双刻度可重入棘轮可选择液体方向转向

IF 16.1 1区 工程技术 Q1 ENGINEERING, MANUFACTURING
Jing Sun, Xuezhi Qin, Yuxin Song, Zhenyu Xu, Chao Zhang, Wei Wang, Zhaokun Wang, Bin Wang, Zuankai Wang
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引用次数: 4

摘要

实现液体定向定向的良好控制,对于微流体、生物医学、热管理等领域的基础研究和实际应用都具有重要意义。最近的进展允许具有不同表面张力的液体在具有双可重入曲率的宏观棘轮组成的同一表面上选择其扩散方向。然而,这种有趣的定向转向功能依赖于3D打印的复杂结构和额外的抛光工艺,以消除打印过程中不可避免的微沟槽状表面缺陷,这增加了制造的复杂性,并阻碍了实际应用。在此,我们开发了一种简化的双尺度结构,通过简单的3D打印过程实现定向液体转向,而无需任何物理和化学后处理。双尺度结构由具有可入式尖端的宏观倾斜棘轮和沿特定方向装饰在整个表面的微观凹槽组成。与传统设计需要消除微沟槽状表面缺陷不同,我们证明了双尺度结构的微沟槽在延迟或促进液体局部流动方面起着关键作用,调整微沟槽结构甚至可以使液体选择不同的扩散途径。该研究为开发具有可调多尺度结构的表面提供了新的视角,也促进了我们对液体扩散动力学与表面形貌之间相互作用的基本理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Selective liquid directional steering enabled by dual-scale reentrant ratchets
Achieving well-controlled directional steering of liquids is of great significance for both fundamental study and practical applications, such as microfluidics, biomedicine, and heat management. Recent advances allow liquids with different surface tensions to select their spreading directions on a same surface composed of macro ratchets with dual reentrant curvatures. Nevertheless, such intriguing directional steering function relies on 3D printed sophisticated structures and additional polishing process to eliminate the inevitable microgrooves-like surface deficiency generated from printing process, which increases the manufacturing complexity and severally hinders practical applications. Herein, we developed a simplified dual-scale structure that enables directional liquid steering via a straightforward 3D printing process without the need of any physical and chemical post-treatment. The dual-scale structure consists of macroscale tilt ratchet equipped with a reentrant tip and microscale grooves that decorated on the whole surface along a specific orientation. Distinct from conventional design requiring the elimination of microgrooves-like surface deficiency, we demonstrated that the microgrooves of dual-scale structure play a key role in delaying or promoting the local flow of liquids, tuning of which could even enable liquids select different spreading pathways. This study provides a new insight for developing surfaces with tunable multi-scale structures, and also advances our fundamental understanding of the interaction between liquid spreading dynamics and surface topography.
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来源期刊
International Journal of Extreme Manufacturing
International Journal of Extreme Manufacturing Engineering-Industrial and Manufacturing Engineering
CiteScore
17.70
自引率
6.10%
发文量
83
审稿时长
12 weeks
期刊介绍: The International Journal of Extreme Manufacturing (IJEM) focuses on publishing original articles and reviews related to the science and technology of manufacturing functional devices and systems with extreme dimensions and/or extreme functionalities. The journal covers a wide range of topics, from fundamental science to cutting-edge technologies that push the boundaries of currently known theories, methods, scales, environments, and performance. Extreme manufacturing encompasses various aspects such as manufacturing with extremely high energy density, ultrahigh precision, extremely small spatial and temporal scales, extremely intensive fields, and giant systems with extreme complexity and several factors. It encompasses multiple disciplines, including machinery, materials, optics, physics, chemistry, mechanics, and mathematics. The journal is interested in theories, processes, metrology, characterization, equipment, conditions, and system integration in extreme manufacturing. Additionally, it covers materials, structures, and devices with extreme functionalities.
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