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Imperfection-generated vibration and noise in power transmission belt systems.

机译:传动带系统中不完美的振动和噪音。

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摘要

Power transmission belt drives have numerous advantages over such other mechanical components as gear trains, chain drives, and linkages. Key features include simplicity, ease of installation and maintenance, and the capability for absorbing shock. Mechanical imperfections in belt drive systems are unavoidable, just as in other machine components, but they can significantly affect the belt's noise and vibration characteristics, as well as its operational life. Squeal noise, excessive vibration, and fatigue failure problems are generated and/or accelerated by such imperfections. This thesis investigates dynamic effects in power transmission belt drives with a view towards developing design guidelines for improved performance and efficiency, and for understanding the underlying physical phenomena. The following specific issues are addressed and form the primary contributions of this work: (1) The role of pulley eccentricity arising from manufacturing and installation imperfections is examined in the context of the belt's transverse vibration. Laboratory measurements, perturbation analysis, and numerical simulation demonstrate the importance of non-linear jump and hysteresis phenomena in the belt's resonance and near-resonance regions. Non-contact laser interferometry is used to measure the belt's response over a wide range of operating speeds. A convenient "frequency crossing diagram" is introduced to predict resonant operating speeds, it is analogous to the Campbell diagram as used for rotating machinery. A modal perturbation solution is developed through the asymptotic method of Krylov, Bogoliubov, and Mitropolsky for a general continuous, non-autonomous gyroscopic system with weakly non-linear stiffness, and that solution is directly applied to the belt problem at hand. (2) The source of squeal noise that arises when v-belt pulleys are misaligned is examined next using both theoretical and experimental means. A fine time scale "sawtooth" boundary motion is observed at the belt/pulley interface, and this motion is identified to be a key contributor to belt squeal noise. This friction-induced, self-excited, motion also contributes to belt wear. Stick-slip frictional behavior as the belt mates with the pulley is modeled analytically to predict the frequency of squeal, which in turn depends on the belt's initial tension and bending stiffness, friction coefficient, operating speed, pulley radius, and the pulley's wedge angle. A comparison with laboratory measurements shows that the predictions provide a useful predictive tool for characterizing the belt drive's acoustic performance.
机译:传动带传动装置比齿轮传动装置,链传动和连杆机构等其他机械部件具有众多优势。主要功能包括简单,易于安装和维护以及吸收冲击的能力。与其他机器部件一样,皮带驱动系统中的机械缺陷是不可避免的,但是它们会严重影响皮带的噪声和振动特性以及使用寿命。这种瑕疵会产生和/或加速尖叫声,过度振动和疲劳破坏问题。本文研究动力传动带驱动器中的动态影响,以期制定设计指南以提高性能和效率,并了解潜在的物理现象。解决了以下具体问题,并构成了这项工作的主要贡献:(1)在皮带的横向振动的背景下,研究了由于制造和安装缺陷而引起的皮带轮偏心的作用。实验室测量,扰动分析和数值模拟证明了在皮带的共振和近共振区域中非线性跳跃和滞后现象的重要性。非接触式激光干涉仪用于在各种运行速度范围内测量皮带的响应。引入了一个方便的“频率交叉图”来预测谐振运行速度,它类似于用于旋转机械的坎贝尔图。通过Krylov,Bogoliubov和Mitropolsky的渐近方法,针对具有弱非线性刚度的一般连续,非自治陀螺系统,开发了一种模态摄动解,并将该解直接应用于当前的皮带问题。 (2)接下来将使用理论和实验手段来检查当三角皮带轮未对准时产生的尖叫声的来源。在皮带/皮带轮界面上观察到了精细的时标“锯齿”边界运动,并且该运动被认为是皮带尖叫声的关键因素。这种由摩擦引起的自激运动也会导致皮带磨损。对皮带与皮带轮配合时的粘滑摩擦行为进行分析建模,以预测尖叫的频率,而尖叫的频率又取决于皮带的初始张力和弯曲刚度,摩擦系数,工作速度,皮带轮半径以及皮带轮的楔角。与实验室测量结果的比较表明,这些预测为表征皮带传动的声学性能提供了有用的预测工具。

著录项

  • 作者

    Moon, Joonho.;

  • 作者单位

    Carnegie Mellon University.;

  • 授予单位 Carnegie Mellon University.;
  • 学科 Engineering Mechanical.; Engineering Automotive.; Applied Mechanics.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 87 p.
  • 总页数 87
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;自动化技术及设备;应用力学;
  • 关键词

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