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Microstructure and mechanical properties of plasma spraying coatings from YSZ feedstocks comprising nano-and submicron-sized particles

机译:来自YsZ原料的等离子喷涂涂层的微观结构和机械性能,包括纳米和亚微米尺寸的颗粒

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摘要

Atmospheric plasma spraying (APS) is an attractive technique to obtain nanostructured coatings due to its versatility, simplicity and relatively low cost. However, nanoparticles cannot be fed into the plasma using conventional feeding systems, due to their low mass and poor flowability, and must be adequately reconstituted into sprayable micrometric agglomerates.In this work, nanostructured and submicron/nanostructured powders of yttria-stabilised zirconia (YSZ) were deposited using APS, with a view to obtaining high-performance thermal barrier coatings (TBC). All powders were reconstituted by spray-drying from different solid loading suspensions, followed by a thermal treatment of the spray-dried granules to reduce agglomerate porosity and enhance powder sinterability. The reconstituted granules were characterised by XRD, SEM, pore sizing and flowability evaluation.The reconstituted feedstocks were successfully deposited onto metallic substrates by APS. A metallic bond coat was sprayed between the substrate and the ceramic layer. The coating microstructure, characterised by SEM, was formed by partially melted zones, which retained the initial powder microstructure, embedded in a fully melted matrix which acts as a binder. It was shown that feedstock characteristics which in turn are very dependent of starting suspension characteristics, in particular agglomerate density and primary particle size, impact on coating microstructure (porosity and amount of partially-melted areas). For this reason mechanical properties of coatings are also strongly affected by feeding powder characteristics.
机译:大气等离子喷涂(APS)具有多功能性,简单性和相对较低的成本,因此是一种获得纳米结构涂层的诱人技术。然而,由于纳米粒子质量低,流动性差,因此无法使用传统的进料系统将其注入等离子体中,必须将其适当地重构为可喷涂的微米级团聚体。在这项工作中,氧化钇稳定的氧化锆(YSZ)的纳米结构和亚微米/纳米结构粉末为了获得高性能的热障涂层(TBC),使用APS沉积了1片)。通过从不同的固体负载悬浮液中喷雾干燥,重新配制所有粉末,然后对喷雾干燥的颗粒进行热处理,以减少团聚孔隙率并增强粉末的烧结性。通过XRD,SEM,孔定径和流动性评价对再生颗粒进行了表征。通过APS将再生原料成功地沉积在金属基质上。在基底和陶瓷层之间喷涂金属粘结层。由SEM表征的涂层微观结构是由部分熔化的区域形成的,该区域保留了最初的粉末微观结构,并嵌入了充当粘合剂的完全熔化的基质中。结果表明,原料特性反过来又很大程度上取决于起始悬浮液的特性,特别是附聚物的密度和初级粒度,对涂料的微观结构(孔隙率和部分熔融区域的数量)产生影响。因此,涂料的机械性能也受到进料粉末特性的强烈影响。

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