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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Simulation of wear in gears with flank interference-a mixed FE and analytical approach
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Simulation of wear in gears with flank interference-a mixed FE and analytical approach

机译:带有侧面干扰的齿轮磨损模拟-混合有限元分析法

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Gears in precision mechanisms, such as industrial robots, are often designed to have no backlash. Deviations from the ideal gear geometries and unfavourable deformations during operation may cause interference between interacting tooth flanks, resulting in high and strongly varying friction. Mild wear of the tooth flanks may improve such conditions. Therefore, this theoretical study has been conducted of wear in spur gears with interference. A mixed finite element (FE) and analytical approach is used. The FE method is used to determine contact loads between the interacting gear teeth. The main drawback with FE analyses of this type of problem is normally the computation time needed. Therefore, a novel FE meshing method is used, giving a dense FE mesh in the contact regions and a coarse mesh in the rest of the teeth. Based on the FE determined loads between the interacting teeth, the contact pressures and the contact widths are then easily determined using analytical expressions based on Hertz theory. The wear of a point on a tooth flank is determined by integrating the product of sliding distance and contact pressure during the time it is in contact with its mating flank. The results show that the wear of the gear tooth flanks may eliminate the interference and consequently the high and strongly varying friction will decrease dramatically. However, the transmission error will change, since the gears will not preserve their accurate involute profiles.
机译:诸如工业机器人之类的精密机构中的齿轮通常被设计成无间隙。与理想齿轮几何形状的偏差和操作过程中的不利变形可能会导致相互影响的齿​​面之间产生干扰,从而导致高而剧烈变化的摩擦。牙齿侧面的轻微磨损可能会改善这种状况。因此,已经对正齿轮的过盈磨损进行了理论研究。使用了混合有限元(FE)和分析方法。 FE方法用于确定相互作用的齿轮齿之间的接触载荷。有限元分析这类问题的主要缺点通常是所需的计算时间。因此,使用了一种新颖的有限元网格划分方法,在接触区域提供了密集的有限元网格,在其余牙齿上提供了粗糙的网格。基于有限元确定的相互作用齿之间的载荷,然后可以使用基于赫兹理论的解析表达式轻松确定接触压力和接触宽度。齿侧面上的一个点的磨损是通过积分在其与其配合侧面接触期间的滑动距离和接触压力的乘积确定的。结果表明,齿轮齿面的磨损可以消除干扰,因此,高而剧烈变化的摩擦将大大降低。但是,由于齿轮将无法保持其准确的渐开线轮廓,因此传动误差将发生变化。

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