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首页> 外文期刊>International Journal of Automotive Technology >AERODYNAMIC EFFECT OF ROOF-FAIRING SYSTEM ON A HEAVY-DUTY TRUCK
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AERODYNAMIC EFFECT OF ROOF-FAIRING SYSTEM ON A HEAVY-DUTY TRUCK

机译:顶棚系统对重型卡车的气动影响

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Aim of this study is to investigate an aerodynamic effect of a drag-reducing device on a heavy-duty truck. The vehicle experiences two different kinds of aerodynamic forces such as drag and uplifting force (or downward force) as it is traveling straight forward at constant speed. The drag force on a vehicle may cause an increase of the rate of fuel consumption and driving instability. The rolling resistance of the vehicle may be increased as result of the negative uplifting or downward force on the vehicle. A device named roof-fairing system has been applied to examine the reduction of aerodynamic drag force on a heavy-duty truck. As for a engineering design information, the drag-reducing system should be studied theoretically and experimentally for the best efficiency of the device. Four different types of roof-fairing model were considered in this study to investigate the aerodynamic effect on a model truck. The drag and downward force generated by vehicle has been obtained from numerical calculation conducted in this study. The forces produced on four fairing models considered in this study has been compared each other to evaluate the best fairing model in terms of aerodynamic performance. The result shows that the roof-fairing mounted truck has bigger negative uplifting or downward force than that of non-mounted truck in all speed ranges, and drag force on roof-fairing mounted truck has smaller than that of non-mounted truck. The drag coefficient (C{sub}D) of the roof-fairing mounted truck (Model-3) is reduced up to 41.3% than that of non-mounted trucks (Model-1). A downward force generated by a roof-fairing mounted on a truck is linearly proportional to the rolling resistance force. Therefore, the negative lifting force on a heavy-duty truck is another important factor in aerodynamic design parameter and should be considered in the design of a drag-reducing device of a tractor-trailer. According to the numerical result obtained from present study, the drag force produced by the model-3 has the smallest of all in all speed ranges and has reasonable downward force. The smaller drag force on model-3 with 2/3h in height may results of smallest thickness of boundary layer generated on the topside of the container and the lowest intensity of turbulent kinetic energy occurs at the rear side of the container.
机译:这项研究的目的是研究减阻装置对重型卡车的空气动力学影响。当车辆以恒定速度笔直行驶时,会受到两种不同的空气动力,例如阻力和升力(或向下的力)。车辆上的阻力可能会导致燃油消耗率和驾驶不稳定性的增加。车辆的滚动阻力可能会由于车辆上的负向上或向下力而增加。一种名为“屋顶整流罩系统”的设备已被用于检查重型卡车上空气阻力的减小。对于工程设计信息,应从理论和实验角度研究减阻系统,以实现设备的最佳效率。在这项研究中考虑了四种不同类型的屋顶整流罩模型,以研究对模型卡车的空气动力学影响。从这项研究中进行的数值计算已经获得了车辆产生的阻力和向下力。本研究中考虑的四种整流罩模型产生的力已相互比较,以评估空气动力学性能方面的最佳整流罩模型。结果表明,在所有速度范围内,无顶棚卡车的负向上或向下的力都大于无顶棚卡车,而无顶棚卡车的拖曳力小于无顶棚卡车。装有顶棚的卡车(Model-3)的阻力系数(C {sub} D)比未安装卡车(Model-1)的阻力系数降低了41.3%。由安装在卡车上的整流罩产生的向下力与滚动阻力成线性比例。因此,在重型卡车上的负升力是空气动力学设计参数中的另一个重要因素,在牵引车的减阻装置的设计中应考虑到这一点。根据从本研究获得的数值结果,模型3产生的拖曳力在所有速度范围内最小,并且具有合理的向下力。在型号3上,高度为2 / 3h的阻力较小,这可能导致在容器的顶部生成的边界层厚度最小,并且在容器的后侧出现最低的湍动能强度。

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