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首页> 外文期刊>Journal of Materials Processing Technology >Improving surface finish and wear resistance of additive manufactured nickel-titanium by ultrasonic nano-crystal surface modification
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Improving surface finish and wear resistance of additive manufactured nickel-titanium by ultrasonic nano-crystal surface modification

机译:通过超声纳米晶体表面改性改善添加剂制造镍 - 钛的表面光洁度和耐磨性

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Nickel-titanium (NiTi) alloys have great potential to be used as biomedical implants or devices due to their unique functional properties (i.e., shape memory properties and superelastic behavior). The machining difficulty associated with NiTi alloys is impeding their wide application. Additive manufacturing (AM), however, provides an alternative method to manufacture NiTi structures. One major concern associated with NiTi devices fabricated in this route is the potential for the release of toxic Ni ions due to the poor surface finish as well as high surface porosity. In this study, NiTi samples were produced using selective laser melting, the most common AM techniques. Then, an innovative surface processing technique, ultrasonic nano-crystal surface modification (UNSM), was used to mitigate the potential for the Ni ions release. By simultaneous ultrasonic striking and burnishing, UNSM can significantly improve surface finish and decrease surface porosity. In addition, UNSM induces plastic strain which in turn hardens the surface layer. The synergistic effect of better surface finish, lower subsurface porosity, and a hardened surface layer resulted in higher wear and corrosion resistance. It is therefore expected that UNSM can be potentially used to treat biomedical devices.
机译:镍 - 钛(NITI)合金具有很大的潜力,可用作生物医学植入物或装置,由于其独特的功能性(即形状记忆性能和超弹性行为)。与NITI合金相关的加工难度妨碍了它们的广泛应用。然而,添加剂制造(AM)提供了制造NITI结构的替代方法。与该途径中制造的NITI器件相关的一个主要关注是由于表面光洁度差以及高表面孔隙率引起的毒性NI离子的可能性。在该研究中,使用选择性激光熔化,最常见的AM技术生产Niti样品。然后,使用创新的表面处理技术,超声纳米晶体表面改性(UNSM)来减轻Ni离子释放的可能性。通过同时超声波撞击和抛光,UNSM可以显着改善表面光洁度和降低表面孔隙率。此外,UNSM诱导塑性应变,其又硬化表面层。更好的表面光洁度,较低的地下孔隙率和硬化表面层的协同效应导致耐磨性较高和耐腐蚀性。因此,预期可以潜在地用于治疗生物医学装置。

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