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Comparative Solid Particle Erosion Characterization of Conventional and Nanostructured Al2O3-13wt.TiO2 Ceramic Coatings Fabricated by Plasma Spraying Process

机译:通过等离子喷涂工艺制备的常规和纳米结构Al2O3-13wt。%TiO2陶瓷涂层的比较固体颗粒冲蚀特性

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In this work,conventional and nanostructured Al2O313wt.%TiO2 coatings were deposited by the plasma spraying technique.The microstructures of the two types of coatings were analyzed,and the solid particle erosion behaviors of the two coatings were comparatively researched in an erosion tester. Meanwhile,the erosion failure mechanisms of the coatings were discussed.The results show that the traditional coating has laminated structure and some pores.However,the nanostructured coating possesses a denser structure and not obviously lamellar-like structure,and exhibits a bimodal microstructure consisted of fully melted regions and partially melted regions.Owing to the compact microstructure and remained nano-particles,the nanostructured coating had a better erosion wear resistance than the conventional coating.Eroded morphology analysis indicates the main erosion mass loss of the coatings is attributed to lamellar spalling of the sprayed splats and fracture of brittle ceramic particles.In addition,the nanostructued coating has some impact craters and plough marks.In terms of the erosion mechanism,the conventional ceramic coating is dominated by brittle erosion,while the nanostructured ceramic coating is dominated by brittle erosion as well as ductile erosion to some extent.
机译:在这项工作中,通过等离子喷涂技术沉积了常规的和纳米结构的Al2O313wt。%TiO2涂层。分析了两种涂层的微观结构,并在侵蚀测试仪中比较研究了这两种涂层的固体颗粒侵蚀行为。同时,对涂层的冲蚀破坏机理进行了探讨。结果表明,传统涂层具有层状结构和细孔。然而,纳米结构涂层具有较致密的结构,而没有明显的层状结构,并具有双峰微结构。由于具有致密的微观结构和残留的纳米颗粒,纳米结构涂层比常规涂层具有更好的耐腐蚀磨损性能。腐蚀形态分析表明,涂层的主要腐蚀质量损失归因于层状剥落纳米结构涂层具有一定的撞击坑和犁痕。就腐蚀机理而言,常规陶瓷涂层主要是脆性腐蚀,而纳米结构涂层主要是脆性腐蚀。脆性侵蚀和延性侵蚀在一定程度上。

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