首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems;SMASIS2009 >THREE-DIMENSIONAL MODELING OF RATE-DEPENDENT DEFORMATION IN SHAPE MEMORY ALLOYS AT HIGH TEMPERATURES
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THREE-DIMENSIONAL MODELING OF RATE-DEPENDENT DEFORMATION IN SHAPE MEMORY ALLOYS AT HIGH TEMPERATURES

机译:高温形状记忆合金的速率相关形变的三维模型

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Active structures composed of Shape Memory Alloys (SMAs) and High Temperature SMAs (HTSMAs) continue to be developed for applications that benefit from solid-state actuation. The need to account for the response of these materials under non-conventional loading paths that include elevated temperature conditions has become important. Conventional SMAs are exposed to such temperatures during processing, including final shape-setting. HTSMAs, by virtue of their title, are exposed to such high temperatures during transformation. This work addresses new developments in the constitutive modeling and numerical analysis pertaining to irrecoverable inelasticity in SMAs at high temperatures, where this behavior becomes rate-dependent. The description of such behavior requires the development of a theoretical framework able to capture the coupling between the rate-independent transformation and the rate-dependent creep. The proposed phase transformation-viscoplastic model is based on continuum thermodynamics; here the elastic relations, the inelastic evolution equations, and the transformation criteria are summarized. The evolution equation for the viscoplastic strain is non-homogeneous in time, and thus rate-dependency results. The viscoplastic parameters are generally assumed to exhibit a strong dependence on temperature. The rate-independent and rate-dependent constitutive equations thatcomprise the full 3-D model are numerically integrated using a scheme that accounts for both transformation and viscoplastic deformation in a coupled manner. The implementation allows for 3-D analysis of SMA bodies using an FEA framework that includes Abaqus and an associated user material subroutine. Example analyses are discussed, including shape-setting in a conventional SMA and experimentally validated structural analysis of an HTSMA specimen.
机译:由形状记忆合金(SMA)和高温SMA(HTSMA)组成的有源结构将继续开发,以用于受益于固态驱动的应用。考虑到这些材料在包括高温条件在内的非常规加载路径下的响应变得很重要。常规SMA在加工过程中(包括最终的形状定型)会暴露于这种温度下。 HTSMA凭借其名称,在转化过程中会暴露于如此高的温度下。这项工作解决了本构模型和数值分析方面的新进展,涉及高温下SMA中不可恢复的非弹性,这种行为与速率有关。对这种行为的描述需要开发一种理论框架,该框架能够捕获速率无关的变换和速率无关的蠕变之间的耦合。所提出的相变-粘塑性模型是基于连续热力学的。这里总结了弹性关系,非弹性演化方程和转换准则。粘塑性应变的演化方程在时间上是不均匀的,因此产生了速率依赖性。通常认为粘塑性参数表现出对温度的强烈依赖性。与速率无关和与速率有关的本构方程 包含完整3D模型的模型使用一种方案进行了数值积分,该方案以耦合方式考虑了相变和粘塑性变形。该实现允许使用包含Abaqus和相关用户材料子例程的FEA框架对SMA主体进行3-D分析。讨论了示例分析,包括常规SMA中的定型和HTSMA标本的经过实验验证的结构分析。

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