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Modeling the composite hardness of multilayer coated systems

机译:模拟多层涂层系统的复合硬度

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摘要

The change in the composite hardness with penetration depth derived from nanoindentation tests conducted on coated systems, which involve the deposition of multilayer coatings, in general exhibits a complex shape, as a consequence of the sequential contribution of each coating layer to the composite hardness during indentation loading. In spite that there are a number of models, which have been proposed for describing the change of the composite hardness with penetration depth for monolayer coatings, as well as for determining the coating and substrate hardness, very few research works have addressed the problem of describing this kind of data for multilayer coatings. In the present communication, a rational approach is proposed for extending two models widely used for the analysis of monolayer coatings, in order to describe the composite hardness data of multilayer coatings, as well as for determining the hardness of each individual layer and that of the substrate. Thus, a modified form of the models earlier advanced by Korsunsky et al. and Puchi-Cabrera, as well as their computational instrumentation, are proposed. The extension of both models to deal with multilayer coatings is conducted on the basis of the model developed by lost et al., in order to adapt the Jonsson-Hogmark model to the analysis of indentation data of multilayer coatings. Such a methodology provides a means of computing the volume fraction of each individual layer in the coating, which contributes to the composite hardness. According to the results obtained, this scheme seems to be general enough to be applicable to different hardness models other than the Jonsson-Hogmark model. The proposed modified models are validated employing nanoindentation results obtained from a 2024-T6 aluminum alloy coated with a diamond-like carbon film, employing electroless NiP as intermediate layer. The advantages and disadvantages of the different models employed in the analysis are thoroughly discussed. (C) 2015 Elsevier B.V. All rights reserved.
机译:复合材料硬度随渗透深度的变化源自对涂层系统进行的纳米压痕测试,涉及多层涂层的沉积,通常表现出复杂的形状,这是由于每个涂层在压痕过程中对复合硬度的依次贡献加载中。尽管已经提出了许多模型来描述单层涂层的复合硬度随渗透深度的变化以及确定涂层和基材硬度的模型,但很少有研究工作解决了描述模型的问题。多层涂料的此类数据。在本通报中,提出了一种合理的方法来扩展广泛用于单层涂层分析的两个模型,以便描述多层涂层的复合硬度数据,以及确定每个单独层和每个涂层的硬度。基质。因此,Korsunsky等人先前提出的模型的修改形式。提出了Puchi-Cabrera和Puchi-Cabrera及其计算工具。为了使Jonsson-Hogmark模型适用于多层涂层压痕数据的分析,在lost等人开发的模型的基础上对这两种模型进行了扩展以处理多层涂层。这种方法提供了一种计算涂层中每个单独层的体积分数的手段,这有助于复合材料的硬度。根据获得的结果,该方案似乎足够通用,可应用于除Jonsson-Hogmark模型以外的其他硬度模型。拟议的修改模型通过使用从2024-T6铝合金表面涂覆类金刚石碳膜获得的纳米压痕结果进行了验证,采用化学镀NiP作为中间层。全面讨论了分析中使用的不同模型的优缺点。 (C)2015 Elsevier B.V.保留所有权利。

著录项

  • 来源
    《Thin Solid Films》 |2015年第2期|53-62|共10页
  • 作者单位

    Cent Univ Venezuela, Fac Engn, Sch Met Engn & Mat Sci, Caracas 1040, Venezuela|Venezuelan Natl Acad Engn & Habitat, Caracas 1010, Venezuela|Univ Lille Nord France, USTL, CNRS, LML,UMR 8107, F-59650 Villeneuve Dascq, France;

    Cent Univ Venezuela, Fac Engn, Sch Met Engn & Mat Sci, Caracas 1040, Venezuela|Venezuelan Natl Acad Engn & Habitat, Caracas 1010, Venezuela|Ctr Lille, MSMP, Arts & Metiers ParisTech, F-59000 Lille, France;

    Ctr Lille, MSMP, Arts & Metiers ParisTech, F-59000 Lille, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hardness modeling; Multilayer coatings; Indentation loading response; Nanoindentation testing;

    机译:硬度建模;多层涂层;压痕载荷响应;纳米压痕测试;

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