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Computational Study on the Steady Loading Noise of Drone Propellers: Noise Source Modeling with the Lattice Boltzmann Method

Authors
Park, Chun HyukKim, Dae HanMoon, Young J.
Issue Date
12월-2019
Publisher
SPRINGER
Keywords
Drone propeller noise; Computational aeroacoustics; Steady loading noise source modeling; Lattice Boltzmann method
Citation
INTERNATIONAL JOURNAL OF AERONAUTICAL AND SPACE SCIENCES, v.20, no.4, pp.858 - 869
Indexed
SCIE
SCOPUS
KCI
Journal Title
INTERNATIONAL JOURNAL OF AERONAUTICAL AND SPACE SCIENCES
Volume
20
Number
4
Start Page
858
End Page
869
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/61418
DOI
10.1007/s42405-019-00177-2
ISSN
2093-274X
Abstract
In the present study, a new computational methodology is explored to compute the acoustic field of drone propellers using noise source modeling with the lattice Boltzmann method. A simple mathematical model of steady loading noise for predicting the blade passing frequency (BPF) tone and harmonics at low frequencies (100-1000 Hz) is proposed and tested for various types of drone propellers. The computed result is in a reasonably good agreement with NASA's measured sound pressure level (SPL) for APC-SF and DJI-CF two-blade single drone propellers rotating at 3600-6000 revolutions per minute. It replicates well the feature of an even number of BPF harmonics for the tested model propellers, showing the decaying slope of -for the first two BPF and harmonic peaks in the SPL spectrum. Notably, the proposed steady loading noise model shows all components of RPS harmonics with different magnitudes for different blade sizes and rotor arrangements, such as tricopter and quadcopter. The proposed method can be used for predicting and analyzing tones at low frequencies for various types of open rotor systems, such as multicopters and distributed electric propulsion vehicles.
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