Trajectory Optimization for a Cruising Unmanned Aerial Vehicle Attacking a Target at Back Slope while Subjected to a Wind Gradient

Tieying Jiang, Jie Li, Bing Li, Kewei Huang, Chengwei Yang*, Yimeng Jiang

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

7 Citations (Scopus)

Abstract

The trajectory of a tubular launched cruising unmanned aerial vehicle is optimized using the modified direct collocation method for attacking a target at back slope under a wind gradient. A mathematical model of the cruising unmanned aerial vehicle is established based on its operational and motion features under a wind gradient to optimize the trajectory. The motion characteristics of "altitude adjustment" and "suicide attack" are taken into full account under the combat circumstance of back slope time key targets. By introducing a discrete time function, the trajectory optimization is converted into a nonlinear programming problem and the SNPOT software is applied to solve for the optimal trajectory of the missile under different wind loads. The simulation results show that, for optimized trajectories, the average attack time decreased by up to 29.1% and the energy consumption is reduced by up to 25.9% under specified wind gradient conditions. A, ωdire, and Wmax have an influence on the flight trajectories of cruising unmanned aerial vehicle. This verifies that the application of modified direct collocation method is reasonable and feasible in an effort to achieve more efficient missile trajectories.

Original languageEnglish
Article number635395
JournalMathematical Problems in Engineering
Volume2015
DOIs
Publication statusPublished - 2015

Fingerprint

Dive into the research topics of 'Trajectory Optimization for a Cruising Unmanned Aerial Vehicle Attacking a Target at Back Slope while Subjected to a Wind Gradient'. Together they form a unique fingerprint.

Cite this