Performance analysis of quantum harmonic Otto engine and refrigerator under a trade-off figure of merit

被引:3
作者
Kaur, Kirandeep [3 ]
Rebari, Shishram [4 ]
Singh, Varinder [1 ,2 ]
机构
[1] Korea Inst Adv Study, Sch Phys, Seoul 02455, South Korea
[2] Inst Basic Sci IBS, Ctr Theoret Phys Complex Syst, Daejeon 34126, South Korea
[3] Indian Inst Sci Educ & Res Mohali, Dept Phys Sci, Sect 81,Manauli PO, Sas Nagar 140306, India
[4] Dr BR Ambedkar Natl Inst Technol, Dept Phys, Jalandhar 144011, Punjab, India
关键词
quantum heat engine; harmonic oscillator; non-adiabatic driving; frictional effects; phase diagram; FINITE-TIME; HEAT ENGINE; EFFICIENCY; THERMODYNAMICS; OPTIMIZATION; SHORTCUTS; CRITERION;
D O I
10.1515/jnet-2024-0034
中图分类号
O414.1 [热力学];
学科分类号
摘要
We investigate the optimal performance of the quantum Otto engine and refrigeration cycles of a time-dependent harmonic oscillator under a trade-off figure of merit for both adiabatic and nonadiabatic (sudden-switch) frequency modulations. For heat engines (refrigerators), the chosen trade-off figure of merit is an objective function defined by the product of efficiency (coefficient of performance) and work output (cooling load), thus representing a compromise between them. We obtain analytical expressions for the efficiency and coefficient of performance of the harmonic Otto cycle for the optimal performance of the thermal machine in various operational regimes. Particularly, in the sudden-switch regime, we discuss the implications of the nonadiabatic driving on the performance of the thermal machine under consideration and obtain analytic expressions for the maximum achievable efficiency and coefficient of performance of the harmonic Otto thermal machine. Particularly, we show that the quantum harmonic Otto cycle driven by sudden-switch protocol cannot work as a heat engine or refrigerator in the low-temperature limit. Finally, we show that in the high-temperature limit, the frictional effects give rise to a richer structure of the phase diagram of the harmonic Otto cycle. We identify the parametric regime for the operation of the Otto cycle as a heat engine, refrigerator, accelerator, and heater.
引用
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页码:1 / 19
页数:19
相关论文
共 85 条
[1]   Single-Ion Heat Engine at Maximum Power [J].
Abah, O. ;
Ronagel, J. ;
Jacob, G. ;
Deffner, S. ;
Schmidt-Kaler, F. ;
Singer, K. ;
Lutz, E. .
PHYSICAL REVIEW LETTERS, 2012, 109 (20)
[2]   Optimal performance of a quantum Otto refrigerator [J].
Abah, Obinna ;
Lutz, Eric .
EPL, 2016, 113 (06)
[3]   Carnot Cycle at Finite Power: Attainability of Maximal Efficiency [J].
Allahverdyan, Armen E. ;
Hovhannisyan, Karen V. ;
Melkikh, Alexey V. ;
Gevorkian, Sasun G. .
PHYSICAL REVIEW LETTERS, 2013, 111 (05)
[4]   THERMODYNAMICS IN FINITE-TIME [J].
ANDRESEN, B ;
SALAMON, P ;
BERRY, RS .
PHYSICS TODAY, 1984, 37 (09) :62-70
[5]   Current Trends in Finite-Time Thermodynamics [J].
Andresen, Bjarne .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2011, 50 (12) :2690-2704
[6]   AN ECOLOGICAL OPTIMIZATION CRITERION FOR FINITE-TIME HEAT ENGINES [J].
ANGULOBROWN, F .
JOURNAL OF APPLIED PHYSICS, 1991, 69 (11) :7465-7469
[7]   On the efficiency at maximum cooling power [J].
Apertet, Y. ;
Ouerdane, H. ;
Michot, A. ;
Goupil, C. ;
Lecoeur, Ph. .
EPL, 2013, 103 (04)
[8]   Irreversibilities and efficiency at maximum power of heat engines: The illustrative case of a thermoelectric generator [J].
Apertet, Y. ;
Ouerdane, H. ;
Goupil, C. ;
Lecoeur, Ph. .
PHYSICAL REVIEW E, 2012, 85 (03)
[9]   First-order irreversible thermodynamic approach to a simple energy converter [J].
Arias-Hernandez, L. A. ;
Angulo-Brown, F. ;
Paez-Hernandez, R. T. .
PHYSICAL REVIEW E, 2008, 77 (01)
[10]   Thermodynamic Bounds on Efficiency for Systems with Broken Time-Reversal Symmetry [J].
Benenti, Giuliano ;
Saito, Keiji ;
Casati, Giulio .
PHYSICAL REVIEW LETTERS, 2011, 106 (23)