Astronomy Explained Upon Sir Isaac Newton's Principles: And made easy to those who have not studied mathematicsFerguson, James
Science
Astronomy Explained Upon Sir Isaac Newton's Principles: And made easy to those who have not studied mathematics
Ferguson, James
Astronomy -- Early works to 1800
[Sidenote: The dreadful effects that would ensue from their being
larger.]
166. These amazingly small particles, by striking upon our eyes, excite
in our minds the idea of light: and, if they were so large as the
smallest particles of matter discernible by our best microscopes,
instead of being serviceable to us, they would soon deprive us of sight
by the force arising from their immense velocity, which is above 164
thousand miles every second[35], or 1,230,000 times swifter than the
motion of a cannon bullet. And therefore, if the particles of light were
so large, that a million of them were equal in bulk to an ordinary grain
of land, we durst no more open our eyes to the light than suffer sand to
be shot point blank against them.
[Sidenote: How objects become visible to us.
PLATE II.]
167. When these small particles, flowing from the Sun or from a candle,
fall upon bodies, and are thereby reflected to our eyes, they excite in
us the idea of that body by forming it’s picture on the retina[36]. And
since bodies are visible on all sides, light must be reflected from them
in all directions.
[Sidenote: The rays of Light naturally move in straight lines.
A proof that they hinder not one another’s motions.]
168. A ray of light is a continued stream of these particles, flowing
from any visible body in straight lines. That they move in straight, and
not in crooked lines, unless they be refracted, is evident from bodies
not being visible if we endeavour to look at them through the bore of a
bended pipe; and from their ceasing to be seen by the interposition of
other bodies, as the fixed Stars by the interposition of the Moon and
Planets, and the Sun wholly or in part by the interposition of the Moon,
Mercury, or Venus. And that these rays do not interfere, or jostle one
another out of their ways, in flowing from different bodies all around,
is plain from the following Experiment. Make a little hole in a thin
plate of metal, and set the plate upright on a table, facing a row of
lighted candles standing by one another; then place a sheet of paper or
pasteboard at a little distance from the other side of the plate, and
the rays of all the candles, flowing through the hole, will form as many
specks of light on the paper as there are candles before the plate, each
speck as distinct and large, as if there were only one candle to cast
one speck; which shews that the rays are no hinderance to each other in
their motions, although they all cross in the hole.
[Sidenote: Fig. XI.
In what proportion light and heat decrease at any given
distance from the Sun.
PLATE II.]
Public-domain text, read in full here on John Shaqi.
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