转轴驱动双圆弧螺旋锥齿轮副椭圆接触中的非牛顿热弹性流体动力混合润滑

Ling Pan, Zhiqiang Yin, Bin Lin, Yi Zeng, Jun Zhang
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摘要

以双圆弧锥齿轮为核心的新型换向减速器具有承载能力高、传动比大、结构简单等优点。现有研究主要集中在齿轮的加工方法和齿面接触分析上。本文首次建立了双圆弧锥齿轮的弹性流体力学混合润滑模型。通过与现有测试结果的对比,验证了该模型的准确性。在此基础上,结合有限元法和齿面接触分析,分析了双圆弧锥齿轮齿面的啮合特性、齿面接触特性和润滑特性。结果表明,传动过程中齿面接触点的夹带速度远高于滑动速度。因此,啮合运动接近于纯滚动。在恒速传动中,靠近齿面边缘的啮合点和退出点的油膜厚度小于齿面上其他啮合点的油膜厚度。这种现象很容易导致混合润滑和润滑失效,以及齿面磨损。在减速过程中,即转速降至 50 r/min 时,油膜厚度趋近于零,表明齿轮已进入混合润滑状态。所提出的模型可用于润滑分析和提高转位双圆弧锥齿轮的传动精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non-Newtonian thermal elastohydrodynamic mixed lubrication in elliptical contact for nutation-driven double circular-arc spiral bevel gear pair
The new type of nutation reducer with double circular-arc bevel gears as the core is characterized by advantages such as high load-bearing capacity, large transmission ratio, and simple structure. The existing research focuses on the machining methods of gears and the analysis of tooth contact. This article first time establishes an elastohydrodynamic mixed lubrication model for nutation double circular-arc bevel gear. The model's accuracy is verified by comparing it with existing test results. On this basis, combined with the finite element method and tooth contact analysis, the meshing characteristics, tooth contact characteristics, and lubrication characteristics of the double circular-arc bevel gear tooth surface are analyzed. The results show that the entrainment velocity at the contact point of the tooth surface during transmission is much higher than the sliding velocity. Consequently, the meshing motion is close to pure rolling. In constant-speed transmission, the oil film thickness at the engaging-in and exit points near the edge of the tooth surface is smaller than that at other meshing points on the tooth surface. This phenomenon can easily lead to mixed lubrication and lubrication failure, as well as tooth surface wear. During deceleration, i.e., when the speed drops to 50 r/min, the oil film thickness approaches zero, indicating that the gear has entered a mixed lubrication state. The proposed model can be used for lubrication analysis and improving transmission accuracy of nutation double circular-arc bevel gears.
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