改进的CPU负载平衡,用于化学动力学复杂连续介质力学任务的数值求解

V. V. Pekunov
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引用次数: 1

摘要

本文探讨了连续介质力学在进行化学反应条件下的数值求解过程的某些方面。这类任务的特点通常是存在多个局部温度较高的区域,这些区域在空间中的位置相对不稳定。在这种情况下,刚性稳定的积分方法与阶跃控制相结合,在“高温”区域比其他区域具有更高的时间输入。在使用几何并行性方面,这一事实导致CPU负载的严重不平衡,从而降低了并行化的总体效率。因此,本文将在上述任务的并行解决方案上下文中研究CPU负载平衡问题。另一种改进了化学动力学方程数值积分的时间预测,对大块分布平衡算法进行了新的修正,该算法在“高温”地区漂移条件下最有效。改进在于线性感知器的应用,它分析了几个以前的时间积分值(基本版本的算法只使用了时间积分历史中的一个以前的点)。这允许在“高温”地区快速和缓慢漂移的条件下工作。该方法的有效性在对建筑物顶部高温燃烧的绕流建模中得到了验证。实验结果表明,改进算法的并行化效率比初始算法提高了2.1%。
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Improved CPU load balancing for numerical solution of the tasks of continuous medium mechanics complicated by chemical kinetics
This article explores certain aspects of the process of numerical solution of the tasks of continuous medium mechanics in the conditions of ongoing chemical reactions. Such tasks are usually characterized by the presence of multiple local areas with elevated temperature, which position in space is relatively unstable. In such conditions, rigidly stable methods of integration with step control, which in the “elevated temperature” areas that have higher time input comparing to other areas. In terms of using geometric parallelism, this fact leads to substantial imbalance of CPU load, which reduces the overall effectiveness of parallelization. Therefore, this article examines the problem of CPU load balancing in the context of parallel solution of the aforementioned tasks. The other offers a new modification of the algorithm of large-block distributed balancing with improved time prediction of the numerical integration of chemical kinetics equations, which is most effective in the conditions of drift of the areas with “elevated temperatures”. The improvement consists in application of the linear perceptron, which analyzes several previous values of time integration (the basic version of the algorithm uses only one previous spot from the history of time integration). This allows working in the conditions of fast and slow drift of the areas with “elevated temperatures”. The effectiveness of this approach is demonstrated on the task of modeling the flow-around the building with high-temperature combustion on its roof. It is indicated that the application of modified algorithm increases the effectiveness of parallelization by 2.1% compared to the initial algorithm.
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