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Rising Temperatures Increase Importance of Oceanic Evaporation as a Source for Continental Precipitation

机译:上升的温度将海洋蒸发的重要性增加为欧式降水的来源

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Understanding vulnerabilities of continental precipitation to changing climatic conditions is of critical importance to society at large. Terrestrial precipitation is fed by moisture originating as evaporation from oceans and from recycling of water evaporated from continental sources. In this study, continental precipitation and evaporation recycling processes in the Earth system model GFDL-ESM2G are shown to be consistent with estimates from two different reanalysis products. The GFDL-ESM2G simulations of historical and future climate also show that values of continental moisture recycling ratios were systematically higher in the past and will be lower in the future. Global mean recycling ratios decrease 2%-3% with each degree of temperature increase, indicating the increased importance of oceanic evaporation for continental precipitation. Theoretical arguments for recycling changes stem from increasing atmospheric temperatures and evaporative demand that drive increases in evaporation over oceans that are more rapid than those over land as a result of terrestrial soil moisture limitations. Simulated recycling changes are demonstrated to be consistent with these theoretical arguments. A simple prototype describing this theory effectively captures the zonal mean behavior of GFDL-ESM2G. Implications of such behavior are particularly serious in rain-fed agricultural regions where crop yields will become increasingly soil moisture limited.
机译:了解大陆降水对变化气候条件的脆弱性对社会的重要意义至关重要。陆地沉淀因来自海洋蒸发而且来自海洋的蒸发以及从欧洲来源蒸发的水循环而喂食。在本研究中,地球系统模型GFDL-ESM2G中的欧式沉淀和蒸发再循环过程被证明与两种不同的再分析产物的估计一致。历史和未来气候的GFDL-ESM2G模拟还表明,过去的陆地水分回收率的价值在系统上系统地高,将来会降低。全局平均回收率随着每种温度增加降低2%-3%,表明海洋蒸发对欧式沉淀的重要性增加。回收回收变化的理论争论随着陆地土壤水分限制而比陆地水分局限性更快的海洋蒸发蒸发增加,蒸发需求增加。模拟回收变更被证明与这些理论争论一致。描述该理论的简单原型有效地捕获GFDL-ESM2G的区域平均行为。这种行为的影响在雨喂养的农业区域中尤为严重,其中作物产量将变得越来越多的土壤水分限制。

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