The Forms of Water in Clouds and Rivers, Ice and GlaciersTyndall, John
Science
The Forms of Water in Clouds and Rivers, Ice and Glaciers
Tyndall, John
Clouds; Glaciers; Ice; Rivers; Water
430. It is well to converge by means of a concave mirror a good light
upon the ice, and to view it through a magnifying lens. You already
see the result. Hazy surfaces are formed in the very body of the
ice, which gradually expand as the pressure is slowly augmented.
Here and there you notice something resembling crystallisation;
fern-shaped figures run with considerable rapidity through the ice,
and when you look carefully at their points and edges you find them
in visible motion. These hazy surfaces are spaces of liquefaction,
and the motion you see is that of the ice falling to water under the
pressure. That water is colder than the ice was before the pressure
was applied, and if the pressure be relieved, not only does the
liquefaction cease, but the water re-freezes. The cold produced by
its liquefaction under pressure is sufficient to re-congeal it when
the pressure is removed.
431. If instead of diffusing the pressure over surfaces of
considerable extent, we concentrate it on a small surface, the
liquefaction will of course be more rapid, and this is what Mr.
Bottomley has recently done in an experiment of singular beauty and
interest. Let us support on blocks of wood the two ends of a bar of
ice 10 inches long, 4 inches deep, and 3 wide, and let us loop over
its middle a copper wire one-twentieth, or even one-tenth, of an
inch in thickness. Connecting the two ends of the wire together, and
suspending from it a weight of 12 or 14 pounds, the whole pressure
of this weight is concentrated on the ice which supports the wire.
What is the consequence? The ice underneath the wire liquefies; the
water of liquefaction escapes round the wire, but the moment it is
relieved from the pressure it freezes, and round about the wire, even
before it has entered the ice, you have a frozen casing. The wire
continues to sink in the ice; the water incessantly escapes, freezing
as it does so behind the wire. In half an hour the weight falls; the
wire has gone clean through the ice. You can plainly see where it
has passed, but the two severed pieces of ice are so firmly frozen
together that they will break elsewhere as soon as along the surface
of regelation.
432. Another beautiful experiment bearing upon this point has
recently been made by M. Boussingault. He filled a hollow steel
cylinder with water and chilled it. In passing to ice, water, as you
know, expands (§ 45); in fact, room for expansion is a necessary
condition of solidification. But in the present case the strong
steel resisted the expansion, the water in consequence remaining
liquid at a temperature of more than 30° Fahr. below the ordinary
freezing point. A bullet within the cylinder rattled about at this
temperature, showing that the water was still liquid. On opening the
tap the liquid, relieved of the pressure, was instantly converted
into ice.
Public-domain text, read in full here on John Shaqi.
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