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2012 Freeman Scholar Lecture: Computational Fluid Dynamics on Graphics Processing Units

机译:2012年Freeman Scholar讲座:图形处理单元上的计算流体动力学

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This paper discusses the various issues of using graphics processing units (GPU) for computing fluid flows. GPUs, used primarily for processing graphics functions in a computer, are massively parallel multicore processors, which can also perform scientific computations in a data parallel mode. In the past ten years, GPUs have become quite powerful and have challenged the central processing units (CPUs) in their price and performance characteristics. However, in order to fully benefit from the GPUs' performance, the numerical algorithms must be made data parallel and converge rapidly. In addition, the hardware features of the GPUs require that the memory access be managed carefully in order to not suffer from the high latency. Fully explicit algorithms for Euler and Navier-Stokes equations and the lattice Boltzmann method for mesoscopic flows have been widely incorporated on the GPUs, with significant speed-up over a scalar algorithm. However, more complex algorithms with implicit formulations and unstructured grids require innovative thinking in data access and management. This article reviews the literature on linear solvers and computational fluid dynamics (CFD) algorithms on GPUs, including the author's own research on simulations of fluid flows using GPUs.
机译:本文讨论了使用图形处理单元(GPU)计算流体流量的各种问题。 GPU主要用于处理计算机中的图形功能,是大规模并行的多核处理器,还可以在数据并行模式下执行科学计算。在过去的十年中,GPU已经变得非常强大,并在价格和性能方面挑战了中央处理器(CPU)。但是,为了充分利用GPU的性能,必须使数值算法与数据并行并迅速收敛。此外,GPU的硬件功能要求仔细管理内存访问,以免遭受高延迟。用于Euler和Navier-Stokes方程的完全显式算法以及用于介观流的晶格Boltzmann方法已被广泛地集成到GPU中,并且比标量算法有明显的提速。但是,具有隐式公式和非结构化网格的更复杂算法需要在数据访问和管理方面进行创新思维。本文回顾了有关GPU上的线性求解器和计算流体力学(CFD)算法的文献,包括作者自己对使用GPU进行流体流动模拟的研究。

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