Advances in microfluidics by Ryan T Kelly PDF

By Ryan T Kelly

ISBN-10: 9535101064

ISBN-13: 9789535101062

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Wagner, S. (2003). Microfluidic actuation by modulation of surface stresses, Appl. Phys. Lett. 82: 657–659. , Banavar, J. R. & Koplik, J. (1996). Suppression of coalescence by shear and temperature gradients, Phys. Fluids 8: 15–28. PHF/8/15/1 Dixit, S. , Eid, A. & Faris, G. W. (2010). Light-driven formation and rupture of droplet bilayers, Langmuir 26: 6193–6200. , Arduini, S. & Braun, D. (2004). Thermophoresis of DNA determined by microfluidic fluorescence, Eur. Phys. J. E 15: 277–286. 1140/epje/i2004-10073-5 Duhr, S.

Carles, P. (1990). Fingering instability of thin spreading films driven by temperature gradients, Nature 346: 824–826. 1038/346824a0 Chen, J. , Troian, S. , Darhuber, A. A. & Wagner, S. (2005). Effect of contact angle hysteresis on thermocapillary droplet actuation, J. Appl. Phys. 97: 014906. JAP/97/014906/1 24 22 Advances Will-be-set-by-IN-TECH in Microfluidics Chen, Y. , Lu, Y. , Yang, Y. M. & Maa, J. R. (1997). Surfactant effects on the motion of a droplet in thermocapillary migration, Int.

This technique used to illustrate velocity fields, enables mapping of the velocity field in subsequent channel cross sections (at different positions of the stream in the outflow channel), and consequently allows velocity to be measured in the entire liquid volume. The limit of applicability of this technique is determined by curvature of the focused stream which cannot be bigger than the depth of correlation of micro-PIV. Deformations limiting in this way applicability of the hydrodynamic focusing to a modification of the micro-PIV technique are primarily the 48 Advances in Microfluidics functions of the Reynolds number, and for the non-symmetric variant of focusing also the ratio of velocities of the flowing media.

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Advances in microfluidics by Ryan T Kelly


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