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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Microstructural Characterization and Wear Behavior of Nano-Boride Dispersed Coating on AISI 304 Stainless Steel by Hybrid High Velocity Oxy-Fuel Spraying Laser Surface Melting
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Microstructural Characterization and Wear Behavior of Nano-Boride Dispersed Coating on AISI 304 Stainless Steel by Hybrid High Velocity Oxy-Fuel Spraying Laser Surface Melting

机译:混合高速氧-燃料喷射激光表面熔覆在AISI 304不锈钢上的纳米硼化物分散涂层的显微组织表征和磨损行为

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摘要

The current study concerns the detailed microstructural characterization and investigation of wear behavior of nano-boride dispersed coating developed on AISI 304 stainless steel by high velocity oxy-fuel spray deposition of nickel-based alloy and subsequent laser melting. There is a significant refinement and homogenization of microstructure with improvement in microhardness due to laser surface melting (1200 VHN as compared to 945 VHN of as-sprayed and 250 VHN of as-received substrate). The high temperature phase stability of the as-coated and laser melted surface has been studied by differential scanning calorimeter followed by detailed phase analysis at room and elevated temperature. There is a significant improvement in wear resistance of laser melted surface as compared to as-sprayed and the as-received one due to increased hardness and reduced coefficient of friction. The mechanism of wear has been investigated in details. Corrosion resistance of the coating in a 3.56 wt pct NaCl solution is significantly improved (4.43 E-2 mm/year as compared to 5 E-1 mm/year of as-sprayed and 1.66 mm/year of as-received substrate) due to laser surface melting as compared to as-sprayed surface.
机译:当前的研究涉及通过对镍基合金进行高速氧-燃料喷涂沉积和随后的激光熔化,在AISI 304不锈钢上开发的纳米硼化物分散涂层的详细微观结构表征和磨损行为研究。由于激光表面的熔化(1200 VHN与喷镀的945 VHN和250 VHN的接收基板相比),显微组织得到了显着的细化和均质化,并提高了显微硬度。通过差示扫描量热仪,然后在室温和高温下进行详细的相分析,研究了涂层和激光熔融表面的高温相稳定性。与喷镀态和接收态相比,激光熔化表面的耐磨性有了显着提高,这归因于硬度的提高和摩擦系数的降低。磨损机理已被详细研究。在3.56 wt%的NaCl溶液中,涂层的耐蚀性得到了显着提高(喷涂后为5 E-1 mm /年,接受基材为1.66 mm /年,与之前的5 E-1 mm /年相比为4.43 E-2 mm /年)与喷涂表面相比,激光表面熔化。

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