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Multi-objective optimization of steam system based on GPU acceleration

机译:基于GPU加速的蒸汽系统多目标优化

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The steam system is an important part of the utility systems in process industry. The energy consumption and operation cost of the existing plant were increased due to the inefficient configuration of the steam system. Meanwhile, the fossil fuels such as coal and oil were used to produce steam for the process industry, and the poisonous gases released from the burning process caused a lot of damage to the environments. Therefore, it is of great practical significance to reduce the operation cost and pollutant emissions simultaneously. This paper proposes an evolutionary multi-objective optimization (EMOO) algorithm to deal with this problems. But because of the complexity, higher dimension and rigid constraint conditions of the process industry, the computation time of EMOO algorithm can not meet the requirements of real-time optimization. Thus, Graphics Processing Unit (GPU) computing, which was running on the CUDA platform was introduced to shorten the running time of the algorithm. A constraint handling mechanism was presented to improve the performance of the algorithm. The case study indicates that the proposed GPU-based EMOO algorithm can obtain the Pareto optimal solution of the steam system in a minute-level time.
机译:蒸汽系统是工艺业中公用事业系统的重要组成部分。由于蒸汽系统的低效配置,现有植物的能量消耗和运营成本增加。同时,煤炭和油等化石燃料用于生产工艺业的蒸汽,从燃烧过程中释放的有毒气体导致环境损坏。因此,同时降低运营成本和污染物排放是具有巨大的实际意义。本文提出了一种进化的多目标优化(EMOO)算法来处理这个问题。但由于复杂性,更高的尺寸和流程行业的严格约束条件,Emoo算法的计算时间不能满足实时优化的要求。因此,引入了在CUDA平台上运行的图形处理单元(GPU)计算以缩短算法的运行时间。提出了一个约束处理机制以提高算法的性能。案例研究表明,所提出的基于GPU的EMOO算法可以在分钟时间内获得蒸汽系统的Pareto最佳解决方案。

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