期刊文献+

Ultrasonic Welding of Magnesium–Titanium Dissimilar Metals:A Study on Thermo-mechanical Analyses of Welding Process by Experimentation and Finite Element Method 被引量:2

Ultrasonic Welding of Magnesium–Titanium Dissimilar Metals:A Study on Thermo-mechanical Analyses of Welding Process by Experimentation and Finite Element Method
下载PDF
导出
摘要 Ultrasonic welding is an effective ways to achieve a non-reactive/immiscible heterogeneous metal connection, such as the connection of magnesium alloy and titanium alloy. But the thermal mechanism of magnesium alloy/titanium alloy ultrasonic welding has not been defined clearly. In this paper, the experimental and the finite element analysis were adopted to study the thermal mechanism during welding. Through the test, the temperature variation law during the welding process is obtained, and the accuracy of the finite element model is verified. The microscopic analysis indicates that at the welding time of 0.5 s, the magnesium alloy in the center of the solder joint is partially melted and generates the liquid phase. Through the finite element analysis, the friction coefficient of the magnesium–titanium ultrasonic welding interface can be considered as an average constant value of 0.28. The maximum temperature at the interface can exceed 600 ℃ to reach the melting point temperature of the magnesium alloy. The plastic deformation begins after 0.35 s and occurs at the magnesium side at the center of the interface. Ultrasonic welding is an effective ways to achieve a non-reactive/immiscible heterogeneous metal connection, such as the connection of magnesium alloy and titanium alloy. But the thermal mechanism of magnesium alloy/titanium alloy ultrasonic welding has not been defined clearly. In this paper, the experimental and the finite element analysis were adopted to study the thermal mechanism during welding. Through the test, the temperature variation law during the welding process is obtained, and the accuracy of the finite element model is verified. The microscopic analysis indicates that at the welding time of 0.5 s, the magnesium alloy in the center of the solder joint is partially melted and generates the liquid phase. Through the finite element analysis, the friction coefficient of the magnesium–titanium ultrasonic welding interface can be considered as an average constant value of 0.28. The maximum temperature at the interface can exceed 600 ℃ to reach the melting point temperature of the magnesium alloy. The plastic deformation begins after 0.35 s and occurs at the magnesium side at the center of the interface.
出处 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2019年第6期181-191,共11页 中国机械工程学报(英文版)
基金 Supported by National Natural Science Foundation of China(Grant Nos.U1764251,51775160) Fundamental Research Funds for the Central Universities of China(Grant No.DUT19LAB24)
关键词 Ultrasonic welding Magnesium alloys Titanium alloys Thermo-mechanical analyses Finite elementanalysis Ultrasonic welding Magnesium alloys Titanium alloys Thermo-mechanical analyses Finite element analysis
  • 相关文献

参考文献4

二级参考文献36

  • 1汤安民,师俊平.几种金属材料宏观断裂形式的试验研究[J].应用力学学报,2004,21(3):142-144. 被引量:27
  • 2陈刚,陈忠富,徐伟芳,陈勇梅,黄西成.45钢的J-C损伤失效参量研究[J].爆炸与冲击,2007,27(2):131-135. 被引量:72
  • 3朱浩,朱亮,陈剑虹.应力三轴度和应变率对6063铝合金力学性能的影响及材料表征[J].材料科学与工程学报,2007,25(3):358-362. 被引量:41
  • 4Ding Y, Kim J K, Tong P. Numerical analysis of ultrasonic wire bonding: Effects of bonding parameters on contact pressure and frictional energy [J]. Mechanics of Materials, 2006,38(1):11-24.
  • 5Ding Y, Kim J K. Numerical analysis of ultrasonic wire bond- ing: Part2. Effects of bonding parameters on temperature rise [J]. Microelectronics Reliability,2008,48(1):149-157.
  • 6Zhang C B. Li L J. A friction-based finite element analysis of ultrasonic consolidation[J].Welding Journal,2008,87(7): 187-194.
  • 7Siddiq A, Ghassemieh E, Thermomechanical analyses of ultra- sonic welding process using thermal and acoustic softening ef- fects [J]. Mechanics of Materials,2008,40:982-1000.
  • 8Elangovan S, Semeer S, Prakasan K. Temperature and stress distribution in ultrasonic metal welding-an FEA-based study [J]. Journal of Materials Processing Technology,2009,209:1143-1150.
  • 9李国华,吴淼.现代无损检测与评价[M].北京:北京大学出版社.2009.304.
  • 10De Vries E. Mechanics and mechanisms of ultrasonic metal welding[D]. The Ohio State University, 2004.

共引文献19

同被引文献11

引证文献2

二级引证文献13

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部