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CAPTURING PLANAR TIRE PROPERTIES USING STATIC CONSTRAINT MODES

机译:使用静态约束模式捕获平面轮胎属性

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The interaction between the tire and road has long been of interest for vehicle dynamic simulation. A planar tire model is developed to capture the tire circumferential displacements and calculate the spindle force according to the tire shape. The tire is discretized into segments and Hamilton's principle is used to derive the model mathematical expression. It is shown that the static constraint modes are functions of two non-dimensional parameters; a third parameter defines the overall stiffness. These parameters are experimentally identified for a specific tire. The bridging and enveloping properties are examined circumferentially. The prediction accuracy of spindle force with respect to tire-road interference is evaluated by comparing the simulation and experimental response for a quasi-static cleat test. The simulation result of spindle force agrees with the experimental data and the process can be implemented as a morphological pre-filter of road profiles for more efficient vehicle modeling and simulation.
机译:轮胎和道路之间的相互作用长期以来对车辆动态模拟感兴趣。开发平面轮胎模型以捕获轮胎周向位移并根据轮胎形状计算主轴力。轮胎被离散地分为段,并且汉密尔顿的原则用于推导模型数学表达。结果表明,静态约束模式是两个非维度参数的功能;第三个参数定义了整体刚度。这些参数是针对特定轮胎实验识别的。桥接和包络特性是圆周的检查。通过比较准静态夹板试验的模拟和实验响应来评估相对于轮胎干扰的主轴力的预测精度。主轴力的仿真结果与实验数据同意,该过程可以实现为道路型材的形态预过滤器,以实现更有效的车辆建模和仿真。

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