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Research Article | Open Access

Wildfire increased summer low flows in snow-dominated watersheds: A combined approach of hydrometric monitoring and geochemical tracing

Shixuan LyuaXiaohua WeiaMing QiuaMackenzie MyersaZhaozhi WangbJinyu HuiaWenhui YancTongqing ShendMeirong SuneShuhui WangaYiping Houf( )
Department of Earth, Environmental and Geographic Sciences, University of British Columbia, Kelowna, British Columbia V1V 1V7, Canada
Fisheries Department, Okanagan Nation Alliance, Westbank V4T 3L7, Canada
State Key Laboratory of Hydrology-Water Resources and Hydraulic Engineering, Nanjing Hydraulic Research Institute, Nanjing 210029, China
The National Key Laboratory of Water Disaster Prevention, Hohai University, Nanjing 210024, China
Ecology and Nature Conservation Institute, Chinese Academy of Forestry, Beijing 100091, China
School of Resources and Environment, University of Electronic Science and Technology of China, Chengdu 611731, China

Peer review under the responsibility of Editorial Office of Forest Ecosystems.

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Abstract

Forests are experiencing more frequent and intense wildfires in Canada, which pose considerable threats to water quantity and quality, particularly during the summer low-flow period when water demand is high. While the impacts of wildfire on hydrology have been widely assessed at the watershed scale, the underlying mechanisms of the responses of summer low flows remain poorly understood. In this study, we employed an integrated research framework that combines hydrometric monitoring with geochemical tracing to evaluate how the 2021 White Rock Lake Wildfire affected summer low flows, and to identify the underlying mechanisms governing these responses in the Okanagan Valley, British Columbia (BC), Canada. We found that (1) summer low flows, represented by Q90 (flows exceeded at 90% of the time in summer) significantly increased following the wildfire (p ​< ​0.05); (2) summer low flows were primarily regulated by snow water in early summer (July), while dominated by groundwater in late summer (August and September); and (3) enhanced snow water contribution and reduced evapotranspiration (ET) were two primary contributors to the increased summer low flows. Our results provide insights for developing sustainable water management strategies for the region in the context of climate change and increasing forest disturbance. This study also demonstrates that the combination of hydrometric monitoring and geochemical tracing is an effective approach towards uncovering mechanisms that drive low-flow responses.

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Cite this article:
Lyu S, Wei X, Qiu M, et al. Wildfire increased summer low flows in snow-dominated watersheds: A combined approach of hydrometric monitoring and geochemical tracing. Forest Ecosystems, 2026, 15(1). https://doi.org/10.1016/j.fecs.2025.100408

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Received: 25 April 2025
Revised: 16 October 2025
Accepted: 03 November 2025
Published: 01 February 2026
© 2025 The Authors.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).