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March 14, 2026Proceedings of the Institution of Mechanical Engineers Part K Journal of Multi-body Dynamics0 citations

Robust and reliable modification design of traction arc cylindrical gears for high-speed electric multiple units

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ZTZhaoping TangWYWen YangZCZ. X. Chen

Key Points

  • The aim is to develop a robust gear modification design to improve the performance of traction gear transmissions.
  • Introduced an arc cylindrical gear system and a robust optimization strategy.
  • Selected key disturbance factors like center distance error and material elastic modulus.
  • Modeled uncertainties using fuzzy interval theory and optimal level-cut method.
  • Utilized a genetic algorithm to achieve optimal gear modifications.
  • Achieved a 63.7% reduction in transmission error.
  • Noticed a 48.4% decrease in maximum contact stress during meshing.
  • Observed a 16.3% drop in radiated noise.
  • Maintained a robust reliability index R s of 98.02% across disturbance parameters.

Abstract

To enhance the smoothness, quietness, and reliability of traction gear transmissions in high-speed electric multiple units operating under uncertain conditions, this study introduces an innovative arc cylindrical gear system along with a robust optimization strategy for gear modification. Center distance error and material elastic modulus are selected as key disturbance factors, and their uncertainty distributions are modeled using fuzzy interval theory and the optimal level-cut method. A robust optimization model is developed with the maximum profile modification amount, modification length, and arc tooth line radius as design variables to analyze the correlation between modification parameters and noise generation. The model aims to minimize radiated noise while satisfying noise reliability constraints, and the optimal robust modification scheme is obtained using a genetic algorithm. The results indicate that the optimized gear design achieves a 63.7% reduction in transmission error, a 48.4% decrease in maximum contact stress at the meshing-out position, and a 16.3% drop in radiated noise, while maintaining a robust reliability index R s of 98.02% across the full range of disturbance parameters. This study offers theoretical guidance and practical strategies for achieving robust and reliable design of traction gears in next-generation high-speed trains.

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Cite This Study

Tang et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc33b39f7826a300cef5https://doi.org/10.1177/14644193261428374
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