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首页> 外文期刊>Archives of Metallurgy and Materials >CONTRIBUTION OF TITANIUM, CHROMIUM AND CARBON BUFFER INTERLAYERS TO BIO- TRIBOLOGICAL PROPERTIES OF MULTILAYER COMPOSITES
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CONTRIBUTION OF TITANIUM, CHROMIUM AND CARBON BUFFER INTERLAYERS TO BIO- TRIBOLOGICAL PROPERTIES OF MULTILAYER COMPOSITES

机译:钛,铬和碳缓冲晶层夹层对多层复合材料生物学性质的贡献

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Research studies on bio-tribological protective coatings of titanium, chromium and carbon based have been performed. Thin films were fabricated by hybrid PLD technique (PLD supported by magnetron sputtering). Coatings consisted of two parts; the inner part (first from the substrate) in each case was formed by titanium or chromium/titanium nitride or chromium nitride (Ti/TiN or Cr/Cr2N). The outer part was formed by pure DLC or multilayer DLC/Ti or Cr. No delamination was found at the interface. Titanium or chromium metallic layer was deposited as a first layer directly on the metallic substrate to avoid delamination. All individual layers were built of columnar nano-crystallites. Mechanisms of the mechanical wear of analyzed systems were presented, focusing on the cracking propagation in ball-on-disc tests using an 1 N and 5 N applied loads for 5 000 cycles. Complex microstructure analysis of presented nano-multilayer coatings, before and after mechanical tests, were performed by means of transmission electron microscopy (TEM). The highest stress concentration during mechanical uploading was moved through the multilayer coating by breaking only one layer at the time. The microstructure characterization revealed that cracking propagating in the outer part of the coating was stopped at the interface. In the case of the inner part of the coating Ti/TiN; Cr/Cr2N, ceramic layers showed brittle cracking, while metallic (Ti or Cr) ones deformed plastically. Fabricated coatings were subjected under the analysis in the biomechanical system optimized to test for the direct contact with a human whole blood. The study considered physiological conditions mainly related to the temperature and humidity and the frequency of cyclic deformation of the artificial vessel into which the tested sample was introduced.
机译:已经进行了钛,铬和碳生物摩擦保护涂层的研究研究。通过混合PLD技术(由磁控溅射支撑的PLD)制造薄膜。涂料由两部分组成;通过钛或铬/氮化钛或氮化铬(Ti / TiN或Cr / Cr2N)形成每种情况下的内部(第一来自基板)。外部部分由纯DLC或多层DLC / Ti或Cr形成。界面没有发现分层。直接在金属基板上沉积钛或铬金属层作为第一层,以避免分层。所有单层都是由柱状纳米微晶构成的。提出了分析系统的机械磨损机制,专注于使用1 n和5 n施加的载荷为5 000个循环的球盘测试中的开裂传播。通过透射电子显微镜(TEM)进行机械试验前后呈纳米多层涂层的复杂微观结构分析。在机械上传期间的最高应力浓度通过当时仅打破一层而移动通过多层涂层。微观结构表征显示,在界面停止在涂层的外部传播的开裂。在涂层的内部/锡的情况下; Cr / CR2N,陶瓷层显示出脆性开裂,而金属(Ti或Cr)塑性变形。在经过优化的生物力学系统中的分析下进行制造的涂层,以测试与人类全血直接接触。该研究认为,引入测试样品的人工血管的温度和湿度和循环变形频率的研究被认为是生理条件。

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