Steady-state heat engines driven by finite reservoirs
arXiv:2505.05174 · doi:10.1103/hwj9-q7hf
Abstract
We provide a consistent thermodynamic analysis of stochastic thermal engines driven by finite-size reservoirs, which are in turn coupled to infinite-size reservoirs. We consider a cyclic operation mode, where the working medium couples sequentially to hot and cold reservoirs, and a continuous mode with both reservoirs coupled simultaneously. We derive an effective temperature for the finite-size reservoirs determining the entropy production for two-state engines in the sequential coupling scenario, and show that finite-size reservoirs can meaningfully affect the power when compared to infinite-size reservoirs in both sequential and simultaneous coupling scenarios. We also investigate a three-state engine comprising two interacting units and optimize its performance in the presence of a finite reservoir. Notably, we show that the efficiency at maximum power can exceed the Curzon-Ahlborn bound with finite reservoirs. Our work introduces tools to optimize the performance of nanoscale engines under realistic conditions of finite reservoir heat capacity and imperfect thermal isolation.
5 pages+Supplemental Material (5 pages), 7 figures (3 M+4 SM)
References in corpus (13)
- Efficiency at maximum power: An analytically solvable model for stochastic heat engines
- Ensemble and Trajectory Thermodynamics: A Brief Introduction
- Efficiency at maximum power of Feynman's ratchet as a heat engine
- Experimental Realization of a Minimal Microscopic Heat Engine
- Exactly solvable model of stochastic heat engine: Optimization of power, its fluctuations and efficiency
- Stochastic thermodynamics for a periodically driven single-particle pump
- Obtaining efficient thermal engines from interacting Brownian particles under time dependent periodic drivings
- Stochastic thermodynamics of periodically driven systems: Fluctuation theorem for currents and unification of two classes
- Stochastic thermodynamics of a quantum dot coupled to a finite-size reservoir
- Relaxation Dynamics of Meso-Reservoirs
- Real-time milli-Kelvin thermometry in a semiconductor qubit architecture
- Characterization and optimization of heat engines: Pareto-optimal fronts and universal features
- Thermoelectric cooling of a finite reservoir coupled to a quantum dot