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Nonlinear finite element modeling and incremental analysis of a composite truck tire structure.

机译:复合卡车轮胎结构的非线性有限元建模和增量分析。

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摘要

The performance of a road vehicle is directly related to the static and dynamic properties of tires, which provide support and control for vehicles and which must possess good durability under various tire-road interactions and loading conditions. The tire characteristics are inherently dependent on various structural and geometric parameters, the material properties of the individual layers of a tire and the loading conditions. In view of the simulation and analysis of tire response, in terms of deformation and stress fields, and vibration properties, extensive analytical studies had been conducted in the past based on the linear analysis of the multi-layered tire structure, assuming negligible shear interactions between the layers. In this dissertation, a nonlinear finite element model of a radial truck tire is developed based on its composite structural elements to analyze the various stress fields, with focus on the inter-ply shear stresses between the belt and carcass layers as functions of normal loads and inflation pressures. The model is validated through a comparison of the normal force-deflection characteristics and the contact patch geometry derived from the model with the laboratory-measured data in a qualitative sense. The tire model is used to conduct a parametric study on the shear interactions in the multiple layers under a wide range of loading conditions, to derive a more desirable set of structural parameters that can lead to lower values of maximum shear stresses within the loaded multi-layered tire structure. A polynomial function has been derived to estimate the two-dimensional tire-road contact pressure distribution as a function of the inflation pressure and the normal load. The tire model is further used to study the free-vibration behavior of the inflated tire structure. The influences of the individual structural parameters on the load and pressure-dependent natural frequencies of a radial truck tire are also investigated. The results show that the proposed finite element tire model based on adequately measured geometric and material properties of a tire structure can yield considerable benefits in the tire design and heavy vehicle performance.
机译:道路车辆的性能与轮胎的静态和动态特性直接相关,轮胎为车辆提供支撑和控制,并且在各种轮胎-道路相互作用和负载条件下必须具有良好的耐久性。轮胎特性固有地取决于各种结构和几何参数,轮胎各层的材料特性以及负载条件。考虑到轮胎响应的仿真和分析,在变形和应力场以及振动特性方面,过去在多层轮胎结构的线性分析的基础上进行了广泛的分析研究,假设之间的剪切相互作用可忽略不计。层。本文以子午线轮胎的复合结构为基础,建立了子午线轮胎的非线性有限元模型,分析了不同的应力场,重点研究了带束层与胎体层之间的层间剪应力与正向载荷的函数关系。通胀压力。通过比较法向力偏转特性和从模型得出的接触贴片几何形状与实验室测量数据的定性比较来验证模型。轮胎模型用于在宽范围的载荷条件下对多层中的剪力相互作用进行参数研究,以得出更理想的结构参数集,这些参数可以导致在加载的多胎层中最大剪应力的值较低。分层轮胎结构。已经导出了多项式函数,以估计二维轮胎-道路接触压力分布与充气压力和法向载荷的关系。轮胎模型进一步用于研究充气轮胎结构的自由振动行为。还研究了单个结构参数对子午线卡车轮胎的载荷和压力相关固有频率的影响。结果表明,基于充分测量的轮胎结构的几何和材料特性而提出的有限元轮胎模型可以在轮胎设计和重型车辆性能方面产生可观的收益。

著录项

  • 作者

    Zhang, Xiong.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Engineering Automotive.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 253 p.
  • 总页数 253
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自动化技术及设备;机械、仪表工业;
  • 关键词

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