Cray-2上三维Navier-Stokes算法的多任务处理

J. M. Swisshelm
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引用次数: 3

摘要

为了在Cray-2上高效并行执行,提出了一种三维计算空气动力学算法。它提供了一种检查完整计算流体动力学(CFD)应用程序代码的多任务性能的方法。采用嵌入式分区多重网格格式求解了内部流模型问题的reynolds -average Navier-Stokes方程。该方法的每个组件的显式性质允许计算域的空间划分,从而为具有矢量处理能力的多指令,多数据流(MIMD)计算机实现良好平衡的任务负载。在二维和三维多任务情况下进行了实验。单个任务组在Cray-2的四个处理器上获得的最佳加速是3.54,而在三维情况下,整个求解器在四个处理器上获得了2.67的加速。研究了不同类型计算任务的多处理效率,比较了两种具有不同内存访问速度的Cray-2s的性能,并讨论了对更大问题的外推
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Multitasking a three-dimensional Navier-Stokes algorithm on the Cray-2
A three-dimensional computational aerodynamics algorithm has been multitasked for efficient parallel execution on the Cray-2. It provides a means for examining the multitasking performance of a complete computational fluid dynamics (CFD) application code. An embedded zonal multigrid scheme is used to solve the Reynolds-averaged Navier-Stokes equations for an internal flow model problem. The explicit nature of each component of the method allows a spatial partitioning of the computational domain to achieve a well-balanced task load for multiple-instruction, multiple-data-stream (MIMD) computers with vector-processing capability. Experiments have been conducted with both two- and three-dimensional multitasked cases. The best speedup attained by an individual task group was 3.54 on four processors of the Cray-2, while the entire solver yielded a speedup of 2.67 on four processors for the three-dimensional case. The multiprocessing efficiency of various types of computational tasks is examined, performance on two Cray-2s with different memory access speeds is compared, and extrapolation to larger problems is discussed.<>
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