论文标题

具有超疏水壁的通道中的湍流过渡:粗糙度各向异性的影响

Turbulent transition in a channel with superhydrophobic walls: the effect of roughness anisotropy

论文作者

Jouin, Antoine, Cherubini, Stefania, Robinet, Jean-Christophe

论文摘要

超疏水表面大大减少了上覆液体流动的皮肤摩擦。这些表面是复杂的,数值模拟通常依赖于降低这种复杂性的模型。最简单的方法之一是通过均质化过程找到等效的边界条件,在频道流过的河流流动的情况下,导致在均质基碱流速速度中存在较小的跨度分量。这项工作旨在研究基本流量的三维性对稳定性和过渡的影响,并在通道中,墙壁覆盖了方向的河水。研究了这种基本流量的线性稳定性:观察到与跨流效应相关的新不稳定区域。也检索了Tollmien-Schlichting波,但最不稳定的是三维。瞬态生长也受到影响,因为具有非零流量波数的倾斜条纹成为最大的扰动。当通过Tollmien-Schlichting波诱导过渡时,在初始指数生长状态后,具有较大跨度波数的条纹结构迅速出现。模态机制似乎在这些结构的发展中起着领导作用,并且实现了二级稳定性分析以成功地检索其某些特征。第二种情况下以跨流涡流发起的情况显示了非线性的强大影响。在分解为湍流之前,该流量会发展成大型准跨度不变结构。饱和的跨流涡流上的次级稳定性在过渡阶段散发出灯。在这两种情况下,跨流效应都占据了流动动力学的主导,建议在建模超疏水表面时考虑这些影响。

Superhydrophobic surfaces dramatically reduce skin friction of overlying liquid flows. These surfaces are complex and numerical simulations usually rely on models for reducing this complexity. One of the simplest consists in finding an equivalent boundary condition through an homogenisation procedure, which in the case of channel flow over oriented riblets, leads to the presence of a small spanwise component in the homogenized base flow velocity. This work aims at investigating the influence of such a three-dimensionality of the base flow on stability and transition in a channel with walls covered by oriented riblets. Linear stability for this base flow is investigated: a new instability region, linked to cross-flow effects, is observed. Tollmien-Schlichting waves are also retrieved but the most unstable are three-dimensional. Transient growth is also affected as oblique streaks with non-zero streamwise wavenumber become the most amplified perturbations. When transition is induced by Tollmien-Schlichting waves, after an initial exponential growth regime, streaky structures with large spanwise wavenumber rapidly arise. Modal mechanisms appear to play a leading role in the development of these structures and a secondary stability analysis is realised to retrieve successfully some of their characteristics. The second scenario, initiated with crossflow vortices, displays a strong influence of nonlinearities. The flow develops into large quasi spanwise-invariant structures before breaking down to turbulence. Secondary stability on the saturated cross-flow vortices sheds light on this stage of transition. In both cases, cross-flow effects dominate the flow dynamics, suggestings the need to consider these effects when modelling superhydrophobic surfaces.

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