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Aerodynamic optimisation of the rear wheel fairing of the land speed record vehicle BLOODHOUND SSC

机译:陆地速度记录仪BLOODHOUND SSC的后轮整流罩的空气动力学优化

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This paper describes the design optimisation study used to aerodynamically optimise the fairings that cover the rear wheels of the Land Speed Record vehicle, BLOODHOUND SuperSonic Car (SSC). Initially, using a Design of Experiments approach, a series of Computational Fluid Dynamics simulations were performed on a set of parametric geometries, with the goal of identifying a fairing geometry that was aerodynamically optimised for the target speed of 1,000 mph. Several aerodynamic properties were considered when deciding what design objectives the fairings would be optimised to achieve; chief amongst these was the minimisation of aerodynamic drag. A parallel, finite-volume Navier-Stokes solver was used on unstructured meshes in order to simulate the complex aerodynamic behaviour of the flow around the vehicle's rear wheel structure, which involved a rotating wheel, and shockwaves generated close to a supersonic rolling ground plane. It was found that the simple response surface fitting approach did not sufficiently capture the complexities of the optimisation objective function across the high-dimensional design space. As a result, a Nelder-Mead optimisation approach was implemented, coupled with Radial Basis Function design space interpolation to find the final optimised fairing design. This paper presents the results of the optimisation study as well as indicating the likely impact this optimisation will have on the ultimate top speed of this unique vehicle.
机译:本文介绍了用于空气动力学优化整流罩的设计优化研究,该整流罩覆盖了Land Speed Record车辆BLOODHOUND SuperSonic Car(SSC)的后轮。最初,使用“实验设计”方法,对一组参数几何进行了一系列计算流体动力学模拟,目的是确定针对目标速度1,000 mph进行空气动力学优化的整流罩几何。在决定优化整流罩要达到的设计目标时,考虑了几个空气动力学特性。其中最主要的是最小化了空气阻力。在非结构化网格上使用了平行的有限体积的Navier-Stokes求解器,以模拟车辆后轮结构(包括旋转轮)和在超音速滚动地面附近产生的冲击波的复杂空气动力学行为。结果发现,简单的响应曲面拟合方法无法充分捕捉整个高维设计空间中优化目标函数的复杂性。结果,实现了Nelder-Mead优化方法,并结合径向基函数设计空间插值来找到最终的优化整流罩设计。本文介绍了优化研究的结果,并指出了该优化对这种独特车辆的最终最高速度可能产生的影响。

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