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乌裕尔河湿地氮磷污染特征及影响因素分析

Characteristics and influencing factors of nitrogen and phosphorus pollution in the Uyuer River Wetland

  • 摘要: 河流湿地氮磷污染评价是诊断河流生态系统健康的重要手段。为了探究河流湿地水污染和底泥污染时空特征及其驱动因素,以黑龙江乌裕尔河国家级自然保护区内的核心区湿地的乌裕尔河湿地为研究区,基于2018—2024年的水质监测数据,利用水质综合指数法(WQI)和主成分分析法,解析乌裕尔河湿地水体水质变化和驱动因素。此外,基于2024年的底泥监测数据,评价乌裕尔河湿地底泥氮磷污染风险。研究结果表明,乌裕尔河湿地水质质量整体处于良好状态(76.49≤WQI≤82.65),时空差异性显著。2018—2024年乌裕尔河湿地水质呈现先上升后下降的趋势(WQI2018ave=77.86,WQI2020ave=82.65,WQI2024ave=76.49),秋季水质最优(WQIave=82.62),夏季水质最差(WQIave=76.05)。水质在空间上表现出自上游向下游先上升后下降的趋势。乌裕尔河湿地底泥全氮和全磷质量比变化范围分别为240.77~5 354.67 mg/kg和152.6~4 881.1 mg/kg,自上游向下游呈现出轻度污染至重度污染的变化趋势。流域内化肥施用和农业灌溉产生的总氮和总磷是影响乌裕尔河湿地水质时空异质性的主要影响因素。在流域面源污染削减和治理过程中,要注重上游的化肥精准施用和分区治理进行污染源削减,下游湿地植被恢复和底泥疏浚进行污染净化。研究可为乌裕尔河湿地及类似河流湿地的水污染评价及有效防治提供科学依据。

     

    Abstract: The assessment of nitrogen (N) and phosphorus (P) pollution in river wetlands serves as a critical tool for diagnosing the ecological health. To explore the spatiotemporal characteristics and driving factors of water pollution and sediment pollution in river wetlands, the core wetland area within the Uyuer River National Nature Reserve in Heilongjiang Province - the Uyuer River Wetland - was selected as the main study area. Based on long-term water quality monitoring data collected from 2018 to 2024, the Water Quality Index (WQI) was employed to comprehensively assess the overall water quality status of the Uyuer River wetland, while Principal Component Analysis (PCA) was used to identify the dominant factors governing the spatiotemporal variations in water quality. In addition, sediment monitoring data obtained in 2024 were analyzed to assess the pollution levels and potential risks associated with nitrogen and phosphorus accumulation in wetland sediments. The results indicated that the overall water quality status of the Uyuer River Wetland remained at a generally good level during the study period, with WQI values ranging from 76.49 to 82.65. Nevertheless, pronounced spatiotemporal heterogeneity was observed including annual variation, seasonal variation, and spatial distribution. Annually, the annual mean WQI values exhibited an increasing trend from 2018 to 2020, followed by a subsequent declining toward, suggesting a shift from initial water quality improvement to renewed degradation pressure in recent years. Seasonal analysis revealed that water quality was optimal in autumn (WQIave=82.62), while summer exhibited the poorest water quality conditions (WQIave=76.05). The spatial distribution of comprehensive water quality status was consistent with that of total nitrogen (TN) and total phosphorus (TP) in the water body, both exhibiting a trend of first increasing and then decreasing from upstream to downstream. Sediment analysis further revealed substantial nutrient enrichment, with total nitrogen (TN) and total phosphorus (TP) concentrations ranging from 240.77 mg/kg to 5 354.67 mg/kg and from 152.6 mg/kg to 4 881.1 mg/kg, respectively. Both TN and TP exhibited a clear gradient from slight pollution in upstream sediments to severe pollution downstream. Principal component analysis (PCA) results demonstrated that fertilizer application intensity and agricultural irrigation were the primary drivers of spatiotemporal heterogeneity in TN and TP concentrations, highlighting the dominant influence of agricultural non-point source pollution within the basin. Climatic factors indicated a regulating role in water quality. Based on these findings, it was necessary to formulate a comprehensive and multi-level pollution prevention and control strategies on the basis of enhancing the integrated "space-aerospace-land" water quality monitoring. Priority should be given to precision fertilization and zoned agricultural management to reduce the external input of pollutants such as nitrogen and phosphorus in upstream areas from the source. Relatively, targeted ecological restoration measures, including wetland vegetation restoration and sediment dredging, are needed for downstream wetlands to reduce internal nutrient loads and enhance purification capacity Overall, this study provided a comprehensive assessment of water and sediment pollution dynamics in the Uyuer River Wetland and provided valuable scientific insights for water quality evaluation, nutrient management, and ecological restoration in river wetlands and similarly fluvial wetland systems.

     

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