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首页> 外文期刊>Journal of Materiomics >3D-printed controllable gradient pore superwetting structures for high temperature efficient oil-water separation
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3D-printed controllable gradient pore superwetting structures for high temperature efficient oil-water separation

机译:用于高温效率油水分离的3D印刷可控梯度孔隙超雨结构

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摘要

Superwetting surfaces have the potential to address oil pollution in water, through their ability to separate the two. However, it remains a great challenge to fabricate stable and efficient separation structures using conventional manufacturing techniques. Furthermore, the materials traditionally used for oil-water separation are not stable at high temperature. Therefore, there is a need to develop stable, customizable structures to improve the performance of oil-water separation devices. In recent years, 3D printing technology has developed rapidly, and breakthroughs have been made in the fabrication of complicated ceramic structures using this technology. Here, a ceramic material with a gradient pore structure and superhydrophobic/superoleophilic properties was prepared using 3D printing for high-efficiency oil-water separation. The gradient pore structure developed here can support a flux of up to 25434?L/m~(2)h, which is nearly 40% higher than that an analogous structure with straight pores. At 200?°C, the oil-water separation performance was maintained at 97.4%. Furthermore, samples of the material exhibited outstanding mechanical properties, and chemical stability in a variety of harsh environments. This study provides an efficient, simple, and reliable method for manufacturing oil-water separation materials using 3D printing, and may have broader implications for both fundamental research and industrial applications.
机译:过度淋浴表面有可能通过分离两者的能力来解决水中的油污。然而,使用常规制造技术制造稳定和有效的分离结构仍然是一个很大的挑战。此外,传统上用于油水分离的材料在高温下不稳定。因此,需要开发稳定,可定制的结构,以改善油水分离装置的性能。近年来,3D印刷技术发展迅速,采用该技术制造了复杂的陶瓷结构的突破。这里,使用3D印刷制备具有梯度孔结构和超疏水/超级电感性质的陶瓷材料,用于高效油水分离。此处开发的梯度孔结构可支持高达25434Ω·L / m〜(2)H的通量,其比具有直孔的类似结构高的40%近40%。在200℃时,油水分离性能保持在97.4%。此外,材料的样品表现出突出的机械性能,以及各种恶劣环境中的化学稳定性。本研究提供了一种使用3D打印制造油水分离材料的高效,简单,可靠的方法,并且对基础研究和工业应用可能具有更广泛的影响。

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