1 part of either whale-train
  • 10 parts of rapeseed oil
  • two mixed oils will be discovered by approximation
  • 15 grammes of oil are mixed
  • 5 grammes of the acid
  • two turns dark brown
  • two characteristic tests
  • 2-1/2 per cent
  • 10 per cent
  • three quarters of an hour have doubled themselves two
  • one into
  • 50 per cent
  • two marks on it to indicate respectively 100 cubic centimètres
  • 90 per cent
  • 25 cubic centimètres of the clear alcohol is taken from the top by means of a pi
  • one which contains enough free acid to neutralise 3 cubic centimètres of normal
  • 3 cubic centimètres of normal alkali
  • 28 per cent
  • four shallow vessels of sheet brass
  • 2 millimètres
  • 35 parts of cold
  • 6 parts of boiling alcohol
  • two parts
  • one drop _of the_ reagent _on_ twenty drops of oil
  • four o'clock in the afternoon
  • three quarters of an hour
  • 2 table-spoonfuls
  • 2 drops
  • 12 eggs yield 1 oz
  • 8 drops
  • 5 parts of boiling
  • 40 parts of cold alcohol
  • 4 parts of boiling alcohol
  • 2 parts of ether
  • five different methods are employed to obtain the oil
  • 1-1/2 part of ether
  • one most subject to adulteration
  • half filled
  • 6 parts of mercury in 7-1/2 parts of nitric acid
  • 7-1/2 parts of nitric acid
  • 1 part to every 48 parts of the oil
  • 48 parts of the oil
  • one half only of the mixture becomes solid
  • half continues liquid
  • three parts of pure nitric acid at 40°
  • one part of distilled water
  • three grammes of the oil to be tested
  • one gramme of the reagent in a test tube
  • 5 per cent
  • 1 wine-glassful as a mild aperient
  • 1 teaspoonful
  • 12 galls
  • 1-1/2 ton
  • 4 parts
  • 8 parts
  • 1-1/2 pint
  • 1/2 pint
  • 1 cwt
  • 3 cwt
  • one usually employed on the large scale
  • 15 parts
  • 2 quarts
  • 1/4 pint
  • 6 parts
  • 1 table-spoonful
  • 8 parts of oil
  • two useful oils from the crude liquid
  • one being adapted
  • 17 millions of gallons
  • 20 millions of gallons
  • 5 millions of gallons
  • 1-1/2 million
  • half full
  • one end
  • two lubricating oils
  • one light
  • one furnace
  • four distinct commercial products
  • two tanks is filled
  • 3 tons of the oil
  • one side a discharge pipe through which the vapour is passed to the worm
  • two layers
  • 4 drams
  • 40 minims
  • 2 teaspoonfuls
  • 16 lbs
  • 2-1/2 lbs
  • 4 fluid ounces of this oil into a stoppered bottle capable of holding four
  • half fluid ounces
  • 10 minims
  • 5 parts
  • 50 drops
  • 2 eggs
  • three different processes
  • 8 different lots of flowers have been consumed
  • one half their weight of blanched sweet almonds
  • three perfumes is preferred in these countries to the pure fragrance of any sing
  • 15 drops
  • 4 drops
  • three great classes
  • one half the water has come over
  • two portions
  • one half of the water is to be drawn over
  • two thirds only
  • one rather dangerous explosion result from its use
  • one containing alcohol
  • five larger
  • one third of the _oil of turpentine
  • two butyraceous oils pass over at the same time
  • 1 drop
  • 35 parts of water
  • two branches
  • two funnel-shaped tubes
  • two tubes
  • 60 lbs
  • 40 lbs
  • 20 lbs
  • two hydrocarbons
  • 6 dried samples
  • half grown
  • 11 lbs
  • two pale oils are obtained
  • one lighter
  • 1 per cent
  • 60 minims
  • 20 minims
  • two oils differing in volatility
  • one has been named cymol
  • one half to an equal weight of water
  • two oils
  • 5 minims in hæmorrhage
  • three harvests are gathered every year
  • 20 per acre
  • seven distillatory apparatus are employed in this manufactory
  • 3 nights in succession
  • two distinct substances are found in spirit distilled from fermented grain
  • two oils -- -- one
  • 2-1/2 parts
  • two oils -- -- one lighter
  • 6 cwt
  • 5 lbs
  • 4 tons of the peppermint plant
  • one part of essential oil is usually obtained
  • 3 drops
  • two oils similar to those found in clove oil
  • 7 parts of otto at 57° fahr
  • two fluids are mixed
  • one
  • one half its weight of sulphuric acid
  • 6 parts of ether
  • 7-1/2 parts of rectified spirit
  • 40 drops
  • three alvine evacuations
  • 2 pints
  • two open capsules
  • one containing fragments of solid potassa
  • 33 lbs
  • 64 lbs
  • 25 colours the pure oil first green
  • 1 part of pure white wax
  • 4 parts of olive oil
  • 7 drops
  • 30 parts
  • one night
  • three compounds are regarded as milder than the last
  • 65 parts
  • 29 parts
  • 2 scruples of camphor ground
  • 7 parts
  • 1 egg
  • two compounds are known under this name
  • 14 parts
  • 32 parts
  • 3 galls
  • one now generally adopted by the large wholesale houses
  • 56 lbs
  • one part of extract of guarana to eight parts of lard
  • eight parts of lard
  • 1 dram
  • 8 drams
  • 16 parts
  • two well together
  • 5 pints
  • 2-1/4 lbs
  • 3 drams
  • 4 powers
  • 12 lbs
  • 16-1/2 lbs
  • 1/3 instead of 1/2 its weight of mercury
  • 13-1/2 lbs
  • 24 parts
  • two dissolved
  • 10 drams
  • 30 drams
  • 5 drams
  • two ointments noticed below are often confounded
  • 12 parts
  • 1 handful
  • 3 sprigs
  • 3 thimblefuls
  • 4-1/2 lbs
  • one fourth part of the body should be covered
  • two ointments are most powerful when recently prepared
  • 1-1/2 grain
  • three things
  • 12 grains
  • one half its weight of water
  • 60 per cent
  • one half of the oil
  • two formulæ have only a very slight yellow colour
  • 50 degrees
  • 2 from the indication of the instrument
  • 0 suppose the temperature observed at the time of the experiment is 52°
  • 5 normal temperature
  • 0 actual temperature
  • 5 difference
  • 1 part of oil to 20 parts of sugar
  • 20 parts of sugar
  • two varieties of the plant known as _boswellia_ -- -- one the _b
  • 56 per cent
  • 6 per cent
  • one could cook a 'fraise
  • four eggs into a basin
  • 2 table-spoonfuls of milk
  • one eye is attacked
  • half closed
  • 22 men
  • one only of the whole crew unaffected
  • twelve had lost the sight of an eye
  • twelve including the surgeon were entirely blind
  • one eye
  • four partially so
  • one eye be affected the other may be saved from an attack by being hermetically
  • one meets
  • 3 boluses the size of a nut
  • 18 powders
  • 1/2 inch
  • one adapted
  • two varieties are known in commerce
  • five kinds of smyrna opium examined by merk
  • 4 per cent
  • half way down its starting point
  • one stem produce several branches
  • one side
  • three countries is chiefly carried
  • 8 grains
  • 34 per cent
  • 5 parts of ether
  • 2 parts of solution of ammonia in a stoppered bottle
  • two special reagents are required
  • one prepared by mixing 1 part of ammonia
  • 1 part of ammonia
  • 20 parts of methylated alcohol
  • 04 per cent
  • two citizens
  • one third should be taken at once
  • one third
  • 6-1/2 pints
  • 4 oranges
  • 1 orange
  • 1 large orange
  • 1 scruple
  • 1 part of annotta
  • 1 part each of lime
  • 2 parts of soda
  • 10 yards
  • one water
  • 1-1/2 lbs
  • 17 parts
  • 80 parts
  • 9 parts
  • two native sulphides of arsenic
  • one containing tin
  • six large wooden beams
  • two pits
  • 3 wide
  • 2 deep
  • one end somewhat elevated
  • one which is capable of forming a compound which shall become fusible by the hea
  • two thirds of the way down the furnace
  • 50 tons of coal
  • 30 tons of ore
  • 6 tons of limestone
  • 6 tons at a time
  • 35 vols
  • three general methods are adopted
  • two great classes of organic bodies
  • two weights being regarded as the true quantity of the substance employed
  • 5 inch diam
  • one end of the tube
  • two legs continues unequal
  • two figures to the right
  • 6 successive mornings
  • two compounds pass under this name -- -- alpha-orsellic acid
  • five known oxides of osmium
  • four chlorides of osmium
  • 1-1/2 part
  • 33 parts
  • one sixth of its original volume
  • 1 vessel
  • 14-1/2 lbs
  • one now usually employed
  • 2 equivalents of the former to 1 equivalent of the latter
  • 1 equivalent of the latter
  • 30 per cent
  • 8 parts of water
  • 4 parts of alcohol
  • two thirds filled
  • 27 equivalent quantities being taken
  • one vessel are conveyed to nearly the bottom of the next one
  • one cwt
  • 5 cwt
  • 2-1/2 cwt
  • 5 parts of sugar yield nearly 6 parts of crystallised acid
  • 6 parts of crystallised acid
  • one fourth
  • eight ninths
  • 24 cubic inches
  • 6 galls
  • one temperature
  • one ton of baryta
  • 3 cubic mètres of oxygen
  • two peroxides may be kept dry in a stoppered bottle
  • 35 per cent
  • 30 cubic centimètres
  • 1 part of dry hydrate of potassium
  • 2 parts of water
  • 1 gramme in 5
  • 6 centimètres of water
  • one half that of the solution of potassa already used
  • 1 gramme of pyrogallic acid in combination
  • two cast-iron hemispheres
  • two centimètres thick
  • three screws
  • 1-1/2 inch long
  • four apertures
  • 1-1/2 inch
  • 43 cubic feet of oxygen
  • 8 inch thick be filled
  • two oxymels in the last ph
  • 1 part of fresh flowers of daffodil to 8 of vinegar
  • 1 spoonful
  • one half the acid ordered in the ph
  • 2-1/2 pints
  • 1 part of vinegar of roses
  • 2 parts of oil of roses
  • two unequal
  • four rows when the valves of the shell are separated
  • two edges of the mantle near the hinge
  • one oyster alone produces nearly a million
  • two millions of them when closely packed do not occupy a space of more than a cu
  • one amongst others which frequents
  • two oysters to grow where only one grew before will be greedily welcomed both
  • one grew before will be greedily welcomed both by oyster culturists
  • two analyses
  • 00 see shell fish
  • 15 cwt
  • 68 per cent
  • 8 per cent
  • 25 per cent
  • one who has worked
  • three atoms of oxygen in each molecule instead of two
  • one inside
  • two glass tubes
  • one fitting within
  • two tubes are connected
  • 3 centimètre spark
  • 5 milligrams
  • 10 milligrams per litre
  • half covered
  • 3 parts of strong sulphuric acid
  • one from
  • 10 generally the darkest shade
  • 1 part of _pure_ iodide of potassium
  • 10 parts of starch
  • 1 part of iodide to 5 of starch
  • 15 centuries
  • one most adapted
  • two simple processes
  • one which
  • three headings
  • three categories
  • one branch of art
  • 12 parts of oil
  • twelve parts of oil
  • one hundred
  • one colour
  • one which is not yet perfectly dry
  • one thin layer over
  • one completely dry before the next is laid
  • 1-1/2 gall
  • 1-1/4 cwt
  • two tests palladium is readily distinguished from platinum
  • 1 part of palladium
  • 4 eggs into a basin
  • 4 small table-spoonfuls of flour
  • one side brownish
  • 76 organic matter
  • 10 grains
  • one part of the 'crude emulsion
  • three parts of ether
  • 5 parts of pancreatised fat
  • 7-1/2 parts of distilled water
  • 2-1/2 parts of rectified spirit
  • 60 parts
  • 50 parts
  • one side the pigments
  • one side of leaves of paper
  • one becomes dry
  • 3 coats of thin size
  • 1 coat of good white starch
  • 1 coat of a solution of gamboge in water
  • two different directions
  • two equal portions
  • two being mixed together
  • 3 coats of size
  • 7 parts more of alcohol
  • one use of paraffin candle-ends will commend them to the ladies of the household
  • one side only of the body is affected
  • one side of the face
  • one eyelid
  • one direction only
  • two first divisions include animal parasites
  • 15 parts of cold water
  • 65 parts of boiling water are to be added without stirring
  • 30 parts of starch paste are stirred up
  • 20 parts of cold water
  • 5 eggs
  • 6 eggs are to be added
  • 1/8 inch
  • 3 eggs
  • 8 lbs
  • 3 quarts
  • 4 pints
  • 12 eggs
  • 4 eggs
  • 20 grs
  • two reduced to powder by trituration
  • 35 parts
  • 45 parts
  • 72 parts
  • one end of these sticks is brought into the termination of the flame of an oxyhy
  • 25 drops
  • 48 parts
  • 1/4 peck of flour
  • one half the quantity of butter
  • 4 folds
  • one half of 'jones's patent flour' be used
  • one made
  • one best suited
  • three preparations included under this name
  • 3-1/2 lbs
  • 28 lbs
  • one likely to prove useful in all those cases in which the administration of a m
  • 3-1/2 pints
  • 7 pints
  • 2 table-spoonfuls are put into a wine-glassful of water
  • 5 drops
  • 6 pints
  • 26 pints
  • 16 pints
  • 2-3/4 galls
  • 2 galls
  • 23 lbs
  • half cold
  • two samples of holloway's ointment are precisely of the same colour
  • 4 dozen are put into each 1s
  • two pills being equivalent to 1/2 fl
  • 10 pints
  • 1-1/4 pint
  • one third stronger
  • 2 table-spoonfuls every six hours
  • two varieties are known in our gardens -- -- clingstone peach
  • salt
  • mustard
  • ginger
  • mace
  • cinnamon
  • vinegar
  • cloves
  • rosemary
  • sage
  • thyme
  • black pepper
  • lemon peel
  • cayenne
  • pepper

Directions

1

