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Exploring the Spatiotemporal Heterogeneity of Stream Nitrogen Concentrations in a Typical Human‐Activity‐Influenced Headwater Watershed in South China

分水岭 中国 环境科学 水文学(农业) 氮气 地理 生态学 地质学 考古 生物 岩土工程 计算机科学 量子力学 机器学习 物理
作者
Congsheng Fu,Haixia Zhang,Huawu Wu,Haohao Wu,Yang Cao,Ye Xia,Zichun Zhu
出处
期刊:Water Resources Research [Wiley]
卷期号:60 (9)
标识
DOI:10.1029/2024wr038050
摘要

Abstract Stream nitrogen concentrations significantly impact nitrogen loads and greenhouse gas emissions, but their spatiotemporal heterogeneity and human influences remain highly uncertain. This study thoroughly explored the spatiotemporal variations in stream nitrogen concentrations in a typical headwater watershed in South China. Spatially distributed measurements were conducted during 2020–2022, and mathematical modeling was implemented based on incorporating these data. More than 4,400 data points were collected for water temperature and concentrations of ammonium nitrogen (NH 4 ‐N), nitrate nitrogen (NO x ‐N), dissolved total nitrogen (DTN), total nitrogen (TN), and dissolved oxygen. Results showed that NO x ‐N was the largest component of TN, with average concentrations of 1.20 and 1.66 mg L −1 , respectively. The stream N 2 O concentration could be predicted using NH 4 ‐N and NO x ‐N concentrations via the Michaelis‐Menten equation. Significant downstream decreases in NH 4 ‐N, NO x ‐N, DTN, and TN concentrations were identified in the largest river in the watershed, and clear spatial differences in these nitrogen concentrations existed among the three main rivers. Clear seasonal and annual variations in stream nitrogen concentrations were observed. NH 4 ‐N, NO x ‐N, DTN, and TN concentrations correlated with cumulative precipitation from the preceding 8–12 days, while stream N 2 O concentrations correlated over 13–20 days. Stream N 2 O concentrations and emissions averaged 12.77 nmol L −1 and 1.12 nmol m −2 s −1 , respectively, and were lower in summer than in other seasons. Upstream tea plantations, villages, and adjacent agricultural lands significantly affected nitrogen concentrations, while overflow dams did not. These findings highlight nitrogen cycle's complexity and the need for high‐resolution data to guide effective watershed management.

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