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Alumina-zirconia coatings obtained by suspension plasma spraying from highly concentrated aqueous suspensions

机译:通过从高浓度含水悬浮液中等离子体悬浮液喷涂获得的氧化铝 - 氧化锆涂层

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摘要

Suspension plasma spraying (SPS) deposition represents an innovative technique to produce coatings that exhibit improved properties. However, the key to obtain coatings with superior functional properties relies on the investigation of the suspensions as starting materials. For this reason, the present work deals with the suspension preparation for SPS process and its influence on the resulting coatings.Laboratory-prepared 60/40 wt% alumina-zirconia suspensions were concentrated to avoid energy loss and were then successfully deposited by SPS technique. The liquid used was water instead of ethanol due to economical, environmental and safety reasons. The preparation of the suspension plays an important role in SPS process since stable and well-dispersed water suspensions are difficult to obtain. For this reason, colloidal behaviour characterisation of the starting particles as well as rheological optimisation of the feedstock suspensions were addressed in this research.Suspensions with different solid loadings (up to 30 vol.% or 72 wt%) were deposited using several spraying distances. All coatings displayed a bimodal microstructure consisting in partially melted zones surrounded by a fully melted matrix. α-Al2O3 and t’-ZrO2 constituted the main crystalline phases, but differences in the microstructure and properties of the coatings were observed. From these results, some relations between starting suspension and spraying parameters with coating characteristics were found. Thus the optimal spraying distance becomes shorter when the suspension solid loading increases.
机译:悬浮等离子喷涂(SPS)沉积代表了一种创新技术,可生产出性能得到改善的涂层。然而,获得具有优异功能性能的涂料的关键取决于对悬浮液作为起始原料的研究。因此,目前的工作涉及SPS工艺的悬浮液的制备及其对所得涂层的影响。实验室制备的60/40 wt%氧化铝-氧化锆悬浮液被浓缩以避免能量损失,然后通过SPS技术成功沉积。由于经济,环境和安全原因,使用的液体是水而不是乙醇。悬浮液的制备在SPS过程中起着重要作用,因为难以获得稳定且分散良好的水悬浮液。因此,本研究解决了起始颗粒的胶体行为表征以及原料悬浮液的流变优化问题。使用不同的喷涂距离沉积了具有不同固体负载量(最高30 vol。%或72 wt%)的悬浮液。所有涂层均显示出双峰微观结构,其由被完全熔融的基质围绕的部分熔融区域组成。 α-Al2O3和t'-ZrO2构成了主要的结晶相,但是观察到涂层的微观结构和性能有所不同。从这些结果,发现起始悬浮液和具有涂层特性的喷涂参数之间的一些关系。因此,当悬浮液固体负荷增加时,最佳喷涂距离变短。

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