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Development of a sub-scale dynamics model for pressure relaxation of multi-material cells in Lagrangian hydrodynamics

机译:拉格朗日流体力学中多材料单元压力松弛的子尺度动力学模型的建立

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摘要

We have extended the Sub-Scale Dynamics (SSD) closure model for multi-fluid computational cells. Volume exchange between two materials is based on the interface area and a notional interface translation velocity, which is derived from a linearized Riemann solution. We have extended the model to cells with any number of materials, computing pressure-difference-driven volume and energy exchange as the algebraic sum of pairwise interactions. In multiple dimensions, we rely on interface reconstruction to provide interface areas and orientations, and centroids of material polygons. In order to prevent unphysically large or unmanageably small material volumes, we have used a flux-corrected transport (FCT) approach to limit the pressure-driven part of the volume exchange. We describe the implementation of this model in two dimensions in the FLAG hydrodynamics code. We also report on Lagrangian test calculations, comparing them with others made using a mixed-zone closure model due to Tipton, and with corresponding calculations made with only single-material cells. We find that in some cases, the SSD model more accurately predicts the state of material in mixed cells. By comparing the algebraic forms of both models, we identify similar dependencies on state and dynamical variables, and propose explanations for the apparent higher fidelity of the SSD model.
机译:我们已经扩展了多流体计算单元的子尺度动力学(SSD)闭合模型。两种材料之间的体积交换基于界面面积和名义界面平移速度,这是从线性化Riemann解得出的。我们将模型扩展到具有任意数量材料的单元,将压差驱动的体积和能量交换计算为成对相互作用的代数和。在多维中,我们依靠界面重建来提供界面区域和方向以及材料多边形的质心。为了防止过大或过小的物料体积,我们使用了流量校正运输(FCT)方法来限制体积交换的压力驱动部分。我们在FLAG流体力学代码中二维描述了该模型的实现。我们还报告了拉格朗日试验的计算结果,并将它们与使用Tipton的混合区域闭合模型进行的其他计算结果进行了比较,并与仅使用单材料单元进行的相应计算结果进行了比较。我们发现,在某些情况下,SSD模型可以更准确地预测混合单元中材料的状态。通过比较两个模型的代数形式,我们可以确定对状态和动态变量的相似依赖性,并为SSD模型的较高保真度提出解释。

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