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Multi-objective performance optimization of irreversible molten carbonate fuel cell-Braysson heat engine and thermodynamic analysis with ecological objective approach

机译:不可逆熔融碳酸盐燃料电池的多目标性能优化-布雷森热机及生态目标热力学分析

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High technology energy systems have generated a lot of interest due to their significant contribution to efficient and environmentally friendly energy production. Among them there are hybrid cycles which usually have higher energy efficiencies and can provide different forms of energy at the same time. The present research poses a question concerning thermodynamic performance of a molten carbonate fuel cell (MCFC)-Braysson heat engine, conducting a multi-objective optimization study, to give a general description of this hybrid cycle. For this purpose, energy efficiency, power density and exergy destruction rate density are considered as the objective functions in conjunction with ecological function density. First, a parametric evaluation is conducted in order to study the effect of the decision variables on the targets separately. These variables include current density of the fuel cell, turbine inlet temperature, effectiveness of the hot side of the heat exchanger which recovers the waste heat of the fuel cell to run the Braysson cycle, and ratio of heat capacity to heat conductance of the cold side of the heat exchanger which rejects the extra low-temperature heat of the Braysson cycle to the environment. Afterwards, due to the great conflict between the objective functions, three case scenarios of triple multi-objective optimization are defined, considering different combinations of the objective functions; and a Pareto front is obtained for each. Multi-objective evolutionary algorithm joined with non-dominated sorting genetic algorithm approach is employed to this aim. In order to ascertain final solutions between Pareto fronts, three fast and robust decision making methods are employed including LINMAP, TOPSIS and Fuzzy. Finally, the relationship between the objective functions is studied.
机译:高科技能源系统因其对高效和环保能源生产的重大贡献而引起了人们的极大兴趣。其中有一些混合循环,通常具有更高的能源效率,并且可以同时提供不同形式的能量。本研究提出了一个有关熔融碳酸盐燃料电池(MCFC)-布雷森热机的热力学性能的问题,该研究进行了多目标优化研究,以对这种混合循环进行总体描述。为此,将能量效率,功率密度和火用破坏率密度与生态功能密度一起视为目标函数。首先,进行参数评估,以便分别研究决策变量对目标的影响。这些变量包括燃料电池的电流密度,涡轮进口温度,回收燃料电池废热以运行布雷森循环的热交换器热侧的效率以及冷侧热容量与热导率的比值换热器将Braysson循环的额外低温热量排到环境中。之后,由于目标函数之间的巨大冲突,考虑了目标函数的不同组合,定义了三重多目标优化的三种情况。并获得每个的帕累托前沿。为此,采用了多目标进化算法和非支配排序遗传算法相结合的方法。为了确定Pareto前沿之间的最终解决方案,采用了三种快速而强大的决策方法,包括LINMAP,TOPSIS和Fuzzy。最后,研究了目标函数之间的关系。

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