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On fluid-shell coupling using an arbitrary Lagrangian-Eulerian fluid solver coupled to a positional Lagrangian shell solver

机译:在使用耦合到位置拉格朗日壳求解器的任意拉格朗日-欧拉流体求解器进行流固耦合时

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In this work, we develop a partitioned algorithm for three-dimensional geometric non-linear fluid-structure interaction analysis using the finite element method. The fluid solver is explicit and its time integration based on characteristics, which automatically introduces stabilising terms on stream direction. The Navier-Stokes equations are written using the arbitrary Lagrangian-Eulerian (ALE) description, in order to accept moving boundaries and coupling with Lagrangian shell elements. The structure is modelled using a novel finite element method formulation for geometric non-linear shell dynamics. Such shell formulation, so-called positional formulation, is based on the minimum potential energy theorem, written regarding nodal positions and generalised unconstrained vectors, not displacements and rotations. These characteristics avoid the use of large rotation approximations. The coupling between the two different meshes is done by mapping the fluid boundary nodes local positions over the shell elements and vice versa, avoiding the need for matching fluid and shell nodes. The fluid mesh is adapted using a simple approach based on shell positions and velocities. The efficiency and robustness of the proposed approach is demonstrated by examples.
机译:在这项工作中,我们开发了一种使用有限元方法进行三维几何非线性流固耦合分析的分区算法。流体求解器是明确的,其基于特征的时间积分可以自动在流向中引入稳定项。 Navier-Stokes方程使用任意Lagrangian-Eulerian(ALE)描述编写,以便接受移动边界并与Lagrangian壳单元耦合。使用新颖的有限元方法来对结构进行建模,以实现几何非线性壳体动力学。这种壳公式,即所谓的位置公式,是基于最小势能定理编写的,该定理是针对节点位置和广义无约束矢量而不是位移和旋转编写的。这些特性避免使用大的旋转近似值。通过在壳单元上绘制流体边界节点的局部位置来完成两个不同网格之间的耦合,反之亦然,从而避免了匹配流体和壳节点的需要。使用基于壳位置和速度的简单方法来调整流体网格。实例证明了该方法的效率和鲁棒性。

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