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A pressure-based, compressible, two-phase flow finite volume method for underwater explosions

机译:水下爆炸的基于压力的可压缩两相流有限体积方法

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Underwater explosions present many challenges for numerical modeling. The density ratio between explosion gases and the surrounding liquid are typically O(10~3), and the pressure ratios can be just as high. We develop a cell-centered finite volume method to solve the governing equations of a two-phase homogeneous fluid. Isentropic and isothermal equations of state are used to relate densities and pressure, in lieu of solving an energy equation. A volume fraction is used to distinguish between the disparate phases. A pressure-based, segregated algebraic solution procedure is used to solve for the primitive variables representing volume fraction, velocity, and piezometric pressure. Numerical examples include verification and validation for a number of canonical test cases. In particular, we examine an advecting material interface and show the absence of pressure oscillations across the contact discontinuity. The non-conservative form of our equations does not guarantee exact mass balance, but numerical experiments indicate that this dissipative mechanism has a stabilizing affect on the method. Shock tube and axisymmetric underwater explosion problems are presented to demonstrate the robustness of the algorithm when very large density and pressure discontinuities are present. We simulate a shallow water explosion in three dimensions and examine the effects on the free surface and explosion bubble topology.
机译:水下爆炸对数值建模提出了许多挑战。爆炸气体与周围液体之间的密度比通常为O(10〜3),压力比也可以同样高。我们开发了一种以细胞为中心的有限体积方法来求解两相均质流体的控制方程。等熵和等温状态方程用于关联密度和压力,而不是求解能量方程。体积分数用于区分不同的相。基于压力的分离代数求解程序用于求解表示体积分数,速度和测压压力的原始变量。数值示例包括对许多规范测试用例的验证和确认。特别是,我们检查了平缓的材料界面,并显示了整个接触间断处没有压力振荡。我们方程的非保守形式不能保证精确的质量平衡,但是数值实验表明,这种耗散机理对该方法具有稳定作用。提出了冲击管和轴对称水下爆炸问题,以证明当存在非常大的密度和压力不连续性时算法的鲁棒性。我们在三个维度上模拟了浅水爆炸,并研究了对自由表面和爆炸气泡拓扑的影响。

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