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Experimental drag reduction study of super-hydrophobic surface with dual-scale structures

机译:具有双尺度结构的超疏水表面的减阻实验研究

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Hydrophobic surfaces with micro- or nanoscale pillars have been attracting considerable interest from scientists. In nature, such surfaces can be found on lotus leaves or under the feet of pond skaters. One significant property of these surfaces is friction drag reduction (FDR). Many studies have been conducted to demonstrate this reduction in terms of laminar and turbulent flows. The slip-length hypothesis is often used to explain this phenomenon. In this study, processes with the advantages of simplicity and cost effectiveness were used to fabricate dual-scale structures. Durable super-hydrophilic and super-hydrophobic surfaces were easily obtained from these structures. FDR was measured on a super-hydrophobic surface and was compared to that on smooth and super-hydrophilic surfaces. The experimental results in a circulating water channel revealed the Reynolds number range within which substantial FDR can occur on a super-hydrophobic surface. The mechanism of FDR and the role of slip are discussed by comparing experimental results.
机译:具有微米或纳米级支柱的疏水表面已引起科学家的极大兴趣。在自然界中,此类表面可以在荷叶或溜冰者的脚下找到。这些表面的一项重要性能是减少摩擦阻力(FDR)。已经进行了许多研究以证明层流和湍流的减少。滑动长度假说通常用于解释这种现象。在这项研究中,具有简单性和成本效益优势的工艺被用于制造双尺度结构。从这些结构很容易获得耐用的超亲水和超疏水表面。在超疏水表面上测量FDR,并将其与光滑和超亲水表面上的FDR进行比较。循环水通道中的实验结果表明,雷诺数范围内的超疏水表面上可能发生大量的FDR。通过比较实验结果讨论了FDR的机理和滑移的作用。

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