Multi-Objective Optimization of the Basic and Regenerative ORC Integrated with Working Fluid Selection

可用能 火用 有机朗肯循环 热效率 工艺工程 朗肯循环 热力学 工作液 材料科学 热交换器 工程类 余热 化学 物理 功率(物理) 有机化学 燃烧
作者
Yuhao Zhou,Jiongming Ruan,Guotong Hong,Zheng Miao
出处
期刊:Entropy [Multidisciplinary Digital Publishing Institute]
卷期号:24 (7): 902-902 被引量:9
标识
DOI:10.3390/e24070902
摘要

A multi-objective optimization based on the non-dominated sorting genetic algorithm (NSGA-II) is carried out in the present work for the basic organic Rankine cycle (BORC) and regenerative ORC (RORC) systems. The selection of working fluids is integrated into multi-objective optimization by parameterizing the pure working fluids into a two-dimensional array. Two sets of decision indicators, exergy efficiency vs. thermal efficiency and exergy efficiency vs. levelized energy cost (LEC), are adopted and examined. Five decision variables including the turbine inlet temperature, vapor superheat degree, the evaporator and condenser pinch temperature differences, and the mass fraction of the mixture are optimized. It is found that the turbine inlet temperature is the most effective factor for both the BORC and RORC systems. Compared to the reverse variation of exergy efficiency and thermal efficiency, only a weak conflict exists between the exergy efficiency and LEC which tends to make the binary objective optimization be a single objective optimization. The RORC provides higher thermal efficiency than BORC at the same exergy efficiency while the LEC of RORC also becomes higher because the bare module cost of buying one more heat exchange is higher than the cost reduction due to the reduced heat transfer area. Under the heat source temperature of 423.15 K, the final obtained exergy and thermal efficiencies are 45.6% and 16.6% for BORC, and 38.6% and 20.7% for RORC, respectively.

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