How the Atmosphere Influences Aridity
We live at the bottom of a gaseous envelope—the atmosphere—that is bound
gravitationally to the planet Earth. The circulation of our atmosphere
is a complex process because of the Earth’s rotation and the tilt of its
axis. The Earth’s axis is inclined 23½° from the ecliptic, the plane of
the Earth’s orbit around the Sun. Due to this inclination, vertical rays
of the Sun strike 23½° N. latitude, the Tropic of Cancer, at summer
solstice in late June. At winter solstice, the vertical rays strike 23½°
S. latitude, the Tropic of Capricorn. In the Northern Hemisphere, the
summer solstice day has the most daylight hours, and the winter solstice
has the fewest daylight hours each year. The tilt of the axis allows
differential heating of the Earth’s surface, which causes seasonal
changes in the global circulation.
[Illustration: The circulation pattern of the Earth’s atmosphere. Most
of the nonpolar deserts lie within the two trade winds belts.]
On a planetary scale, the circulation of air between the hot Equator and
the cold North and South Poles creates pressure belts that influence
weather. Air warmed by the Sun rises at the Equator, cools as it moves
toward the poles, descends as cold air over the poles, and warms again
as it moves over the surface of the Earth toward the Equator. This
simple pattern of atmospheric convection, however, is complicated by the
rotation of the Earth, which introduces the Coriolis Effect.
To appreciate the origin of this effect, consider the following. A stick
placed vertically in the ground at the North Pole would simply turn
around as the Earth rotates. A stick at the Equator would move in a
large circle of almost 40,000 kilometers with the Earth as it rotates.
The Coriolis Effect illustrates Newton’s first law of motion—a body in
motion will maintain its speed and direction of motion unless acted on
by some outside force. Thus, a wind travelling north from the equator
will maintain the velocity acquired at the equator while the Earth under
it is moving slower. This effect accounts for the generally east-west
direction of winds, or streams of air, on the Earth’s surface. Winds
blow between areas of different atmospheric pressures.
The Coriolis Effect influences the circulation pattern of the Earth’s
atmosphere. In the zone between about 30° N. and 30° S., the surface air
flows toward the Equator and the flow aloft is poleward. A low-pressure
area of calm, light variable winds near the equator is known to mariners
as the _doldrums_.
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.
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account