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Frequency and Vibration Characteristics of High-Speed Gear-Rotor-Bearing System with Tooth Root Crack considering Compound Dynamic Backlash

机译:考虑复合动力间隙,齿根裂纹的高速齿轮转子系统的频率和振动特性

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摘要

Considering the microstructure of tooth surface and the dynamic characteristics of the vibration responses, a compound dynamic backlash model is employed for the gear transmission system. Based on the fractal theory and dynamic center distance, respectively, the dynamic backlash is presented, and the potential energy method is applied to compute the time-varying meshing stiffness, including the healthy gear system and the crack fault gear system. Then, a 16-DOF coupled lateral-torsional gear-rotor-bearing transmission system with the crack fault is established. The fault characteristics in the time-domain waveform and frequency response and statistics data are described. The effect of crack on the time-varying meshing stiffness is analyzed. The vibration response of three backlash models is compared. The dynamic response of the system is explored with the increase in crack depth in detail. The results show that the fault features of countershaft are more obvious. Obvious fluctuations are presented in the time-domain waveform, and sidebands can be found in the frequency domain responses when the tooth root crack appears. The effect of compound dynamic backlash on the system is more obvious than fixed backlash and backlash with changing center distance. The vibration displacement along meshing direction and dynamic meshing force increases with the increase in crack depth. Backlash and variation of center distance show different tendencies with increasing crack depth under different rotational speeds. Amplitude of the sidebands increases with crack depth increasing. The amplitude of multiplication frequency of rotational frequency has an obvious variation with growing crack depth. The sidebands of the multiplication frequency of meshing frequency show more details on the system with complex backlash and crack fault.
机译:考虑到齿面的微观结构和振动响应的动态特性,用于齿轮传动系统的复合动态间隙模型。基于分形理论和动态中心距离,提出了动态间隙,并且施加电位方法来计算时变啮合刚度,包括健康齿轮系统和裂缝故障齿轮系统。然后,建立具有裂纹故障的16-DOF耦合的横向扭转齿轮转子传输系统。描述了时域波形和频率响应和统计数据中的故障特性。分析了裂缝对时变啮合刚度的影响。比较了三个间隙模型的振动响应。探讨了系统的动态响应,并详细介绍了裂缝深度。结果表明,副轴的故障特征更加明显。在时域波形中呈现明显的波动,并且在牙齿根裂纹出现时,可以在频域响应中找到边带。复合动态间隙对系统的影响比具有变化中心距离的固定间隙和间隙更加明显。随着裂纹深度的增加,沿着啮合方向和动态啮合力的振动位移增加。中心距离的反弹和变化显示不同的倾向,随着不同的转速增加裂缝深度。边带的幅度随着裂缝深度的增加而增加。旋转频率的倍增频率的幅度具有明显的变化,具有生长裂缝深度。啮型频率乘法频率的边带显示了具有复杂的间隙和破裂故障的系统的更多细节。

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  • 来源
    《Shock and vibration》 |2019年第11期|1854263.1-1854263.19|共19页
  • 作者单位

    Shenyang Univ Technol Sch Mech Engn Shenyang 110870 Liaoning Peoples R China;

    Shenyang Univ Technol Sch Mech Engn Shenyang 110870 Liaoning Peoples R China;

    Shenyang Univ Technol Sch Mech Engn Shenyang 110870 Liaoning Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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