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Stability analysis of flying wing layout aircraft based on radial basis function neural network model

Wenqi Zhang (School of Civil Aviation, Northwestern Polytechnical University, Xi'an, China)
Zhenbao Liu (School of Civil Aviation, Northwestern Polytechnical University, Xi'an, China and Northwestern Polytechnical University, Shenzhen, China)
Xiao Wang (School of Civil Aviation, Northwestern Polytechnical University, Xi'an, China)
Luyao Wang (School of Civil Aviation, Northwestern Polytechnical University, Xi'an, China)

Aircraft Engineering and Aerospace Technology

ISSN: 0002-2667

Article publication date: 20 September 2024

Issue publication date: 30 September 2024

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Abstract

Purpose

To ensure the stability of the flying wing layout unmanned aerial vehicle (UAV) during flight, this paper uses the radial basis function neural network model to analyse the stability of the aforementioned aircraft.

Design/methodology/approach

This paper uses a linear sliding mode control algorithm to analyse the stability of the UAV's attitude in a level flight state. In addition, a wind-resistant control algorithm based on the estimation of wind disturbance with a radial basis function neural network is proposed. Through the modelling of the flying wing layout UAV, the stability characteristics of a sample UAV are analysed based on the simulation data. The stability characteristics of the sample UAV are analysed based on the simulation data.

Findings

The simulation results indicate that the UAV with a flying wing layout has a short fuselage, no tail with a horizontal stabilising surface and the aerodynamic focus of the fuselage and the centre of gravity is nearby, which is indicative of longitudinal static instability. In addition, the absence of a drogue tail and the reliance on ailerons and a swept-back angle for stability result in a lack of stability in the transverse direction, whereas the presence of stability in the transverse direction is observed.

Originality/value

The analysis of the stability characteristics of the sample aircraft provides the foundation for the subsequent establishment of the control model for the flying wing layout UAV.

Keywords

Acknowledgements

This work was supported by National Natural Science Foundation of China (NO. 52072309), Key Research and Development Program of Shaanxi, China (NO. 2019ZDLGY14-02–01), Aeronautical Science Foundation of China (NO. ASFC-2018ZC53026) and Shenzhen Fundamental Research Program, China (NO. JCYJ20190806152203506).

Citation

Zhang, W., Liu, Z., Wang, X. and Wang, L. (2024), "Stability analysis of flying wing layout aircraft based on radial basis function neural network model", Aircraft Engineering and Aerospace Technology, Vol. 96 No. 9, pp. 1268-1278. https://doi.org/10.1108/AEAT-05-2024-0128

Publisher

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Emerald Publishing Limited

Copyright © 2024, Emerald Publishing Limited

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