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A Comparative Study of Metaheuristic Techniques for the Thermoenvironomic Optimization of a Gas Turbine-Based Benchmark Combined Heat and Power System

机译:基于燃气涡轮基准组合热电系统热生化优化的成分型技术的比较研究

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摘要

This paper presents a comparative study of four metaheuristic techniques, namely, the particle swarm optimization (PSO), genetic algorithm (GA), simulated annealing (SA), and the harmony search (HS), used in thermoenvironomic optimization of a benchmark gas turbine-based combined heat and power system known as CGAM problem. The performance comparison of the metaheuristic techniques is conducted by executing each algorithm for 30 runs to evaluate the reproducibility and stability of the optimal solutions. The study takes the exergetic, economic, and environmental factors into consideration in defining the thermoenvironomic objective function in terms of system cost rate. The thermodynamic and the economic model vis-a-vis optimization is validated by comparing the present results with previously published ones. From the optimal results, the PSO was found to be the most effective technique for thermoenvironomic optimization of the CGAM problem. Further, to highlight the benefits of optimization, the results obtained from the best method (PSO) are compared with those obtained by using the base case design variables recommended previously for the classical CGAM problem. The comparative results reveal that the system cost rate and the exergoeconomic factor of the CGAM system are reduced by 10.25% and 5.58%, respectively. Besides, the CO_2 emission also reduces from 16.34 tons/h to 15.17 tons/h.
机译:本文介绍了四种成果技术的比较研究,即粒子群优化(PSO),遗传算法(GA),模拟退火(SA)和和声搜索(HS),用于基准燃气轮机的热处理优化基于称为CGAM问题的组合热量和电力系统。通过执行每种算法30运行来进行成交学技术的性能比较,以评估最佳解决方案的再现性和稳定性。该研究考虑了在系统成本率方面定义了热处理目标函数的前进,经济和环境因素。通过将目前的结果与先前公布的结果进行比较来验证热力学和经济模型Vis-A-Vis优化。从最佳结果中,发现PSO是CGAM问题热生解学优化最有效的技术。此外,为了突出优化的益处,将从最佳方法(PSO)获得的结果与通过使用先前推荐的基本情况设计变量获得的结果进行比较。比较结果表明,CGAM系统的系统成本率和Exergo经济因素分别降低了10.25%和5.58%。此外,CO_2发射还减少了16.34吨/小时至15.17吨/小时。

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