Performance prediction of a distributed Joule-Thomson effect cooler with pillars

被引:3
|
作者
Wang, Jia [1 ]
Cui, Xiaoyu [1 ]
Geng, Hui [1 ]
She, Hailong [1 ]
Chang, Zhihao [1 ]
机构
[1] Univ Shanghai Sci & Technol, Sch Energy & Power Engn, 516, Jungong Rd, Shanghai 200093, Peoples R China
关键词
PCHE; Throttling cooler; Argon; Simulation; OPTIMIZATION; DESIGN;
D O I
10.1016/j.applthermaleng.2022.119265
中图分类号
O414.1 [热力学];
学科分类号
摘要
Hampson type Joule-Thomson (J-T) throttle coolers are widely used for cooling infrared detectors and many electronic components. The conventional J-T throttle coolers are not compact, with low heat transfer efficiency and small cooling capacity. In this paper, a stacked column cluster type microchannel distributed J-T throttle cooler is designed through combining a compact microchannel etched and shaped by photolithography and an atomic diffusion fusion welding process with a J-T throttle cooler. The dimensions of the cooler are 10 mm for the inlet section, 145 mm for the throttling and heat exchange section, 10 mm for the expansion chamber, with 6 layers staggered high pressure channels and 6 low pressure channels. The cooling performance of the cooler under various low-temperature and high-pressure operating conditions were studied through simulations, and the results showed that the cold-end temperatures were 158.0, 147.9, 146.1, 144.1, and 141.1 K for an inlet pressure of 5.20 MPa and inlet temperatures of 280.0, 270.0, 260.0, 250.0, and 240.0 K, respectively, with argon as the work gas. The cold-end temperatures were 163.6, 159.4, 156.8, 154.6, and 152.7 K for an inlet pressure of 5.60, 6.00, 6.40, 6.80, and 7.20 MPa respectively in 288.0 K inlet temperature. In the process of working medium flow and heat transfer in the microcolumn group channel of the cooler, the temperature and pressure change significantly. When the working medium in the flow reaches the phase change state, that is, the phase change temperature and pressure reach, due to the gas liquefies and the flow rate drops, the working medium loses the gas throttling refrigeration effect, and the temperature no longer decreases significantly, and the refrigeration temperature is limited by this. In addition, compared with different inlet pressures, when the inlet temperature is 280.0 K, the 5.20 MPa nitrogen throttling refrigeration temperature is close to the argon gas at 2.98 MPa, which are 223.4 K and 234.9 K, respectively. Therefore, high pressure nitrogen can be considered to replace low pressure argon in engineering applications. In view of the problems involved in the research process of traditional micro-channel throttling coolers, the innovative solutions are put forward in this paper, which can bring new innovations and thoughts for the future research and application of such problems.
引用
收藏
页数:11
相关论文
共 50 条
  • [11] Performance Characteristics of a Joule-Thomson Refrigeration System with Mixed Refrigerant Composition
    Lee, Kwang-Seok
    Yoon, Jung-In
    Son, Chang-Hyo
    Lee, Joon-Hyuk
    Moon, Choon-Geun
    Yoo, Wook-Jin
    Lee, Byeong-Chan
    HEAT TRANSFER ENGINEERING, 2021, 42 (13-14) : 1087 - 1096
  • [12] Transient modeling and influence of operating parameters on thermodynamic performance of miniature Joule-Thomson cryocooler
    Cao, Jing
    Hou, Yu
    Wang, Weibin
    Cai, Jie
    Li, Jiapeng
    Chen, Jun
    Chen, Liang
    Chen, Shuangtao
    APPLIED THERMAL ENGINEERING, 2018, 143 : 1093 - 1100
  • [13] Performance optimization of a miniature Joule-Thomson cryocooler using numerical model
    Ardhapurkar, P. M.
    Atrey, M. D.
    CRYOGENICS, 2014, 63 : 94 - 101
  • [14] Effect of Heat Exchanger and Capillary Geometry on the Performance of Joule-Thomson Refrigerators Operating With Different Mixtures
    Dasari, Venkatesh
    Venkatarathnam, G.
    JOURNAL OF THERMAL SCIENCE AND ENGINEERING APPLICATIONS, 2024, 16 (09)
  • [15] Joule-Thomson Effects on the Flow of Liquid Water
    Stauffer, Philip H.
    Lewis, K. C.
    Stein, Joshua S.
    Travis, Bryan J.
    Lichtner, Peter
    Zyvoloski, George
    TRANSPORT IN POROUS MEDIA, 2014, 105 (03) : 471 - 485
  • [16] Joule-Thomson microcooling developments at University of Twente
    Cao, H. S.
    Vanapalli, S.
    Holland, H. J.
    Vermeer, C. H.
    ter Brake, H. J. M.
    Lerou, P. P. P. M.
    Tirolien, T.
    26TH INTERNATIONAL CRYOGENIC ENGINEERING CONFERENCE & INTERNATIONAL CRYOGENIC MATERIALS CONFERENCE 2016, 2017, 171
  • [17] Baseline design of a sorption-based Joule-Thomson cooler chain for the METIS instrument in the E-ELT
    Wu, Y.
    Zalewski, D. R.
    Vermeer, C. H.
    Holland, H. J.
    Benthem, B.
    ter Brake, H. J. M.
    CRYOGENICS, 2017, 84 : 37 - 52
  • [18] Transient simulation of a miniature Joule-Thomson (J-T) cryocooler with and without the distributed J-T effect
    Damle, R. M.
    Atrey, M. D.
    CRYOGENICS, 2015, 65 : 49 - 58
  • [19] Performance of a miniature ejector for application in a nitrogen Joule-Thomson cycle: Experimental and numerical analysis
    Cao, H. S.
    Geng, L. H.
    Hammink, G.
    Tirolien, T.
    Brake, H. J. M. ter
    APPLIED THERMAL ENGINEERING, 2021, 186
  • [20] Theoretical and Experimental Study of a Flexible Wiretype Joule-Thomson Microrefrigerator for Use in Cryosurgery
    Widyaparaga, Adhika
    Kuwamoto, Masashi
    Sakoda, Naoya
    Kohno, Masamichi
    Takata, Yasuyuki
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2012, 134 (02):