Título
High-temperature tribological performance of functionally graded Stellite 6/WC metal matrix composite coatings manufactured by laser-directed energy depositionOtras instituciones
Universidad del País Vasco/Euskal Herriko Unibertsitatea (UPV/EHU)Versión
Version publicada
Derechos
© 2023 The AuthorsAcceso
Acceso abiertoVersión del editor
https://doi.org/10.1007/s40544-023-0790-2Publicado en
Friction Vol. 12. Pp. 522-538Editor
SpringerPalabras clave
friction
coating
metal matrix composite
functionally graded materials ... [+]
coating
metal matrix composite
functionally graded materials ... [+]
friction
coating
metal matrix composite
functionally graded materials
high temperature
laser-directed energy deposition [-]
coating
metal matrix composite
functionally graded materials
high temperature
laser-directed energy deposition [-]
Resumen
Wear-driven tool failure is one of the main hurdles in the industry. This issue can be addressed through surface coating with ceramic-reinforced metal matrix composites. However, the maximum ceramic c ... [+]
Wear-driven tool failure is one of the main hurdles in the industry. This issue can be addressed through surface coating with ceramic-reinforced metal matrix composites. However, the maximum ceramic content is limited by cracking. In this work, the tribological behaviour of the functionally graded WC-ceramic-particle-reinforced Stellite 6 coatings is studied. To that end, the wear resistance at room temperature and 400 °C is investigated. Moreover, the tribological analysis is supported by crack sensitivity and hardness evaluation, which is of utmost importance in the processing of composite materials with ceramic-particle-reinforcement. Results indicate that functionally graded materials can be employed to increase the maximum admissible WC content, hence improving the tribological behaviour, most notably at high temperatures. Additionally, a shift from abrasive to oxidative wear is observed in high-temperature wear testing. [-]
Financiador
Gobierno VascoGobierno Vasco
Programa
Elkartek 2022Elkartek 2022
Número
KK-2022-00080KK-2022-00070
URI de la ayuda
Sin informaciónSin información
Proyecto
Multilayer Integrated Advanced Cutaneous sensing (MINAKU)Tecnologías de fabricación aditiva más sostenibles, digitales e inteligentes para una industria eficiente (EDISON)
Colecciones
- Artículos - Ingeniería [684]
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