Microstructures and mechanical properties of B4C–SiC and B4C–SiC–TiB2 ceramic composites fabricated by hot pressing

Author:

Wang Bo1,Cai Delong12ORCID,Wang Haoyi1,Zou Wenhua1,Yang Zhihua1ORCID,Duan Xiaoming1ORCID,He Peigang1,Li Daxin1ORCID,Duan Wenjiu3,Jia Dechang1ORCID,Lin Hua‐Tay4,Zhao Chao5,Zhou Yu1

Affiliation:

1. Key Laboratory of Advanced Structural‐Functional Integration Materials School of Materials Science and Engineering Harbin Institute of Technology Harbin China

2. International Joint Laboratory of Advanced Nanomaterials of Heilongjiang Province College of Materials Science and Chemical Engineering Harbin Engineering University Harbin China

3. Tsinghua Shenzhen International Graduate School Tsinghua University Shenzhen China

4. School of Electromechanical Engineering Guangdong University of Technology Guangzhou China

5. China Space Sanjiang Group Co. Ltd Wuhan China

Abstract

AbstractBoron carbide (B4C) ceramic composites with excellent mechanical properties were fabricated by hot‐pressing using B4C, silicon carbide (SiC), titanium boride (TiB2), and magnesium aluminum silicate (MAS) as raw materials. The influences of SiC and TiB2 content on the microstructural evolution and mechanical properties of the composites were systematically investigated. The mechanism by which MAS promotes the sintering process of composites was also investigated. MAS exists in composites in the form of amorphous phase. It can effectively remove the oxide layer from the surface of ceramic particles during the high temperature sintering process. The typical values of relative density, hardness, bending strength, and fracture toughness of B4C–SiC–TiB2 composites are 99.6%, 32.61 GPa, 434 MPa, and 6.20 MPa m1/2, respectively. Based on the microstructure observations and finite element modeling, the operative toughening mechanism is mainly attributed to the crack deflection along the grain boundary, which results from the residual stress field generated by the thermal expansion mismatch between B4C and TiB2 phase.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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