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Precipitation exacerbates spatial heterogeneity in the propagation time of meteorological drought to soil drought with increasing soil depth

Dados Bibliográficos

ID15549458
AutoresChen Hu (0000-0003-0259-6656, Wuhan University, autor correspondente), Jun Xia (0000-0002-1643-4706, Wuhan University), Dunxian She (0000-0003-4660-3301, Wuhan University), Gangsheng Wang (0000-0002-8117-5034, Wuhan University), Liping Zhang (0000-0003-1903-6612, Wuhan University), Zhaoxia Jing (0009-0002-0253-7058, Changjiang Water Resources Commission), Si Hong (Wuhan University), Zhihong Song (0000-0002-8736-9251)
Ano2024
Volume19
Fascículo6
Páginas064021-064021
Data de publicação2024-05-09
Peer ReviewedSim
Open AccessSim
TipoARTICLE
PeriódicoEnvironmental Research Letters (JOURNAL)
Identificadores do periódicoISSN: 1748-9326 • E-ISSN: 1748-9326
EditoraIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/ad4975
OpenAlexW4396764174
IdiomaEN
Referências citadas63

The propagation of meteorological droughts to soil droughts poses a substantial threat to water resources, agricultural production, and social systems. Understanding drought propagation process is crucial for early warning and mitigation, but mechanisms of the propagation from meteorological drought to soil drought, particularly at varying soil depths, remain insufficiently understood. Here, we employ the maximum correlation coefficient method and the random forest (RF) model to investigate the spatiotemporal patterns and drivers of propagation time (PT) from meteorological drought to soil drought at four different depths across China from 1980 to 2018. Our findings reveal consistently higher PT in northern China and lower PT in southern China across varying soil depths, with more pronounced spatial heterogeneity with increasing soil depth. Furthermore, we identify temperature and precipitation as determinants of spatial patterns of PT in surface and deeper soil layers, respectively. Additionally, precipitation emerges as the dominant factor influencing changes in PT between different soil layers. Our study highlights a discernible shift in PT drivers from temperature to precipitation as soil depth increases and the significant impact of precipitation on exacerbating spatial heterogeneity in PT. This study contributes to an enhanced comprehension of the propagation process from meteorological drought to soil drought at different depths, which can aid in establishing practical drought mitigation measures and early warning systems

Atmospheric sciences · Climatology · Geography · Meteorology · Precipitation · Spatial heterogeneity · Climate variability and models · Environmental Science · Hydrology and Drought Analysis · Plant Water Relations and Carbon Dynamics · Ecology · Geology

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