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A Framework for Application of Genetic Algorithm to Model-Based Design of Reactive Distillation Process

机译:遗传算法在基于模型的反应精馏过程设计中的应用框架

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摘要

In the present study, we investigate a framework for the application of genetic algorithm (GA) methods to reactive distillation (RD) process design. First, a computational method for hybrid simulation is proposed by linking a commercial process simulator with an in-house GA-based optimizer in order to accelerate the search for process designs showing high performance. When developing the hybrid simulation system, detailed methods for the GA operations of crossover, mutation, and selection were investigated to achieve a combination that maximizes the effectiveness of the simulation framework. Next, we investigate the designs obtained from the simulations for a case study, an RD process for acetyl acetate. The proposed GA method is shown to provide not only the lowest total annual cost (TAC) design, but also various alternative design solutions. Since the generation of alternative designs lets us consider many other factors, e.g., the distillate composition and the overall conversion of the product, we believe that the application of techniques such as multi-niche crowding (MNC) GA could be effective for searching simultaneously structural and operational conditions of multifunctional processes.
机译:在本研究中,我们研究了遗传算法(GA)方法在反应蒸馏(RD)工艺设计中的应用框架。首先,通过将商用过程仿真器与内部基于GA的优化器相链接,提出了一种用于混合仿真的计算方法,以加快对显示高性能的过程设计的搜索。在开发混合仿真系统时,研究了用于交叉,变异和选择的GA操作的详细方法,以实现使仿真框架的效率最大化的组合。接下来,我们调查从模拟获得的设计,以进行案例研究,即乙酸乙二酯的RD工艺。事实证明,提出的GA方法不仅可以提供最低的年度总成本(TAC)设计,还可以提供各种替代设计解决方案。由于替代设计的产生让我们考虑了许多其他因素,例如馏出物的组成和产品的整体转化率,因此我们认为,诸如多生态位拥挤(MNC)GA等技术的应用可能对同时搜索结构物有效。和多功能过程的操作条件。

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