利用计算流体动力学分析赛车速度对空气动力学方面的影响

Yik Pey Tang
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引用次数: 0

摘要

本研究采用计算流体动力学(CFD)方法研究高性能赛车比赛中赛车速度与外部空气动力学之间的复杂关系。主要目标包括应用 CFD 预处理和分析外部空气动力学方面,以及全面检查赛车周围的外部气流,以深入了解赛车的空气动力学性能。使用 RANS(k-ω SST)湍流模型考虑了各种赛车速度。结果表明,入口速度与赛车达到的最大速度之间存在直接关联。空气动力学设计巧妙地引导了气流,使车身上部的气流速度更高。值得注意的是,最高记录的 231.06 米/秒的最大速度与 200 米/秒的进气速度峰值相吻合,这表明最大速度随着进气速度的上升而持续增加。这项研究强调了进气速度在实现峰值车速性能方面的关键作用。它揭示了湍流模型选择在捕捉外部流动动态复杂性方面的重要性。这些知识有助于优化赛车车身的外部空气动力学设计,最终提高一级方程式赛车的动态性能和竞争力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Race Car's Speed on the Aerodynamic Aspect Using Computational Fluid Dynamics Analysis
This research employs Computational Fluid Dynamics (CFD) methods to investigate the intricate relationship between race car speed and external aerodynamics during high-performance racing competitions. The primary objectives encompass the application of CFD in pre-processing and analyzing external aerodynamic aspects, coupled with a comprehensive examination of the external flow around a race car for a nuanced understanding of its aerodynamic performance. Various car speeds were considered with the RANS (k-ω SST) turbulent model. The results unveiled a direct correlation between inlet velocity and the maximum velocity attained by the race car. The aerodynamic design intricately directs the airflow, leading to higher velocities predominantly along the upper part of the car body. Noteworthy is the revelation that the highest recorded maximum velocity of 231.06 m/s coincides with a peak inlet velocity of 200 m/s, suggesting a consistent increase in maximum velocity with rising inlet velocity. This research emphasizes the pivotal role of inlet velocity in achieving peak car speed performance. It sheds light on the significance of turbulent model selection in capturing the complexities of external flow dynamics. This knowledge contributes to optimizing the external aerodynamics of race car body design, ultimately enhancing performance and competitiveness in the dynamic world of Formula 1 racing.
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