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Numerical modeling of cohesive sediment transport and bed morphology in estuaries

机译:河口粘性沉积物运移与床层形态的数值模拟

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摘要

Two major lines of investigation have been pursued in this thesis: (1) More efficient, robust and realistic numerical techniques are designed for the simulation of complex turbulent fluid flows; (2) A new algorithm and its analysis is performed in the context of multiphasic fluid flow, for a cohesive fine-grained sediment (fluid mud) transport in estuaries. Estuaries exist between marine and freshwater system where waters of different physical, chemical and biological composition meet, combine and disperse primarily due to tidal influences. In the present thesis, the behavior of cohesive sediment in estuaries is reviewed based on the existing literature. Basic theories and recent developments are introduced to describe the formation of fluid mud from a very dilute suspension and its motion down a natural river bed with complex bathymetry. The present work contributes to the numerical simulation of complex turbulent multiphasic fluid flows encountered in estuarine channels, with the aim of the better understanding of the underlying physical processes as well as predicting realistically the cohesive sediment transport and bed morphology in such a zone. The model is based on the mass preserving method by using the so-called Raviart-Thomas finite element on the unstructured mesh in the horizontal plane. In the vertical, the computational domain is divided into number of layers at predefined heights and the method uses a conventional conforming P1 finite element scheme, with the advantage that the lowermost and uppermost layers variable height allow a faithful representation of the time-varying bed and free surface, respectively. Concerning the modeling of turbulence, the research effort focuses on the turbulence two-equation k - ε closure for the vertical parameterization of eddy viscosity. More precisely, a robust up-to-date algorithm is used for this issue. The new methodology is developed with the aim to account for more general relevant effects in the closure. The proposed model offers the capability to cope with the stiffness problem introduced by the large difference between the solid phase flow time scale and the hydrodynamic one, by using a sub-cycling strategy, whereas the splitting scheme is adopted with the aim of stability and the positivity of the relevant turbulent variables. The flexibility of the model and its performance are evaluated on several free-surface flow configurations with increasing complexity : homogeneous unsteady non-uniform flows in plane open channel flows, U-shaped (193°) curved open channel flow. Concerning the cohesive sediment transport, most of the existing models in the literature assume the analogous transport characteristics with that of the coarse sediment and adopt the relevant developed sediment transport for the latter to treat the former. Moreover, these existing models do not account for the consolidation of the mud-bed. The present research effort focused on a novel methodology based on the realistic empirical relationships, which accounts for the mutually exclusive processes for re-suspension and/or erosion and deposition of fine sediment, whereas only a limited range of bed shear stresses is allowed for simultaneous erosion and deposition to occur. Hence, on this basis, the new model investigated the bed morphology evolution by taking into account of the fluidization and/or consolidation of the fluid mud, which was handled by modeling the bed in three layers: (i) the mud-bed layer, (ii) the partially consolidated bed and (iii) the fully consolidated bed. The prediction of deposition/re-suspension using these two different methods lead to a non negligible difference in the results. Therefore, investigation of the true mechanism of erosion/deposition processes for cohesive sediments and their implementation in the numerical model is very important. This suggests that a realistic prediction must account for the fresh mud-bed re-suspension once deposited, as well as the consolidation and/or fluidization of the mud-bed deposits. Finally, the capability and improvements of the model are demonstrated, and its predicting performance is successfully evaluated by applying it to the simulation of the Po River Estuary (PRE) in Italy, which is the main source of river water discharge into the Northern Adriatic Sea. The analysis showed that the consolidation/fluidization process at the bed may have important influence on the prediction of bed morphology evolution. The three-layer approach used in this thesis is a first attempt to model these processes in detail within a numerical model.
机译:本文研究的主要内容有两个方面:(1)设计了更有效,鲁棒和逼真的数值技术来模拟复杂的湍流; (2)在多相流体流动的背景下,进行了一种新的算法及其分析,用于河口内粘性细颗粒沉积物(流体泥浆)的运输。在海洋和淡水系统之间存在河口,其中主要由于潮汐影响,具有不同物理,化学和生物成分的水汇合,合并和分散。本文根据已有文献综述了河口粘性沉积物的行为。介绍了基本理论和最新进展,以描述由非常稀的悬浮液形成的液体泥浆及其在具有复杂测深法的天然河床上的运动。目前的工作有助于对河口通道中遇到的复杂湍流多相流体流动进行数值模拟,目的是更好地了解潜在的物理过程,并实际预测该区域内的粘性沉积物运移和床层形态。该模型基于质量保留方法,在水平面上的非结构化网格上使用所谓的Raviart-Thomas有限元。在垂直方向上,将计算域划分为预定高度处的层数,并且该方法使用常规的符合P1有限元方案,其优点是最下层和最上层的可变高度允许时变层的真实表示。自由表面。关于湍流的建模,研究工作集中在湍流二方程k-ε闭合上,用于涡流粘度的垂直参数化。更准确地说,此问题使用了一种健壮的最新算法。开发新方法的目的是考虑封闭过程中更一般的相关影响。提出的模型通过子循环策略提供了解决固相流时标与流体动力时标差异较大的刚度问题的能力,而采用分裂方案则是为了保持稳定性和稳定性。相关湍流变量的正性。在具有增加的复杂性的几种自由表面流动配置上评估了模型的灵活性及其性能:平面明渠流动中的均质非稳态非均匀流动,U型(193°)弯曲明渠流动。关于粘性泥沙输送,文献中大多数现有模型都假定与粗泥沙具有相似的输送特性,并采用相应的发达泥沙输送来处理后者。而且,这些现有模型没有考虑泥床的固结。目前的研究工作集中在基于现实经验关系的新方法上,该方法解释了细颗粒沉积物的重新悬浮和/或侵蚀和沉积的互斥过程,而同时允许有限范围的床剪应力发生侵蚀和沉积。因此,在此基础上,新模型通过考虑流体泥浆的流化和/或固结,研究了床层形态的演变,这是通过将床层建模为三层来处理的:(i)泥浆床层, (ii)部分合并的床和(iii)全部合并的床。使用这两种不同的方法对沉积/重新悬浮的预测导致结果的差异不可忽略。因此,研究粘性沉积物的侵蚀/沉积过程的真实机理及其在数值模型中的实现非常重要。这表明现实的预测必须考虑到一旦沉积就重新沉积了新鲜的泥床,以及泥床沉积物的固结和/或流化。最后,证明了该模型的功能和改进,并将其用于意大利波河口(PRE)的模拟成功评估了其预测性能,该河是向北亚得里亚海排放河水的主要来源。分析表明,床层固结/流化过程可能对床层形态演化的预测有重要影响。本文使用的三层方法是首次尝试在数值模型中对这些过程进行详细建模。

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    Leupi Célestin;

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  • 年度 2005
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  • 正文语种 eng
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