["NICK′EL.= Ni. _Syn._ NICKELIUM, L. A metal obtained from kupfernickel, a native arsenide of nickel found in Westphalia; also from nickel speiss, an impure arsenio-sulphide of nickel left after the manufacture of cobalt blue from its ores.", "_Prep._ The powdered ore is roasted first by itself, and next with charcoal powder, until all the arsenic is expelled, and a garlic odour ceases to be evolved; the residuum is mixed with sulphur 3 parts, and potassium hydrate, 1 part, and the compound is melted in a crucible with a gentle heat; the fused mass when cold, is reduced to powder, edulcorated with water, dissolved in sulphuric acid mixed with a little nitric acid, and precipitated with potassium carbonate; the precipitate (nickelous carbonate) is washed, dried, mixed with powdered charcoal, and, lastly, reduced by the heat of a powerful furnace.", "When nickel predominates in the ore, after the arsenic, iron, and copper have been separated, ammonia is digested in the mixed nickelous and cobaltous oxides, and the resulting blue solution, after dilution with boiled pure water, is treated with potassium hydrate until the colour disappears, when the whole is put into an air-tight vessel, and set it aside for some time. The powder (nickelous hydrate) which subsides, after edulcoration, is mixed with charcoal, and reduced by fusion in a crucible containing some crown glass.", "On the small scale, for chemical purposes, pure nickel is best obtained by moderately heating nickelous oxalate in a covered crucible lined with charcoal.", "_Prop._ White; hard; malleable; magnetic; capable of receiving the lustre of silver; sp. gr., when hammered, about 8·82; fusibility between that of manganese and iron; it is not oxidised in the air; and is little attacked by dilute acids unless when nitric acid is present; this last acid dissolves it freely. With the acids, &c., it forms numerous compounds, most of which may be prepared by the direct solution of the carbonate. A specimen of the metal reduced from the pure oxide in a current of hydrogen was beautifully white and silvery; its sp. gr. was 8·575, and it was almost as soft as copper.", "_Tests._ The salts of nickel in the anhydrous state are for the most part yellow; when hydrated, green,——and furnish solutions possessing a pale green colour. Solutions of its salts exhibit the following reactions:——Alkaline hydrates give a pale apple-green precipitate, insoluble in excess, but soluble in a solution of carbonate of ammonium, yielding a greenish-blue liquid. Ammonia gives a similar precipitate, soluble in excess, yielding a deep purplish-blue solution. The presence of ammonium salts or free acids interferes with this reaction. Cyanide of potassium produces a green precipitate, soluble in excess, forming an amber-coloured liquid, which is reprecipitated by hydrochloric acid. This last precipitate is scarcely soluble in excess of the acid in the cold, but readily so upon boiling the liquid. Ferrocyanide of potassium gives a greenish-white precipitate. Sulphuretted hydrogen occasions no change in solutions of nickel containing free mineral acid; but in alkaline solutions gives a black precipitate. Sulphide of ammonium in neutral solutions gives a black precipitate, soluble with difficulty in hydrochloric acid; but freely soluble in aqua regia.", "_Estim._ Nickel may be thrown down from its ore in the form of either carbonate or hydrate, and after ignition may be weighed as oxide, each grain of which is equal to 7/8 gr. of pure nickel; or, more accurately, ·7871 gr.", "According to Rose, nickel may be separated from cobalt as follows:——The mixed metals are dissolved in considerable excess of hydrochloric acids, and the solution is diluted with a very large quantity of water; a current of chlorine is then passed through the liquor for several hours, and the upper part of the flask is left filled with the gas after the current has ceased; barium carbonate is next added, in excess, the whole digested together, with frequent agitation for 15 or 18 hours, and then thrown on a filter. The filtrate yields pure nickelous oxide by precipitation with hydrate of potassium; whilst the residuum on the filter, after being washed in water, dissolved in hot hydrochloric acid, and the barium precipitated with sulphuric acid, furnishes, with hydrate of potassium, a precipitate of cobaltous hydrate, free from nickel, which, when washed and dried, is reduced in a platinum or porcelain crucible by hydrogen gas.", "_Uses._ Nickel is chiefly employed in the manufacture of German silver. Some of its salts have been recently introduced into medical practice, and appear likely to prove most valuable additions to the materia medica. It has also been recently used for deposition by electrolysis on other metals, forming a hard, brilliant, non-tarnishing coating.", "Nickelic Oxide.= Ni_{2}O_{3}. _Syn._ SESQUIOXIDE OF NICKEL, PEROXIDE OF NICKEL. _Prep._ By passing chlorine through water holding the hydrate in suspension; or by mixing a salt of nickel with bleaching powder. An insoluble, black powder, which is decomposed by heat.", "Nick′elous Ace′tate.= Ni(C_{2}H_{3}O_{2})_{2}. _Syn._ NICKELII ACETAS, L. _Prep._ By neutralising acetic acid with nickelous carbonate, and gently concentrating by evaporation, so that crystals may form. Small green crystals, soluble in 6 parts of water.", "Nickelous Car′bonate.= NiCO_{3} _Syn._ NICKELII CARBONAS, L. _Prep._ This salt may be obtained in the manner described above in connection with the preparation of metallic nickel, or by simply adding carbonate of sodium to a solution of nickelous chloride of sulphate, but in this case some hydrate is precipitated along with it. The following is another formula which produces a nearly pure carbonate, but one which may still contain a little cobalt, the entire separation of which is a matter of extreme difficulty, and can best be effected in the manner recommended by Rose, described above:——", "The mineral (crude speiss or kupfernickel) is broken into small fragments, mixed with from one fourth to one half its weight of iron filings, and the whole dissolved in aqua regia; the solution is gently evaporated to dryness, the residue treated with boiling water, and the insoluble ferrous arseniate removed by filtration; the liquid is next acidulated with hydrochloric acid, treated with sulphuretted hydrogen, in excess, to precipitate the copper, and, after filtration, is boiled with a little nitric acid, to bring back the iron into ferric salts; to the cold and largely diluted liquid a solution of bicarbonate of sodium is gradually added, and the ferric oxide separated by filtration; lastly, the filtered solution is boiled with carbonate of sodium in excess, and the pale green precipitate of carbonate collected, washed, and dried.", "_Uses, &c._ It is freely soluble in the acids, and is chiefly employed to prepare the salts and other compounds of nickel.", "Nickelous Chlo′′ride.= NiCl_{2}. _Syn._ NICKELII CHLORIDUM, L. _Prep._ From nickelous carbonate and hydrochloric acid, as the acetate. Small green crystals, of the formula NiCl_{2},9Aq., which are rendered yellow and anhydrous by heat, unless they contain cobalt, when the salt retains a tint of green.", "DOUBLE CHLORIDES. Nickelous chloride unites with the chlorides of ammonium, potassium, and sodium, to form pale green crystallisable salts, which have been used for depositing nickel in iron, lead, copper, &c.", "Nickelous Hy′drate.= Ni(HO)_{2}. By precipitating a soluble salt of nickel with caustic potassa. Hydrated. An ash-gray powder, freely soluble in acids, forming the ordinary salts of nickel.", "Nickelous Ox′alate.= NiC_{2}O_{4}. _Syn._ NICKELII OXALAS, L. _Prep._ By adding a strong solution of oxalic acid to a like solution of nickelous sulphate, and collecting the pale bluish-green precipitate which forms after a time. Used to prepare both metallic nickel and its oxide.", "Nickelous Oxide.= NiO. _Syn._ PROTOXIDE OF NICKEL. _Prep._ 1. By heating the nitrate, carbonate, or oxalate, to redness in open vessels. Anhydrous.", "Nickelous Sulphate.= NiSO_{4}. _Syn._ SULPHATE OF NICKEL. _Prep._ Dissolve nickelous carbonate or oxide in dilute sulphuric acid, evaporate down, and crystallise. Pale green prismatic crystals, and of the formula NiSO_{4},7Aq., or small pale green octahedrons, when crystallised at a higher temperature, containing NiSO_{4},6Aq.", "Nickelous and Potassium Sulphate.= NiSO_{4} K_{2}SO_{4},6Aq. _Syn._ DOUBLE SULPHATE OF NICKEL AND POTASSIUM. _Prep._ By crystallising a mixture of nickelous and potassium sulphates. Pale green crystals, readily soluble in water. Sodium and ammonium sulphates form similar compounds with nickelous sulphate.", "NICK′EL SIL′VER.= See GERMAN SILVER.", "NIC′OTINE.= C_{10}H_{14}N_{2}. _Syn._ NICOTINA, NICOTIA, L. A volatile base, discovered by Reiman and Posselt in tobacco.", "_Prep._ (Ortigosa.) Infuse tobacco leaves for 24 hours in water acidulated with sulphuric acid, strain, evaporate to a syrup, add 1/6 of its volume of a strong solution of potassa, and distil in an oil bath at 288°, occasionally adding a little water to assist the process, and prevent the too great concentration of the solution of potassa in the retort; next saturate the distilled product with oxalic acid, evaporate to dryness, digest in boiling absolute alcohol, evaporate the resulting tincture to a syrup, and decompose the oxalate of nicotine thus obtained by adding potassa to it in a close vessel, and agitate the mass with ether, repeating the process with more ether until all the nicotine is dissolved out; lastly, distil the mixed ethereal solution in an oil bath. At first ether comes over, then water, and, lastly, nicotina, which, towards the end of the process, assumes a yellowish tint.", "2. (Schloesing.) This chiefly differs from the preceding by directing the concluding distillation to be conducted in a retort, by the heat of an oil bath, at the temperature of 284° Fahr., in a current of hydrogen, for 12 hours; after which, by raising the heat to 356° Fahr., the nicotine distils over pure, drop by drop.", "3. (Kirchmann). A tin vessel provided with two tubulures, is filled with tobacco, which is previously damped with sodium carbonate. One of the tubulures admits a glass tube reaching nearly to the bottom of the vessel; the other is provided with a glass tube merely penetrating the cork.", "The vessel is made air-tight, placed into a boiling hot steam bath, and a rapid stream of carbonic acid gas passed through it, entering the vessel by the longer and leaving it by the shorter tube; the latter dips into a mixture of alcohol and dilute sulphuric acid.", "In this manner a large yield of perfectly colourless nicotine is obtained. In order to obtain the pure alkaloid, caustic baryta is added to the solution, the latter evaporated to dryness, and the pure nicotine extracted with ether.", "To estimate nicotine, weigh out 15 gr. of tobacco, digest for twenty-four hours with alcohol of 85 per cent. acidified with 15 drops of sulphuric acid, so as to make 150 cubic centimètres. Evaporate 50 cubic centimètres of the filtered liquid, and add iododydrargyrate of potassium to the residue. The number of cubic centimètres employed, multiplied by 0·00405 (0·001 of the equivalent of nicotine), gives the quantity of alkaloid contained in 5 grams of tobacco. (Linoffsky.)", "_Prop., &c._ Nicotina is a colourless, volatile liquid; highly acrid and pungent; smelling strongly of tobacco; boiling at 375° Fahr. (482°——Pereira); soluble in water, ether, alcohol, and oils; and combining with the acids, forming salts, many of which are crystallisable. It is a frightful poison; 1/4 of a drop will kill a rabbit; a single drop will kill a large dog. Nicotina is the substance which was employed by the Count Bocarmé for the purpose of poisoning his brother-in-law, Gustave Fougnies, the particulars of which were developed in the celebrated trial, in Belgium, of that nobleman, in 1851. Good Virginia and Kentucky tobacco, dried at 212° Fahr., contain from 6% to 7% of nicotina; Havannah tobacco (_cigars_) less than 2%. (Schloesing.)", "NIGHT′MARE.= _Syn._ INCUBUS, EPHIALTES, L. The common causes of nightmare are indigestion and the use of narcotic and intoxicating substances. Its prevention consists in the selection of proper food, and in duly attending to the state of the stomach and bowels. Heavy and late suppers should be particularly avoided, as well as all articles of diet that are of difficult digestion, or apt to induce flatulency. When it arises from strong drink, tobacco, or opium, these should be abandoned, or employed in smaller quantities. A teaspoonful of aromatic spirits of ammonia, magnesia, or bicarbonate of soda, taken in a glass of cold water on going to bed, is a good and simple preventive. In cases accompanied by restlessness, a few drops of laudanum or tincture of henbane may be added. An occasional aperient is also excellent. See CHAMOMILE.", "NIGHT′SHADE (Deadly).= _Syn._ BELLADONNA (B. P., Ph. L. E. & D.). “The leaf, fresh and dried (leaves and root——Ph. D.), of _Atropa belladonna_, Linn.” “The fresh leaves and branches to which they are attached; also the leaves separate from the branches, carefully dried, of _Atropa belladonna_, gathered, when the fruit has begun to form, from wild or cultivated plants in Britain” (B. P.). “Oval, acute, very perfect, glabrous, when bruised, exhaling a disagreeable odour. The herb which grows spontaneously in hedges and uncultivated places is to be preferred to that which is cultivated in gardens.” (Ph. L.)", "Belladonna is a powerful narcotic, and is used as an anodyne, antispasmodic, and discutient, in a variety of diseases,——neuralgia, arthritic pains, migratory rheumatic pains, spasmodic rigidity and strictures, angina pectoris, hooping-cough, fevers, phthisis, &c.; also as a prophylactic of scarlet fever, as a resolvent in enlarged and indurated glands, to produce dilatation of the pupil, &c., &c.——_Dose._ Of the powder, commencing with 1 gr., gradually and cautiously increased until dryness of the throat or dilation of the pupil occurs, or the head is affected. See ATROPIA.", "NIGHTSHADE (Woody).= _Syn._ BITTERSWEET; DULCAMARA (B. P., Ph. L. E. & D.), L. The “new shoots (caules) of _Solanum Dulcamara_, Linn.” “The dried young branches of the _Solanum Dulcamara_ (Bittersweet) from indigenous plants which have shed their leaves” (B. P.). “It is to be collected in autumn, after the leaves have fallen.” (Ph. L.) Diaphoretic, diuretic, and (in large doses) narcotic. See INFUSION OF DULCAMARA.", "NIO′BIUM.= See TANTALUM.", "NIP′PLES (Sore).