Fracture toughness of cemented carbides obtained by electrical resistance sintering

The unique combination of hardness, toughness and wear resistance exhibited by WC-Co cemented carbides (hardmetals) has made them a preeminent material choice for extremely demanding applications, such as metal cutting/forming tools or mining bits, in which improved and consistent performance togeth...

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Veröffentlicht in:International journal of refractory metals & hard materials 2019-04, Vol.80, p.259-269
Hauptverfasser: Astacio, Raquel, Gallardo, José María, Cintas, Jesús, Montes, Juan Manuel, Cuevas, Francisco G., Prakash, Leo, Torres, Yadir
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Sprache:eng
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Zusammenfassung:The unique combination of hardness, toughness and wear resistance exhibited by WC-Co cemented carbides (hardmetals) has made them a preeminent material choice for extremely demanding applications, such as metal cutting/forming tools or mining bits, in which improved and consistent performance together with high reliability are required. The high fracture toughness values exhibited by hardmetals are mainly due to ductile ligament bridging and crack deflection (intrinsic to carbides). In this work two WC-Co grades obtained by using the electric resistance sintering technique are studied. The relationships between the process parameters (cobalt volume fraction, sintering current and time, die materials, etc.), the microstructural characteristics (porosity, cobalt volume fraction, carbide grain size, binder thickness and carbide contiguity) and mechanical properties (Vickers hardness and fracture toughness) are established and discussed. Also the presence of microstructural anisotropy and residual stresses is studied. The sintering process at 7 kA, 600 ms and 100 MPa, in an alumina die, followed by a treatment of residual stress relief (800 °C, 2 h in high vacuum), allows to obtain WC-Co pellets with the best balance between an homogeneous microstructure and mechanical behaviour. •Fabrication of WC-Co pellets using electric resistance sintering technique•Presence of microstructural anisotropy and residual stresses is studied.•Relationships between the fracture toughness, process and microstructural parameters•Balance of structural integrity, density and mechanical behaviour are established.
ISSN:0263-4368
2213-3917
DOI:10.1016/j.ijrmhm.2019.02.002