Vegetation greening accelerated the propagation from meteorological to soil droughts in the Loess Plateau from a three-dimensional perspective

IF 5.9 1区 地球科学 Q1 ENGINEERING, CIVIL Journal of Hydrology Pub Date : 2024-12-16 DOI:10.1016/j.jhydrol.2024.132522
Haoyu Yang , Feng Ma , Xing Yuan , Peng Ji , Chenyuan Li
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Abstract

Investigating the propagation from meteorological drought to hydrological and soil droughts is critical for drought early warning and forecasting. Vegetation is a main factor affecting drought propagation process. However, how the changing vegetation cover affects the drought propagation, especially over semiarid regions with strong coupling between drought and vegetation, remains unknown. Moreover, existing studies are often analyzed in lower dimensions, ignoring the nature of the evolution of droughts over space and time simultaneously. Focusing on the Loess Plateau with significant greening due to the implementation of vegetation restoration programs and climate warming, this study identifies the characteristics of the three types of droughts and their propagations from a three-dimensional perspective. Two sensitivity experiments based on a high-resolution land surface model, driven by static and dynamic leaf area index (LAI), are conducted to investigate the impact of vegetation greening during 2001–2021. The results show that vegetation greening has significantly exacerbated soil droughts and accelerated the propagation from meteorological to soil droughts via transpiration that directly consumes soil water. However, the impact of greening on hydrological droughts is relatively smaller. Specifically, vegetation greening has increased the duration, affected area and severity of soil droughts by approximately 5 months (38 %), 84 % and 98 % respectively. Meanwhile, the greening has shortened the propagation time from meteorological to soil droughts by 0.47 months, and increased the propagation probability by 17 %. In addition, more soil drought events are likely to migrate eastward and the drought migration distance is increased by 139 % under vegetation greening. This study provides new insights into the impact of greening on drought propagations from a three-dimensional perspective and highlights greater impact on soil droughts over the Loess Plateau.

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来源期刊
Journal of Hydrology
Journal of Hydrology 地学-地球科学综合
CiteScore
11.00
自引率
12.50%
发文量
1309
审稿时长
7.5 months
期刊介绍: The Journal of Hydrology publishes original research papers and comprehensive reviews in all the subfields of the hydrological sciences including water based management and policy issues that impact on economics and society. These comprise, but are not limited to the physical, chemical, biogeochemical, stochastic and systems aspects of surface and groundwater hydrology, hydrometeorology and hydrogeology. Relevant topics incorporating the insights and methodologies of disciplines such as climatology, water resource systems, hydraulics, agrohydrology, geomorphology, soil science, instrumentation and remote sensing, civil and environmental engineering are included. Social science perspectives on hydrological problems such as resource and ecological economics, environmental sociology, psychology and behavioural science, management and policy analysis are also invited. Multi-and interdisciplinary analyses of hydrological problems are within scope. The science published in the Journal of Hydrology is relevant to catchment scales rather than exclusively to a local scale or site.
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