= The most common form of this affection is that termed “chapped nipples” by nurses. As a preventive measure, the part may be moistened morning and evening, for some weeks before the period of lactation, with a little rum or brandy, which is more effective if slightly acidulated with a few drops of dilute sulphuric acid. Some persons employ tincture of tolu, or compound tincture of benzoin (Friar’s balsam) for this purpose.", "When chaps, cracks, or like sores, arising from lactation, are once developed, one of the safest and most effective remedies is tincture of catechu, applied 3 or 4 times a day, by means of a camel-hair pencil.", "The celebrated nostrum of Liebert for cracked nipples, “_Cosmétique infaillible et prompt contre les gerçures ou crevasses aux seins et autres_,” is a lotion formed of 10 gr. of nitrate of lead dissolved in 4 fl. oz. of rose water, and tinged with a little cochineal. The parts are moistened with the liquid, and are then covered with fine leaden nipple-shields, two of which are provided for the purpose. This is repeated soon after each time the child leaves the breast; and the nipple is carefully washed with a soft sponge and lukewarm water, and gently dabbed dry with a very soft towel, before the infant is again applied to it. This remedy is very successful, and has acquired great popularity and patronage in Brussels, Paris, Frankfort, and other parts. It must be recollected, however, that all applications of an active or poisonous nature should be employed with the greatest possible caution, as, unless unusual care is taken, a portion of the remedy may remain concealed within the delicate pores of the skin, and be sucked off by the infant, to the serious disturbance of its health.", "NITRAN′ILINE.= This substance is obtained by acting on nitrobenzol with a mixture of fuming nitric acid and oil of vitriol; Dinitro-benzol is formed, which is dissolved in alcohol, and the resulting solution subjected to the reducing action of ammonia and sulphuretted hydrogen, as described under aniline. Nitraniline forms yellow, acicular crystals, little soluble in cold water, but freely soluble in alcohol and ether. Its salts are crystallisable.", "NI′TRATE.= _Syn._ NITRAS, L. A salt of nitric acid (_e.g._ AgNO_{3}, nitrate of silver). The nitrates are very easily prepared by the direct solution of the metal, or its oxide, or carbonate, in nitric acid, which, in most cases, should be previously diluted with water. By evaporation, with the usual precautions, they may be obtained either in the pulverulent or crystalline form.", "The nitrates are characterised by deflagrating when thrown on red-hot charcoal; also by their aqueous solutions, after being mixed with half their bulk of strong sulphuric acid and thoroughly cooled, yielding a brown cloud with a crystal or concentrated solution of ferrous sulphate. See NITRIC ACID, and the respective metals.", "NI′TRE.= Nitrate of Potassa. See POTASSIUM.", "NI′TRIC ACID. HNO_{3}.= _Syn._ AZOTIC ACID; ACIDUM NITRICUM (B. P., Ph. L., E., & D.); AQUAFORTIS.", "_Prep._ 1. (Ph. E. and Ph. L. 1836.) Purified nitre (dried) and sulphuric acid, equal parts; mix in a glass retort, and distil with a moderate heat, from a sand bath (or naked gas flame——Ph. E.) into a cool receiver, as long as the fused materials continue to evolve vapours. “The pale yellow acid thus obtained may be rendered nearly colourless (if desired) by gently heating it in a retort.” (Ph. E.) Sp. gr. 1·500. In the present Ph. L. this acid is included in the materia medica. (See _below_.)", "2. (Ph. D.) The nitrate of potassa is dissolved in water, the solution treated with a little nitrate of silver, filtered, evaporated to dryness, weighed, and then treated as above.", "3. Nitrate of soda (cubic nitre, Chili saltpetre) is introduced, in quantities varying between 4 and 10 lbs., into a cylindrical iron retort, which it will only half fill, and after the lid is luted on and the connection made with the condensers, an equivalent of oil of vitriol is poured in through an aperture provided for the purpose, and the charge is worked off with a gradually increased heat. The condensing apparatus consists of a series of 5 or 6 salt-glazed stoneware receivers, about 1/6th part filled with cold water. The product of this process is the strongest brown and fuming ‘NITROUS ACID’ of commerce (AQUAFORTIS, FUMING NITRIC ACID; ACIDUM NITROSUM; ACIDUM NITRICUM FUMANS), and has usually the sp. gr. 1·45. It is rendered colourless by gently heating it in a glass retort, when it forms COMMERCIAL NITRIC ACID (sp. gr. 1·37 to 1·4.)", "4. (PURE MONOHYDRATED NITRIC ACID.) By mixing the strongest commercial acid with about an equal quantity of oil of vitriol; redistilling; collecting apart the first portion which comes over, and exposing it, in a vessel slightly warmed and sheltered from the light, to a current of dry air made to bubble through it until the nitrous acid is completely removed.", "_Prop._ Pure liquid nitric acid is colourless, highly corrosive, and possesses powerful acid and oxygenising properties. The sp. gr. of the strongest liquid acid (monohydrated nitric acid) has the sp. gr. 1·517 at 60° Fahr. “On boiling nitric acid of different degrees of concentration at the ordinary atmospheric pressure, a residue is left boiling at 249° Fahr., and 29 in. barometer, having a sp. gr. 1·414 at 60° Fahr.” (Fownes.) Acid of less density than 1·414 parts with water, and gradually becomes stronger by boiling; but acid of less sp. gr. than 1·414 is weakened by exposure to heat. When exposed to intense cold, liquid nitric acid freezes. It is rapidly decomposed, with loss of oxygen, by contact with most organic and many metallic and non-metallic bodies. In many cases these reactions occur with considerable violence, and the production of light and heat.", "_Pur._ The nitric acid of commerce is generally contaminated by hydrochloric acid, nitrous acid, sulphuric acid, or chlorine, or by their soda or potassa salts, and, occasionally, iodine, together with an excess of water. The last is readily detected by the sp. gr., and the others by the appropriate tests. “Colourless. Contains 70% of HNO_{3}. Sp. gr. 1·42. 90 gr. by weight, mixed with 1/2 oz. of distilled water, require for neutralisation 1000 grain measures of the volumetric solution of soda. Evaporated, it leaves no residue. Diluted with six volumes of distilled water, it gives no precipitate with chloride of barium or nitrate of silver——indicating absence of sulphuric and hydrochloric acids.” (B. P.) 5 measures of acid, sp. gr. 1·5, mixed with 2 of water, condensed into 6-1/2 measures, and makes the sp. gr. 1·42. “Free from colour. Sp. gr. 1·42. Exposed to the air, it emits very acrid vapours. Totally volatilised by heat. Diluted with 3 times its volume of water, it gives no precipitate with either nitrate of silver or chloride of barium. 100 gr. of this acid (sp. gr. 1·42) are saturated by 161 gr. of crystallised carbonate of soda.” (Ph. L.) The Ph. E. states the density of commercial nitric acid is 1·380 to 1·390. “If diluted with distilled water it precipitates but slightly, or not at all, with solution of nitrate of baryta or nitrate of silver.” The best ‘double aquafortis’ of the shops (aquafortis duplex) has usually the sp. gr. 1·36; and the single aquafortis (aquafortis simplex), the sp. gr. 1·22; but both are commonly sold at much lower strengths.", "_Tests._——1. It stains the skin yellow.——2. When mixed with a little hydrochloric acid or chloride of ammonium, it acquires the power of dissolving gold leaf.——3. Morphia, brucia, and strychnia, give it a red colour, which is heightened by ammonia in excess.——4. When placed in a tube, and a solution of protosulphate of iron is cautiously added, a dark colour is developed at the line of junction, which is distinctly visible when only 1/24,000th part of nitric acid is present. This test may be often conveniently modified by dropping into the liquid a crystal of protosulphate of iron; the fluid immediately surrounding this crystal then acquires a dark brown colour, which disappears upon simple agitation of the fluid, or by heating it.——5. When mixed with a weak solution of sulphate of indigo, and heated, the colour of the latter is destroyed.——6. When saturated with carbonate of potassium or sodium, and evaporated to dryness, the residuum deflagrates when thrown on burning coals.——7. When the mixture of a nitrate with cyanide of potassium, in powder, is heated on a piece of platinum, a vivid deflagration follows, attended with distinct ignition and detonation. (Fresenius.) It is stated that sulphate of aniline is an extremely delicate test for nitric acid. The following is the method of its application:——About a cubic centimètre of pure concentrated sulphuric acid (sp. gr. 1·84) is placed in a watch-glass; half a cubic centimètre of a solution of sulphate of aniline (formed by adding ten drops of commercial aniline to 50 c.c. of diluted sulphuric acid in the proportion of 1 to 6) is poured on, drop by drop; a glass tube is moistened with the liquid to be tested, and moved circularly in the watch-glass. By blowing on the mixture during the circular agitation, when a trace of nitric acid is present, circular striæ are developed of a very intense red colour, tinting the liquid rose. With more than a trace of nitric acid the colour becomes carmine, passing to a brownish re", "[Footnote 46: ‘Pharmaceutical Year Book.’]", "The following process for the quantitative estimation of nitric acid is by Fischer:[47]——Indigotin prepared by reduction of indigo by means of grape sugar, alcohol, and caustic soda, oxidation in the air, and solution in sulphuric acid, may be kept unchanged for years. Five c.c. of such a solution, diluted with water and mixed with 30 c.c. of pure sulphuric acid, is titrated by adding a standard nitric acid solution until the blue colour gives place to a light green; the indigo solution is then diluted, so that 1 c.c. shall be equal to 0·0025 milligramme equivalents of nitric acid, or 0·2525 milligramme of potassium nitrate. If a water is being examined it is run into 4 c.c. of the titrated indigo solution, mixed with 20 c.c. of sulphuric acid, until the blue colour changes to light green. Ten, divided by the number of c.c. of water used, expresses the milligramme equivalents of nitric acid per litre; thus, if 4 c.c. of water are used, there are 2·5 milligramme equivalents of nitric acid, equal to 252·5 milligrammes of potassium nitrate per litre. If a preliminary test with brucine has shown that the water contains very little nitric acid, 2 c.c. only of the indigo solution must be used, or sometimes as little as 1 c.c. If more than 8 c.c. of water is required to destroy the blue colour, 100 c.c. must be evaporated down to the volume of 8 c.c. and then titrated. The volume of sulphuric acid must be at least double the sum of the volumes of indigo and water; the temperature must not sink under 110°.", "[Footnote 47: Dingl., ‘Polyt. Journ.’ ccxiii, 423-427; ‘Journ. Chem. Soc.,’ 2nd series, xiii, 481.]", "The nitrates may all be tested as above by first adding a small quantity of pure sulphuric acid, which will liberate the nitric acid of the salt.", "_Estim._——The strength of nitric acid may be roughly estimated by its sp. gr.; but more accurately by ascertaining the amount of carbonate of sodium, or other salt of known composition, which is required to neutralise it. To render this assay trustworthy, it must be, in all cases, also tested to detect the presence of impurities. See ACIDIMETRY.", "_Ant., &c._ See ACIDS.", "_Uses._ Nitric acid is employed in assaying, in dyeing, in etching on copper, in the preparation of gun-cotton, oxalic and sulphuric acids, &c. In medicine it is used as a caustic to corns and warts; and in doses of 1 to 10 drops, in a tumbler of water, in liver complaints, fevers, dyspepsia, syphilis, to remove the effects of mercury, or as a substitute for that drug, &c. Externally, it is employed in the form of baths, lotions, and ointment. Dr Collier states that a strong lotion of nitric acid is almost a specific in lepra, and several other kindred skin diseases.", "_Concluding Remarks._——The common source of nitric acid is nitrate of potassium, but it may also be obtained from other nitrates by a similar process. Nitrate of sodium is frequently used instead of nitrate of potassium, and is more convenient in some respects, as the residuum is more easily dissolved out of the retort or cylinder. The residuum of the common process with nitre (‘sal enixum’) is chiefly employed as a flux by the glass-houses, and as a source of potash in the manufacture of alum.", "By proper management nitre yields more than 2/3 of its weight of pure nitric acid, sp. gr. 1·500; and nitrate of soda, its own weight of acid, sp. gr. 1·4.", "By the patent process of M. Mallet, dried nitrate of soda is decomposed by dried or monohydrated boracic acid, by heating the two together. The products are liquid nitric acid, which distils over, and biborate of soda (borax), which remains in the retort.", "The crude coloured nitric acid of commerce (aquafortis) was originally prepared by distilling a mixture of nitre and copperas, and is still sometimes obtained in this way.", "The nitric acid of commerce may be freed from the impurities alluded to above by one or other of the following methods:——", "1. By the addition of a little nitrate of silver, as long as it produces any cloudiness, and, after repose, decanting the clear acid, and rectifying it at a heat under 212°. To ensure a perfectly colourless product, a small portion of pure black oxide of manganese should be put into the retort. (Murray.)", "2. By agitating the acid with a little red oxide of lead, and then rectifying it, as before.", "3. By adding 1% of bichromate of potassa to the acid before rectifying it. This answers well for acid not stronger than sp. gr. 1·48.", "4. By rectification at a gentle heat, rejecting the first portion that comes over, receiving the middle portion as genuine acid, and leaving a residuum in the retort. (Ure.)", "According to Apjohn and others, the strongest liquid nitric acid, sp. gr. 1·520, is a monohydrate; that of the sp. gr. 1·500, a sesquihydrate; that of 1·486, a binhydrate; and that of 1·244, a quadrihydrate; or containing respectively 1, 1-1/2, 2, and 4 atoms of water. (See _below_.)", "Nitric Acid, Anhy′drous.