Effect of induced pressure fluctuation in reservoir of a pulse tube cryocooler

被引:1
作者
Abraham, Derick [1 ]
Kuzhiveli, Biju T. [1 ]
机构
[1] Natl Inst Technol Calicut, CASC, Calicut 673601, Kerala, India
来源
27TH INTERNATIONAL CRYOGENICS ENGINEERING CONFERENCE AND INTERNATIONAL CRYOGENIC MATERIALS CONFERENCE 2018 (ICEC-ICMC 2018) | 2019年 / 502卷
关键词
D O I
10.1088/1757-899X/502/1/012046
中图分类号
O59 [应用物理学];
学科分类号
摘要
Pulse Tube Cryocoolers are used extensively in aerospace applications, environmental studies, and medical applications. It has several advantages of which some are very low vibration and long life. The performance of Pulse tube cryocooler can be enhanced by using a combination of inertance tube and reservoir. For practical applications the pulse tube cryocooler should be compact in size. This could be achieved by reducing the volume of the reservoir. This paper analyses the feasibility of introducing a reverse fluctuation inside the reservoir to minimize reservoir volume. Reverse fluctuation could be introduced by using the back volume of hermetically sealed linear compressor. To ascertain the same a numerical model was developed and simulated using Ansys Fluent. The effect of pressure variation in the reservoir and its equivalent performance was also simulated. The results suggest that the use of bounce space has a better results at lower volume and equivalent performance on increasing volume when compared to the cryocooler with reservoir.
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页数:5
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共 9 条
  • [1] CFD analysis of thermodynamic cycles in a pulse tube refrigerator
    Chen, Ling
    Zhang, Yu
    Luo, Ercang
    Li, Teng
    Wei, Xiaolin
    [J]. CRYOGENICS, 2010, 50 (11-12) : 743 - 749
  • [2] CFD modeling and experimental verification of a single-stage coaxial Stirling-type pulse tube cryocooler without either double-inlet or multi-bypass operating at 30-35 K using mixed stainless steel mesh regenerator matrices
    Dang, Haizheng
    Zhao, Yibo
    [J]. CRYOGENICS, 2016, 78 : 40 - 50
  • [3] Performance of the inertance pulse tube
    de Boer, PCT
    [J]. CRYOGENICS, 2002, 42 (3-4) : 209 - 221
  • [4] Basic Operation of Cryocoolers and Related Thermal Machines
    de Waele, A. T. A. M.
    [J]. JOURNAL OF LOW TEMPERATURE PHYSICS, 2011, 164 (5-6) : 179 - 236
  • [5] Tandem-type pulse tube refrigerator without reservoir
    Ki, Taekyung
    Jeong, Sangkwon
    Ko, Junseok
    Park, Jiho
    [J]. CRYOGENICS, 2015, 72 : 44 - 52
  • [6] Radebaugh R., 2000, P I REFRIG, V61, P1999
  • [7] A critical review of liquid helium temperature high frequency pulse tube cryocoolers for space applications
    Wang, B.
    Gan, Z. H.
    [J]. PROGRESS IN AEROSPACE SCIENCES, 2013, 61 : 43 - 70
  • [8] Modelling of pulse tube refrigerators with inertance tube and mass-spring feedback mechanism
    Wang, Kai
    Dubey, Swapnil
    Choo, Fook Hoong
    Duan, Fei
    [J]. APPLIED ENERGY, 2016, 171 : 172 - 183
  • [9] CFD modeling and experimental verification of oscillating flow and heat transfer processes in the micro coaxial Stirling-type pulse tube cryocooler operating at 90-170 Hz
    Zhao, Yibo
    Yu, Guorui
    Tan, Jun
    Mao, Xiaochen
    Li, Jiaqi
    Zha, Rui
    Li, Ning
    Dang, Haizheng
    [J]. CRYOGENICS, 2018, 90 : 30 - 40