Towards Understanding the Initiation and Growth of Fatigue Failures at Defects and Inclusions in NiTi

Nathan Rendon, Emma Daharsh, W. LePage
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引用次数: 1

Abstract

Failure in device-grade NiTi is often due to nonmetallic inclusions in the NiTi, along with phase transformation in the surrounding NiTi. While progress has been made through metallurgy for high-purity NiTi, along with fatigue life experiments (e.g., total life with respect to mean strain), there remains a lack of understanding about how the fatigue life of NiTi devices is determined in the presence of inclusion defects. To better understand inclusions, this work is probing the initiation and growth of fatigue cracks in and around particle- void assemblies. The approach utilizes a combination of fatigue testing, scanning electron microscopy (SEM), both optical and SEM digital image correlation (DIC), and focused ion beam milling (FIB). Initial results have revealed that cracks tend to form first around smaller "teardrop" inclusions instead of larger "stringer" inclusions. The crack-forming inclusions tend to have nonmetallic inclusions that remain intact. This is in contrast with the larger, "stringer" inclusion that has nonmetallic particles that are not intact. Additional work is being done to better understand these findings. Additionally, ongoing studies with energy-dispersive X- ray spectroscopy (EDX) are identifying the composition of the various inclusion types.
镍钛中缺陷和夹杂物疲劳失效的发生和发展
器件级NiTi的失效通常是由于NiTi中的非金属夹杂物以及周围NiTi的相变。虽然通过冶金技术取得了高纯度NiTi的进展,以及疲劳寿命实验(例如,相对于平均应变的总寿命),但对于在夹杂物缺陷存在的情况下如何确定NiTi器件的疲劳寿命仍然缺乏了解。为了更好地理解夹杂物,这项工作正在探索颗粒-空隙组合内部和周围疲劳裂纹的萌生和扩展。该方法结合了疲劳测试、扫描电子显微镜(SEM)、光学和扫描电子显微镜数字图像相关(DIC)以及聚焦离子束铣削(FIB)。初步结果表明,裂纹往往首先在较小的“泪滴”夹杂物周围形成,而不是较大的“弦”夹杂物。形成裂纹的夹杂物往往有非金属夹杂物,而这些夹杂物保持完整。这与较大的“弦”夹杂物形成对比,后者含有不完整的非金属颗粒。为了更好地理解这些发现,正在进行额外的工作。此外,正在进行的能量色散X射线光谱(EDX)研究正在确定各种包体类型的组成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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