= N_{2}O_{5}. _Syn._ NITRIC ANHYDRIDE. This interesting substance was first obtained in a separate form by M. Deville, in 1849.", "_Prep._ (M. Deville.) Nitrate of silver is dried by exposure to a current of dry carbonic acid at a temperature of 356° Fahr., and the tube containing it is then immersed in a water bath heated to 203° Fahr.; pure dry chlorine gas is next passed through the apparatus, and, as soon as the reaction commences, the temperature is retraced to 154° or even 136°, but not lower; the production of crystals in the receiver, which must be cooled by a powerful freezing mixture, soon commences; lastly, the liquid portion of the product is removed by a current of dry carbonic-acid gas.", "_Prop., &c._ Colourless prismatic crystals, which melt at 86° Fahr., boil at about 115°, and at 122° begin to suffer decomposition; added to water, much heat is generated; it rapidly attacks organic bodies, even caoutchouc; sometimes it explodes spontaneously. The process for its preparation is tedious and difficult.", "Nitric Acid, Dilute.= ACIDUM NITRICUM DILUTUM (B. P., Ph. L., E., & D.), L. _Prep._ 1. (Ph. L.) Nitric acid (sp. gr. 1·42), 3 fl. oz.; distilled water, 17 fl. oz.; mix. Sp. gr. 1·082. “1 fl. oz. is saturated by 154 gr. of the crystals of carbonate of soda.” It contains about 12% of pure anhydrous acid.", "2. (Ph. E.) Nitric acid (1·500), 1 fl. oz.; distilled water, 9 fl. oz. Or, commercial nitric acid (1·390), 1 fl. oz. 5-1/2 dr.; water, 9-1/2 fl. oz. Sp. gr. 1·077. It contains 11·16% of pure dry nitric acid.", "3. (Ph. D.) Nitric acid (1·500), 4 fl. oz.; water, 29 fl. oz. Contains about 9·7% of pure acid. The above are used for convenience in dispensing.——_Dose_, 15 drops to 1/2 fl. dr., or more. The above must not be confounded with the acidum nitricum dilutum, Ph. D. 1826, which had the sp. gr. 1·280, nor with the following:——", "4. (Henry’s.) Sp. gr. 1·143; equal in saturating power to hydrochloric acid sp. gr. 1·074, and sulphuric acid 1·135. Used in assaying.", "5. (B. P.) Nitric acid, 6; distilled water sufficient to make the mixture when cooled to 60° Fahr., measure 31. Contains 15 per cent. of anhydrous nitric acid. _Test._ Sp. gr. 1·101. Six fluid drachms (361·3 grains) by weight require for neutralisation 1000 grain measures of the volumetric solution of soda, and, therefore, contain exactly one equivalent in grains of anhydrous acid, namely, 54 gr.——_Use._ Tonic, astringent, lithonlytic.——_Dose_, 10 to 30 minims.", "Nitric Acid, Fuming.= _Syn._ NITROUS ACID‡; ACIDUM NITRICUM FUMANS, L. The red fuming nitrous or nitric acid of commerce is simply nitric acid loaded with nitric peroxide (which _see_). That of the Ph. Bor. is distilled from nitre, 2 parts; oil of vitriol, 1 part.", "NI′TRIC ANHY′DRIDE.= See NITRIC ACID, ANHYDROUS.", "NI′TRIC OXIDE.= See NITROGEN, OXIDES OF.", "NI′TRITE.= A salt of nitrous acid; _e.g._ KNO_{2}, nitrite of potassium.", "NITRO-BEN′ZOL.= C_{2}H_{5}NO_{2}. _Prep._ By treating benzol with strong fuming nitric acid, with heat; after the violence of the reaction is over, the liquid is diluted with water, and the heavy oily fluid which separates is collected, washed, and dried.", "_Prop., &c._ Yellowish, very sweet; smells of bitter almonds; insoluble in water; little affected by reagents; boils at 415° Fahr.; sp. gr. 1·209. Heated with an alcoholic solution of caustic potassa, and the mixture submitted to distillation, it yields a red, oily liquid, from which large red crystals of azobenzol separate. These are nearly insoluble in water, freely soluble in alcohol and ether, melt at 149° Fahr., and boil at 559·4° Fahr. BINITROBENZOL is made by dissolving benzol in a mixture of equal volumes of the strongest nitric and sulphuric acids, and boiling the liquid for a few minutes; the crystals (dinitrobenzol) which form as it cools are insoluble in water, but are freely soluble in alcohol. Nitro-benzol is extensively used as a substitute for the essential oil of bitter almonds, in perfumery. It is very poisonous, a quality, which Letheby asserts, it acquires owing to its conversion in the animal economy into aniline. M. Ferrand states that the presence of nitro-benzol in essence of bitter almonds may be detected as follows:——Heat to ebullition, in a test tube, three or four c.c. of a 20 per cent. alcoholic solution of potash, together with ten drops of the suspected essence. If nitro-benzol be present, the mixture takes a red colour; if the essence of bitter almonds be pure, it becomes a pale straw colour.", "NI′TROGEN.= N. _Syn._ AZOTE; NITROGENIUM, AZOTUM, L. A gaseous elementary substance, discovered by Rutherford, in 1722, and found to be a constituent of the atmosphere by Lavoisier, 1755. It is found both in the organic and inorganic kingdoms of nature; it forms about 4/5, or 78% of the bulk of the atmosphere, enters largely into the composition of most animal substances, and is a constituent of gluten, the alkaloids, and other vegetable principles.", "_Prep._ 1. A small piece of phosphorus is placed in a capsule floating on the surface of the water of the pneumatic trough, and after setting it on fire a gas or bell-jar is inverted over it; as soon as the combustion is over, and the fumes of phosphoric anhydride have subsided, the residual gas is washed by agitation with recently boiled distilled water, or with a solution of pure potassa. It may be dried by either letting it stand over fused chloride of calcium, or, what is better, by passing it through concentrated oil of vitriol.", "2. A porcelain tube is filled with copper turnings, or, preferably, with spongy copper (obtained by reducing the oxide with hydrogen), and is then heated to redness, a stream of dry atmospheric air being at the same time directed through it. By repeating the process with the same air, and finally passing it over fragments of pumice moistened with strong solution of potassa to absorb carbonic anhydride, the product is rendered quite pure.", "3. Chlorine gas is passed into a solution of pure ammonia, care being taken to employ a considerable excess of the latter; the evolved gas, after being dried, is pure nitrogen. There is some danger of producing the explosive compound, chloride of nitrogen, with this process.", "4. (Corenwinder.) From solution of nitrate of potassium, 1 volume; concentrated solution of chloride of ammonium, 3 vols.; gently heated together in a flask, and the evolved gas passed through sulphuric acid. Pure.", "5. By boiling a solution of nitrite of ammonium, or, which amounts to the same thing, a mixture of one measure of a solution of nitrite of potassium and three measures of a solution of chloride of ammonium. Both solutions must be concentrated. This is the easiest method of preparing nitrogen and of obtaining the gas in a pure state.", "_Note._——The nitrite of potassium to be employed in this process is best prepared by passing nitrous anhydride, evolved from starch and nitric acid, into a solution of potassa (sp. gr. 1·38) till it imparts an acid reaction to test-paper, and then neutralising by the addition of potassa.", "6. From lean flesh digested in nitric acid, at a gentle heat.", "_Prop., &c._ Pure nitrogen is a colourless, odourless, tasteless gas, neither combustible nor capable of supporting combustion or respiration. It is neutral to test-paper, does not affect lime water, and is only slightly absorbed by pure water. Its sp. gr. is ·9713. It is recognised by its purely negative qualities.", "Nitrogen, Chlo′′ride of.= NCl_{3}. _Syn._ NITROGEN TRICHLORIDE, TERCHLORIDE OF NITROGEN. This compound was discovered by Dulong in 1811, but its nature was first accurately determined by Sir H. Davy.", "_Prep._ (Liebig.) Dissolve chloride of ammonium, 1 oz., in hot water, 12 or 14 oz., and as soon as the temperature has fallen to 90° Fahr., invert a wide-mouthed glass bottle full of chlorine over it. The gas is gradually absorbed, the solution acquires a yellowish colour, and in the course of 15 to 20 minutes yellow, oil-like globules of chloride of nitrogen form upon the surface of the liquid, and ultimately sink to the bottom. The globules, as they descend, should be received in a small leaden saucer, placed under the mouth of the bottle for the purpose.", "_Prop., &c._ Chloride of nitrogen should consequently be only prepared in very small quantities at a time. Both its discoverer and Sir H. Davy met with severe injuries while experimenting on it. Its sp. gr. is 1·653; it volatilises at 160° Fahr., and between 200° and 212° fulminates violently. Contact with combustible bodies at ordinary temperatures immediately causes detonation. _The explosive power of this compound seems to exceed that of every known substance, not even excepting fulminating silver:_ A minute globule, no larger than a grain of mustard seed, placed on a platina spoon, and touched with a piece of phosphorus stuck on the point of a penknife, immediately explodes, and shivers the blade into fragments, at the same time that the vessel that contains it is broken to pieces. Olive oil, naphtha, and oil of turpentine, have a similar effect. See NITROGEN, IODIDE OF (_below_).", "Nitrogen, I′odide of.= NI_{2}. _Syn._ NITROGEN TRI-IODIDE, TERIODIDE OF NITROGEN. A dark brown or black insoluble powder, which is most safely and conveniently prepared by saturating alcohol (sp. gr. ·852) with iodine, adding a large quantity of the strongest pure solution of ammonia, and agitating the mixture; water must now be added, when iodide of nitrogen will be precipitated, and must be carefully washed with cold distilled water. The filter containing the precipitate should be spread out on a sheet of glass and torn into small pieces while the iodide is still moist. The precipitate should be simply exposed to air only.", "_Prop., &c._ It detonates violently as soon as it becomes dry, by the slightest pressure or friction, even that of a feather, and often spontaneously; but this explosion is scarcely so powerful as that of the chloride of nitrogen. It also explodes whilst moist, though less readily. It should only be prepared in very small quantities at a time. Recent researches induce the belief that both the above compounds contain hydrogen.", "Nitrogen, Ox′ides of.= Nitrogen forms 5 distinct compounds with oxygen.", "1. =Nitrous ox′ide.= _Syn._ PROTOXIDE OF NITROGEN; LAUGING GAS; NITROGENII PROTOXYDUM, L. _Prep._ From fused nitrate of ammonium, introduced into a glass retort, or a flask furnished with a bent tube, and then exposed, over a spirit-lamp, or charcoal-chauffer, to a temperature of about 389° Fahr.; the evolved gas may be collected in bladders, gas-bags, a gasometer, or in the pneumatic trough over warm water. The gas may be purified by pouring it through three wash-bottles, one containing water, one a solution of sulphate of iron, and the other a solution of potassa.", "_Prop., &c._ Colourless; possesses an agreeable odour, and a sweetish taste; at 32°, under a pressure of 30 atmospheres, it is liquid; this, when exposed under the receiver of a powerful air-pump, changes into a snow-like solid; at -180° Fahr., it is a transparent, colourless, crystalline body; it supports combustion, and is absorbed by cold water. Sp. gr. 1·520. Its most remarkable property is its action on the system when inspired. A few deep inspirations are usually succeeded by a pleasing state of excitement, and a strong propensity to laughter and muscular exertion, which soon subside, without being followed by languor or depression. Its effects, however, vary with different constitutions. From 4 to 12 quarts may be breathed with safety. It produces temporary insensibility to pain, like chloroform or ether; but its use is dangerous when affections of the heart, lungs, or brain are present. This gas is now successfully and extensively employed as an anæsthetic in dental surgery.", "_Obs._ No particular caution is required in preparing the above compound, except the use of too much heat. The temperature should be so arranged as to keep the melted mass in a state of gentle ebullition, and should not be allowed, under any circumstances, to exceed about 500° Fahr. Should white fumes appear within the retort after the evolution of the gas has commenced, the heat should be at once lowered, as, when heated to about 600°, nitrate of ammonia explodes with violence.", "Nitrous oxide may also be made in the same way, from crystallised nitrate of ammonia, or by exposing nitric oxide for some days over iron filings moistened with water, but, without great care, the product is not always fit for respiration. When pure, it is colourless, has an agreeable odour, and does not affect solution of nitrate of silver. See ANÆSTHETICS.", "2. =Nitric oxide.= NO. _Syn._ DEUTOXIDE OF NITROGEN, NITROUS GAS, BINOXIDE OF NITROGEN; NITROGENEE BINOXYDUM, L. _Prep._ By pouring nitric acid, sp. gr. 1·2, on metallic copper, in the form of turnings, clippings, or wire. Effervescence ensues, and nitric oxide is evolved, and may be collected over water or mercury in the pneumatic trough. The residual liquid yields crystals of nitrate of copper on evaporation.", "_Prop., &c._ A colourless, tasteless, inodorous, irrespirable, and incombustible gas. In contact with free oxygen, it produces dense orange or red vapours of nitric peroxide (NO_{2}), which are freely absorbed by water. Nitric oxide is absorbed by a solution of ferrous sulphate, which it turns of a deep brown or nearly black colour, which is removed by boiling. Sp. gr. 1·039.", "Nitrous Anhydride.