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Eccentricity effects of microhole arrays on drag reduction efficiency of microchannels with a hydrophobic wall

机译:微孔阵列的偏心度对带有疏水壁的微通道减阻效率的影响

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摘要

This paper experimentally investigates the effects of microhole eccentricity on the slip lengths of Stokes flow in microchannels with the bottom wall made of microhole arrays. The wettability of such microhole structures fabricated by the replica molding of polydimethylsiloxane is first analyzed measuring both static and dynamic contact angles. Subsequently, the drag reduction performance of the microchannels with such hydrophobic microhole surfaces is evaluated. The results indicate that the impact of microhole eccentricity on drag reduction performance correlates well with the contact angle hysteresis rather than with the static contact angle. Furthermore, microhole arrays with large normalized width and zero eccentricity show the minimum contact angle hysteresis of 18.7஠In these microchannels, the maximum percentage increase in the relative velocity is 39% corresponding to a slip length of 2.49?孮 For the same normalized width, increasing the normalized eccentricity to 2.6 increases the contact angle hysteresis to 36.5࠴hat eventually reduces the percentage increase in relative velocity and slip length down to 16% and 0.91?孬 respectively. The obtained results are in qualitative agreement with the existing theoretical and numerical models. These findings provide additional insights in the design and fabrication of efficient micropatterned channels for reducing the flow resistance, and leave open questions for theoreticians to further investigate in this field.
机译:本文实验研究了微孔偏心率对底壁由微孔阵列制成的微通道中斯托克斯流的滑移长度的影响。首先通过测量静态和动态接触角来分析通过聚二甲基硅氧烷的复制模制而制造的这种微孔结构的润湿性。随后,评估具有这种疏水性微孔表面的微通道的减阻性能。结果表明,微孔偏心率对减阻性能的影响与接触角滞后关系密切,与静态接触角密切相关。此外,具有大归一化宽度和零偏心率的微孔阵列显示最小的接触角滞后为18.7஠。在这些微通道中,相对速度的最大百分比增加为39%,对应于滑移长度为2.49?孮对于相同的归一化宽度,将归一化偏心率增加到2.6,则接触角滞后增加到36.5࠴,最终使相对速度和滑移长度的增加百分比分别降低到16%和0.91?孬。所得结果与现有的理论模型和数值模型在质量上吻合。这些发现为减少流阻的有效微图案通道的设计和制造提供了更多的见识,并为理论家在该领域进一步研究留下了未解决的问题。

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