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首页> 外文期刊>Engineering analysis with boundary elements >Application of background pressure with kinematic criterion for free surface extension to suppress non-physical voids in the finite volume particle method
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Application of background pressure with kinematic criterion for free surface extension to suppress non-physical voids in the finite volume particle method

机译:应用运动学准则的背景压力进行自由表面扩展以抑制有限体积粒子法中的非物理空隙

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摘要

Lagrangian particle methods such as smoothed particle hydrodynamics (SPH) and the finite volume particle method (FVPM) can suffer from non-physical voids in the spatial discretisation, due to the inability of numerical particles to deform as continuum fluid elements can. It is known that the situation can be improved for wall-bounded flows in SPH by adding a uniform background pressure to ensure positive absolute pressure everywhere. In this article, we investigate the application of background pressure in FVPM, and show that numerical voids grow under negative pressure and collapse under positive pressure. To use this technique in free-surface flow, however, the background pressure must be applied as an atmospheric pressure at the free surface. A kinematic criterion for free surface extension (KCFSE) to differentiate physical free surfaces from new numerical voids has been developed, supplementing the inherent capability of FVPM to identify free-surface particles robustly. The novel method enables background pressure to be applied at physical free surfaces and throughout the fluid, but not in non-physical voids, facilitating the suppression of such spurious voids. The KCFSE is validated for a translating square cylinder inside a rectangular numerical domain, with and without a free surface, and liquid in an oscillating rectangular tank.
机译:拉格朗日粒子方法(例如平滑粒子流体动力学(SPH)和有限体积粒子方法(FVPM))在空间离散中可能会遇到非物理空隙,这是因为数值粒子无法像连续流体元素一样变形。众所周知,通过增加均匀的背景压力以确保各处的正绝对压力,可以改善SPH中壁面流动的情况。在本文中,我们研究了背景压力在FVPM中的应用,并显示了数值空隙在负压力下增长而在正压力下崩溃。但是,要在自由表面流动中使用此技术,必须在自由表面将背景压力作为大气压施加。建立了自由表面扩展(KCFSE)的运动学准则,以区分物理自由表面和新的数值空隙,从而补充了FVPM固有的能力,可以可靠地识别自由表面粒子。该新颖的方法使得能够将背景压力施加在物理自由表面和整个流体上,而不是施加在非物理空隙中,从而有利于抑制这种虚假空隙。 KCFSE已通过验证,可用于矩形数值域内的平移圆柱体,该圆柱体具有和不具有自由表面,并且在振荡的矩形罐中具有液体。

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