Development of Design Methodology for a Small Solar-Powered Unmanned Aerial Vehicle

Author:

Rajendran Parvathy1ORCID,Smith Howard2

Affiliation:

1. School of Aerospace Engineering, Universiti Sains Malaysia, Penang, Malaysia

2. Aircraft Design Group, School of Aerospace, Transport and Manufacture Engineering, Cranfield University, Cranfield, UK

Abstract

Existing mathematical design models for small solar-powered electric unmanned aerial vehicles (UAVs) only focus on mass, performance, and aerodynamic analyses. Presently, UAV designs have low endurance. The current study aims to improve the shortcomings of existing UAV design models. Three new design aspects (i.e., electric propulsion, sensitivity, and trend analysis), three improved design properties (i.e., mass, aerodynamics, and mission profile), and a design feature (i.e., solar irradiance) are incorporated to enhance the existing small solar UAV design model. A design validation experiment established that the use of the proposed mathematical design model may at least improve power consumption-to-take-off mass ratio by 25% than that of previously designed UAVs. UAVs powered by solar (solar and battery) and nonsolar (battery-only) energy were also compared, showing that nonsolar UAVs can generally carry more payloads at a particular time and place than solar UAVs with sufficient endurance requirement. The investigation also identified that the payload results in the highest effect on the maximum take-off weight, followed by the battery, structure, and propulsion weight with the three new design aspects (i.e., electric propulsion, sensitivity, and trend analysis) for sizing consideration to optimize UAV designs.

Funder

Universiti Sains Malaysia

Publisher

Hindawi Limited

Subject

Aerospace Engineering

Reference17 articles.

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3. Solar Powered Unmanned Aerial Vehicle;2023 7th International Conference on Computer Applications in Electrical Engineering-Recent Advances (CERA);2023-10-27

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