Quantifying anthropogenic drivers of water storage decline to support sustainable water management in a coal-mining semi-arid region

地下水补给 环境科学 水平衡 地下水 蓄水 灌溉 水资源管理 节约用水 煤矿开采 水文学(农业) 用水 气候变化 温室气体 生态系统 脱水 土地利用 持续性 农场用水 水资源 水萃取 缺水 地表水 水位 全球变暖
作者
Wei Liang,Ning Chen,Fen Gou,Yonghui Wang,Yingying Yao,Yihe Lü,Long‐Hai Wang,Jianwu Yan,Shuai Li
出处
期刊:Agricultural Water Management [Elsevier BV]
卷期号:322: 109993-109993 被引量:3
标识
DOI:10.1016/j.agwat.2025.109993
摘要

The Mu Us Sandyland (MUS) serves as a major base for China's energy and chemical industries. Intensive coal mining, expanding irrigation, and large-scale ecological restoration have increasingly stressed local water resources, yet their individual contributions remain poorly quantified. Here we used a water balance framework integrating Gravity Recovery and Climate Experiment (GRACE) satellite, reanalysis data, and local statistics, to quantify the drivers of changes in terrestrial water storage (TWS) and groundwater storage (GWS) in the MUS from 2003 to 2020. Our results show that TWS and GWS declined at annual rates of 5.5 mm yr⁻¹ and 3.9 mm yr⁻¹ , respectively. Not accounting for coal mass loss leads to overestimations of TWS and GWS declines by 37.2 % and 44.3 %, respectively, underscoring the importance of incorporating coal mass loss into GRACE-based assessments. Attribution analysis indicates that ecological restoration and irrigation jointly account for about 80 % of water loss, with farmland expansion driven by land occupation–compensation policies amplifying irrigation demand. In the energy-intensive zone, mine dewatering was a significant anthropogenic driver of GWS declines (4.1 mm yr⁻¹), with an impact greater than that of irrigation (3 mm yr⁻¹). Future scenario indicate that projected groundwater recharge increases (12.8 %–17.1 %), outpace demand growth (2.2 %–7.6 %) at the regional scale, permitting an additional 13.8 %–18.6 % expansion of ecological restoration. However, spatial heterogeneity means that some sub-areas within the MUS may need a 2.8 %–13.7 % reduction due to supply–demand conflict, while others can expand by up to 19.1 %. These findings provide sector‑specific, management-ready insights and underscore the need for integrated land‑ and water‑use planning to support sustainable agricultural water use and ongoing ecological restoration in arid regions. • Ignoring coal mass loss overestimates terrestrial and groundwater storage declines by 37 % and 44 %. • Irrigation and ecological restoration drive about 80 % of regional water storage loss. • Mine dewatering exceeds irrigation as a key anthropogenic groundwater driver in energy-intensive areas. • Future recharge exceeds demand, allowing 13.8–18.6 % expansion of ecological restoration.
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