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Multi-objective optimization of heat exchangers using a modified teaching-learning-based optimization algorithm

机译:基于改进的基于教学学习的优化算法的换热器多目标优化

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摘要

Teaching-learning-based optimization (TLBO) is a recently developed heuristic algorithm based on the natural phenomenon of teaching-learning process. In the present work, a modified version of the TLBO algorithm is introduced and applied for the multi-objective optimization of heat exchangers. Plate-fin heat exchanger and shell and tube heat exchanger are considered for the optimization. Maximization of heat exchanger effectiveness and minimization of total cost of the exchanger are considered as the objective functions. Two examples are presented to demonstrate the effectiveness and accuracy of the proposed algorithm. The results of optimization using the modified TLBO are validated by comparing with those obtained by using the genetic algorithm (GA).
机译:基于教学的优化(TLBO)是一种基于教学过程中自然现象的最新开发的启发式算法。在本工作中,引入了TLBO算法的改进版本,并将其应用于热交换器的多目标优化。板翅式换热器和管壳式换热器被认为是最优化的。最大化热交换器效率和最小化热交换器总成本被视为目标函数。给出两个例子来证明所提算法的有效性和准确性。通过与使用遗传算法(GA)获得的结果进行比较,可以验证使用改进的TLBO的优化结果。

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