期刊文献+

工艺参数对高强度钢冷冲压界面温度影响分析 被引量:4

Numerical Analysis of the Effect of Processing Parameters on Temperature on the Contact Interface During High Strength Steel Cold Stamping
在线阅读 下载PDF
导出
摘要 为探究先进高强度钢冷冲压成形过程中板料-模具界面温度场变化,以DP590钢板U形件冷弯曲过程为研究对象,采用热力耦合有限元静力算法建立弯曲过程的数值仿真模型,完成了板料-凹模圆角区界面温度场数值模拟,分析了相对圆角半径、压边力、拉伸速度和摩擦系数对界面温度峰值的影响.研究表明:随着模具相对圆角半径减小、拉伸速度增大、摩擦系数增大,板料-凹模圆角区界面温度峰值明显增加;压边力对瞬态阶段界面温度峰值没有明显影响,而稳态阶段界面温度峰值随压边力增加而增大,当压边力压实变形板料后其峰值逐渐趋于稳定. In order to study temperature field on the interface between die and blank at die radius zone dur- ing cold sheet forming, the temperature field during DP590 sheet U-shaped bending was calculated by using a thermo-mechanical coupled static implicit finite element model, and then the influences of the four key processing parameters (relative radius of die, blank-holder force, forming velocity, and friction coeffi- cient) on the maximum value of the temperature field were analyzed. The investigation shows that the maximum temperature on the interface increases with the decrease of the relative radius of die, the increase of the forming velocity and the increase of the friction coefficient, respectively. Blank-holder force has ob- viously different influence in different forming phase: in the initial transient phase, the blank-holder force has almost no influence on the maximum temperature, while in the steady phase, the maximum tempera- ture increases with the increase of the blank-holder force in a certain range, but once the force comes above this range, the max value does not increase with the blank-holder force.
出处 《上海交通大学学报》 EI CAS CSCD 北大核心 2017年第4期426-431,共6页 Journal of Shanghai Jiaotong University
基金 国家自然科学基金项目(51275298) 国家重点基础研究发展规划(973)项目(2014CB046601)资助
关键词 先进高强度钢 冷冲压成形 界面温度 工艺参数 advanced high strength steel cold stamping interface temperature processing parameter
  • 相关文献

参考文献8

二级参考文献93

  • 1平板正人,邢奇源.粘模的各种因素及防止措施[J].模具技术,1989(2):12-18. 被引量:6
  • 2李勇,于忠奇,李淑慧,陈新平,蒋浩民.薄板拉深中拉毛缺陷研究进展[J].塑性工程学报,2006,13(4):43-48. 被引量:8
  • 3Fabijanic D M, Barnett M, Hodgson P D, et al. Improving the galling resistance of automotive stamping tools[J]. Metal Forming, 2000, 9: 641-646.
  • 4Gurumoorthy K, Kamaraj M, Prasad R K, et al. Development and use of combined wear testing equipment for evaluating galling and high stress sliding wear behaviour[J]. Materials & Design, 2007, 28: 987-992.
  • 5Van der Heide E, Huis A J, Schipper D J. The effect of lubricant selection on galling in a model wear test [J]. Wear, 2001, 251: 973-979.
  • 6Podgornik B, Hogmark S. Surface modification to improve friction and galling properties of forming tools[J]. Journal of Materials Processing Technology, 2006, 174:334-341.
  • 7Gaard A, Krakhmalev P V, Bergstrom J, et al. Gall ing resistance and wear mechanisms-cold work tool materials sliding against carbon steel sheets[J]. Tribology Letters, 2007, 26(1): 67-72.
  • 8Hirasaka M. Effects of the surface micro geometry of steel sheets on galling behavior[J]. Journal of Materials Processing Technology, 1994, 47: 153-166.
  • 9Schcdin E, Lehtinen B. Galling mechanisms in lubricared systems: A study of sheet metal forming[J].Wear, 1993, 170:119-130.
  • 10Schedin E. Galling mechanisms in sheet forming operations[J]. Wear, 1994, 179: 123-128.

共引文献18

同被引文献13

引证文献4

二级引证文献9

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