Advanced Scale-Propeller Design Using a MATLAB Optimization Code

Author:

Prior Stephen D.1ORCID,Newman-Sanders Daniel1ORCID

Affiliation:

1. Aeronautics, Astronautics and Computational Engineering, Boldrewood Innovation Campus, University of Southampton, Southampton SO16 7QF, Hampshire, UK

Abstract

This study investigated the efficiency of scale-propellers, typically used on small drones. A scale-propeller is accepted as having a diameter of 7 to 21 inches. Recent special operations has demonstrated the utility of relatively small, low-cost first-person view (FPV) drones, which are attritable. This investigation outlines the development of a MATLAB optimisation code, based on minimum induced loss propeller theory, which calculates the optimal chord and twist distribution for a chosen propeller operating in known flight conditions. The MATLAB code includes a minimum Reynolds number functionality, which provides the option to alter the chord distribution to ensure the entire propeller is operating above a set threshold value of Reynolds (>100,000), as this has been found to be a transition point between low and high section lift-to-drag ratios. Additional functions allow plotting of torque and thrust distributions along the blade. The results have been validated on experimental data taken from an APC ‘Thin Electric’ 10” × 7” propeller, where it was found that both the chord and twist distributions were accurately modelled. The MATLAB code resulted in a 16% increase in the maximum propulsive efficiency. Further work will investigate a direct interface to SolidWorks to aid rapid propeller manufacturing capability.

Funder

Engineering and Physical Sciences Research Council

Publisher

MDPI AG

Reference32 articles.

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2. Brandt, J., Deters, R., Ananda, G., and Selig, M. (2024, May 10). UIUC Propeller Database. University of Illinois at Urbana-Champaign. Available online: https://m-selig.ae.illinois.edu/props/propDB.html.

3. Optimum Loading and Induced Swirl Effects in Hover;Bhagwat;J. Am. Helicopter Soc.,2015

4. Sampath, R. (2017). An Investigation into UAV Scale Propellers. [Master’s Thesis, University of Southampton].

5. (2024, May 28). Mejzlik Propellers. Available online: https://www.mejzlik.eu/technical-data/propeller_data.

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