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首页> 外文期刊>Applied Surface Science >Mechanical behavior of Ti-Ta-based surface alloy fabricated on TiNi SMA by pulsed electron-beam melting of film/substrate system
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Mechanical behavior of Ti-Ta-based surface alloy fabricated on TiNi SMA by pulsed electron-beam melting of film/substrate system

机译:薄膜/基底系统脉冲电子束熔化在TiNi SMA上制备的Ti-Ta基表面合金的力学行为

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摘要

The physical-mechanical properties of the Ti-Ta based surface alloy with thickness up to similar to 2 mu m fabricated through the multiple (up to 20 cycles) alternation of magnetron deposition of Ti70Ta30 (at.%) thin (50 nm) films and their liquid-phase mixing with the NiTi substrate by microsecond low-energy, high current pulsed electron beam (LEHCPEB: = 15 keV, similar to 2 J/cm(2)) are presented. Two types of NiTi substrates (differing in the methods of melting alloys) were pretreated with LEHCPEB to improve the adhesion of thin-film coating and to protect it from local delimitation because of the surface cratering under pulsed melting. The methods used in the research include nanoindentation, transmission electron microscopy, and depth profile analysis of nanohardness, Vickers hardness, elastic modulus, depth recovery ratio, and plasticity characteristic as a function of indentation depth. For comparison, similar measurements were carried out with NiTi substrates in the initial state and after LEHCPEB pretreatment, as well as on "Ti70Ta30(1 mu m) coating/NiTi substrate" system. It was shown that the upper surface layer in both NiTi substrates is the same in properties after LEHCPEB pretreatment. Our data suggest that the type of multilayer surface structure correlates with its physical-mechanical properties. For NiTi with the Ti-Ta based surface alloy similar to 1 mu m thick, the highest elasticity falls on the upper submicrocrystalline layer measuring similar to 0.2 mu m and consisting of two Ti-Ta based phases: alpha" martensite (a = 0.475 nm, b = 0.323 nm, c = 0.464 nm) and beta austenite (a = 0.327 nm). Beneath the upper layer there is an amorphous sublayer followed by underlayers with coarse (20 nm) and fine (20 nm) average grain sizes which provide a gradual transition of the mechanical parameters to the values of the NiTi substrate. (C) 2017 Elsevier B.V. All rights reserved.
机译:通过多次(最多20个循环)磁控管沉积Ti70Ta30(at。%)薄(50 nm)薄膜和多个磁控管交替制造的厚度高达2μm的Ti-Ta基表面合金的物理机械性能他们提出了通过微秒低能量,高电流脉冲电子束(LEHCPEB:<= 15 keV,类似于2 J / cm(2))与NiTi基板进行液相混合的方法。用LEHCPEB预处理了两种类型的NiTi基板(在合金熔化方法上有所不同),以改善薄膜涂层的附着力并保护其免受脉冲熔化时表面缩孔的局部划界。研究中使用的方法包括纳米压痕,透射电子显微镜以及深度硬度的深度分布分析,维氏硬度,弹性模量,深度回复率和可塑性特性随压痕深度的变化。为了进行比较,对初始状态和LEHCPEB预处理后的NiTi基底以及“ Ti70Ta30(1μm)涂层/ NiTi基底”系统进行了类似的测量。结果表明,两种镍钛合金衬底的上表面层在LEHCPEB预处理后的性能相同。我们的数据表明,多层表面结构的类型与其物理机械性能有关。对于Ti-Ta基表面合金厚度约为1μm的NiTi,最大的弹性落在上亚微晶层上,其测量值近似为0.2μm,并且由两个Ti-Ta基相组成:α“马氏体(a = 0.475 nm ,b = 0.323 nm,c = 0.464 nm)和β奥氏体(a = 0.327 nm),在上层下方是一个非晶亚层,其后是平均晶粒尺寸大(> 20 nm)和细(<20 nm)的底层(C)2017 Elsevier BV保留所有权利。

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