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Investigation of manual transmission synchronizer failure mechanism induced by interface material/lubricant combinations

机译:界面材料/润滑剂组合引起的手动变速器同步器故障机理研究

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To better understand the effects of interface material/lubricant combinations on the failure mechanism of a certain type of manual transmission synchronizer, a gear shift experiment was performed on the custom-built apparatus. After the experiment which ran for thousands of simulated shifts, the surfaces of friction material were analyzed by a non-contact surface profiler, and the Fe content contained in gear oil was measured by atomic emission spectrometry. The results show that with an increase of the number of shifts the surfaces became smoother, which in turn caused a decrease in the contact temperature and local asperity pressure. The increment of Fe content in the gear oil decreased gradually, which signified that a thick oil film had formed between the contact surfaces. Therefore, the oil film became very much stable. The contribution of solid/solid interactions on the friction coefficient continued to reduce as the liquid gradually dominated performance. Due to the low friction coefficient, quick synchronization became unavailable and when any gear shocks occurred, it meant that the synchronizer was not performing as intended. (C) 2015 Elsevier B.V. All rights reserved.
机译:为了更好地了解界面材料/润滑剂组合对某种类型的手动变速器同步器故障机理的影响,在定制设备上进行了变速实验。在进行了数千次模拟位移的实验后,通过非接触式表面轮廓仪分析了摩擦材料的表面,并通过原子发射光谱法测量了齿轮油中的铁含量。结果表明,随着移位次数的增加,表面变得更光滑,从而导致接触温度和局部粗糙压力降低。齿轮油中铁含量的增加逐渐减少,这表明在接触表面之间形成了一层厚油膜。因此,油膜变得非常稳定。随着液体逐渐占据主导地位,固体/固体相互作用对摩擦系数的贡献持续降低。由于摩擦系数低,无法实现快速同步,并且当发生任何齿轮冲击时,这意味着同步器无法达到预期的性能。 (C)2015 Elsevier B.V.保留所有权利。

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