Please wait a minute...
J4  2009, Vol. 43 Issue (8): 1454-1457    DOI: 10.3785/j.issn.1008-973X.2009.
动力与电气工程     
35K两级高频脉管制冷研究:Ⅱ.实验验证
甘智华,范炳燕,陈杰,许婷,王仁杰,邱利民
(浙江大学 制冷与低温研究所,浙江 杭州 310027)
Study on high frequency two-stage pulse tube refrigeration at 35 K:
Part Ⅱ. Experimental verification
 GAN Zhi-Hua, FAN Bing-Yan, CHEN Jie, XU Ting, WANG Ren-jie, QIU Li-min
Institute of Refrigeration and Cryogenics, Zhejiang University, Hangzhou 310027, China
 全文: PDF(542 KB)  
摘要:

针对空间35K温区探测器的冷却需要,结合回热器数值计算软件REGEN3.2的计算分析,自行研制了一台第二级脉管采用低温惯性管和低温气库的热耦合型两级高频脉管制冷机.实验研究了充气压力、工作频率、输入功率等对第二级脉管制冷机性能的影响.实验得到35K下最佳充气压力为1.26MPa,最佳工作频率为40Hz,从而验证了理论计算结果.实验结果表明,在充气压力为1.26MPa,工作频率为45Hz,输入功率为135W的条件下,获得了27.4K的最低无负荷制冷温度;在充气压力为1.36MPa,工作频率为40Hz,输入功率为205W的条件下,制冷机在35K获得了0.45W的制冷量.

关键词: 高频脉管制冷机低温惯性管回热器低温制冷机    
Abstract:

For the requirements of detectors cooling at 35 K in space application, based on the calculation and analysis from the regenerator simulation software known as REGEN 3.2, a self-designed two-stage Stirling-type pulse tube cryocooler (PTC) for 35 K with cold inertance tube and cold reservoir at the second stage was manufactured and tested. Experiments on the effects of charging pressure, frequency, input power on the performance of the second stage PTC were carried out. The optimum charging pressure of 1.26 MPa and the optimum frequency of 40 Hz for 35 K were obtained, which agreed well with the theoretical calculation. The lowest no-load temperature of 27.4 K with the charging pressure of 1.26 MPa and the frequency of 45 Hz together with 135 W input power was obtained. The cooling power of 0.45 W at 35 K with the charging pressure of 1.36 MPa and the frequency of 40 Hz was also obtained with an input electric power of 205 W.

Key words: high frequency pulse tube cryocooler    cold inertance tube    regenerator    cryocooler
出版日期: 2009-09-01
:  TB 651  
基金资助:

国家自然科学基金资助项目(50676081)

通讯作者: 邱利民,男,教授,博导.     E-mail: Limin.qiu@zju.edu.cn
作者简介: 甘智华(1973-),男,福建龙海人,副教授,从事深低温气体制冷机研究
服务  
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章  
甘智华
范炳燕
陈杰

引用本文:

甘智华,范炳燕,陈杰,等. 35K两级高频脉管制冷研究:Ⅱ.实验验证[J]. J4, 2009, 43(8): 1454-1457.

GAN Zhi-Hua, FAN Bing-Yan, CHEN Jie, et al. Study on high frequency two-stage pulse tube refrigeration at 35 K:
Part Ⅱ. Experimental verification. J4, 2009, 43(8): 1454-1457.

链接本文:

http://www.zjujournals.com/xueshu/eng/CN/10.3785/j.issn.1008-973X.2009.        http://www.zjujournals.com/xueshu/eng/CN/Y2009/V43/I8/1454

[1] GULLY W, GLAISTER D S, HENDERSHOTT P, et al. Ball aerospace next generation two-stage 35K coolers: the SB235 and SB235E [C]∥ Cryocoolers 14. Boulder: ICC Press, 2007: 49-55.
[2] OLSON J R, KOTSUBO V, CHAMPAGNE P J, et al. Performance of a two-stage pulse tube cryocooler for space applications [C]∥ Cryocoolers 10. New York: Kluwer Academic/Plenum Publishers, 2003: 163-170.
[3] NAST T C, OLSON J, EVTIMOV B, et al. Development of a two-stage pulse tube cryocooler for 35K cooling [C]∥ Cryocoolers 12. New York: Kluwer Academic/Plenum Publishers, 2003: 213-218.
[4] JACO C, NGUYEN T, HARVEY D. High capacity staged pulse tube [C]∥ Cryocoolers 13. New York: Springer, 2005: 109-113.
[5] YANG L W, THUMMES G. High frequency two-stage pulse tube cryocooler with base temperature below 20K [J]. Cryogenics, 2005, 45(2): 155-159.
[6] KANAO K, WATANABE N, KANAZAWA Y. A miniature pulse tube refrigerator for temperature below 100K [J]. Cryogenics, 1994, 34(Suppl.): 167-170.
[7] RADEBAUGH R, LEWIS M, LUO E, et al. Inertance tube optimization for pulse tube refrigerators [C]∥ Advances in Cryogenic Engineering. New York: AIP, 2006, 51: 59-67.
[8] OLSON J R, MATEO S. Cold inertance tube for multi-stage pulse tube cryocooler: US6983610B1 [P]. 2006-01-10.
[9] WARD B, CLARK J, SWIFT G W. Design environment for low-amplitude thermoacoustic energy conversion, Version 6.0, Users Guide. Los Alamos National Laboratory [CP/OL]. 2007-06. http:∥www.lanl.gov/thermoacoustics/DeltaEC.html.
[10] 孔博,甘智华,程章展,等. 脉管制冷系统中的计算机数据采集系统[C]∥第六届全国低温与制冷工程大会.西安:西安交通大学出版社,2003: 142-146.
KONG Bo, GAN Zhi-hua, CHENG Zhang-zhan, et al. A data acquisition system for a two-stage pulse tube refrigerator [C]∥ Proceedings of the Sixth National Cryogenics and Refrigeration Engineering Conference. Xi’an: Xi’an Jiaotong University Press, 2003: 142-146.
[11] GAN Z H, LIU G J, WU Y Z, et al. Study on a 5.0W/80K single stage Stirling type pulse tube cryocooler [J]. Journal of Zhejiang University: Science A, 2008, 9(9): 1277-1282.
[12] RADEBAUGH R, ZIMMERMAN J, SMITH D R, et al. A comparison of three types of pulse tube refrigerators: new methods for reaching 60 K [C]∥ Advances in Cryogenic Engineering. New York: Plenum Publishing Corporation, 1985, 31: 779-789.
[13] RADEBAUGH R, HERRMANN S. Refrigeration efficiency of pulse tube refrigerators [C]∥ Proceedings of 4th International Cryocooler Conference. Bethesda: David Taylor Research  Center, 1986: 119-133.

[1] 赵瑞东, 吴张华, 罗二仓, 戴巍. 热声系统基础实验台模拟[J]. J4, 2013, 47(2): 308-313.
[2] 张楷浩,邱利民,甘智华,周晓晓. 制冷机传导冷却的超导磁体冷却系统研究进展[J]. J4, 2012, 46(7): 1213-1226.
[3] 李卓裴,邱利民,刘国军,等. 热声发动机驱动的脉管制冷机模拟及实验研究[J]. J4, 2009, 43(8): 1458-1462.
[4] 甘智华,范炳燕,徐娜娜,等. 35K两级高频脉管制冷研究:Ⅰ.理论分析[J]. J4, 2009, 43(8): 1448-1453.