= N_{2}O_{3}. _Syn._ NITROGEN TRIOXIDE, ANHYDROUS NITROUS ACID. The easiest method of obtaining this compound consists in heating 1 part of powdered starch with 8 parts of nitric acid of sp. gr. 1·25, and passing the evolved gases, first through a drying tube two feet long containing fused chloride of calcium, and then into a dry and empty U-tube cooled to 20° Fahr. by surrounding it with a mixture of pounded ice and crystallised chloride of calcium. Nitrous anhydride thus produced is a blue liquid which emits red fumes, and which on admixture with water at ordinary temperatures is decomposed, producing nitric acid and nitric oxide. If nitrous anhydride be mixed with water at temperatures below 0° Fahr. the two combine, and a blue solution is formed which (probably) contains nitrous acid (HNO_{2}). See NITROUS ACID.", "Nitrogen Pentoxide.= N_{2}O_{5}. _Syn._ NITRIC PENTOXIDE, NITRIC ANHYDRIDE, ANHYDROUS NITRIC ACID. See NITRIC ACID (ANHYDROUS).", "Nitrogen Peroxide.= NO_{2}. _Syn._ NITRIC PEROXIDE, PEROXIDE OF NITROGEN, NITROGEN TETROXIDE, HYPONITRIC ANHYDRIDE. This compound forms the chief constituent of the red fumes which develop on mixing nitric oxide with air or oxygen. It is most readily prepared by heating thoroughly dried nitrate of lead in a retort, and conducting the evolved gases into a U-tube surrounded with a freezing mixture of ice and salt for the purpose of condensing the nitric peroxide. If the U-tube be perfectly dry, and the cold intense, the nitric peroxide obtained assumes the form of transparent crystals, but the presence of the slightest trace of moisture prevents their formation and produces instead a colourless liquid which, as the temperature rises, acquires a yellow and ultimately a red colour. Nitric peroxide dissolves in nitric acid and turns it of a yellow or red hue. The so-called ‘_nitrous acid_’ or ‘_fuming nitric acid_’ of commerce owes its deep red colour to the presence of this compound. At very low temperatures water converts nitric peroxide into nitric and nitrous acids; at ordinary temperatures it transforms it into nitric acid, nitrous acid, and nitric oxide.", "NITRO-GLYCERIN.= _Syn._ GLONOIN, NITRATE OF GLYCERYL, TRINITRITE, NITROLEUM, FULMINATING OIL, TRI-NITROGLYCERIN. This dangerously explosive compound, from the use of which in mining, quarrying, and such like operations so many fatal accidents have occurred, is glycerin in which 3 atoms of hydrogen have been replaced by 3 molecules of nitroxyl (NO_{2}), as illustrated by the following formulæ:", "Glycerin. Nitro-glycerin. C_{3}H_{5} } (H } ) = C_{3}H_{5} } (H } ) }O_{3} + 3 ( }O ) } O_{3} + 3 ( } O) H_{3} } (NO_{2} } ) (NO_{2})_{3} } (H } )", "It was discovered in 1847 by Dr. Sobrero, a pupil of Pelouze.", "Kopp prepares nitro glycerin by mixing 3 parts of sulphuric acid, of sp. gr. of 1·767, with 1 part of fuming nitric acid. 2800 grammes of the mixed acids are added to 350 grammes of glycerin, great care being necessary to avoid any elevation of temperature, which would lead to a violent reaction, resulting in the conversion of the glycerin into oxalic acid.", "After standing 5 or 10 minutes, the mixture is poured into four or six times its bulk of very cold water to which a rotatory motion has been imparted. The nitro-glycerin falls to the bottom of the vessel as an oily-looking liquid, which is washed by decantation. The manufacture of nitro-glycerin is attended with considerable danger, since very slight friction or pressure is sufficient to determine its explosion. Hence many methods have been suggested for guarding against accidents from it during storage. One of these consists in mixing it with finely powdered glass.", "Wurtz advises the nitro-glycerin to be mixed with solutions of nitrate of lime, zinc, or magnesia, the solutions to have a sp. gr. equal to the nitro-glycerin. By this means a harmless emulsion would be formed, and the nitro-glycerin would be recoverable when required for use by simply adding water. Nobel’s plan consists in dissolving it in wood spirit.", "_Prop._ Nitro-glycerin is a fluid of a yellow or brownish colour, having a sp. gr. of 1·6. It dissolves in alcohol, ether, and wood naphtha, from all of which it may be recovered by the addition of water. Dissolved in either of these solutions it becomes converted into a crystalline mass when exposed to a low temperature. If subjected to a blow it explodes with fearful violence, a single drop placed upon paper, and struck upon an anvil, giving rise to a report that is almost deafening. Neither a spark nor the application of a lighted body is said to cause its ignition, which takes place with difficulty even if it be applied to a thin layer of the substance. 100 parts of nitro-glycerin yield on combustion:", "Water 20 parts. Carbonic acid 58 ” Oxygen 3·5 ” Nitrogen 18·5 ” —————— 100·0[48]", "[Footnote 48: Wagner.]", "As the specific gravity of nitro-glycerin is 1·6, one part by bulk will yield by combustion:——", "Aqueous vapour 554 volumes. Carbonic acid 469 ” Oxygen 39 ” Nitrogen 236 ” —————— 1298[48] ”", "Other experimenters affirm that, instead of free oxygen, nitrous oxide is one of the products of the combustion of nitro-glycerin. According to Nobel the heat liberated when nitro-glycerin is exploded, causes the expansion of the gases to be eight times their original bulk; therefore, one volume of the substance will yield 10,384 volumes of gas, whilst one part by bulk of gunpowder only yields 800 volumes of gas. If these data be correct the explosive force of nitro-glycerin is thirteen times greater than that of powder, bulk for bulk, and eight times greater weight for weight.", "Böttger has devised a process for the preparation of nitro-glycerin, which being, as he affirms, entirely free from danger, adapts it for lecture experiments:——A few grains of pure glycerin, free from water, is poured into a test-tube, which is surrounded by a freezing mixture, and containing a mixture of one volume of the most concentrated nitric acid (1·52 sp. gr.), and two volumes of the strongest sulphuric acid (1·83 sp. gr.). Then, as quickly as possible, the whole is poured into a larger quantity of cold water. The nitro-glycerin, which has formed like oil drops, sinks rapidly to the bottom, being specifically the heavier liquid. It is then washed several times by decantation with fresh water, and, lastly, with a weak solution of soda.", "Remove the water with a few pieces of fused chloride of calcium. Then the nitro-glycerin is in such purity that it may, without danger, be kept any length of time for lecture experiments.", "NITRO-HYDROCHLO′RIC ACID.= _Syn._ NITRO-MURIATIC ACID; AQUA REGIA, ACIDUM NITRO-HYDROCHLORICUM (B. P.), A NITRO-MURIATICUM, L.; EAU RÉGALE, Fr. _Prep._ 1. (B. P.) Nitric acid, 3; hydrochloric acid, 4; water, 25. Mix the acids twenty-four hours before adding the water. (This precaution is necessary to allow of the development of the chlorine, and the chloronitrous and chloronitric gases which result from the mutual decomposition of the two acids, and upon which the therapeutic activity of the agent depends). Colourless. Keep the mixture in a cool and dark place.", "2. (Ph. D. 1826). Nitric acid, 1 part; hydrochloric acid, 2 parts (both by measure); mix in a refrigerated bottle, and keep the mixture in a cold and dark place. Used to dissolve gold and platinum; and in medicine, in liver complaints, syphilis, the exanthemata, &c., either externally, in doses of 5 to 15 drops in water, or externally, as a foot- or knee-bath. It is also occasionally employed as a caustic.", "3. (AQUA REGIA WITH SAL AMMONIAC.) Nitric acid (sp. gr. 1·2), 16 fl. oz.; sal ammoniac, 4 oz.; dissolve. Occasionally used by dyers; does not keep well.", "4. (DYERS’ AQUAFORTIS.) Colourless nitric acid (sp. gr. 1·17), 10 lbs.; hydrochloric acid (sp. gr. 1·19), 1 lb.; mix. Used by dyers.", "NITRO-PRUS′SIDES.= A series of salts discovered by Dr Playfair, and obtained by the action of nitric acid on the ferrocyanides and ferridcyanides. The most important of these salts is the nitroprusside of sodium (NA_{2} (NO) FeCy_{5}. 2Aq.). _Prep._ Dissolve 2 parts of powdered ferrocyanide of sodium in 5 parts of common nitric acid, previously diluted with its own volume of water. When the evolution of gas has ceased, digest the solution on a water bath until it no longer yields a blue but slate-coloured precipitate with ferrous sulphate. Cool the liquid, filter, neutralise the filtrate with carbonate of sodium, and again filter. This filtrate, on evaporation, yields crystals consisting of a mixture of nitro-prusside of sodium and nitrate of potassium; the former, which may be recognised by their rhombic shape and their fine ruling colour, should be picked out and preserved.——_Use._ As a test for soluble sulphides, with which nitro-prusside of sodium strikes a beautiful violet tint. According to Playfair this is the most delicate test for alkaline sulphides.", "NI′TROUS ACID.= HNO_{2} See NITROUS ANHYDRIDE, under NITROGEN, OXIDES OF.", "NITROUS OXIDE.= See NITROGEN, OXIDES OF.", "NODE.= _Syn._ NODUS, L. A hard tumour proceeding from a bone, and caused by the swelling of its external membrane. The bones of the leg, forehead, and forearm, are those most commonly attacked. Nodes are generally accompanied with considerable pain, and often with caries and loss of vitality.", "NOLI ME TANGERE.= See LUPUS.", "NOMENCLATURE (Chemical).= The following information will doubtless prove useful to many of our readers, as serving to explain terms which are necessarily of frequent occurrence in this work:", "ACIDS.——_a._ When a substance produces only one acid compound, the name of this acid is formed by adding the termination -IC to that of the radical, or to the leading or characteristic portion of it; as sulphuric acid, an acid of sulphur. This is Latinised by changing -IC into -ICUM; as, _acidum, sulphur_ICUM.——_b._ When a body forms two acid compounds containing oxygen, the name of the one containing the smaller proportion of that substance ends in -OUS; as _nitr_OUS acid, which contains 1 atom of nitrogen and 2 of oxygen; _nitr_IC acid, containing 1 atom of nitrogen and 3 of oxygen. In this case the Latin name ends in -OSUM; as, _acidum nitr_OSUM.——_c._ When a substance forms more than two acids with oxygen, the Greek preposition HYPO- (below or under) is prefixed to the name of the acid in -OUS or -IC next above it; as, HYPO_chlorous acid_.——_d._ When a new acid compound of a substance is discovered, containing more oxygen than another acid of the same substances already known, the name of which ends in -IC, the prefix PER- or HYPER- is added; as, PER_iodic acid_. This may be illustrated by the oxygen acids of chlorine:——", "Hypochlorous acid (_acidum hypochlorosum_) HClO Chlorous ” ( ” _chlorosum_) HClO_{2} Chloric ” ( ” _chloricum_) HClO_{3} Perchloric or} Hyperchloric } ” ( ” _perchloricum_) HClO_{4}", "OXIDES.= The names of these have, in general, reference to the number of atoms of oxygen which they contain. When a metal forms only one basic compound with oxygen, this compound is simply called the oxide of such base; but as most substances form more than one compound with oxygen, certain prefixes are introduced to express the proportions. In such cases it is generally found that one out of the number has a strongly marked basic character, and contains 1 atom of each of its constituents. This is called the oxide, protoxide, or monoxide, and forms the standard to which those both above and below it are preferred. Thus, supposing M to be the metal, we may have:——", "Suboxide or dioxide (_suboxydum_, _dioxydum_) M_{2}O Oxide, protoxide, or monoxide (_oxydum_, _protoxydum_) MO Sesquioxide (_sesquioxydum_) M_{2}O_{3} Binoxide, dioxide, or deutoxide (_binoxydum_, _deutoxydum_) MO_{2} Teroxide or trioxide (_teroxydum_, _tritoxydum_) MO_{3} {That containing {the _largest_ Peroxide (_peroxydum_) {proportion of {oxygen.", "SALTS.——_a._ Acids having names ending in -IC give rise to salts whose names end in ATE; thus _nitr_IC acid yields _nitr_ATES, e.g. _nitrate of silver_. -ATE is Latinised by -AS, e.g. _nitrate of silver_ becomes _argenti nitr_AS.", "_b._ Acids possessing names ending in -OUS form salts having names ending in -ITE; thus _sulphur_OUS _acid_ produces _sulph_ITES, e.g. _sulphite of sodium_. -ITE is Latinised by -IS; e.g. _sulphite of sodium_ becomes _sulph_IS.", "_c._ The preceding names are presumed to refer to neutral compounds. In _acid_ salts the prefixes noticed above are added to express the preponderance of the acid radical over the metal. KHSO_{4} is called _acid sulphate of potassium_, BI_sulphate of potassium_, or BI_sulphate of potash_, the neutral sulphate being K_{2}SO_{4}.", "_d._ In _basic_ salts, or those in which the metal is in excess of the acid radical, the prefixes -SUB and -DI are employed; _e.g._ the formula of _neutral_ acetate of lead is PbĀ_{2}. This salt, when boiled with oxide of lead (a base), furnishes [PbĀ_{2}PbO] and [PbĀ_{2}2PbO]. They are both, therefore, _basic_ acetates; and to distinguish one from the other the former is called DI_acetate_ and the latter TRI_acetate_ of lead; _-di_ referring to the presence of two atoms of lead and _-tri_ to three.", "Formerly the salts of the metals of the alkalies and alkaline earths received names which indicated the existence in them of the oxides of such metals. Thus, the terms carbonate of soda, nitrate of potash, carbonate of lime, sulphate of magnesia, names by which these fluids are still designated by some chemists are now substituted by the more systematic and less speculative names of carbonate of sodium, nitrate of potassium, carbonate of calcium, and sulphate of magnesium. Another, and in the opinion of the editor, a still better system of nomenclature is that in which the metallic or basic radical is mentioned first; _e.g._ calcium sulphate instead of sulphate of calcium, ammonium chloride for chloride of ammonium. When the _same_ radicals form more than one series of salts, each series is distinguished by appending the terminations -IC and -OUS to that part of the name which refer to the basic radical; _e.g._ _mercur_OUS _chloride_ (HgCl), _mercur_IC _chloride_(HgCl_{2}); _ferr_OUS _sulphate_ (FeSO_{4}), _ferr_IC _sulphate_(Fe_{2}(SO_{4})_{3}).", "NON-METALLIC BODIES, &c. The names of the compounds formed by the union of the non-metallic elements, and certain other bodies, with