基于遗传算法和模糊决策的太阳能爱立信循环多目标优化

R. Arora, S. Kaushik, Raj Kumar
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引用次数: 13

摘要

考虑了太阳能爱立信热机的多目标热力优化问题。采用多目标遗传算法(MOGA)和有限时间热力学方法(FTT)来优化功率输出和热效率,这是本研究的目标。采用基于MOGA的进化算法实现了功率输出和热效率的同步优化。换热器的各种效能以及源侧和汇侧工质的温度作为决策变量。在MATLAB 7.8中找到了双目标之间的Pareto前沿。进一步,采用模糊Bellman-Zadeh决策方法提取双目标的最优值。在源侧换热器效率、汇侧换热器效率、蓄热器侧换热器效率、源侧工质和汇侧工质分别为0.79、0.79、0.88、901 K和436 K的最优值下,模型的功率输出和热效率同时得到优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-objective optimization of solar powered ericsson cycle using genetic algorithm and fuzzy decision making
Solar driven Ericsson heat engine has been considered for multi-objective thermodynamic optimization. Multi-objective genetic algorithm (MOGA) and finite time thermodynamic (FTT) approaches are implemented for optimization of power output and thermal efficiency which are considered as objectives in the study. Simultaneous optimization of power output and thermal efficiency are achieved using evolutionary algorithm based on MOGA. Various effectiveness of heat exchangers and temperatures of source and sink side working fluid are considered as decision variables. Pareto front between dual objectives is found in MATLAB 7.8. Further, Fuzzy Bellman-Zadeh decision making method is used to extract best optimal values of dual objective. Simultaneous optimization of power output and thermal efficiency of proposed model is obtained at optimal values of source side heat exchanger effectiveness, sink side heat exchanger effectiveness, regenerator side heat exchanger effectiveness, and source side working fluid and sink side working fluid as 0.79, 0.79, 0.88, 901 K and 436 K respectively.
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