应急车辆气动阻力减少

A. Taherkhani, deBoer Gn, P. Gaskell, C. Gilkeson, R. Hewson, A. Keech, H. Thompson, Toropov
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引用次数: 9

摘要

本文首次对应急车辆的空气动力学进行了实验和计算研究,并着重于减少由于在车辆车顶上增加灯条的习惯做法而产生的额外阻力。一系列的风洞实验证明了由光条引起的阻力的显著增加,并表明这些阻力可以通过减少由光条引起的气流分离而最小化。将计算流体力学(CFD)与实验设计和元建模方法相结合,研究了灯杆气动设计中可能存在的简单改进方法。基于翼型的车顶设计概念可将整体气动阻力降低20%,对其对整体油耗影响的分析表明,它为提高燃油经济性和减少应急车辆的排放提供了重要机会。这些好处现在正在英国的救护车服务中实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aerodynamic Drag Reduction of Emergency Response Vehicles
This paper presents the first experimental and computational investigation into the aerodynamics of emergency response vehicles and focuses on reducing the additional drag that results from the customary practice of adding light-bars onto the vehicles’ roofs. A series of wind tunnel experiments demonstrate the significant increase in drag that results from the light bars and show these can be minimized by reducing the flow separation caused by them. Simple potential improvements in the aerodynamic design of the light bars are investigated by combining Computational Fluid Dynamics (CFD) with Design of Experiments and metamodelling methods. An aerofoil-based roof design concept is shown to reduce the overall aerodynamic drag by up to 20% and an analysis of its effect on overall fuel consumption indicates that it offers a significant opportunity for improving the fuel economy and reducing emissions from emergency response vehicles. These benefits are now being realised by the UK’s ambulance services.
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