Dynamic modeling and modal analysis of coaxial rotors/auxiliary propeller/drive train coupled system

被引:0
|
作者
Li B. [1 ,2 ]
Wang X. [1 ,2 ]
机构
[1] College of Aerospace Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing
[2] National Key Laboratory of Helicopter Aeromechanics, Nanjing
基金
中国国家自然科学基金;
关键词
drive train system; dynamic models; high-speed helicopter; torsional vibration; transfer matrix method;
D O I
10.7527/S1000-6893.2023.28945
中图分类号
学科分类号
摘要
High-speed helicopters use technologies such as advancing blade,reduced rotor rotation speed,and aux⁃ iliary propeller to achieve high-speed flight. The coupled system formed by coaxial rigid dual-rotor,variable speed drive train system,and high-power output tail propeller brings new challenges to traditional helicopter torsional vibration analysis. Firstly,a new modeling strategy based on the transfer matrix method is innovatively proposed to address the problem of complex multi-mode coupling torsional vibration system of high-speed helicopters. Compared to the model⁃ ing strategy of conventional finite element method,the present method does not require the equivalent processing of the drive train system,nor does it require the derivation of the overall governing equations based on Hamilton’s prin⁃ ciple. System governing equations can be directly obtained according to the topology structure of the system. In addi⁃ tion,a virtual geared branch element is innovatively introduced to decouple the topology of the drive train system into multiple independent chain systems,further significantly reducing the difficulty of modeling. Finally,the coupled tor⁃ sional vibration dynamics of high-speed helicopters under different working conditions is studied based on the proposed method. © 2024 Chinese Society of Astronautics. All rights reserved.
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共 23 条
  • [1] LEISHMAN J G., Principles of helicopter aerodynamics [M], (2016)
  • [2] BURGESS R., The ABC<sup>TM</sup> rotor-a historical perspective, Proceedings of the 60th Annual Forum of the American Helicopter Society, pp. 7-10, (2004)
  • [3] MILLOTT T., Dynamics design characteristics of the Sikorsky X2 technology<sup>TM</sup> demonstrator aircraft[C]∥ Proceedings of the 64th Annual Forum of the American Helicopter Society, (2008)
  • [4] HOPKINS S, ORMISTON R A., Analytical investigations of coupled rotorcraft/engine/drive train dynamics, Proceedings of the American Helicopter Society 2nd Interational Region Aero Mechanics Specialists Conference, pp. 1-22, (1995)
  • [5] CHOPRA I., Coupled vibration prediction of rotor-airframe-drivetrain-engine dynamics, AHS 74th Annual Forum, (2018)
  • [6] WANG J J, MAO Z Z, QING L W,, Et al., Torsional vibration analysis of helicopter power transmission system by the multi-shaft transfer matrix method[J], Journal of Aerospace Power, 23, 10, pp. 1805-1812, (2008)
  • [7] XU Z T, ZHU R P., Torsional vibration analysis for a helicopter tail drive system[J], Acta Aeronautica et Astronautica Sinica, 28, 2, pp. 425-431, (2007)
  • [8] XUE H F, XIANG J W, ZHANG X G., Coupled helicopter rotor/propulsion/transmission system torsional vibration analytical model and coupled influence investigation [J], Journal of Beijing University of Aeronautics and Astronautics, 30, 5, pp. 438-443, (2004)
  • [9] WEISS F, KESSLER C., Drivetrain influence on the lead‐lag modes of hingeless helicopter rotors[J], CEAS Aeronautical Journal, 11, 1, pp. 67-79, (2020)
  • [10] CHEN C H., Torsional vibration analysis of gear-branched systems by finite element method[J], Journal of Sound and Vibration, 240, 1, pp. 159-182, (2001)