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  • 史勇杰 ( 教授 )

    的个人主页 http://faculty.nuaa.edu.cn/syj/zh_CN/index.htm

  •   教授   博士生导师
  • 招生学科专业:
    航空宇航科学与技术 -- 【招收博士、硕士研究生】 -- 航空学院
    机械 -- 【招收博士、硕士研究生】 -- 航空学院
论文成果 当前位置: 中文主页 >> 科学研究 >> 论文成果
Numerical study of the rotational direction effect on aerodynamic loading characteristics of shipborne helicopter rotor

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所属单位:航空学院
发表刊物:Aeronaut J
摘要:Numerical simulations of ship/rotor-coupled flowfield have been performed to investigate the rotational direction effects on a shipborne single-rotor helicopter in different deck landing trajectories (i.e., lateral and longitudinal translation) based on Reynolds-averaged Navier-Stokes (RANS) solver. Both the momentum source model and moving overset mesh model are employed to simulate the effect of the rotor on the ship airwake for different levels of fidelity requirement. The aerodynamic loading characteristics in terms of time-averaged and root-mean-square (RMS) thrust and pitch and roll moments are compared for two helicopter rotors with opposite rotation directions in a starboard 30 degrees wind condition. The time-averaged results show that the mean thrust of a counterclockwise rotor is greater than that of a clockwise rotor, particularly in the lateral translation phase. This suggests that a helicopter with a counterclockwise rotor could provide more collective control margin under this condition. Furthermore, a more significant reduction in pitch moment is experienced by the counterclockwise rotor during the two landing trajectories, and thus the effect of the aircraft being pulled towards the hangar tends to be more severe on the helicopter with the counterclockwise rotor. RMS loading results indicate that the unsteady loading levels on the clockwise rotor are much higher than that of the counterclockwise rotor in all three axes for most of the lateral and longitudinal translation phases. As a result, the pilot is likely to experience a higher workload when operating a helicopter with a clockwise rotor in the case of a deck landing in this wind condition. © 2019 Royal Aeronautical Society.
ISSN号:0001-9240
是否译文:否
发表时间:2019-05-01
合写作者:Su, D.C.,徐国华
通讯作者:史勇杰

 

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