Achieving Superior Strength‐ductility‐conductivity Combination in TiB2p/6201 Composites via Particle Rotation and Sub‐grain Refinement

材料科学 延展性(地球科学) 复合材料 旋转(数学) 粒子(生态学) 电导率 粒度 蠕动 几何学 数学 海洋学 地质学 物理化学 化学
作者
Kai Zhao,Xinchen Li,Xiangting Liu,Shuyan Shi,Enyu Guo,Huijun Kang,Zhigang Hao,Jiehua Li,Yubo Zhang,Zongning Chen,Tongmin Wang
出处
期刊:Advanced Engineering Materials [Wiley]
卷期号:26 (13) 被引量:1
标识
DOI:10.1002/adem.202400531
摘要

The key factor in the material design of overhead power transmission lines is to obtain a desired balance among strength, ductility, and electrical conductivity. Herein, TiB 2 particulate‐reinforced aluminum matrix composites are prepared to find a way out of the intrinsic dilemma behind this balance by tailoring the subgrain refinement. The interaction in the form of inhomogeneous deformation induced by the flexibility discrepancy between the rigid particles and soft matrix is studied. On the one hand, the hexagonal plate‐like TiB 2 particles rotate with the inhomogeneous deformation, forcing the biggest exposed plane ((0001) basal plane) parallel to the plastic flow direction, which is beneficial for the dislocation multiplication and hindrance of dislocation slipping. On the other hand, inhomogeneous deformation generates plentiful geometry necessary dislocations and divides the microstructure into two types: in the particle‐rich region ultrafine grains are formed and in the particle‐free region significant subgrains refinement is observed. The subgrains with 3 wt% TiB 2 are refined from ≈897 to ≈248 nm. Thanks to these microstructural benefits, the composites achieve the following strength–ductility–conductivity combination: ultimate tensile strength is 370 MPa, elongation after fracture is 11.2%, and electrical conductivity is 51.79% IACS. Besides, the elastic modulus reaches 75.43 GPa.
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