the metals and with each other, either terminate in -IDE, Latinised by -IDUM, or in -URET, Latinised by -URETUM; as, _arsen_IDE or _arseni_URET (_arsen_IDUM, _arseni_URETUM), _brom_IDE, _carb_IDE or _carb_URET, _chlor_IDE, _cyan_IDE _fluor_IDE, _hydr_IDE, _iod_IDE, _sulph_IDE or _sulph_URET, &c. The first of these terminations now prevails among English scientific chemists. The prefixes already noticed are also employed here.", "METALS. The names of the metals (those of them, at least, that have been given during the present century) end in -IUM or (less frequently) in -UM; as _potass_IUM, _sod_IUM, _platin_UM. The Latin names of several of the non-metallic elementary bodies also end in -IUM; as, _iodin_IUM, _nitrogen_IUM, &c.", "ALKALOIDS. The names of the organic bases which resemble the alkalies in their properties end either in -IA, -NA, or -INE; as, _morph_IA, _qui_NA, _strychn_INE. These terminations are now limited, as much as possible, to substances exhibiting basic properties, but were formerly very loosely applied.", "Many chemists reject the first two terminations, and apply -INE to every substance of this class; as, _morph_INE, _quin_INE, _anil_INE, &c.", "OTHER ORGANIC SUBSTANCES. The names of organic radicles generally terminate in -YL; as, _eth_YL, _meth_YL, _benz_OYL, &c.; they mostly contain carbon, hydrogen, and oxygen. Compounds corresponding to the electro-negative elements have the termination -OGEN, as _cyan_OGEN, _amid_OGEN. Neutral compounds of carbon and hydrogen, mostly liquid, have the termination -OL, or -OLE; as, _benz_OL, _pyr_OLE. Other neutral substances, generally solid, have the termination -IN; as, _paraff_IN, _naphthal_IN. Compounds resembling ammonia, and generally considered as ‘substitution compounds’ of that body, terminate in -AMINE; as, _ethyl_AMINE, _propyl_AMINE.", "The Latin genitive or possessive of the above compounds in——", "-as is -atis -is ” -itis -icum ” -ici -osum ” -osi -idum ” -idi -etum ” -eti -ium ” -ii -um ” -i -ia } -a } ” -æ -na }", "_Ex._ Acetas (acetate), acetatis of acetate; arsenis, arsenitis; citricum, citrici; arseniosum, arseniosi; iodidum, iodidi; sulphuretum, sulphureti; sodium, sodii; platinum, platini; morphia, morphiæ; quina, quinæ; narcotina, narcotinæ. The genitives of common names vary with the termination. Most of those ending in -a make æ, and most of those in -us and -um make -i; but there are many exceptions, among which cornu (a horn) and spiritus (spirit) which are unaltered in the genitive singular, may be mentioned as examples.", "NORFOLK FLUID.= _Prep._ Take of linseed oil, 3 pints; black resin, 1/2 lb.; yellow wax, 12 oz.; melt, and add, of neat’s-foot oil, 1 quart; oil of turpentine, 1 pint. Used to preserve and soften leather.", "NOR′IUM.= An unexamined metal, the oxide of which, according to Svanberg, exists in certain varieties of ZIRCON.", "NOS′TRUMS.= See PATENT MEDICINES, &c.", "NOTICES.= The following sections of the Public Health Act refer to serving and delivery of notices under that Statute:", "(S. 266.) Notices, orders, and other such documents under the Public Health Act may be in writing or print, or partly in writing and partly in print; and if the same require authentication by the local authority, the signature thereof by the clerk to the local authority or their surveyor or inspector of nuisances shall be sufficient authentication.", "(S. 267.) Notices, orders, or any other documents required or authorised to be served under the said Act may be served by delivering the same to or at the residence of the person to whom they are respectively addressed, or where addressed to the owner or occupier of premises, by delivering the same or a true copy thereof to some person on the premises, or if there is no person on the premises who can be so served, by fixing the same on some conspicuous part of the premises; they may also be served by post by a prepaid letter, and if served by post shall be deemed to have been served at the time when the letter containing the same would have been delivered in the ordinary course of post, and in proving such service it shall be sufficient to prove that the notice, order, or other document was properly addressed and put into the post.", "Any notice required to be given to the owner or occupier of any premises may be addressed by the description of the ‘owner’ or ‘occupier’ of the premises (naming them) in respect of which the notice is given, without further name or description.", "_Enforcing the Drainage of Houses._", "(S. 23.) Notice is to be given to the owner or occupier, but in case of the failure of either to comply, and the authority having to do the work, the expenses fall on the owner.", "_Insufficient Privy Accommodation._", "(SS. 36 and 37.) The same procedure as under the above section.", "_The Cleansing and Whitewashing of Houses._", "(S. 46.) Notice to the owner or occupier.——", "The person on whom the notice is served is liable to a penalty if it is not complied with.", "_The Removal of Manure or Filth, &c., in an Urban District._", "(S. 49.) Notice to be served on the person to whom the manure belongs, or to the occupier of the premises whereon it exists. If the urban authority have to remove it themselves, the expense of removal falls upon the owner of the manure, &c., or the occupier of the premises, or where there is no occupier, the owner of the premises.", "_In the case of Nuisances._", "(S. 94.) Notice is to be served upon the person causing or permitting the nuisance to remain, or, if he cannot be found, on the owner or occupier of the premises on which the nuisance arises; but if the nuisance arises from the want or defective construction of any structural convenience, or where there is no occupier, notice is to be served on the owner.", "_In the case of Houses, &c., requiring Disinfection._", "(S. 120.) Notice is to be given to the owner or occupier, and in case of non-compliance, the person on whom the notice is served is liable to penalties, and the expenses of the authority doing the necessary works falls upon that person (with certain exceptions, in case of poverty).", "NOVAR′GENT.= _Prep._ From recently precipitated chloride of silver by dissolving it in a solution of either hyposulphite of sodium or of cyanide of potassium. Used chiefly to restore old plated goods. The liquid is rubbed over the metal to be coated with a little prepared chalk, and the part is afterwards polished off with a piece of soft leather. A powder recently sold under the same name is formed by mixing the preceding article with chalk, and drying the mass. It is made into a paste with a little water, spirit of wine, or gin, before applying it.", "NOVAUR′UM.= From a solution of neutral trichloride of gold, as the last.", "NOYAU.= _Syn._ CRÈME DE NOYAU. This is a pleasant nutty-tasted liqueur; but from the large proportion of prussic acid which it contains, a small quantity only should be taken at a time.", "_Prep._ 1. Bitter almonds (bruised), 3 oz.; spirit (22 u. p.), 1 quart; sugar, 1 lb.; (dissolved in) water, 3/4 pint; macerate for 10 days, frequently shaking the vessel; then allow it to repose for a few days, and decant the clear portion.", "2. As the last, but substituting apricot or peach kernels (with the shells, bruised), for the almonds.", "3. To either of the above, add of coriander seed and ginger, of each, bruised, 1 dr.; mace and cinnamon, of each 1/2 dr.", "4. (Wholesale.) To plain cordial, at 54 to 60 u. p., containing 3 lbs. of sugar per gallon, add, gradually, essence of bitter almonds, q. s. to flavour.", "5. (CRÊME DE NOYAU DE MARTINIQUE.) Loaf sugar, 24 lbs.; water, 2-1/2 galls.; dissolve, add, of proof spirit, 5 galls.; orange-flower water, 3 pints; bitter almonds (bruised), 1 lb.; essence of lemons, 2 dr.; as above. See LIQUEURS.", "NUISANCE.= The following are the chief clauses of the Public Health Act respecting nuisances:", "_Definition of Nuisances._", "1. Any premises in such a state as to be a nuisance or injurious to health.", "2. Any pool, ditch, gutter, water-course, privy, urinal, cesspool, drain, or ashpit, so foul as to be a nuisance or injurious to health.", "3. Any animal so kept as to be a nuisance or injurious to health.", "4. Any accumulation or deposit which is a nuisance or injurious to health.", "5. Any house, or part of a house, so overcrowded as to be dangerous or injurious to the health of the inmates, whether or not members of the same family.", "6. Any factory, workshop, or workplace (not already under the operation of any general Act for the regulation of factories or bakehouses) not kept in a cleanly state, or not ventilated in such a manner as to render harmless as far as practicable any gases, vapours, dust, or other impurities generated in the course of the work carried on therein that are a nuisance or injurious to health, or so overcrowded while work is carried on as to be dangerous and injurious to the health of those employed therein.", "7. Any fireplace or furnace which does not, as far as practicable, consume the smoke arising from the combustible used in such fireplace or furnace, and is used for working engines by steam, or in any mill, factory, dye-house, brewery, bakehouse, or gaswork, or in any manufacturing or trade process whatsoever; and——", "Any chimney (not being the chimney of a private dwelling-house) sending forth black smoke in such quantity as to be a nuisance;", "Shall be deemed to be nuisances liable to be dealt with summarily under the Public Health Act: Provided——", "First. That a penalty shall not be imposed on any person in respect of any accumulation or deposit necessary for the effectual carrying on any business or manufacture, if it be proved to the satisfaction of the court that the accumulation or deposit has not been kept longer than is necessary for the purposes of the business or manufacture, and that the best available means have been taken for preventing injury thereby to the public health.", "Secondly. That where a person is summoned before any court in respect of a nuisance arising from a fireplace or furnace which does not consume the smoke arising from the combustible used in such fireplace or furnace, the court may hold that no nuisance is created within the meaning of this Act, and dismiss the complaint, if it is satisfied that such fireplace or furnace is constructed in such a manner as to consume as far as practicable, having regard to the nature of the manufacture or trade, all smoke arising therefrom, and that such fireplace or furnace has been carefully attended to by the person having the charge thereof. (P. H., s. 91.)", "The Act also defines and specifies:——1. The duty and powers of a local authority to inspect a district with the view to an abatement of any nuisance. 2. The process of information to be pursued in representing a nuisance to any local authority. 3. Procedure on failing to comply with notice. 4. The power of the court to make an order dealing with such nuisance. 5. The penalty for neglecting to obey such order. 6. The power of complaint by private individuals. 7. The power of the police to proceed in certain cases. 8. The cost and expense of executing the provisions relating to nuisances. 9. The power of sale of manure, &c. 10. The supervision of nuisances caused by drains, privies &c. 11. The proceedings to be taken in certain cases against nuisances in ships, &c.", "NUR′SING.= Milk is the natural food of the mammalia during the earlier period of their existence. It contains all that is necessary for the nourishment of their bodies, and on it they thrive and grow. Its secretion only actively commences at the time when it is required for the sustenance of the offspring, and it either materially lessens in quantity, or wholly disappears, as soon as the necessity of its existence has passed away, and the little being who depended on it has acquired sufficient age and strength to exist on cruder aliment. The nursing mother, when in a state of perfect health, and properly supplied with a sufficiency, without excess, of nutritious food, elaborates this secretion in the fittest condition to ensure the health and vigour of her offspring. Her bosom is the fountain whence flows the beauty and stamina of the future adult, and whilst giving strength and life to another, she increases and prolongs her own.", "The milk of woman varies with the food, health, age, &c., of the nurse. That produced from a mixed animal and vegetable diet, neither acesces nor coagulates spontaneously, like cows’ milk; and when gently evaporated in an open vessel, “the last drop continues thin, sweet, and bland.” Acids and rennet, however, coagulate it readily, and so does the gastric juice of the infant, as shown by the condition in which it is often ejected by the latter. The milk of a woman who lives wholly on vegetable food acesces and coagulates with equal readiness and in a precisely similar manner to cows’ milk. The quality of the milk also varies with the progress of the digestion. Within the first hour or two after a meal it is thin and serous, and then gradually improves in richness and flavour, until at about the fourth or fifth hour it possesses these qualities in the highest degree. This, then, is the period at which the infant should be applied to the breast, which, according to the present habits of society, would be during the hour immediately preceding each meal, except the breakfast. After about the fifth or sixth hour the milk gradually loses its peculiar colour and odour, until towards the tenth or twelfth hour after eating food it becomes yellowish, bitter, and often nauseous; and in this condition is frequently refused by the infant. This points out the impropriety of a nurse fasting longer than 4 to 5 hours, except during the night, when the period may be extended to 7 or 8 hours, but never longer. The time after accouchement is another matter that influences the character of human milk in respect of its wholesomeness for the infant. The milk secreted soon after delivery is very thin and serous, but in the course of a few days it becomes thicker, richer, and more nutritious; and a gradual change in the same direction proceeds during the usual period of suckling. When the mother suckles her own infant, or the “age of the milk,” as the nurses say, corresponds to that of the ", "NUT′MEG.