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首页> 外文期刊>Journal of Applied Polymer Science >Multiobjective dynamic optimization of an industrial nylon 6 semibatch reactor using genetic algorithm
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Multiobjective dynamic optimization of an industrial nylon 6 semibatch reactor using genetic algorithm

机译:基于遗传算法的工业尼龙6半间歇反应器多目标动态优化

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The nondominated sorting genetic algorithm (NSGA) is adapted and used to obtain multiobjective Pareto optimal solutions for three grades of nylon 6 being produced in an industrial semibatch reactor. The total reaction time and the concentration of an undesirable cyclic dimer in the product are taken as two individual objectives for minimization, while simultaneously requiring the attainment of design values of the final monomer conversion and for the number-average chain length. Substantial improvements in the operation of the nylon 6 reactor are indicated by this study. The technique used is very general in nature and can be used for multiobjective optimization of other reactors. Good mathematical models accounting for all the physicochemical aspects operative in a reactor (and which have been preferably tested on industrial data) are a prerequisite for such optimization studies. (C) 1998 John Wiley & Sons, Inc. [References: 29]
机译:对非支配排序遗传算法(NSGA)进行了调整,并用于为工业半间歇反应器中生产的三个等级的尼龙6获得多目标Pareto最优解。将总反应时间和产物中不期望的环状二聚体的浓度作为最小化的两个单独目标,同时要求获得最终单体转化率的设计值和数均链长。这项研究表明,尼龙6反应器的运行有了实质性的改进。所使用的技术本质上非常通用,可用于其他反应堆的多目标优化。良好的数学模型应考虑到在反应器中运行的所有物理化学方面(并且已经在工业数据上进行了优选测试)是进行此类优化研究的前提。 (C)1998 John Wiley&Sons,Inc. [参考:29]

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