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Determination on Damage Mechanism of the Planet Gear of Heavy Vehicle Final Drive

机译:重型车辆最终驱动行星齿轮损伤机理的确定

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The works focus on the investigation of damage mechanism of fractured in the form of spalling of the planet gears from the final drive assembly of 160-ton heavy vehicles. The objective of this work is to clearly understand the mechanism of damage. The work is the first stage of the on-going research on the remaining life estimation of such gears. The understanding of the damage mechanism is critical in order to provide accurate estimate of the gear's remaining life with observed initial damage. The analysis was performed based on the metallurgy laboratory works, including visual observation, macro-micro fractography by optical stereo and optical microscope and micro-vickers hardness test. From visual observation it was observed pitting that form lining defect at common position, which is at gear flank position. From spalling sample it was observed ratchet mark at the boundary between macro pitting and the edge of fractured parts. Further observation on the cross-section of the samples by optical microscope confirm that initial micro pitting occur without spalling of the case hardened surface. Spalling occur when pitting achieve certain critical size, and occur at multiple initiation site of crack propagation. From the present research it was concluded that pitting was resulted due to repeated contact fatigue. In addition, development of micro to macro pitting as well as spalling occur at certain direction towards the top of the gear teeth.
机译:作品侧重于从160吨重型车辆的最终驱动组件剥落行星齿轮剥落形式损坏机制的调查。这项工作的目的是清楚地了解损害的机制。这项工作是对这种齿轮的剩余寿命估算进行持续研究的第一阶段。对损伤机制的理解是至关重要的,以便为齿轮剩余寿命提供准确估计,观察到的初始损坏。该分析是基于冶金实验室工作进行的,包括视觉观察,通过光学立体声和光学显微镜和微维克斯硬度测试。根据视觉观察,观察到在公共位置形成衬里缺陷的点蚀,这是在齿轮侧面位置。从剥落样品中,观察到宏观点蚀与裂缝部件边缘之间的边界处的棘轮标记。通过光学显微镜对样品的横截面的进一步观察确认初始微点蚀地发生而不会剥落壳体硬化表面。斑点发生何时达到某些临界大小,并发生在裂纹传播的多个启动部位。从本研究开始,它的结论是由于重复接触疲劳导致点蚀。此外,在齿轮齿顶部的某些方向上发生微小到宏观点的微量斑点以及剥落。

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