A Critical Review of Real Gas Effects on the Regenerative Refrigerators

被引:0
作者
Qiang Cao
Mingkai Luan
Peng Li
Li Wei
Yan Wu
机构
[1] Tongji University,Institute of Refrigeration and Cryogenics, School of Mechanical Engineering
[2] Tongji University,Shanghai Key Laboratory of Vehicle Aerodynamics and Vehicle Thermal Management Systems
[3] Tongji University,Department of Electrical Engineering, School of Electronics and Information Engineering
来源
Journal of Thermal Science | 2021年 / 30卷
关键词
real gas effects; regenerative refrigerators; loss mechanism; reduction methods;
D O I
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中图分类号
学科分类号
摘要
The regenerative refrigeration is an important reverse work-heat conversion cycle with a theoretical coefficient of performance (COP) identical to the Carnot efficiency. Practical regenerative refrigerators are capable of working down to 4 K and largely fulfill the refrigeration requirement of modern technologies in many fields, especially for space applications. However, the enthalpy flow associated with the pressure dependence, abbreviated as pressure-induced enthalpy flow, brought about by real gas effects degrades the theoretical COP of the refrigerator to below about 30% of the Carnot efficiency at the temperatures of below the critical point. This paper reviews the long history of exploring the real gas effects which dates back to the 1970s and continues to now. Important explorations of uncovering the loss mechanism and reducing such losses are summarized. The theories that are in accordance with experimental results and simulation results are expounded. We further carry out analyses on the expansion components, including the pulse tube and the clearance gap. Several inferences are made in order to explore the long-lasting puzzles about real gas effects. It is emphasized that the underlying cause of the loss in the regenerator is an indirect effect of the real gas properties. Further study about carrying out a direct verification of the theory is proposed.
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页码:782 / 806
页数:24
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共 201 条
  • [1] Zhang AK(2018)Development of pulse tube cryocoolers at SITP for space application Journal of Low Temperature Physics 191 228-241
  • [2] Wu YN(2017)Effect of impedance on a compressor driving pulse tube refrigerator Applied Thermal Engineering 124 688-694
  • [3] Liu SS(2009)The state of the art and recent developments Journal of Physics Condensed Matter 21 164-219
  • [4] Yu HQ(2019)Acoustic field characteristics of a free-piston Stirling cryocooler with large cooling capacity at liquid nitrogen temperature Applied Thermal Engineering 147 324-335
  • [5] Yang BY(2006)Overview of Lockheed Martin cryocoolers Cryogenics 46 164-168
  • [6] Zhang AK(2016)Modelling of pulse tube refrigerators with inertance tube and mass-spring feedback mechanism Applied Energy 171 172-183
  • [7] Wu YN(2006)Debye equation of state for fluid helium-3 The Journal of Chemical Physics 125 1-10
  • [8] Liu SS(2017)Heat capacity and thermal expansion of water and helium Journal of Thermal Science 26 125-131
  • [9] Zhu HF(2008)Calculated regenerator performance at 4 K with helium-4 and helium-3 Advances in Cryogenic Engineering 53, Chattanooga, TN, Melville 985 225-234
  • [10] Zeng YP(2014)Real gas effects on the temperature profile of regenerators Cryogenics 61 31-37