Three-Dimensional Trajectory Optimization Satisfying Waypoint and No-Fly Zone Constraints

被引:121
|
作者
Jorris, Timothy R. [1 ]
Cobb, Richard G. [1 ]
机构
[1] USAF, Inst Technol, Dept Aeronaut & Astronaut, Wright Patterson AFB, OH 45433 USA
关键词
ENTRY GUIDANCE; AIR VEHICLES; COLLOCATION; SYSTEMS; SHUTTLE; DESIGN;
D O I
10.2514/1.37030
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
To support the U.S. Air Force's global reach concept, a Common Aero, Vehicle is being designed to support the global strike mission. Waypoints are specified for reconnaissance or multiple payload deployments and no-fly zones are specified for geopolitical restrictions or threat avoidance. Because of time critical targets and multiple scenario analysis, an autonomous solution is preferred over a time-intensive, manually Iterative one. Thus, it real-time or near real-time autonomous trajectory optimization technique is presented to minimize the flight time, satisfy terminal and Intermediate constraints, and remain within the specified vehicle heating and control limitations. This research uses the hypersonic cruise vehicle as a simplified two-dimensional platform to compute an optimal analytical solution. An up-and-coming numerical technique is it direct solution method involving discretization and then dualization, with pseudospectral methods and nonlinear programming used to converge to the optimal solution. This numerical technique Is first compared to the previously derived 2-D hypersonic cruise vehicle analytical results to demonstrate convergence to the optimal solution. Then, the numerical approach is applied to the 3-D Common Aero Vehicle as the test platform for the flat Earth three-dimensional reentry trajectory optimization problem. The culmination of this research is the verification or the optimality or this proposed numerical technique, as shown for both the two-dimensional and three-dimensional models. Additionally, user Implementation strategies art, presented to improve accuracy, enhance solution convergence, and facilitate autonomous implementation.
引用
收藏
页码:551 / 572
页数:22
相关论文
共 50 条
  • [21] Pseudospectral Convex Optimization for Reentry Vehicle Guidance with No-Fly Zone Constraints
    Lee, Sang-Don
    Lee, Chang-Hun
    Kim, Sung-Yug
    PROCEEDINGS OF THE 2021 ASIA-PACIFIC INTERNATIONAL SYMPOSIUM ON AEROSPACE TECHNOLOGY (APISAT 2021), VOL 2, 2023, 913 : 179 - 197
  • [22] A novel non-uniform optimal control approach for hypersonic cruise vehicle with waypoint and no-fly zone constraints
    Lv, Lu
    Liu, Xinggao
    Xiao, Long
    Ma, Weihua
    Qi, Zhenqiang
    Ye, Song
    Xu, Guoqiang
    Zheng, Zongzhun
    Wang, Sen
    Zhang, Zeyin
    INTERNATIONAL JOURNAL OF SYSTEMS SCIENCE, 2021, 52 (13) : 2704 - 2724
  • [23] A Rapid Hybrid Method for Powered Reentry Trajectory Planning with Uncertain No-Fly Zone Constraints
    Tian, Muyin
    Shen, Zuojun
    FUZZY SYSTEMS AND DATA MINING V (FSDM 2019), 2019, 320 : 224 - 236
  • [24] Evasion guidance of re-entry vehicle satisfying no-fly zone constraints based on virtual goals
    Zhao Liang-Bo
    Xu Wei
    Dong Chao
    Zhu Guang-Sheng
    Zhuang Ling
    SCIENTIA SINICA-PHYSICA MECHANICA & ASTRONOMICA, 2021, 51 (10)
  • [25] Joint Trajectory and Power Design for UAV-Enabled Secure Communications With No-Fly Zone Constraints
    Gao, Ying
    Tang, Hongying
    Li, Baoqing
    Yuan, Xiaobing
    IEEE ACCESS, 2019, 7 : 44459 - 44470
  • [26] Rapid Algorithm for Generating Entry Landing Footprints Satisfying the No-Fly Zone Constraint
    Fu, Shengnan
    Lu, Tianyu
    Yin, Jian
    Xia, Qunli
    INTERNATIONAL JOURNAL OF AEROSPACE ENGINEERING, 2021, 2021
  • [27] Dual-level Path-trajectory Generation with Complex No-fly Zone Constraints for Hypersonic Vehicle
    Zhang Y.
    Zhang R.
    Li H.
    Yuhang Xuebao/Journal of Astronautics, 2022, 43 (05): : 615 - 627
  • [28] Three-Dimensional Trajectory Optimization for soft lunar landing considering landing constraints
    Qiao, Yandi
    Zhang, Zexu
    Chen, Feng
    Wang, Xingyan
    Wang, Jing
    2020 IEEE 16TH INTERNATIONAL CONFERENCE ON CONTROL & AUTOMATION (ICCA), 2020, : 1199 - 1204
  • [29] Guidance law for intercepting target with multiple no-fly zone constraints
    Zhao, P.
    Chen, W.
    Yu, W.
    AERONAUTICAL JOURNAL, 2017, 121 (1244): : 1479 - 1501
  • [30] Trajectory and User Assignment Design for UAV Communication Network With No-Fly Zone
    Wu, Peng
    Yuan, Xiaopeng
    Hu, Yulin
    Schmeink, Anke
    IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2024, 73 (10) : 15820 - 15825