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用于选择性油水分离的仿生微流控泵

Biomimetic Microfluidic Pumps for Selective Oil-Water Separation.

作者信息

Wang Zhaolong, Li Yinfeng, Xie Mingzhu, Zhan Ziheng, Li Wenhao, Xie Qihui, Shuai Yong, Dong Zhichao, Wang Zuankai

机构信息

School of Energy Science and Engineering, Harbin Institute of Technology, Harbin, 150001, P. R. China.

Zhengzhou Research Institute, Harbin Institute of Technology, Zhengzhou, 450046, China.

出版信息

Adv Sci (Weinh). 2025 Jul;12(27):e2503511. doi: 10.1002/advs.202503511. Epub 2025 Apr 26.

Abstract

Addressing the challenges posed by oil pollution from both domestic and industrial sources-which contributes to energy waste and environmental degradation-is critical. Here, a new, efficient, and sustainable oil/water separation system is presented using biomimetic spring microchannels created through precise projection micro-stereolithography-based 3D printing technique. This innovative system allows for the swift separation of mixed oil and water phases into distinct and pure streams, achieving a high separation flux of up to 292.5 L m h. The separation efficiency, consistently maintained over 99%, leverages the synergistic effects of surface wettability and molecular polarity to handle multiple oils with varying densities and surface tensions. Moreover, the biomimetic microchannels precise capturing of the oil/water interface and offer flexibility to initiate separation by prefilling the channels with either oil or water. Furthermore, these microchannels effectively prevent clogging, ensuring sustained performance. A significant enhancement is also demonstrated in separating crude oil from water by solar irradiation to reduce its viscosity, with a notable separation rate of 22.5 L m h for individual channels. The findings underscore the potential of 3D bionic functional spring microchannels for selectively separating a wide range of oil-water mixtures with exceptional efficiency.

摘要

应对来自家庭和工业源的油污所带来的挑战——这会导致能源浪费和环境退化——至关重要。在此,利用基于精确投影微立体光刻的3D打印技术创建的仿生弹簧微通道,提出了一种新型、高效且可持续的油/水分离系统。这种创新系统能够迅速将混合的油相和水相分离成清晰、纯净的流股,实现高达292.5 L m h的高分离通量。分离效率始终保持在99%以上,利用表面润湿性和分子极性的协同效应来处理多种密度和表面张力不同的油。此外,仿生微通道精确捕获油/水界面,并通过用油或水预先填充通道来灵活启动分离。此外,这些微通道有效防止堵塞,确保持续性能。通过太阳辐射降低原油粘度以从水中分离原油方面也有显著提升,单个通道的分离速率可达22.5 L m h。这些发现强调了3D仿生功能弹簧微通道在高效选择性分离各种油水混合物方面的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/acd0/12279168/f5c620e9103f/ADVS-12-2503511-g005.jpg

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