养殖设施对北黄海海水养殖水域水动力和溶质运移的模拟影响

IF 3.7 Q1 WATER RESOURCES
Heng-zhi Jiang , Yong-peng Ji , Ming-liang Zhang
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引用次数: 2

摘要

越来越多的海水养殖设施被放置在浅海湾和远海,这可能会显著影响海水养殖水域的水动力和溶质运输过程。本文基于深度平均浅水方程,建立了海水养殖水域水动力与溶质运移的高分辨率耦合模型。在动量方程中引入一种新的阻力表达式来表示悬浮培养笼的阻力。采用耦合模型模拟了北黄海海水养殖中悬浮结构对潮流和污染云运动的影响。模拟结果显示,养殖网箱区域内出现低速区,高密度养殖时速度最大降低率接近45%。结果还表明,潮流对悬浮网箱的密度、网箱的长度和网箱的阻力系数都很敏感。由于潮流的减弱,养殖设施内污染物的运输过程被抑制,远离养殖笼区附近。因此,悬浮网箱显著影响了沿海养殖水体中污染物的运移过程。此外,水平流速的降低显著减少了水产养殖区从周围海域获得的食物供应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling impact of culture facilities on hydrodynamics and solute transport in marine aquaculture waters of North Yellow Sea

An increasing number of marine aquaculture facilities have been placed in shallow bays and open sea, which might significantly affect hydrodynamic and solute transport processes in marine aquaculture waters. In this study, a coupled hydrodynamic and solute transport model was developed with high-resolution schemes in marine aquaculture waters based on depth-averaged shallow water equations. A new expression of drag force was incorporated into the momentum equations to express the resistance of suspended culture cages. The coupled model was used to simulate the effect of suspended structures on tidal currents and the movement of a contaminant cloud in the marine aquaculture of the North Yellow Sea, China. The simulation results showed a low-velocity area appearing inside the aquaculture cage area, with a maximum reduction rate of velocity close to 45% under high-density culture. The results also showed that tidal currents were sensitive to the density of suspended cages, the length of cages, and the drag coefficients of cages. The transport processes of pollutants inside aquaculture facilities were inhibited away from the vicinity of the culture cage area because of the diminished tidal currents. Therefore, the suspended cages significantly affected the transport processes of pollutants in the coastal aquaculture waters. Furthermore, the reduced horizontal velocity significantly decreased the food supply for the aquaculture areas from the surrounding sea.

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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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