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首页> 外文期刊>International journal of computational fluid dynamics >Acceleration of iterative Navier-Stokes solvers on graphics processing units
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Acceleration of iterative Navier-Stokes solvers on graphics processing units

机译:图形处理单元上迭代Navier-Stokes求解器的加速

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摘要

While new power-efficient computer architectures exhibit spectacular theoretical peak performance, they require specific conditions to operate efficiently, which makes porting complex algorithms a challenge. Here, we report results of the semi-implicit method for pressure linked equations (SIMPLE) and the pressure implicit with operator splitting (PISO) methods implemented on the graphics processing unit (GPU). We examine the advantages and disadvantages of the full porting over a partial acceleration of these algorithms run on unstructured meshes. We found that the full-port strategy requires adjusting the internal data structures to the new hardware and proposed a convenient format for storing internal data structures on GPUs. Our implementation is validated on standard steady and unsteady problems and its computational efficiency is checked by comparing its results and run times with those of some standard software (OpenFOAM) run on central processing unit (CPU). The results show that a server-class GPU outperforms a server-class dual-socket multi-core CPU system running essentially the same algorithm by up to a factor of 4.
机译:新的高能效计算机体系结构具有惊人的理论峰值性能,但它们需要特定条件才能有效运行,这使得移植复杂算法成为一个挑战。在这里,我们报告压力链接方程式(SIMPLE)的半隐式方法的结果以及在图形处理单元(GPU)上实现的带运算符拆分的隐式压力(PISO)方法的结果。我们研究了在非结构化网格上运行的这些算法的部分加速对完全移植的优缺点。我们发现,全端口策略需要将内部数据结构调整为新硬件,并提​​出了一种方便的格式,用于在GPU上存储内部数据结构。我们的实现在标准稳态和非稳态问题上得到了验证,并通过将其结果和运行时间与在中央处理器(CPU)上运行的某些标准软件(OpenFOAM)的结果和运行时间进行比较,来检查其计算效率。结果表明,服务器级GPU优于运行基本相同算法的服务器级双插槽多核CPU系统的性能提高了4倍。

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