Efficient fluid-structure interaction method for conceptual design of flexible, fixed-wing micro-air-vehicle wings

被引:0
|
作者
20152000851750
机构
[1] Combes, Thomas P.
[2] Malik, Arif S.
[3] Bramesfeld, Götz
[4] McQuilling, Mark W.
来源
Malik, Arif S. (amalik8@slu.edu) | 1600年 / AIAA International卷 / 53期
关键词
Flexible wings;
D O I
暂无
中图分类号
学科分类号
摘要
Micro-air-vehicle wing designs often incorporate flexible structures that mimic the skeletal and membrane attributes found in natural flyers. Accurate performance predictions for these wing types require coupling of aerodynamic and structural simulations. Such fluid-structure interaction simulations are often performed using high-fidelity, numerically expensive techniques such as computational fluid dynamics coupled to nonlinear structural finite element analysis. Although the computational cost of conducting many conceptual design trade studies with these methods is prohibitive, simplified approaches may lack sufficient fidelity to provide conceptual design insights. This paper summarizes the development, comparison, and application of an efficient fluid-structure interaction method to simulate flexible-wing performance for rapid conceptual design of micro air vehicles. An advanced potential flow model computes aerodynamic performance, whereas a corotational frame and shell finite element structural model computes wing deflections due to aerodynamic loading. The paper reviews existing computation approaches, then describes the model formulation, aerodynamic load coupling algorithm, comparisons with a higher fidelity method, and aeroelastic results of wing flexibility parametric and optimization studies at chord-Reynolds numbers of about 75,000. For one specific 304.8 mm wingspan planform, carrying a 0.45 kg payload, the studies indicate the optimized flexible wing achieves 7% endurance parameter gain compared with the stiffer baseline wing. Copyright © 2014 by the American Institute of Aeronautics and Astronautics, Inc.
引用
收藏
相关论文
共 50 条
  • [21] Subsonic Tests of a Flush Air Data Sensing System Applied to a Fixed-Wing Micro Air Vehicle
    Ihab Samy
    Ian Postlethwaite
    Dawei Gu
    Journal of Intelligent and Robotic Systems, 2009, 54 : 275 - 295
  • [22] Efficient Fluid-Structure Interaction Model for Twistable Flapping Rotary Wings
    Chen, Long
    Wang, Luyao
    Wang, Yan Qing
    AIAA JOURNAL, 2022, 60 (12) : 6665 - 6679
  • [23] An efficient fluid-structure interaction model for optimizing twistable flapping wings
    Wang, Q.
    Goosen, J. F. L.
    van Keulen, F.
    JOURNAL OF FLUIDS AND STRUCTURES, 2017, 73 : 82 - 99
  • [24] Fluid-structure interaction analysis of flexible flapping wing in the Martian environment
    Kawakami, Kosuke
    Kaneko, Shigeki
    Hong, Giwon
    Miyamoto, Hideaki
    Yoshimura, Shinobu
    ACTA ASTRONAUTICA, 2022, 193 : 138 - 151
  • [25] Design, kinematic and fluid-structure interaction analysis of a morphing wing
    Yang, Hui
    Jiang, Songcheng
    Wang, Yan
    Xiao, Hong
    AEROSPACE SCIENCE AND TECHNOLOGY, 2023, 143
  • [26] Reduced-Order Fluid-Structure Interaction Modeling of Chordwise Flexible Wings
    Schwab, Ryan
    Reade, Joseph
    Jankauski, Mark
    INTEGRATIVE AND COMPARATIVE BIOLOGY, 2023, 63 : S411 - S412
  • [27] Validation of a commercial fluid-structure interaction solver with applications to air cushion vehicle flexible seals
    Cole, Robert E.
    Neu, Wayne L.
    OCEAN ENGINEERING, 2019, 189
  • [28] Multidisciplinary Design Optimization for an Electric Quadrotor Fixed-Wing Hybrid Unmanned Air Vehicle
    Zhang H.
    Huang Y.
    Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University, 2023, 57 (08): : 148 - 160
  • [29] Effect of Wing Deformation on the Aerodynamic Performance of Flapping Wings: Fluid-Structure Interaction Approach
    Fairuz, Z. M.
    Abdullah, M. Z.
    Zubair, M.
    Mujeebu, M. Abdul
    Abdullah, M. K.
    Yusoff, H.
    Aziz, M. S. Abdul
    JOURNAL OF AEROSPACE ENGINEERING, 2016, 29 (04)
  • [30] Design of Bio-inspired Flexible Wings for Flapping-Wing Micro-sized Air Vehicle Applications
    Agrawal, Arun
    Agrawal, Sunil K.
    ADVANCED ROBOTICS, 2009, 23 (7-8) : 979 - 1002