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Physical mechanism of spring and early summer drought over North America associated with the boreal warming

机译:北美春季和初夏干旱与北方变暖的物理机制

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Drought during the early vegetation growing season (spring through early summer) is a severe natural hazard in the large cropland over North America. Given the recent increasing severity of climate change manifested as surface warming, there has been a growing interest in how warming affects drought and the prospect of drought. Here we show the impact of boreal warming on the spring and early summer drought over North America using Cyclostationary Empirical Orthogonal Function analysis. Northern Hemispheric warming, the leading mode of the surface air temperature variability, has led to a decrease in precipitation, evaporation and moisture transport over the central plain of North America. From a quantitative assessment of atmospheric water budget, precipitation has decreased more than evaporation and moisture transport, resulting in increased (decreased) moisture in the lower troposphere (land surface). Despite the increased moisture content, relative humidity has decreased due to the increased saturation specific humidity arising from the lower-tropospheric warming. The anomaly patterns of the soil moisture and Palmer Drought Severity Index resemble that of the anomalous relative humidity. Results of the present study suggest a credible insight that drought in the main cropland will intensify if the anthropogenic warming continues, exacerbating vulnerability of drought.
机译:在北美早期的大片农田中,早期植被生长季节(春季至初夏)期间的干旱是严重的自然灾害。鉴于最近气候变化的严重性表现为地表变暖,人们对变暖如何影响干旱和干旱前景的兴趣日益浓厚。在这里,我们使用循环平稳经验正交函数分析显示了北半球变暖对北美春季和初夏干旱的影响。北半球变暖是地表空气温度变化的主导方式,导致北美中部平原的降水,蒸发和水分输送减少。通过对大气水预算的定量评估,降水减少的程度超过蒸发和水分输送的程度,从而导致对流层下部(陆地表面)的水分增加(减少)。尽管增加了水分含量,但由于对流层变暖导致的饱和比湿增加,相对湿度却降低了。土壤湿度和帕尔默干旱严重度指数的异常模式与异常相对湿度的异常模式相似。本研究结果表明,如果人为变暖持续下去,主要农田的干旱将会加剧,这加剧了干旱的脆弱性。

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