首页> 外文会议>Proceedings of the ASME international design engineering technical conferences and computers and information in engineering conference 2017 >CONTACT MECHANICS AND ELASTO-HYDRODYNAMIC LUBRICATION ANALYSIS OF INTERNAL-EXTERNAL STRAIGHT BEVEL GEAR MESH IN A PERICYCLIC DRIVE
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CONTACT MECHANICS AND ELASTO-HYDRODYNAMIC LUBRICATION ANALYSIS OF INTERNAL-EXTERNAL STRAIGHT BEVEL GEAR MESH IN A PERICYCLIC DRIVE

机译:周期驱动中内外直齿锥齿轮网的接触力学和弹力水润滑分析

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The focus of this work is development of a comprehensive tooth contact analysis model and characterization of lubricant performance in a Pericyclic mechanical transmission utilizing modified straight bevel gears. The Pericyclic drive is kinematically similar to an epicyclic bevel gear train, and is characterized by load sharing over large number of teeth, large shaft angles (175°-178°), nutational gear motion, and high reduction ratio. The load sharing calculation model described in this paper takes into account contact outside involute region and is easily generalized to all bevel epicyclic gear drives. The resulting contact stress field, calculated using Hertz contact stress theory, was validated against FEA solution. A 3-D kinematic analysis of the pericyclic drive was carried out to determine rolling and sliding velocities at contact points. Thereafter, Elastohydrodyamic lubrication (EHL) characteristics viz. film thickness, friction coefficient, and flash temperature were calculated for a sample lubricant. Power losses due to film friction are calculated to determine mesh efficiency. Finally, the effect of input power and profile crowning parameter was studied for all of the above mesh characteristics. The friction coefficient values were found to be in the lower range of EHL contact leading to high efficiency values and a small flash temperature for surfaces in contact.
机译:这项工作的重点是开发全面的齿接触分析模型,并在使用改进的直齿锥齿轮的周转机械变速器中表征润滑剂性能。周转驱动在运动学上类似于周转伞齿轮传动,其特点是在大量齿,大轴角(175°-178°),平均齿轮运动和高减速比的情况下均分担负载。本文所述的负荷分担计算模型考虑了渐开线区域外部的接触,可以很容易地推广到所有锥齿轮行星齿轮传动系统。使用赫兹接触应力理论计算得出的最终接触应力场已针对FEA解决方案进行了验证。进行了周向驱动的3-D运动学分析,以确定接触点的滚动速度和滑动速度。此后,弹性水动力润滑(EHL)特性即。计算出样品润滑剂的薄膜厚度,摩擦系数和闪蒸温度。计算由于薄膜摩擦引起的功率损耗,以确定网眼效率。最后,针对上述所有网格特征,研究了输入功率和轮廓凸度参数的影响。发现摩擦系数值在EHL接触的较低范围内,从而导致接触表面的效率值较高且闪蒸温度较低。

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