Effects of vanadium and titanium addition on the densification, microstructure and mechanical properties of WC-Co cermets

Effects of vanadium and titanium addition on the densification, microstructure and mechanical properties of WC-Co cermets

Authors:

Keywords

Tungsten carbide
Cobalt
Titanium
Vanadium
Microwave sintering

Abstract

WC-Co cermets containing Ti and V metallic powders were prepared by ultra-fast microwave heating process. The mixing of WC-5wt%Co containing 5 wt% concentrations of Ti and V was performed by a high-energy mixer mill in ethanol media for 10 min. A fast microwave sintering process was carried out at temperatures of 1400, 1500 and 1600 °C with an average heating rate of 40 °C/min in a graphite bed without any soaking time. The XRD patterns showed WC, TiC and VC crystalline phases as reaction products. The FESEM images demonstrated uniform distribution of formed carbides in the microstructure of WC based cermet. By increasing the sintering temperature to 1600 °C, almost fully dense samples were obtained in both series of composites containing Ti and V. The maximum bending strength (981 ± 10 MPa), hardness (24.7 ± 0.1 GPa) and fracture toughness (8.6 ± 0.1) were measured for WC-Co-Ti hard metal at sintering temperature of 1600 °C.

We appreciate your valuable comments on this article

Leave a Comment:

Your email address will not be published. Required fields are marked *

Fill out this field
Fill out this field
Please enter a valid email address.

Design and applications of MEMS flow sensors: A review

Articles

Recent advances in removal techniques of Cr (VI) toxic ion from aqueous solution: A comprehensive review

Articles

Using metallic additives as a bonding layer to produce Ti-based laminated composites via spark plasma sintering

Articles

An amplified voltammetric sensor based on platinum nanoparticle/polyoxometalate/two-dimensional hexagonal boron nitride nanosheets composite and ionic liquid for determination …

Articles
Polymer supported copper complexes/nanoparticles for treatment of environmental contaminants
Bioethanol production from pomegranate peel by simultaneous saccharification and fermentation process
Menu