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Eulerian-Lagrangian analysis of transport and residence times in estuaries and coasts.

机译:欧拉-拉格朗日河口和海岸的运输和停留时间分析。

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摘要

Eulerian-Lagrangian methods (ELMs) are increasingly used to simulate groundwater and surface water transport and water quality, largely due to their ability to use large time steps and to formally decouple processes with distinct time scales. Yet, two severe limitations remain: (1) ELMs do not inherently conserve mass, and (2) in multiple dimensions, robust implementations of "higher-order" ELMs are expensive.;Our research focused on the understanding of the main sources of errors in ELMs. We analyzed systematically the impact and relative importance of tracking errors, integration errors and forcing by non-conservative flow fields, on measures of mass conservation, overall accuracy and stability. From this analysis, we propose new methodologies and general guidelines towards mass conservative, globally accurate and stable multi-dimensional ELM transport simulations in estuarine and coastal regions.;We performed a pioneering study of the influence of tracking errors, demonstrating their very strong negative impact on mass conservation, overall accuracy and stability. Low-order tracking methods are strongly discouraged in the presence of complex flow fields, typical of estuaries, because they are too inaccurate to allow overall mass balance and phase preservation, and they lead to potential instability.;We show that the evaluation of the integrals at the feet of the characteristic lines is an important source of mass and overall errors, which can be controlled through grid refinement. To avoid such errors, we develop a new method that combines the flexibility and local mass properties of control volume finite element methods (CVFE), with a new quadrature integration technique. Subdivision quadrature overcomes stability constrains of traditional quadratures and allows for easy implementation in multiple dimensions. We find subdivision quadrature CVFE-ELMs to be an attractive alternative to current finite element ELMs in estuaries and coasts.;Non-conservative flow fields are the primary concern for estuarine and coastal applications because ELMs cannot mitigate their effect without jeopardizing overall accuracy. We found bathymetric gradients and complex geometry to be the main sources for flow mass errors, and grid refinement to be inadequate to eliminate them. Consequently, mass imbalances in ELM solutions cannot be removed by grid refinement. Control volume finite elements and conservative-equation-based formulations are equally ineffective in the presence of a non-conservative flow. The problem needs to be addressed at the source, i.e., the circulation models that generate the flows.;A detailed analysis of residence times illustrates the importance of improving numerical models, and provides new insights on the variability of residence times in estuarine systems. A new methodology is proposed, which emphasizes the importance of local analysis of residence times to understand the fluxing properties of a complex system, while providing an alternative approach to traditional bulk evaluations of residence times.
机译:欧拉-拉格朗日方法(ELM)越来越多地用于模拟地下水和地表水的运输以及水质,这主要是因为它们具有使用较大时间步长并以不同的时间尺度将过程正式分离的能力。但是,仍然存在两个严重局限性:(1)ELM本身并不能节省质量,(2)在多个维度上,“高阶” ELM的可靠实现非常昂贵。;我们的研究重点是对错误的主要来源的理解在ELM中。我们系统地分析了跟踪误差,积分误差和非保守流场强迫对质量守恒措施,总体精度和稳定性的影响和相对重要性。通过此分析,我们提出了针对河口和沿海地区的大规模保守,全球准确和稳定的多维ELM运移模拟的新方法和一般指南。;我们对跟踪误差的影响进行了开创性研究,证明了其非常强烈的负面影响在质量守恒,整体准确性和稳定性上。在复杂的流场(典型的河口)存在下,强烈不建议使用低阶跟踪方法,因为它们太不精确,无法实现整体质量平衡和相保持,并且会导致潜在的不稳定性。在特征线的底部,是质量和总体误差的重要来源,可以通过网格细化来控制这些误差。为避免此类错误,我们开发了一种新方法,该方法将控制体积有限元方法(CVFE)的灵活性和局部质量特性与新的正交积分技术相结合。细分正交克服了传统正交的稳定性约束,并允许在多个维度上轻松实现。我们发现细分正交CVFE-ELM是河口和海岸地区当前有限元ELM的有吸引力的替代方法;非保守流场是河口和沿海应用的主要考虑因素,因为ELM无法在不损害整体精度的情况下减轻其影响。我们发现,测深梯度和复杂的几何形状是造成流量质量误差的主要来源,而网格细化不足以消除它们。因此,无法通过网格优化消除ELM解决方案中的质量不平衡。在存在非保守流的情况下,控制体积有限元和基于保守方程的公式同样无效。这个问题需要从源头上解决,即产生流量的循环模型;对停留时间的详细分析说明了改进数值模型的重要性,并为河口系统中停留时间的变化性提供了新的见解。提出了一种新的方法,该方法强调了对停留时间进行局部分析以了解复杂系统的通量特性的重要性,同时为传统的大量停留时间评估提供了一种替代方法。

著录项

  • 作者单位

    Oregon Graduate Institute of Science and Technology.;

  • 授予单位 Oregon Graduate Institute of Science and Technology.;
  • 学科 Geophysics.;Environmental Sciences.;Engineering Marine and Ocean.;Hydrology.;Engineering Environmental.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 210 p.
  • 总页数 210
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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