Finite time thermodynamic analysis of an irreversible regenerative closed cycle brayton heat engine

S. Kaushik, S. K. Tyagi
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引用次数: 38

Abstract

This communication presents the parametric study of an irreversible regenerative Brayton cycle with nonisentropic compression and expansion processes for finite heat capacitance rates of external reservoirs. The power output of the cycle is maximized with respect to the working fluid temperatures and the expressions for maximum power output and the corresponding thermal efficiency are obtained. The effect of the effectiveness of the various heat exchangers and the efficiencies of the turbine and compressor, the reservoir temperature ratio and the heat capacitance rate of heating and cooling fluids and the cycle working fluid on the power output and the corresponding thermal efficiency has been studied. It is seen the effect of cold side effectiveness is more pronounced for the power output while the effect of regenerative effectiveness is more pronounced for the thermal efficiency. It is found that the effect of turbine efficiency is more than the compressor efficiency on the performance of these cycles. It is also found that the effect of sink-side heat capacitance rate is more pronounced than the heat capacitance rate on the source side and the heat capacitance rate of the working fluid.
不可逆蓄热式闭式布雷顿热机的有限时间热力学分析
本文介绍了外部储层有限热容率下不可逆再生布雷顿循环非等熵压缩和膨胀过程的参数化研究。循环的输出功率与工作流体温度有关,得到了最大功率输出和相应的热效率表达式。研究了各种热交换器的效率、涡轮和压缩机的效率、储层温度比以及加热和冷却流体和循环工质的热容率对输出功率和相应热效率的影响。可以看出,冷侧效率对功率输出的影响更为明显,而再生效率对热效率的影响更为明显。研究发现,涡轮效率对这些循环性能的影响大于压气机效率。研究还发现,相对于源侧热容率和工质热容率,沉侧热容率的影响更为显著。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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