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Effect of Tension-Compression Asymmetry and Partial Transformation on the Response of Shape Memory Alloy Beam Structures

机译:拉伸压缩不对称和部分变形对形状记忆合金梁结构响应的影响

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Shape Memory Alloys (SMAs) constitute a class of materials that are distinguished by their highly non-linear, thermo-mechanically coupled behaviour which is related with the phenomena accompanying the diffusion-less, solid-state phase transformation. This transition from the parent phase of Austenite to the product phase of Martcnsite and vice versa is also bound with the uncommon characteristic of "memory" exhibited when the material undergoes variable thermo-mechanical loadings. When a transformation reversal takes place, the material seems to inherently remember its state and adapts its future response in order to form closed paths, strongly dependent on the induced transformation history. Furthermore, another characteristic trait of SMAs is the asymmetry of their response when under tension or compression. During mixed loading states, such as bending of a beam, the evolution of transformation is observed to be different based on the sign of the load. The aforementioned peculiarities significantly affect the implementation SMAs in the design and realization of smart engineering structures intended for use in a wide range of fields that include but are not limited to aerospace, biomedical, wind energy, civil and automotive. To this end. efficient constitutive modeling of the phenomena related to the phase transformation is essential and of high importance in order to predict the complex performance of these materials. In this paper, emphasis is placed upon the investigation of the combined effect of tension-compression asymmetry and partial transformation on the response of SMA beams subjected to three-point bending loading conditions. In this context, modeling of tension-compression asymmetry is investigated by using a set of different phase transformation functions based on the principles of computational plasticity, while a modified hardening function is considered to account for partial transformation behaviour. The produced numerical results are compared with respective cases that omit these phenomena in order to quantify their effect in terms of the developed stresses, material state and production/recovery of transformation strain.
机译:形状记忆合金(SMA)构成一类材料,其特征是高度非线性的热机械耦合行为,该行为与伴随无扩散固态相变的现象有关。从奥氏体的母相到马氏体的产物相的这种转变,反之亦然,还与材料经受可变的热机械载荷时所表现出的“记忆”的罕见特征有关。当发生转换逆转时,材料似乎固有地记住了其状态并适应其未来的响应以形成封闭的路径,这在很大程度上取决于诱导的转换历史。此外,SMA的另一个特征是在受拉或受压时其响应的不对称性。在混合载荷状态(例如梁的弯曲)期间,根据载荷的符号观察到变换的演变是不同的。前述特性极大地影响了旨在用于广泛领域的智能工程结构的设计和实现中的实现SMA,这些领域包括但不限于航空,生物医学,风能,民用和汽车领域。为此。为了预测这些材料的复杂性能,与相变有关的现象的有效本构模型是必不可少的,并且具有很高的重要性。在本文中,重点放在研究拉-压不对称和部分变形对SMA梁在三点弯曲载荷条件下的响应的组合影响上。在这种情况下,基于计算可塑性的原理,通过使用一组不同的相变函数来研究张力-压缩不对称性的建模,同时考虑到修改的硬化函数可解决部分相变行为。将产生的数值结果与忽略这些现象的相应情况进行比较,以便根据所产生的应力,材料状态以及相变应变的产生/恢复来量化其影响。

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