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A Study on Hovering Performance of Personal Air Vehicle According to Distance between Rotor Blade Axis via Computational Fluid Dynamics

전산유체역학을 통한 PAV의 로터 블레이드 축간거리에 따른 호버링 성능 변화 연구

  • Yoon, Jaehyun (AID Company) ;
  • Noh, Wooseung (School of Mechanical and Material Convergence Eng., Gyeongsang Nat'l Univ.) ;
  • Doh, Jaehyeok (School of Mechanical and Material Convergence Eng., Gyeongsang Nat'l Univ.)
  • 윤재현 (에이드 컴퍼니) ;
  • 노우승 (경상국립대학교 기계소재융합공학부) ;
  • 도재혁 (경상국립대학교 기계소재융합공학부)
  • Received : 2022.02.25
  • Accepted : 2022.04.11
  • Published : 2022.05.31

Abstract

In this study, the conceptual design and performance evaluation of a personal air vehicle (PAV) is presented, which is a potential futuristic individual transportation. The blade element theory (BET) is employed to compute a rotational velocity. A computational fluid dynamics (CFD) simulation is performed to investigate the difference in the thrust performance in the rotor axis distance of a quad-copter PAV in hovering. Modal analysis is performed to create a Campbell diagram to investigate critical speed. Consequently, a quad-copter PAV changes the aerodynamics thrust and critical velocity according to the rotor axis distance.

Keywords

Acknowledgement

이 논문은 2021년도 정부(교육부)의 재원으로 한국연구재단의 지원을 받아 수행된 기초연구사업임(NRF-2021R1I1A3044394)

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