Replicating the rolling-sliding dynamics of cam-roller contacts in large-scale hydraulic drivetrains: A small-scale approach

Pedro Amoroso, R. V. van Ostayen, M. D. de Rooij
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Abstract

The rolling-sliding dynamics of large-scale cam-roller contacts are strongly influenced by the inertia of the roller, particularly when slippage occurs. Slippage can potentially impact the reliability of these rolling interfaces. This study introduces an approach to replicate the rolling-sliding dynamics of cam-roller contacts in a large-scale hydraulic drivetrain, on a small scale. For that, we have upgraded our two-roller tribometer to enable cyclic loading, allow the application of resisting torques, and generate inertia torques. These are three essential elements required to mimic the dynamics observed at large scales. A method has been proposed for scaling the roller inertia accordingly. Furthermore, we have implemented a modeling framework from previous work to make predictions under various dynamic conditions. The results show that our small-scale approach can replicate five key characteristics anticipated at a large scale, including those linked to slippage. Small increments in the resisting torque significantly increased the slide-to-roll ratio (SRR) and peak traction force, among others. The simulations also predicted these effects, capturing trends and producing reasonable predictions of the magnitude and relevant features of key parameters. The use of cyclic loading, extra inertia, and adjustable resisting torques, effectively generated repeatable and controllable dynamic rolling-sliding conditions. Our work is significant for the design and development of novel large-scale hydraulic drivetrains. Our findings highlight the importance of reducing slippage at low contact forces to prevent the brusque change in the rolling conditions during the high contact force phase. By doing so, surface damage and detrimental dynamic effects can be prevented.
复制大型液压传动系统中凸轮-滚子接触的滚动-滑动动力学:小规模方法
大型凸轮-滚子接触的滚动-滑动动力学受滚子惯性的影响很大,尤其是发生滑动时。滑动可能会影响这些滚动界面的可靠性。本研究介绍了一种在小规模上复制大型液压传动系统中凸轮-滚子接触的滚动-滑动动力学的方法。为此,我们对双滚子摩擦仪进行了升级,以实现循环加载、施加阻力矩和产生惯性力矩。这是模拟大尺度动态所需的三个基本要素。我们提出了一种方法来相应地调整滚筒惯性。此外,我们还采用了以前工作中的建模框架,在各种动态条件下进行预测。结果表明,我们的小规模方法可以复制大规模情况下的五个关键特征,包括与打滑相关的特征。阻力扭矩的微小增量显著提高了滑滚比(SRR)和峰值牵引力等。模拟还对这些影响进行了预测,捕捉到了趋势,并对关键参数的大小和相关特征进行了合理预测。循环加载、额外惯性和可调阻力矩的使用,有效地生成了可重复、可控制的动态滚动滑动条件。我们的工作对新型大型液压传动系统的设计和开发具有重要意义。我们的研究结果强调了减少低接触力时的滑动以防止高接触力阶段滚动条件发生急剧变化的重要性。这样做可以防止表面损坏和有害的动态效应。
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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