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Optimization of shell-and-tube heat exchangers using a general design approach motivated by constructal theory

机译:基于构造理论的通用设计方法优化管壳式换热器

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摘要

A general optimization design method motivated by constructal theory is proposed for heat exchanger design in the present paper. The simplified version of this design approach is suggested and the optimization problem formulations are given. In this method, a global heat exchanger is divided into several sub heat exchangers in series-and-parallel arrangement. The shell-and-tube heat exchanger is utilized for the method application, and the Tubular Exchanger Manufacturers Association (TEMA) standards are rigorously followed for all design parameters, e.g. tube diameter, arrangement, thickness and number. The fitness function is the total cost of the shell-and-tube heat exchangers, including the investment cost for initial manufacture and the operational cost involving the power consumption to overcome the fric-tional pressure loss. A genetic algorithm is applied to minimize the objective function by adjusting parameters. Three case studies are considered to demonstrate that the new design approach can significantly reduce the total cost compared to the methods of original design, traditional genetic algorithm design, and old constructal design.
机译:本文提出了一种基于构造理论的通用优化设计方法。建议使用此设计方法的简化版本,并给出优化问题的公式。在这种方法中,整体热交换器被分成串联和并联排列的几个子热交换器。管壳式热交换器用于该方法的应用,所有设计参数(例如,管式换热器)均严格遵循管状换热器制造商协会(TEMA)标准。管的直径,布置,厚度和数量。适应度函数是管壳式换热器的总成本,包括初期制造的投资成本和涉及克服摩擦压力损失的功​​耗的运行成本。应用遗传算法通过调整参数来最小化目标函数。考虑了三个案例研究,以证明与原始设计,传统遗传算法设计和旧结构设计方法相比,新设计方法可以显着降低总成本。

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