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Aerodynamic and Structural Design of a 2022 Formula One Front Wing Assembly

机译:2022配方的空气动力学和结构设计一个前翼组件

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The aerodynamic loads generated in a wing are critical in its structural design. When multi-element wings with wingtip devices are selected, it is essential to identify and to quantify their structural behaviour to avoid undesirable deformations which degrade the aerodynamic performance. This research investigates these questions using numerical methods (Computational Fluid Dynamics and Finite Elements Analysis), employing exhaustive validation methods to ensure the accuracy of the results and to assess their uncertainty. Firstly, a thorough investigation of four baseline configurations is carried out, employing Reynolds Averaged Navier–Stokes equations and the k-ω SST (Shear Stress Transport) turbulence model to analyse and quantify the most important aerodynamic and structural parameters. Several structural configurations are analysed, including different materials (metal alloys and two designed fibre-reinforced composites). A 2022 front wing is designed based on a bidimensional three-element wing adapted to the 2022 FIA Formula One regulations and its structural components are selected based on a sensitivity analysis of the previous results. The outcome is a high-rigidity-weight wing which satisfies the technical regulations and lies under the maximum deformation established before the analysis. Additionally, the superposition principle is proven to be an excellent method to carry out high-performance structural designs.
机译:在机翼中产生的空气动力学载荷在其结构设计中是至关重要的。 When multi-element wings with wingtip devices are selected, it is essential to identify and to quantify their structural behaviour to avoid undesirable deformations which degrade the aerodynamic performance.本研究使用数值方法(计算流体动力学和有限元分析)来调查这些问题,采用详尽的验证方法来确保结果的准确性并评估其不确定性。首先,进行彻底调查四个基线配置,采用雷诺平均Navier-Stokes方程和K-ωSST(剪切应力传输)湍流模型来分析和量化最重要的空气动力学和结构参数。分析了几种结构配置,包括不同的材料(金属合金和两个设计的纤维增强复合材料)。基于适用于2022 FIA公式一条规则的偏压三元翼设计了2022个前翼,并且基于先前结果的灵敏度分析选择其结构部件。结果是一种高刚性重量的翼,其满足技术规则,并在分析前建立的最大变形。另外,综述原理被证明是开展高性能结构设计的优异方法。

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