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Liquid flow and control without solid walls 期刊论文
NATURE, 2020, 581 (7806) : 58-+
作者:  Hellmuth, Susanne;  Stemmann, Olaf
收藏  |  浏览/下载:50/0  |  提交时间:2020/07/03

Wall-free liquid channels surrounded by an immiscible magnetic liquid can be used to create liquid circuitry or to transport human blood without damaging the blood cells by moving permanent magnets.


When miniaturizing fluidic circuitry, the solid walls of the fluid channels become increasingly important(1) because they limit the flow rates achievable for a given pressure drop, and they are prone to fouling(2). Approaches for reducing the wall interactions include hydrophobic coatings(3), liquid-infused porous surfaces(4-6), nanoparticle surfactant jamming(7), changes to surface electronic structure(8), electrowetting(9,10), surface tension pinning(11,12) and use of atomically flat channels(13). A better solution may be to avoid the solid walls altogether. Droplet microfluidics and sheath flow achieve this but require continuous flow of the central liquid and the surrounding liquid(1,14). Here we demonstrate an approach in which aqueous liquid channels are surrounded by an immiscible magnetic liquid, both of which are stabilized by a quadrupolar magnetic field. This creates self-healing, non-clogging, anti-fouling and near-frictionless liquid-in-liquid fluidic channels. Manipulation of the field provides flow control, such as valving, splitting, merging and pumping. The latter is achieved by moving permanent magnets that have no physical contact with the liquid channel. We show that this magnetostaltic pumping method can be used to transport whole human blood with very little damage due to shear forces. Haemolysis (rupture of blood cells) is reduced by an order of magnitude compared with traditional peristaltic pumping, in which blood is mechanically squeezed through a plastic tube. Our liquid-in-liquid approach provides new ways to transport delicate liquids, particularly when scaling channels down to the micrometre scale, with no need for high pressures, and could also be used for microfluidic circuitry.


  
Formation, Growth, and Failure of Debris Jams at Bridge Piers 期刊论文
WATER RESOURCES RESEARCH, 2018, 54 (9) : 6226-6241
作者:  Panici, Diego;  de Almeida, Gustavo A. M.
收藏  |  浏览/下载:5/0  |  提交时间:2019/04/09
large wood debris  flood risk  bridge clogging  bridge pier  debris jam  
Interactions Between Suspended Kaolinite Deposition and Hyporheic Exchange Flux Under Losing and Gaining Flow Conditions 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2018, 45 (9) : 4077-4085
作者:  Fox, Aryeh;  Packman, Aaron I.;  Boano, Fulvio;  Phillips, Colin B.;  Arnon, Shai
收藏  |  浏览/下载:19/0  |  提交时间:2019/04/09
clay transport  sediment transport  clogging  hyporheic exchange  deposition  stream-groundwater interactions  
Experimental investigation of clogging dynamics in homogeneous porous medium 期刊论文
WATER RESOURCES RESEARCH, 2017, 53 (3)
作者:  Shen, Jikang;  Ni, Rui
收藏  |  浏览/下载:5/0  |  提交时间:2019/04/09
clogging  filtration  refractive-index matching  particle tracking  
Linking deposit morphology and clogging in subsurface remediation: Final Technical Report 科技报告
来源:US Department of Energy (DOE). 出版年: 2013
作者:  Mays, David C. [University of Colorado Denver]
收藏  |  浏览/下载:10/0  |  提交时间:2019/04/05
groundwater  remediation  permeability  clogging  colloids  fractal