Climatic Changes: Their Nature and CausesHuntington, Ellsworth
Science
Climatic Changes: Their Nature and Causes
Huntington, Ellsworth
Climatic changes; Climatology; Paleoclimatology
Suppose that the numbers in Fig. 8 represent the strength of the winds
in a certain part of the North Atlantic or North Pacific, that is, the
total number of miles moved by the air per year. In quadrant A of the
left-hand part all the winds move from a more or less southwesterly
direction and produce a total movement of the air amounting to thirty
units per year. Those coming from points between north and west move
twenty-five units; those between north and east, twenty units; and those
between east and south, twenty-five units. Since the movement of the
winds in quadrants B and D is the same, these winds have no effect in
producing currents. They merely move the water back and forth, and thus
give it time to lose whatever heat it has brought from more southerly
latitudes. On the other hand, since the easterly winds in quadrant C do
not wholly check the currents caused by the westerly winds of quadrant
A, the effective force of the westerly winds amounts to ten, or the
difference between a force of thirty in quadrant A and of twenty in
quadrant C. Hence the water is moved forward toward the northeast, as
shown by the thick part of arrow A.
[Illustration: _Fig. 8. Effect of diminution of storms on movement of
water._]
Now suppose that cyclonic storms should be greatly reduced in number so
that in the zone of prevailing westerlies they were scarcely more
numerous than tropical hurricanes now are in the trade-wind belt. Then
the more or less southwesterly winds in quadrant A' in the right-hand
part of Fig. 8 would not only become more frequent but would be stronger
than at present. The total movement from that quarter might rise to
sixty units, as indicated in the figure. In quadrants B' and D' the
movement would fall to fifteen and in quadrant C' to ten. B' and D'
would balance one another as before. The movement in A', however, would
exceed that in C' by fifty instead of ten. In other words, the
current-making force would become five times as great as now. The actual
effect would be increased still more, for the winds from the southwest
would be stronger as well as steadier if there were no storms. A strong
wind which causes whitecaps has much more power to drive the water
forward than a weaker wind which does not cause whitecaps. In a wave
without a whitecap the water returns to practically the original point
after completing a circle beneath the surface. In a wave with a
whitecap, however, the cap moves forward. Any increase in velocity
beyond the rate at which whitecaps are formed has a great influence upon
the amount of water which is blown forward. Several times as much water
is drifted forward by a persistent wind of twenty miles an hour as by a
ten-mile wind.[66]
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