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一种受深海玻璃海绵启发设计的过滤器,用于在湍流条件下清理油污。

A filter inspired by deep-sea glass sponges for oil cleanup under turbulent flow.

作者信息

Yu Yuan, Ding Chi, Zhang Jinna, Ren Nanqi, Tang Chuyang Y, You Shijie

机构信息

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin, 150090, P. R. China.

Beijing Engineering Corporation Limited, Power China, Beijing, 100024, P. R. China.

出版信息

Nat Commun. 2025 Jan 2;16(1):209. doi: 10.1038/s41467-024-55587-y.

Abstract

Oil spill disasters lead to widespread and long-lasting social, economical, environmental and ecological impacts. Technical challenges remain for conventional static adsorption due to hydrodynamic instability under complex water-flow conditions, which results in low oil-capture efficiency, time delay and oil escape. To address this issue, we design a vortex-anchored filter inspired by the anatomy of deep-sea glass sponges (E. aspergillum) by mimicking their exceptional skeletal features and filter-feeding patterns. Results demonstrate that the vortex-anchored filter can retain external turbulent-flow kinetic energy in low-speed vortical flow with small Kolmogorov microscale (85 μm) in the cavity of skeleton, leading to enhanced interfacial mass transfer and residence time by physical field synergy. It improves hydrodynamic stability by reducing Reynolds stresses in nearly quiescent wake flow. The vortex-anchored filter can realize >97% capture of floating, underwater and emulsified oils stably at Reynolds numbers ranging from subcritical to supercritical regimes. This study not only highlights the importance of vortex-anchored mechanism in enhancing interfacial mass transfer and hydrodynamic stability during oil capture beyond previously known benefits of increased residence time, but also represents a paradigm shift to advance biophysically inspired strategies for in-situ, dynamic and robust cleanup of spilled oil, environmental remediation and resource recovery.

摘要

石油泄漏灾难会导致广泛且持久的社会、经济、环境和生态影响。在复杂水流条件下,由于流体动力学不稳定性,传统静态吸附面临技术挑战,这导致捕油效率低、时间延迟和油泄漏。为解决这一问题,我们受深海玻璃海绵(E. aspergillum)的解剖结构启发,通过模仿其独特的骨骼特征和滤食模式,设计了一种涡旋锚定过滤器。结果表明,涡旋锚定过滤器能够在骨架腔内具有小科尔莫戈罗夫微尺度(85μm)的低速涡旋流中保留外部湍流动能,通过物理场协同作用增强界面传质和停留时间。它通过降低近静态尾流中的雷诺应力来提高流体动力学稳定性。涡旋锚定过滤器在雷诺数从亚临界到超临界范围内,能够稳定地实现对漂浮油、水下油和乳化油>97%的捕获。这项研究不仅突出了涡旋锚定机制在增强捕油过程中界面传质和流体动力学稳定性方面的重要性,超越了此前已知的增加停留时间的益处,还代表了一种范式转变,以推进受生物物理启发的策略,用于原位、动态和稳健地清理溢油、环境修复和资源回收。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4cc4/11696985/9ae243e3cf7c/41467_2024_55587_Fig1_HTML.jpg

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