Experimental and Simulation Studies on Cold Welding Sealing Process of Heat Pipes

被引:0
|
作者
Yong LI [1 ]
Shengle CHEN [1 ]
Jinlong HUANG [1 ]
Yuying YAN [2 ]
Zhixin ZENG [1 ]
机构
[1] School of Mechanical and Automotive Engineering,South China University of Technology
[2] Fluids & Thermal Engineering Research Group,Faculty of Engineering,University of Nottingham
基金
中国国家自然科学基金;
关键词
Cold welding sealing process(CWSP); Bonding strength; Heat pipe; Orthogonal experiment;
D O I
暂无
中图分类号
TG453.4 []; TK172.4 [热管];
学科分类号
080201 ; 080503 ; 080702 ;
摘要
Sealing quality strongly affects heat pipe performance, but few studies focus on the process of heat pipe sealing. Cold welding sealing technology based on a stamping process is applied for heat pipe sealing. The bonding mechanism of the cold welding sealing process(CWSP) is investigated and compared with the experimental results obtained from the bonding interface analysis. An orthogonal experiment is conducted to observe the effects of various parameters, including the sealing gap,sealing length, sealing diameter, and sealing velocity on bonding strength. A method with the utilization of saturated vapor pressure inside a copper tube is proposed to evaluate bonding strength. A corresponding finite element model is developed to investigate the effects of sealing gap and sealing velocity on plastic deformation during the cold welding process. Effects of various parameters on the bonding strength are determined and it is found that the sealing gap is the most critical factor and that the sealing velocity contributes the least effect. The best parameter combination(A;B;C;D;, with a 0.5 mm sealing gap, 6 mm sealing length, 3.8 mm sealing diameter, and 50 mm/s sealing velocity) is derived within the experimental parameters. Plastic deformation results derived from the finite element model are consistent with those from the experiment. The instruction for the CWSP of heat pipes and the design of sealing dies of heat pipes are provided.
引用
收藏
页码:332 / 343
页数:12
相关论文
共 50 条
  • [22] High Precision Modeling of Welding and Post Welding Cold Rolling Continuous Process in Numerical Simulation
    Sun, YuJie
    Zang, Yong
    Shi, QingYu
    PROCEEDINGS OF THE SECOND INTERNATIONAL CONFERENCE ON MODELLING AND SIMULATION (ICMS2009), VOL 7, 2009, : 312 - 318
  • [23] Numerical Simulation of the Electron Beam Welding and Post Welding Heat Treatment Coupling Process
    Zhang Hong
    Men Zhengxing
    Li Jiukai
    Liu Yongjie
    Wang Qingyuan
    HIGH TEMPERATURE MATERIALS AND PROCESSES, 2018, 37 (9-10) : 793 - 800
  • [24] Heat pipes for utilization of alternative sources of heat and cold
    Vasil'yev, L.L.
    Heat transfer. Soviet research, 1991, 23 (05): : 693 - 702
  • [25] Heat pumps and heat pipes for applications in cold regions
    Vasiliev, LL
    ADVANCES IN COLD-REGION THERMAL ENGINEERING AND SCIENCES: TECHNOLOGICAL, ENVIRONMENTAL, AND CLIMATOLOGICAL IMPACT, 1999, 533 : 595 - 608
  • [26] The algorithm of verification of welding process for plastic pipes
    Rzasinski, R.
    MODTECH INTERNATIONAL CONFERENCE - MODERN TECHNOLOGIES IN INDUSTRIAL ENGINEERING V, 2017, 227
  • [27] Joining pipes: An accelerated butt welding process
    Kohler, H
    KUNSTSTOFFE-PLAST EUROPE, 2003, 93 (10): : 203 - +
  • [28] COLD WELDING OF COPPER TO KOVAR ALLOY IN SEALING OF SEMICONDUCTOR DEVICES
    KHRENOV, KK
    GURSKII, PI
    DUBOLAZOV, VA
    AUTOMATIC WELDING USSR, 1970, 23 (05): : 46 - +
  • [29] NEW WELDING PROCESS IN THE MANUFACTURING OF UOE PIPES
    HIDAKA, T
    KIMURA, T
    FUJIMORI, S
    TRANSACTIONS OF THE IRON AND STEEL INSTITUTE OF JAPAN, 1986, 26 (05) : 387 - 394
  • [30] Crosslinked polyethylene pipes - Understanding the welding process
    Ovington, S
    Stafford, T
    GAS ENGINEERING & MANAGEMENT, 1996, 36 (10): : 22 - 23