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Measurement and Prediction of the Thermomechanical Response of Shape Memory Alloy Hybrid Composite Beams

机译:形状记忆合金混合复合梁热力学响应的测量与预测

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Previous work at NASA Langley Research Center (LaRC) involved fabrication and testing of composite beams with embedded, pre-strained shape memory alloy (SMA) ribbons within the beam structures. That study also provided comparison of experimental results with numerical predictions from a research code making use of a new thermoelastic model for shape memory alloy hybrid composite (SMAHC) structures. The previous work showed qualitative validation of the numerical model. However, deficiencies in the experimental-numerical correlation were noted and hypotheses for the discrepancies were given for further investigation. The goal of this work is to refine the experimental measurement and numerical modeling approaches in order to better understand the discrepancies, improve the correlation between prediction and measurement, and provide rigorous quantitative validation of the numerical analysis/design tool. The experimental investigation is refined by a more thorough test procedure and incorporation of higher fidelity measurements such as infrared thermography and projection moire interferometry. The numerical results are produced by a recently commercialized version of the constitutive model as implemented in ABAQUS and are refined by incorporation of additional measured parameters such as geometric imperfection. Thermal buckling, post-buckling, and random responses to thermal and inertial (base acceleration) loads are studied. The results demonstrate the effectiveness of SMAHC structures in controlling static and dynamic responses by adaptive stiffening. Excellent agreement is achieved between the predicted and measured results of the static and dynamic thermomechanical response, thereby providing quantitative validation of the numerical tool.
机译:NASA兰利研究中心(LaRC)的先前工作涉及复合梁的制造和测试,该复合梁在梁结构中带有嵌入的预应变形状记忆合金(SMA)薄带。该研究还提供了将实验结果与研究代码中的数值预测进行比较的结果,该研究代码利用形状记忆合金混合复合材料(SMAHC)结构的新热弹性模型。先前的工作表明了数值模型的定性验证。但是,注意到了实验数字相关性的不足,并提出了差异的假设以供进一步研究。这项工作的目的是完善实验测量和数值建模方法,以更好地理解差异,改善预测与测量之间的相关性,并对数值分析/设计工具进行严格的定量验证。通过更彻底的测试程序并结合了更高的保真度测量(例如红外热成像和投影莫尔干涉仪)来完善实验研究。数值结果是由ABAQUS中实现的本构模型的最新商业化版本产生的,并通过合并其他测量参数(例如几何缺陷)进行了完善。研究了热屈曲,后屈曲以及对热载荷和惯性载荷(基本加速度)的随机响应。结果表明,SMAHC结构在通过自适应加固控制静态和动态响应方面的有效性。静态和动态热机械响应的预测结果与测量结果之间达到了极好的一致性,从而提供了数值工具的定量验证。

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