A Popular History of Astronomy During the Nineteenth Century: Fourth EditionClerke, Agnes M. (Agnes Mary)
History
A Popular History of Astronomy During the Nineteenth Century: Fourth Edition
Clerke, Agnes M. (Agnes Mary)
Astronomy -- History -- 19th century
The discovery that light does not travel instantaneously from point to
point, but takes some short time in transmission, was made by Olaus
Römer in 1675, through observing that the eclipses of Jupiter's
satellites invariably occurred later, when the earth was on the far
side, than when it was on the near side of its orbit. Half the
difference, or the time spent by a luminous vibration in crossing the
"mean radius" of the earth's orbit, is called the "light-equation"; and
the determination of its precise value has claimed the minute care
distinctive of modern astronomy. Delambre in 1792 made it 493 seconds.
Glasenapp, a Russian astronomer, raised the estimate in 1874 to 501,
Professor Harkness adopts a safe medium value of 498 seconds. Hence, if
we had any independent means of ascertaining how fast light travels, we
could tell at once how far off the sun is.
There is yet another way by which knowledge of the swiftness of light
would lead us straight to the goal. The heavenly bodies are perceived,
when carefully watched and measured, to be pushed forward out of their
true places, in the direction of the earth's motion, by a very minute
quantity. This effect (already adverted to) has been known since
Bradley's time as "aberration." It arises from a combination of the two
movements of the earth round the sun and of the light-waves through the
ether. If the earth stood still, or if light spent no time on the road
from the stars, such an effect would not exist. Its amount represents
the proportion between the velocities with which the earth and the
light-rays pursue their respective journeys. This proportion is,
roughly, one to ten thousand. So that here again, if we knew the rate
per second of luminous transmission, we should also know the rate per
second of the earth's movement, consequently the size of its orbit and
the distance of the sun.
But, until lately, instead of finding the distance of the sun from the
velocity of light, there has been no means of ascertaining the velocity
of light except through the imperfect knowledge possessed as to the
distance of the sun. The first successful terrestrial experiments on the
point date from 1849; and it is certainly no slight triumph of human
ingenuity to have taken rigorous account of the delay of a sunbeam in
flashing from one mirror to another. Fizeau led the way,[760] and he was
succeeded, after a few months, by Léon Foucault,[761] who, in 1862, had
so far perfected Wheatstone's method of revolving mirrors, as to be able
to announce with authority that light travelled slower, and that the sun
was in consequence nearer than had been supposed.[762] Thus a third line
of separate research was found to converge to the same point with the
two others.
Public-domain text, read in full here on John Shaqi.
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