1. 太原理工大学机械工程学院,太原,030024
2. 中北大学机械工程与自动化学院,太原,030051
网络首发:2013-07-10,
纸质出版:2013
移动端阅览
刘丽娟 1, 2, 吕明 1, 等. Ti-6Al-4V合金的修正本构模型及其有限元仿真[J]. 西安交通大学学报, 2013,47(7):73-79.
An Improved Constitutive Model and Finite Element Simulation for Machining Ti-6Al-4V Alloy[J]. 2013, 47(7): 73-79.
刘丽娟 1, 2, 吕明 1, 等. Ti-6Al-4V合金的修正本构模型及其有限元仿真[J]. 西安交通大学学报, 2013,47(7):73-79. DOI: 10.7652/xjtuxb201307014.
An Improved Constitutive Model and Finite Element Simulation for Machining Ti-6Al-4V Alloy[J]. 2013, 47(7): 73-79. DOI: 10.7652/xjtuxb201307014.
为解决高温高压环境下Johnson-Cook(J-C)本构模型不再适用于Ti-6Al-4V合金切削有限元仿真的问题
建立了基于重结晶的修正J-C本构模型
它可以体现出高速切削Ti-6Al-4V合金时的应力回落现象。首先
利用霍普金森压杆试验测得了Ti-6Al-4V的应力-应变数据
利用变量分离法拟合出修正J-C本构模型
该模型可以反映材料发生相变时应力-应变曲线的变化趋势
并能很好地逼近压杆试验数据曲线。然后
以AdvantEdge FEM有限元软件为平台
采用回退映射应力积分算法编写子程序
将该修正本构模型和J-C本构模型导入有限元系统
并对这2种本构模型进行有限元仿真。仿真结果对比表明:在相同的切削条件下
当温度超过850 ℃时
修正本构模型体现出流动应力急剧下降的现象
下降幅度为46.7%
而J-C本构模型的流动应力下降平缓
仅下降了11%
说明修正本构模型更贴近高速切削Ti-6Al-4V合金时的高温与高冲击环境。
Johnson-Cook(J-C)material constitutive model is inaccurate for machining simulation of titanium alloy with high temperature and heavy impact. In this study
a modified constitutive model of Ti-6Al-4V alloy based on recrystallization was established considering the phenomenon of stress decline during machining. High-temperature SHPB(Split Hopkinson Pressure Bar)test was conducted to determine the true flow stress-strain relationship of Ti-6Al-4V alloy. With the SHPB test data
the modified constitutive model was developed by the variable separation method. The flow stress decreased significantly at the temperatures higher than the recrystallization temperature in the modified constitutive model
showing a good agreement with experimental results. A subroutine was then coded and embedded in the finite element simulation software AdvantEdge FEM with the return mapping stress integration algorithm. Finite element simulations for both J-C constitutive model and the modified constitutive model were performed. The result shows that the simulated stress decreases in J-C model and the modified model at 850 ℃ by 11% and 46.7%
respectively
indicating the modified constitutive model is more suitable for the condition of high temperature and heavy impact in machining titanium alloy.
JOHNSON G R, COOK W H. A constitutive model and data for metals subjected to large strains, high strain rates and high temperatures [C]∥Proceedings of the Seventh International Symposium on Ballistic. Amsterdam, The Netherlands: The Hague, 1983: 541-547.
GUO Y B, WEN Q, WOODBURY K A. Dynamic material behavior modelling using internal state variable plasticity and its application in hard machining simulations [J]. Journal of Manufacturing Science and Engineering, 2006, 128(3): 749-759.
NEMAT-NASSER S. Dynamic response of conventional and hot isostatically pressed Ti-6Al-4V alloys: experiments and modelling [J]. Mechanics of Materials, 2001, 33(8): 425-439.
ZERILLI F J, ARMSTRONG R W. Dislocation mechanics based constitutive relations for material dynamics calculations [J]. Journal of Applied Physics, 1987, 61(5): 1816-1825.
CALAMAZ M, COUPARD D, GIROT F. A new material model for 2D numerical simulation of serrated chip formation when machining titanium alloy Ti-6Al-4V [J]. International Journal of Machine Tool and Manufacture, 2008, 48(3/4): 275-288.
ÖZEL T, SIMA M, SRIVASTAVA A K, et al. Investigations on the effects of multi-layered coated inserts in machining Ti-6Al-4V alloy with experiments and finite element simulations [J]. CIRP Annals: Manufacturing Technology, 2010, 59(1): 77-82.
程国强, 李守新. 金属材料在高应变率下的热粘塑性本构关系 [J]. 弹道学报, 2004, 16(4): 18-22.
CHENG Guoqiang, LI Shouxin. A thermo-viscoplastic constitutive model of metallic materials at high strain rates [J]. Journal of Ballistics, 2004, 16(4): 18-22.
彭建祥, 李大红. 温度与应变率对钽流变应力的影响 [J]. 高压物理学报, 2001, 15(2): 146-150.
PENG Jianxiang, LI Dahong. The influence of temperature and strain rate on the flow stress of tantalum [J]. Chinese Journal of High Pressure Physics [J]. 2001, 15(2): 146-150.
邹静, 钟伟芳. 形状记忆合金的多维本构关系 [J]. 固体力学学报, 1999, 20(2): 171-176.
ZOU Jing, ZHONG Weifang. The multi-dimensional constitutive relations of shape memory alloys [J]. Acta Mechanica Solida Sinica, 1999, 20(2): 171-176.
李海涛, 彭向和, 黄尚廉. 形状记忆合金的一种基于经典塑性理论的两相混合本构模型 [J]. 固体力学学报, 2004, 25(1): 58-62.
LI Haitao PENG Xianghe HUANG Shanglian. A conventional plasticity based two-phase constitutive model for shape memory alloys [J]. Acta Mechanica Solida Sinica, 2004, 25(01): 58-62.
LINDHOLM U S. Some experiments with the split Hopkinson pressure bar [J]. Mech Phys Solids, 1964, 12(3): 17-35.
ANDRADE U R, MEYERS M A, VECCHIO K S, et al. Dynamic recrystallization in high-strain, high-strain-rate plastic deformation of copper [J]. Acta Metall Mater, 1994, 42(31): 83-95.
杨曼娟. ABAQUS用户子程序开发及应用 [D]. 武汉: 华中科技大学, 2005.
MARUSICH T D, ORTIZ M. Modelling and simulation of high-speed machining [J]. International Journal of Numerical Methods in Engineering, 1995, 38(21): 3675-3694.
0
浏览量
4
下载量
8
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621