镍钛合金的电子束增材制造

M. Węglowski, S. Błacha, K. Kwieciński, P. Śliwiński, J. Dutkiewicz, Ł. Rogal
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引用次数: 0

摘要

形状记忆合金(如Ni-Ti)是一类独特的活性材料,在施加刺激(如应力、热或磁场引起的变形)后可以恢复到原来的形状。这些合金具有吸引人的特点,如在机械加载时提供大的可恢复应变(假弹性),加热时形状恢复(形状记忆效应),以及强大的生物相容性,使合金成为生物医学应用的合适执行器之一。本文介绍了以金属丝为添加剂的EBAM工艺制备的Ni-Ti合金的显微组织、马氏体相变行为和超弹性性能。结果表明,由于外延生长机制的作用,镀层的显微组织表现为典型的奥氏体柱状晶粒凝固特征。此外,EBSD研究表明[001]中的晶粒取向优先是采用材料层沉积的结果。透射电镜研究表明,在奥氏体基体中存在部分孪晶的马氏体针状结构,并且在奥氏体中存在较低的位错密度,这证实了EBAM制造的样品在室温下具有假弹性变形的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
electron beam additive manufacturing of Ni-Ti alloy
Shape memory alloys (such as Ni-Ti) are a unique class of active materials, which can recover to their original shape after applying stimuli, such as deformation due to stress, heat or magnetic field. These alloys possess attractive characteristics such as ability to provide large recoverable strain during mechanical loading (pseudoelasticity), shape recovery upon heating (shape memory effect), and potent biocompatibility, which make alloys one of the suitable actuators for biomedical applications. In the present paper the results of microstructure, martensitic transformation behaviour and superelastic properties of Ni-Ti alloys fabricated using a EBAM technique, which applies wire as the additive material were presented. It was revealed that the microstructure of the deposit exhibited typical solidification features of columnar grains of austenite, due to epitaxial growth mechanism. Moreover, EBSD investigations revealed that the preferential grain orientation in [001] is a result of the adopted material layer deposition. TEM studies have shown presence of martensitic needles partially twinned within austenitic matrix, and a low dislocation density within austenite confirming ability of the EBAM manufactured sample to pseudoelastic deformation at room temperature.
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