Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7972842 | Materials Science and Engineering: A | 2018 | 22 Pages |
Abstract
This paper studies the pressureless sintering of TiB2 based materials with a low concentration of 3â¯wt% Co binder to result in enhanced mechanical properties. Utilizing ultra-fine TiB2 powders obtained from a special carbon coated precursors method, TiB2-3â¯wt% Co composite can be densified to a relative density of ~98.6% at a temperature of 1500â¯Â°C without external pressure, which is over ~200â¯Â°C lower than literature reported temperatures. The Co binder partially reacts with TiB2 and converts into Co2B and Ti-B-Co with good wettings with TiB2. Due to the low sintering temperature, the microstructure is fine with a grain size of ~1.75â¯Â±â¯0.16â¯Âµm. The sample also combines superior mechanical properties including Vickers hardness of ~28.4â¯Â±â¯0.6â¯GPa, elastic modulus of ~519.6â¯Â±â¯17.2â¯GPa, indentation fracture toughness of ~7.0â¯Â±â¯0.4â¯MPaâm, and flexural strength of ~638.3â¯Â±â¯34.9â¯MPa. The variation of the Co content to 1, 10, or 20â¯wt% either leads to low relative density (~91.5% for 1â¯wt% Co even at a temperature of 1600â¯Â°C) or deteriorated mechanical properties (the combination of hardness and fracture toughness, for samples containing 10 and 20â¯wt% Co) due to the formation of significant amount of brittle Co2B. Correlations between mechanical properties and microstructure are further discussed.
Related Topics
Physical Sciences and Engineering
Materials Science
Materials Science (General)
Authors
Zhezhen Fu, Rasit Koc,