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Morphing Wing Droop Nose with Large Deformation: Ground Tests and Lessons Learned

机译:变形大的机翼下垂鼻子:地面测试和经验教训

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A design for a new high lift system that features a morphing wing leading edge “droop nose” has the potential to generate high lift coefficients whilst mitigating airframe noise emissions. This seamless, continuous, and stepless flexible droop nose potentially offers improvements to stall and compressor requirements for an internally-blown active Coand? trailing edge flap. A full-scale, span-trimmed three-dimensional droop nose was manufactured and ground-tested based on results obtained from new design synthesis tools. A new component of the droop nose is the hybrid fiberglass-elastomeric skin that is tailored in stiffness to meet morphing curvature requirements and spanwise bending resistance. A manufacturing concept of the novel skin was established that led to an adequate manufacturing quality. The skin was driven and supported by two optimized kinematic ribs and conventional actuators and overall shape results show good agreement apart from the region closest to the leading edge. Kinematic trajectory measurements showed that the kinematics met the target trajectories well, with and without the influence of the skin, and it was deemed that the error in curvature is due to a higher than expected skin stiffness in the hybrid layer. Calculated actuator torque levels and strain measurements corroborate this inference. The lessons learned show that means of adjustment post-assembly are needed, and a reduction of torque, energy and a better curvature distribution may be achieved if the skin at the spar junction is allowed to move relative to the main wing. Careful aerodynamic, structural, actuation and manufacturing trade-off studies would be needed to determine the overall performance benefit.
机译:具有变形机翼前缘“降落机鼻”的新型高升力系统的设计具有产生高升力系数的潜力,同时可以减轻机身噪声的排放。这种无缝,连续且无级的柔性下垂机头可能会改善内部吹制的有源Coand?的失速和压缩机要求。后缘襟翼。基于从新的设计综合工具获得的结果,制造了满量程,跨度修剪的三维下垂鼻梁并进行了地面测试。下垂鼻梁的新组成部分是混合的玻璃纤维-弹性蒙皮,其刚度适合满足变形曲率要求和翼展方向抗弯性。建立了新颖皮肤的制造概念,从而导致了足够的制造质量。皮肤由两个优化的运动肋和传统的驱动器驱动和支撑,总体形状结果显示,除了最靠近前缘的区域外,它们的吻合性很好。运动轨迹测量表明,在有和没有皮肤影响的情况下,运动学都能很好地满足目标轨迹,并且认为曲率误差是由于混合层中高于预期的皮肤刚度所致。计算出的执行器扭矩水平和应变测量值证实了这一推论。获得的经验教训表明,需要在组装后进行调整,如果允许翼梁连接处的蒙皮相对于主翼移动,则可以降低扭矩,减少能量并获得更好的曲率分布。需要进行仔细的空气动力学,结构,驱动和制造折衷研究,以确定总体性能优势。

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