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首页> 外文期刊>SAE International Journal of Passenger Cars - Mechanical Systems >Investigation of Wheel Aerodynamic Resistance of Passenger Cars
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Investigation of Wheel Aerodynamic Resistance of Passenger Cars

机译:乘用车的车轮空气动力阻力研究

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摘要

There are a number of numerical and experimental studies of the aerodynamic performance of wheels that have been published. They show that wheels and wheel-housing flows are responsible for a substantial part of the total aerodynamic drag on passenger vehicles. Previous investigations have also shown that aerodynamic resistance moment acting on rotating wheels, sometimes referred to as ventilation resistance or ventilation torque is a significant contributor to the total aerodynamic resistance of the vehicle; therefore it should not be neglected when designing the wheel-housing area. This work presents a numerical study of the wheel ventilation resistance moment and factors that affect it, using computational fluid dynamics (CFD). It is demonstrated how pressure and shear forces acting on different rotating parts of the wheel affect the ventilation torque. It is also shown how a simple change of rim design can lead to a significant decrease in power consumption of the vehicle. A way of introducing ventilation torque into the driving resistance equation is discussed. The results show that it is possible to assess ventilation resistance moment using CFD. It is demonstrated that brake discs have almost negligible ventilation torque, while the contribution of rims and tyres may vary depending on the rim design used and the velocity of the vehicle. It is also shown that for the designs investigated the equivalent ventilation force has a second order dependency on the vehicle velocity which allows an introduction of a ventilation resistance coefficient C_(D(vent)) that is independent of velocity.
机译:已经发表了许多有关车轮空气动力学性能的数值和实验研究。他们表明,车轮和车轮壳体的流动是乘用车总空气阻力的很大一部分。先前的研究还表明,作用在旋转车轮上的空气动力阻力力矩(有时称为通风阻力或通风扭矩)是造成车辆总空气动力阻力的重要因素。因此在设计车轮外壳区域时不应忽略它。这项工作使用计算流体力学(CFD)对车轮通风阻力力矩及其影响因素进行了数值研究。演示了作用在车轮不同旋转部分上的压力和剪切力如何影响通风扭矩。还示出了简单的轮辋设计改变如何可以导致车辆的功率消耗的显着降低。讨论了一种将通风转矩引入驱动阻力方程的方法。结果表明,可以使用CFD评估通风阻力矩。事实证明,制动盘的通风扭矩几乎可以忽略不计,而轮辋和轮胎的贡献可能会根据所使用的轮辋设计和车辆速度而变化。还显示出,对于所研究的设计,等效通风力对车速具有二阶依赖性,这允许引入与速度无关的通风阻力系数C_(D(vent))。

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