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Cascading Dynamics of the Hydrologic Cycle in California Explored through Observations and Model Simulations

机译:通过观察和模型模拟探索加利福尼亚水文周期的级联动态

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As drought occurs in a region it can have cascading effects through the water cycle. In this study, we explore the temporal co-evolution of various components of the hydrologic cycle in California from 2002 to 2018. We combine information from the Gravity Recovery and Climate Experiment (GRACE) satellites, the North American Land Data Assimilation System (NLDAS) suite of models, and the California Department of Water Resources (DWR) reservoir levels to analyze dynamics of Total Water Storage (TWS), soil moisture, snow pack, large reservoir storage, and ultimately, groundwater. For TWS, a trend of ?2 cm/yr is observed during the entire time period of our analysis; however, this rate increases to about ?5 cm/yr during drought periods (2006?2010 and 2012?2016). Results indicate that the majority of the loss in TWS is caused by groundwater depletion. Using proper error accounting, we are able to identify the start, the peak, and the ending of the drought periods for each individual water state variable in the study domain. We show that snow and soil moisture are impacted earlier and recover faster than surface water and groundwater. The annual and year-to-year dynamics shown in our results portray a clear cascading effect of the hydrologic cycle on the scale of 8?16 months.
机译:由于干旱发生在一个区域中,它可以通过水循环具有级联效应。在这项研究中,我们从2002年到2018年探讨了加利福尼亚州加利福尼亚水文周期的各种组成部分的时间共同演变。我们将信息与重力恢复和气候实验(Grace)卫星,北美土地数据同化系统(NLDAS)相结合套件套房,加州水资源部(DWR)水库水平分析全水储存(TWS),土壤水分,雪包,大型水库储存的动态,最终地下水。对于TWS,在我们分析的整个时间段期间观察到趋势?2厘米/年;然而,这种速率在干旱期间增加到5厘米/年(2006年?2010年和2012年?2016年)。结果表明,TWS的大部分损失是由地下水耗尽引起的。使用适当的错误计费,我们能够识别研究域中每个单独的水状态变量的干旱期的开始,峰值和结束。我们表明雪和土壤水分早先受到影响,恢复得比地表水和地下水快。我们的结果中显示的年度和年度和年度动态描绘了水文周期的明显级联效果,在8℃的范围内为16个月。

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