Anisotropy of Mechanical Properties in a Hot‐Pressed Boron Carbide

Abstract

Effects of microstructure and material properties on the mechanical behavior of hot‐pressed boron carbide are presented. The microstructure and intrinsic microstructural inhomogeneities have been characterized using scanning electron microscopy characterization techniques (SEM/EDS/EBSD). In situ mechanical characterizations of the boron carbide microstructure and its larger inhomogeneities have been performed by nanoindentation. Macroscopic dynamic and quasi‐static compressive responses have been studied in two characteristic orientations (parallel and perpendicular to the hot‐pressing direction) using a modified compression Kolsky bar setup (strain rates of /s) and standard MTS test machine (strain rates of /s). The microstructure characterization showed that boron carbide has a fine‐grained microstructure with a complex superposition of nonmetallic inclusions, such as free carbon, AlN, and BN. Nanoindentation tests conducted in three principal planes of the plate revealed an anisotropy of the mechanical properties. The compression tests revealed that the strength of this hot‐pressed boron carbide is orientation dependent. Detailed SEM analysis indicated transgranular fracture and microcracking originating at large carbon inclusions. Influences of microstructural anisotropy on the mechanical response of the material are discussed.

Document Details

Document Type
Pub Defense Publication
Publication Date
Aug 20, 2016
Source ID
10.1111/ijac.12585

Entities

People

  • James D Hogan
  • James Mccauley
  • Kaliat Ramesh
  • Lukasz Farbaniec

Organizations

  • Johns Hopkins University
  • United States Army Research Laboratory
  • University of Alberta

Tags

Fields of Study

  • Materials science

Readers

  • Materials Science (Mechanical Engineering).
  • Mechanical Engineering/Mechanics of Materials.
  • Powder metallurgy of Titanium alloys.

Technology Areas

  • Microelectronics