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Publication Additional Information
Publication Type
Journal Article
Authorship
Zhou, B., Parsons, C., Van Cappellen, P.
Title
Urban stormwater phosphorus export control: Comparing traditional and low-impact development best management practices
Year
2024
Publication Outlet
Environmental Science & Technology
DOI
https://doi.org/10.1021/acs.est.4c01705
Citation
Zhou, B., Parsons, C., Van Cappellen, P. (2024) Urban stormwater phosphorus export control: Comparing traditional and low-impact development best management practices, Environmental Science & Technology, https://doi.org/10.1021/acs.est.4c01705
Abstract
Data from the International Stormwater Best Management Practices (BMP) Database were used to compare the phosphorus (P) control performance of six categories of stormwater BMPs representing traditional systems (stormwater pond, wetland basin, and detention basin) and low-impact development (LID) systems (bioretention cell, grass swale, and grass strip). Machine learning (ML) models were trained to predict the reduction or enrichment factors of surface runoff concentrations and loadings of total P (TP) and soluble reactive P (SRP) for the different categories of BMP systems. Relative to traditional BMPs, LIDs generally enriched TP and SRP concentrations in stormwater surface outflow and yielded poorer P runoff load control. The SRP concentration reduction and enrichment factors of LIDs also tended to be more sensitive to variations in climate and watershed characteristics. That is, LIDs were more likely to enrich surface runoff SRP concentrations in drier climates, when inflow SRP concentrations were low, and for watersheds exhibiting high impervious land cover. Overall, our results imply that stormwater BMPs do not universally attenuate urban P export and that preferentially implementing LIDs over traditional BMPs may increase TP and SRP export to receiving freshwater bodies, hence magnifying eutrophication risks.
Program Affiliations
GWF: Global Water Futures
Project Affiliations
GWF-Managing Urban Eutrophication Risks under Climate Change: An Integrated Modelling and Decision Support Framework
Publication Stage
Published
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