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Application Research of an Efficient and Stable Boundary Processing Method for the SPH Method

机译:高效稳定边界加工方法的应用研究SPH方法

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The boundary truncation of the kernel function affects the numerical accuracy and calculation stability of the smooth particle hydrodynamics (SPH) method and has been one of the key research fields for this method. In this paper, an efficient and stable boundary processing method for the SPH method was introduced by adopting an improved boundary interpolation method (i.e., the improved Shepard method) which needs only the sum of direct accumulation for fixed-boundary particles to improve the numerical stability and computational efficiency of the fixed ghost particle method. The improvement effect of the method was demonstrated by comparing it with different interpolation methods using the cases of still water, a wave generated by dam-breaking, and a solitary wave attacking problem with fixed walls and a moveable wall. The results showed that the new boundary processing method for SPH can help remarkably improve the efficiency of calculation and reduce the oscillations of pressure when simulating various flows.
机译:内核函数的边界截断影响光滑粒子流体动力学(SPH)方法的数值准确性和计算稳定性,并且是该方法的关键研究领域之一。在本文中,通过采用改进的边界插值方法(即,改进的Shepard方法)来引入SPH方法的高效稳定的边界处理方法,该方法仅需要用于固定边界粒子的直接积累和改善数值稳定性和固定重影颗粒法的计算效率。通过使用静止水的情况将其与不同的内插方法进行比较,证明了该方法的改善效果,通过漏洞产生的漏洞产生的波,以及固定壁和可移动壁的孤立波攻击问题。结果表明,在模拟各种流动时,SPH的新边界处理方法可以帮助显着提高计算效率,并减少压力振荡。

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