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Microstructural and abrasion wear characteristics of laser-clad tool steel coatings

机译:激光熔覆工具钢涂层的组织和磨损性能

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Several different tool steel grades were deposited on mild steel by the laser-cladding process with coaxial powder feeding. With bidirectional scanning pattern, most of the grades were deposited crack-free with hardness up to 1000HV without additional preheating. In a 3-body abrasion wear study, the laser clad Ralloy((R)) WR6 with significant portion of retained austenite exhibited superior abrasive wear resistance compared with the predominantly martensitic tool steel coatings (M2, M4, H13, HS-23, HS-30) and the reference material, Raex((R)) Ar500 wear resistant steel. The abrasion wear resistance of austenitic-martensitic WR6 tool steel was further enhanced by the external addition of 20% volume percentage of relatively large (45-106 mu m) vanadium carbides. In single point scratch tests, predominantly martensitic tool steels outperformed austenitic-martensitic tool steels and wear resistant steel. The differences in wear performances were explained by different wear mechanisms and types of contact between the abrasive and the surface.
机译:通过同轴粉末加料的激光熔覆工艺将几种不同等级的工具钢沉积在低碳钢上。通过双向扫描,大多数牌号都可以无裂纹地沉积,硬度高达1000HV,而无需额外的预热。在三体磨损研究中,与主要为马氏体工具钢涂层(M2,M4,H13,HS-23和HS)相比,具有显着残留奥氏体的激光熔覆Ralloy WR6表现出优异的耐磨性。 -30)和参考材料Raex®Ar500耐磨钢。通过外部添加20%体积百分比相对较大(45-106μm)的碳化钒,奥氏体-马氏体WR6工具钢的耐磨性得到了进一步提高。在单点刮擦测试中,主要是马氏体工具钢优于奥氏体-马氏体工具钢和耐磨钢。磨损性能的差异是由不同的磨损机理和磨料与表面之间的接触类型所引起的。

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