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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Exergetic optimization of shell and tube heat exchangers using a genetic based algorithm
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Exergetic optimization of shell and tube heat exchangers using a genetic based algorithm

机译:基于遗传算法的管壳式换热器优化设计

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In the computer-based optimization, many thousands of alternative shell and tube heat exchangers may be examined by varying the high number of exchanger parameters such as tube length, tube outer diameter, pitch size, layout angle, baffle space ratio, number of tube side passes. In the present study, a genetic based algorithm was developed, programmed, and applied to estimate the optimum values of discrete and continuous variables of the MTNLP (mixed integer nonlinear programming) test problems. The results of the test problems show that the genetic based algorithm programmed can estimate the acceptable values of continuous variables and optimum values of integer variables. Finally the genetic based algorithm was extended to make parametric studies and to find optimum configuration of heat exchangers by minimizing the sum of the annual capital cost and exergetic cost of the shell and tube heat exchangers. The results of the example problems show that the proposed algorithm is applicable to find optimum and near optimum alternatives of the shell and tube heat exchanger configurations.
机译:在基于计算机的优化中,可以通过更改大量的换热器参数(例如,管长,管外径,节距尺寸,布置角度,挡板空间比,管侧数)来检查成千上万个替代性管壳式换热器通过。在本研究中,开发了一种基于遗传的算法,对其进行了编程,并将其应用于估计MTNLP(混合整数非线性编程)测试问题的离散变量和连续变量的最优值。测试问题的结果表明,所编程的基于遗传算法可以估计连续变量的可接受值和整数变量的最优值。最后,将基于遗传的算法扩展到进行参数研究,并通过最小化壳管式换热器的年度资本成本和高能成本之和找到热交换器的最佳配置。实例问题的结果表明,所提出的算法适用于寻找壳管式换热器配置的最佳和接近最佳的替代方案。

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