基于 GPU-CA 异构并行的连铸坯凝固组织软测量模型
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TH7 TP3

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国家自然科学基金(51634002)项目资助


GPU-CA heterogeneous parallelism based soft-sensing model for solidification structure of continuous casting slab
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    摘要:

    铸坯凝固组织结构软测量模型算法复杂,计算量大,求解耗时长,基于中央处理器(CPU)的串行求解方法难以适应大尺 寸铸件的预测需求。 为了提高模型的计算效率,提出一种基于图形处理器(GPU)异构并行的元胞自动机(CA)软测量模型。 首 先设计 GPU-CA 异构并行算法,消除元胞之间的数据依赖和数据竞争问题,优化数据并行度;其次设计多流任务调度方案,解决 单流中独立任务互相等待的问题,提高任务并行度;最后,使用某钢厂大型连铸机生产的两个钢种进行模型测试,预测结果与钢 厂实验数据有较高的吻合度,等轴晶率误差约分别为 1% 和 1. 5% ,温度与实测温度的最大相对误差为 1. 37% 。 与 CPU 计算精 度相同的情况下,GPU 的计算加速比高达数百倍,极大地提高了模型的计算速度。

    Abstract:

    The soft-sensing model for solidification structure of continuous casting slab is complicated in algorithm, large amount of calculation and time-consuming in solution. The method based on the central processing unit (CPU) is difficult to meet the prediction needs of large-size casting. To improve the calculation efficiency, a cellular automaton ( CA) soft-sensing model based on graphic processing unit (GPU) heterogeneous parallelism is proposed. Firstly, the heterogeneous parallel algorithm of GPU-CA is designed to eliminate the data dependence and data competition among cells, which optimizes the parallelism degree among data. Secondly, a multi-stream task scheduling scheme is proposed to solve the problem of independent tasks waiting each other in single-stream, and improving the degree of task parallelism. Finally, two kinds of the steel produced by a large-scale continuous caster in a certain steel plant are used to test the model. The predicted results are in good agreement with the field experiment data, where equiaxed grain rate errors are about 1% and 1. 5% , respectively. The maximum relative error between temperature and measured temperature is 1. 37% . In the case of the same calculation accuracy as CPU, the speedup of GPU is hundreds of times, which greatly improves the computing speed of the model.

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汪静静,孟红记,阳 剑,谢 植.基于 GPU-CA 异构并行的连铸坯凝固组织软测量模型[J].仪器仪表学报,2022,43(11):219-228

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  • 在线发布日期: 2023-06-30
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