Citation: | WAN Yin-hui, WANG Guan, LIU Zhi-wen, ZHOU Jia, LI Luo-xing. Crash Properties of 6061 Aluminum Alloy Bumper Beam[J]. Materials and Mechanical Engineering, 2012, 36(7): 67-71. |
[1] |
王智文.汽车轻量化技术发展现状初探[J].汽车工艺与材料, 2009(2):1-6.
|
[2] |
余志生.汽车理论[M].北京:机械工业出版社, 2004:1-251.
|
[3] |
檀晓红, 冯伟, 赵华松.汽车保险杠横梁碰撞性能的有限元分析[J].力学与实践, 2004, 26(2):35-38.
|
[4] |
龚友, 刘星荣, 葛如海.小型客车整车正面碰撞分析[J].江苏理工大学学报:自然科学版, 2000, 21(3):16-21.
|
[5] |
吴胜军.基于ANSYS的汽车保险杠碰撞的数值模拟[J].拖拉机与农用运输车, 2008, 35(4):18-20.
|
[6] |
顾力强, 林忠钦.国内外汽车碰撞计算机模拟研究的现状及趋势[J].北京:汽车工程, 1999, 21(1):1-9.
|
[7] |
杨华.汽车碰撞试验缓冲吸能装置的计算机仿真与试验研究[D].长沙:湖南大学, 2002:1-72.
|
[8] |
屈求真.轿车保险杠系统的结构型式及其法规要求[J].湖北汽车工业学院学报, 1996, 16(1):1-5.
|
[9] |
Livermore Software Technology Corporation. LS-DYNA keyword user′s manual [M].California, USA:LSTC, 2007.
|
[10] |
赵海欧.LS-DYNA动力分析指南[M].北京:兵器工业出版社, 2003:1-305.
|
[11] |
GLANCE P M, DAROCAY G. Computer-aided design, analysis and testing of automotive bumpers[M].[S.l.]:[s.n], 1988.
|
[12] |
SHINICHI I. Heavy-duty truck fuel economy test in actual road traffic[M].[S.l.]:Society of Automotive Engineers, 1997.
|
[13] |
黄世霖, 张金换, 王晓冬.汽车碰撞与安全[M].北京:清华大学出版社, 2000:1-189.
|
[14] |
顾力强.轿车保险杠和金属缓冲吸能结构的耐撞性研究[D].上海:上海交通大学, 2001:1-121.
|
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