Identifying nitrate sources and nitrogen transformation in a karst river–groundwater system using dual nitrate isotopes and a Bayesian (SIAR) mixing model

Karst basins have permeable surface-subsurface connections that can accelerate nitrogen transport. The Lipu River Basin in southern Guilin is affected by intensive agriculture and industrial activity, but its nitrate sources and transformations remain poorly resolved. We integrated dual nitrate isotopes (δ 15 N-NO 3 ⁻ and δ 18 O-NO 3 ⁻), hydrochemical data, and a Bayesian SIAR mixing model. River-water TN was significantly higher in winter (7.09 ± 6.59 mg/L) than in summer (2.95 ± 1.48 mg/L). River-water NO 3 ⁻-N was lower in summer than in winter and lower than groundwater only during summer; the winter river-groundwater difference was not significant. The highest individual groundwater NO 3 ⁻-N values occurred near the industrial park, but the land-use group difference was not significant (Kruskal-Wallis, p = 0.48). The SIAR model identified manure and sewage as the largest modeled summer nitrate source, contributing 49% at the basin scale. These results identify elevated winter river loads and groundwater nitrate hotspots near tributaries and industrial zones as management priorities.

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Publication Details

Journal
Environmental Earth Sciences
Published
2026-09-21
DOI
https://doi.org/10.1007/s12665-026-13136-4
Primary Topic
Karst Systems and Hydrogeology
Type
article
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article

Identifying nitrate sources and nitrogen transformation in a karst river–groundwater system using dual nitrate isotopes and a Bayesian (SIAR) mixing model

Zupeng Wan, Yingjie Chen, Honghu Zeng, Baojun Liu et al.
Environmental Earth Sciences
Karst Systems and Hydrogeology
article

Identifying nitrate sources and nitrogen transformation in a karst river–groundwater system using dual nitrate isotopes and a Bayesian (SIAR) mixing model

Zupeng Wan, Yingjie Chen, Honghu Zeng, Baojun Liu, Xiaoyu Yan, Wenwen Chen
article en

Abstract

Karst basins have permeable surface-subsurface connections that can accelerate nitrogen transport. The Lipu River Basin in southern Guilin is affected by intensive agriculture and industrial activity, but its nitrate sources and transformations remain poorly resolved. We integrated dual nitrate isotopes (δ 15 N-NO 3 ⁻ and δ 18 O-NO 3 ⁻), hydrochemical data, and a Bayesian SIAR mixing model. River-water TN was significantly higher in winter (7.09 ± 6.59 mg/L) than in summer (2.95 ± 1.48 mg/L). River-water NO 3 ⁻-N was lower in summer than in winter and lower than groundwater only during summer; the winter river-groundwater difference was not significant. The highest individual groundwater NO 3 ⁻-N values occurred near the industrial park, but the land-use group difference was not significant (Kruskal-Wallis, p = 0.48). The SIAR model identified manure and sewage as the largest modeled summer nitrate source, contributing 49% at the basin scale. These results identify elevated winter river loads and groundwater nitrate hotspots near tributaries and industrial zones as management priorities.

Environmental Earth SciencesVol. 85(16)
South China Normal University (CN), Guilin University of Technology (CN), Hubei Water Resources Research Institute (CN), Hubei Provincial Water Resources and Hydropower Planning Survey and Design Institute (CN), Guangxi Key Laboratory of Environmental Pollution Control Theory and Technology (CN)
Clean water and sanitation
Openalex Percentile: Top 13%
Karst Systems and Hydrogeology
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Identifying nitrate sources and nitrogen transformation in a karst river–groundwater system using dual nitrate isotopes and a Bayesian (SIAR) mixing model — Zupeng Wan, Yingjie Chen, et al. · Environmental Earth Sciences (2026) | TGRS Research Map | TGRS