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Compliant Structures-Based Wing and Wingtip Morphing Devices

机译:基于结构的机翼和机翼变形装置

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摘要

Purpose-The purpose of this paper is to provide an overview of the design and experimental work of compliant wing and wingtip morphing devices conducted within the EU FP7 project NOVEMOR and to demonstrate that the optimization tools developed can be used to synthesize compliant morphing devices. Design/methodology/approach-The compliant morphing devices were "designed-through-optimization", with the optimization algorithms including Simplex optimization for composite compliant skin design, aerodynamic shape optimization able to take into account the structural behaviour of the morphing skin, continuum-based and load path representation topology optimization methods and multi-objective optimization coupled with genetic algorithm for compliant internal substructure design. Low-speed subsonic wind tunnel testing was performed as an effective means of demonstrating proof-of-concept. Findings-It was found that the optimization tools could be successfully implemented in the manufacture and testing stage. Preliminary insight into the performance of the compliant structure has been made during the first wind tunnel tests. Practical implications-The tools in this work further the development of morphing structures, which when implemented in aircraft have potential implications to environmentally friendlier aircrafts. Originality/value-The key innovations in this paper include the development of a composite skin optimization tool for the design of highly 3D morphing wings and its ensuing manufacture process; the development of a continuum-based topology optimization tool for shape control design of compliant mechanisms considering the stiffness and displacement functions; the use of a superelastic material for the compliant mechanism; and wind tunnel validation of morphing wing devices based on compliant structure technology.
机译:目的-本文的目的是概述在欧盟FP7项目NOVEMOR中进行的顺应机翼和翼尖变形设备的设计和实验工作,并证明开发的优化工具可用于合成顺应性变形设备。设计/方法/方法-兼容的变形设备是“通过优化设计的”,其优化算法包括针对合规皮肤设计的单纯形优化,能够考虑变形皮肤结构行为的空气动力学形状优化,连续体-顺应性内部子结构设计和基于遗传算法的载荷路径表示拓扑优化方法,多目标优化以及遗传算法。低速亚音速风洞测试是证明概念验证的有效手段。结果-发现优化工具可以在制造和测试阶段成功实施。在首次风洞测试期间,已经对柔性结构的性能进行了初步了解。实际意义-这项工作中的工具进一步发展了变形结构,当在飞机上实施变形结构时,会对环保型飞机产生潜在的影响。原创性/价值-本文的主要创新包括开发用于3D变形翼的设计及其后续制造过程的复合蒙皮优化工具;基于连续体的拓扑优化工具的开发,该模型考虑了刚度和位移函数,用于顺应性机构的形状控制设计;将超弹性材料用于柔性机构;基于柔顺结构技术的变形机翼装置的风洞验证。

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