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Three-point bending fatigue behavior of WC–Co cemented carbides
Affiliation:1. CIEFMA — Universitat Politècnica de Catalunya, Barcelona 08028, Spain;2. Sandvik Hard Materials, Coventry CV4 0XG, UK;3. NPL, Teddington, London TW11 0LW, UK;4. Smith International Inc., Houston, TX 77205, USA;5. Sandvik Rotary Tools, Shenandoah, TX 77385, USA;6. CRnE — Universitat Politècnica de Catalunya, Barcelona 08028, Spain;1. Element Six, Fermi Avenue, Harwell, Oxfordshire OX11 0QR, UK;2. National Physical Laboratory, Teddington, Middlesex TW11 0LW, UK;3. University of Bradford, Bradford, West Yorkshire BD7 1DP, UK
Abstract:WC–Co cemented carbides with different WC grain sizes and Co binder contents were sintered and fabricated. The three-point bending specimens with a single edge notch were prepared for tests. In the experiments, the mechanical properties of materials were investigated under static and cyclic loads (20 Hz) in air at room temperature. The fatigue behaviors of the materials under the same applied loading conditions are presented and discussed. Optical microscope and scanning electron microscopy were used to investigate the micro-mechanisms of damage during fatigue, and the results were used to correlate with the mechanical fatigue behavior of WC–Co cemented carbides. Experimental results indicated that the fatigue fracture surfaces exhibited more fracture origins and diversification of crack propagation paths than the static strength fracture surfaces. The fatigue fracture typically originates from inhomogeneities or defects such as micropores or aggregates of WC grains near the notch tip. Moreover, due to the diversity and complexity of the fatigue mechanisms, together with the evolution of the crack tip and the ductile deformation zone, the fatigue properties of WC–Co cemented carbides were largely relevant with the combination of transverse rupture strength and fracture toughness, rather than only one of them. Transverse rupture strength dominated the fatigue behavior of carbides with low Co content, whilst the fatigue behavior of carbides with high Co content was determined by fracture toughness.
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