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模拟体液中激光焊接镍钛形状记忆合金的微观结构、力学性能及腐蚀性能

Microstructure, Mechanical Properties and Corrosion Performance of Laser-Welded NiTi Shape Memory Alloy in Simulated Body Fluid.

作者信息

Kannan A Rajesh, Shanmugam N Siva, Rajkumar V, Vishnukumar M, Channabasavanna S G, Oh Junho, Dat Than Trong Khanh, Yoon Jonghun

机构信息

Department of Mechanical Engineering, BK21 FOUR ERICA-ACE Center, Hanyang University, 55, Hanyangdaehak-ro, Sangnok-gu, Ansan 15588, Gyeonggi-do, Republic of Korea.

Department of Mechanical Engineering, National Institute of Technology, Tiruchirappalli 620015, Tamil Nadu, India.

出版信息

Materials (Basel). 2024 Sep 29;17(19):4801. doi: 10.3390/ma17194801.

Abstract

Laser-welding is a promising technique for welding NiTi shape memory alloys with acceptable tensile strength and comparable corrosion performance for biomedical applications. The microstructural characteristics and localized corrosion behavior of NiTi alloys in a simulated body fluid (SBF) environment are evaluated. A microstructural examination indicated the presence of fine and equiaxed grains with a B2 austenite phase in the base metal (BM), while the weld metal (WM) had a coarse dendritic microstructure with intermetallic precipitates including TiNi and NiTi. The hardness decreased from the BM to the WM, and the average hardness for the BM was 352 ± 5 HV, while it ranged between 275 and 307 HV and 265 and 287 HV for the HAZ and WM, respectively. Uni-axial tensile tests revealed a substantial decrease in the tensile strength of NiTi WM (481 ± 19 MPa), with a reduced joint efficiency of 34%. The localized corrosion performance of NiTi BM was superior to the WM, with electrochemical test responses indicating a pitting potential and low corrosion rate in SBF environments. The corrosion rate of the NiTi BM and WM was 0.048 ± 0.0018 mils per year (mpy) and 0.41 ± 0.019 mpy, respectively. During welding, NiTi's strength and biocompatibility properties changed due to the alteration in microstructure and formation of intermetallic phases as a result of Ti enrichment. The performance and safety of welded medical devices may be impacted during welding, and it is essential to preserve the biocompatibility of NiTi components for biomedical applications.

摘要

激光焊接是一种很有前景的技术,可用于焊接镍钛形状记忆合金,其拉伸强度可接受,在生物医学应用中的耐腐蚀性能相当。评估了镍钛合金在模拟体液(SBF)环境中的微观结构特征和局部腐蚀行为。微观结构检查表明,母材(BM)中存在细小等轴晶粒和B2奥氏体相,而焊缝金属(WM)具有粗大的树枝状微观结构,伴有包括TiNi和NiTi在内的金属间析出物。硬度从BM到WM逐渐降低,BM的平均硬度为352±5 HV,而热影响区(HAZ)和WM的平均硬度分别在275至307 HV和265至287 HV之间。单轴拉伸试验表明,镍钛WM的拉伸强度大幅下降(481±19 MPa),接头效率降低至34%。镍钛BM的局部腐蚀性能优于WM,电化学测试结果表明在SBF环境中具有点蚀电位和低腐蚀速率。镍钛BM和WM的腐蚀速率分别为每年0.048±0.0018密耳(mpy)和0.41±0.019 mpy。焊接过程中,由于微观结构的改变以及Ti富集导致金属间相的形成,镍钛的强度和生物相容性发生了变化。焊接过程中,焊接医疗设备的性能和安全性可能会受到影响,因此保持镍钛部件在生物医学应用中的生物相容性至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bdf7/11478209/318156eb94f9/materials-17-04801-g001.jpg

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