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首页> 外文期刊>Journal of intelligent material systems and structures >Three-dimensional design of a large-displacement morphing wing droop nose device
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Three-dimensional design of a large-displacement morphing wing droop nose device

机译:大排量变形机翼下垂机头装置的三维设计

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The numerical three-dimensional structural design of a large-displacement flexible morphing wing leading edge, otherwise known as a droop nose, is presented in this article. The droop nose is an essential component of a novel internally blown high-lift system for a transport aircraft to delay stall and reduce internal compressor requirements. A design chain consisting of optimization procedures was used to arrive at the structural design of the droop nose composed of a composite fiberglass skin with integral stringers and supporting kinematic mechanisms. The optimization tools aim to produce a design with minimal error to the critical target shapes. A maximum final error of 10.09 mm between calculated and target trajectories of the stringers was found after the kinematic optimization stage. After inputting the kinematic optimization results into the skin optimization stage and solving, a maximum error in the order of 13 mm and curvature difference 0.0028 1/mm were calculated, occurring in the outboard region. Prior two-dimensional analyses with similar shape deviations showed 0.4% lift reduction though further three-dimensional investigations are required. Concepts for integrating industrial requirements abrasion and lightning strike protection and in-flight de-icing into a multifunctional skin show promise and the resulting aerodynamic surface quality was found to be adequate.
机译:本文介绍了大排量柔性变形机翼前缘(也称为下垂鼻)的三维三维结构设计。下垂机头是用于运输飞机的新型内部吹气高举系统的重要组成部分,该系统可延缓失速并减少内部压缩机的需求。使用由优化程序组成的设计链得出了下垂机头的结构设计,该机头由复合玻璃纤维蒙皮,一体的纵梁和运动学机制组成。优化工具旨在产生对关键目标形状的误差最小的设计。在运动学优化阶段之后,发现纵梁的计算轨迹与目标轨迹之间的最大最终误差为10.09mm。将运动学优化结果输入到皮肤优化阶段并求解后,计算出外侧区域出现的最大误差为13 mm,曲率差为0.0028 1 / mm。尽管需要进一步的三维研究,但先前的具有类似形状偏差的二维分析显示升力降低了0.4%。将工业要求的耐磨性和雷击防护以及飞行中的除冰功能集成到多功能蒙皮中的构想显示出了希望,并且发现由此产生的空气动力学表面质量是足够的。

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