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超高强度钢的热冲压成形极限
英文标题:Hot stamping forming limit of ultra high strength steel
作者:吴斌 王振华 单云  
单位:无锡职业技术学院 
关键词:FLD 超高强钢 热冲压 胀形实验 成形极限 
分类号:TG142.41
出版年,卷(期):页码:2016,41(8):29-34
摘要:
超高强度钢板作为轻量化材料广泛应用于热冲压中,研究其高温下的力学性能显得尤为重要。首先对超高强钢B1500HS进行了胀形实验,研究了常温,700 ℃,800 ℃下的成形极限曲线(FLD);同时,运用有限元软件建立了FLD非线性和线性数值计算模型,对高温成形极限曲线进行了数值模拟预测。研究发现,常温下可以通过改变润滑条件拓展双拉区域数据点,而高温下双拉区域数据点较少,且缺少等拉数据点;数值模拟可以对热冲压FLD进行准确的预测,非线性计算模型比线性计算模型稳定,且更加接近实验曲线,数值模拟曲线范围更广,且仿真时通过改变摩擦系数可以获得高温下等拉数据点。

The ultra high strength steel as a kind of lightweight material is widely used in hot stamping, and it is important to research its mechanical properties at high temperature. First, the bulging experiment was conducted to study the forming limit curves (FLD) of ultra-high strength steel B1500HS at room temperature, 700 ℃, 800 ℃ respectively. At the same time, the nonlinear and linear calculating models were built to predict the FLDs at various temperatures. The results show that the dual pull area data points are expanded by changing lubrication conditions at room temperature, while at high temperature the data points in dual pull area are less and lacking equivalent pull data points. The nonlinear calculating model is more stable and accurate than linear calculating model, and the equivalent pull area points are obtained by changing the friction factor at high temperature in simulation.

基金项目:
国家自然科学基金资助项目(51165021);江苏高校品牌专业江苏项目(PPZY2015A086)
作者简介:
吴斌(1972-),男,硕士,副教授
参考文献:


[1]Bleck W, Deng Z, Papamantellos K, et al. A comparative study of the forming-limit diagram models for sheet steels [J]. Journal of Materials Processing Technology,1998,83(13):223-230.
[2]Karbasian H, Tekkaya A E. A review on hot stamping [J]. Journal of Materials Processing Technology, 2010, 210: 2103-2118.
[3]Kolleck R, Veit R, Merklein M, et al. Investigation on induction heating for hot stamping of boron alloyed steels [J]. CIRP Annals-Manufacturing Technology, 2009, 58: 275-278.
[4]Aylan T. Hot-stamping boron-alloyed steels for automotive parts [J]. Stamping Journal, 2006,1(1):40-41.
[5]Tetsuonaka, Gakutorikai, Ryutarohino. The effects of temperature and forming speed on the forming limit diagram for type 5083 aluminum-magnesium alloy sheet [J]. Materials Processing Technology, 2001, 15(7):648-653.
[6]Bruni C, Forcellese C, Gabrielli A, et al. Effect of temperature, strain rate and fiber orientation on the plastic flow behavior and formability of AZ31 magnesium alloy [J]. Journal of Materials Processing Technology, 2010, 23(3):35-39.
[7]杜平梅, 郎利辉, 刘宝胜, 等. 基于M-K模型的成形极限预测及参数影响[J]. 塑性工程学报, 2011, 18(5):84-89. Du P M, Liang L H, Liu B S,et al. Theoretical prediction and parameter influence of FLDs based on M-K model [J]. Journal of Plastic Engineering, 2011, 18(5):84-89.
[8]Merklein M, Lechler J. Investigation of the thermo-mechanical properties of hot stamping steels[J]. Journal of Materials Processing Technology,2006,77:452-455.
[9]Merklein M, Lechler J, Stoehr T. Characterization of tribological and thermal properties of metallic coatings for hot stamping boron manganese steels [A]. Proceedings of the 7th International Conference Coatings in Manufacturing Engineering [C]. Casino Kursaal Switzerland,2008.
[10]Li F F, Fu M W, Lin J P, et al. Experimental and theoretical study on the hot forming limit of 22MnB5 steel [J]. Int. J. Adv. Manuf. Technol.,2014,71:297-306.
[11]Min J Y, Lin J P, Li J Y, et al. Investigation on hot forming limits of high strength steel 22MnB5 [J]. Computational Materials Science, 2010, 49:326-332.
[12]Du C Q, Stoughton T, Huang G, et al. BENCHMARK 1-simulation of nonlinear strain path forming limit of a reverse draw[A]: The 9th International Conference 3D Simulation in Australia[C]. Melbourne, Australia, 2014.

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