Buffon's Natural History. Volume 10 (of 10): Containing a Theory of the Earth, a General History of Man, of the Brute Creation, and of Vegetables, Minerals, &c. &cBuffon, Georges Louis Leclerc, comte de
History
Buffon's Natural History. Volume 10 (of 10): Containing a Theory of the Earth, a General History of Man, of the Brute Creation, and of Vegetables, Minerals, &c. &c
Buffon, Georges Louis Leclerc, comte de
Natural history
This might lead us to imagine, that the atoms of light would be very
cold when they came to the surface of our atmosphere; but that by
traversing the great extent of this transparent mass, they receive a
new heat by friction. The infinite velocity with which the particles
of light rub against those of the air, must produce a heat so much the
stronger as the friction is more multiplied: and it is, probably, for
this reason, that the heat of the solar rays is found much stronger in
the lower parts of the atmosphere, and that the coldness of the air
appears to augment as we are elevated. Perhaps, likewise, as light
receives heat only by uniting, a great number of atoms of light is
required to constitute a single atom of heat, and this may be the
cause why the feeble light of the moon, although in the atmosphere,
like that of the sun, does not receive any sensible degree of heat.
If, as M. Bouguer says, the intensity of the light of the sun to
the surface of the earth is 300,000 times stronger than that of the
moon, the latter must be almost insensible, even by uniting it in the
focus of the most powerful burning glasses, which cannot condense it
more than 2000 times; subtracting the half of which for the loss by
reflexion or refraction, there remains only a 300dth part intensity to
the focus of the glass.
Thus, we must not infer that light can exist without any heat, but
only that the degrees of this heat are very different, according to
different circumstances, and always insensible when light is very weak.
Heat, on the contrary, seems to exist habitually, and even to cause
itself to be strongly felt without light; for in general it is only
when it becomes excessive, that light accompanies it. But the very
essential difference between these two modifications of matter is,
that heat, which penetrates all bodies, does not appear to fix in any
one, whereas light incorporates and extinguishes in all those which do
not reflect, or permit it to pass freely; heat bodies of all kinds
to any degree, in a very short time they will lose the acquired heat,
and return to the general temperature. If we receive light on black
or white bodies, rude or polished, it will easily be perceived, that
some admit, and others repel it; and that instead of being affected in
a uniform manner as they are by heat, they are only so relatively to
their nature, colour, and polish. Black will absorb more light than
white, and the rough more than the smooth. Light once absorbed remains
fixed in the body which received it, nor quits it like heat; whence
we must conclude, that atoms of light may become constituent parts of
bodies by uniting with the matter which composes them; whereas heat
not fixing at all, seems to prevent the union of every part of matter,
and only acts to keep them separate. Nevertheless, there are instances
where heat remains fixed in bodies, and others where the light they
have absorbed re-appears, and goes out like heat.
Public-domain text, read in full here on John Shaqi.
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