Sources, Transformation, and Fate of Groundwater Nitrate Under Intensive Anthropogenic Pressures in the Lower Yellow River Basin: Insights From Hydrochemistry and Multi‐Isotope Analysis

ABSTRACT Enhanced human activities have increased nitrate contamination in groundwater, threatening water‐supply safety and public health. This study examined nitrate sources and transformation processes in 29 shallow groundwater samples from the lower Yellow River Basin, a region subject to intensive agricultural, industrial, and domestic pressures. The observed NO 3 − ‐N concentrations ranged from 0.37 to 177.95 mg/L. Self‐organizing maps, the MixSIAR model, and hydrochemical and multi‐isotope analyses identified five hydrochemical clusters. Across all samples, the mean proportional contributions of soil nitrogen and chemical fertilizers were 52.6% and 31.0%, respectively, indicating that these two sources dominated groundwater nitrate. Sewage/manure and industrial or mining wastewater made smaller overall contributions, but their relative importance increased in areas affected by stronger human activities. The isotope and hydrochemical evidence indicated that nitrification was a key process increasing groundwater nitrate concentrations; this effect was particularly pronounced in the northwestern groundwater convergence zone, where soil nitrogen accumulation was relatively high. These findings suggest that anthropogenic inputs not only introduce nitrate directly but also enhance the leaching and transformation of soil‐ and fertilizer‐derived nitrogen. The results support targeted groundwater management through precision fertilization, soil nitrogen monitoring, wastewater control, and priority protection of vulnerable recharge and convergence areas.

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Publication Details

Journal
Water Environment Research
Published
2026-09-01
DOI
https://doi.org/10.1002/wer.70552
Primary Topic
Groundwater and Isotope Geochemistry
Type
article
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article

Sources, Transformation, and Fate of Groundwater Nitrate Under Intensive Anthropogenic Pressures in the Lower Yellow River Basin: Insights From Hydrochemistry and Multi‐Isotope Analysis

阎子刚, Xiaoman Cheng, Huimeng Su, Tianxiang Zhang et al.
Water Environment Research
Groundwater and Isotope Geochemistry
article

Sources, Transformation, and Fate of Groundwater Nitrate Under Intensive Anthropogenic Pressures in the Lower Yellow River Basin: Insights From Hydrochemistry and Multi‐Isotope Analysis

阎子刚, Xiaoman Cheng, Huimeng Su, Tianxiang Zhang, Yali Zhang, Shuai Wang, Shi Yan
article en

Abstract

ABSTRACT Enhanced human activities have increased nitrate contamination in groundwater, threatening water‐supply safety and public health. This study examined nitrate sources and transformation processes in 29 shallow groundwater samples from the lower Yellow River Basin, a region subject to intensive agricultural, industrial, and domestic pressures. The observed NO 3 − ‐N concentrations ranged from 0.37 to 177.95 mg/L. Self‐organizing maps, the MixSIAR model, and hydrochemical and multi‐isotope analyses identified five hydrochemical clusters. Across all samples, the mean proportional contributions of soil nitrogen and chemical fertilizers were 52.6% and 31.0%, respectively, indicating that these two sources dominated groundwater nitrate. Sewage/manure and industrial or mining wastewater made smaller overall contributions, but their relative importance increased in areas affected by stronger human activities. The isotope and hydrochemical evidence indicated that nitrification was a key process increasing groundwater nitrate concentrations; this effect was particularly pronounced in the northwestern groundwater convergence zone, where soil nitrogen accumulation was relatively high. These findings suggest that anthropogenic inputs not only introduce nitrate directly but also enhance the leaching and transformation of soil‐ and fertilizer‐derived nitrogen. The results support targeted groundwater management through precision fertilization, soil nitrogen monitoring, wastewater control, and priority protection of vulnerable recharge and convergence areas.

Water Environment ResearchVol. 98(9)
China University of Geosciences (CN), Henan Provincial Institute of Land and Resources Sciences (CN), Chongqing Construction Engineering Investment Holding (China) (CN), Henan Institute of Geological Survey (CN)
Clean water and sanitation
Openalex Percentile: Top 13%
Groundwater and Isotope Geochemistry
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