Turning flight simulation of tilt-rotor plane with fluid-rigid body interaction

被引:4
|
作者
Takii, Ayato [1 ]
Yamakawa, Masashi [1 ]
Asao, Shinichi [2 ]
Tajiri, Kyohei [1 ]
机构
[1] Kyoto Inst Technol, Sakyo Ku, Kyoto 6068585, Japan
[2] Coll Ind Technol, 1-27-1 Amagasaki, Amagasaki, Hyogo 6610047, Japan
关键词
Computational fluid dynamics; Moving grid; Sliding mesh; Tilt rotor; Flight simulation; Coupled simulation; NUMERICAL-SIMULATION;
D O I
10.1299/jtst.2020jtst0021
中图分类号
O414.1 [热力学];
学科分类号
摘要
Six degrees of freedom turning flight simulation is presented for a tilt-rotor aircraft represented by V-22 Osprey, considering interaction of fluid and rigid body in a coupled manner. A tilt-rotor aircraft has a hovering function like a helicopter by turning axes of rotor toward the sky during takeoff or landing. On the other hand, it behaves as a reciprocating aircraft by turning axes of rotor forward in flight. The tilt-rotor aircraft is known to be susceptible to instable state compared to conventional aircraft. For realizing Digital Flight of turning flight of the aircraft, combination with the Moving Computational Domain (MCD) method and the multi-axis sliding mesh approach is applied. In the MCD method, the whole of the computational domain itself moves with the bodies included inside the domain, which makes an airplane possible to fly freely in the physical space without any restriction of region size. Moreover, this method is also applied to rotation of rotors. The multi-axis sliding mesh approach is computational technique to enable us to deal with multiple rotating axes of different direction, and it is used to rotate two rotors and change flight attitude of the aircraft. As a result of the coupled computation between flow field and rigid body using above approach, the airplane gained lift and propulsion by rotating the rotor and flew in turning by operating flight control surfaces such as flaperons, elevator and rudders. Moreover, the manipulating variables of flight control surfaces needed for turning flight, flight attitude of the aircraft and generated lift were found. Differences of fluid flow between straight flight and turning flight were also captured.
引用
收藏
页码:1 / 12
页数:12
相关论文
共 50 条
  • [41] Model Predictive Control Design for Tilt-Rotor Aircraft at Low Speed Flight
    Wang, Biao
    Wu, Meng
    Tang, Chaoying
    Liu, Chunsheng
    2020 IEEE 16TH INTERNATIONAL CONFERENCE ON CONTROL & AUTOMATION (ICCA), 2020, : 1572 - 1577
  • [42] Development of Flight Control System and Troubleshooting on Flight Test of a Tilt-Rotor Unmanned Aerial Vehicle
    Kang, Youngshin
    Park, Bum-Jin
    Cho, Am
    Yoo, Chang-Sun
    Koo, Sam-Ok
    Tahk, Min-Jea
    INTERNATIONAL JOURNAL OF AERONAUTICAL AND SPACE SCIENCES, 2016, 17 (01) : 120 - 131
  • [43] A Uniqueness Result for 3D Incompressible Fluid-Rigid Body Interaction Problem
    Muha, Boris
    Necasova, Sarka
    Radosevic, Ana
    JOURNAL OF MATHEMATICAL FLUID MECHANICS, 2021, 23 (01)
  • [44] A Robust Adaptive Mixing Control for Improved Forward Flight of a Tilt-rotor UAV
    Cardoso, Daniel Neri
    Raffo, Guilherme V.
    Esteban, Sergio
    2016 IEEE 19TH INTERNATIONAL CONFERENCE ON INTELLIGENT TRANSPORTATION SYSTEMS (ITSC), 2016, : 1432 - 1437
  • [45] CFD analyses of aerodynamic characteristics of tilt-rotor under typical flight conditions
    Li P.
    Zhao Q.-J.
    Hangkong Dongli Xuebao/Journal of Aerospace Power, 2016, 31 (02): : 421 - 431
  • [46] A Discrete Robust Adaptive Control of a Tilt-rotor UAV for an Enlarged Flight Envelope
    Santos, M. A.
    Cardoso, D. N.
    Rego, B. S.
    Raffo, G. V.
    Esteban, S.
    2017 IEEE 56TH ANNUAL CONFERENCE ON DECISION AND CONTROL (CDC), 2017,
  • [47] Design and Flight Control of a Novel Tilt-Rotor Octocopter Using Passive Hinges
    Qin, Zijie
    Wei, Jingbo
    Cao, Mingzhi
    Chen, Baihui
    Li, Kaixin
    Liu, Kun
    IEEE ROBOTICS AND AUTOMATION LETTERS, 2024, 9 (01): : 199 - 206
  • [48] Existence of weak solutions for a Bingham fluid-rigid body system
    Obando, Benjamin
    Takahashi, Takeo
    ANNALES DE L INSTITUT HENRI POINCARE-ANALYSE NON LINEAIRE, 2019, 36 (05): : 1281 - 1309
  • [49] Pseudo-fluid Particles for Fluid-rigid Body Coupling in SPH
    Ali Mahdavi
    KSCE Journal of Civil Engineering, 2018, 22 : 4194 - 4204
  • [50] Pseudo-fluid Particles for Fluid-rigid Body Coupling in SPH
    Mahdavi, Ali
    KSCE JOURNAL OF CIVIL ENGINEERING, 2018, 22 (11) : 4194 - 4204