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WC-Co-Re cemented carbides: Structure,properties and potential applications
Affiliation:1. Element Six GmbH, Burghaun D-36151, Germany;2. National University of Science and Technology MISiS, Moscow 119049, Russia;3. National Physical Laboratory, Teddington TW11 0LW, United Kingdom;1. Materials Science and Engineering, KTH Royal Institute of Technology, Brinellv. 23, 100 44 Stockholm, Sweden;2. Sandvik Coromant R&D, Lerkrogsv. 19, 126 79 Stockholm, Sweden;3. Seco Tools AB, Björnbacksv. 2, 737 82 Fagersta, Sweden;4. Å?ngström Tribomaterials Group, Applied Materials Science, Uppsala University, Lägerhyddsv. 1, 751 21 Uppsala, Sweden;1. KTH Royal Institute of Technology, Department of Materials Science and Engineering, SE 100 44 Stockholm, Sweden;2. Sandvik Coromant R&D, SE 126 80, Stockholm, Sweden
Abstract:Cemented carbides of the WC-Co-Re system represent a new class of hard materials having a significantly increased Young's modulus, hot hardness and high temperature creep resistance. The WC-Co-Re phase diagram was evaluated and compared with the corresponding WC-Co phase diagram. Physical and mechanical properties of such composites were measured at room and elevated temperatures and compared with those of conventional WC-Co cemented carbides. Microstructures of the WC-Co-Re cemented carbides at different carbon contents, binder contents and WC grain sizes were examined. Rhenium being dissolved in the Co-based binder is found to be a very strong grain growth inhibitor with respect to WC coarsening during liquid-phase sintering. The Young's modulus, hot hardness and high temperature creep resistance of the WC-Co-Re cemented carbides are greater than those of conventional WC-Co cemented carbides. Due to their unique properties the WC-Co-Re materials can find applications in use in high-pressure high-temperature components for synthesis of diamond and c-BN and cutting Ni-based super alloys and other heat-generating workpiece materials.
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