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Microstructure and properties of the laser cladded in-situ ZrB2-ZrC/Cu composite coatings on copper substrate

机译:铜基材上的激光搭叠式原位ZRB2-ZRC / Cu复合涂层的微观结构和性能

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The ZrB2-ZrC reinforced Cu matrix composite coating was prepared on a copper substrate by laser cladding and a self-propagating high-temperature synthesis (SHS) reaction. The zirconium ceramics were in-situ synthesized according to the designed SHS reaction within the coatings. The macromorphology, microstructure, phase composition, the interface of the zirconium ceramic phase/metal matrix, microhardness and wear resistance of the composite coating were analyzed and discussed. The results indicated that the in-situ ZrB2 ceramic had a needle-like morphology, the preferred growth direction was [(1) over bar(1) over bar 20], and the ZrB2 were coated with the Ni dendritic crystals. Ni formed an intermediate transition layer between the ceramic and the metal matrix. The submicron particle phases (ZrC) had a rectangular morphology in the copper matrix, and the side length was 500 nm. The hard ceramic fibers and particles were in-situ synthesized that were dispersed homogeneously in the metal matrix, which improved the mechanical properties of the coating. The mean value of the microhardness of the composite coatings was 410 HV0.2, which was nearly 6 times higher than that of the copper. The microhardness gradually decreased from the composite coating surface to the transition zone and then sharply dropped in the transition zone to the substrate. This trend agrees with the distribution of the ceramic reinforcements. The wear mechanism of the composite coating was a combination of abrasive wear and adhesive wear, and the wear volume loss was approximately 85% lower than that of the uncoated substrate.
机译:通过激光包层和自蔓延的高温合成(SHS)反应在铜基材上制备ZRB2-ZRC增强Cu基质复合涂层。根据涂层内的设计的SHS反应,锆陶瓷原位合成。分析并讨论了大分子质,微观结构,相组合物,锆陶瓷相/金属基质,微硬度和耐磨性的界面。结果表明,原位ZRB2陶瓷具有针状形态,优选的生长方向是[(1)上棒(1),ZrB2涂有Ni树突晶体。 Ni形成陶瓷和金属基质之间的中间过渡层。亚微米粒子相(Zrc)在铜基质中具有矩形形态,并且侧面长度为500nm。硬陶瓷纤维和颗粒是原位合成的,其在金属基质中均匀分散,这改善了涂层的机械性能。复合涂层的显微硬度的平均值为410 HV0.2,其比铜的近6倍。微硬度从复合涂层表面逐渐降低到过渡区,然后在过渡区中急剧下降到基板。这种趋势同意陶瓷增强剂的分布。复合涂层的磨损机理是磨料磨损和粘合剂磨损的组合,并且磨损体积损失比未涂覆的基材的磨损体积损失低约85%。

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