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Effect of geometric, material and operational parameters on the steady-state belt response for flat belt-drives.

机译:几何,材料和操作参数对平皮带驱动器稳态皮带响应的影响。

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摘要

This thesis presents a comprehensive study of the effects of material, geometric and operational parameters on flat belt-drives steady-state belt stresses, belt slip, and belt-drive efficiency. The belt stresses include: belt rubber shear, normal, axial and lateral stresses; reinforcements tension force; and tangential and normal belt-pulley contact stresses. Belt slip is measured using the driven over driver pulleys' angular velocity ratio. Each parameter was varied over a range to understand its impact on the steady-state belt-drive response. The material parameters studied are belt axial stiffness and damping, belt bending stiffness and damping, and belt-pulley friction coefficient. The geometric parameters studied are pulley center distance, pulleys diameter ratio, and belt thickness. The operational parameters studied are the driver pulley angular velocity and the driven pulley opposing torque (load).;A high-fidelity flexible multibody dynamics parametric model of a two-pulley belt-drive system was created using a commercial multibody dynamics code. In the model the belt's rubber matrix is represented using three-dimensional brick elements and the belt's reinforcements are represented using one dimensional beam elements at the top surface of the belt. An asperity-based Coulomb friction model is used for the friction forces between the pulley and belt. The pulleys are modeled as rigid bodies with a cylindrical contact surface. The equations of motion are integrated using an explicit solution procedure.;Unlike prior models which use one-dimensional truss or beam elements for the belt, the present model uses a three-dimensional belt model which introduces the effect of the thickness of the belt rubber matrix (modeled using brick elements). This enables a more accurate prediction of the belt stresses and slip than prior models. This thesis resolves in more details the complex stick-slip friction behavior of an axially flexible belt coupled with the shear effects of a flexible rubber cushion and at the same time shows the effect of the main system parameters on this stick-slip behavior. Some of the important conclusions of the thesis include: (1) the driver pulley has two distinct contact zones - a negative traction zone and a positive traction zone - while only one traction zone is present over the driven pulley; (2) the width of the negative traction zone on the driver pulley increases with the belt-pulley coefficient of friction and decreases with the belt axial stiffness; (3) the maximum belt tension and normal contact stress occur on the driver pulley and increase with the belt thickness, belt axial stiffness, and coefficient of friction; (4) belt-drive energy efficiency increases with the belt axial stiffness, and decreases with belt thickness, belt bending damping, belt operating speed, and operating torque load. The belt-drive modeling methodology presented in this thesis which enables accurate prediction of the belt stresses and slip can in turn be used to more accurately predict the fatigue life, wear life, and energy efficiency of belt-drives.
机译:本文对材料,几何和运行参数对扁平皮带传动稳态皮带应力,皮带打滑和皮带传动效率的影响进行了全面的研究。带应力包括:带橡胶剪切,法向,轴向和侧向应力;钢筋张力切向和法向皮带轮接触应力。皮带打滑是通过从动皮带轮的角速度比测量的。每个参数都在一定范围内变化,以了解其对稳态皮带驱动响应的影响。研究的材料参数是皮带轴向刚度和阻尼,皮带弯曲刚度和阻尼以及皮带轮摩擦系数。研究的几何参数是皮带轮中心距,皮带轮直径比和皮带厚度。研究的操作参数是驱动轮皮带轮的角速度和从动皮带轮的反向扭矩(负载)。;使用商业化的多体动力学代码创建了两轮皮带传动系统的高保真柔性多体动力学参数模型。在该模型中,皮带的橡胶矩阵使用三维砖元素表示,皮带的增强件使用一维梁元素表示在皮带的顶部表面。基于粗糙的库仑摩擦模型用于皮带轮和皮带之间的摩擦力。皮带轮被建模为具有圆柱形接触面的刚体。运动方程式是通过显式求解程序进行积分的。与以前的使用一维桁架或梁单元作为皮带的模型不同,本模型使用三维皮带模型,该模型引入了皮带橡胶厚度的影响矩阵(使用砖块元素建模)。与以前的模型相比,这可以更准确地预测皮带应力和打滑。本文更详细地解决了轴向柔性皮带的复杂粘滑摩擦行为以及柔性橡胶垫的剪切作用,同时显示了主要系统参数对该粘滑行为的影响。论文的一些重要结论包括:(1)驱动皮带轮有两个不同的接触区-负牵引区和正牵引区-而从动皮带轮上只有一个牵引区; (2)驱动皮带轮上负向牵引区的宽度随皮带轮的摩擦系数而增加,随皮带轴向刚度而减小; (3)最大皮带张力和法向接触应力发生在驱动皮带轮上,并随皮带厚度,皮带轴向刚度和摩擦系数而增加; (4)皮带传动的能效随皮带轴向刚度而增加,随皮带厚度,皮带弯曲阻尼,皮带运行速度和运行扭矩负荷而降低。本文提出的皮带传动建模方法可以准确预测皮带应力和打滑,进而可以用来更准确地预测皮带传动的疲劳寿命,磨损寿命和能效。

著录项

  • 作者

    Yildiz, Cagkan.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Mechanical engineering.;Automotive engineering.;Computer engineering.
  • 学位 M.S.
  • 年度 2015
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:44

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