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NiTi with 3D-interconnected microchannels produced by liquid phase sintering and electrochemical dissolution of steel tubes

机译:钢管的液相烧结和电化学溶解产生的具有3D互连微通道的NiTi

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摘要

A process was developed for fabricating 3D fully interconnected microchannels in superelastic NiTi-Nb for bone implant applications by combining spaceholder powder metallurgy and liquid-phase sintering. Prealloyed NiTi powders were blended with 3.1 at.% Nb and cold-pressed around a 3D scaffold of carburized steel tubes acting as space-holders. The tubes were then electrochemically dissolved to form orthogonally interconnected microchannels with 400 μm diameter and ~34% volume fraction. Finally, the powder preform was heated to 1185℃ to form a quasi-binary NiTi-Nb eutectic liquid, which liquid-phase-sintered the NiTi powders without filling the microchannels. The resulting continuously bonded matrix contains an additional 16% porosity, for a total structure porosity of ~50%. NiTi-Nb micro-architectured structures have excellent potential as bone implant scaffolds due to the high versatility in channel size, fraction, and spatial arrangement. Fully interconnected 3D microchannels also increase fluid transport within the scaffold, assisting in nutrient delivery and waste transport to and from cells deep within the scaffold.
机译:通过结合空间保持器粉末冶金和液相烧结,开发了一种在超弹性NiTi-Nb中制造3D完全互连的微通道的方法,用于骨植入应用。将预合金化的NiTi粉末与3.1 at。%的Nb混合,并在3D渗碳钢管脚手架周围冷压,这些渗碳钢管充当空间支架。然后将这些管进行电化学溶解,以形成直径为400μm,体积分数约为34%的正交互连微通道。最后,将粉末预成型坯加热至1185℃,形成准二元NiTi-Nb共晶液体,该液相液相烧结NiTi粉末而不填充微通道。所得的连续粘结基体的孔隙率额外为16%,总结构孔隙率约为50%。 NiTi-Nb微结构结构由于在通道尺寸,分数和空间排列方面具有很高的通用性,具有作为骨植入支架的巨大潜力。完全互连的3D微通道还增加了支架内的流体运输,有助于营养物的运输以及废物进出支架深层细胞的转运。

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