Forced Quadcopter Control

Author:

Gu Penghao1,Leonovets J. A.2,Lobaty A. A.1

Affiliation:

1. Belarusian National Technical University

2. Chinese-Belarusian CJSC “Aviation Technologies and Complexes”, China-Belarus Great Stone Industrial Park

Abstract

The problem of analytical synthesis of the control acceleration of an unmanned aerial vehicle (UAV) of a multirotor type is being solved in relation to a light quadrocopter with a high flight duration. The optimal control is analytically determined for a given minimized quality functional in the form of the minimum time required to transfer the UAV from a given initial to a given final position in space. A mathematical model of the movement of the UAV mass center in a given plane relative to the earth's surface is considered. A feature of the proposed technique is the solution of the problem of maximum speed (forced control) based on the consideration of the laws of kinematics of uniformly accelerated motion of a rigid body. For given characteristics of the maximum allowable speed and control acceleration of the UAV, the moments of switching of the control signal are analytically calculated, which can be implemented in the UAV autopilot. This allows, in contrast to classical methods for solving the problem of forced control, to get rid of the need to solve a two-point boundary value problem and consider additional transversality conditions. The computer simulation of the obtained analytical results in the form of processes of changing the control acceleration, as well as the UAV motion parameters, has shown the efficiency of the proposed technique and the prospects for its use at the initial stage of the synthesis of the UAV control system.

Publisher

Belarusian National Technical University

Subject

General Medicine

Reference12 articles.

1. Guryanov A. E. (2014) Quadcopter Control Simulation. Inzhenerny Vestnik = Instrument Engineering, (8). Available at: http://www.ainjournal.ru/doc/723331.html (in Russian).

2. Moiseev V. S. (2013) Applied Control Theory for Unmanned Aerial Vehicles. Kazan, State Budget Institution Republican Center for Monitoring the Quality of Education. 768 (in Russian).

3. Unmanned Aircraft Complex A10-X1. Aviation Technologies and Complexes. Available at: https://aerotexsys.by/produktsiya/bespilotnye-aviatsionnye-kompleksy/multirotornogo-tipa (in Russian).

4. Krasovskii А. А. (ed.) (1987) Handbook of Automatic Control Theory. Мoscow, Nauka Publ. 712 (in Russian).

5. Lobaty A. A., Antanevich А. А., Ikuas Yu. F. (2009) Analytical Synthesis of Unmanned Aerial Vehicle Control. Sbornik Statei Voennoi Akademii Respubliki Belarus' [Collected Papers of Military Academy of the Republic of Belarus], (17), 62–66 (in Russian).

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