管材自由胀形时胀形区轮廓形状的影响因素
收稿日期: 2010-01-11
修回日期: 2010-03-15
网络出版日期: 2010-06-11
基金资助
国家杰出青年科学基金项目50525516, 黑龙江省自然科学基金项目E200804和中国博士后科学基金特别项目200801285资助
THE FACTORS AFFECTING THE PROFILE OF MIDDLE BULGE REGION DURING TUBE BULGE TEST
Received date: 2010-01-11
Revised date: 2010-03-15
Online published: 2010-06-11
Supported by
Supported by National Natural Science Fund for Distinguished Young Scholars (No.50525516), Natural Science Foundation of Heilongjiang Province (No.E200804) and China Postdoctoral Science Foundation (No.200801285)
林艳丽 , 何祝斌 , 苑世剑 . 管材自由胀形时胀形区轮廓形状的影响因素[J]. 金属学报, 2010 , 46(6) : 729 -735 . DOI: 10.3724/SP.J.1037.2010.00020
Tube bulge test is one novel method of determining the stress-strain relations of tubular materials, compared with the traditional tension test, which can give better description of the mechanical properties of tube. Based on the ellipstical surface assumption of the middle free bulge region during hydrobulging, the tube hydrobulge process is analyzed first. The main factors that affect the shape of the tube were determined and analyzed. Results show that the length of tube bulge region and the entrance radius of the die are two key factors that determine the profile of the middle free bulge region. When other conditions are fixed, the ratio of the two semi-radii will decrease as the decrease of the initial length of tube bulge region or the increase of the die radius. It means that the profile of the middle free bulge region after hydrobulging will change from long ellipsoid to sphere and then to flat ellipsoid. The stress-strain curves determined by tube bulge test differ for different length of tube bulge region and the entrance radius of the die, but are all lower than that of traditional tension test along axial direction. The smaller the length of tube or the bigger the entrance radii of the die, the bigger is the difference.
[1] Dohamnn F, Bohm A, Dudziak K U. In: Wang Z R ed., Advanced Technology of Plasticity 1993–Proc 4th Int Conf on Technology of Plasticity, Beijing: International Academic Publishers, 1993: 447
[2] Yuan S J, Liu G, He Z B, Wang X S, Han C, Teng B G, Xu Y C. Digital Manuf Sci, 2008; 6(4): 2
(苑世剑, 刘钢, 何祝斌, 王小松, 韩 聪, 滕步刚, 徐永超. 数字制造科学, 2008; 6(4): 2)
[3] Sokolowski T, Gerke K, Ahmetoglu M, Altan T. J Mater Process Technol, 2000; 98: 34
[4] Price E G. Can Metall Q, 1972; 11: 129
[5] Arsene S, Bai J B. J Test Eval, 1996; 24: 386
[6] Wang H, Bouchard R, Eagleson R. J Test Eval, 2002; 30: 382
[7] He Z B, Yuan S J, Cha W W, Liang Y C. Acta Metall Sin, 2008; 44: 423
(何祝斌, 苑世剑, 查微微, 梁迎春. 金属学报, 2008; 44: 423)
[8] Woo D M. J Eng Mater Technol, 1973; 95: 219
[9] Woo D M, Hawkes P J. J Inst Met, 1966; 96: 357
[10] Fuchizawa S. In: Lange K ed., Advanced Technology of Plasticity 1987–Proc 2th Int Conf on Technology of Plasticity, Berlin: Springer Verlag, 1987: 727
[11] Fuchizawa S, Narazaki M, Yuki H. In: Wang Z R ed., Advanced Technology of Plasticity 1993–Proc 4th Int Conf on Technology of Plasticity, Beijing: International Academic Publishers, 1993: 488
[12] Koc M, Aue–u–lan Y, Altan T. Int J Mach Tool Manuf, 2001; 41: 761
[13] Hwang Y M, Lin Y K. J Mater Process Technol, 2002; 126: 821
[14] Hwang Y M, Lin Y K, Altan T. Int J Mach Tool Manuf, 2007; 47: 343
[15] Hwang Y M, Lin Y K. J Eng Mater Technol, 2007; 129, 414
[16] Strano M, Altan T. J Mater Process Technol, 2004; 146: 92
[17] Bortot P, Ceretti E, Giardini C. J Mater Process Technol, 2008; 203: 381
/
| 〈 |
|
〉 |