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A numerical approach towards understanding the mechanism of fatigue wear in tread vulcanizates during rolling of tires.

机译:一种了解轮胎滚动过程中胎面硫化胶疲劳磨损机理的数值方法。

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摘要

Analysis of surface fracture and progress of fatigue wear on the surface of tire tread under road asperity loading is the main objective of this study. Starting with an idealized smooth surface of having precursor flaws, a simple mechanism for formation of wear debris and development of surface patterns is proposed. In this mechanism, step-wise propagation of these micro-flaws under periodic loading by asperities of the road is simulated using Moving Template Finite Element Analysis (MTFEA) in linear geometry and further analyzed using ABAQUS software in non-linear geometry.; It is attempted to extend this analysis to heterogeneous rubber compounds where dispersed particles may affect propagation of surface cracks. Mechanical characterization of all existing phases i.e. rubber matrix, filler reinforcing units, and dispersed rubber particles (minor phase in blends) under similar conditions as asperity loading is performed by experimental/numerical methods prior to any stress analysis of such systems. Also, some features of carbon black reinforcement such as stress/strain amplifications in the rubber phase and distribution of stress/strain in constituents of the compound are predicted by combining FEA with experimental observations.; Applying mechanical properties of all phases in local FEA models, interactions between ongoing crack tips and dispersed particles are analyzed. Some mechanical mechanisms by which filler reinforcing units and dispersed rubber particles retard propagation of cracks and possibly improving wear resistance are hypothesized.
机译:本研究的主要目的是分析路面粗糙载荷下轮胎胎面表面的断裂和疲劳磨损的进展。从具有前体缺陷的理想的光滑表面开始,提出了一种形成磨损碎片和形成表面图案的简单机制。在这种机制下,使用线性几何中的移动模板有限元分析(MTFEA)模拟了在周期性荷载作用下这些微瑕疵在道路凹凸下的逐步传播,并使用ABAQUS软件对非线性几何进行了进一步分析。试图将这种分析扩展到异质橡胶混合物中,其中分散的颗粒可能会影响表面裂纹的传播。在进行此类系统的任何应力分析之前,通过实验/数值方法对所有现有相(即橡胶基体,填料增强单元和分散的橡胶颗粒(共混物中的次相))在类似于粗糙载荷的条件下进行机械表征。同样,通过将FEA与实验观察相结合,可以预测炭黑增强的一些特征,例如橡胶相中的应力/应变放大以及化合物成分中的应力/应变分布。应用局部有限元分析模型中所有相的力学性能,分析了进行中的裂纹尖端和分散颗粒之间的相互作用。假设了一些机械机制,通过这些机械机制,填料补强单元和分散的橡胶颗粒可以阻止裂纹扩展并可能改善耐磨性。

著录项

  • 作者

    Razzaghi-Kashani, Mehdi.;

  • 作者单位

    The University of Akron.;

  • 授予单位 The University of Akron.;
  • 学科 Engineering Materials Science.; Applied Mechanics.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 230 p.
  • 总页数 230
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;应用力学;
  • 关键词

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