Irreversible performance of a quantum harmonic heat engine
نویسندگان
چکیده
The unavoidable irreversible loss of power in a heat engine is found to be of quantum origin. Following thermodynamic tradition a model quantum heat engine operating in an Otto cycle is analyzed, where the working medium is composed of an ensemble of harmonic oscillators and changes in volume correspond to changes in the curvature of the potential well. Equations of motion for quantum observables are derived for the complete cycle of operation. These observables are sufficient to determine the state of the system and with it all thermodynamical variables. Once the external controls are set the engine settles to a limit cycle. Conditions for optimal work, power, and entropy production are derived. At high temperatures and quasistatic operating conditions the efficiency at maximum power coincides with the endoreversible result ηq = 1 − √ Tc/Th. The optimal compression ratio varies from C = √ Th/Tc in the quasistatic limit where the irreversibility is dominated by heat conductance to C = (Th/Tc) 1/4 in the sudden limit when the irreversibility is dominated by friction. When the engine deviates from adiabatic conditions the performance is subject to friction. The origin of this friction can be traced to the noncommutability of the kinetic and potential energy of the working medium. PACS numbers: 05.70.Ln Irreversible performance of a quantum harmonic heat engine 2
منابع مشابه
Scaling-Up Quantum Heat Engines Efficiently via Shortcuts to Adiabaticity
The finite-time operation of a quantum heat engine that uses a single particle as a working medium generally increases the output power at the expense of inducing friction that lowers the cycle efficiency. We propose to scale up a quantum heat engine utilizing a many-particle working medium in combination with the use of shortcuts to adiabaticity to boost the nonadiabatic performance by elimina...
متن کاملHarmonic quantum heat devices: optimum-performance regimes.
The finite-time performance of a quantum-mechanical heat engine (or refrigerator) with a working fluid consisting of many noninteracting harmonic oscillators is considered in order to analyze three optimum operating regimes: maximum efficiency (maximum coefficient of performance), maximum work output (maximum cooling load) and a third one, Omega criterion, which represents a compromise between ...
متن کاملIsolated quantum heat engine.
We present a theoretical and numerical analysis of a quantum system that is capable of functioning as a heat engine. This system could be realized experimentally using cold bosonic atoms confined to a double well potential that is created by splitting a harmonic trap with a focused laser. The system shows thermalization, and can model a reversible heat engine cycle. This is the first demonstrat...
متن کاملar X iv : 1 10 9 . 15 89 v 2 [ co nd - m at . q ua nt - g as ] 4 F eb 2 01 2 Isolated quantum heat engine
We present a theoretical and numerical analysis of a quantum system that is capable of functioning as a heat engine. This system could be realized experimentally using cold bosonic atoms confined to a double well potential that is created by splitting a harmonic trap with a focused laser. The system shows thermalization, and can model a reversible heat engine cycle. This is the first demonstrat...
متن کاملبررسی اتلاف در مدار کوانتومی LC
In this article we consider the resistance of a quantum LC circuit as a heat bath. The heat bath can be modeled by a collection of quantum harmonic oscillators with a continuum of frequencies. By using the minimal coupling method between the circuit and the field describing the environment, the process of energy dissipation and probability transitions between the energy levels of the quantum c...
متن کامل