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Damage modeling of gear contact fatigue considering surface property gradients

  • Guang Xiong
  • , Qingbing Dong
  • , Yifan Ge
  • , Zhongliang Xie
  • , Xiujiang Shi
  • , Wei Min Huang
  • Chongqing University
  • College of Power and Energy Engineering, Harbin Engineering University
  • Nanyang Technological University

科研成果: 期刊稿件文章同行评审

摘要

An elastic-plastic damage model is developed to investigate gear contact fatigue accounting for surface property gradients in mining transmission systems. The material response is described using a damage-coupled constitutive formulation incorporating nonlinear kinematic hardening and isotropic softening. Material and damage parameters are calibrated experimentally, and the elastic-plastic damage model is validated with good accuracy. In this study, the macro crack is assumed to nucleate when the local damage achieves the critical value, DC = 0.95 in this study, and the evolution of elements with D = DC is interpreted as the progression of crack propagation. The gear is deemed to have failed by pitting when the number of failure elements in any hardened layer exceeds 4% of the total number of elements on the working tooth flank. The results demonstrate that local degradation of load-bearing capacity induces significant stress redistribution, and stress concentrations appear at the boundaries between zones at different damage levels. The transmission error amplitude may increase by approximately 4.7% once the failure threshold is reached. During crack propagation, damage accumulation increases the effective stress through the reduction of the load-bearing capacity, thereby activating plastic deformation under nominally elastic contact conditions and leading to kinematic hardening and isotropic softening behaviors. This work provides a systematic framework for predicting crack initiation and pitting evolution in gears with surface property gradients, offering potential insights for gear contact fatigue assessment and life prediction.

源语言英语
文章编号109799
期刊International Journal of Fatigue
212
DOI
出版状态已出版 - 11月 2026

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