Virtual Generation of Flexible Ring Tire Models Using Finite Element Analysis: Application to Dynamic Cleat Simulations

IF 0.9 Q4 ENGINEERING, MECHANICAL
Y. Siramdasu, Kejing Li, R. Wheeler
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引用次数: 0

Abstract

The main goal of this work is to investigate if finite element (FE) model techniques with special applications of material properties accurately estimate the parameters of flexible ring tire models. It is known that commercially available ring tire models are used as standard tools for simulating and predicting vehicle ride and durability, e.g., rigid ring MF-Swift [1] and flexible ring Flexible Structure Tire Model (FTire) [2–5]. Despite wide acceptance of these models, difficulty in model parameterization limits their application in the vehicle development process. For estimation of tire dynamic stiffnesses and inertial properties, rolling tire cleat test data are required for most ring models. Although this test method produces reliable models, the parameterization is not time and cost effective as it requires measurement and processing of cleat data at multiple speeds and loads and is prone to test rig dynamic compliance variations. This approach also limits the ability to evaluate tire performances during the virtual stages of tire design. The objective of this work is to develop virtual data using time and cost effective FE-based methods towards the estimation of flexible ring model parameters rather than relying on measured cleat data on physical tires. Commercial product ABAQUS is used for the FE simulations and FTire for tire flexible ring model simulations. Two FE modeling techniques are utilized in this work. Firstly, it is shown that the dynamic stiffness of a rolling tire can be estimated from a steady state eigensolution modal analysis of a static tire using material properties characterized for a rolling tire. Secondly, a method of separation of the sidewall from the tread band is developed for the estimation of mass and bending properties of the tread band. The estimated stiffnesses, inertias, and dimensions from the FE model results are converted into FTire model parameters. Finally, to validate the virtually generated FTire model, simulated dynamic cleat data response trends at multiple inflation pressures and velocities are compared with measurements. The virtual FE based techniques presented in this work can be applied to other ring based models as well.
基于有限元分析的柔性环形轮胎模型的虚拟生成:在动态劈裂仿真中的应用
这项工作的主要目标是研究具有材料特性特殊应用的有限元(FE)模型技术是否能够准确估计柔性环形轮胎模型的参数。众所周知,商用环形轮胎模型被用作模拟和预测车辆行驶和耐久性的标准工具,例如刚性环MF Swift[1]和柔性环柔性结构轮胎模型(FTire)[2-5]。尽管这些模型被广泛接受,但模型参数化的困难限制了它们在车辆开发过程中的应用。为了估计轮胎的动态刚度和惯性特性,大多数环形模型都需要滚动轮胎防滑钉试验数据。尽管这种测试方法产生了可靠的模型,但参数化在时间和成本上都不有效,因为它需要在多种速度和负载下测量和处理防滑钉数据,并且容易出现测试台动态顺应性变化。这种方法还限制了在轮胎设计的虚拟阶段评估轮胎性能的能力。这项工作的目的是使用基于时间和成本效益的有限元方法开发虚拟数据,以估计柔性环模型参数,而不是依赖于物理轮胎上测量的防滑钉数据。商业产品ABAQUS用于有限元模拟,FTire用于轮胎柔性环模型模拟。本文采用了两种有限元建模技术。首先,研究表明,利用滚动轮胎的材料特性,可以从静态轮胎的稳态本征解模态分析中估计滚动轮胎的动态刚度。其次,提出了一种将胎侧与胎面带分离的方法,用于估计胎面带的质量和弯曲性能。将有限元模型结果中估计的刚度、惯性和尺寸转换为FTire模型参数。最后,为了验证虚拟生成的FTire模型,将模拟的动态割理数据在多种充气压力和速度下的响应趋势与测量结果进行了比较。本文提出的基于虚拟有限元的技术也可以应用于其他基于环的模型。
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来源期刊
Tire Science and Technology
Tire Science and Technology ENGINEERING, MECHANICAL-
CiteScore
2.10
自引率
0.00%
发文量
11
期刊介绍: Tire Science and Technology is the world"s leading technical journal dedicated to tires. The Editor publishes original contributions that address the development and application of experimental, analytical, or computational science in which the tire figures prominently. Review papers may also be published. The journal aims to assure its readers authoritative, critically reviewed articles and the authors accessibility of their work in the permanent literature. The journal is published quarterly by the Tire Society, Inc., an Ohio not-for-profit corporation whose objective is to increase and disseminate knowledge of the science and technology of tires.
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