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Experimental observations of tyre deformation characteristics on heavy mining vehicles under static and quasi-static loading

机译:静态和准静态载荷下重型矿车轮胎变形特性的实验观察

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摘要

Due to large sidewall and bead thicknesses, multi-piece rims are necessary for use with large off-the-road (OTR) tyres. This paper presents the testing protocol and observed load/deflection and vertical/sidewall deflection characteristics of three Goodyear OTR tyre assemblies, namely, (1) a radial 29.5R29 (2) a bias-ply 29.5-29, and (3) a bias-ply 26.5-26. Localized tyre deformations and rim displacements were measured using optical displacement transducers and post-processing high-speed camera images using digital image analysis software. A validation analysis illustrated a maximum difference of 4.05% of vertical wheel displacements between the aforementioned methods. Quasi-static tests show the maximum values of vertical rim displacement and lateral tyre deflection are in the range of 72.2-78.9 mm and 23.3-27.1 mm, respectively, for a severe excitation condition. Differences ranging from 0.2% to 21.5% for maximum vertical and lateral tyre deflections were found between static load tests and engineering data provided by the tyre manufacturer. Linear relationships were observed for both vertical wheel displacement and lateral tyre deflection versus load for all tests. This study demonstrates a thorough methodology to study deflection characteristics of heavy duty OTR tyres and the collected data could be very useful in the development of numerical models of wheel and tyre assemblies for mining vehicles.
机译:由于侧壁和胎圈的厚度较大,因此与大型越野(OTR)轮胎一起使用时,必须使用多片轮辋。本文介绍了三个固特异OTR轮胎组件的测试协议以及观察到的载荷/挠度和垂直/侧壁挠度特性,即(1)子午线29.5R29(2)斜交帘布层29.5-29,以及(3)斜交-层26.5-26。使用光学位移传感器测量轮胎局部变形和轮辋位移,并使用数字图像分析软件对高速相机图像进行后处理。验证分析表明,上述方法之间最大垂直车轮位移差异为4.05%。准静态测试显示,在严重的激励条件下,垂直轮辋位移和轮胎侧向挠度的最大值分别在72.2-78.9 mm和23.3-27.1 mm范围内。在静态载荷测试和轮胎制造商提供的工程数据之间,最大垂直和横向轮胎挠度差异在0.2%到21.5%之间。在所有测试中,均观察到垂直车轮位移和轮胎横向偏斜与负载的线性关系。这项研究证明了研究重型OTR轮胎挠曲特性的彻底方法,并且所收集的数据对于开发矿用车辆的车轮和轮胎组件的数值模型可能非常有用。

著录项

  • 来源
    《Journal of terramechanics》 |2012年第4期|p.215-231|共17页
  • 作者单位

    Department of Mechanical, Automotive and Materials Engineering, University of Windsor, 401 Sunset Avenue, Windsor, Ontario, Canada N9B 3P4;

    Department of Mechanical, Automotive and Materials Engineering, University of Windsor, 401 Sunset Avenue, Windsor, Ontario, Canada N9B 3P4;

    Department of Mechanical, Automotive and Materials Engineering, University of Windsor, 401 Sunset Avenue, Windsor, Ontario, Canada N9B 3P4;

    Department of Mechanical, Automotive and Materials Engineering, University of Windsor, 401 Sunset Avenue, Windsor, Ontario, Canada N9B 3P4;

    Workplace Safety North, P.O. Box 2050 Stn. Main, 690 McKeown Avenue, North Bay, Ontario, Canada P1B 9P1;

    Department of Mechanical, Automotive and Materials Engineering, University of Windsor, 401 Sunset Avenue, Windsor, Ontario, Canada N9B 3P4;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    heavy mining vehicle; experimental tyre deformation; off-the-road tyre; static tyre loading; quasi-static tyre excitation;

    机译:重型采矿车实验轮胎变形;越野轮胎;轮胎静态负载;准静态轮胎激励;

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