ARE ATMOSPHERIC CO2 CONTENT AND PLEISTOCENE CLIMATE CONNECTED BY WIND-SPEED OVER A POLAR MEDITERRANEAN-SEA

被引:8
作者
KEIR, RS
机构
[1] GEOMAR, Forschungszentrum für Marine Geowissenschaften an der Universität zu Kiel, 24148 Kiel 14
关键词
D O I
10.1016/0921-8181(93)90063-T
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Dust and sea-salt records in polar ice cores indicate that the climate has been windier during ice-ages, and therefore the rate of gas exchange between the atmosphere and ocean should be greater in glacial periods. Increased gas exchange between the atmosphere and poleward-advected, sinking cold water due to higher wind speeds could make the solubility pump more efficient, and this would decrease atmospheric CO2. To illustrate how this might contribute to atmospheric CO2 change over the last 150 kyr, the marine Na-concentration in the Vostok ice core is used as a logarithmic proxy for relative wind speed, from which gas piston velocities relative to the present are estimated. The effect of the cold water piston velocity on atmospheric CO2 is then calculated according to an atmosphere-surface ocean box model. As a result, the solubility pump lowers atmospheric CO2 about 50 ppm during oxygen isotope stages 2-4 and about 40 ppm during stage 5a-d. Unlike various nutrient rearranging mechanisms, the solubility pump produces little fractionation of carbon isotopes between the surface and deep ocean. Combining wind-induced solubility and nutrient-based effects, using DELTAdeltaC-13 in deep-sea core V19-30 as a proxy of the latter, produces a record of atmospheric CO, which is similar to that observed in the Vostok ice core.
引用
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页码:59 / 68
页数:10
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