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Propagation dynamics from meteorological to groundwater drought and their possible influence factors

机译:来自气象到地下水干旱的传播动态及其可能的影响因素

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摘要

The propagation of meteorological drought in a complete water cycle is not limited to hydrological and agricultural droughts, but also involves groundwater drought. Moreover, the intensification of water cycle under the background of global warming may also affect the time of drought propagation. Therefore, studying the dynamic propagation and possible influence factors from meteorological to groundwater drought is helpful to monitor and assess the risk of groundwater drought. Here we use terrestrial water storage anomalies observations from the Gravity Recovery and Climate Experiment satellites and simulated soil moisture and runoff variations from the Global Land Data Assimilation System to show that the groundwater storage anomalies in the Pearl River Basin (PRB). The standardized precipitation index and drought severity index were used to characterize meteorological and groundwater drought, respectively. Results indicated that: (1) the propagation time of meteorological to groundwater drought in the PRB during 2002-2015 was 8 months, and that in spring and summer was shorter than that in autumn and winter; (2) the time of drought propagation has a significant deceasing trend (p < 0.01), indicating that the water cycle in the PRB was accelerating; (3) increasing soil moisture accelerates the response of groundwater to precipitation in the surplus period due to the stored-full runoff mechanism, whilst intensifying evapotranspiration rate and heat wave facilitate the drought propagation in the deficit period; (4) compared with Arctic Oscillation and El-Nino Southern Oscillation, Pacific Decadal Oscillation is the main driving force to accelerate drought propagation in the PRB.
机译:气象干旱在完全水循环中的传播不仅限于水文和农业干旱,而且还涉及地下水干旱。此外,在全球变暖背景下的水循环的强化也可能影响干旱繁殖的时间。因此,研究动态传播和可能影响气象到地下水干旱的因素有助于监测和评估地下水干旱的风险。在这里,我们使用从重力恢复和气候实验卫星的地面储水异常观察,并从全球土地数据同化系统模拟土壤水分和径流变化,以表明珠江流域的地下水储存异常(PRB)。标准化沉淀指数和干旱严重程度指数分别用于表征气象和地下水干旱。结果表明:(1)2002 - 2015年PRB在PRB中的气象到地下水的传播时间为8个月,春季和夏季比秋季和冬季短都要短; (2)干旱繁殖的时间具有显着的死亡趋势(P <0.01),表明PRB中的水循环加速; (3)由于储存 - 完全径流机制,水分增加加速了地下水在剩余时期降水的恢复,同时强化蒸发率和热波有助于赤字期间的干旱繁殖; (4)与北极振荡和EL-NINO Southern振荡相比,太平洋二等振荡是加速PRB中的干旱繁殖的主要动力。

著录项

  • 来源
    《Journal of Hydrology》 |2019年第2019期|共12页
  • 作者单位

    Xian Univ Technol State Key Lab Base Ecohydraul Engn Arid Area Xian 710048 Shaanxi Peoples R China;

    Xian Univ Technol State Key Lab Base Ecohydraul Engn Arid Area Xian 710048 Shaanxi Peoples R China;

    Xian Univ Technol State Key Lab Base Ecohydraul Engn Arid Area Xian 710048 Shaanxi Peoples R China;

    Chinese Acad Sci Inst Geog Sci &

    Nat Resources Res Key Lab Water Cycle &

    Related Land Surface Proc Beijing 100101 Peoples R China;

    China Inst Water Resources &

    Hydropower Res State Key Lab Simulat &

    Regulat Water Cycle River Beijing 100038 Peoples R China;

    Xian Univ Technol State Key Lab Base Ecohydraul Engn Arid Area Xian 710048 Shaanxi Peoples R China;

    Xian Univ Technol State Key Lab Base Ecohydraul Engn Arid Area Xian 710048 Shaanxi Peoples R China;

    Xian Univ Technol State Key Lab Base Ecohydraul Engn Arid Area Xian 710048 Shaanxi Peoples R China;

    Xian Univ Technol State Key Lab Base Ecohydraul Engn Arid Area Xian 710048 Shaanxi Peoples R China;

    Xian Univ Technol State Key Lab Base Ecohydraul Engn Arid Area Xian 710048 Shaanxi Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 水文科学(水界物理学);
  • 关键词

    Groundwater drought; Meteorological drought; Drought propagation; Dynamic;

    机译:地下水干旱;气象干旱;干旱繁殖;动态;

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