Juárez-Huerta V H, Sánchez-Salas N, Chimal-Eguía J C
Departamento de Física, Escuela Superior de Física y Matemáticas, Instituto Politécnico Nacional, UP Zacatenco, Ciudad de México CP 07738, Mexico.
Laboratorio de Simulación y Modelado, Centro de Investigación en Computación, Instituto Politécnico Nacional, Av. Juan de Dios Batiz s/n UP Zacatenco, Ciudad de México CP 07738, Mexico.
Entropy (Basel). 2022 Dec 13;24(12):1812. doi: 10.3390/e24121812.
The efficiency of a thermoelectric generator model under maximum conditions is presented for two optimization criteria proposed under the context of finite-time thermodynamics, namely, the efficient power criterion and the Omega function, where this last function represents a trade-off between useful and lost energy. The results are compared with the performance of the device at maximum power output. A macroscopic thermoelectric generator (TEG) model with three possible sources of irreversibilities is considered: (i) the electric resistance for the Joule heating, (ii) the thermal conductances Kh and Kc of the heat exchangers between the thermal baths and the TEG, and (iii) the internal thermal conductance for heat leakage. In particular, two configurations of the macroscopic TEG are studied: the so-called exoreversible case and the endoreversible limit. It shows that for both TEG configurations, the efficiency at maximum Omega function is always greater than that obtained in conditions of maximum efficient power, and this in turn is greater than that of the maximum power regime.
针对有限时间热力学背景下提出的两个优化准则,即高效功率准则和Ω函数,给出了热电发电机模型在最大条件下的效率,其中最后一个函数表示有用能量和损失能量之间的权衡。将结果与设备在最大功率输出时的性能进行了比较。考虑了一个具有三种可能不可逆源的宏观热电发电机(TEG)模型:(i)焦耳热的电阻,(ii)热浴与TEG之间热交换器的热导率Kh和Kc,以及(iii)热泄漏的内部热导率。特别地,研究了宏观TEG的两种配置:所谓的外可逆情况和内可逆极限。结果表明,对于两种TEG配置,最大Ω函数时的效率总是大于在最大高效功率条件下获得的效率,而后者又大于最大功率状态下的效率。