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A PCISPH implementation using distributed multi-GPU acceleration for simulating industrial engineering applications

机译:使用分布式多GPU加速度的PCISPH实现,用于模拟工业工程应用

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摘要

Predictive–corrective incompressible smoothed particle hydrodynamics (PCISPH) is a promising variant of the particle-based fluid modeling technique smoothed particle hydrodynamics (SPH). In PCISPH, a dedication prediction–correction scheme is employed which allows for using a larger time step and thereby outperforms other SPH variants by up to one order of magnitude. However, certain characteristics of the PCISPH lead to severe synchronization problems that, thus far, prevented PCISPH from being applied to industrial scenarios where high performance computing techniques need to leveraged in order to simulate in appropriate resolution. In this work, we are for the first time, presenting a highly accelerated PCISPH implementation which employs a distributed multi-GPU architecture. To that end, dedicated optimization techniques are presented that allow to overcome the drawbacks caused by the algorithmic characteristics of PCISPH. Experimental evaluations on a standard dam break test case and an industrial water splash scenario confirm that PCISPH can be efficiently employed to model real-world scenarios involving a large number of particles.
机译:预测校正的不可压缩的平滑粒子流体动力学(PCISPH)是颗粒基流体建模技术平滑粒子流体动力学(SPH)的有希望的变体。在PCISPH中,采用奉献预测校正方案,其允许使用较大的时间步长,从而优于其他SPH变型,最多一种级别。然而,PCISPH的某些特征导致严重的同步问题,因此,迄今为止,防止PCISPH应用于高性能计算技术需要利用的工业场景,以便以适当的分辨率模拟。在这项工作中,我们是第一次提出了一种高度加速的PCISPH实现,它采用了分布式多GPU架构。为此,提出了专用的优化技术,其允许克服由PCISPH的算法特性引起的缺点。标准坝断裂测试案例的实验评估和工业水飞溅方案确认PCISPH可以有效地用于模拟涉及大量粒子的真实情景。

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