Optimal Power and Efficiency of Quantum Thermoacoustic Micro-cycle Working in 1D Harmonic Trap

被引:3
作者
Qing E
Feng Wu
Yong Yin
XiaoWei Liu
机构
[1] Huazhong University of Science and Technology,School of Energy and Power Engineering
[2] Wuhan Institute of Technology,School of Science
[3] Naval University of Engineering,Institute of Thermal Science and Power Engineering
来源
Journal of Low Temperature Physics | 2017年 / 189卷
关键词
Thermoacoustic engine; Quantum mechanics; Thermal phonon; Performance parameters;
D O I
暂无
中图分类号
学科分类号
摘要
Thermoacoustic engines (including heat engines and refrigerators) are energy conversion devices without moving part. They have great potential in aviation, new energy utilization, power technology, refrigerating and cryogenics. The thermoacoustic parcels, which compose the working fluid of a thermoacoustic engine, oscillate within the sound channel with a temperature gradient. The thermodynamic foundation of a thermoacoustic engine is the thermoacoustic micro-cycle (TAMC). In this paper, the theory of quantum mechanics is applied to the study of the actual thermoacoustic micro-cycle for the first time. A quantum mechanics model of the TAMC working in a 1D harmonic trap, which is named as a quantum thermoacoustic micro-cycle (QTAMC), is established. The QTAMC is composed of two constant force processes connected by two straight line processes. Analytic expressions of the power output and the efficiency for QTAMC have been derived. The effects of the trap width and the temperature amplitude on the power output and the thermal efficiency have been discussed. Some optimal characteristic curves of power output versus efficiency are plotted, and then the optimization region of QTAMC is given in this paper. The results obtained here not only enrich the thermoacoustic theory but also expand the application of quantum thermodynamics.
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页码:84 / 97
页数:13
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