Sugar is not changed at low temperatures unless acid is
present. It melts at about 365 degrees and begins to
caramelize at about 420 degrees F. Sugar, boiled with
acid, changes slowly to glucose or non-crystallizing
sugar.
Cellulose itself is not affected by cooking, but the con-
necting substances are softened and it may be sepa-
rated.
vi LESSONS IN COOKING
Protein foods are hardened somewhat by heat. Albumen
coagulates completely at i6o degrees F. and will no
longer dissolve in water. Other proteins, as gluten
of flour, casein of milk, legiimen of peas and beans,
myosin of meat, are hardened somewhat.
Gelatin is formed from gristle and connecting tissue of
meat, and from bones, by long continued heating in
the presence of water.
Fat is not changed except at a high temperature, when it is
broken apart — "split" — into fatty acid and glycerine.
Some of the glycerine is changed into "acrolein" at
very high temperatures, 500° and over, which is very
irritating to the mucous membrane, as is recognized by
the smarting sensation given to the eyes and nose when
fats are overheated. Butter begins to "split" at about
256° F., lard at 360° F., beef suet at 440° F., cottolene
and snow drift at 450° F., especially prepared cotton-
seed oil and olive oil at 600° F.
Baking Powder^ a mixture of cooking soda and an acid
substance, as cream of tartar, or phosphates, or alum,
undergoes chemical change, whereby carbon dioxide
is set free and salts — as Rochelle salts, or phosphate,
or alumina compounds — are formed. The heat of the
oven expands the air or gas in the food, evaporates
part of the water and drives out volatile substances
like alcohol.
'All these changes are, for the most part, physical rather
than chemical in their nature. For example, in a cake after
baking, the sugar is still sugar, the starcn is still starch, the
fat is still fat, and the albumen is still albumen. All the
materials have been blended, flavors having been developed
through minor but complex chemical changes and a small
proportion of the starch and sugar in the crust have been
changed to dextrin and caramel.
TEMPERATURE AND TIME OF COOKING
All food materials are poor conductors of heat — it takes
time for the heat to penetrate.
The correct time and temperature depends on (i) what
TABLES AND DEFINITIONS vii
is to be accomplished, (2) size and thicknesses, i. e., the
extent of surface exposed to the heat, compared to the bulk.
Foods with a large proportion of eggs require low tem-
perature to prevent toughening.
Starch requires nearly the temperature of boiling water
for cooking.
No food containing much water can be raised to a tem-
perature above the boiling point— '-2 12 degrees F. Water
gives off vapor at all temperatures, but at 212 degrees F.
steam forms rapidly and in so doing absorbs a large quan-
tity of heat. No brown crust can be formed until the wa-
ter from the surface is nearly all evaporated. A full oven
in which much water vapor is being given off requires the
application of more heat than when only one or two dishes
are in it.
Page 3
Presented as published in 1912. Historical recipes may not meet modern food-safety standards. Cook from the modern interpretation, not the original instructions.
AI-modernized reading of the original text
Sugar is not changed at low temperatures unless acid is present. It melts at about 365 degrees and begins to caramelize at about 420 degrees F. Sugar, boiled with acid, changes slowly to glucose or non-crystallizing sugar.
Cellulose itself is not affected by cooking, but the connecting substances are softened and it may be separated.
Protein foods are hardened somewhat by heat. Albumen coagulates completely at i6o degrees F. and will no longer dissolve in water. Other proteins, as gluten of flour, casein of milk, legiimen of peas and beans, myosin of meat, are hardened somewhat.
Gelatin is formed from gristle and connecting tissue of meat, and from bones, by long continued heating in the presence of water.
Fat is not changed except at a high temperature, when it is broken apart — "split" — into fatty acid and glycerine. Some of the glycerine is changed into "acrolein" at very high temperatures, 500° and over, which is very irritating to the mucous membrane, as is recognized by the smarting sensation given to the eyes and nose when fats are overheated. Butter begins to "split" at about 256° F., lard at 360° F., beef suet at 440° F., cottolene and snow drift at 450° F., especially prepared cottonseed oil and olive oil at 600° F. Baking Powder^ a mixture of cooking soda and an acid substance, as cream of tartar, or phosphates, or alum, undergoes chemical change, whereby carbon dioxide is set free and salts — as Rochelle salts, or phosphate, or alumina compounds — are formed. The heat of the oven expands the air or gas in the food, evaporates part of the water and drives out volatile substances like alcohol. 'All these changes are, for the most part, physical rather than chemical in their nature. For example, in a cake after baking, the sugar is still sugar, the starcn is still starch, the fat is still fat, and the albumen is still albumen. All the materials have been blended, flavors having been developed through minor but complex chemical changes and a small proportion of the starch and sugar in the crust have been changed to dextrin and caramel.
TEMPERATURE AND TIME OF COOKING
All food materials are poor conductors of heat — it takes time for the heat to penetrate. The correct time and temperature depends on (i) what
TABLES AND DEFINITIONS vii
is to be accomplished, (2) size and thicknesses, i. e., the extent of surface exposed to the heat, compared to the bulk.
Foods with a large proportion of eggs require low temperature to prevent toughening.
Starch requires nearly the temperature of boiling water for cooking.
No food containing much water can be raised to a temperature above the boiling point— '-2 12 degrees F. Water gives off vapor at all temperatures, but at 212 degrees F. steam forms rapidly and in so doing absorbs a large quantity of heat. No brown crust can be formed until the water from the surface is nearly all evaporated. A full oven in which much water vapor is being given off requires the application of more heat than when only one or two dishes are in it.