Research progress of interface friction in hot extrusion of aluminium alloys

被引:0
|
作者
Liu Z.-W. [1 ,2 ]
Li L.-X. [1 ,2 ]
Zhang M. [1 ,2 ]
Li S.-K. [1 ,2 ]
机构
[1] State Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, Hunan University, Changsha
[2] College of Mechanical and Vehicle Engineering, Hunan University, Changsha
来源
Li, Luo-Xing (llxly2000@163.com) | 1600年 / Central South University of Technology卷 / 27期
关键词
Aluminium alloy; Equivalent characterization; Friction model; Hot extrusion; Interface friction; Tribological behavior;
D O I
10.19476/j.ysxb.1004.0609.2017.07.01
中图分类号
学科分类号
摘要
In the hot extrusion of aluminium alloys, friction at the workpiece/tools interface has great influence on the die wear, profile surface quality and extrusion load. The friction coefficient is also an important thermal boundary condition in the FE simulation of aluminium extrusion, which is affected by many factors and hard to be quantified. To obtain accurate simulation results, reasonable friction models and friction coefficient should be adopted. The tribological behaviors of contact interfaces in the hot extrusion of aluminum alloy were revealed. The effect of friction and wear on the surface quality of the profile in the bearing was analyzed. The research status and development of surface treatment techniques were comprehensively reviewed and evaluated. The friction models and equivalent characterizations being used for the FE simulation of aluminium extrusion at different contact interfaces were summarized. The main problems of friction in the hot extrusion of aluminium alloys were put forward. © 2017, Science Press. All right reserved.
引用
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页码:1311 / 1322
页数:11
相关论文
共 60 条
  • [1] Liu Z.-W., Li L.-X., Review of bending short process for lightweight component, The Chinese Journal of Nonferrous Metals, 24, 8, pp. 2003-2012, (2014)
  • [2] Hou W.-R., Zhang Z.-H., Xie J.-X., Chen Y.-B., Numerical simulation of temperature field during whole extrusion process of aluminum hollow profile with porthole die extrusion forming, The Chinese Journal of Nonferrous Metals, 23, 3, pp. 2769-2778, (2013)
  • [3] Wang L., Zhou J., Duszczyk J., Katgerman L., Friction in aluminium extrusion-Part 1: A review of friction testing techniques for aluminium extrusion, Tribology International, 56, pp. 89-98, (2012)
  • [4] Schrader T., Shirgaokar M., Altan T., A critical evaluation of the double cup extrusion test for selection of cold forging lubricants, Journal of Materials Processing Technology, 189, 1, pp. 36-44, (2007)
  • [5] Wang L., Yang H., Friction in aluminium extrusion-part 2: A review of friction models for aluminium extrusion, Tribology International, 56, pp. 99-106, (2012)
  • [6] Zhang C., Zhao G., Chen H., Guan Y., Cai H., Gao B., Investigation on effects of die orifice layout on three-hole porthole extrusion of aluminum alloy 6063 tubes, Journal of Materials Engineering and Performance, 22, 5, pp. 1223-1232, (2013)
  • [7] Zhou J., Li L., Duszczyk J., Computer simulated and experimentally verified isothermal extrusion of 7075 aluminium through continuous ram speed variation, Journal of Materials Processing Technology, 146, 2, pp. 203-212, (2004)
  • [8] Li L., Zhang H., Zhou J., Duszczyk J., Li G.Y., Zhong Z.H., Numerical and experimental study on the extrusion through a porthole die to produce a hollow magnesium profile with longitudinal weld seams, Materials & Design, 29, 6, pp. 1190-1198, (2008)
  • [9] Zhao Y.-L., Xing Z.-X., Xue Y.-J., Cao X.-X., Review about foreign and domestic fixed dummy block, Light Alloy Fabrication Technology, 35, 3, pp. 6-15, (2007)
  • [10] Lof J., Elasto-viscoplastic FEM simulations of the aluminium flow in the bearing area for extrusion of thin-walled sections, Journal of Materials Processing Technology, 114, 2, pp. 174-183, (2001)