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Induced Drag Reduction Using Aeroelastic Tailoring with Adaptive Control Surfaces

机译:自适应控制面的气动弹性裁切技术诱导减阻

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摘要

This paper describes the use of full-span deforming control surfaces (including controlled chordwise cambering of the wing) to provide effective subsonic induced drag control with precise control of the spanwise lift distribution. Examples of these proposed controllers are smart, adaptive actuators for advanced unmanned air vehicle concepts. Reshaping the wing spanwise lift distribution with aeroelastic tailoring concepts is shown to reduce induced drag at high airspeeds. Active controllers such as conventional ailerons or leading-edge devices also reduce induced drag if they have a tailored spanwise deflection pattern; the required deflections of these surfaces depend on wing deformation and can be so large that they are not practical. Combining wing aeroelastic stiffness tailoring with active control surface design to create a "control-friendly structure" reduces induced drag and requires only small controller inputs. An exact solution for the actuator deflections to generate an elliptical lift distribution for the aeroelastic wing, for minimum induced drag, is discussed. A formal optimization problem is posed for cases in which multiple surfaces are used to control drag. This controller optimization solution is complicated because aeroelastic phenomena, such as control reversal, limit the effectiveness of some actuators at high speed.
机译:本文介绍了使用全跨度变形控制面(包括机翼的弦向弯曲)来提供有效的亚音速感应阻力控制,以及对翼展升力分布的精确控制。这些提出的控制器的例子是用于先进的无人机概念的智能自适应致动器。显示了采用气动弹性剪裁概念重塑机翼翼展方向升力分布,可减少高空速下的感应阻力。如果主动控制器具有定制的翼展方向偏转模式,它们还可以减少感应阻力,例如传统的副翼或前缘设备。这些表面所需的挠度取决于机翼变形,并且可能太大而无法实际使用。将机翼气动弹性刚度调整与主动控制表面设计相结合,以创建“控制友好的结构”,从而减少了感应阻力,并且只需要少量的控制器输入即可。讨论了致动器挠度的精确解决方案,以使气动弹性机翼产生椭圆升力分布,从而最大程度地减少了诱导阻力。对于使用多个表面控制阻力的情况提出了形式上的优化问题。这种控制器优化解决方案很复杂,因为气动弹性现象(例如控制反转)限制了某些执行器在高速下的有效性。

著录项

  • 来源
    《Journal of Aircraft》 |2006年第1期|p.157-164|共8页
  • 作者单位

    Purdue University, West Lafayette, Indiana 47907-1282;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 航空;
  • 关键词

  • 入库时间 2022-08-18 02:32:58

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