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Global stability analysis of a 90°-bend pipe flow

机译:全局稳定性分析90° - 布管流动

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The present work investigates the stability properties of the flow in a 90 degrees-bend pipe with curvature delta = R/R-c = 1/3, with R being the radius of the cross-section of the pipe and R-c the radius of curvature at the pipe centreline. Direct numerical simulations (DNS) for values of the bulk Reynolds number Re-b = UbD/V between 2000 and 3000 are performed. The bulk Reynolds number is based on the bulk velocity U-b, the pipe diameter D, and the kinematic viscosity.. The flow is found to be steady for Re-b = 2500, with two main pairs of symmetric, counter-rotating vortices in the section of the pipe downstream of the bend. The presence of two recirculation regions is detected inside the bend: one on the outer wall and the other on the inner side. For Re-b = 2550, the flow exhibits a periodic behaviour, oscillating with a fundamental non-dimensional frequency St = fD/U-b = 0.23. A global stability analysis is performed in order to determine the cause of the transition from the steady to the periodic regime. The spectrum of the linearised Navier-Stokes operator reveals a pair of complex conjugate eigenvalues with positive real part, hence the transition is ascribed to a Hopf bifurcation occurring at Re-b,Re-cr approximate to 2531, a value much lower than the critical Reynolds number for the flow in a torus with the same curvature. The velocity components of the unstable direct and adjoint eigenmodes are investigated, and they display a large spatial separation, most likely due to the non-normality of the linearised Navier-Stokes operator. Thus, the core of the instability, also known in the literature as the wavemaker, is sought performing an analysis of the structural sensitivity of the unstable eigenmode to spatially localised feedbacks. The region located 15 degrees downstream of the bend inlet, on the outer wall, is the most receptive to this kind of perturbations, and thus corresponds to where the instability originates. Since this region coincides with the outer-wall separation bubble, it is concluded that the instability is linked to the strong shear by the backflow phenomena. The present results are relevant for technical applications where bent pipes are frequently used, and their stability properties have hitherto not been studied.
机译:本作者研究了曲率Δ= R / RC = 1/3的90度弯管中的流动的稳定性特性,R是管道的横截面的半径,并且RC在曲率下的曲率半径管道中心线。执行用于2000和3000之间的散装雷诺数RE-B = UBD / V值的直接数值模拟(DNS)。散装雷诺数基于散装速度Ub,管道直径d和运动粘度。发现流量稳定为Re-B <= 2500,具有两个主要对称的对称,反向旋转涡旋管道下游的管道部分。在弯曲部中检测到两个再循环区域的存在:一个在外壁上,另一个在内侧。对于RE-B> = 2550,流程表现出周期性行为,以基本的非尺寸频率ST = FD / U-B = 0.23振荡。执行全局稳定性分析,以便从稳定到周期性方案中的过渡原因。线性化的Navier-Stokes操作员的光谱揭示了一对具有正实部的复合缀合物特征值,因此过渡归因于在RE-B处发生的HOPF分叉,RE-CR近似为2531,值远低于临界值雷诺数,具有相同曲率的环节中的流动。研究了不稳定的直接和伴随特征范围的速度分量,它们显示出大的空间分离,很可能是由于线性的Navier-Stokes操作员的非正常性。因此,寻求在文献中已知的不稳定性的核心,并寻求分析不稳定的特征模型到空间局部化反馈的结构敏感性。在外壁上位于弯曲入口下游15度的区域是最容易接受这种扰动,因此对应于不稳定性源自的位置。由于该区域与外壁分离气泡重合,因此得出结论,不稳定性与回流现象的强剪切相连。目前的结果与经常使用弯曲管道的技术应用相关,并且他们的稳定性属于迄今为止未被研究。

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