Evaluation of vehicle platooning aerodynamics using bluff body wake generators and CFD

H. Ebrahim, R. Dominy, P. S. Leung
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引用次数: 6

Abstract

Recent developments in sensing and communications between vehicles (V2V) and their surroundings have provided the technology to allow cars to operate autonomously or semi-autonomously in closely spaced `platoon' formation without the risk of collision. This is known to reduce the aerodynamic drag and thus consequently limits the energy consumption and associated emissions. Although wind tunnel investigations have been performed to mimic platoon operations, most experimental evaluations of multiple vehicles in platoon are severely compromised by the restricted length of the wind tunnel test section. Therefore, the model scale must be reduced which decreases the measurement accuracy. The innovative solution presented here is to reproduce the flow structure that is created by a leading road car through the use of a `bluff-body wake generator' with a much reduced length which eliminates the need to decrease the scale of the following test model. Validated computational fluid dynamics (CFD) data and analysis are presented to evaluate an optimized design of a wake generator based on the Ahmed model [1] and the effect of inter-vehicle spacing on the aerodynamic characteristics of the following vehicle. It is shown that accurate reproduction of the wake is possible at half the characteristic length, thus correctly determining the flow impact on the downstream model. This demonstrates that the bluff body wake generator provides a reliable approach that allows platooning studies to be performed without sacrificing aerodynamic resolution.
基于钝体尾流发生器和CFD的车辆队列空气动力学评价
车辆与周围环境之间的传感和通信(V2V)的最新发展提供了技术,使汽车能够在紧密间隔的“排”队形中自主或半自主地运行,而不会有碰撞的风险。这是已知的减少空气动力学阻力,从而限制了能源消耗和相关的排放。虽然已经进行了风洞调查来模拟排操作,但大多数排中多车辆的实验评估受到风洞测试段长度的限制而受到严重影响。因此,必须减小模型尺度,从而降低测量精度。这里提出的创新解决方案是通过使用“崖体尾迹发生器”来重现由领先的公路汽车创造的流动结构,其长度大大减少,从而消除了减少后续测试模型规模的需要。利用经过验证的计算流体动力学(CFD)数据和分析,评估了基于Ahmed模型[1]的尾流发生器优化设计,以及车间距对后续车辆气动特性的影响。结果表明,在特征长度的一半处可以精确地再现尾迹,从而正确地确定流动对下游模型的影响。这表明,钝体尾流发生器提供了一种可靠的方法,可以在不牺牲空气动力学分辨率的情况下进行队列研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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