Dynamic modeling of high-speed helical gear transmission system with multiple geometric deviations and non-uniform contact

Existing helical gear dynamic models remain limited in providing a unified state-dependent description of the combined effects of multiple geometric deviations on non-uniform contact. To address this problem, this study develops a dynamic model in which pitch, profile, and helix deviations are mapped as normal perturbations into a common time-varying backlash field and coupled with the dynamic transmission error to determine the instantaneous contact state and load-bearing configuration. The improved mesh element is directly coupled with the shafting, bearings, and casing, establishing a consistent pathway from geometric deviations to system vibration response. The results show that pitch deviation changes the tooth-pair load-bearing sequence and mainly enhances rotational-frequency sideband components around the gear mesh frequency (GMF). Helix deviation enhances sideband modulation through contact position migration along the face width direction, whereas profile deviation primarily increases the GMF main-peak energy by changing the local stiffness of the main load-bearing region. As gear accuracy grade deteriorates, sideband related indices show higher sensitivity to accuracy degradation than the GMF main peak alone. Experimental validation shows good agreement between simulation and experiment in terms of time-domain amplitude, GMF main peak energy, and rotational-frequency sideband components. These results provide a practical basis for linking operational vibration features with geometric deviation related manufacturing accuracy assessment, assembly quality control, and sideband-based condition monitoring.

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Publication Details

Journal
Mechanical Systems and Signal Processing
Published
2026-09-16
DOI
https://doi.org/10.1016/j.ymssp.2026.114974
Primary Topic
Gear and Bearing Dynamics Analysis
Type
article
Field-Weighted Citation Impact
0.00

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Dynamic modeling of high-speed helical gear transmission system with multiple geometric deviations and non-uniform contact

Zhao Zhang, Miaomiao Li, Hu Yu, De Ni et al.
Mechanical Systems and Signal Processing
Gear and Bearing Dynamics Analysis
article

Dynamic modeling of high-speed helical gear transmission system with multiple geometric deviations and non-uniform contact

Zhao Zhang, Miaomiao Li, Hu Yu, De Ni, Zhanwei Li, Haiyang Ding, Rupeng Zhu
article en

Abstract

Existing helical gear dynamic models remain limited in providing a unified state-dependent description of the combined effects of multiple geometric deviations on non-uniform contact. To address this problem, this study develops a dynamic model in which pitch, profile, and helix deviations are mapped as normal perturbations into a common time-varying backlash field and coupled with the dynamic transmission error to determine the instantaneous contact state and load-bearing configuration. The improved mesh element is directly coupled with the shafting, bearings, and casing, establishing a consistent pathway from geometric deviations to system vibration response. The results show that pitch deviation changes the tooth-pair load-bearing sequence and mainly enhances rotational-frequency sideband components around the gear mesh frequency (GMF). Helix deviation enhances sideband modulation through contact position migration along the face width direction, whereas profile deviation primarily increases the GMF main-peak energy by changing the local stiffness of the main load-bearing region. As gear accuracy grade deteriorates, sideband related indices show higher sensitivity to accuracy degradation than the GMF main peak alone. Experimental validation shows good agreement between simulation and experiment in terms of time-domain amplitude, GMF main peak energy, and rotational-frequency sideband components. These results provide a practical basis for linking operational vibration features with geometric deviation related manufacturing accuracy assessment, assembly quality control, and sideband-based condition monitoring.

Mechanical Systems and Signal ProcessingVol. 260
Aero Engine Corporation of China (China) (CN), Nanjing University of Aeronautics and Astronautics (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 20%
Gear and Bearing Dynamics Analysis
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