TY - GEN
T1 - Numerical and Experimental Study on the Dynamic Characteristics of Herringbone Gear Systems Considering Actual Tooth Surface Deviations
AU - Liu, Fengfeng
AU - Liu, Geng
AU - Liu, Lan
AU - Du, Zilong
AU - Zhang, Haoqin
AU - Dai, Guanghao
N1 - Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2026.
PY - 2026
Y1 - 2026
N2 - To accurately assess the effects of gear manufacturing deviations on gear system dynamics, advanced measurement techniques are employed to capture actual tooth surface deviations. These deviations are mapped to contact points on the gear meshing action plane through interpolation. Considering the superposition of contact point deviations between the driving and driven gears, along with differences in tooth surface deviations, a long-period loaded tooth contact analysis (LTCA) is conducted to obtain excitations of long-period time-varying mesh stiffness (TVMS) and comprehensive mesh error (CME) for dynamic analysis. Using Fast Fourier Transform (FFT) analysis, the gear meshing frequency, rotating frequency, and hunting tooth frequency are identified within these excitations. A dynamic model of the herringbone gear system is developed using the generalized finite element method. By incorporating these excitations into the dynamic model, the effects of actual tooth surface deviations on the system’s dynamic characteristics are analyzed. When accounting for actual tooth surface deviations, complex modulation phenomena appear in the system’s vibration spectrum, including modulation between hunting tooth frequency, meshing frequency, and rotating frequency. Finally, a power-closed herringbone gear vibration test bench is constructed, and vibration acceleration tests at the bearing seat are conducted to validate the effectiveness of the proposed dynamic model.
AB - To accurately assess the effects of gear manufacturing deviations on gear system dynamics, advanced measurement techniques are employed to capture actual tooth surface deviations. These deviations are mapped to contact points on the gear meshing action plane through interpolation. Considering the superposition of contact point deviations between the driving and driven gears, along with differences in tooth surface deviations, a long-period loaded tooth contact analysis (LTCA) is conducted to obtain excitations of long-period time-varying mesh stiffness (TVMS) and comprehensive mesh error (CME) for dynamic analysis. Using Fast Fourier Transform (FFT) analysis, the gear meshing frequency, rotating frequency, and hunting tooth frequency are identified within these excitations. A dynamic model of the herringbone gear system is developed using the generalized finite element method. By incorporating these excitations into the dynamic model, the effects of actual tooth surface deviations on the system’s dynamic characteristics are analyzed. When accounting for actual tooth surface deviations, complex modulation phenomena appear in the system’s vibration spectrum, including modulation between hunting tooth frequency, meshing frequency, and rotating frequency. Finally, a power-closed herringbone gear vibration test bench is constructed, and vibration acceleration tests at the bearing seat are conducted to validate the effectiveness of the proposed dynamic model.
KW - Actual Tooth Surface Deviations
KW - Dynamic Characteristics
KW - Herringbone Gear
KW - Loaded Tooth Contact Analysis
UR - https://www.scopus.com/pages/publications/105026955219
U2 - 10.1007/978-981-95-3646-7_89
DO - 10.1007/978-981-95-3646-7_89
M3 - 会议稿件
AN - SCOPUS:105026955219
SN - 9789819536450
T3 - Lecture Notes in Mechanical Engineering
SP - 1034
EP - 1041
BT - Advances in Mechanical Transmission
A2 - Wang, Shuxin
A2 - Qin, Datong
A2 - Liu, Fei
PB - Springer Science and Business Media Deutschland GmbH
T2 - International Conference on Mechanical Transmission, ICMT 2025
Y2 - 17 April 2025 through 20 April 2025
ER -