Lord Kelvin: An account of his scientific life and workGray, Andrew
Science
Lord Kelvin: An account of his scientific life and work
Gray, Andrew
Kelvin, William Thomson, Baron, 1824-1907
A year or two ago it was suggested by Professor Pickering, of Harvard,
that the fact that the outermost satellite of Saturn revolves in the
direction opposite to the planet's rotation, may be due to the fact that
originally Saturn rotated in the direction of the motion of this moon,
but inasmuch as his motion round the sun was opposite in direction to
his rotation, he was turned, so to speak, upside down, like the
gyrostat! The other satellites, it is suggested, were thrown off later,
as their revolution is direct. Professor Pickering refers to an
experiment (similar to that described above) which he gives as new.
Thomson had shown this experiment for many years, as an example of the
general discussion in "Thomson and Tait," and its theory had already
been explicitly published.[21]
Many other experiments with gyrostats used to be shown by Thomson to
visitors. Many of these are indicated in "Thomson and Tait." The earth's
precessional motion is a gyrostatic effect due to the differential
attraction of the sun, which tends to bring the plane of the equator
into coincidence with the ecliptic, and so alters the direction of the
axis of rotation. Old students will remember the balanced globe--with
inclined material axis rolling round a horizontal ring--by which the
kinematics of the motion could be studied, and the displacement of the
equinoxes on the ecliptic traced.
[Illustration: FIG. 16.]
Another example of the gyrostatic domination discussed in "Thomson and
Tait" is given in the very remarkable address entitled "A Kinetic Theory
of Matter," which Sir William Thomson delivered to Section A of the
British Association at Montreal, in 1884. Figure 16 shows an ordinary
double "coach spring," the upper and lower members of which carry two
hooked rods as shown. If the upper hook is attached to a fixed support,
and a weight is hung on the lower, the spring will be drawn out, and the
arrangement will be in equilibrium under a certain elongation. If the
weight be pulled down further and then left to itself, it will vibrate
up and down in a period depending upon the equilibrium elongation
produced by the weight. The same thing will happen if a spiral spring be
substituted for the coach spring. A spherical case, through which the
hooked rods pass freely, hides the internal parts from view.
[Illustration: FIG. 17.]
Figure 17 shows two hooked rods, as in the former case, attached by
swivels to two opposite corners of a frame formed of four rods jointed
together at their ends. Each of these is divided in the middle for the
insertion of a gyrostat, the axis of which is pivoted on the adjacent
ends of the two halves of the rod. A spherical case, indicated by the
circle, again hides the internal arrangement from inspection, but
permits the hooked rods to move freely up and down. The swivels allow
the frame, gyrostats and all, to be turned about the line of the hooks.
Public-domain text, read in full here on John Shaqi.
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