Let us now consider the fourth and last movement, viz., the ascent of
the under current to the surface of the ocean at the equator. When
this cold under current reaches the equatorial regions, it ascends
to the surface to the point whence it originally started on its
circuit. What, then, lifts the water from the bottom of the equatorial
column to its top? This cannot be done directly, either by heat or
by gravity. When heat, for example, is applied to the bottom of a
vessel, the heated water at the bottom expands and, becoming lighter
than the water above, rises through it to the surface; but if the
heat be applied to the surface of the water instead of to the bottom,
the heat will not produce an ascending current. It will tend rather
to prevent such a current than to produce one—the reason being that
each successive layer of water will, on account of the heat applied,
become hotter and consequently lighter than the layer below it, and
colder and consequently heavier than the layer above it. It therefore
cannot ascend, because it is too heavy; nor can it descend, because
it is too light. But the sea in equatorial regions is heated from
above, and not from below; consequently the water at the bottom does
not rise to the surface at the equator in virtue of any heat which it
receives. A layer of water can never raise the temperature of a layer
below it to a higher temperature than itself; and since it cannot do
this, it cannot make the layer under it lighter than itself. That which
raises the water at the equator, according to Dr. Carpenter’s theory,
must be the downward pressure of the polar column. When water flows
down the slope from the equator to the pole, the polar column, as we
have seen, becomes too heavy and the equatorial column too light;
the former then sinks and the latter rises. It is the sinking of the
polar column which raises the equatorial one. When the polar column
descends, as much water is pressed in underneath the equatorial column
as is pressed from underneath the polar column. If one foot of water
is pressed from under the polar column, a foot of water is pressed in
under the equatorial column. Thus, when the polar column sinks a foot,
the equatorial column rises to the same extent. The equatorial water
continuing to flow down the slope, the polar column descends: a foot
of water is again pressed from underneath the polar column and a foot
pressed in under the equatorial. As foot after foot is thus removed
from the bottom of the polar column while it sinks, foot after foot is
pushed in under the equatorial column while it rises; so by this means
the water at the surface of the ocean in polar regions descends to
the bottom, and the water at the bottom in equatorial regions ascends
to the surface—the effect of solar heat and polar cold continuing, of
course, to maintain the surface of the ocean in equatorial regions at a
higher level than at the poles, and thus keeping up a constant state of
disturbed equilibrium.
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Elsewhere in the archive
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account