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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Computational design of thin-film nanocomposite coatings for optimized stress and velocity accommodation response
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Computational design of thin-film nanocomposite coatings for optimized stress and velocity accommodation response

机译:薄膜纳米复合涂层的计算设计,可优化应力和速度调节响应

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摘要

The tailoring of thin-film coatings comprised of high strength nano-grained constituents is investigated by new microstructurally based finite-element techniques for applications related to the wear, durability, and performance of these coatings over a broad range of temperatures and loading conditions. These coatings are comprised of brittle phases, diamond-like carbon and partially stabilized zirconia and ductile constituents, such as gold and molybdenum. The effects of wear, contact transfer films, grain sizes and distributions, grain spacing and strength are used to determine the optimal thin-film coating compositions. Comparisons are made with experimental measurements pertaining to durability and wear for validation and for the development of design guidelines for thin-film nanocomposite coatings.
机译:通过新的基于微结构的有限元技术,研究了由高强度纳米颗粒成分组成的薄膜涂层的定制,这些技术适用于与这些涂层在广泛温度和载荷条件下的磨损,耐用性和性能相关的应用。这些涂层由脆性相,类金刚石碳,部分稳定的氧化锆和易延展成分(例如金和钼)组成。磨损,接触转移膜,晶粒尺寸和分布,晶粒间距和强度的影响用于确定最佳的薄膜涂料组合物。比较了与耐久性和磨损有关的实验测量结果,以进行验证和制定薄膜纳米复合涂层的设计准则。

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