=106. Absorption of Solar Heat.=—The quantity of heat absorbed from the
sun by the earth is an important factor in the growth of vegetation. As
has been established in the physics of heat, a black surface, other
things being equal, will absorb a larger amount of heat than one of any
other color; so, other things being equal in the physical and chemical
composition of a soil, variations in the amount of organic matter
producing greater or less black coloration will affect the heat
absorption. Thus, black soils, in the conditions above mentioned, will
absorb more heat than lighter colored soils. As a result, the vegetation
in such soils gets an earlier start in the Spring and matures more
rapidly. As an illustration of this it may be noted that the black
prairie soils of Iowa produce uniformly crops of maize which are matured
before the early frosts, while crops grown on lighter soils much farther
South often suffer injury from that source.
DETERMINATION OF SPECIFIC HEAT.
=107. General Principles.=—The quantity of heat stored in any given
weight of soil is capable of being measured and compared with the
quantity stored in an equal weight of water at the same temperature. The
ease, however, with which disturbing influences operate during the
determination makes the manipulation somewhat difficult. The specific
heat of the containing vessels must be carefully determined. Fortunately
this has been done for most materials and the data thus obtained are
recorded in standard works on physics. The material operated on must be
protected from thermal influences from sources not controlled by the
experiment and even the heat of the operator’s body may often disturb
the conduct of the work. The general conditions which should control the
experiment as well as the details thereof are given in the following
method which, however, the ingenious analyst may profitably simplify.
=108. Method of Pfaundler.=—The process of estimating the specific heat
of soils by the method of mixture, is essentially that of Regnault and
is described as follows by Pfaundler[75].
The apparatus used is illustrated in Fig. 13.
A and A′ show the heating apparatus. It consists of a vessel of sheet
iron in which a test tube E is fixed by means of a cork. The test tube
holds the soil whose specific heat is to be determined. The apparatus
contains water, which is brought to the boiling point by means of a
lamp, and the excess of steam is conducted away, as indicated in the
figure, through one of the axes of the apparatus; the opposite axis is,
of course, closed. It requires about thirty-five minutes boiling to
bring the contents of the test tube to the temperature of the aqueous
vapor. The exact temperature at which the water boils is determined by
observing the barometer at the time and consulting a table of the
boiling temperature of water at different barometric pressures.
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