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Recent Development of Porous Materials and Structured Surface Fabrication by Spray Deposition of Surface-Molten Particles

机译:通过喷涂表面熔融颗粒喷射沉积多孔材料和结构表面制造的最新开发

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Thermal spray processes are generally employed to deposit dense coatings. The porosity in a thermal spray coating is limited up to about 20% down to less than 1%. The porous abradable coatings can be deposited by using composite powders containing pore-forms such as polymer. Recently, an effective method to deposit porous coating are being developed by directly utilizing semi-melted spray particles through controlling coating surface temperature. In this article, the recent investigations on the deposition of porous materials and ceramic abradable coatings by surface-melted spray particles are reviewed. The bonding formation between particles by controlling deposit surface temperature is essential to form porous deposits. By using flame spraying, different metallic porous deposits up to tens of millimeter thick from refractory molybdenum (Mo) to stainless steel are fabricated with a porosity level up to 70%. Porous alumina (Al_2O_3) and yttria-stabilized zirconia (YSZ) with a porosity of over 60% are deposited for high temperature abradable coating applications directly by semi-molten ceramic particles. The deposition of convex-shaped YSZ particles is employed to construct the high performance structured cathode for solid oxide fuel cell application. Moreover, the deposited convex-shape particles are also utilized to fabricate effective super-hydrophobic surface. The recent progresses on the deposition of surface-melted spray particles will extend many new applications for thermal spraying.
机译:热喷涂过程通常用于沉积密集的涂层。热喷涂涂层中的孔隙率受到约20%的限制至小于1%。可以通过使用含有孔形式的复合粉末如聚合物来沉积多孔可磨损涂层。最近,通过控制涂层表面温度直接利用半熔化的喷雾颗粒,开发一种沉积多孔涂层的有效方法。在本文中,回顾了最近对通过表面熔化的喷雾颗粒沉积多孔材料和陶瓷可磨损涂层的研究。通过控制沉积表面温度颗粒之间的粘合形成对于形成多孔沉积物是必不可少的。通过使用火焰喷涂,从难治性钼(Mo)到不锈钢的不同金属多孔沉积物高达数十毫米厚,由孔隙率水平达到70%。具有超过60%孔隙率的多孔氧化铝(Al_2O_3)和氧化钇稳定的氧化锆(YSZ)直接通过半熔融陶瓷颗粒直接沉积高温可磨蚀的涂料应用。凸形YSZ颗粒的沉积用于构建用于固体氧化物燃料电池应用的高性能结构化阴极。此外,沉积的凸状颗粒也用于制造有效的超疏水表面。最近对表面熔化喷雾颗粒沉积的进展将延长许多新的热喷涂应用。

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