Effect of B4C particle size and TiB2 content on the mechanical properties of B4C composites and their dynamic mechanical properties

Author:

Wang Bo1,Cai Delong2ORCID,Li Shiqi1,Wang Haoyi1,Zou Wenhua1,Yang Zhihua1ORCID,Duan Xiaoming1ORCID,He Peigang1,Li Daxin1ORCID,Duan Wenjiu3,Pan Yanzhi4,Zhao Yueqian4,Jia Dechang1ORCID,Zhou Yu1

Affiliation:

1. Key Laboratory of Advanced Structural‐Functional Integration Materials & Green Manufacturing Technology, 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. Research and Development Department Haimo Technologies Group Corp. Lanzhou China

Abstract

AbstractB4C–MAS and B4C–TiB2–MAS ceramic composites were prepared by hot pressed sintering. The effects of particle size of B4C and TiB2 content on the microstructure and general mechanical properties of the ceramic composites were investigated by using X‐ray diffractometer, scanning electron microscope, and universal testing machine. The strengthening and toughening mechanism of ceramic composites is mainly attributed to the addition of magnesium–aluminosilicate (MAS) and thermal mismatch effect of TiB2. When the TiB2 content was 20 wt.%, the bending strength, fracture toughness, and Vickers hardness of B4C–TiB2–MAS ceramic composites were 375 MPa, 4.42 MPa·m1/2, and 23.9 GPa, respectively, and its relative density could reach 99.7%. The dynamic mechanical properties of B4C–TiB2–MAS ceramic composites were investigated at strain rates of 2000–6000 s−1 using a Separate Hopkinson Pressure Bar (SHPB) device. The results showed that the B4C–TiB2–MAS ceramic composites exhibited significant strain rate sensitivity. The dynamic compressive strength of the ceramic composites increased from 4634 to 5734 MPa with increasing strain rate in the tested strain rate range.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Materials Chemistry,Marketing,Condensed Matter Physics,Ceramics and Composites

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