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首页> 外文期刊>Journal of Materials Research and Technology >Preparation and high temperature tribological properties of laser in-situ synthesized self-lubricating composite coating on 304 stainless steel
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Preparation and high temperature tribological properties of laser in-situ synthesized self-lubricating composite coating on 304 stainless steel

机译:激光原位的制备和高温摩擦学性质在304不锈钢中合成的自润滑复合涂料

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An in-situ synthesized self-lubricating anti-wear composite coating was prepared with mixed Ni60-TiC-WS2precursor powders on the surface of 304 stainless steel by high-energy laser beam. The microstructure and microhardness of the composite coating and substrate were characterized by X-ray diffraction (XRD), optical microscopy (OM), scanning electron microscopy (SEM), energy dispersive X-ray analysis (EDS), and Vickers hardness test. The tribological properties and the related wear mechanisms of the composite coating and the substrate were systematically studied at RT, 300, 600 and 800 °C, respectively. The correlative results reveal that solid solution Cr0.19Fe0.7Ni0.11, self-lubricating sulfides Ti2CS/CrS/WS2and hard ceramic particle Fe2C/Cr7C3are in-situ synthesized in molten pool during laser process. Microstructure of the upper area of the coating is primarily composed of long strip structure, continuous matrix, white granular structure and rod structure. However, the cellular dendrites that formed during the solidification process were aggregated in the bottom area of the coating, which deteriorate the mechanical properties of the coating. The average microhardness of the composite coating (302.0 HV0.5) is slightly higher than that of the substrate (257.2 HV0.5), this is due to the more sulfides and iron compounds were in-situ synthesized in the molten pool, which was formed by the irradiation of the high-energy laser beam. At all test temperatures, the coefficient of friction (COF) and wear rate of the coating are lower than that of the substrate. The minimum COF of the coating (0.3031) appears at 300 °C, and the wear resistance of the coating is the best at 600 °C, with a wear rate of 9.699 × 10?5mm3/Nm.
机译:通过高能激光束在304不锈钢表面上制备原位合成的自润滑抗磨损复合涂料。通过X射线衍射(XRD),光学显微镜(OM),扫描电子显微镜(SEM),能量分散X射线分析(EDS)和维氏硬度测试的复合涂层和基材的微观结构和显微硬度。在室温,300,600和800℃下系统地研究复合涂层和基材的摩擦学性质和相关磨损机制。相关结果表明,在激光过程中,固溶CR0.19FE0.7NI0.11,自润滑硫化硫化硫化物Ti2Cs / Crs / Ws2和硬陶瓷颗粒Fe2C / Cr7C3在激光池中合成的原位。涂层上部面积的微观结构主要由长条状结构,连续矩阵,白色粒状结构和杆结构组成。然而,在凝固过程中形成的细胞枝晶在涂层的底部区域中聚集,这使得涂层的机械性能劣化。复合涂层(302.0 HV0.5)的平均微硬度略高于基材(257.2 HV0.5),这是由于硫化物和铁化合物在熔池中合成了更多的硫化物和铁化合物,即由高能激光束照射形成。在所有测试温度下,摩擦系数(COF)和涂层的磨损率低于基材的系数。涂层(0.3031)的最小COF出现在300℃,涂层的耐磨性是最佳的600℃,磨损率为9.699×10?5mm3 / nm。

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