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首页> 外文期刊>ACS applied materials & interfaces >Ladderlike Conical Micropillars Facilitating Underwater Gas-Bubble Manipulation in an Aqueous Environment
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Ladderlike Conical Micropillars Facilitating Underwater Gas-Bubble Manipulation in an Aqueous Environment

机译:Ladderlike Conical Micropillars促进水下气泡操纵在水环境中

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摘要

Underwater gas-bubble manipulation in aqueous environments is of great importance in industry and academia. Although the underwater gas bubble has been proved to be directionally transportable by various structures, transporting gas bubbles in 3D space remains a challenge. In this research, two kinds of tapered pillars, that is, ladderlike and helical ladderlike, were proposed for manipulating gas bubbles. To fabricate such unique structures, an improved alternative coating and etching method was developed. To meet the requirements of underwater gas-bubble transport, a modified gas-bubble slippery technology was also developed to enhance the aerophilic ability. The dynamics of the gas bubble was analyzed using a high-speed camera. The Laplace force that resulted from the geometry gradient was found to play a significant role in tuning the gas-bubble velocity. Through adjustments on the wettability, tilt angle, and geometry of each section of the tapered pillar, tuning the transport velocity from 113.9 +/- 10.3 to 309.1 +/- 5.8 mm/s becomes possible. On the basis of these findings, the helical ladderlike tapered pillar was fabricated and demonstrated to be able to transport gas bubbles in 3D space. These results may provide a new and systematic way to design and fabricate materials and structures for directional gas-bubble transport in 3D space.
机译:水下气泡操纵在水环境中,在工业和学术界方面都很重要。尽管已经证明水下气泡通过各种结构定向,但在3D空间中运输气泡仍然是一个挑战。在这项研究中,提出了两种锥形柱,即梯状和螺旋梯状,用于操纵气泡。为了制造这种独特的结构,开发了改进的替代涂层和蚀刻方法。为满足水下气泡运输的要求,还开发了一种改进的气泡湿滑技术来提高令人讽刺的能力。使用高速相机分析气泡的动态。发现由几何梯度引起的拉普拉斯力在调整气泡速度方面发挥着重要作用。通过调整锥形柱的每个截面的润湿性,倾斜角和几何形状,可以从113.9 +/- 10.3到309.1 +/- 5.8 mm / s的输送速度。在这些发现的基础上,制造了螺旋梯状锥形柱,并证明能够在3D空间中运输气泡。这些结果可以提供一种新的和系统的方式来设计和制造用于3D空间的定向气泡传输的材料和结构。

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