Optimal operating protocol to achieve efficiency at maximum power of heat engines

Type: Article

Publication Date: 2018-08-28

Citations: 39

DOI: https://doi.org/10.1103/physreve.98.022133

Abstract

Efficiency at maximum power has been investigated extensively, yet the practical control scheme to achieve it remains elusive. We fill this gap with a stepwise Carnot-like cycle, which consists of the discrete isothermal process (DIP) and adiabatic process. With DIP, we validate the widely adopted assumption of the $\mathcal{C}/t$ relation of the irreversible entropy generation ${S}^{(\mathrm{ir})}$ and show the explicit dependence of the coefficient $\mathcal{C}$ on the fluctuation of the speed of tuning energy levels as well as the microscopic coupling constants to the heat baths. Such a dependence allows us to control the irreversible entropy generation by choosing specific control schemes. We further demonstrate the achievable efficiency at maximum power and the corresponding control scheme with the simple two-level system. Our current work opens new avenues for an experimental test, which was not feasible due to the lack the of the practical control scheme in the previous low-dissipation model or its equivalents.

Locations

  • Physical review. E - View
  • arXiv (Cornell University) - View - PDF
  • PubMed - View
  • DataCite API - View

Similar Works

Action Title Year Authors
+ PDF Chat Consistency of optimizing finite-time Carnot engines with the low-dissipation model in the two-level atomic heat engine 2021 Yuhan Ma
C. P. Sun
Hui Dong
+ PDF Chat Achieve higher efficiency at maximum power with finite-time quantum Otto cycle 2019 Jinfu Chen
Chang-Pu Sun
Hui Dong
+ PDF Chat Low-dissipation engines: Microscopic construction via shortcuts to adiabaticity and isothermality, the optimal relation between power and efficiency 2022 Xiu-Hua Zhao
Zheng-Nan Gong
Z. C. Tu
+ Efficiency of a two-stage heat engine at optimal power 2019 I. Iyyappan
Ramandeep S. Johal
+ Efficiency at the maximum power output for simple two-level heat engine 2016 Sang Hoon Lee
Jaegon Um
Hyunggyu Park
+ PDF Chat Efficiency of a two-stage heat engine at optimal power 2020 I. Iyyappan
Ramandeep S. Johal
+ PDF Chat Achieving Carnot efficiency in a finite-power Brownian Carnot cycle with arbitrary temperature difference 2022 Kosuke Miura
Yuki Izumida
Koji Okuda
+ PDF Chat Efficiency at maximum power output of linear irreversible Carnot-like heat engines 2012 Yang Wang
Z. C. Tu
+ Experimental implementation of finite-time Carnot cycle 2022 Ruo-Xun Zhai
Fangming Cui
Yuhan Ma
C. P. Sun
Hui Dong
+ PDF Chat Power-efficiency trade-off for finite-time quantum harmonic Otto heat engine via phase-space approach 2025 Hyun-Myung Chun
Jongmin Park
+ PDF Chat Beyond the Carnot Limit in the Internal Cycles of a Quantum Heat Engine under Finite Heat Reservoirs 2024 L. -L. Yan
M. -R. Yun
Ming Li
S. -L. Su
Kaifeng Cui
Gang Chen
MengKe Feng
+ PDF Chat Bounds of Efficiency at Maximum Power for Normal-, Sub- and Super-Dissipative Carnot-Like Heat Engines 2013 Yang Wang
Z. C. Tu
+ Efficiency at maximum power of a quantum Carnot engine with temperature tunable baths 2017 Junjie Liu
Chang‐Yu Hsieh
Jianshu Cao
+ PDF Chat Universal constraint for efficiency and power of a low-dissipation heat engine 2018 Yuhan Ma
Dazhi Xu
Hui Dong
Chang-Pu Sun
+ Universal constraint for efficiency and power of a heat engine 2018 Yuhan Ma
Dazhi Xu
Hui Dong
Chang-Pu Sun
+ PDF Chat Efficiency at maximum power output of an irreversible Carnot-like cycle with internally dissipative friction 2012 Jianhui Wang
Jizhou He
+ Microscopic low-dissipation heat engine via shortcuts to adiabaticity and shortcuts to isothermality 2022 Xiuhua Zhao
Zheng-Nan Gong
Z. C. Tu
+ PDF Chat Optimizing thermodynamic cycles with two finite-sized reservoirs 2022 Hong Yuan
Yuhan Ma
C. P. Sun
+ PDF Chat Boosting the performance of quantum Otto heat engines 2019 Jin-Fu Chen
Chang-Pu Sun
Hui Dong
+ PDF Chat Finite-time thermodynamics: A journey beginning with optimizing heat engines 2024 Yuhan Ma
Xiu-Hua Zhao