首页> 外文期刊>SAE International Journal of Passenger Cars - Mechanical Systems >Effects of Material Properties on Static Load-Deflection and Vibration of a Non-Pneumatic Tire During High-Speed Rolling
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Effects of Material Properties on Static Load-Deflection and Vibration of a Non-Pneumatic Tire During High-Speed Rolling

机译:材料性能对高速滚动非充气轮胎静载荷-挠度和振动的影响

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摘要

The Michelin Tweel tire structure has recently been developed as an innovative non-pneumatic tire which has potential for improved handling, grip, comfort, low energy loss when impacting obstacles and reduced rolling resistance when compared to a traditional pneumatic tire. One of the potential sources of vibration during rolling of a non-pneumatic tire is the buckling phenomenon and snapping back of the spokes in tension when they enter and exit the contact zone. Another source of noise was hypothesized due to a flower petal ring vibration effect due to discrete spoke interaction with the ring and contact with the ground during rolling as the spokes cycle between tension and compression. Transmission of vibration between the ground force, ring and spokes to the hub was also considered to be a significant contributor to vibration and noise characteristics of the Tweel. Previous work studied spoke vibration, ground vibration and related geometrical factors on a two-dimensional (2D) Tweel model. In the present work, a three-dimensional finite element model of a non-pneumatic tire (Tweel) is considered which uses a hyperelastic Marlow material model for both ring and spokes based on uni-axial test data for Polyurethane (PU). Changes in the shear modulus on vertical stiffness and vibration of spoke and ground force reaction for a non-pneumatic tire during high-speed rolling are studied. A three-dimensional finite element model with hyperelastic Marlow material properties for both ring and spokes based on uni-axial test data for Polyurethane (PU) is used for the numerical experiments. In order to study the effect of changes in shear modulus for the ring and spokes while keeping the ratio of volumetric bulk modulus to shear modulus unchanged, the value of shear modulus is varied from unchanged to plus/minus 25% for the Mooney-Rivlin and Neo-Hookean models obtained from a nonlinear least-squares fit of the uni-axial stress-strain data. For tensile stresses and strains, the Mooney-Rivlin best matches the original Marlow material model, compared to the simpler Neo-Hookean model. However, for large compressive stresses, the Mooney-Rivlin model diverges significantly from the results obtained with Marlow properties. The simple Neo-Hookean model is able to fit the Marlow curve better for compression, but is less accurate in tension. As a result of decreasing shear modulus in the ring of the non-pneumatic tire, the vertical displacement in the static load-deflection curves increases upon loading. The softer Neo-Hookean model resulted in decrease in stiffness when compared to the Mooney-Rivlin and original Marlow model. The effects of material changes on spoke vibration as measured by changes in perpendicular distance and vibration in ground interaction measured by FFT frequency response of vertical reaction force during rolling are also reported. Results show a trend where the vibration decreased when the stiffness of the Mooney Rivlin and the Neo Hookean models was increased from +25% to -25%. Conversely, the vibration increased when the stiffness decreased between the extreme limits. However, in several of the material models for the ring and spokes, the unchanged stiffness gave the lowest vibration amplitude, suggesting that an optimal value is somewhere between the plus/minus 25% stiffness limits.
机译:米其林Tweel轮胎结构最近已发展成为一种创新的非充气轮胎,与传统的充气轮胎相比,它具有改进的抓地力,抓地力,舒适性,撞击障碍物时能量损失低以及滚动阻力降低的潜力。非充气轮胎滚动过程中潜在的振动来源之一是屈曲现象,并且在辐条进入和离开接触区时,辐条会突然张紧。假定了另一个噪声源,这是由于在辐条在张紧和压缩之间循环时,由于辐条与环的离散相互作用以及在滚动过程中与地面的接触而引起的花瓣环振动效应。接地力,环和轮辐之间的振动传递到轮毂也被认为是Tweel振动和噪声特性的重要因素。先前的工作是在二维(2D)Tweel模型上研究轮辐振动,地面振动和相关的几何因素。在当前的工作中,考虑了非充气轮胎(Tweel)的三维有限元模型,该模型基于聚氨酯(PU)的单轴测试数据对环和轮辐均使用了超弹性马洛材料模型。研究了非充气轮胎在高速滚动过程中,剪切模量对垂直刚度,轮辐振动和地面力反作用的变化。基于聚氨酯(PU)单轴测试数据的具有环形和轮辐均具有超弹性马洛材料特性的三维有限元模型用于数值实验。为了研究环和轮辐的剪切模量变化的影响,同时保持体积体积模量与剪切模量之比不变,Mooney-Rivlin的剪切模量值从不变更改为正负25%, Neo-Hookean模型是从单轴应力-应变数据的非线性最小二乘拟合获得的。对于拉应力和应变,与简单的Neo-Hookean模型相比,Mooney-Rivlin最适合原始的Marlow材料模型。但是,对于较大的压应力,Mooney-Rivlin模型与使用Marlow特性获得的结果大不相同。简单的Neo-Hookean模型能够更好地拟合Marlow曲线以进行压缩,但拉伸精度较差。由于减小了非充气轮胎的内圈中的剪切模量,因此静态载荷-挠度曲线中的垂直位移在加载时会增加。与Mooney-Rivlin模型和原始的Marlow模型相比,较软的Neo-Hookean模型导致刚度降低。还报道了材料变化对辐条振动的影响,该变化是通过垂直距离的变化测量的,而在地面相互作用中的振动是通过轧制过程中垂直反作用力的FFT频率响应测量的。结果表明,当Mooney Rivlin和Neo Hookean模型的刚度从+ 25%增加到-25%时,振动会降低。相反,当刚度在极限之间减小时,振动会增加。但是,在一些用于环和轮辐的材料模型中,不变的刚度给出了最低的振动幅度,这表明最佳值介于正负25%的刚度极限之间。

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