Experimental verification of a thermodynamic model for a pulse tube cryocooler

被引:0
|
作者
Yuan, J [1 ]
Pfotenhauer, JM [1 ]
机构
[1] Univ Wisconsin, Ctr Appl Superconduct, Madison, WI 53706 USA
来源
关键词
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
In a recently submitted article(1) a thermodynamic model is described which provides an explanation for the performance of a GM type pulse tube cycle, permits optimization of cooling power for a given pulse tube system through the control of valve timing, and allows the design of pulse tubes to achieve the optimized coefficient of performance for specific cooling capacities. The cooling capacity is shown to be correlated with the net work done by the cold end control volume over one cycle. This paper presents an experimental verification of that model for two different scenarios, optimizing cooling power for a given pulse tube system and optimizing COP for a given compressor. The influence of the important parameters, including two intermediate pressures, the timing of the isobaric processes, and the size of the pulse tube on the refrigeration performance are intensively investigated. In addition, the results define a minimum necessary compressor capacity based on the pulse tube size and cycle frequency. Performance is characterized by the cooldown time, the minimum cold end temperature, and the cooling capacity at 60 K. The model predictions are compared both with experimental results obtained from systems driven by a GM compressor with an electrical input power of 1 kW, and with those reported for the Active Buffer system of Zhu(2).
引用
收藏
页码:387 / 393
页数:7
相关论文
共 50 条
  • [41] Investigation of Multi Bypass Pulse Tube Cryocooler
    Shilledar, A.
    Patil, A.
    Atrey, M. D.
    27TH INTERNATIONAL CRYOGENICS ENGINEERING CONFERENCE AND INTERNATIONAL CRYOGENIC MATERIALS CONFERENCE 2018 (ICEC-ICMC 2018), 2019, 502
  • [42] Future trend of pulse tube cryocooler research
    Matsubara, Y.
    ICEC 20: PROCEEDINGS OF THE TWENTIETH INTERNATIONAL CRYOGENIC ENGINEERING CONFERENCE, 2005, : 189 - 196
  • [43] Design of the glass pulse-tube cryocooler
    Jiang, Z.
    Bernhardt, C.
    Pfotenhauer, J. M.
    ADVANCES IN CRYOGENIC ENGINEERING, 2017, 278
  • [44] EXPERIMENTAL INVESTIGATION OF A U-SHAPE PULSE TUBE CRYOCOOLER WITH ONE REGENERATOR AND TWO PULSE TUBES
    Yin, C. L.
    Chen, H. L.
    Zhao, M. G.
    Fei, Q. S.
    Cai, J. H.
    Li, Y. L.
    ADVANCES IN CRYOGENIC ENGINEERING, VOLS 57A AND 57B, 2012, 1434 : 547 - 554
  • [45] LINEARIZED THEORY FOR PULSE TUBE CRYOCOOLER PERFORMANCE
    MIRELS, H
    AIAA JOURNAL, 1994, 32 (08) : 1662 - 1669
  • [46] Numerical simulation study of inertance tube in the pulse tube cryocooler
    Technical Institute of Physics and Chemistry, CAS, Beijing 100080, China
    不详
    Kung Cheng Je Wu Li Hsueh Pao, 2006, SUPPL. 1 (29-32):
  • [47] Miniature pulse tube cryocooler for space applications
    Nast, TC
    Champagne, PJ
    Kotsubo, V
    Olson, J
    Collaco, A
    Evtimov, B
    Renna, T
    Clappier, R
    CRYOCOOLERS 11, 2001, : 145 - 154
  • [48] Reversible cycle piston pulse tube cryocooler
    Johnson, AL
    CRYOCOOLERS 9, 1997, : 309 - 318
  • [49] Conducted EMI Reduction on the Pulse Tube Cryocooler
    Eshraghi, M. J.
    Cho, Myongwon
    Kim, Jin Mok
    Sasada, Ichiro
    IEEE TRANSACTIONS ON MAGNETICS, 2009, 45 (06) : 2754 - 2757
  • [50] Raytheon Stirling/pulse tube cryocooler development
    Kirkeonnell, C. S.
    Hon, R. C.
    Kesler, C. H.
    Roberts, T.
    ADVANCES IN CRYOGENIC ENGINEERING, VOLS 53A AND 53B, 2008, 985 : 909 - +