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Reactor Network Synthesis Using Coupled Genetic Algorithm with the Quasi-linear Programming Method

机译:遗传算法与拟线性规划相结合的反应堆网络综合

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摘要

Abstract This research is an attempt to develop a new procedure for the synthesis of reactor networks (RNs) using a genetic algorithm (GA) coupled with the quasi-linear programming (LP) method. The GA is used to produce structural configuration, whereas continuous variables are handled using a quasi-LP formulation for finding the best objective function. Quasi-LP consists of LP together with a search loop to find the best reactor conversions (xi), as well as split and recycle ratios (yi). Quasi-LP replaces the nonlinear programming (NLP) problem, and is easier to solve. To prevent complexity and ensure an optimum solution, two types of ideal reactors, namely plug flow reactor (PFR) and continuous stirred tank reactor (CSTR), were considered in the network. Since PFRs require the introduction of differential equations into the problem formulation, a CSTR cascade was used instead in order to eliminate differential equations. To demonstrate the effectiveness of the proposed method, three reactor-network synthesis case studies are presented.
机译:摘要这项研究是尝试开发一种使用遗传算法(GA)结合拟线性规划(LP)方法合成反应堆网络(RNs)的新程序。 GA用于产生结构配置,而连续变量则使用准LP公式处理以找到最佳目标函数。准LP包括LP和搜索循环,以找到最佳的反应器转化率(xi)以及分流比和循环比(yi)。准LP取代了非线性规划(NLP)问题,并且更易于解决。为了避免复杂性并确保最佳解决方案,网络中考虑了两种理想的反应器,即活塞流反应器(PFR)和连续搅拌釜反应器(CSTR)。由于PFR要求将微分方程式引入问题公式中,因此使用CSTR级联来消除微分方程式。为了证明所提出方法的有效性,提出了三个反应堆网络综合案例研究。

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