絮凝性黏结沉积物在当前底边界层中运移的模拟框架

IF 4 2区 环境科学与生态学 Q1 WATER RESOURCES
Jorge A. Penaloza-Giraldo , Liangyi Yue , Tian-Jian Hsu , Bernhard Vowinckel , Andrew Manning , Eckart Meiburgc
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引用次数: 0

摘要

在许多水生生态系统中,粘性沉积物的沉降速度受絮凝过程控制,是决定生物化学循环、污染物命运和形态动力学的重要组成部分。在本研究中,提出了一个模型框架来研究絮凝在稀释条件下如何影响当前底部边界层的粘性沉积物输运,与絮凝模型的校准范围一致。通过对均匀湍流中絮体动力学的局部分析,我们发现絮体粒径分布主要受絮体黏聚力和屈服强度的控制。分形维数的不确定性对絮体粒径的影响较小,但对絮体密度和沉降速度有较大影响。水流边界层输运分析表明,絮凝过程改变了沉降速度的垂直分布,从而改变了泥沙浓度,并与絮凝力、絮凝体屈服强度和絮凝体结构密切相关。当絮凝体更容易破碎时,得到一个混合良好的浓度分布。而对于黏结强度或屈服强度较高的絮凝体,在靠近床层的地方浓度较高,且梯度较大。总的来说,沉降速度表现出较低的垂直变异性,在深度平均值的20%以内,除了靠近床层。这表明,使用深度平均沉降速度可以产生可接受的沉积物浓度分布预测,特别是对于具有较低凝聚力的絮凝体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Modeling framework for flocculated cohesive sediment transport in the current bottom boundary layer
Cohesive sediment transport, where its settling velocity is controlled by the flocculation process, is a crucial component in determining biochemical cycles, fate of pollutants, and morphodynamics in many aquatic ecosystems. In this study, a modeling framework is presented to investigate how flocculation influences cohesive sediment transport in the current bottom boundary layer in dilute conditions, consistent with the calibration range of the flocculation model. From a local analysis of floc dynamics in homogenous turbulence, we identify that the floc size distribution is mainly controlled by floc cohesion and yield strength. The uncertainty in fractal dimension plays a minor role for the floc size but it influences the resulting floc density and settling velocity. The transport analysis in the current boundary layer shows that the flocculation process alters the vertical distribution of the settling velocity and hence the sediment concentration with a strong dependence on cohesion, floc yield strength, and floc structure. When the flocs are more susceptible to breaking, a well-mixed concentration profile is obtained. In contrast, for flocs with higher cohesion or yield strength, higher concentration with a sharp gradient is observed close to the bed. Overall, the settling velocity exhibits a low vertical variability within 20 % of the depth-averaged value except near the bed. This suggests that using a depth-averaged settling velocity yields acceptable predictions of the sediment concentration profiles, especially for flocs with lower cohesion.
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来源期刊
Advances in Water Resources
Advances in Water Resources 环境科学-水资源
CiteScore
9.40
自引率
6.40%
发文量
171
审稿时长
36 days
期刊介绍: Advances in Water Resources provides a forum for the presentation of fundamental scientific advances in the understanding of water resources systems. The scope of Advances in Water Resources includes any combination of theoretical, computational, and experimental approaches used to advance fundamental understanding of surface or subsurface water resources systems or the interaction of these systems with the atmosphere, geosphere, biosphere, and human societies. Manuscripts involving case studies that do not attempt to reach broader conclusions, research on engineering design, applied hydraulics, or water quality and treatment, as well as applications of existing knowledge that do not advance fundamental understanding of hydrological processes, are not appropriate for Advances in Water Resources. Examples of appropriate topical areas that will be considered include the following: • Surface and subsurface hydrology • Hydrometeorology • Environmental fluid dynamics • Ecohydrology and ecohydrodynamics • Multiphase transport phenomena in porous media • Fluid flow and species transport and reaction processes
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