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Parallel Navier-Stokes computations on shared and distributed memory architectures

机译:共享和分布式内存架构上的并行Navier-Stokes计算

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摘要

We study a high order finite difference scheme to solve the time accurate flow field of a jet using the compressible Navier-Stokes equations. As part of our ongoing efforts, we have implemented our numerical model on three parallel computing platforms to study the computational, communication, and scalability characteristics. The platforms chosen for this study are a cluster of workstations connected through fast networks (the LACE experimental testbed at NASA Lewis), a shared memory multiprocessor (the Cray YMP), and a distributed memory multiprocessor (the IBM SPI). Our focus in this study is on the LACE testbed. We present some results for the Cray YMP and the IBM SP1 mainly for comparison purposes. On the LACE testbed, we study: (1) the communication characteristics of Ethernet, FDDI, and the ALLNODE networks and (2) the overheads induced by the PVM message passing library used for parallelizing the application. We demonstrate that clustering of workstations is effective and has the potential to be computationally competitive with supercomputers at a fraction of the cost.
机译:我们研究了一种高阶有限差分方案,使用可压缩的Navier-Stokes方程来求解时间精确的射流流场。作为我们不断努力的一部分,我们在三个并行计算平台上实现了数值模型,以研究计算,通信和可伸缩性特征。本研究选择的平台是通过快速网络(NASA Lewis的LACE实验台)连接的工作站集群,共享内存多处理器(Cray YMP)和分布式内存多处理器(IBM SPI)。我们在这项研究中的重点是LACE测试平台。我们为比较Cray YMP和IBM SP1提供了一些结果。在LACE测试平台上,我们研究:(1)以太网,FDDI和ALLNODE网络的通信特性,以及(2)由用于并行化应用程序的PVM消息传递库引起的开销。我们证明了工作站的集群是有效的,并且具有与超级计算机进行计算竞争的潜力,而成本却只有其一小部分。

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