Scholay

学术搜索 · AI 审稿 · LaTeX 协作

A New GRACE Downscaling Approach for Deriving High‐Resolution Groundwater Storage Changes Using Ground‐Based Scaling Factors

作者:Huixiang Li, Yun Pan, Pat J.‐F. Yeh, Chong Zhang, Zhiyong Huang, Li Xu, Haigang Wang, Linghai Zeng, Huili Gong, J. S. Famiglietti · 发表于:Water Resources Research · 年份:2024 · DOI:10.1029/2023wr035210 · 被引用次数:9 · 研究领域:Geophysics and Gravity Measurements、Geophysical and Geoelectrical Methods、Groundwater and Isotope Geochemistry

Abstract To compensate for the coarse resolution of groundwater storage (GWS) estimation by the Gravity Recovery and Climate Experiment (GRACE) satellites and make better use of available observed groundwater‐level (GWL) data in some aquifers, a ground‐based scaling factor (SF) method is proposed here to derive high‐resolution GRACE GWS estimates. Improvement is achieved by using the gridded SF derived from assimilating ground‐based GWL observations. The proposed SF method is tested on the North China Plain (NCP, ∼140,000 km 2 ), where a dense network of observation wells and a consistently estimated specific yield (SY) data set are available, to demonstrate its effectiveness and practical applications. The sensitivities of SF‐estimated GWS accuracy to the specification of SY and the assimilation of GWL observation data are explored through four designed numerical experiments. Results show that this novel ground‐based method can reduce the impact of SY uncertainty on GWS estimates, particularly in regions with more pronounced regional GWS trends. The accuracy of SF‐estimated GWS is primarily determined by whether the assimilated wells can reflect the regionally averaged GWS trend. GWS accuracy is less dependent on the number of available wells assimilated. The estimated GWS trend (2004–2015) in NCP is −32.6 ± 1.3 mm/yr (−4.6 ± 0.2 km 3 /yr), with contrasting GWS trends found in the west Piedmont Plain (∼54,000 km 2 , with a loss of −66.8 mm/yr) and the coastal Eastern Plain (...