Popular Scientific Recreations: in Natural Philosphy, Astronomy, Geology, Chemistry, etc., etc., etc.Tissandier, Gaston
Science
Popular Scientific Recreations: in Natural Philosphy, Astronomy, Geology, Chemistry, etc., etc., etc.
Tissandier, Gaston
Scientific recreations
We said above that an increase of pressure will raise the boiling point
of water. Under the pressure of one atmosphere—that is, when there
is a pressure of 15 lbs. on the square inch—water boils at 212°. But
under a pressure of two atmospheres, the boiling point rises to 234°,
and of four atmospheres, 294°. So we see by increasing the pressure
the water may be almost indefinitely heated, and it will not boil. We
can understand that in a very deep vessel the layer of water at the
bottom has to sustain the pressure of the water in addition to the
weight of the atmosphere above it. The pressure of thirty-four feet of
water is equal to the atmospheric pressure of 15 lbs. on the square
inch, and thus at such a distance water must be heated to 234° before
it will boil. Professor Bunsen founded his Theory of the Geysers upon
this fact, for he maintained that water falling into the earth lost
much air, and required with the super-incumbent pressure a very high
temperature to boil it. When it did boil it generated steam so suddenly
that it exploded upwards, throwing up vapour and the water with it, as
water poured into a very hot basin will do.
_Evaporation_ may now be considered, and is distinguished from
Ebullition by the production of vapour on the _surface_ of liquids, the
latter term signifying the formation of vapour in _the body_ of the
liquid. Evaporation takes place at all temperatures, and from every
liquid surface exposed to the air. We know what we call a “drying
wind.” The air in fresh layers continually passing over the wet ground,
takes up the moisture; like the east wind, for instance, which has
great capabilities of that nature. Damp air can only take up a certain
quantity, and when it contains as much water as corresponds to the
temperature it can take no more, and is “saturated with moisture”;
then evaporation ceases. Heat is a great cause of evaporation, and
the greater the surface the more rapid the process, and in a vacuum
more readily than in atmospheric air. Evaporation is resorted to
very commonly to produce coolness; for instance, the universal fan,
by increasing evaporation from a heated skin, generates a feeling
of coolness; and we know the vaporization of ether will freeze into
insensibility. When a fluid evaporates we can tell that the heat passes
away at the same time, for we cool water in porous jars, which permit
some of it to pass off in vapour, the remainder being cooled.
Sir John Leslie invented a method of freezing water by rapid
evaporation on sulphuric acid under the receiver of an air-pump, and
water has been frozen even on a _hot plate_ by these means. By pouring
sulphurous acid and water on this plate, the acid evaporates so quickly
that it produces sufficient cold to freeze the water it quitted into
solid ice.
We leave the phenomena of clouds and watery vapour in the atmosphere
for consideration on another opportunity, under the head of
_Meteorology_, _Rain_, etc.
Public-domain text, read in full here on John Shaqi.
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