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Effects of hierarchical features on longevity of submerged superhydrophobic surfaces with parallel grooves

机译:分层特征对具有平行沟槽的水下超疏水表面寿命的影响

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While the air-water interface over superhydrophobic surfaces decorated with hierarchical micro- or nanosized geometrical features have shown improved stability under elevated pressures, their underwater longevity--the time that it takes for the surface to transition to the Wenzel state--has not been studied. The current work is devised to study the effects of such hierarchical features on the longevity of superhydrophobic surfaces. For the sake of simplicity, our study is limited to superhydrophobic surfaces composed of parallel grooves with side fins. The effects of fins on the critical pressure--the pressure at which the surface starts transitioning to theWenzel state- -and longevity are predicted using a mathematical approach based on the balance of forces across the air-water interface. Our results quantitatively demonstrate that the addition of hierarchical fins significantly improves the mechanical stability of the air-water interface, due to the high advancing contact angles that can be achieved when an interface comes in contact with the fins sharp corners. For longevity on the contrary, the hierarchical fins were only effective at hydrostatic pressures below the critical pressure of the original smooth-walled groove. Our results indicate that increasing the length of the fins decreases the critical pressure of a submerged superhydrophobic groove but increases its longevity. Increasing the thickness of the fins can improve both the critical pressure and longevity of a submerged groove. The mathematical framework presented in this paper can be used to custom-design superhydrophobic surfaces for different applications.
机译:尽管用分层的微米或纳米级几何特征装饰的超疏水表面上的空气-水界面在高压下显示出改善的稳定性,但它们的水下寿命(表面转变为Wenzel状态所需的时间)尚未达到研究。目前的工作旨在研究这种分层特征对超疏水表面寿命的影响。为简单起见,我们的研究仅限于由带有侧鳍的平行凹槽组成的超疏水表面。鳍片对临界压力的影响(即表面开始转变为Wenzel状态的压力)和寿命是通过数学方法基于跨空气-水界面的力平衡来预测的。我们的结果定量地证明,由于当界面与散热片的尖角接触时可以实现较高的前进接触角,因此添加分层散热片可显着改善空气-水界面的机械稳定性。相反,为了延长寿命,分层翅片仅在静水压力低于原始光滑壁槽的临界压力的情况下有效。我们的结果表明,增加鳍片的长度可以降低淹没式超疏水凹槽的临界压力,但可以延长其寿命。增加散热片的厚度可以同时提高临界压力和浸没凹槽的寿命。本文介绍的数学框架可用于针对不同应用定制设计超疏水表面。

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