An Investigation on Microstructures and Mechanical Properties of Twinning-Induced Plasticity Steels Prepared by Directional Solidification

被引:0
作者
Dan Wang
Wen Wang
Yingjie Huang
Xinfu wang
机构
[1] Yan’ an University,School of Physics and Electronic Information
[2] Changzhou Institute of Technology,School of Mechanical and Vehicle Engineering
[3] Anyang Normal University,School of Physics & Electrical Engineering
来源
Journal of Materials Engineering and Performance | 2022年 / 31卷
关键词
directional solidification; mechanical properties; TWIP effect; TWIP steel; working hardening;
D O I
暂无
中图分类号
学科分类号
摘要
The mechanical behaviors and microstructural characteristics of three twinning-induced plasticity (TWIP) steels prepared using directional solidification at withdrawal rates of 3, 8, and 15 µms−1 (abbreviated as DS3, DS8, and DS15, respectively) were investigated. The results showed that all the samples solidified steadily in a cellular growth mode. The dendrite spacing decreased on increasing the withdrawal rate, but eliminated grains resulted from increased growth competition. At a low strain rate of 2.27×10−3 s−1, DS8 exhibited the best mechanical properties because of the adequately stimulated TWIP effect with well-developed twin structures and good deformation synergy between columnar grains being conducive to uniform stress distribution. Therefore, the work hardening ability significantly improved, with the highest working hardening exponent, ni, obtained at a high strain level. This was accompanied by a remarkably enhanced uniform plastic deformation ability. A weakened TWIP effect occurred due to suppressed twinning with fewer and nonuniform twins structures at a high strain rate of 3.79×10-1 s-1. The high strain rate was evident to be not conducive to the activation of planar slip for directionally solidified samples, resulting in fewer and inhomogeneous slip systems. This effectively weakened twinning with relatively strong dislocation gliding instead. This remarkably decreased all the ni values in the medium-to-high strain range, leading to a significantly decreased plastic deformation ability and finally resulting in severely degraded plasticity, especially for DS8.
引用
收藏
页码:3326 / 3340
页数:14
相关论文
共 211 条
[1]  
Grassel O(2000)High Strength Fe-Mn-(Al, Si)TRIP/TWIP Steels Development-Properties-Application Int. J. Plastic. 16 1391-1409
[2]  
Kruger L(2003)Supra-Ductile and High-Strength Manganese-TRIP/TWIP Steels for High Energy Absorption Purpose TSIJ Int. 43 438-446
[3]  
Frommeyer G(2004)Cold Rolling Behavior of an Austenitic Fe-30Mn-3Al-3Si TWIP-Steel: The Importance of Deformation Twinning Acta Mater. 52 2005-2012
[4]  
Meyer LW(2012)Selective Appearance of Phil. Mag. Lett. 92 145-152
[5]  
Frommeyer G(2012)-martensitic Transformation and Dynamic Strain Aging in Fe-Mn-C Austenitic Steels Metall. Mater. Trans. A. 43A 1598-1609
[6]  
Brux U(2014)Effect of Strain and Strain Path on Texture and Twin Development in Austenitic Steel with Twinning-Induced Plasticity Mater. Sci. Eng. A. 613 224-231
[7]  
Neumann P(2014)A Constitutive Model of the Deformation Behavior of Twinning Induced Plasticity (TWIP) Steel at Different Temperatures Acta Mater. 68 238-253
[8]  
Vercammen S(2010)The Influence of Manganese Content on the Stacking Fault and Austenite/ε-martensite Interfacial Energies in Fe-Mn-(Al-Si) Steels Investigated by Experiment and Theory Acta Mater. 58 5129-5141
[9]  
Blanpain B(2005)Dependence of Tensile Deformation Behavior of TWIP Steels on Stacking Fault Energy, Temperature and Strain Rate Metall. Mater. Trans. A. 46 545-548
[10]  
Cooman BCD(2004)Microstructural Evolution in Fe-22Mn-0.4C Twinning-Induced Plasticity Steel During High Strain Rate Deformation Mater. Sci. Eng. A. 387–389 158-162