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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Production and Corrosion Resistance of Thermally Sprayed Fe-Based Amorphous Coatings from Mechanically Milled Feedstock Powders
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Production and Corrosion Resistance of Thermally Sprayed Fe-Based Amorphous Coatings from Mechanically Milled Feedstock Powders

机译:从机械研磨的原料粉末的热喷涂的Fe基非晶涂层的生产和耐腐蚀性

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Mechanically milled FeCrNbB feedstock powders from commercial precursors were used to produce amorphous coatings through two different industrial thermal-spraying techniques: high-velocity oxygen fuel (HVOF) and flame spraying. Microstructure, thermal behavior, and hardness of the coatings and their corrosion resistances in acidic and alkaline chloride-rich media were comparatively studied. HVOF process was effective to produce similar to 200-mu m-thick highly amorphous coatings with hardness over than 700 HV(0.3 )and low porosity (similar to 5 pct). Flame-sprayed similar to 220-mu m-thick coatings were nanocrystalline, composed of alpha-Fe, Fe2B, FeNbB, and Fe2O3 phases and presented hardness of 564 HV0.3 and similar to 10 pct porosity. Electrochemical measurements indicated that HVOF coatings exhibit higher corrosion resistance than flame-sprayed ones thanks to the higher amorphous content and lower porosity resulting from the former processing route. Electrochemical impedance spectroscopy results demonstrated that amorphous HVOF Fe60Cr8Nb8B24 (at. pct) coatings are interesting to protect mild steels such as the API 5L X80 against corrosion in chloride-rich environments. (C) The Minerals, Metals & Materials Society and ASM International 2018
机译:使用两种不同的工业热喷涂技术,机械研磨的FecrnBB原料粉末通过两种不同的工业热喷涂技术:高速氧气(HVOF)和火焰喷涂来生产非晶涂料。涂料的微观结构,热行为和硬度及其耐酸性和富含碱性氯化物的耐慢培养基的耐腐蚀性。 HVOF方法是有效的,生产与200-mu m厚的高度无定形涂层类似,硬度超过700hv(0.3)和低孔隙率(类似于5 pct)。类似于220-mu m厚的涂层的火焰喷涂是纳米晶体,由α-Fe,Fe2b,FENBB和Fe 2 O 3分成,并呈现564 HV0.3的硬度,类似于10pct孔隙率。电化学测量表明,由于前加工路线导致的较高的无定形含量和较低的孔隙率,HVOF涂层表现出比火焰喷涂的耐腐蚀性更高。电化学阻抗光谱结果表明,无定形HVOF Fe60CR8B8B24(AT.PCT)涂层是有趣的,以保护诸如API 5L X80的温和钢免受富含氯化物的环境中的腐蚀。 (c)2018年矿物质,金属和材料协会和ASM国际

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