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Raman analysis of DLC coated engine components with complex shape: Understanding wear mechanisms

机译:具有复杂形状的DLC涂层发动机部件的拉曼分析:了解磨损机理

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摘要

Hydrogenated amorphous carbon (a-C:H) films were deposited on flat samples and engine components using an industrial scale reactor. Characterization of the coating allowed validating its application on engine parts due to high hardness (32 GPa) and high level of adhesion achieved using sublayers. The original approach of this work concerned the use of Raman analysis not only on flat samples after tribometer tests but also directly on coated engine parts with complex shape (like cam/follower system), in order to understand wear mechanisms occurring in motorsport engines. As wear could lead to a coating thickness decrease, a particular attention was paid on the Raman signal of the sublayers. Among the different values extracted from Raman spectrum to characterize structural organization, the value of G peak intensity appeared as a criterion of validity of analyses because it is directly linked to the remaining thickness of the a-C:H layer. For flat samples tested on ball-on-disc tribometer, structure of a-C:H film observed by Raman spectroscopy in the wear track remained stable in depth. Then, a-C:H coated engine components were studied before and after working in real conditions. Two different wear mechanisms were identified. The first one did not show any structural modification of the bulk a-C:H layer. In the second one, the high initial roughness of samples (R_t = 1.15μm) lead to coating delaminations after sliding. Massive graphitization which decreases drastically mechanical properties of the coatings was observed by Raman analyses on the contact area. The increase of the temperature on rough edges of the scratches could explain this graphitization.
机译:使用工业规模的反应器将氢化非晶碳(a-C:H)膜沉积在扁平样品和发动机组件上。由于高硬度(32 GPa)和使用子层实现的高附着力,涂层的特性可以验证其在发动机零件上的应用。这项工作的原始方法不仅涉及在摩擦计测试后对扁平样品进行拉曼分析,而且还直接对具有复杂形状的涂层发动机零件(例如凸轮/从动系统)进行拉曼分析,以了解赛车发动机中发生的磨损机理。由于磨损可能导致涂层厚度降低,因此特别注意了子层的拉曼信号。在从拉曼光谱中提取的用于表征结构组织的不同值中,G峰强度的值似乎是分析有效性的标准,因为它直接与a-C:H层的剩余厚度有关。对于在圆盘摩擦计上测试的扁平样品,通过拉曼光谱在磨损轨迹上观察到的a-C:H膜的结构在深度上保持稳定。然后,研究了在真实条件下工作前后的a-C:H涂层发动机部件。确定了两种不同的磨损机理。第一个没有显示出本体a-C:H层的任何结构修饰。在第二个样品中,样品的高初始粗糙度(R_t =1.15μm)导致滑动后涂层分层。通过接触面积的拉曼分析观察到大量的石墨化,其大大降低了涂层的机械性能。划痕粗糙边缘上温度的升高可以解释这种石墨化。

著录项

  • 来源
    《Thin Solid Films》 |2009年第5期|1475-1479|共5页
  • 作者单位

    Universite de Limoges, CNRS, Sciences des Procedes Ceramiques et de Traitements de Surface, ENSIL, Parc Ester Technopole, 16 rue d'Atlantis, BP 6804, 87068 Limoges Cedex, France;

    Universite de Limoges, CNRS, Sciences des Procedes Ceramiques et de Traitements de Surface, ENSIL, Parc Ester Technopole, 16 rue d'Atlantis, BP 6804, 87068 Limoges Cedex, France Sorevi, Parc Ester Technopole, 5 Allee Skylab, BP 6810, 87068 Limoges, France;

    Universite de Limoges, CNRS, Sciences des Procedes Ceramiques et de Traitements de Surface, ENSIL, Parc Ester Technopole, 16 rue d'Atlantis, BP 6804, 87068 Limoges Cedex, France;

    Universite de Limoges, CNRS, Sciences des Procedes Ceramiques et de Traitements de Surface, Faculty of Sciences and Technics, 123 avenue Albert Thomas, 87060 Limoges Cedex, France;

    Universite de Limoges, CNRS, Sciences des Procedes Ceramiques et de Traitements de Surface, Faculty of Sciences and Technics, 123 avenue Albert Thomas, 87060 Limoges Cedex, France;

    Universite de Limoges, CNRS, Sciences des Procedes Ceramiques et de Traitements de Surface, ENSIL, Parc Ester Technopole, 16 rue d'Atlantis, BP 6804, 87068 Limoges Cedex, France;

    Sorevi, Parc Ester Technopole, 5 Allee Skylab, BP 6810, 87068 Limoges, France;

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

    diamond-like carbon; a-C:H films; wear; raman spectroscopy; tribology;

    机译:类金刚石碳;a-C:H胶片;穿;拉曼光谱摩擦学;

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