Effects of Plume Quenching on Controlled Atmosphere Plasma Sprayed Metals

E. Peleg, A. Vackel
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Abstract

Thermal spray processes benefit from workpiece cooling to prevent overheating of the substrate and to retain metallurgical properties (e.g., temper). Cold-gas “plume quenching” is a plume-targeting cooling technique, where an argon curtain is directed laterally above the substrate surface to re-direct high temperature gases without impacting particle motion. However, there has been little investigation of its effect on the molten particles and the resulting coating properties. This study examined high- and medium- density tantalum and nickel coatings, fabricated by Controlled Atmosphere Plasma Spray with and without plume quenching on aluminum and titanium substrates. To compare the effect of plume quenching, the deposition efficiency was calculated through coating mass gain, and the coating density, stiffness, and adhesion were measured. The tantalum and nickel coatings were largely unaffected by plume quenching with respect to deposition efficiencies, coating density, adhesion, and stiffness. These results indicate that a plume quench could be used without affecting the coating properties for high- and medium-density metals while providing the benefit of substrate cooling that increases with higher plume quench gas flow rates.
烟羽淬火对可控气氛等离子喷涂金属的影响
热喷涂工艺受益于工件冷却,以防止基材过热并保持冶金性能(例如,回火)。冷空气“羽流淬火”是一种针对羽流的冷却技术,在基板表面上方横向定向氩气幕,在不影响粒子运动的情况下重新引导高温气体。然而,对其对熔融颗粒和涂层性能影响的研究很少。本研究研究了在铝和钛基板上采用可控气氛等离子喷涂(有或没有羽流淬火)制备的高密度和中密度钽和镍涂层。为了比较羽流淬火的效果,通过涂层质量增益计算沉积效率,并测量涂层密度、刚度和附着力。在沉积效率、涂层密度、附着力和硬度方面,钽和镍涂层在很大程度上不受羽流淬火的影响。这些结果表明,羽流淬火可以在不影响高密度和中密度金属涂层性能的情况下使用,同时提供基体冷却的好处,随着羽流淬火气体流量的增加而增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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