Feidt Michel, Costea Monica
Laboratory of Energetics, Theoretical and Applied Mechanics (LEMTA), URA CNRS 7563, University of Lorraine, 54518 Vandoeuvre-lès-Nancy, France.
Department of Engineering Thermodynamics, National University of Science and Technology POLITEHNICA Bucharest, 060042 Bucharest, Romania.
Entropy (Basel). 2024 Jan 31;26(2):125. doi: 10.3390/e26020125.
This paper presents a continuation of the Chambadal model optimization of the irreversible Carnot engine. We retrieved the results presented in the Special Issue "Carnot Cycle and Heat Engine Fundamentals and Applications II" and enriched them with new contributions that allowed comparing two points of view: (1) the now classical one, centered on entropy production in the four processes of the cycle, which introduces the action of entropy production, with several sequential optimizations; (2) the new one that is relative to an energy degradation approach. The same démarche of sequential optimization was used, but the results were slightly different. We estimate that the second approach is more representative of physics by emphasizing the energy conservation and the existence on an upper and a lower bound in the mechanical energy and power output of the engine.
本文展示了不可逆卡诺热机的尚巴达尔模型优化的延续。我们检索了《卡诺循环与热机基础及应用II》特刊中呈现的结果,并用新的贡献对其进行了充实,从而能够比较两种观点:(1)现在的经典观点,以循环四个过程中的熵产生为中心,引入了熵产生的作用,并进行了多次顺序优化;(2)相对于能量退化方法的新观点。我们采用了相同的顺序优化方法,但结果略有不同。我们估计,第二种方法通过强调能量守恒以及发动机机械能和功率输出中上下界的存在,更能代表物理学。