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Research & review articles are invited for publication in September 2026 (Vol. 28, Issue 3) || Submission: up to 28th September || Editorial decision: within 48 hrs.

Modeling and design of quadcopter under six degrees of freedom

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  • Modeling and design of quadcopter under six degrees of freedom

Solomon saik 1, *, Saadu Olayinka Isiaka 1, Adebanjo Olawale Babasola 2 and Gbajabiamila Babatunde Ameen 2

1 Rocket System Engineering Division. Bola Ahmed Tinubu Centre for Space Transport and Propulsion, Epe Lagos Nigeria. 
2 Rocket System Division. Bola Ahmed Tinubu Centre for Space Transport and Propulsion, Epe Lagos Nigeria.

Research Article

Global Journal of Engineering and Technology Advances, 2026, 28(02), 001–014

Article DOI: 10.30574/gjeta.2026.28.2.0181

DOI url: https://doi.org/10.30574/gjeta.2026.28.2.0181

Received on 08 June 2026; revised on 30 July 2026; accepted on 01 August 2026

Quadcopters are rotary wing unmanned aerial vehicles (UAVs) who’s entire six axis flight envelope is governed by differentially varying the speeds of four fixed-pitch motors. They are inherently open-loop unstable and require continuous automatic feedback control to hover and maneuver. This paper presents a complete model-based design study of a quadcopter operating under six degrees of freedom (6-DOF): the full Newton-Euler equations of motion, the ZYX Euler rotation matrix, the 4×4 motor mixing matrix, and moments of inertia estimated from measured component weights (m = 0.890 kg, L = 0.300 m, Ixx = Iyy = 0.0317 kg·m², Izz = 0.0431 kg·m²). A PD controller is designed and implemented using the laboratory-measured gain values Kp = 1.5 and Kd = 2.5 for all attitude axes, and Kp_z = 6.0, Kd_z = 1.5 for altitude. Numerical simulation confirms that the attitude loop is over-damped (ζ = 5.74) with settling time Ts ≈ 5 s, while the altitude loop is underdamped (ζ = 0.325) with 34% overshoot and Ts ≈ 0.74 s. Circular trajectory tracking achieves an RMS position error of 0.015 m. A binary (0/1) motor command framework, verified during laboratory bench testing, is documented as the practical commissioning protocol for the mixing matrix.

Quadcopter; 6-DOF; PD Control; PID Control; Euler Angles; Mixing Matrix; Moment of Inertia; Simulation; Step Response; Circular Trajectory.

https://gjeta.com/sites/default/files/fulltext_pdf/GJETA-2026-0181.pdf

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Solomon Saiki, Saadu Olayinka Isiaka, Adebanjo Olawale Babasola and Gbajabiamila Babatunde Ameen. Modeling and design of quadcopter under six degrees of freedom. Global Journal of Engineering and Technology Advances, 2026, 28(02), 001–014. Article DOI: https://doi.org/10.30574/gjeta.2026.28.2.0181.

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