Xiao-Ming Xie , Xiu-Bo Liu , Bo-Ming He , Fei-Zhi Zhang , Ji-Xiang Liang , Xiang-Yu Liu , Jun Zheng
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引用次数: 0
Abstract
To enhance the service performance of IN718 alloy under severe working conditions, the self-lubricating composite coating of Ni60-SiC/Ti3SiC2 was fabricated on its surface using laser cladding. By systematically analyzing the microstructure and properties of composite coatings, the wear mechanism at different temperatures and the oxidation behavior at 800 °C of coatings were discussed in depth. The results demonstrate that an increase in coatings’ microhardness by a factor of 1.9–3.1 over IN718 was achieved, benefiting from the fine-grained and solid-solution strengthening actions, and the hard phases such as C23C6, Ni3Si, TiC distributed diffusely inside the coatings. The tribological performance of coatings was also significantly improved, in which the coating with 10 wt% Ti3SiC2 added had the lowest wear rates of 2.13 and 3.57 × 10−5 mm3/N·m at RT and 600 °C, respectively, which were reduced by 82.74 % and 87.43 % compared to the substrate. When the test temperature changes from RT to 600 °C, the main wear form of coatings changes from adhesive and abrasive wear to oxidative wear. With the Ti3SiC2 content increasing, the oxide film is gradually dense and uniform, and the oxidation resistance is significantly improved.
期刊介绍:
Wear journal is dedicated to the advancement of basic and applied knowledge concerning the nature of wear of materials. Broadly, topics of interest range from development of fundamental understanding of the mechanisms of wear to innovative solutions to practical engineering problems. Authors of experimental studies are expected to comment on the repeatability of the data, and whenever possible, conduct multiple measurements under similar testing conditions. Further, Wear embraces the highest standards of professional ethics, and the detection of matching content, either in written or graphical form, from other publications by the current authors or by others, may result in rejection.