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Optimization and erosion wear response of NiCrSiB/WC-Co HVOF coating using Taguchi method

机译:Taguchi法优化NiCrSiB / WC-Co HVOF涂层的腐蚀磨损响应

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In this work, high velocity oxy-fuel (HVOF) thermal spraying was used to develop 65 wt% NiCrSiB-35 wt% WC-Co coatings on AISI 304 stainless steel substrate. Taguchi method was taken to optimize the spray parameters like oxygen flow rate, fuel flow rate, powder feed rate and standoff distance to obtain better erosion resistance at 90 degrees impact angle. Standoff distance and powder feed rate were identified as the highly contributing parameters on the erosion wear loss. The important sequence of the spray parameter is standoff distance > powder feed rate > fuel flow rate > oxygen flow rate. The combination of 220 1pm of oxygen flow rate, 65 1pm of fuel flow rate, 28 g/min of powder feed rate and 300 mm of standoff distance was identified as the optimum condition for minimum erosion wear loss. The microstructure of the optimized coating was characterized using Scanning Electron Microscope (SEM) equipped with Energy dispersive spectroscopy (EDS), Optical microscope (OM), and X-Ray Diffraction (XRD). The microhardness, porosity and surface roughness of the coating was also measured. Finally, erosion wear testing of the optimized coating was conducted at 30 degrees, 60 degrees and 90 degrees impact angle using hot air jet erosion testing machine. The SEM images of the erodent samples were taken to analyse the erosion mechanism. (C) 2015 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
机译:在这项工作中,使用高速氧燃料(HVOF)热喷涂在AISI 304不锈钢基材上开发65 wt%的NiCrSiB-35 wt%的WC-Co涂层。采用Taguchi方法优化喷涂参数,例如氧气流速,燃料流速,粉末进料速度和支座距离,以在90度冲击角下获得更好的耐蚀性。支座距离和粉末进料速率被确定为侵蚀磨损损失的重要参数。喷雾参数的重要顺序是:间距>粉末进料速度>燃料流速>氧气流速。氧气流量220 1pm,燃料流量65 1pm,粉末进给量28 g / min和对峙距离300 mm的组合被确定为最小侵蚀磨损损失的最佳条件。使用配备了能量色散光谱仪(EDS),光学显微镜(OM)和X射线衍射(XRD)的扫描电子显微镜(SEM)对优化涂层的微观结构进行了表征。还测量了涂层的显微硬度,孔隙率和表面粗糙度。最后,使用热空气喷射腐蚀试验机以30度,60度和90度的冲击角对优化涂层的腐蚀磨损进行了测试。拍摄侵蚀样品的SEM图像以分析腐蚀机理。 (C)2015 Elsevier Ltd和Techna Group S.r.l.版权所有。

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