Precise Design and Preparation of Metals with Strength-plasticity Synergy

被引:0
作者
Sun J. [1 ]
Jia Y. [2 ]
Zhang Y. [2 ]
Han J. [3 ]
Wu G. [1 ]
机构
[1] College of Mechanics and Materials, Hohai University, Nanjing
[2] School of Mechanical and Power Engineering, East China University of Science and Technology, Shanghai
[3] School of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou
来源
Jixie Gongcheng Xuebao/Journal of Mechanical Engineering | 2021年 / 57卷 / 16期
关键词
Gradient nanostructure; Heterogeneous structure; Nanograin; Plasticity; Strength; Ultrafine grain;
D O I
10.3901/JME.2021.16.329
中图分类号
学科分类号
摘要
Developing a metal with strength-plasticity synergy is always a goal and research focus in the field of structural metals due to the longstanding strength-plasticity trade-off. Microstructure regulation provides an effective method of designing metals with strength-plasticity synergy. Research progress on the strength-plasticity synergy designing based on grain microstructure regulation in recent years is reviewed. The mentioned microstructures involve homogenous nano/ultrafine grained structure, heterogeneous structure, and gradient nanostructure. Moreover, the strategy of the strength-plasticity synergy designing based on grain microstructure regulation combined with other methods is also introduced. The preparation methods of the different microstructures are reviewed. Finally, perspectives and challenges on the strength-plasticity synergy designing are addressed. © 2021 Journal of Mechanical Engineering.
引用
收藏
页码:329 / 348and360
相关论文
共 178 条
[21]  
PANDE C, COOPER K., Nanomechanics of Hall-Petch relationship in nanocrystalline materials, Progress in Materials Science, 54, 6, pp. 689-706, (2009)
[22]  
MEYERS M, MISHRA A, BENSON D., Mechanical properties of nanocrystalline materials, Progress in Materials Science, 51, 4, pp. 427-556, (2006)
[23]  
WEI K, XIAO L, GAO B, Et al., Enhancing the strain hardening and ductility of Mg-Y alloy by introducing stacking faults, Journal of Magnesium and Alloys, 8, 4, pp. 1221-1227, (2020)
[24]  
FAN G, ZHENG M, HU X, Et al., Improved mechanical property and internal friction of pure Mg processed by ECAP, Materials Science and Engineering: A, 556, pp. 588-594, (2012)
[25]  
ZENG Z, NIE J, XU S, Et al., Super-formable pure magnesium at room temperature, Nature Communications, 8, 1, (2017)
[26]  
YU Z, ZHA M, LI Z, Et al., Achieving fine grain structure and superplasticity in AZ91-0.4Sn magnesium alloy using short flow rolling process, Materials Science and Engineering A, 695, pp. 1-5, (2017)
[27]  
KIM Y, KIM W., Microstructure and superplasticity of the as-cast Mg-9Al-1Zn magnesium alloy after high-ratio differential speed rolling, Materials Science and Engineering: A, 677, pp. 332-339, (2016)
[28]  
AL-ZUBAYDI A, ZHILYAEV A, WANG S, Et al., Superplastic behaviour of AZ91 magnesium alloy processed by high-pressure torsion, Materials Science and Engineering: A, 637, pp. 1-11, (2015)
[29]  
FURUI M, KITAMURA H, ANADA H, Et al., Influence of preliminary extrusion conditions on the superplastic properties of a magnesium alloy processed by ECAP, Acta Materialia, 55, 3, pp. 1083-1091, (2007)
[30]  
MIYAHARA Y, HORITA Z, LANGDON T., Exceptional superplasticity in an AZ61 magnesium alloy processed by extrusion and ECAP, Materials Science and Engineering: A, 420, 1-2, pp. 240-244, (2006)