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Influence of dimple design on aerodynamic drag of Golf balls

机译:凹痕设计对高尔夫球气动阻力的影响

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Golf ball aerodynamics is significantly multifaceted as compared to other sports balls due to the presence of small dimples, which serve as a source of surface roughness and drag reduction. Overall aerodynamic performance of a golf ball is influenced by flow behavior over these dimples. Consequently, flow phenomena over the dimples is effected by various dimple characteristics, of which dimples geometry, size, shape, depth, and pattern are considered significant. Dimple characteristics continue to be an active area of research because the results thereof, affect the assertions, sales, and the performance of different commercially available golf balls. Dimples on the other hand also enhance the intricacy of flow over a golf ball; and due to this fact aerodynamics of a golf ball is yet to be fully recognized despite of considerable amount of available literature. Previous studies focused on overall aerodynamic performance of the golf ball through experimental analysis and Computational Fluid Dynamics (CFD) simulations; however, available literature still lacks detailed analysis of pertinent dimple characteristics. In this paper, dimple depth effect on the drag performance of a golf ball has been examined by employing numerical simulations, followed by validation through bench mark wind tunnel results of F. Alam (Procedia-2011). CFD simulations in ANSYS Fluent ® have been carried out for 5 balls with varied dimple depth over various velocities (wind). It has been established that golf ball drag coefficient varies considerably as the dimple geometry is varied. The results specify a direct relationship between dimple depth ratio and transitioning Reynolds number. As the depth ratio is increased the transitioning Reynolds number is lowered and this also serves to increase the drag coefficient in transcritical regime. A positive linear relationship was also established between coefficient of drag and relative roughness.
机译:与其他运动球相比,高尔夫球的空气动力学特性显着多方面,原因是存在小的凹坑,这些凹坑是表面粗糙度和减阻的来源。高尔夫球的总体空气动力学性能受这些凹坑上的流动行为的影响。因此,凹痕上的流动现象受各种凹痕特征的影响,其中,凹痕的几何形状,尺寸,形状,深度和图案被认为是重要的。酒窝特性一直是研究的一个活跃领域,因为其结果会影响不同商业上可买到的高尔夫球的主张,销售和性能。另一方面,酒窝还增加了高尔夫球上流动的复杂性。由于这个事实,尽管有大量可用的文献,但高尔夫球的空气动力学还没有被完全认识到。以前的研究主要通过实验分析和计算流体动力学(CFD)模拟来研究高尔夫球的整体空气动力学性能。然而,现有文献仍缺乏有关酒窝特征的详细分析。在本文中,通过数值模拟研究了凹坑深度对高尔夫球拖曳性能的影响,然后通过F. Alam的基准风洞结果进行了验证(Procedia-2011)。 ANSYS Fluent®中的CFD模拟已经针对5个在不同速度(风)下具有不同凹坑深度的球进行了模拟。已经确定,随着凹坑几何形状的变化,高尔夫球的阻力系数也有很大的变化。结果指定了凹坑深度比与过渡雷诺数之间的直接关系。随着深度比的增加,过渡雷诺数降低,这也有助于增加跨临界状态下的阻力系数。阻力系数和相对粗糙度之间也建立了正线性关系。

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