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基于理想量子气体的不可逆联合卡诺热机性能分析与优化

Performance Analysis and Optimization for Irreversible Combined Carnot Heat Engine Working with Ideal Quantum Gases.

作者信息

Chen Lingen, Meng Zewei, Ge Yanlin, Wu Feng

机构信息

Institute of Thermal Science and Power Engineering, Wuhan Institute of Technology, Wuhan 430205, China.

School of Mechanical & Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China.

出版信息

Entropy (Basel). 2021 Apr 27;23(5):536. doi: 10.3390/e23050536.

Abstract

An irreversible combined Carnot cycle model using ideal quantum gases as a working medium was studied by using finite-time thermodynamics. The combined cycle consisted of two Carnot sub-cycles in a cascade mode. Considering thermal resistance, internal irreversibility, and heat leakage losses, the power output and thermal efficiency of the irreversible combined Carnot cycle were derived by utilizing the quantum gas state equation. The temperature effect of the working medium on power output and thermal efficiency is analyzed by numerical method, the optimal relationship between power output and thermal efficiency is solved by the Euler-Lagrange equation, and the effects of different working mediums on the optimal power and thermal efficiency performance are also focused. The results show that there is a set of working medium temperatures that makes the power output of the combined cycle be maximum. When there is no heat leakage loss in the combined cycle, all the characteristic curves of optimal power versus thermal efficiency are parabolic-like ones, and the internal irreversibility makes both power output and efficiency decrease. When there is heat leakage loss in the combined cycle, all the characteristic curves of optimal power versus thermal efficiency are loop-shaped ones, and the heat leakage loss only affects the thermal efficiency of the combined Carnot cycle. Comparing the power output of combined heat engines with four types of working mediums, the two-stage combined Carnot cycle using ideal Fermi-Bose gas as working medium obtains the highest power output.

摘要

利用有限时间热力学研究了一种以理想量子气体为工质的不可逆联合卡诺循环模型。该联合循环由两个级联模式的卡诺子循环组成。考虑到热阻、内部不可逆性和热泄漏损失,利用量子气体状态方程推导了不可逆联合卡诺循环的功率输出和热效率。通过数值方法分析了工质温度对功率输出和热效率的影响,利用欧拉 - 拉格朗日方程求解了功率输出与热效率之间的最优关系,并重点研究了不同工质对最优功率和热效率性能的影响。结果表明,存在一组工质温度使得联合循环的功率输出最大。当联合循环中无热泄漏损失时,最优功率与热效率的所有特征曲线均为抛物线状,内部不可逆性使功率输出和效率均降低。当联合循环中存在热泄漏损失时,最优功率与热效率的所有特征曲线均为环状,热泄漏损失仅影响联合卡诺循环的热效率。比较四种工质的联合热机功率输出,以理想费米 - 玻色气体为工质的两级联合卡诺循环获得最高功率输出。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e302/8145201/59639290edd5/entropy-23-00536-g001.jpg

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