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使用交互式纤维橡胶复合材料对形状记忆合金材料模型进行的研究与验证

Investigation and Validation of a Shape Memory Alloy Material Model Using Interactive Fibre Rubber Composites.

作者信息

Annadata Achyuth Ram, Acevedo-Velazquez Aline Iobana, Woodworth Lucas A, Gereke Thomas, Kaliske Michael, Röbenack Klaus, Cherif Chokri

机构信息

Institute of Textile Machinery and High Performance Material Technology, TU Dresden, 01062 Dresden, Germany.

Institute of Control Theory, Faculty of Electrical and Computer Engineering, TU Dresden, 01062 Dresden, Germany.

出版信息

Materials (Basel). 2024 Mar 1;17(5):1163. doi: 10.3390/ma17051163.

Abstract

The growing demand for intelligent systems with improved human-machine interactions has created an opportunity to develop adaptive bending structures. Interactive fibre rubber composites (IFRCs) are created using smart materials as actuators to obtain any desired application using fibre-reinforced elastomer. Shape memory alloys (SMAs) play a prominent role in the smart material family and are being used for various applications. Their diverse applications are intended for commercial and research purposes, and the need to model and analyse these application-based structures to achieve their maximum potential is of utmost importance. Many material models have been developed to characterise the behaviour of SMAs. However, there are very few commercially developed finite element models that can predict their behaviour. One such model is the Souza and Auricchio (SA) SMA material model incorporated in ANSYS, with the ability to solve for both shape memory effect (SME) and superelasticity (SE) but with a limitation of considering pre-stretch for irregularly shaped geometries. In order to address this gap, Woodworth and Kaliske (WK) developed a phenomenological constitutive SMA material model, offering the flexibility to apply pre-stretches for SMA wires with irregular profiles. This study investigates the WK SMA material model, utilizing deformations observed in IFRC structures as a reference and validating them against simulated models using the SA SMA material model. This validation process is crucial in ensuring the reliability and accuracy of the WK model, thus enhancing confidence in its application for predictive analysis in SMA-based systems.

摘要

对具有改进人机交互功能的智能系统的需求不断增长,为开发自适应弯曲结构创造了机会。交互式纤维橡胶复合材料(IFRC)是使用智能材料作为致动器创建的,以通过纤维增强弹性体获得任何所需的应用。形状记忆合金(SMA)在智能材料家族中发挥着重要作用,并被用于各种应用。它们的各种应用旨在用于商业和研究目的,对这些基于应用的结构进行建模和分析以实现其最大潜力的需求至关重要。已经开发了许多材料模型来表征形状记忆合金的行为。然而,商业开发的能够预测其行为的有限元模型却很少。其中一个这样的模型是纳入ANSYS的索萨和奥里基奥(SA)形状记忆合金材料模型,它能够求解形状记忆效应(SME)和超弹性(SE),但存在考虑不规则形状几何结构的预拉伸的局限性。为了弥补这一差距,伍德沃思和卡利斯基(WK)开发了一种唯象本构形状记忆合金材料模型,为具有不规则轮廓的形状记忆合金丝应用预拉伸提供了灵活性。本研究调查了WK形状记忆合金材料模型,以在IFRC结构中观察到的变形为参考,并使用SA形状记忆合金材料模型针对模拟模型对其进行验证。这一验证过程对于确保WK模型的可靠性和准确性至关重要,从而增强对其在基于形状记忆合金的系统中进行预测分析应用的信心。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53d7/10934932/9d25c097a619/materials-17-01163-g001.jpg

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