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Direct numerical simulation of the transitional boundary-layer flow induced by an isolated hemispherical roughness element

机译:由孤立的半球形粗糙度元素引起的过渡边界层流动的直接数值模拟

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The joint application of direct numerical simulation (DNS) and a combined multiple-direct forcing and immersed boundary method (MDF/IBM) is proposed to investigate the transitional boundary-layer flow induced by three-dimensional roughness elements. The multi-direct forcing technique is used to calculate the interacting force between the solid surface of roughness elements and the fluid, and let the no-slip boundary conditions be satisfied. In order to validate the efficiency of these numerical methods, a flow past an isolated three-dimensional hemispherical roughness element mounted on a flat plate is simulated. The evolutional process of the discrete hairpin vortex and the formation of two kinds of secondary vortex structures are captured. The comparisons of profiles of streamwise mean velocity and velocity fluctuation between the simulated results and the experimental ones show great quantitative agreement. The evolution of disturbances and the growth of steady disturbance energy prove the transient growth mechanisms underlying the transitional flow induced by moderate-amplitude isolated three-dimensional roughness elements. Numerical methods used in this investigation can be extended to the simulation of the transitional boundary-layer flows induced by randomly distributed three-dimensional roughness elements.
机译:提出了直接数值模拟(DNS)和多重直接强迫与沉浸边界方法(MDF / IBM)相结合的联合应用,以研究三维粗糙元素引起的过渡边界层流动。运用多重直接强迫技术计算粗糙元素的固体表面与流体之间的相互作用力,并满足防滑边界条件。为了验证这些数值方法的效率,模拟了经过安装在平板上的孤立的三维半球形粗糙度元素的流动。记录了离散发夹涡的演化过程和两种次级涡结构的形成。模拟结果与实验结果之间的流向平均速度和速度波动曲线的比较显示出很好的定量一致性。扰动的演化和稳态扰动能量的增长证明了由中振幅孤立的三维粗糙度元素引起的过渡流的瞬态增长机制。在这项研究中使用的数值方法可以扩展到由随机分布的三维粗糙度元素引起的过渡边界层流的模拟。

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