Tooth surface analysis method based on thermo-mechanical coupling and its application in prediction of gear dry-running bearing capacity

Yang Xiao, Sanmin Wang, Kexin Tang, Tao Zhang, Zheng Guo, Xiaomei Sun
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Abstract

In gear transmission, the continuous meshing of the teeth will lead to an increase in their temperature, which will have a certain impact on the working performance of the tooth surface. In order to explore the failure-bearing capacity of gears under dry-running conditions, temperature effects were considered in existing methods for determining tooth surface failure, making it more suitable for high-temperature working conditions caused by a lack of lubrication. The failure situation of gears within 35 min after losing lubrication was analyzed. The results indicate that when the gear loses lubrication, the tooth surface temperature of the gear pair has exceeded the material melting point after working at an input power of 2000 kW for 12 min. But when the power drops to 1000 kW, the instantaneous temperatures of the driving and driven gear tooth surfaces at the end of 35 min reach 1090 and 995°C, respectively, which are lower than the scuffing temperature of the tooth surface. The cumulative wear depths of the driving and driven gear tooth surfaces at the end of 35 min were 239 and 86.6 um, respectively, which were lower than the failure wear depth of the tooth surface; The allowable contact stress of the gear pair within 35 min is greater than its contact stress, meeting the judgment condition of no pitting failure. This indicates that reducing power can appropriately extend the failure time of gear teeth, thereby improving the ultimate working capacity of gears under dry-running conditions. In addition, a gear dry-running experiment was carried out. By comparing the theoretical calculation results with the measured gear failure degree, it shows that the improved method for determining gear surface failure is effective.
基于热机械耦合的齿面分析方法及其在齿轮干运转轴承承载能力预测中的应用
在齿轮传动中,齿的不断啮合会导致其温度升高,从而对齿面的工作性能产生一定影响。为了探索齿轮在干运转条件下的失效承载能力,现有的齿面失效测定方法考虑了温度效应,使其更适用于因缺乏润滑而导致的高温工作条件。分析了齿轮在失去润滑后 35 分钟内的失效情况。结果表明,当齿轮失去润滑时,在输入功率为 2000 kW 的条件下工作 12 分钟后,齿轮副的齿面温度已超过材料熔点。但当功率降至 1000 kW 时,35 min 结束时,驱动和从动齿轮齿面的瞬时温度分别达到 1090 和 995°C,低于齿面的擦伤温度。35 min结束时,主动齿轮齿面和从动齿轮齿面的累积磨损深度分别为239 um和86.6 um,低于齿面的失效磨损深度;35 min内齿轮副的容许接触应力大于其接触应力,满足无点蚀失效的判定条件。这表明,降低功率可以适当延长轮齿的失效时间,从而提高齿轮在干运转条件下的极限工作能力。此外,还进行了齿轮干运转实验。通过比较理论计算结果和实测的齿轮失效程度,表明改进后的齿轮表面失效判定方法是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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