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预成形件对超高强钢板热冲压减薄率的影响
英文标题:Influence of preformed parts on the thinning rate of hot stamping for ultra high strength steel sheet
作者:李兵 张春 王敏 肖海峰 
单位:湖北汽车工业学院 西安交通大学 
关键词:超高强钢 热冲压 有限元分析 预成形 减薄率 
分类号:TG386
出版年,卷(期):页码:2017,42(7):30-35
摘要:

为了降低超高强钢板在热冲压过程中的减薄率,以车轮侧盖为研究对象,设计了4种预成形件结构方案,通过有限元模拟分析预成形件形状、尺寸对减薄率的影响,基于模拟结果,进行了预成形件热冲压实验。结果表明:热冲压件的显微组织为板条马氏体,显微硬度达到460 HV以上;零件球窝处材料减薄率最大,预成形有利于降低材料减薄率;预成形件储料面积越大,热冲压件材料减薄率越小;预成形件为深度为22.8 mm的圆拱形储料结构且切角时,材料减薄率最小,为11.67%,壁厚均匀性较好。实际热冲压实验结果和数值模拟结果基本一致。

In order to reduce the thinning rate of ultra high strength steel sheet in hot stamping process, for wheel side cover, four kinds of preformed part structure schemes were designed, and the influences of shape and size of preformed parts on the thinning rate were analyzed by the FEM simulation. Then, the hot stamping experiment was carried out based on the simulation results. The forming results indicate that the microstructure of hot stamping parts consists of lath martensite, and the micro-hardness reaches above 460 HV. The maximum material thinning rate is on the ball pocket, and the pre-forming helps to reducing the material thinning rate. The larger the material storage area of preformed parts is, the smaller the material thinning rate of hot stamping parts is. When the preformed part is a circular arch with a depth of 22.8 mm and cutting corners, the material thinning rate is the minimum as 11.67%, and the wall thickness uniformity is better. The experimental results are approximately accordant with the numerical simulation results.

基金项目:
国家自然科学基金资助项目(51205116);湖北省教育厅科学计划项目(Q20151803);湖北省高等学校优秀中青年科技创新团队项目(T201518)
作者简介:
作者简介:李兵(1981-),男,硕士,讲师,E-mail:libing42158823@163.com
参考文献:

[1]徐伟力,管曙荣,艾健,等. 钢板热冲压新技术介绍[J]. 塑性工程学报,2009164):39-43.


Xu W LGuan S RAi Jet al. Introduction of sheet metal hot-forming [J]. Journal of Plasticity Engineering2009164):39-43.


[2]张志强. B柱热冲压数值分析研究[J]. 锻压技术,2010353):57-60.


Zhang Z Q. Numerical analysis of B pillar hot stamping [J]. Forging & Stamping Technology2010353):57-60.


[3]邢忠文,包军,杨玉英,等. 可淬火硼钢板热冲压成形实验研究 [J].材料科学与工艺,2015162):172-175.


Xing Z W Bao JYang Y Yet al. Hot stamping processing experiments of quenchable boron steel [J]. Materials Science and Technology2015162):172-175.


[4]于宏元.车用高强度钢板热冲压工艺改进研究及应用[D]. 大连:大连理工大学,2013.


Yu H Y. Research on Hot Forming Process Improvement of Automobile High Strength Steel and Its Application [D]. Dalian: Dalian University of Technology2013.


[5]王国晖. 22MnB5热冲压成形的回弹及减薄数值模拟研究[D]. 长春:吉林大学,2015.


Wang G H. Numerical Investigation on Springback and Thinning of 22MnB5 in the Hot Forming Process [D]. Changchun: Jilin University2015.


[6]单云.奥迪汽车B柱超高强钢热冲压厚度分布研究[J]. 锻压技术,2015402):22-25.


Shan Y. Study on thickness distribution after hot stamping with ultra high strength steels in Audi car B column [J]. Forging & Stamping Technology2015402):22-25.


[7]尚欣.车身复杂结构件用超高强度钢双热成形关键技术研究[D]. 重庆:重庆大学,2015.


Shang X. Research on Double Hot Forming of Automotive Complex Part Ultra High Strength Steel [D]. Chongqing: Chongqing University2015.


[8]刘文. BR1500HS前立柱加强件热冲压成形数值模拟及工艺研究 [D]. 重庆:重庆大学,2012.


Liu W. Simulation Analysis and Process Study of BR1500 HS Hot Stamping for Pillar Strengthen Part [D]. Chongqing: Chongqing University2012.


[9]吕萌萌.超高强度硼钢板热冲压成形数值模拟及试验研究[D]. 长春:吉林大学,2015.


Lyu M M. Numerical Simulation and Experimental Research on the Hot Stamping Process of Ultra High Strength Boron Sheet Metal [D]. Changchun: Jilin University2015.


[10]Ambikapathy Naganathan. Hot Stamping of Manganese Boron Steel [D]. Columbus: The Ohio State University2010.


[11]苏曦, 陈泽中. 高强度钢B1500HS高温条件下本构方程及其流变行为[J]. 塑性工程学报, 2016, 23(1):84-88,130.


Su XChen Z Z. Constitutive equation and rheological behavior of high strength steel B1500HS at high temperature [J]. Journal of Plasticity Engineering201623(1):84-88,130.

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