Wang Lei, Okugawa Masayuki, Konishi Hirokazu, Liu Yuheng, Koizumi Yuichiro, Nakano Takayoshi
Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita 565-0871, Japan.
Anisotropic Design & Additive Manufacturing Research Center, Osaka University, 2-1 Yamadaoka, Suita 565-0871, Japan.
Materials (Basel). 2023 Aug 3;16(15):5449. doi: 10.3390/ma16155449.
The limited wear resistance of commercially pure titanium (CP-Ti) hinders its use in abrasive and erosive environments, despite its good strength-weight ratio and corrosion resistance. This paper reports the first study proposing a novel method for wear-resistant TiNi coating through Ni plating and electron beam (EB) irradiation in an in situ synthetic approach. Single-track melting experiments were conducted using the EB to investigate the feasibility of forming a TiNi phase by fusing the Ni plate with the CP-Ti substrate. Varying beam powers were employed at a fixed scanning speed to determine the optimal conditions for TiNi phase formation. The concentration of the melt region was found to be approximate as estimated from the ratio of the Ni-plate thickness to the depth of the melt region, and the region with Ni-48.7 at.% Ti was successfully formed by EB irradiation. The study suggests that the mixing of Ti atoms and Ni atoms was facilitated by fluid flow induced by Marangoni and thermal convections. It is proposed that a more uniform TiNi layer can be achieved through multi-track melting under appropriate conditions. This research demonstrates the feasibility of utilizing EB additive manufacturing as a coating method and the potential for developing TiNi coatings with shape memory effects and pseudoelasticity.
商业纯钛(CP-Ti)耐磨性有限,尽管其具有良好的强度重量比和耐腐蚀性,但仍阻碍了其在有磨蚀和侵蚀的环境中的应用。本文首次报道了一项研究,该研究提出了一种通过镀镍和电子束(EB)辐照原位合成耐磨TiNi涂层的新方法。使用电子束进行单道熔覆实验,以研究通过将镍板与CP-Ti基板熔合形成TiNi相的可行性。在固定扫描速度下采用不同的束流功率,以确定TiNi相形成的最佳条件。根据镍板厚度与熔池深度的比值估算,发现熔池区域的浓度近似,并且通过电子束辐照成功形成了Ti含量为48.7原子%的区域。研究表明,马兰戈尼效应和热对流引起的流体流动促进了Ti原子和Ni原子的混合。建议在适当条件下通过多道熔覆获得更均匀的TiNi层。本研究证明了利用电子束增材制造作为涂层方法的可行性,以及开发具有形状记忆效应和伪弹性的TiNi涂层的潜力。