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Finite element modeling of interfacial forces and contact stresses of pneumatic tire on fresh snow for combined longitudinal and lateral slips

机译:纵向和侧滑组合的新鲜雪上充气轮胎的界面力和接触应力的有限元建模

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Significant challenges exist in the prediction of interaction forces generated from the interface between pneumatic tires and snow-covered terrains due to the highly non-linear nature of the properties of flexible tires, deformable snow cover and the contact mechanics at the interface of tire and snow. Operational conditions of tire-snow interaction are affected by many factors, especially interfacial slips, including longitudinal slip during braking or driving, lateral slip (slip angle) due to turning, and combined slip (longitudinal and lateral slips) due to brake-and-turn and drive-and-turn maneuvers, normal load applied on the wheel, friction coefficient at the interface and snow depth. This paper presents comprehensive three-dimensional finite element simulations of tire-snow interaction for low-strength snow under the full-range of controlled longitudinal and lateral slips for three vertical loads to gain significant mechanistic insight. The pneumatic tire was modeled using elastic, viscoelastic and hyperelastic material models; the snow was modeled using the modified Drucker-Prager Cap material model (MDPC). The traction, motion resistance, drawbar pull, tire sinkage, tire deflection, snow density, contact pressure and contact shear stresses were obtained as a function of longitudinal slip and lateral slip. Wheel states - braked, towed, driven, self-propelled, and driving - have been identified and serve as key classifiers of discernable patterns in tire-snow interaction such as zones of contact shear stresses. The predicted results can be applied to analytical deterministic and stochastic modeling of tire-snow interaction.
机译:由于柔性轮胎的特性,变形的积雪以及轮胎与雪的交界处的接触力学具有高度的非线性特性,因此在预测由充气轮胎与积雪的地形之间的交界处产生的相互作用力时,存在重大挑战。 。轮胎与雪地相互作用的运行条件受许多因素影响,尤其是界面滑移,包括制动或行驶过程中的纵向滑移,转向引起的侧滑(滑移角)以及制动和滑行引起的组合滑移(纵向和横向滑移)转弯和行驶转弯操纵,施加在车轮上的法向载荷,界面处的摩擦系数和雪深。本文介绍了在三个垂直载荷的可控制纵向和横向滑动全范围下,低强度雪轮胎-雪地相互作用的三维三维有限元模拟,从而获得了重要的力学信息。使用弹性,粘弹性和超弹性材料模型对充气轮胎进行建模​​。使用改良的Drucker-Prager Cap材料模型(MDPC)对雪进行建模。牵引力,运动阻力,牵引杆拉力,轮胎沉降,轮胎挠度,雪密度,接触压力和接触剪切应力是纵向滑动和横向滑动的函数。车轮状态-制动,牵引,驱动,自推进和驱动-已被识别,并作为轮胎-雪地相互作用(例如接触剪切应力区域)中可识别模式的关键分类器。预测结果可以应用于轮胎-雪地相互作用的分析确定性和随机建模。

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