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首页> 外文期刊>Journal of Thermal Spray Technology >Erosion-Corrosion Resistance of Laser Surface Alloying of NbC Thermal Spray Coatings on AISI 304L Steel
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Erosion-Corrosion Resistance of Laser Surface Alloying of NbC Thermal Spray Coatings on AISI 304L Steel

机译:AISI 304L钢NBC热喷涂涂层激光表面合金的腐蚀耐腐蚀性

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摘要

NbC coatings were flame sprayed on AISI 304L substrates and further remelted using a 400-W power ytterbium-doped fiber laser (YLR-500-MM-AC-Y11), inserted into a chamber for argon atmosphere control. For the selection of the remelting parameters, isolated beads with remelting of the coatings were performed using three focal lengths and three remelting speeds. Using the selected laser parameters, layers were remelted with eight passes and 40% superposition. Erosion-corrosion tests were performed in a solution of NaCl in distilled water with SiO2. Surfaces and cross sections of the coatings were characterized by optical and scanning electron microscopy with dispersive energy microanalysis and x-ray diffraction. Microhardness measurements were taken in the cross section of the coatings. Modified surfaces 800 mu m dense without pores or other defects and interfaces with the substrate of excellent metallurgical bonding were obtained. It was found that the dilution of the coating with the substrate formed a gradient of chemical composition and mechanical properties. The erosive-corrosive wear resistance of the laser-remelted coatings was higher for the eroding impact angle of 90 degrees. When the impact angle was 30 degrees, the weight loss was higher and the ductile wear mechanism was conditioned by the formation of pitting on the modified surface.
机译:NBC涂层在AISI 304L基板上喷涂火焰,并使用400W功率的掺杂光纤激光器(YLR-500mm-AC-Y11)进一步重新熔化,插入氩气氛控制的腔室中。为了选择重熔参数,使用三个焦距和三次重熔速度进行涂层重熔的隔离珠。使用所选择的激光参数,用八次通过和40%的叠加重新熔化层。用SiO 2在蒸馏水中的NaCl溶液中进行腐蚀腐蚀试验。通过光学和扫描电子显微镜具有分散能量微量分析和X射线衍射的光学和扫描的表面和横截面。在涂层的横截面中取出显微硬度测量。在没有孔或其他缺陷和具有优异的冶金结合的基板的情况下,改性表面800μm致密。发现涂层与基材的稀释形成了化学成分和机械性能的梯度。激光熔化涂层的腐蚀耐磨性较高,用于侵蚀冲击角90度。当冲击角为30度时,重量损失较高,并且通过在改性表面上形成蚀地形成延性磨损机制。

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