首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems;SMASIS2009 >MULTIVARIANT FORMULATION OF THE THERMOMECHANICALLY COUPLED MULLER-ACHENBACH-SEELECKE-MODEL FOR SHAPE MEMORY ALLOYS
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MULTIVARIANT FORMULATION OF THE THERMOMECHANICALLY COUPLED MULLER-ACHENBACH-SEELECKE-MODEL FOR SHAPE MEMORY ALLOYS

机译:形状记忆合金热机械耦合的穆勒-阿亨巴赫-塞勒克模型的多元表示

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Temperature changes caused by latent transformation heats are an integral part of the behavior of shape memory alloys and inevitably couple the thermal and the mechanical fields. This general behavior is covered by the Mueller-Achenbach-Seelecke (MAS) model. Its versatility has been documented extensively in the literature. In the original formulation the MAS model is restricted to uniaxial states of stress in a SMA, which limits its application to cases where such stress states prevail, such as axial loading in wires and trusses, as well as pure beam bending, pure torsion and shrink -fit problems. Unreliable results, however are expected under arbitrary multiaxial loading conditions. To overcome this limitation we present an extension of the model capable of arbitrary stress/strain/temperature states in 3D. Our model adopts ideas presented by Xie but employs a different non-convex free energy function. Rate equations are employed to model temperature or stress/strain induced transformations between austenite and eight variants of martensite present in the model. As the MAS model, the multi-variant model is capable of fully-coupled thermo-mechanical processes which is shown by simulations of temperature-induced processes, quasiplasticity and pseudoelasticity under variable load directions. At the present level of sophistication, the model is restricted to single crystalline SMA. All examples are explained by the use of a standalone model implementation. The model is intended for future implementation into the finite-element-method environment ABAQUS ? to provide a powerful tool useful in the framework of engineering design studies, especially in situations which require non-isothermal conditions and phase transitions.
机译:由潜伏相变热引起的温度变化是形状记忆合金性能不可或缺的一部分,不可避免地将热场和机械场耦合在一起。 Mueller-Achenbach-Seelecke(MAS)模型涵盖了此一般行为。其多功能性已在文献中广泛记录。在原始公式中,MAS模型仅限于SMA中的单轴应力状态,这将其应用限制在此类应力状态占优势的情况下,例如线和桁架中的轴向载荷,以及纯梁弯曲,纯扭转和收缩适合的问题。但是,在任意多轴载荷条件下,都无法获得可靠的结果。为了克服此限制,我们提出了一种能够扩展3D应力/应变/温度状态模型的扩展。我们的模型采用Xie提出的思想,但采用了不同的非凸自由能函数。速率方程用于模拟温度或应力/应变诱发的奥氏体与模型中存在的八种马氏体变体之间的转变。作为MAS模型,多变量模型能够完全耦合热机械过程,这通过在可变载荷方向下对温度诱导的过程,准塑性和拟弹性进行模拟来显示。在目前的复杂程度上,该模型仅限于单晶SMA。所有示例均通过使用独立模型实现进行解释。该模型旨在用于将来在有限元法环境ABAQUS中的实现。为工程设计研究的框架提供有用的强大工具,特别是在需要非等温条件和相变的情况下。

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