TY - JOUR
T1 - Dynamic modeling and vibration transmission analysis of the two-stage gearbox with simultaneous consideration of shaft flexibility and instantaneous gear meshing stiffness
AU - Sun, Yachao
AU - Shi, Jianghai
AU - Wei, Chaohu
AU - Yang, Yang
AU - Du, Minggang
AU - Cao, Hongrui
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2025/2/15
Y1 - 2025/2/15
N2 - For a two-stage gear transmission system, the coupled vibration response and vibration transmission law are not clear due to the mutual influence of two internal excitations. In this paper, a dynamic model of a two-stage gear transmission system that can simultaneously consider shaft flexibility and instantaneous gear meshing stiffness is proposed. Firstly, the flexible shaft is modelled with rigid element method. Secondly, a quick influence coefficient method is proposed to evaluate the instantaneous meshing stiffness of normal and broken teeth. Thirdly, the coupling dynamics model of gear-shaft-bearing-pedestal is developed by combining the radial contact force models of bearing and pedestal. The accuracy of the quick influence coefficient method is verified by comparison with finite element method and literature methods, and the correctness of the coupling dynamic model is verified by experimental results. Then the transmission laws of coupled vibration and fault excitation are revealed by the defined vibration transmission path, power flow and vibration contribution index. The results show that the power flow is maximum at the gear element position, and the vibration attenuates sharply when passing through the bearing interface. Besides, the fault residual signal is utilized to select the fault-sensitive measuring point, which provides a theoretical reference for the fault monitoring of the complex gear transmission system.
AB - For a two-stage gear transmission system, the coupled vibration response and vibration transmission law are not clear due to the mutual influence of two internal excitations. In this paper, a dynamic model of a two-stage gear transmission system that can simultaneously consider shaft flexibility and instantaneous gear meshing stiffness is proposed. Firstly, the flexible shaft is modelled with rigid element method. Secondly, a quick influence coefficient method is proposed to evaluate the instantaneous meshing stiffness of normal and broken teeth. Thirdly, the coupling dynamics model of gear-shaft-bearing-pedestal is developed by combining the radial contact force models of bearing and pedestal. The accuracy of the quick influence coefficient method is verified by comparison with finite element method and literature methods, and the correctness of the coupling dynamic model is verified by experimental results. Then the transmission laws of coupled vibration and fault excitation are revealed by the defined vibration transmission path, power flow and vibration contribution index. The results show that the power flow is maximum at the gear element position, and the vibration attenuates sharply when passing through the bearing interface. Besides, the fault residual signal is utilized to select the fault-sensitive measuring point, which provides a theoretical reference for the fault monitoring of the complex gear transmission system.
KW - Gear transmission system
KW - Instantaneous meshing stiffness
KW - Power flow
KW - Shaft flexibility
KW - Vibration transmission
UR - https://www.scopus.com/pages/publications/85213552629
U2 - 10.1016/j.ymssp.2024.112272
DO - 10.1016/j.ymssp.2024.112272
M3 - 文章
AN - SCOPUS:85213552629
SN - 0888-3270
VL - 225
JO - Mechanical Systems and Signal Processing
JF - Mechanical Systems and Signal Processing
M1 - 112272
ER -