Effects of Wind on Forward and Turning Flight of Flying Cars Using Computational Fluid Dynamics

被引:1
作者
Magata, Taiga [1 ]
Takii, Ayato [2 ]
Yamakawa, Masashi [1 ]
Kobayashi, Yusei [1 ]
Asao, Shinichi [3 ]
Takeuchi, Seiichi [3 ]
机构
[1] Kyoto Inst Technol, Sakyo Ku, Kyoto 6068585, Japan
[2] RIKEN Ctr Computat Sci, 7-1-26 Minatojima Minami Machi,Chuo Ku, Kobe, Hyogo 6500047, Japan
[3] Coll Ind Technol, Amagasaki, Hyogo 6610047, Japan
来源
COMPUTATIONAL SCIENCE, ICCS 2024, PT I | 2024年 / 14832卷
关键词
CFD; Flying Car; turn flight; NUMERICAL-SIMULATION;
D O I
10.1007/978-3-031-63749-0_1
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
We have been using various environments and spaces to meet high transportation demands. However, traffic congestion, deteriorating transportation infrastructure, and environmental pollution have become current social problems. To solve these problems, flying vehicles that use near ground space (NGS) are attracting attention. In order to develop such vehicles efficiently, highly accurate computer simulation technology is required. In this study, computer simulations are performed by coupling fluid and rigid body motions using two calculation methods. One is the moving computational domain method, in which the object and computational domain are moved as a single unit to represent the motion of the object and the flow around the body, and the other is the multi-axis sliding mesh method, in which physical quantities are transferred at the boundaries to reproduce the motion of objects with different motions, such as rotating parts. Because the flying car in the development stage is small and has a shape that obtains thrust from multiple propellers, the insertion of disturbances was considered because of the possible effects of wind on the aircraft during actual flight. In this study, we attempted to clarify the effect of wind on the flying car by performing flight simulations in six patterns, one with no wind and the other with a disturbance inserted that causes a headwind during forward flight and a crosswind during turning flight.
引用
收藏
页码:3 / 18
页数:16
相关论文
共 18 条
  • [1] Robust Helicopter Stabilization in the Face of Wind Disturbance
    Danapalasingam, Kumeresan A.
    Leth, John-Josef
    la Cour-Harbo, Anders
    Bisgaard, Morten
    [J]. 49TH IEEE CONFERENCE ON DECISION AND CONTROL (CDC), 2010, : 3832 - 3837
  • [2] Flight simulation from takeoff to yawing of eVTOL airplane with coaxial propellers by fluid-rigid body interaction
    Gomi, Ritsuka
    Takii, Ayato
    Yamakawa, Masashi
    Asao, Shinichi
    Takeuchi, Seiichi
    Nishimura, Momoha
    [J]. ADVANCES IN AERODYNAMICS, 2023, 5 (01)
  • [3] Healy R., 2019, P 75 ANN FOR PHIL VF
  • [4] Surface triangulation for polygonal models based on CAD data
    Ito, Y
    Nakahashi, K
    [J]. INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2002, 39 (01) : 75 - 96
  • [5] Challenges in unstructured mesh generation for practical and efficient computational fluid dynamics simulations
    Ito, Yasushi
    [J]. COMPUTERS & FLUIDS, 2013, 85 : 47 - 52
  • [6] Flying Car Transportation System: Advances, Techniques, and Challenges
    Pan, Gaofeng
    Alouini, Mohamed-Slim
    [J]. IEEE ACCESS, 2021, 9 : 24586 - 24603
  • [7] Understanding the control characteristics of electric vertical take-off and landing (eVTOL) aircraft for urban air mobility
    Pavel, Marilena D.
    [J]. AEROSPACE SCIENCE AND TECHNOLOGY, 2022, 125
  • [8] Piccinini R., 2021, P 47 EUR ROT FOR VIR
  • [9] EVTOL Tilt-Wing Aircraft Design under Uncertainty Using a Multidisciplinary Possibilistic Approach
    Rostami, Mohsen
    Bardin, Julian
    Neufeld, Daniel
    Chung, Joon
    [J]. AEROSPACE, 2023, 10 (08)
  • [10] Simmons B.M., 2021, NASA TM-20210014010