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Effects of Surface Wettability and Roughness on the Heat Transfer Performance of Fluid Flowing through Microchannels

机译:表面润湿性和粗糙度对流经微通道的流体传热性能的影响

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摘要

The surface characteristics, such as wettability and roughness, play an important role in heat transfer performance in the field of microfluidic flow. In this paper, the process of a hot liquid flowing through a microchannel with cold walls, which possesses different surface wettabilities and microstructures, is simulated by a transient double-distribution function (DDF) two-phase thermal lattice Boltzmann BGK (LBGK) model. The Shan-Chen multiphase LBGK model is used to describe the flow field and the independent distribution function is introduced to solve the temperature field. The simulation results show that the roughness of the channel wall improves the heat transfer, no matter what the surface wettability is. These simulations reveal that the heat exchange characteristics are directly related to the flow behavior. For the smooth-superhydrophobic-surface flow, a gas film forms that acts as an insulating layer since the thermal conductivity of the gas is relatively small in comparison to that of a liquid. In case of the rough-superhydrophobic-surface flow, the vortex motion of the gas within the grooves significantly enhances the heat exchange between the fluid and wall.
机译:在微流体流领域中,诸如润湿性和粗糙度之类的表面特性在传热性能中起着重要作用。本文通过瞬态双分布函数(DDF)两相热格子Boltzmann BGK(LBGK)模型模拟​​了热液体流过具有不同表面润湿性和微观结构的冷壁微通道的过程。用山-陈多相LBGK模型描述流场,引入独立分布函数求解温度场。仿真结果表明,无论表面润湿性如何,通道壁的粗糙度都会改善传热效果。这些模拟表明,热交换特性与流动行为直接相关。对于平滑的超疏水性表面流,由于与液体相比气体的热导率相对较小,所以形成了用作绝缘层的气体膜。在粗糙的超疏水表面流动的情况下,凹槽内气体的涡旋运动显着增强了流体与壁之间的热交换。

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