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Urbanization-Driven Water Demand Outpacing Climate-Induced Supply Gains in Xiong’an New Area: A Coupled SD-PLUS-InVEST Assessment

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  • Xiao-Hui Dong

    (School of Geomatics, Zhejiang University of Water Resources and Electric Power, Hangzhou 310018, China)

  • Jia-Hua Mao

    (School of Geomatics, Zhejiang University of Water Resources and Electric Power, Hangzhou 310018, China)

  • Fan Ping

    (Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029, China)

  • Tian-Hui Tao

    (School of Geomatics, Zhejiang University of Water Resources and Electric Power, Hangzhou 310018, China)

  • Ning Wang

    (Zhejiang Institute of Meteorological Sciences, Hangzhou 310008, China)

  • Rui-Kai Yan

    (Zhejiang Provincial Meteorological Observatory, Hangzhou 310017, China)

  • Yi-Xue Jiang

    (School of Geomatics, Zhejiang University of Water Resources and Electric Power, Hangzhou 310018, China)

Abstract

Rapid urbanization and climate change are exerting unprecedented pressure on regional water resources, particularly in emerging megacities. This study examines the Xiong’an New Area (XNA) in the water-stressed North China Plain, where high-intensity urbanization coincides with rigorous ecological restoration mandates. To overcome the limitations of single-model assessments, a coupled SD–PLUS–InVEST framework was developed, integrating System Dynamics for socio-economic and policy drivers, Patch-Generating Land-Use Simulation for fine-scale urban expansion, and InVEST for hydrological process assessment. Projecting spatiotemporal water dynamics to 2035 under three Shared Socio-Economic Pathways (SSPs), results reveal that urbanization-driven water demand growth consistently outpaces climate-induced supply gains. While precipitation increases are projected to raise water yield by 8.91–19.58% by 2035, demand surges by up to ~26% under the extensive expansion scenario (SSP5–8.5), driven predominantly by impervious surface proliferation. External water transfers are projected to sustain 40–45% of total supply by 2035, yet this dependency introduces systemic vulnerabilities. Quantitative assessment further indicates severe spatiotemporal mismatches, with Seasonal Water Shortage Rates of 26.1–27.3% and a Spatial Mismatch Index rising from 0.44 to 0.98. These findings indicate that climate-driven precipitation increments alone cannot offset water deficits induced by unregulated urban sprawl, and that integrating strategic land-use planning, resilient infrastructure, and adaptive governance is essential for water security in rapidly developing regions.

Suggested Citation

  • Xiao-Hui Dong & Jia-Hua Mao & Fan Ping & Tian-Hui Tao & Ning Wang & Rui-Kai Yan & Yi-Xue Jiang, 2026. "Urbanization-Driven Water Demand Outpacing Climate-Induced Supply Gains in Xiong’an New Area: A Coupled SD-PLUS-InVEST Assessment," Sustainability, MDPI, vol. 18(12), pages 1-28, June.
  • Handle: RePEc:gam:jsusta:v:18:y:2026:i:12:p:5870-:d:1962531
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