Static and Dynamic Aeroelastic Tailoring with Variable-Camber Control

被引:17
|
作者
Stanford, Bret K. [1 ]
机构
[1] NASA, Langley Res Ctr, Aeroelast Branch, Hampton, VA 23681 USA
关键词
FLUTTER SUPPRESSION; DESIGN OPTIMIZATION; LIFTING SURFACES; COMPOSITE WINGS; SYSTEMS; CONSTRAINTS;
D O I
10.2514/1.G000413
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This paper examines the use of a variable-camber continuous trailing-edge flap system for aeroservoelastic optimization of a transport wing box, the Common Research Model. Along with patch-level structural wing-box design variables, the quasi-steady and unsteady motions of the flap system are used as design variables, for maneuver load alleviation, cruise fuel burn reduction, and active flutter suppression. The resulting system is able to minimize structural weight and/or fuel burn while satisfying constraints upon elastic stresses, panel buckling, actuator hinge moments, flutter margins, actuator work, and control cost metrics. Limitations to this success are imposed by including load cases where the actuation system is not active (open-loop) in the optimization process. Large open-loop safety factors, for either maneuver loads or flutter, dilute the importance of the closed-loop actuation mechanism, whereas small open-loop safety factors may produce an overly flexible wing, prone to failure. Similar tradeoffs between system performance and actuator work constraints are provided. A final theme of the paper explores aeroelastic performance penalties that may arise if the shapes available to the variable-camber actuation system are limited (i.e., if certain control segments are linked together).
引用
收藏
页码:2522 / 2534
页数:13
相关论文
共 50 条
  • [21] Flow Analysis of 1.5 Stage Compressor with Variable-camber Inlet Guide Vanes
    Zhang, Guochen
    Liu, Bo
    Zhang, Peng
    Mao, Xiaochen
    ASME TURBO EXPO: TURBINE TECHNICAL CONFERENCE AND EXPOSITION, 2015, VOL 2A, 2015,
  • [22] Large Wind Turbine Structural Load Control: Trailing Edge Deformation Mechanism for Active Variable-Camber Blade
    Dicker, Michael
    Kosasih, Buyung
    WIND ENGINEERING, 2014, 38 (04) : 425 - 439
  • [23] Dynamic response estimation for a variable-camber NACA0012 hydrofoil of a flapping-type tidal stream turbine
    Nguyen Le Dang Hai
    Hoon Cheol Park
    Jin Hwan Ko
    Journal of Marine Science and Technology, 2022, 27 : 214 - 225
  • [24] Dynamic response estimation for a variable-camber NACA0012 hydrofoil of a flapping-type tidal stream turbine
    Hai, Nguyen Le Dang
    Park, Hoon Cheol
    Ko, Jin Hwan
    JOURNAL OF MARINE SCIENCE AND TECHNOLOGY, 2022, 27 (01) : 214 - 225
  • [25] Study of the power performance of a variable-camber hydrofoil used in a flapping tidal stream turbine
    Hai Nguyen Le Dang
    Dasom Jeong
    Jin Hwan Ko
    Journal of Marine Science and Technology, 2022, 27 : 1148 - 1162
  • [26] Novel, Bidirectional, Variable-Camber Airfoil via Macro-Fiber Composite Actuators
    Bilgen, Onur
    Kochersberger, Kevin B.
    Inman, Daniel J.
    Ohanian, Osgar J., III
    JOURNAL OF AIRCRAFT, 2010, 47 (01): : 303 - 314
  • [27] Optimization of variable-camber continuous trailing-edge flap configuration for drag reduction
    Ting, Eric (eric.b.ting@nasa.gov), 1600, AIAA International, 12700 Sunrise Valley Drive, Suite 200Reston, VA, Virginia, Virginia 20191-5807, United States (55):
  • [28] Optimization of Variable-Camber Continuous Trailing-Edge Flap Configuration for Drag Reduction
    Ting, Eric
    Chaparro, Daniel
    Nhan Nguyen
    Fujiwara, Gustavo E. C.
    JOURNAL OF AIRCRAFT, 2018, 55 (06): : 2217 - 2239
  • [29] Study of the power performance of a variable-camber hydrofoil used in a flapping tidal stream turbine
    Nguyen Le Dang, Hai
    Jeong, Dasom
    Ko, Jin Hwan
    JOURNAL OF MARINE SCIENCE AND TECHNOLOGY, 2022, 27 (03) : 1148 - 1162
  • [30] A novel dynamic aeroelastic framework for aeroelastic tailoring and structural optimisation
    Werter, N. P. M.
    De Breuker, R.
    COMPOSITE STRUCTURES, 2016, 158 : 369 - 386