Revealing the Influence of SiC Particle Size on the Hot Workability of SiCp/6013 Aluminum Matrix Composites

Author:

Chen Shuang1,Wu Changlong2,Bo Guowei3,Liu Haiyang45,Tang Jie2,Fu Dingfa24,Teng Jie24,Jiang Fulin24ORCID

Affiliation:

1. Hunan Provincial Key Laboratory of Vehicle Power and Transmission System, Hunan Institute of Engineering, Xiangtan 411104, China

2. College of Materials Science and Engineering, Hunan University, Changsha 410082, China

3. College of Energy and Power Engineering, Changsha University of Science & Technology, Changsha 410114, China

4. Hunan Province Engineering Research Center for the Preparation and Application of High Performance Aluminum Matrix Composites, Xiangxi 416100, China

5. Hunan Everrich Composite Corp., Xiangxi 416100, China

Abstract

SiC particle (SiCp) size has been found to significantly influence the hot workability of particle-reinforced aluminum matrix composites (AMC). In this work, therefore, three types of SiCp/6013 composites with different SiCp sizes (0.7, 5 and 15 μm) were prepared and then subjected to isothermal hot compression tests. In addition, constitutive analysis, processing maps and microstructural characterizations were used to reveal the influence of SiCp size on the hot workability of SiCp/6013 composite. The results showed that the values of hot deformation activation energy Q increased with decreasing SiCp size. Specifically, at lower temperatures (e.g., 350 and 400 °C), the highest peak stress was shown in the AMC with SiCp size of 0.7 μm (AMC-0.7), while in the AMC with SiCp size of 5 μm (AMC-5) at higher temperatures (e.g., 450 and 500 °C). This is because a finer SiCp size would lead to stronger dislocation pinning and grain refinement strengthening effects, and such effects would be weakened at higher temperatures. Further, dynamic softening mechanisms were found to transform from dynamic recovery to dynamic recrystallization with increasing SiCp size, and the dynamic recrystallization occurred more easily at higher temperatures and lower strain rates. Consequently, the instability zones of the composites are all mainly located in the deformation region with lower temperature and higher strain rate, and smaller SiCp results in larger instability zones.

Funder

Key Technologies R&D in Strategic Emerging Industries and Transformation in the High-tech Achievements Program of Hunan Province, and Graduate Training and Innovation Practice Base of Hunan Province

Natural Science Foundation of Hunan Province, China

Scientific Research Fund of Hunan Provincial Education Department, China

National Natural Science Foundation of China

science and technology innovation Program of Hunan Province

Publisher

MDPI AG

Subject

General Materials Science

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