The strength-ductility synergy of magnesium matrix nanocomposite achieved by a dual-heterostructure

被引:19
作者
Fan, Lingling [1 ,2 ]
Xiong, Yukai [3 ]
Zeng, Ying [2 ]
Ni, Ran [2 ]
Zhang, Yuwenxi [2 ]
Ren, Lingbao [4 ]
Dieringa, Hajo [5 ]
Huang, Yuanding [6 ]
Quan, Gaofeng [2 ]
Zhang, Xu [3 ]
机构
[1] Chengdu Univ, Sch Mech Engn, Chengdu 610106, Peoples R China
[2] Southwest Jiaotong Univ, Sch Mat Sci & Engn, Key Lab Adv Technol Mat, Minist Educ, Chengdu 610031, Peoples R China
[3] Southwest Jiaotong Univ, Sch Mech & Aerosp Engn, Chengdu 610031, Peoples R China
[4] Xi An Jiao Tong Univ, Ctr Adv Mat Performance Nanoscale, State Key Lab Mech Behav Mat, Xian 710049, Peoples R China
[5] Helmholtz Zentrum Hereon, Inst Mat & Proc Design, D-21502 Geesthacht, Germany
[6] Helmholtz Zentrum Hereon, Inst Met Biomat, D-21502 Geesthacht, Germany
来源
JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY | 2025年 / 215卷
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
Heterostructure; Strengthening mechanism; Strength-ductility synergy; Fracture mechanism; Magnesium; MECHANICAL-PROPERTIES; AZ91; ALLOY; MICROSTRUCTURAL EVOLUTION; GRAPHENE NANOPLATELETS; TENSILE PROPERTIES; GRAIN-STRUCTURE; YIELD STRENGTH; COMPOSITES; DEFORMATION; BEHAVIOR;
D O I
10.1016/j.jmst.2024.07.027
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study aims to achieve a synergy of strength and ductility in magnesium-based nanocomposite materials through the design of a dual-heterostructure. Utilizing ball milling and hot extrusion, a nano-TiC/AZ61 composite featuring particle-rare coarse grain (CG) and particle-rich fine grain (FG) zones was successfully fabricated. Experimental results demonstrated that compared with the homogeneous structure, the dual-heterostructure composite achieved a significant increase in elongation by 116 % and a remarkable 165 % improvement in the strength-ductility product (SDP), while maintaining a high ultimate tensile strength (UTS) of 417 +/- 4 MPa. This substantial performance enhancement is primarily attributed to the additional strain hardening induced by hetero-deformation-induced (HDI) strain hardening and crack-blunting capabilities, as elucidated by microstructural characterization and crystal plasticity finite element modeling (CPFEM). Notably, the strain hardening contribution from the CG zones at the early stage of deformation (<= 45 % of total plastic deformation amount) is minimal but increases significantly during the subsequent deformation stages. The dislocation increment rate in CG zones (219 %) is observed to be more than double that in FG zones (95 %), attributed to the large grain size and low dislocation density in CG zones, which provide more space for dislocation storage. In addition, the aggravated deformation inhomogeneity as deformation progresses leads to an increase in geometrically necessary dislocations (GNDs) generation near the heterogeneous interface, thereby enhancing HDI hardening. Fracture mechanism analysis indicated that the cracks mainly initiate in the FG region and are effectively blunted upon their propagation to the CG region, necessitating increased energy consumption and indicating higher fracture toughness for the dual-heterostructure composites. This study validates the effectiveness of the dual-heterostructure design in magnesium-based composites, providing a novel understanding of the deformation mechanism through both experimental analysis and CPFEM, paving the way for the development of high-performance, lightweight structural materials. (c) 2024 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.
引用
收藏
页码:296 / 314
页数:19
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