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首页> 外文期刊>SAE International Journal of Passenger Cars - Mechanical Systems >Methodology for the Design of an Aerodynamic Package for a Formula SAE Vehicle
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Methodology for the Design of an Aerodynamic Package for a Formula SAE Vehicle

机译:SAE方程式赛车的空气动力套件设计方法论

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摘要

Recent changes to the rules regarding aerodynamics within Formula SAE, combined with faster circuits at the European FSAE events, have made the implementation of aerodynamic devices, to add down-force, a more relevant topic. As with any race series it is essential that a detailed analysis is completed to establish the costs and benefits of including an aerodynamic package on the vehicle. The aim of the work reported here was to create a methodology that would fully evaluate all aspects of the package and conclude with an estimate of the likely gain in points at a typical FSAE event. The paper limits the analysis to a front and rear wing combination, but the approach taken can be applied to more complex aerodynamic packages. An initial wind tunnel investigation of the potential flow interactions between the driver's helmet and rear wing using a multi-hole pressure probe is reported and the data used in a two-dimensional CFD calculation to provide an accurate prediction of the likely down-force from the wing package. The chosen configurations are tested in a comprehensive wind tunnel program and a map of potential setups generated. The potential aerodynamic configurations are assessed in both quasi-static and dynamic handling analysis to demonstrate the effects of aerodynamic lift, lift distribution, aerodynamic drag, and the effect of additional weight, weight distribution and height of the center of gravity. The paper includes a description of the wind tunnel model and scaling considerations and a description of the handling model and the lap simulation methods. The results shows that a simple front and rear wing combination, providing relative low down-force (1000N at 110kph on a vehicle of 280kg, including driver), gives an improvement in performance equating to a gain of approximately 40 points during the event. The largest improvements are seen during the autocross and endurance events. This gain is considered sufficient to justify the inclusion of the package on the vehicle.
机译:SAE方程式中有关空气动力学规则的最新更改,再加上欧洲FSAE事件中更快的电路,使空气动力学装置的实施成为一个更相关的话题,以增加下压力。与任何比赛系列一样,至关重要的是,必须完成详细的分析,才能确定在车辆上包括空气动力学套件的成本和收益。此处报告的工作的目的是创建一种方法,该方法可以全面评估软件包的各个方面,并以对典型FSAE事件中可能获得的积分进行估算。本文仅将分析限制在前机翼和后机翼组合上,但是所采用的方法可以应用于更复杂的空气动力学套件。报告了使用多孔压力探头对驾驶员头盔和尾翼之间的潜在流动相互作用进行的初步风洞调查,并在二维CFD计算中使​​用了数据,以准确预测可能产生的下压力。机翼包。在全面的风洞程序中测试所选配置,并生成潜在设置图。在准静态和动态操纵分析中都评估了潜在的空气动力学配置,以证明空气动力学升力,升力分布,空气动力学阻力以及附加重量,重量分布和重心高度的影响。本文包括对风洞模型和比例缩放注意事项的描述,以及对处理模型和搭接模拟方法的描述。结果表明,简单的前机翼和后机翼组合提供了相对较低的下压力(在包括驾驶员在内的280kg车辆上,时速110Kph时为1000N),从而提高了性能,相当于在比赛中获得了大约40点的收益。在自动越野赛和耐力赛中可以看到最大的改进。该增益被认为足以证明在车辆上包括包装。

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