重载机车钩舌裂纹扩展及寿命预测方法研究
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华东交通大学交通智能运维技术与装备教育部重点实验室

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超长大坡道货运列车机车车轮异常磨耗与货车车轮踏面热负荷机理研究 (20244BCE52160)


Study on Crack Growth and Fatigue Life Prediction of Heavy-Haul Locomotive Coupler Knuckle
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    摘要:

    针对重载工况下车钩钩舌结构疲劳裂纹扩展与寿命评估问题,本文提出一种基于应力强度因子ΔK演化的裂纹扩展寿命预测方法。对某机车车钩检修数据进行统计分析,识别裂纹高发区域及其空间分布特征;建立车钩钩舌三维有限元模型,获取典型载荷工况下的应力场分布规律,并结合裂纹萌生区域确定关键分析部位。引入三维表面裂纹模型,计算裂纹前缘应力强度因子分布特征,并结合Paris裂纹扩展定律建立裂纹扩展演化模型,构建基于积分形式的疲劳寿命预测方法。研究结果表明:裂纹主要集中于销孔边缘、牵引凸缘过渡区域,其分布与有限元高应力区域具有空间一致性;裂纹前缘ΔK呈显著非均匀分布特征,并在牵引凸缘的裂纹表面约1mm区域出现峰值集中现象;随着载荷偏置量增加,ΔK空间分布发生重构,裂纹扩展速率加快,导致结构疲劳寿命显著降低。相比传统名义应力或经验损伤模型,本文方法能够描述裂纹前缘ΔK的三维非均匀演化过程,实现复杂载荷偏置条件下裂纹扩展驱动力与剩余寿命的联系。

    Abstract:

    To address fatigue crack propagation and life assessment of coupler knuckles under heavy-haul conditions, a crack growth life prediction method based on stress intensity factor range (ΔK) evolution is proposed. First, statistical analysis of in-service locomotive coupler data is performed to identify crack-prone regions and spatial distribution. A three-dimensional finite element model of the coupler knuckle is established to obtain stress field under loading conditions, and key analysis regions are determined with crack initiation locations. A three-dimensional surface crack model is introduced to evaluate stress intensity factor distribution along the crack front. Crack growth behavior is described using Paris law, and an incremental integration-based fatigue life prediction model is developed. Results show that cracks are mainly concentrated at the pin hole edge and traction lug transition region, consistent with high-stress regions from finite element analysis. The stress intensity factor range ΔK shows non-uniform distribution along the crack front, with peak concentration within about 1 mm beneath the surface. With increasing load eccentricity, the ΔK distribution is reconfigured, leading to higher crack growth rate and reduced fatigue life. The proposed method enables fatigue life prediction from crack initiation to failure. Compared with traditional nominal stress or empirical damage models, the proposed method describes three-dimensional non-uniform evolution of ΔK at the crack front and establishes relation between crack driving force and remaining life under load eccentricity conditions.

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  • 收稿日期:2026-04-29
  • 最后修改日期:2026-05-25
  • 录用日期:2026-05-25
  • 在线发布日期: 2026-07-06
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