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Toughness enhancement of nanostructured hard coatings: Design strategies and toughness measurement techniques

机译:纳米结构硬质涂层的韧性增强:设计策略和韧性测量技术

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摘要

Most hard coatings are based on ceramic materials and are generally brittle. It is desirable to have coatings that are both hard and tough. Here, we review several strategies that can be employed to increase coating toughness while maintaining hardness. Various nanocomposite andmultilayer coatings (Ti/TiB_2, FeMn/TiB_2, Fe/VC andW/VC) were synthesized to explore three such toughening strategies: coherency strain, transformation toughening, and nanograined metals. Practical methods used to measure coating toughness in this work were presented: scratch testing, nanoindentation, and modified Vickers. Results demonstrate that coating systems that exploit these strategies show significantly enhanced toughness compared with those that do not. In particular, the strategy of using nanolayers of ametal with high elasticmodulus alternatingwith spacer layers much thinner than themetal appears to be themost effective. In principle, one can reach hardness values up to 10% of the elasticmodulus, while attaining toughness comparable to most nanocrystalline metals. Given thatmost metals with high elastic moduli are refractory materials, such coatings may also be useful for high-temperature applications.
机译:大多数硬质涂层均基于陶瓷材料,通常较脆。理想的是具有坚硬的涂层。在这里,我们回顾了可用于增加涂层韧性同时保持硬度的几种策略。合成了各种纳米复合和多层涂层(Ti / TiB_2,FeMn / TiB_2,Fe / VC和W / VC),以探索三种这样的增韧策略:相干应变,相变增韧和纳米晶粒金属。介绍了在这项工作中用于测量涂层韧性的实用方法:划痕测试,纳米压痕和改良的维氏硬度。结果表明,与未采用这些策略的涂料体系相比,其韧性显着提高。特别地,使用具有高弹性模量的金属的纳米层与比金属薄得多的间隔层交替的策略似乎是最有效的。原则上,可以达到高达弹性模量10%的硬度值,同时获得与大多数纳米晶金属相当的韧性。考虑到大多数具有高弹性模量的金属是耐火材料,这种涂层也可用于高温应用。

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