Design and testing of a pneumatic telescopic-wing for unmanned aerial vehicles

被引:59
|
作者
Samuel, Julie Blondeau [1 ]
Pines, Darryll [1 ]
机构
[1] Univ Maryland, College Pk, MD 20742 USA
来源
JOURNAL OF AIRCRAFT | 2007年 / 44卷 / 04期
关键词
D O I
10.2514/1.22205
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This paper discusses the design, development, and testing of an unmanned aerial vehicle pneumatic telescopic wing that permits a change in the wingspan, while simultaneously supporting structural wing loads. The key element of the wing is a pressurized telescopic spar able to undergo large-scale spanwise changes while supporting wing loadings in excess of 15 lb/ft(2). The wing cross section is maintained by NACA 0013 rib sections fixed at the end of each element of the telescopic spar. Hollow fiberglass shells are used to preserve the spanwise airfoil geometry and ensure compact storage and deployment of the telescopic wing. A full-scale telescopic wing assembly was built and tested in the Glenn L. Martin Wind Tunnel at the University of Maryland. These tests included aerodynamic measurements at a variety of Reynolds numbers. The telescopic wing was tested in three different configurations and experimental results are compared with finite wing theory and results obtained on a rigid fixed-wing counterpart. Preliminary aerodynamic results were promising for the variable wingspan telescopic wing. As expected, the telescopic wing at maximum deployment incurred a slightly larger drag penalty and a reduced lift-to-drag ratio when compared to its solid fixed-wing counterpart. However, the penalty was minimal and thus the development of an unmanned aerial vehicle with a pneumatic variable span wing is feasible.
引用
收藏
页码:1088 / 1099
页数:12
相关论文
共 50 条
  • [31] Formation Flight of Multiple Fixed-wing Unmanned Aerial Vehicles
    Zhang, Mingfeng
    Liu, Hugh H. T.
    2013 AMERICAN CONTROL CONFERENCE (ACC), 2013, : 1614 - 1619
  • [32] Aerobatic Flight for Robotic Fixed-Wing Unmanned Aerial Vehicles
    Basescu, Max R.
    Moore, Joseph L.
    Johns Hopkins APL Technical Digest (Applied Physics Laboratory), 2021, 35 (04): : 453 - 456
  • [33] Experimental cooperative control of fixed-wing unmanned aerial vehicles
    Bayraktar, S
    Fainekos, GE
    Pappas, GJ
    2004 43RD IEEE CONFERENCE ON DECISION AND CONTROL (CDC), VOLS 1-5, 2004, : 4292 - 4298
  • [34] Conceptual development of flapping wing for unmanned aerial vehicles: Technical note
    Dhamodaran K.
    Adikesavana P.
    Shankar P.P.
    Gowtham S.
    International Journal of Vehicle Structures and Systems, 2018, 10 (01): : 43 - 45
  • [35] Robust Control for Underactuated Fixed-Wing Unmanned Aerial Vehicles
    Wang, Tianyi
    Zhang, Luxin
    Chen, Zhihua
    MATHEMATICS, 2024, 12 (07)
  • [36] Autonomous obstacle avoidance for fixed-wing unmanned aerial vehicles
    de Ruiter, A. H. J.
    Owlia, S.
    AERONAUTICAL JOURNAL, 2015, 119 (1221): : 1415 - 1436
  • [37] Aerobatic Flight for Robotic Fixed-Wing Unmanned Aerial Vehicles
    Basescu, Max R.
    Moore, Joseph L.
    JOHNS HOPKINS APL TECHNICAL DIGEST, 2021, 35 (04): : 453 - 456
  • [38] Bridging GPS Outages for Fixed-wing Unmanned Aerial Vehicles
    Zhao, Wenjie
    Fang, Zhou
    Li, Ping
    JOURNAL OF NAVIGATION, 2015, 68 (02): : 308 - 326
  • [39] Towards adaptive autopilots for fixed-wing unmanned aerial vehicles
    Baldi, Simone
    Roy, Spandan
    Yang, Kang
    2020 59TH IEEE CONFERENCE ON DECISION AND CONTROL (CDC), 2020, : 4724 - 4729
  • [40] Design and testing of a crop growth sensor aboard a fixed-wing unmanned aerial vehicle
    Yuan, Huali
    Yang, Jiayu
    Jiang, Xiaoping
    Zhu, Yan
    Cao, Weixing
    Ni, Jun
    COMPUTERS AND ELECTRONICS IN AGRICULTURE, 2022, 194