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3D Digital Imaging Correlation: Applications to Tire Testing

机译:3D数字成像相关性:在轮胎测试中的应用

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摘要

Three-dimensional digital imaging correlation (DIC) techniques are a viable method for measuring surface displacements and strains on tires. DIC provides the capability to measure the full-field noncontact tire surface deformation and strain state, which supports multiple objectives: validation of tire models based on finite element (FE) predictions, setting targets for improving FE predictions and providing insight into the tire deformation state under static and dynamic conditions. A method for verifying the accuracy of the DIC measurement process is presented whereby a thin, rectangular test sample of rubber material is subjected to a combination of strains and rigid body motions of known amounts. Once the measurement technique is proven accurate with a simple specimen, the focus shifts to the objectives explained above. Tire surface strains will be discussed for purposes of validating model predictions of sidewall and belt edge strains. Several types of specimen geometries will be reviewed and their effect on material properties will be presented. Also, the DIC technique can provide insight into complex physical problems that may otherwise be very difficult to measure. Some examples presented here include tire sidewall standing waves at high speeds and strains near tread lugs of agricultural tires, The DIC measurement method is an accurate, noncontacting full field technique for measuring in-plane surface displacements and strains of the magnitudes encountered in tire analysis. This technique serves many functions and has become a valuable tool for both tire testing and development.
机译:三维数字成像相关技术(DIC)是一种用于测量轮胎表面位移和应变的可行方法。 DIC提供了测量全场非接触轮胎表面变形和应变状态的能力,它支持多个目标:基于有限元(FE)预测验证轮胎模型,设置目标以改善FE预测并深入了解轮胎变形状态在静态和动态条件下。提出了一种用于验证DIC测量过程的准确性的方法,在该方法中,将矩形橡胶材料薄试样经受已知量的应变和刚体运动的组合。一旦使用简单的样本证明了测量技术的准确性,重点便转移到上述目标上。为了验证胎侧和带束边缘应变的模型预测,将讨论轮胎表面应变。将审查几种类型的样品几何形状,并将介绍它们对材料性能的影响。同样,DIC技术可以洞悉可能很难衡量的复杂物理问题。此处提供的一些示例包括高速轮胎侧壁驻波和农用轮胎胎面凸耳附近的应变。DIC测量方法是一种精确的非接触式全场技术,用于测量轮胎分析中遇到的平面内表面位移和应变。该技术具有许多功能,并且已成为轮胎测试和开发的宝贵工具。

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