• Skip to primary navigation
  • Skip to main content
  • Skip to primary sidebar
  • About Us
  • Research
  • People
  • Publications
  • News
  • Contact Us

The Acoustics & Signal Processing Laboratory

”Safe, quiet, and healthy life through acoustics research"

Texas A&M University College of Engineering

Rex Yusri’s paper on the aeroacoustic and aerodynamic evaluations of eVTOL propellers at Noise-Con 2026

Posted on June 29, 2026 by Yong-Joe Kim

Rex Yusri et al. have published a Noise-Con 2026 conference paper entitled “Experimental and computational aeroacoustic and aerodynamic evaluations of five eVTOL propeller blades.” Rex will present this paper at the conference (https://noisecon2026.org).  Below are the list of the authors and the abstract.

 

Experimental and computational aeroacoustic and aerodynamic evaluations of five eVTOL propeller blades

Rex Yusri, Justin Schoppe, Paul Cizmas, Yong-Joe Kim

Texas A&M University

Aureliano Perez, Jr., Aureliano Perez, III, Mackinley Haas

Texas High Energy Materials, LLC

Matthew C. Robbins

United States Air Force Research Labs (AFRL/RQTE)

 

ABSTRACT

Drones generate significant noise during their operation, limiting their usage in noise-sensitive environments. This study compared four pairs of eVTOL propeller blade designs from Texas High Energy Materials, LLC against a commercial baseline to reduce noise while maintaining aerodynamic efficiency. Experimental measurements and computational simulations were used to evaluate the aeroacoustic and aerodynamic performances. Experimental data was processed to obtain spatially averaged auto-spectra and overall sound pressure levels. It was shown that one of the proprietary blades presented the quietest overall noise level, generating an overall 14.9 dBA noise reduction compared to the commercial blades with an overall level of 80.8 dBA. Comparisons between measured and simulated data showed a 3.4 – 8.8 dBA difference, with computational models consistently underpredicting dominant noise peaks at blade passing frequencies. Although these computational models are useful in optimizing the designs where relative performance improvements are only important, the dBA difference can be reduced through improved finite element mesh quality in future simulations. Aerodynamic predictions indicated that the quietest blade design was the most energy-efficient, producing the highest average lift-to-power ratio of 0.95 N/W. Finally, experimental Nearfield Acoustic Holography results suggest that simple rotating monopole models can be used to represent the propeller noise effectively.

DOI: https://doi.org/10.3397/NC_2026_0206

Filed Under: Uncategorized

Pages

  • About Us
  • Contact Us
  • News
  • People
  • Publications
  • Research

© 2016–2026 The Acoustics & Signal Processing Laboratory Log in

Texas A&M Engineering Experiment Station Logo
  • College of Engineering
  • Facebook
  • Twitter
  • State of Texas
  • Open Records
  • Risk, Fraud & Misconduct Hotline
  • Statewide Search
  • Site Links & Policies
  • Accommodations
  • Environmental Health, Safety & Security
  • Employment