首页> 外文会议>Symposium on Continuous Nanophase and Nanostructured Materials; 20031201-20031205; Boston,MA; US >Quaternary-matrix, nanocomposite self-lubricating PVD coatings in the system TiAlCN-MoS_2 - structure and tribological properties
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Quaternary-matrix, nanocomposite self-lubricating PVD coatings in the system TiAlCN-MoS_2 - structure and tribological properties

机译:TiAlCN-MoS_2系统中的四元基质,纳米复合自润滑PVD涂层-结构和摩擦学性能

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Nowadays the demands placed upon the tooling in processes such as cutting, drilling, milling, stamping, bending, etc. are constantly growing and restrictive. On one hand, productivity, cost efficiency and quality all require high-speed processes to be developed. On the other hand, environmental safety requires very little or no lubricant to be used (dry cutting or minimized spray-lubrication). When combined, these two considerations mean: the tool should wear very little, withstand high temperatures and the friction between the tool and the work piece should be minimized. An apparent approach to simultaneously satisfying such requirements is coating the tools with self-lubricating hard coatings. Quaternary TiAlCN is a rapidly developing hard coating suitable for a number of cutting applications. The well-known wear-resistant coating TiN has been demonstrated to have improved high-temperature oxidation resistance when aluminum is included, i.e. TiAlN. Addition of yet a fourth element, carbon, has the primary effect of lowering the high friction coefficient occurring between the ceramic coating and steel. The high hardness, toughness, heat resistance and low friction coefficient of TiAlCN make it the ideal candidate for applications such as milling, hobbing, tapping, stamping and punching. MoS_2 is a well-known solid lubricant widely used as tribological coatings, especially for applications working in vacuum or dry environment. Combining the wear resistance of the quaternary TiAlCN matrix with the lubricating properties of MoS_2 has an extremely beneficial effect in further improving the tribological performance of the resulting composite. The coatings were deposited on hardmetal (WC-Co) and Si (100) substrates using reactive magnetron sputtering. The structure of the coatings is studied by plain-view TEM and XTEM, electron diffraction and EDX. The tribological properties were examined by Pin-on-Disk (PoD) tribometer. The adhesion was estimated by scratch test, and the hardness was measured by nanoindentation. All the coatings examined had a very low friction coefficient (typically below 0.09) and volumetric wear rate against 100Cr6 steel (AISI 52100) of 7.10~(-7) mm~3/N/m. The relation of deposition parameters to structure to properties is discussed. To the authors knowledge, this is the first paper describing quaternary TiAlCN matrix with inclusions of MoS_2.
机译:如今,在切削,钻孔,铣削,冲压,弯曲等过程中对工具提出的要求不断增长并受到限制。一方面,生产率,成本效率和质量都需要开发高速过程。另一方面,为了环境安全,几乎不需要使用润滑剂(干切削或最小化的喷雾润滑)。综合考虑,这两个因素意味着:刀具应磨损极少,能承受高温,并且刀具与工件之间的摩擦应降至最小。同时满足这些要求的一种明显方法是在工具上涂上自润滑的硬涂层。四元TiAlCN是一种快速发展的硬质涂层,适用于许多切割应用。已经证明,当包含铝即TiAlN时,众所周知的耐磨涂层TiN具有改善的高温抗氧化性。加入第四种元素碳具有降低陶瓷涂层和钢之间发生的高摩擦系数的主要作用。 TiAlCN的高硬度,韧性,耐热性和低摩擦系数使其成为铣削,滚齿,攻丝,冲压和冲压等应用的理想选择。 MoS_2是一种众所周知的固体润滑剂,广泛用作摩擦涂层,特别是在真空或干燥环境中使用的应用。将四元TiAlCN基体的耐磨性与MoS_2的润滑性能相结合,在进一步改善所得复合材料的摩擦学性能方面具有极其有益的作用。使用反应磁控溅射将涂层沉积在硬质金属(WC-Co)和Si(100)基板上。通过平视透射电镜和XTEM,电子衍射和EDX研究了涂层的结构。摩擦学性质通过针上磁盘(PoD)摩擦计进行检查。通过划痕试验评估粘合性,并且通过纳米压痕测量硬度。所有检查的涂层的摩擦系数都非常低(通常低于0.09),相对于100Cr6钢(AISI 52100)的体积磨损率为7.10〜(-7)mm〜3 / N / m。讨论了沉积参数与结构与性能的关系。据作者所知,这是第一篇描述包含MoS_2的四元TiAlCN矩阵的论文。

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