Modelling of aircraft trajectories for emergency landing using kinematoid chains

被引:0
|
作者
Flämig S. [1 ]
Graefenhan M. [2 ]
Schiffmann W. [1 ]
机构
[1] FernUniversität in Hagen, Chair of Computer Architecture, Universitätsstraße 47, Hagen
[2] Department of Mathematics and Computer Science, Philipps-Universität Marburg, Hans-Meerwein-Straße 6, Marburg
关键词
Aircraft trajectories; Emergency landing; Gliding flight;
D O I
10.1007/s13272-023-00667-w
中图分类号
学科分类号
摘要
Most methods that compute trajectories for un- or low-powered flight operate under simplifying assumptions such as constant curve radii and wind conditions. Likewise, changes of air density with altitude that lead to significant differences between equivalent airspeed (EAS) und true airspeed (TAS) are often not considered. Some approaches are based on Dubins paths, which are introduced in Dubins LE (Am J Math 79: 497, 1957). They combine three sections to form a trajectory, which is the shortest from a given start to an end position (In the original work, the position extended by the heading, is referred to as configuration. Since configuration has a different connotation in our context, we use the term state, which can contain other parameters in addition to the position and the heading, e.g. orientation, configuration of landing flaps, landing gear, etc.). A maximum distant landing spot can be reached this way. Often, the targeted landing spot is closer to the aircraft. If it is approached using a Dubins Path, the excess height must be dealt with. Here, we present a method addressing the problem directly, namely finding a trajectory which reduces the excess height over its entire length. Furthermore, it takes spatial and temporal changes of wind and air density into account. Several conditions influence the final shape of the trajectory. For example, avoidance of obstacles and predefined areas is easily achieved. Our method is motivated by kinematic chains, which are used in robotics and computer animation. We extend and modify this principle by incrementally transferring start and end states of the trajectory, modelled as state vectors, into each other. The resulting intermediate states form ends of chain links. To connect initial and final states through the resulting chain, we solve the inverse kinematic problem known from robotics. We extend it by several conditions, which are derived from the flight mechanical characteristics of the modeled aircraft on the one hand and from the desired properties of the trajectory on the other. Using practical examples, we will show the performance of this method, which we have efficiently implemented on off-the-shelf hardware. The method is suitable for systems that assist in the event of engine failures as well as for modeling planned un- or low-powered flights like continuous descent approaches or return flights of space gliders. © 2023, The Author(s).
引用
收藏
页码:679 / 692
页数:13
相关论文
共 50 条
  • [21] Sensor Path Planning and Scheduling for Aircraft Emergency Landing Field Monitoring
    Nospes, David
    Stuetz, Peter
    2024 IEEE AEROSPACE CONFERENCE, 2024,
  • [22] Dynamic Behavior on Emergency Landing of Light Aircraft with Occupant Restraint System
    Luo, Lin Yin
    He, Yan Bin
    Liu, Xuan
    Yao, Xiao Hu
    MANUFACTURING ENGINEERING AND AUTOMATION II, PTS 1-3, 2012, 591-593 : 2513 - +
  • [23] Structural Analysis of a Composite Passenger Seat for the Case of an Aircraft Emergency Landing
    Tzanakis, Georgios
    Kotzakolios, Athanasios
    Giannaros, Efthimis
    Kostopoulos, Vassilis
    APPLIED MECHANICS, 2023, 4 (01): : 1 - 19
  • [24] Autonomous Emergency Landing of an Aircraft in Case of Total Engine-Out
    Flaemig, Steffen
    Schiffmann, Wolfram
    ADVANCES IN REAL-TIME AND AUTONOMOUS SYSTEMS, 2023, 2024, 1009 : 28 - 42
  • [25] AIRCRAFT AUTOMATIC LANDING SYSTEMS USING GPS
    PARKINSON, BW
    FITZGIBBON, KT
    JOURNAL OF NAVIGATION, 1989, 42 (01): : 47 - 59
  • [26] Covering of fuzzy graphs and its application in emergency aircraft landing using particle swarm optimization method
    Bhattacharya, Anushree
    Pal, Madhumangal
    APPLIED SOFT COMPUTING, 2024, 165
  • [27] Modeling and simulation of Aircraft Nose Landing Gear Emergency Lowering Using Co-simulation Method
    Wei Xiao-hui
    Yin Yin
    Chen Heng
    Nie Hong
    ADVANCES IN DESIGN TECHNOLOGY, VOLS 1 AND 2, 2012, 215-216 : 1213 - 1218
  • [28] Numerical Modelling of the Landing Aircraft Wake Vortices Formation over the Sea
    Baranov, Nikolay
    Lemishchenko, Ekaterina
    Resnick, Boris
    INTERNATIONAL CONFERENCE ON NUMERICAL ANALYSIS AND APPLIED MATHEMATICS ICNAAM 2019, 2020, 2293
  • [29] Deep generative modelling of aircraft trajectories in terminal maneuvering areas
    Krauth, Timothe
    Lafage, Adrien
    Morio, Jerome
    Olive, Xavier
    Waltert, Manuel
    MACHINE LEARNING WITH APPLICATIONS, 2023, 11
  • [30] Safe2Ditch: Emergency Landing for Small Unmanned Aircraft Systems
    Lusk, Parker C.
    Glaab, Patricia C.
    Glaab, Louis J.
    Beard, Randal W.
    JOURNAL OF AEROSPACE INFORMATION SYSTEMS, 2019, 16 (08): : 327 - 339