= _Syn._ MYRISTICÆ NUCLEUS, NUCISTA, NUX MOSCHATA, N. MYRISTICA, N. AROMATICA, MYRISTICA (B. P., Ph. L.), L. “The shelled seed of _Myristica officinalis_ (Linn.; _M. moschata_——Thunberg),or nutmeg-tree.” It is chiefly used as a spice and condiment, but it is also esteemed as an aromatic in flatulency and diarrhœa.——_Dose_. Half a teaspoonful, or more, grated. The distilled and expressed oils (OLEUM MYRISTICÆ) are also officinal.", "Of the different varieties of nutmegs met with in commerce, those known as Penang are the most valuable. Next to these rank the Dutch or Batavian kind, and after these the Singapore nutmegs. In the Dutch or Batavian variety the exterior is composed of a number of white furrows, with brown projections, which aspect is caused by their having been dusted over with lime previous to their exportation. Besides the above, there is also a very inferior description, known as the long or wild nutmeg, which are met with either in the shell, out of the shell, or in the shell with the mace attached.", "Nutmegs are subject to the ravages of a worm which would seem to devour or destroy their aromatic principle, since when attacked by this parasite they lose both their odour and taste.", "In 100 parts sound nutmegs contain——", "Volatile oil 6·0 Liquid fat 7·6 Solid fat 24·0 Acid 0·8 Starch 2·4 Gum 1·2 Ligneous fibre 54·0 Loss 4·0 —————— 100·0 (BONASTRE.)", "NUTRI′′TION.= The phenomena of life are accompanied by the constant and unceasing waste of the materials of which the animal body is composed. Every act of volition, every exertion of muscular power, every functional action of the organism, whether perceptible or imperceptible and involuntary, every play of chemical affinity and decomposition, even thought itself, occasions the disorganisation and destruction, as living matter, of a portion of ourselves. But the process of respiration, and the various important changes with which it is connected, tends, more than all the other vital functions, to waste the substance of the body, the temperature of which it is its special office to support. This loss, this change, which commences with life and terminates only with death, is compensated for by the constant renewal of the whole frame by the deposition and assimilation, or organisation, of matter from the blood, which thus becomes gradually thinner and impoverished, unless, in its turn, it receives a corresponding supply of its vital elements. This it does from the food, which, by the functions of digestion, is converted into a ‘chyle,’ and after being taken up by the ‘lacteals,’ passes into the blood, of which it then becomes a part, and after being animalised and rendered similar to the being it is destined to nourish, by the peculiar action of the vital affinities, it attaches itself to those organs or tissues, the loss of which it is intended to supply. This constitutes nutrition.", "The food of animals, or, rather, the nutritious portion of that food on which we live, is wholly organic matter, and is either directly or indirectly produced by the powers of vegetation from the inorganic world. The plant elaborates food for the herbivora, and these, in their turn, serve as food for the flesh-eating animals. In both cases the leading alimentary principles are the same; the difference is in their proportions. Flesh is identical in composition with blood, and with the body of the animal that blood is destined to nourish. It abounds in albumen, casein, and fibrin. The vegetable substances used as food also contain nitrogenised principles of a precisely similar character and chemical constitution to those found in flesh, and which we are, therefore, bound to believe are absolutely the same. The gluten of wheat, when purified from gliadin, presents all the characteristics of pure fibrin. The albumen extracted from vegetable juices, when coagulated by heat, cannot be distinguished from the boiled white of egg in a divided condition. The legumen or vegetable casein of almonds, peas, beans, and many of the oily seeds, bears the most striking resemblance to the casein of milk. These facts clearly show that the leading nitrogenised principles of animal bodies pre-exist in vegetables, and that the substances employed as food must have the same, or nearly the same, chemical composition as the body itself. The striking contrast of animal and vegetable food, as far as this point is concerned, is more apparent than real. The actual difference between the two is to be found in the existence of a large quantity of non-nitrogenised matter (sugar, starch, &c.) in the last, which is not contained in the other——matter which abounds in carbon, and which, by its combustion in the system, serves to support the animal heat at a less sacrifice of the organic fabric. In the flesh-eating animal the waste of the organic tissues is very rapid, and the tax upon the vital energie", "The process of digestion is that by which the available portions of the food are reduced to a form adapted for absorption by the vessels by which it is introduced into the system. In the flesh-eating animal this process is extremely simple, and consists in the mere comminution of the food by the teeth, and its reduction to the liquid state in the stomach, after which, from the nature of its composition, it is nearly all taken up, and at once conveyed into the blood. In the herbivora, however, the process of digestion is much more complicated, and occupies a longer period. Besides the ordinary principles of flesh, their food contains starch, sugar, gum, &c., mixed with much inert vegetable fibre and other useless substances, from which it must be separated. The first of these supply materials for the waste and growth of the body, the second meet the requirements of respiration, and the last pass unaltered through the alimentary canal.", "The nature of the digestive process is not clearly established. The principal objects effected appear to be the conversion of starch, coagulated albumen, fibrin, casein, &c., into a liquid form. It is known that the saliva contains a peculiar principle (ptyalin) resembling diastase, capable of transmuting starch into sugar, and that when a little starch is held in the mouth for a short time this change actually occurs. It is also known that the gastric juice contains a peculiar organic principle named ‘pepsin,’ and that this substance, in conjunction with dilute hydrochloric acid, which is likewise present in the stomach, possesses the property of dissolving the albuminous principles of food. (See PEPSIN.) These changes occur whenever these conditions are established out of the body, and hence it is inferred that the process of digestion is effected by similar means. Of this, however, there is no direct evidence.", "The use of food, as already noticed, is twofold. It supplies the materials of nutrition to balance the waste of the tissues continually taking place in the body, and it conveys into the system those elements which, by their chemical combinations, produce heat. To effect this purpose in the most beneficial manner, the food should not only be sufficient in quantity, but the proportions of its nitrogenised and carbonaceous principles should bear such relations to each other as to amply meet the demands of the system for each, without the existence, however, of an undue excess of either.", "When the muscular movements of a healthy animal are restrained, a genial temperature kept up, and an ample supply of food containing much amylaceous or oily matter given, an accumulation of fat in the system rapidly takes place; this is well seen in the case of stall-fed cattle. On the other hand, when food is deficient, and much exercise is taken, emaciation results. These effects are ascribed to differences in the activity of the respiratory function. In the first instance, the heat-food is supplied faster than it is consumed, and hence accumulates in the form of fat; in the second, the conditions are reversed, and the creature is kept in a state of leanness by its rapid consumption. The fat of an animal appears to be the provision of nature for the maintenance of life during a certain period under circumstances of privation. Hence it is that a lean animal suffers more from cold than a fat one, and is also sooner starved.", "“The origin of fat in the animal body has recently been made the subject of much animated discussion; on the one hand, it was contended that satisfactory evidence exists of the conversion of starch and saccharine substances into fat, by separation of carbon and oxygen, the change somewhat resembling that of the vinous fermentation; it was argued, on the other side, that oily or fatty matter is invariably present in the food supplied to the domestic animals, and that this fat is merely absorbed and deposited in the body in a slightly modified state. The question has now been decided in favour of the first of these views, which was enunciated by Professor Liebig, by the very chemist who formerly advocated the second opinion. By a series of very beautiful experiments, MM. Dumas and Milne-Edwards proved that bees exclusively feeding upon sugar were still capable of producing wax, which was pointed out as a veritable fact.”", "Professor Liebig divided the principles found in food into two classes:——plastic elements of nutrition, or flesh-and-blood-making principles; and elements of respiration, or those which, by their decomposition or combustion in the system, generate heat. They are as follows:——", "_Elements of Nutrition._ | _Elements of Respiration._ | (Plastic or Nitrogenous.) | (Heat-producing.) ———————— | ———————— Animal flesh | Fat Blood | Starch Vegetable albumen | Gum Vegetable casein | Cane sugar Vegetable fibrin | Grape sugar | Milk sugar | Pectin sugar | Alcohol", "This division is in the main warranted by fact, but, no doubt, the nitrogenous elements of food produce heat as well as the non-nitrogenous.", "NUX VOMICA.= _Syn._ KOOCHLA NUT, POISON N., VOMIT N.; NUCES VOMICÆ, NUX VOMICA (B. P., Ph., L., E., & D.), L. “The seed of _Strychnos Nux vomica_, Linn.” (Ph. L.), imported from the East Indies (B. P.). This drug is chiefly known as a violent excitant of the cerebro-spinal system. In small doses, frequently repeated, it is tonic, diuretic, and, occasionally, laxative; in slightly larger ones, it is emetic; and, in large doses, it is an energetic and fearful poison.——_Dose_, 1 to 3 gr.; in paralysis, nervous affections, impotence, chronic dysentery, chronic diarrhœa, &c. Its frequent use is said to render the system proof against the poison of serpents. See STRYCHNINE, its active principle.", "OAK.= The British oak is the _Quercus Robur_ of Linnæus, of which there are two varieties, _Q. peduncata_ and _Q. sessiflora_. The wood of the oak is more durable than that of any other tree, and “for at once supporting a weight, resisting a strain, and not splintering by a cannon shot, it is superior to every other kind.” It, nevertheless, “warps and twists much in drying; and, in seasoning, shrinks about 1-32nd of its width.” Foreign oak is less durable, but more brittle and workable. The bark (OAK BARK; QUERCÛS CORTEX, QUERCUS——B. P., Ph. L., E., & D.) is used as an astringent and febrifuge, in doses of 30 to 120 gr., frequently; an astringent decoction is also made of it, but its chief employment is in tanning leather. The peculiar appearance of old oak or ‘wainscoting’ is given to the new wood by exposing it, whilst very slightly damp, to the fumes of ammonia.", "OAT.= _Syn._ AVENA, L. The common cultivated oat is the _Avena sativa_ (Linn.), a graminaceous plant, of which there are several varieties, as the _Avena sativa alba_, or white oat; _A. s. nigra_, or black oat; the potato oat, &c. Other species are also cultivated, as _Avena nuda_ (Linn.), pilcorn, or naked oat; _A. strigosa_, or Spanish oat, &c. The seed (OATS; CARYOPSIDES, SEMINA AVENÆ CRUDA) form the common horse-corn of this country, but in the northern parts of the country it is extensively used as food for man. The husked grain constitutes GROATS, and its meal OATMEAL. The latter does not form a dough with water, as wheaten meal or flour does.", "Oats consist of from 24% to 28% of husk, and 74% to 78% of grain. According to M. Payen, they contain of starch, 60·59%; azotised matter, 14·39%; saccharine and gummy matter, 9·25%; fatty matter, 5·50%; cellulose, 7·60%; silica and saline matter, 3·25%. The husks contain between 6 and 7% of saline matter. (Prof. Norton.) The ash amounts to 2·18%, and consists of potassa and soda, 26·18%; lime, 5·95%; magnesia, 9·95%; oxide of iron, ·40%; phosphoric acid, 43·84%; sulphuric acid, 10·45%; chlorine,·26%; silica, 2·67%; alumina, ·06%. (Johnston.)", "The yield of oats is from 20 bushels per acre in poor soils, up to 60, 70, and even 80 bushels per acre in rich soils. The weight per bushel varies from 35 to 45 lbs., and the product in meal is about one half the weight of the oats.", "A large proportion of the oats given to horses passes off undigested. It has hence been proposed to prevent this loss, by either coarsely bruising them in a mill, or by pouring boiling water over them, and allowing them to macerate till cold, when they are to be given to the horses without straining off the water. It is stated on good authority that oats thus treated will not only fatten quicker, but go twice as far as without preparation. Oat bruisers are now manufactured by most agricultural implement makers.", "Under the microscope the oat is seen to consist of two or three envelopes; the outer being composed of longitudinal cells; the second obliquely transverse and not very clearly seen; in this, the cells are wanting in part or pass into the cells of the third coat; the third envelope consists of a layer, usually single, of cells, like wheat. Before the envelopes are searched for the husks must be removed. The starch-cells are small, many sided, and cohere into round composite bodies, which are very characteristic, and which, by pressure, may be divided into separate grains. A high power is necessary for the examination of these latter. The starch of the oat does not polarise light.", "OAT′MEAL.