EN
Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design
Abstract
The development of control systems for aerial vehicles necessitates a meticulous examination of their dynamic behavior. This research delves into an in-depth investigation of the dynamic behavior of the F-16 aircraft, employing refined mathematical models to analyze both its longitudinal and lateral motions, as well as their corresponding modes. These mathematical models are formulated in two conventional representations: state space equations and transfer functions. By utilizing these mathematical representations, two displacement autopilots have been developed, consisting of a pitch attitude autopilot based on the longitudinal equations and a roll attitude autopilot designed using the lateral equations. Proportional Integral Derivative (PID) controllers, encompassing inner loops, as well as Linear Quadratic Controllers (LQR), have been employed as control system units. These control structures have been subjected to analysis using Simulink models. The analyses have yielded favorable damping characteristics and faster responses in both longitudinal and lateral movements and modes.
Keywords
References
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Details
Primary Language
English
Subjects
Aircraft Performance and Flight Control Systems
Journal Section
Research Article
Publication Date
December 30, 2023
Submission Date
July 24, 2023
Acceptance Date
November 15, 2023
Published in Issue
Year 2023 Volume: 04 Number: 02
APA
Norouzi, M., & Caferov, E. (2023). Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design. International Journal of Aviation Science and Technology, 04(02), 75-86. https://izlik.org/JA73LL47US
AMA
1.Norouzi M, Caferov E. Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design. IJAST. 2023;04(02):75-86. https://izlik.org/JA73LL47US
Chicago
Norouzi, Masoud, and Elbrus Caferov. 2023. “Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design”. International Journal of Aviation Science and Technology 04 (02): 75-86. https://izlik.org/JA73LL47US.
EndNote
Norouzi M, Caferov E (December 1, 2023) Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design. International Journal of Aviation Science and Technology 04 02 75–86.
IEEE
[1]M. Norouzi and E. Caferov, “Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design”, IJAST, vol. 04, no. 02, pp. 75–86, Dec. 2023, [Online]. Available: https://izlik.org/JA73LL47US
ISNAD
Norouzi, Masoud - Caferov, Elbrus. “Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design”. International Journal of Aviation Science and Technology 04/02 (December 1, 2023): 75-86. https://izlik.org/JA73LL47US.
JAMA
1.Norouzi M, Caferov E. Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design. IJAST. 2023;04:75–86.
MLA
Norouzi, Masoud, and Elbrus Caferov. “Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design”. International Journal of Aviation Science and Technology, vol. 04, no. 02, Dec. 2023, pp. 75-86, https://izlik.org/JA73LL47US.
Vancouver
1.Masoud Norouzi, Elbrus Caferov. Investigating Dynamic Behavior and Control Systems of the F-16 Aircraft: Mathematical Modelling and Autopilot Design. IJAST [Internet]. 2023 Dec. 1;04(02):75-86. Available from: https://izlik.org/JA73LL47US