Modeling of Internal Damage Evolution During Actuation Fatigue in Shape Memory Alloys

F. Phillips, Daniel Martin, D. Lagoudas, R. Wheeler
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Abstract

Shape memory alloys (SMAs) are unique materials capable of undergoing a thermo-mechanically induced, reversible, crystallographic phase transformation. As SMAs are utilized across a variety of applications, it is necessary to understand the internal changes that occur throughout the lifetime of SMA components. One of the key limitations to the lifetime of a SMA component is the response of SMAs to fatigue. SMAs are subject to two kinds of fatigue, namely structural fatigue due to cyclic mechanical loading which is similar to high cycle fatigue, and functional fatigue due to cyclic phase transformation which typical is limited to the low cycle fatigue regime. In cases where functional fatigue is due to thermally induced phase transformation in contrast to being mechanically induced, this form of fatigue can be further defined as actuation fatigue. Utilizing X-ray computed microtomography, it is shown that during actuation fatigue, internal damage such as cracks or voids, evolves in a non-linear manner. A function is generated to capture this non-linear internal damage evolution and introduced into a SMA constitutive model. Finally, it is shown how the modified SMA constitutive model responds and the ability of the model to predict actuation fatigue lifetime is demonstrated.
形状记忆合金驱动疲劳过程中内部损伤演化模型
形状记忆合金(sma)是一种独特的材料,能够经历热机械诱导,可逆,晶体相变。由于SMA在各种应用中使用,因此有必要了解SMA组件在整个生命周期中发生的内部变化。SMA组件寿命的关键限制之一是SMA对疲劳的响应。sma有两种疲劳,一种是由循环机械载荷引起的结构疲劳,类似于高周疲劳;另一种是由循环相变引起的功能疲劳,通常局限于低周疲劳状态。在功能疲劳是由于热诱导相变而不是机械诱导的情况下,这种形式的疲劳可以进一步定义为驱动疲劳。利用x射线计算机微断层扫描,表明在驱动疲劳期间,内部损伤,如裂纹或空隙,以非线性方式演变。生成一个函数来捕捉这种非线性内部损伤演变,并将其引入SMA本构模型。最后,展示了改进的SMA本构模型的响应情况,并证明了该模型预测驱动疲劳寿命的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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