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首页> 外文期刊>Journal of Fluid Mechanics >Mesoscopic modelling of heterogeneous boundary conditions for microchannel flows
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Mesoscopic modelling of heterogeneous boundary conditions for microchannel flows

机译:微通道流的非均匀边界条件的介观建模

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摘要

We present a mesoscopic model of the fluid-wall interactions for flows in microchannel geometries. We define a suitable implementation of the boundary conditions for a discrete version of the Boltzmann equations describing a wall-bounded single-phase fluid. We distinguish different slippage properties on the surface by introducing a slip function, defining the local degree of slip for hydrodynamical fields at the boundaries. The slip function plays the role of a renormalizing factor which incorporates, with some degree of arbitrariness, the microscopic effects on the mesoscopic description. We discuss the mesoscopic slip properties in terms of slip length, slip velocity, pressure drop reduction (drag reduction), and mass flow rate in microchannels as a function of the degree of slippage and of its spatial distribution and localization, the latter parameter mimicking the degree of roughness of the ultra-hydrophobic material in real experiments. We also discuss the increment of the slip length in the transition regime, i.e. at O(1) Knudsen numbers.
机译:我们提出了在微通道几何形状中流动的流体-壁相互作用的介观模型。我们为描述壁边界单相流体的Boltzmann方程的离散版本定义边界条件的合适实现。我们通过引入滑动函数来区分表面上的不同滑动特性,定义边界处流体动力场的局部滑动度。滑动函数起着重归一化因子的作用,该因子在某种程度上具有对介观描述的微观影响。我们根据滑移长度,滑移速度,压降减小(阻力减小)和微通道中的质量流量来讨论介观滑移特性,这些特性是滑移程度及其空间分布和局部性的函数,后一个参数模仿实际实验中超疏水材料的粗糙度。我们还讨论了过渡状态下滑移长度的增量,即O(1)Knudsen数。

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