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Advanced methods for the analysis, design, and optimization of SMA-based aerostructures

机译:用于分析,设计和优化基于SMA的飞机结构的高级方法

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Engineers continue to apply shape memory alloys to aerospace actuation applications due to their high energy density, robust solid-state actuation, and silent and shock-free operation. Past design and development of such actuators relied on experimental trial and error and empirically derived graphical methods. Over the last two decades, however, it has been repeatedly demonstrated that existing SMA constitutive models can capture stabilized SMA transformation behaviors with sufficient accuracy. This work builds upon past successes and suggests a general framework by which predictive tools can be used to assess the responses of many possible design configurations in an automated fashion. By applying methods of design optimization, it is shown that the integrated implementation of appropriate analysis tools can guide engineers and designers to the best design configurations. A general design optimization framework is proposed for the consideration of any SMA component or assembly of such components that applies when the set of design variables includes many members. This is accomplished by relying on commercially available software and utilizing tools already well established in the design optimization community. Such tools are combined with finite element analysis (FEA) packages that consider a multitude of structural effects. The foundation of this work is a three-dimensional thermomechanical constitutive model for SMAs applicable for arbitrarily shaped bodies. A reduced-order implementation also allows computationally efficient analysis of structural components such as wires, rods, beams and shells. The use of multiple optimization schemes, the consideration of assembled components, and the accuracy of the implemented constitutive model in full and reduced-order forms are all demonstrated.
机译:由于形状记忆合金的高能量密度,坚固的固态致动以及无声且无冲击的操作,因此工程师继续将其应用于航空航天致动应用。这种致动器的过去设计和开发依赖于实验反复试验和根据经验得出的图形方法。但是,在过去的二十年中,已经反复证明现有的SMA本构模型可以足够准确地捕获稳定的SMA转换行为。这项工作以过去的成功为基础,并提出了一个通用框架,通过该框架,可以使用预测工具以自动化的方式评估许多可能的设计配置的响应。通过应用设计优化方法,可以证明适当的分析工具的集成实施可以指导工程师和设计师达到最佳设计配置。提出了一个通用的设计优化框架,以考虑在设计变量集包含许多成员时适用的任何SMA组件或此类组件的组装。这是通过依靠市售软件并利用在设计优化社区中已经建立的工具来完成的。这些工具与考虑多种结构影响的有限元分析(FEA)软件包结合使用。这项工作的基础是适用于任意形状物体的SMA三维热机械本构模型。降阶实现还允许对线,杆,梁和壳体等结构部件进行高效计算分析。演示了使用多种优化方案,考虑组装组件以及以完整和降阶形式实现的本构模型的准确性。

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