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进给冲头与背压对并列双支管液压成形性能的影响
英文标题:Influence of feeding punch and back pressure on formability in hydroforming process for parallel double-branch tube
作者:童江槐 肖小亭 陈名涛 郭衡 刘倩 
单位:广东工业大学 
关键词:进给冲头 背压 并列双支管 管材成形 壁厚减薄 
分类号:TG394
出版年,卷(期):页码:2019,44(1):73-79
摘要:

为探究进给冲头与背压对并列双支管液压成形性能的影响,通过有限元分析与实验相结合的方法,对比分析了进给冲头长度与背压对管材支管高度与壁厚的影响。结果表明:在加载路径相同的条件下,随进给冲头长度增大,管材支管高度提高10.52%,管材支管顶部壁厚减薄率变化率为23.2%,因此,进给冲头长度增加有效提高了管材支管高度,减小了支管顶部壁厚减薄率;背压在并列双支管成形过程中有效减缓了管材支管顶部的壁厚减薄,有效提高了管材的成形性能。对此,通过有限元结果与实验结果分析发现,进给冲头与背压在一定程度上可有效改善并列双支管的成形性能,并且有限元分析结果与实验结果一致。

In order to investigate the effect of feeding punch and back pressure on the formability in the hydroforming process of parallel double-branch tube, the influences of feeding punch length and back pressure on the branch height and wall thickness of tube were analyzed by the finite element analysis and experiment. The results show that under the same loading path, with the increasing of feeding punch length, the branch height of tube increases by 10.52%, and the change rate of wall thickness thinning ratio in the top of tube branch is up to 23.2%. Therefore, the increasing of feeding punch length effectively improves the branch height of tube and reduce the wall thickness thinning ratio in the top of tube branch. And the back pressure effectively reduces the wall thickness thinning in the top of tube branch and improves the forming performance in the hydroforming process of parallel double-branch tube. Thus, based on the analysis results of finite element and experiment, the feeding punch and back pressure can effectively improve the forming performance of the parallel double-branch tube to a certain extent, and the finite element analysis results are in good agreement with the experiment results.

基金项目:
佛山市科技创新专项资金项目(2013GQ100413)
作者简介:
童江槐(1991-),男,硕士研究生,E-mail:1171776461@qq.com;通讯作者:肖小亭(1957-),男,博士,教授,博士生导师,E-mail:xxting1@163.com
参考文献:

[1]杜冰,赵长财,刘一江,等.管材内高压成形变形模式研究[J].机械工程学报,2014,50(16):126-134.


Du B, Zhao C C, Liu Y J, et al. Research on different patterns of tube bulging process[J]. Journal of Mechanical Engineering, 2014, 50(16): 126-134.


[2]史双喜.基于有限元模拟的铝合金管液压胀形的工艺研究[J].现代制造工程, 2016(5):51-53.


Shi S X. Research on hydroforming process for aluminum alloy tube based on FEM[J]. Modern Manufacturing Engineering, 2016(5):51-53.


[3]苑世剑,何祝斌,刘钢,等.内高压成形理论与技术的新进展[J].中国有色金属学报, 2011,21(10):2523-2533.


Yuan S J, He Z B, Liu G, et al. New developments in theory and processes of internal high pressure forming[J]. The Chinese Journal of Nonferrous Metals, 2011, 21(10):2523-2533.


[4]崔亚平,王连东,吴娜,.大减径比阶梯管坯液压胀形轴向力加载方式的研究[J].塑性工程学报,2017,24(2):88-92.


Cui Y P, Wang L D, Wu N, et al. Loading modes of axial force for stepped pipe with large diameter reduction ratio in hydroforming[J]. Journal of Plasticity Engineering, 2017, 24(2):88-92.


[5]梁晓辉,余心宏,王鑫,等.Y型三通管热态内高压成形多目标参数优化[J].重型机械,2012(3):69-73.


Liang X H, Yu X H, Wang X, et al. Multiobjective parameters optimization of Yshaped tube heating hydroforming[J]. Heavy Machinery,2012(3):69-73.


[6]章凯,肖小亭,温华典,等.单侧双排四通管液压胀形壁厚与补料规律研究[J].锻压技术,2011,36(5):51-54.


Zhang K, Xiao X T, Wen H D, et al. Research on thickness and feeding rule for unilateral double fourway tube hydroforming[J]. Forging & Stamping Technology, 2011, 36(5):51-54.


[7]刘静,王有龙,李兰云,.工艺参数对双层304不锈钢波纹管液压胀形的影响[J].塑性工程学报,2017,24(4):11-20.


Liu J, Wang Y L, Li L Y, et al. Influence of process parameters on hydroforming for bilayered 304 stainless steel bellows[J]. Journal of Plasticity Engineering, 2017, 24(4):11-20.


[8]Peng J Y, Zhang W D, Liu G, et al. Effect of internal pressure distribution on thickness uniformity of hydroforming Yshaped tube[J]. Transactions of Nonferrous Metals Society of China2011, 21S2: 423-428.


[9]Chen M T, Xiao X T, Tong J H, et al. Improvement of formability in Tshaped tube hydroforming by a threestage punch shape[J]. The International Journal of Advanced Manufacturing Technology, 2018, 95(5-8):2931-2941.


[10]戴震宇,杨晨.轴向补料对微型管件液压成形性能的影响[J].塑性工程学报,2017,24(4):47-53.


Dai Z Y, Yang C. Influence of axial feeding on the hydroforming of microtube[J]. Journal of Plasticity Engineering, 2017, 24(4):47-53.


[11]Chen M T, Xiao X, Guo H, et al. Deformation behavior, microstructure and mechanical properties of pure copper subjected to tube hydroforming[J]. Materials Science & Engineering A, 2018, 731: 331-343.


[12]陈名涛,肖小亭,刘易凡, . 内压和加载路径对并列双支管内高压成形性的影响[J]. 塑性工程学报,2017,24(5):19-24.


Chen M T, Xiao X T, Liu Y F, et al. Effects of internal pressure and loading path on hydroforming of parallel arrangement multiway tube[J]. Journal of Plasticity Engineering, 2017,24(5):19-24.

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