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Three-dimensional finite element modelling of coupled free/porous flows: applications to industrial and environmental flows

机译:耦合的自由/多孔流的三维有限元建模:在工业和环境流中的应用

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Conjunctive modelling of free/porous flows provides a powerful and cost-effective tool for designing industrial filters used in the process industry and also for quantifying surface-subsurface flow interactions, which play a significant role in urban flooding mechanisms resulting from sea-level rise and climate changes. A number of well-established schemes are available in the literature for simulation of such regimes; however, three-dimensional (3D) modelling of such flow systems still presents numerical and practical challenges. This paper presents the development of a fully 3D, transient finite element model for the prediction and quantitative analyses of the hydrodynamic behaviour encountered in industrial filtrations and environmental flows represented by coupled flows. The weak-variational formulation in this model is based on the use of C~0 continuous equal-order Lagrange polynomial functions for velocity and pressure fields represented by 3D hexahedral finite elements. A mixed UVWP finite element scheme based on the standard Galerkin technique satisfying the Ladyzhenskaya-Babuska-Brezzi stability criterion through incorporation of an artificial compressibility term in the continuity equation has been employed for the solution of coupled partial differential equations. We prove that the discretization generates unified stabilization for both the Navier-Stokes and Darcy equations and preserves the geometrical flexibility of the computational grids. A direct node-linking procedure involving the rearrangement of the global stiffness matrix for the interface elements has been developed by the authors, which is utilized to couple the governing equations in a single model. A variety of numerical tests are conducted, indicating that the model is capable of yielding theoretically expected and accurate results for free, porous and coupled free/porous problems encountered in industrial and environmental engineering problems representing complex filtration (dead-end and cross-flow) and interacting surface-subsurface flows. The model is computationally cost-effective, robust, reliable and easily implementable for practical design of filtration equipments, investigation of land use for water resource availability and assessment of the impacts of climatic variations on environmental catastrophes (i.e. coastal and urban floods). The model developed in this work results from the extension of a multi-disciplinary project (AEROFIL) primarily sponsored by the European aerospace industries for development of a computer simulation package (Aircraft Cartridge Filter Analysis Modelling Program), which was successfully utilized and deployed for designing hydraulic dead-end filters used in Airbus A380.
机译:自由/多孔流的联合建模为设计过程工业中使用的工业过滤器以及量化地表-地下流相互作用提供了一个功能强大且具有成本效益的工具,这在由海平面上升和上升引起的城市洪水机制中发挥着重要作用。气候变化。文献中提供了许多完善的方案来模拟这种情况。但是,此类流动系统的三维(3D)建模仍然提出了数值上和实际上的挑战。本文介绍了全3D瞬态有限元模型的开发,用于预测和定量分析工业过滤和耦合流代表的环境流中遇到的流体动力学行为。该模型中的弱变式公式基于对3D六面体有限元表示的速度和压力场使用C〜0连续等阶Lagrange多项式函数。耦合偏微分方程的求解采用了基于标准Galerkin技术的混合UVWP有限元方案,该方案通过在连续性方程中加入人工可压缩项,从而满足Ladyzhenskaya-Babuska-Brezzi稳定性准则。我们证明离散化为Navier-Stokes方程和Darcy方程产生了统一的稳定性,并保留了计算网格的几何灵活性。作者已经开发出一种直接的节点链接程序,该程序涉及接口元素的整体刚度矩阵的重新排列,该程序被用于在单个模型中耦合控制方程。进行了各种数值测试,表明该模型能够针对代表复杂过滤(死端和错流)的工业和环境工程问题中遇到的自由,多孔和耦合的自由/多孔问题提供理论上预期的准确结果。和相互作用的地表-地下流动。该模型在计算上具有成本效益,稳健,可靠且易于实施,可用于过滤设备的实际设计,调查土地用途以获取水资源以及评估气候变化对环境灾难(即沿海和城市洪水)的影响。在这项工作中开发的模型是由多学科项目(AEROFIL)的扩展产生的,该项目主要由欧洲航空航天工业赞助,用于开发计算机仿真程序包(“飞机滤芯过滤器分析建模程序”),该程序包已成功利用并部署用于设计空客A380中使用的液压死角过滤器。

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