具有移动接触几何形状的滚动对:设计、开发和验证

Pedro Amoroso, R. V. van Ostayen, M. D. de Rooij
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引用次数: 0

摘要

这项工作引入了两个创新的滚动副概念,以最大限度地减少大型液压传动系统中凸轮滚子系统的滑动和质量:可变接触长度和移动接触几何概念。这两个概念都旨在改善周期性负载滚动接触中低接触力阶段的牵引力。我们使用三种定制滚动触头验证了移动触头几何概念:直线触头、双椭圆触头和两者的组合(即移动触头几何)。测试在同步循环加载下进行,以模拟液压传动系统中的条件。此外,还采用了以前工作中的模型进行预测,并与实验结果进行比较。在初步测试中,由于接触压力更大,在相同载荷下,双椭圆接触比直线接触显示出更优越的牵引性能。在同步循环加载下,线接触件在接触力较低时对施加的阻力矩具有较高的敏感性,从而导致较高的滑滚比和牵引力峰值。与此相反,具有移动接触几何形状的滚动对即使在高阻力矩下也能表现出最小的滑动,从而大大降低(在大多数情况下可以忽略不计)滑辊比和牵引力峰值。模拟也捕捉到了这种行为,证明了该模型在预测和比较这两种不同滚动对的滚动-滑动动力学方面的有效性。这项研究表明,具有移动接触几何形状的滚动对不仅能改善大型液压传动系统中凸轮-滚子接触的摩擦学性能,还能产生更有利的动态行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rolling pairs with shifting contact geometry: Design, development, and validation
This work introduces two innovative rolling pair concepts to minimize slippage and reduce mass in cam-roller systems of large-scale hydraulic drivetrains: The variable contact length and the Shifting Contact Geometry concepts. Both aim to improve traction in the low contact force phase in cyclically loaded rolling contacts. The shifting contact geometry concept was validated using three custom rolling contacts: a line contact, a double elliptical contact, and a combination of both (i.e., shifting contact geometry). The tests were conducted under synchronized cyclic loading to mimic the conditions in a hydraulic drivetrain. Furthermore, a model from previous work was implemented to make predictions and compare them against the experimental results. During preliminary tests, the double elliptical contact displayed superior tractive behavior than the line contact under the same load thanks to higher contact pressures. Under synchronized cyclic loading, the line contact displayed high sensitivity to applied resisting torques at low contact forces, leading to high slide-to-roll ratios and traction force peaks. In contrast, the rolling pair with shifting contact geometry exhibited minimum slippage even under high resisting torques, resulting in substantially lower (and in most cases negligible) slide-to-roll ratio and traction force peaks. The simulations also captured this behavior, proving the validity of the model for predicting and comparing the rolling-sliding dynamics of these two different rolling pairs. This study demonstrates that rolling pairs with shifting contact geometry can not only improve the tribological performance of cam-roller contacts in large-scale hydraulic drivetrains but also yield a more favorable dynamic behavior.
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