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Aerodynamic Investigation of Gap Treatment- and Chassis Skirts Strategies for a Novel Long-Haul Vehicle Combination

机译:差距处理的空气动力学调查 - 新型长途车辆组合的裂缝裙和底盘裙策略

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Constantly lowering emissions legislation and the fact that fuel prices have increased tremendously over recent years, have forced vehicle manufacturers to develop more and more energy-efficient vehicles. The aerodynamic drag is responsible for a substantial part of the total driving resistance for a vehicle, especially at higher velocities; thus it is important to reduce this factor as much as possible for vehicles commonly operating in these conditions. In an attempt to improve transport efficiency, longer vehicle combinations are becoming more common. By replacing some of the shorter vehicle combinations with longer combinations, the same amount of cargo can be transported with fewer vehicles; hence there is large potential for fuel savings. The knowledge of the aerodynamic properties of such vehicles is somewhat limited, and therefore interesting to study. This paper deals with the aerodynamic properties of a novel vehicle combination, which has a total length of almost 32m, and consists of a tractor unit in combination with two semi-trailers, supported by a dolly in-between the trailers. This vehicle combination was evaluated in terms of aerodynamic properties, by the use of numerical simulations in the form of Computational Fluid Dynamics [CFD]. Both the gap between the cargo-units and the irregular chassis of the trailers are known areas of substantial energy losses; it has also been shown in previous studies that a lot of the drag reduction that is created in the cab region is lost downstream. Hence it was of interest to investigate possibilities for improving these two areas. Two approaches to improve the flow in the gap region were evaluated: coverage of the gap and elimination of the gap. For the chassis treatment, chassis skirts were added along the entire vehicle combination. Eventually, these two strategies were added to investigate their combined effect. In addition, a more practical solution of the gap treatment was tested; a so-called gap-fairing system, which was applied to both semi-trailer units. The results from the simulations showed that there is great potential for the two drag-reducing strategies used. The combined gap treatment and chassis skirts were especially successful; the total drag coefficient was reduced significantly. It was seen that the chassis skirts were far more efficient compared to gap treatment; as a consequence of blocking the main part of the airflow at chassis level in yawed-wind conditions. The practical solution with a gap fairing was shown to be efficient, if used for both semi-trailer units.
机译:近年来,不断降低排放立法以及燃料价格大幅增加的事实,拥有强迫汽车制造商开发越来越能节能的车辆。空气动力学阻力负责车辆的总驱动阻力的大部分,特别是在更高的速度下;因此,对于在这些条件下通常操作的车辆尽可能地减少这种因素是很重要的。为了提高运输效率,较长的车辆组合变得越来越普遍。通过更换一些较短的车辆组合,可以使用较少的车辆运输相同数量的货物;因此,节省燃料的潜力很大。这种车辆的空气动力学性质的知识有些有限,因此有趣的研究。本文涉及一种新型车辆组合的空气动力学特性,其总长度为近32米,并且由拖拉机单元与两个半拖车组合组成,由拖车之间的多莉进入支撑。通过使用数值模拟以计算流体动力学[CFD]形式的数值模拟来评估该车辆组合。货物单元之间的间隙和拖车的不规则底盘都是已知的大量能量损失的区域;在以前的研究中也已经显示,即在驾驶室区域中创建的许多阻力减少在下游丢失。因此,调查改善这两个领域的可能性感兴趣。评估了改善间隙区域中流动的两种方法:覆盖间隙和消除间隙。对于底盘处理,沿整个车辆组合添加底盘裙。最终,增加了这两种策略以研究其组合效果。此外,测试了间隙处理的更实际的解决方案;所谓的差距整流系统,应用于半拖车单位。仿真的结果表明,使用的两个减少策略存在巨大潜力。合并的差距处理和底盘裙子特别成功;总阻力系数显着减少。有人认为,与差距处理相比,底盘裙子更有效;由于在裂开风条件下阻塞气流的主要部分的主要部分。如果用于半拖车单位,则显示具有间隙整流罩的实际解决方案是有效的。

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