Abd-Rabbou M Y, Rahman Atta Ur, Yurischev Mikhail A, Haddadi Saeed
Mathematics Department, Faculty of Science, Al-Azhar University, Nasr City 11884, Cairo, Egypt.
School of Physics, University of Chinese Academy of Science, Yuquan Road 19A, Beijing 100049, China.
Phys Rev E. 2023 Sep;108(3-1):034106. doi: 10.1103/PhysRevE.108.034106.
Quantum Otto and Carnot engines have recently been receiving attention due to their ability to achieve high efficiencies and powers based on the laws of quantum mechanics. This paper discusses the theory, progress, and possible applications of quantum Otto and Carnot engines, such as energy production, cooling, and nanoscale technologies. In particular, we investigate a two-spin Heisenberg system that works as a substance in quantum Otto and Carnot cycles while exposed to an external magnetic field with both Dzyaloshinsky-Moriya and dipole-dipole interactions. The four stages of engine cycles are subject to analysis with respect to the heat exchanges that occur between the hot and cold reservoirs, alongside the work done during each stage. The operating conditions of the heat engine, refrigerator, thermal accelerator, and heater are all achieved. Moreover, our results demonstrate that the laws of thermodynamics are strictly upheld and the Carnot cycle produces more useful work than that of the Otto cycle.
量子奥托发动机和卡诺发动机最近因其基于量子力学定律实现高效率和高功率的能力而受到关注。本文讨论了量子奥托发动机和卡诺发动机的理论、进展以及可能的应用,如能量生产、冷却和纳米技术。特别地,我们研究了一个双自旋海森堡系统,该系统在存在Dzyaloshinsky-Moriya相互作用和偶极-偶极相互作用的外部磁场中,作为量子奥托循环和卡诺循环中的一种物质。针对发动机循环的四个阶段,分析了在高温和低温热库之间发生的热交换,以及每个阶段所做的功。实现了热机、制冷机、热加速器和加热器的运行条件。此外,我们的结果表明,热力学定律得到严格遵守,并且卡诺循环比奥托循环产生更多的有用功。