Ma Yu-Han
Graduate School of China Academy of Engineering Physics, No. 10 Xibeiwang East Road, Haidian District, Beijing 100193, China.
Beijing Computational Science Research Center, Beijing 100193, China.
Entropy (Basel). 2020 Sep 8;22(9):1002. doi: 10.3390/e22091002.
Heat engines used to output useful work have important practical significance, which, in general, operate between heat baths of infinite size and constant temperature. In this paper, we study the efficiency of a heat engine operating between two finite-size heat sources with initial temperature difference. The total output work of such heat engine is limited due to the finite heat capacity of the sources. We firstly investigate the effects of different heat capacity characteristics of the sources on the heat engine's efficiency at maximum work (EMW) in the quasi-static limit. Moreover, it is found that the efficiency of the engine operating in finite-time with maximum power of each cycle is achieved follows a simple universality as η=ηC/4+OηC2, where ηC is the Carnot efficiency determined by the initial temperature of the sources. Remarkably, when the heat capacity of the heat source is negative, such as the black holes, we show that the heat engine efficiency during the operation can surpass the Carnot efficiency determined by the initial temperature of the heat sources. It is further argued that the heat engine between two black holes with vanishing initial temperature difference can be driven by the energy fluctuation. The corresponding EMW is proved to be ηMW=2-2.
用于输出有用功的热机具有重要的实际意义,一般来说,它们在无限大小且恒温的热库之间运行。在本文中,我们研究了在两个具有初始温差的有限大小热源之间运行的热机的效率。由于热源的有限热容量,这种热机的总输出功是有限的。我们首先研究了热源不同热容量特性在准静态极限下对热机最大功效率(EMW)的影响。此外,发现以每个循环最大功率在有限时间内运行的发动机效率遵循一个简单的普遍性规律,即η = ηC/4 + O(ηC²),其中ηC是由热源初始温度确定的卡诺效率。值得注意的是,当热源的热容量为负时,例如黑洞,我们表明运行期间的热机效率可以超过由热源初始温度确定的卡诺效率。进一步论证了初始温差消失的两个黑洞之间的热机可以由能量涨落驱动。相应的EMW被证明为ηMW = 2 - 2 。