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Study on tire-ice traction using a combined neural network and secondary development finite element modelingmethod

机译:使用组合神经网络和二次开发有限元模型研究轮胎 - 冰牵引

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Research on tire-ice traction theory is still in the basic stage, and there are large differencesbetween the current theoretical calculation and engineering practice. Because testing of pneumatictire performance on icy road is very expensive, and testing conditions are complex andvariable, testing does not have higher repeatability. In this paper, a tire-ice tractionmodel is establishedbased on a neural network and the finite-element method. Through themodel calculations,the traction characteristics of tires on ice can be well-simulated. The method of combining theLevenberg-Marquardt (LM) optimizing algorithm with the neural network is used to predict thefriction between tires and ice. The attributive characteristics of tires based on testing results arethen measured.Anonlinear finite-elementmodel of a 37×12.5R16.5 tire is established by adoptingtheYeoh model of rubber and researching existing tire-ice driving tractionmodels. This tire-icefinite-element model can predict the changes of drawbar pull and torque when driving on icyroads, and two different tire working conditions, ie, straight line and turning, are taken into considerationsimultaneously. The influence of slip ratio, speed, load on drawbar pull, and torque arealso explored.
机译:轮胎牵引理论研究仍处于基本阶段,差异很大在当前的理论计算与工程实践之间。因为对气动的测试轮胎性能在冰冷的道路上非常昂贵,并且测试条件很复杂变量,测试没有更高的重复性。在本文中,建立了轮胎冰牵引模型基于神经网络和有限元方法。通过主题计算,可以粗略地模拟冰上轮胎的牵引特性。结合的方法Levenberg-Marquardt(LM)使用神经网络优化算法用于预测轮胎和冰之间的摩擦。基于测试结果的轮胎的属性特征是然后测量。通过采用建立37×12.5R16.5轮胎的anononlinear的有限元模型橡胶的唯一模型,研究现有轮胎驾驶牵引力。这个轮胎冰有限元模型可以预测冰冷驾驶时拉杆拉和扭矩的变化道路和两个不同的轮胎工作条件,即直线和转动,都考虑到同时地。滑动比率,速度,牵引杆拉动和扭矩的影响也探索。

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