Wheel Speed Effect on Transient Lateral Force and Its Characterization by Ramp-Step Steer Test Method

IF 0.9 Q4 ENGINEERING, MECHANICAL Tire Science and Technology Pub Date : 2021-08-18 DOI:10.2346/tire.21.20026
Y. Li
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Abstract

The concept “relaxation length” serves as one of several ways to characterize the transient lateral response for a rolling tire. Most test methods developed to identify relaxation length tightly link to Pacejka's single-contact-point linear transient model. Its underlying assumption is that the traveled distance during the transition interval is always a constant regardless of the wheels' linear rolling speed. The current research provides physical data against this strong assumption. The data is acquired through a newly-developed test method named the “ramp-step steer method”. The ramp-step steer method features a nonstop, high rolling speed, and fast-changing slip angle procedure that cannot be fulfilled by the conventional “start-stop-resume” step steer method. Thanks to the high dynamic capability of the equipment in GCAPS Corp., the proposed test method becomes feasible. A novel data postprocessing scheme accompanies the test method as well. The ramp-step steer method is independent of any specific models and replicates the scenario of a rolling tire subjected to a sudden slip angle change from on-vehicle to an indoor environment. The wheel speed effect on the tires' transient lateral response is reflected through a proposed quantity, Ly, which is a more general descriptor and can downscale to relaxation length under specific circumstances. Ly itself does not associate with any model, so the remaining study explains the speed effect through an updated model. The present research aims to provide a better way of characterizing tires' lateral transient behavior and is not an alternative to identify the key parameter “relaxation length” in Pacejka's model. Another contribution of the research is categorizing and separating the hierarchy of various transient tire models.
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车轮转速对瞬态侧向力的影响及其斜阶转向试验方法表征
“松弛长度”的概念是描述滚动轮胎瞬态横向响应的几种方法之一。大多数用于确定松弛长度的测试方法都与Pacejka的单接触点线性瞬态模型紧密相关。它的基本假设是,无论车轮的线性滚动速度如何,在过渡区间内行驶的距离始终是一个常数。目前的研究提供了物理数据来反驳这种强烈的假设。数据是通过一种新开发的测试方法获得的,称为“斜坡-阶梯转向法”。斜坡-阶梯转向方法具有不间断、高滚动速度和快速变化的滑移角过程,这是传统的“启停-恢复”阶梯转向方法无法实现的。由于GCAPS公司的设备具有较高的动态性能,因此所提出的测试方法是可行的。该测试方法还附带了一种新的数据后处理方案。坡道-阶梯转向方法独立于任何特定模型,并复制了轮胎在车内和室内环境中突然发生滑移角变化的滚动场景。车轮速度对轮胎瞬态横向响应的影响通过提出的量Ly来反映,这是一个更一般的描述符,在特定情况下可以缩小到松弛长度。Ly本身与任何模型都没有关联,所以剩下的研究通过一个更新的模型来解释速度效应。本研究旨在提供一种更好的表征轮胎横向瞬态行为的方法,而不是替代Pacejka模型中关键参数“松弛长度”的识别。该研究的另一个贡献是对各种瞬态轮胎模型的层次进行分类和分离。
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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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