Research on Flow Stress Model of F40MnV Non-quenched and Tempered Steel During Hot Forming
WANG Jin, CHEN Jun, ZHAO Zhen, RUAN Xue-yu
(National Die & Mold CAD Engineering Research Center, Shanghai Jiao Tong University, Shanghai 200030;)
Abstract: Hot compression test of F40MnV non-quenched and tempered steel is finished on Gleeble 1500 to determine the flow stress model for F40MnV steel, and the flow stress models are approximated for work harding-dynamical recovery period and dynamical recrystallization period based on classical stress-dislocation relation and the kinematics of the dynamic recrystallization, respectively, which consist the flow stress model for the whole forming process. All parameters used in the flow stress models are calculated based on the testing data, and the flow stress model is suitable to be used for the hot forging process numerical simulation.
Key Words: F40MnV;non-quenched and tempered steel;dynamical recovery; dynamical recrystallization
图4 F40MnV非调质钢连杆热锻数值模拟结果 (a)等效应变 (b)等效应力
Fig.4 Simulation result of hot forging F40MnV steel connecting rod
3 结论
根据F40MnV非调质钢高温流动应力曲线特征,分别对加工硬化-动态回复阶段和动态再结晶阶段建立流动应力模型,综合建立完整的F40MnV高温流动应力模型,根据实验数据确定了模型中各参数。由此模型预测的结果与实验结果吻合的较好,并将所建立的流动应力模型运用于F40MnV非调质钢热变形过程的数值模拟中。
参考文献:
[1] A Laasraoui, J J Jonas. Prediction of steel flow stresses at high temperatures and strain rates. Metallurgical Transactions A (Physical Metallurgy and Materials Science), 1991, 22A(7):1545~1558
[2] R Colas. A model for the hot deformation of low-carbon steel. Journal of Materials Processing Technology, 1996, 62(1-3):180~184
[3] C A Hernandez, S F Medina, J Ruiz. Modelling austenite flow curves in low alloy and microalloyed steels. Acta Materialia, 1996, 44(1):155~163
[4] F Siciliano, Jr, J J Jonas. Mathematical modeling of the hot strip rolling of microalloyed Nb, multiply-alloyed Cr-Mo, and plain C-Mn steels. Metallurgical and Materials Transactions A (Physical Metallurgy and Materials Science), 2000, 31A(2):511~530
[5] S Serajzadeh, A Karimi Taheri. Prediction of flow stress at hot working condition. Mechanics Research Communications, 2003, 30(1):87~93
[6] S I Kim, Y Lee, S M Byon. Study on constitutive relation of AISI 4140 steel subject to large strain at elevated temperatures. Journal of Materials Processing Technology, 2003, 140(1-3):84~89
[7] 王荣滨, 雪浪. 非调质钢在汽车工业中的应用. 上海钢研, 2002, (01):32~36
[8] 董瀚, 惠卫军, 时捷, 陈思联. 汽车用合金结构钢进展. 汽车工艺与材料, 2004, (06):18~27
[9] 杨洪根, 崔庆红. 非调质钢在工程机械上的运用及评价. 工程设计学报, 2004, 8(04):65~67
[10] 晓青. 现代汽车制造金属材料的应用及发展方向. 上海汽车, 2004, (09):40~42
[11] L X Kong, P D Hodgson, B Wang. Development of constitutive models for metal forming with cyclic strain softening. Journal of Materials Processing Technology, 1999, 89-90:44~50
[12] M El Wahabi, J M Cabrera, J M Prado. Hot working of two AISI 304 steels: a comparative study. Materials Science and Engineering A, 2003, 343(1-2):116~125
[13] Y Bergstrom. A dislocation model for the stress-strain behaviour of polycrystalline [alpha] -Fe with special emphasis on the variation of the densities of mobile and immobile dislocations. Material Science and Engineering, 1970, 5(4):193~200
[14] Y Estrin, H Mecking. UNIFIED PHENOMENOLOGICAL DESCRIPTION OF WORK HARDENING AND CREEP BASED ON ONE-PARAMETER MODELS. Acta Metallurgica, 1984, 32(1):57~70
[15] H Mecking, U F Kocks. KINETICS OF FLOW AND STRAIN-HARDENING. Acta Metallurgica, 1981, 29(11):1865~1875
[16] C M Sellars, J A Whiteman. Recrystallization and grain growth in hot rolling. Metal Science, 1979, 13(3-4):187~194
[17] C M Sellars, W J McTegart. On the mechanism of hot deformation. Acta Metallurgica, 1966, 14(9):1136~1138
[18] S Serajzadeh, A Karimi Taheri. An investigation on the effect of carbon and silicon on flow behavior of steel. Materials & Design, 2002, 23(3):271~276