首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Wear of bulk ceramics in micro-scale abrasion - The role of abrasive shape and hardness and its relevance to testing of ceramic coatings
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Wear of bulk ceramics in micro-scale abrasion - The role of abrasive shape and hardness and its relevance to testing of ceramic coatings

机译:大块陶瓷在微尺度磨损中的磨损-磨料形状和硬度的作用及其与陶瓷涂层测试的关系

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摘要

There is a wide body of literature wherein the micro-scale abrasion test has been employed to assess the behaviour of a range of vapour-deposited ceramic coatings. However, the fundamentals of the micro-scale abrasion process with ceramic materials in general (both in monolithic form and as coatings) are not well understood. In this work, the micro-scale abrasive wear behaviour of a range of brittle materials was examined as a function of abrasive particle type and applied load. The three types of abrasive particle slurries were alumina, silicon carbide and diamond, of similar size distributions and all suspended in water. It was shown that the relative wear rates of the materials depended strongly upon the abrasive type selected. When the abrasives were harder than the testpiece in question, the behaviour was dominated by the angularity and the particle size distribution of the abrasive. High angularity and wide size distributions, observed with alumina and silicon carbide abrasives, resulted in the applied load being carried by a small number of abrasive particles which resulted in lateral fracture and high rates of wear, whereas blocky abrasives (such as diamond) resulted in the load being carried by a larger number of particles and thus lateral, fracture being restricted with correspondingly low rates of wear. However, when the abrasives were either softer or not significantly harder than the testpieces, the relative hardnesses dominated the operative wear mechanisms. In previous work, it has been shown that ball roughness in the micro-scale abrasion test promotes abrasive entrainment into the wear zone throughout the test. In this work, it has been shown that high testpiece roughness as developed in the wear scar (due to lateral fracture being the primary mechanism of material removal) hinders further abrasive particle entrainment, and that testpieces which wear with a smooth surface morphology (by plastic flow rather than by brittle fracture) exhibit enhanced particle entrainment under conditions (such as high applied load) where other materials are demonstrating limited entrainment.
机译:有大量文献,其中采用微尺度磨损试验来评估一系列蒸汽沉积陶瓷涂层的性能。然而,对于一般陶瓷材料(整体形式和涂层形式)的微尺度磨蚀工艺的基本原理尚不十分了解。在这项工作中,检查了一系列脆性材料的微观磨损性能,作为磨粒类型和施加载荷的函数。三种类型的磨料颗粒浆料是氧化铝,碳化硅和金刚石,它们的粒径分布相似,并且都悬浮在水中。结果表明,材料的相对磨损率在很大程度上取决于所选的磨料类型。当磨料比所讨论的试件坚硬时,其行为主要取决于磨料的角度和粒度分布。在氧化铝和碳化硅磨料中观察到的高角度和大尺寸分布导致施加的载荷由少量磨料颗粒承担,从而导致侧向断裂和高磨损率,而块状磨料(例如金刚石)导致负载由更多的颗粒承担,从而导致侧面破裂,相应的低磨损率限制了破裂。但是,当磨料比试件更软或更硬时,相对硬度决定了磨耗机理。在以前的工作中,已经表明,在微尺度磨损测试中,球的粗糙度会在整个测试过程中促进磨料夹带进入磨损区域。在这项工作中,已经表明,在磨损痕迹中形成的高测试件粗糙度(由于横向断裂是材料去除的主要机理)阻碍了进一步的磨料颗粒夹带,并且测试件的磨损具有光滑的表面形态(通过塑料)流动而不是脆性断裂)在其他材料显示有限夹带的条件下(例如高施加负载)表现出增强的颗粒夹带。

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