Effect of Solar Farms on Soil Erosion in Hilly Environments: A Modeling Study From the Perspective of Hydrological Connectivity

Hu Liu*, Chuandong Wu, Yang Yu, Wenzhi Zhao, Jintao Liu, Hailong Yu, Yanli Zhuang, Omer Yetemen

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

4 Citations (Scopus)

Abstract

Hydrological connectivity (HC) is a useful framework for understanding hydrological responses to landscape changes. We present herein a novel model (SOFAR) for utility-scale solar farms (USFs), combining modules of soil moisture dynamics, roof effects of photovoltaic panels (PVs), vegetation growth and landform evolution. By augmenting the model with a DEM-based HC index, we investigate hydrological behaviors following the construction of a USF in China's Loess Hilly Region. Nine scenarios are designed, to explore the effects of co-evolving ecohydrology and landscape on soil erosion and HC in USFs deployed in different climates and terrains, by altering the annual precipitation, rainfall frequency, and ground slope. Our results show that the USF considerably increased runoff (99.18%–154.26%) during its operational period, and soil erosion rate (21.4%–74.84% and 25.35%–76.18%) and HC (0.08%–0.26% and 0.47%–0.91%) throughout construction and operational periods, respectively. The highest erosion rates were detected in the PV installation zones and in the areas close to the river channel. We prove the hypothesis that HC is a critical indicator for sediment yield in a USF, and thus the long-term responses of soil erosion to USF installation and development can be explained in terms of HC. We conclude that USFs may increase soil erosion, mainly by increasing local HC and runoff, and higher background HC may in turn further aggravate the effects of USFs on soil erosion. Our results underscore the importance of including landscape ecohydrologic and geomorphic feedbacks, to improve the environmental impact assessment of USFs.

Original languageEnglish
Article numbere2023WR035067
JournalWater Resources Research
Volume59
Issue number12
DOIs
Publication statusPublished - Dec 2023

Bibliographical note

Publisher Copyright:
© 2023 The Authors.

Funding

This research was jointly supported by the National Natural Science Foundation of China (U23A2063/42177310), the Leading Talents Program of Gansu Province (E339040101), and the 2232 International Fellowship for Outstanding Researchers Program of the Scientific and Technological Research Council of Turkey (118C329). The authors thank the editors (Prof. Peter Troch, Prof. Erkan Istanbulluoglu) and the anonymous reviewers for their constructive and inspiring reviews.

FundersFunder number
National Natural Science Foundation of ChinaU23A2063/42177310
Türkiye Bilimsel ve Teknolojik Araştırma Kurumu118C329
Leading Talents Program of Guangdong ProvinceE339040101

    Keywords

    • hilly environments
    • hydrological connectivity
    • risk control
    • soil erosion
    • utility-scale solar farms

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