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Non-Modal Instability of Core-Annular Flow

机译:核环流的非模态不稳定性

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摘要

The classical problem of the stability of Core-Annular Flow (CAF) in pipes is reconsidered from the point of view of the linear non-modal analysis. An accurate Chebyshev pseudospectral code in polar coordinates has been developed in order to separately discretize the two phases of the flow. Transient amplifications of the energy of three-dimensional perturbations are computed by taking into account the effects of viscosity and volume ratios between the two liquids, as well as of Reynolds number and a surface tension parameter. A detailed investigation is conducted in wide regions of the parameters space and the occurrence of remarkable transient growths is found for asymptotically both stable and unstable configurations. Optimal perturbations (i.e. giving the maximum energy amplification) are determined and their structure is analyzed. It is shown that in conditions in which axisymmetric modes are expected to constitute the most dangerous exponential disturbances, spiral perturbations can provide higher levels of transient energy amplification. Growth rates and amplification levels relative to modal and non-modal mechanisms are compared in order to analyze more in depth previous disagreements between experiments and modal theory.
机译:从线性非模态分析的观点出发,重新考虑了管道中核心环流(CAF)稳定性的经典问题。已经开发出极坐标中的精确切比雪夫伪谱码,以便分别离散流的两个相位。通过考虑两种液体之间的粘度和体积比以及雷诺数和表面张力参数的影响来计算三维扰动能量的瞬态放大。在参数空间的宽范围内进行了详细的研究,发现渐近稳定和不稳定配置都出现了明显的瞬时增长。确定最佳扰动(即给出最大的能量放大),并分析其结构。结果表明,在期望轴对称模式构成最危险的指数扰动的情况下,螺旋扰动可以提供更高水平的瞬态能量放大。比较了相对于模态和非模态机制的增长率和扩增水平,以便更深入地分析先前的实验与模态理论之间的分歧。

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