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Eddies in a bottleneck: an arbitrary Debye length theory for capillary electroosmosis.

Eddies in a bottleneck: an arbitrary Debye length theory for capillary electroosmosis. Research Abstract Details 

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  • Eddies in a bottleneck: an arbitrary Debye length theory for capillary electroosmosis. Abstract Text:

    stella y parkStella Y Park,christopher j russoChristopher J Russo,daniel brantonDaniel Branton,howard a stoneHoward A Stone,

    Using an applied electrical field to drive fluid flows becomes desirable as channels become smaller. Although most discussions of electroosmosis treat the case of thin Debye layers, here electroosmotic flow (EOF) through a constricted cylinder is presented for arbitrary Debye lengths (kappa(-1)) using a long wavelength perturbation of the cylinder radius. The analysis uses the approximation of small potentials. The varying diameter of the cylinder produces radially and axially varying effective electric fields, as well as an induced pressure gradient. We predict the existence of eddies for certain constricted geometries and propose the possibility of electrokinetic trapping in these regions. We also present a leading-order criterion which predicts central eddies in very narrow constrictions at the scale of the Debye length. Eddies can be found both in the center of the channel and along the perimeter, and the presence of the eddies is a consequence of the induced pressure gradient that accompanies electrically driven flow into a narrow constriction.

    Eddies in a bottleneck: an arbitrary Debye length theory for capillary electroosmosis. Publishing Authors By Initials

    sy parkSY Park,cj russoCJ Russo,d brantonD Branton,ha stoneHA Stone,

    For similar biochemical phenomena, metabolism, and nutrition: biochemical phenomena: osmosis research abstracts see: biochemical phenomena, metabolism, and nutrition: biochemical phenomena: osmosis research

    PUBMED ID PMID:

    MEDLINE DATE:

    Eddies in a bottleneck: an arbitrary Debye length theory for capillary electroosmosis. Journal Published:

    PUBLICATION TYPE: Research Support, Non-U.S. Gov

    Journal: Journal of colloid and interface science

    VOLUME: 297

    Page Numbers: 832-9

    Journal Abbreviation:

    ISSN: 0021-9797

    DAY: 9

    MONTH: 01

    YEAR: 2006

    Eddies in a bottleneck: an arbitrary Debye length theory for capillary electroosmosis. Information

    Number of References:

    LANGUAGE: eng

    NlmUniqueID: 43125

    Eddies in a bottleneck: an arbitrary Debye length theory for capillary electroosmosis. Keywords Mesh Terms:

    KEYWORDS: Osmosis

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    Grant and Affiliation Information for Eddies in a bottleneck: an arbitrary Debye length theory for capillary electroosmosis.

    AFFILIATION: Department of Molecular and Cellular Biology, Harvard University, Cambridge, MA 02138, USA.

    Country: United States

    United States Research PublicationUnited States Research Publication

    AGENCY: United States NHGRI

    GRANT: HG02338

    ACRONYM: HG

    MEDLINETA: J Colloid Interface Sci

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