利用氮通量模型模拟城市湖泊底部沉积物内部氮释放

IF 3.7 Q1 WATER RESOURCES
Ran Gong , Hui-ya Wang , Zhi-xin Hu , Yi-ping Li
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引用次数: 0

摘要

沉积物中的养分释放被认为是上覆水的重要来源。鉴于沉积物中养分释放机制复杂且难以模拟,传统方法通常使用指定的参数值来模拟这些过程。在本研究中,建立了一个氮通量模型,并将其与城市湖泊的水质模型相耦合。经过参数敏感性分析、模型校准和验证,该模型用于模拟八种情况下沉积物-水界面的氮交换。结果表明,泥沙在水沙系统中起着缓冲作用。它可以随时储存或释放氮,调节沉积物和水柱之间的氮分布,并为藻类提供氮。在短时间内降低城市湖泊中氮水平的最有效方法是减少外部氮负荷。然而,沉积物的释放可能会继续对水柱产生影响,直到达到新的平衡。因此,应制定有效的减氮措施作为补充措施。此外,应针对不同的研究对象单独检查模型参数的敏感性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of internal nitrogen release from bottom sediments in an urban lake using a nitrogen flux model

Nutrient release from sediment is considered a significant source for overlying water. Given that nutrient release mechanisms in sediment are complex and difficult to simulate, traditional approaches commonly use assigned parameter values to simulate these processes. In this study, a nitrogen flux model was developed and coupled with the water quality model of an urban lake. After parameter sensitivity analyses and model calibration and validation, this model was used to simulate nitrogen exchange at the sediment–water interface in eight scenarios. The results showed that sediment acted as a buffer in the sediment–water system. It could store or release nitrogen at any time, regulate the distribution of nitrogen between sediment and the water column, and provide algae with nitrogen. The most effective way to reduce nitrogen levels in urban lakes within a short time is to reduce external nitrogen loadings. However, sediment release might continue to contribute to the water column until a new balance is achieved. Therefore, effective measures for reducing sediment nitrogen should be developed as supplementary measures. Furthermore, model parameter sensitivity should be individually examined for different research subjects.

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来源期刊
CiteScore
6.60
自引率
5.00%
发文量
573
审稿时长
50 weeks
期刊介绍: Water Science and Engineering journal is an international, peer-reviewed research publication covering new concepts, theories, methods, and techniques related to water issues. The journal aims to publish research that helps advance the theoretical and practical understanding of water resources, aquatic environment, aquatic ecology, and water engineering, with emphases placed on the innovation and applicability of science and technology in large-scale hydropower project construction, large river and lake regulation, inter-basin water transfer, hydroelectric energy development, ecological restoration, the development of new materials, and sustainable utilization of water resources.
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