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A closed-form analytical approach for the simple prediction of hard-coating failure for tooling systems

机译:一种封闭形式的分析方法,用于简单预测工具系统的硬涂层失效

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摘要

Hard coatings are used extensively to protect tools in forming, forging and milling operations. While modern deposition of hard coatings using plasma methodologies has opened industry up to a new range of potential coating systems, challenges remain regarding coating optimization under specific conditions and environments. In the presented work a previously developed contact mechanical failure map, based on analytical solutions for a coating/substrate system under a contact load, was extended to include a thin-plate analytical solution for plastic deformation of a substrate, giving improved alignment with finite element solutions when compared to the Boussinesq solution utilized in literature. Analytical solutions were applied to aluminium chromium nitride based ceramic coatings, which have strong potential application in cutting tools and other contact-based applications, and were verified using finite element simulations. The failure map was investigated experimentally using scratch-testing, and it was found that cohesive coating failure initiated at forces predicted by the model for the ceramic coating, taking into account both the mechanical properties of the coating and substrate. An industry standard functional hard chrome coating was then tested, and it was found that cohesive failure initiated at loading conditions also predicted by the analytical model. The results show that such closed-form analytical modelling is a quick and versatile tool for industrially-relevant hard-coating systems, and could be utilized during the coating design process for parameter and material justification or combined with micro-mechanical testing, including high-temperature testing, to predict thin-film and coating failure in harsh industrial environments. (C) 2016 Elsevier B.V. All rights reserved.
机译:硬涂层被广泛用于在成型,锻造和铣削操作中保护工具。虽然使用等离子方法进行的现代硬质涂层沉积已为工业打开了一系列潜在涂层系统的大门,但在特定条件和环境下优化涂层仍然存在挑战。在提出的工作中,先前开发的基于接触载荷下的涂层/基材系统分析解决方案的接触机械破坏图被扩展为包括用于基材塑性变形的薄板分析解决方案,从而改善了与有限元的对准性与文献中使用的Boussinesq解决方案相比。分析解决方案应用于氮化铝铬陶瓷涂层,在切削工具和其他基于接触的应用中具有强大的潜力,并已通过有限元模拟进行了验证。使用划痕测试对失效图进行了实验研究,发现内聚涂层的失效是由陶瓷涂层模型预测的力引发的,同时考虑了涂层和基材的机械性能。然后测试了行业标准的功能性硬铬涂层,发现分析模型还预测了在加载条件下引发的内聚破坏。结果表明,这种闭合形式的分析模型是用于与工业相关的硬涂层系统的快速且通用的工具,可以在涂层设计过程中用于参数和材料的合理性验证,或与微机械测试结合使用,包括高强度温度测试,以预测恶劣工业环境中的薄膜和涂层故障。 (C)2016 Elsevier B.V.保留所有权利。

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