+The Full Radiator.+--We have assumed that a lamp-blacked surface is a
perfect absorber, and consequently a full radiator, but although it is
a very near approach to the ideal it is not absolutely perfect. No
actual surface is a perfectly full radiator, but the exact equivalent
of one has been obtained by an ingenious device. A hollow vessel which
is blackened on the inside has a small aperture through which the
radiation from the interior of the vessel can escape. If the vessel is
heated up, therefore, the small aperture may act as a radiator. The
radiation which emerges through the aperture from any small area on the
interior of the vessel is made up of two parts, one part which it
radiates itself, and the other part which it scatters back from the
radiation which it receives from the other parts of the interior of the
vessel. These two together are equal to the energy sent out by a full
radiator, and therefore the small aperture acts as a full radiator:
_e.g._ suppose the inner surface has an absorbing power of 90 per
cent., then it radiates 90 per cent. of the full radiation and absorbs
90 per cent. of the radiation coming up to it therefore scattering back
10 per cent. We have therefore coming from the inner surface 90 per
cent. {45} radiated and 10 per cent. scattered, and the radiated and
scattered together make 100 per cent.
[Illustration: FIG. 22.]
One form in which such radiators have been used is shown in section in
Fig. 22. A double walled cylindrical vessel of brass has a small hole,
_a_, in one end. Steam can be passed through the space between the
double walls, thus keeping the temperature of the inner surface at 100°
C. A screen with a hole in it just opposite to the hole in the vessel,
or rather several such screens, are placed in front of the vessel in
order to shield any measuring instrument from any radiation except that
emerging through the hole.
+The Full Absorber.+--In an exactly similar way an aperture in a hollow
vessel will act as a full absorber, for the fraction of the incident
radiation which is scattered on the inner surface again impinges on
another portion of the surface and so all is ultimately absorbed except
a minute fraction which is scattered out again through the aperture.
The variation in the heat radiated by a full radiator at different
temperatures forms a very important part of the study of radiation, and
a very large number of experiments and theoretical investigations have
been devoted to it. These investigations may be divided into two
sections: those concerned with the total quantity of heat radiated at
different temperatures and those concerned with the variation in the
character of the spectrum with varying temperatures.
{46}
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