= _Syn._ AVENÆ FARINA, F. EX SEMINIBUS AVENÆ (Ph. D), L.", "Oatmeal is the grain of the oat deprived of the skin, kiln-dried, and afterwards ground. It is regarded as one of the most nutritious of our cereals, being rich in nitrogenous matter, fat, starch, and sugar. According to Letheby it contains in 100 parts:——", "Nitrogenous matter 12·6 Carbo-hydrates 63·8 Fatty matter 5·6 Saline matter 3·0 Water 15·0 —————— 100·0", "Kreusler has shown that the nitrogenous principle of oatmeal contains gluten-casein, a substance very similar to the legumin of peas and beans. Letheby points out that, although it contains more nutrient material than wheat, its higher price renders it less economical as an article of diet. Oatmeal forms the staple of the food of the farm labourer both in Scotland and in England, being consumed more largely by the Scotch than the English peasant. Scotch oatmeal is superior to English in nutritive value. Oatmeal, when mixed with water, does not possess sufficient tenacity to enable it to be made into bread. It can, however, be baked into excellent cakes, which, when made in Yorkshire, are leavened, and when in Scotland, unleavened.", "The qualities of indigestibility and a tendency to produce irritability of the bowels and skin, have been ascribed to oatmeal; before it was so prepared as to effectually remove from it the husk and hairs by efficient screening, it was in Scotland a frequent source of intestinal concretion. These concretions, the nature of which was unravelled by Dr Wollaston, consisted principally of phosphate of lime mixed with the hairs and husks of the oat.", "Of thirty samples of oatmeal examined by the ‘Lancet Sanitary Commissioner,’ no fewer than sixteen samples, or more than one half, were adulterated. The substance generally used for this purpose is barley meal, which is only half the price of oatmeal. Husks of barley, wheat, and of the oat itself, are also frequently used. Rice and maize are also sometimes added. That supplied to the army, navy, and the workhouses, was very commonly adulterated with whiting, plaster of Paris, or ground bones. The mineral sophisticant may be detected by the excess of ash, which should not exceed 2·36 per cent. These frauds are readily detected by the microscope.", "_Grits_ or _Groats_ are the decorticated grain of the oat, which when bruised or crushed constitute Embden groats. Flummery (known in Scotland as _sowans_) is made by steeping the husks of the grain in water, until they become slightly sour, the strained liquid being boiled down to the consistence of gruel. Oatmeal soon becomes sour and rancid. It should be purchased at such shops as have a quick sale for it. See ACARI, STIR-ABOUT.", "OBE′′SITY.= _Syn._ OBESITAS, POLYSARCA, L. Unhealthy or troublesome fatness or corpulency. Sometimes the secretion of fat, and its accumulation in the adipose membrane, is almost as rapid as that of water in anasarca; on which account some of the old writers have called obesity a dropsy of fat. Persons in easy circumstances, of indolent habits, who live freely, and who are of a cheerful and contented deposition, are those most liable to obesity. The treatment consists in the very gradual reduction of the diet, until it falls rather below the average quantity required by a healthy adult; the very gradual disuse of fermented liquors, more especially beer; the gradual abridgment of the time devoted to repose, until it does not exceed 5 or 6 hours; the employment of several hours daily in exercise in the open air, at first moderate, but increased day by day in energy, until it becomes laborious; and, lastly, arousing the mind from a state of lethargy to one of active or even harassing employment.", "In some cases the accumulation of fat has been enormous. Bright, of Maldon, weighed 728 lbs.; Daniel Lambert, of Leicester, 739 lbs.; a girl, 4 years old, noticed in the ‘Phil. Trans.,’ 1813, weighed 256 lbs.", "Persons affected with obesity are generally short-lived.", "OBSTRUCTION OF LOCAL AUTHORITY.= Various penalties are mentioned in different sections of the Public Health Act for the offence of obstructing officers, &c., representing the local authority, in carrying out the Act. The following section, which we select, deals with the subject generally:——", "Sec. 306. “Any person who wilfully obstructs any member of the local authority, or any person duly employed in the execution of this Act, or who destroys, pulls down, injures, or defaces any board on which any bye-law, notice, or other matter is inscribed, shall, if the same was put up by authority of the Local Government Board or of the local authority, be liable for every such offence to a penalty not exceeding £5.", "“Where the occupier of any premises prevents the owner thereof from obeying or carrying into effect any of the provisions of this Act, any justice, to whom application is made in this behalf, shall by order in writing require such occupier to permit the execution of any works required to be executed, provided that the same appear to such justice to be necessary for the purpose of obeying or carrying into effect the provisions of this Act; and if within 24 hours after the making of the order such occupier fails to comply therewith, he shall be liable to a penalty not exceeding £5 for every day during the continuance of such non-compliance.", "“If the occupier of any premises, when requested by or on behalf of the local authority to state the name of the owner of the premises occupied by him, refuses or wilfully omits to disclose, or wilfully misstates the same, he shall (unless he shows cause to the satisfaction of the court for his refusal) be liable to a penalty not exceeding £5.”", "O′CHRES.= These are native earthy compounds of clay, coloured with oxide of iron, with frequently a little chalk, or magnesia. The differences in the colour arise partly from the quantity of iron present, and partly from the state of oxidation in which the iron is found. Several varieties are known in commerce——BROWN OCHRE, FRENCH O., OXFORD O., RED O., ROMAN O., YELLOW O. All these, with the exception of the first and fourth, have a yellow colour. ARMENIAN BOLE, INDIAN RED, VENETIAN R., and SPANISH BROWN, are also ochres.", "All the ochres are darkened by calcination. The yellow ochres acquire a red or reddish-brown colour by this treatment. The pigment called ‘light red’ is thus prepared from yellow ochre.", "ODONTAL′GIA.= See TOOTHACHE.", "O′DORAMENTS.= _Syn._ ODORAMENTA, L. Substances employed in medicine on account of their odour. They differ from disinfectants, in only disguising, but not destroying, noxious vapours, &c. AMMONIA, STRONG VINEGAR, and PASTILLES, furnish the most familiar examples of this class of substances. See DISINFECTANTS, PERFUMES, &c.", "O′DOUR.= The emanation of an odoriferous or scent-giving body. See PERFUMES.", "ŒNAN′THIC ETHER.= See ETHER (Œnanthic).", "OFFIC′INAL.= _Syn._ OFFICINALIS, L. A term applied to substances or medicines ordered in the Pharmacopœia.", "OIL.= _Syn._ OLEUM, L.; HUILE, Fr. This name is given to numerous liquid or semi-liquid substances, expressed or drawn from animal or vegetable bodies; to various products of the distillation of bituminous minerals; and to several unctuous mixtures in perfumery and pharmacy. To facilitate reference, we have grouped the principal substances generally called ‘oils’ into classes, under the following heads:——OILS (Drying); OILS (Empyreumatic): OILS (Fixed); OILS (Medicated); OILS (Mineral); OILS (Mixed); OILS (Perfumed); OILS (Volatile). See these articles also _below_:——", "Oil, Consol′idated.= _Syn._ CAMPTICON, FACTITIOUS CAOUTCHOUC. A substance having most of the properties of india rubber, prepared by oxidising boiled linseed oil, or any other oil that hardens on exposure to the atmosphere. To obtain the solid oil, plates of glass are dipped into linseed oil, the films are then allowed to dry, and the process is repeated again and again until the plates are coated with many layers of perfectly oxidised oil. Instead of plates of glass, extensive surfaces of prepared cloth are employed when the manufacture is carried out on a large scale. The solid oil, having been scraped or peeled off the surfaces, is worked with a small proportion of shell-lac, by means of a mixing machine with hot rollers, until a material singularly like caoutchouc is produced. The consolidated oil can be rolled on to fabrics, so as to form a waterproof cloth, having the finish and flexibility of rubber-cloth. By the action of heat the consolidated oil may be converted into a hard substance resembling vulcanite and ebonite. Its useful applications appear to be very numerous, but its manufacture has not as yet made much progress.", "OIL-GAS.= A mixture of several gaseous hydrocarbons, obtained by passing common whale fat, resin, the heavy petroleum or shale oil, or the tarry residues left after the distillation of these two latter substances, or other cheap animal oil, through red-hot tubes, or by allowing it to fall in drops on red-hot stones or bricks arranged in an iron retort, or other suitable apparatus. The gas has great illuminating power, requires no purification, and is quite free from the ammoniacal and sulphur compounds which vitiate coal-gas. The sp. gr. of oil-gas varies with the heat employed in its production. It averages from 0·76 to 0·90, but it may rise as high as 1·1.", "The composition of coal gas, as given by Payen, is as follows:——", "+----------------------------+--------+-----------+ | | | Gas from | | |Oil Gas.| Petroleum | | | | residues. | +----------------------------+--------+-----------| | Olefiant gas and homologues| 22·5 | 17·4 | | Marsh gas | 50·3 | 58·3 | | Hydrogen | 7·7 | 24·3 | | Carbonic oxide | 15·5 | —— | | Nitrogen | 4·0 | —— | +----------------------------+--------+-----------+", "OILS (Drying).= All the fixed oils have an attraction more or less powerful for oxygen, and, by exposure to the air, they either become hard and resinous, or they only thicken slightly, and become sour and rancid. Those which exhibit the first property in a marked degree, as the oils of linseed, poppy, rape, and walnut, are called ‘drying oils,’ and are used as vehicles for colours in painting. The others are frequently termed ‘glutinous’ or ‘non-drying oils.’", "The resinifying or drying property of oils is greatly increased by boiling them, either alone or along with some litharge, sugar of lead, or white vitriol, when the product forms the ‘boiled oil’ or ‘drying oil’ (oleum desiccativum) of commerce. The efficacy of the process, according to Liebig, depends on the elimination of substances which impede the oxidation of the oil. The following formulæ are adopted for this purpose:——", "1. Linseed oil, 1 gall.; powdered litharge, 3/4 lb.; simmer, with frequent stirring, until a pellicle begins to form; remove the scum, and when it has become cold and has settled decant the clear portion. Dark coloured; used by house-painters.", "2. Linseed oil and water, of each 1 quart; white vitriol, in powder, 2 oz.; boil to dryness. Paler than the last.", "3. Pale linseed or nut oil, 1 pint; litharge or dry sulphate of lead, in fine powder, 2 oz.; mix, agitate frequently for 10 days, then set the bottle in the sun or a warm place to settle, and decant the clear portion. Very pale.", "4. Linseed oil, 100 galls.; calcined white vitriol (‘sulphate of zinc’), in fine powder, 7 lbs.; mix in a clean copper boiler, heat the whole to 285° Fahr., and keep it at that temperature, with constant stirring, for at least one hour; then allow it to cool, in 24 hours decant the clear portion, and in 3 or 4 weeks more rack it for use. Used for varnishes.", "5. (Liebig.) Sugar of lead, 1 lb., is dissolved in rain water, 1/2 gall.; litharge, in fine powder, 1 lb., is then added, and the mixture is gently simmered until only a whitish sediment remains; levigated litharge, 1 lb., is next diffused through linseed oil, 2-1/2 galls., and the mixture is gradually added to the lead solution, previously diluted with an equal bulk of water; the whole is now stirred together for some hours, with heat, and is, lastly, left to clear itself by exposure in a warm place. The lead solution which subsides from the oil may be used again for the same purpose, by dissolving in it another lb. of litharge, as before.", "6. (Wilks.) Into linseed oil, 236 galls., pour oil of vitriol, 6 or 7 lbs., and stir the two together for 3 hours; then add a mixture of fuller’s earth, 6 lbs., and hot lime, 14 lbs., and again stir for 3 hours; next put the whole into a copper, with an equal quantity of water, and boil for about 3 hours, lastly, withdraw the fire, and when the whole is cold, draw off the water, run the oil into any suitable vessel, and let it stand for a few weeks before using it. Patent.", "7. (‘Allg. Polytech. Zeitung.’) Binoxide of manganese (in coarse powder, but not dusty), 1 part; nut or linseed oil, 10 parts; mix, and keep the whole gently heated and frequently stirred for 24 to 36 hours, or until the oil begins to turn reddish. Recommended for zinc paint, but is equally adapted for other purposes for which boiled oil is employed.", "_Obs._ There is often a difficulty in obtaining the oils ‘bright’ after boiling or heating them with the lead solutions; t

Recipe sourced from gutenberg

Curious what else pairs well?

Use our flavor tools to explore molecular pairings, find substitutes, and discover novel combinations.