Static Structural Testing of Composite Wing Structure for Vertical Takeoff and Landing (VTOL) Unmanned Aerial Vehicles

被引:0
|
作者
Hwang, Hajung [1 ]
Han, Jaewon [1 ]
Kim, Myungjun [2 ]
机构
[1] Doosan Mobil Innovat Inc, Yongin 16858, South Korea
[2] Korea Natl Univ Transportat, Dept Aeronaut & Mech Design Engn, Chungju 27469, South Korea
关键词
Docking-undocking; Vertical takeoff and landing (VTOL); Unmanned aerial vehicle (UAV); Static structural test; Test load; Structural integrity;
D O I
10.1007/s42405-024-00759-9
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The vertical takeoff and landing unmanned aerial vehicle (VTOL UAV) must ensure robust structural integrity and meet a 130 kg maximum takeoff weight (MTOW) requirement, as it functions as an aerial module within docking-undocking unmanned systems. To satisfy these requirements, the airframe structure of the unmanned aerial vehicle was carefully designed with appropriate load paths to ensure sufficient static margin of safety. The most reliable method to demonstrate the structural integrity of an aircraft design is to conduct static structural tests, adequately reflecting the ground and flight load conditions applied in the design. This paper presents the overall process and results of the static structural testing of the VTOL UAV. This includes the methods for determining and validating test loads, analyzing test results, and evaluating structural integrity. The wing structure, expected to support the highest loads, was chosen as the test specimen. To calculate and validate the test loads, the static structural test FEM (SST FEM) was generated. Based on the detailed design results of the airframe structure, five critical load conditions were chosen as test conditions, and test loads for each condition were defined using the SST FEM. The test loads were calculated to achieve an accuracy within 2% of the maximum VMT loads for the SST FEM, compared to the VMT design loads for the full-scale FEM. Static structural testing was conducted for all test load conditions, including limit load tests for each condition and one ultimate load test for a critical condition. From all test results, it was confirmed that no detrimental permanent deformation and catastrophic failure occurred, ensuring the structural integrity of the design. In addition, the test results measured from strain gauges were compared with the numerical results of the SST FEM to validate the finite element model and analysis methods used in the design process. The findings of this paper can serve as a reference for design criteria and structural integrity validation methods necessary for the development of VTOL UAVs of similar scales.
引用
收藏
页码:108 / 130
页数:23
相关论文
共 50 条
  • [41] Adaptive Sliding Mode Relative Motion Control for Autonomous Carrier Landing of Fixed-wing Unmanned Aerial Vehicles
    Zheng, Zewei
    Jin, Zhenghao
    Sun, Liang
    Zhu, Ming
    IEEE ACCESS, 2017, 5 : 5556 - 5565
  • [42] Trajectory Tracking of Vertical Take-off and Landing Unmanned Aerial Vehicles Based on Disturbance Rejection Control
    Lu Wang
    Jianbo Su
    IEEE/CAAJournalofAutomaticaSinica, 2015, 2 (01) : 65 - 73
  • [43] Trajectory tracking of vertical take-off and landing unmanned aerial vehicles based on disturbance rejection control
    Wang, Lu
    Su, Jianbo
    IEEE/CAA Journal of Automatica Sinica, 2015, 2 (01) : 65 - 73
  • [44] Design and Fabrication of a Dual Rotor-Embedded Wing Vertical Take-Off and Landing Unmanned Aerial Vehicle
    Wong, Seng Man
    Ho, Hann Woei
    Abdullah, Mohd Zulkifly
    UNMANNED SYSTEMS, 2021, 9 (01) : 45 - 63
  • [45] Inflatable Airfoil Structure Optimization on Flying Wing Buoyancy-lifting Unmanned Aerial Vehicles
    Shi Qingli
    Wang Hua
    PROCEEDINGS OF 2017 IEEE INTERNATIONAL CONFERENCE ON UNMANNED SYSTEMS (ICUS), 2017, : 254 - 259
  • [46] Design and testing of shape memory alloy actuation mechanism for flapping wing micro unmanned aerial vehicles
    Kamaruzaman, N. F.
    Abdullah, E. J.
    AEROS CONFERENCE 2017, 2017, 270
  • [47] Finite Element Analysis for Composite Wing Structure of the Maritime Surveillance Unmanned Aerial Vehicle
    Wandono, Fajar Ari
    Adhitya, Mohammad
    RECENT PROGRESS ON: MECHANICAL, INFRASTRUCTURE AND INDUSTRIAL ENGINEERING, 2020, 2227
  • [48] A structural health monitoring project for a composite unmanned aerial vehicle wing: overview and evaluation tests
    Park, Chan Yik
    Kim, Jong Heon
    Jun, Seung-Moon
    STRUCTURAL CONTROL & HEALTH MONITORING, 2012, 19 (07): : 567 - 579
  • [49] Design and manufacture of umanned aerial vehicles (UAV) wing structure using composite materials
    Grodzki, W.
    Lukaszewicz, A.
    MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 2015, 46 (03) : 269 - 278
  • [50] Static structural analysis and testing of aircraft wing spar using composite material
    Raja, D. Bino Prince
    Ramanan, G.
    Patil, Ishwara Gowda V.
    Suganthi, P.
    MATERIALS TODAY-PROCEEDINGS, 2022, 64 : 416 - 424