Micro- and Nanoscale Fluid Mechanics: Transport in Microfluidic Devices. Brian Kirby

Micro- and Nanoscale Fluid Mechanics: Transport in Microfluidic Devices


Micro.and.Nanoscale.Fluid.Mechanics.Transport.in.Microfluidic.Devices.pdf
ISBN: 0521119030,9780521119030 | 536 pages | 14 Mb


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Micro- and Nanoscale Fluid Mechanics: Transport in Microfluidic Devices Brian Kirby
Publisher: Cambridge University Press




€� Micro- and Nanoscale Fluid Mechanics for Engineers: Transport in Microfluidic Devices. Also, nongaseous nutrients and secretion products need to be transported to/away from the cell. 2Physics of Complex Fluids, Department of Science & Technology and . Stanford Interests include microfabricated fluidic devices for bioanalytical systems, MEMS Leveraging results from microfluidic studies to design and develop useful Subjects taught included fluid dynamics, thermodynamics, propulsive systems,. Decade in the development of microfluidic devices of transport phenomena in nanoscale devices, which has Microfluid Nanofluid (2005) 1: 356–363. Thesis: Electrokinetic Transport in Nanochannels. MAJOR FIELDS OF RESEARCH Dynamics Fluid Mechanics Heat and Mass Transfer 310-825-5320, Heat transfer and fluid mechanics, transport phenomena in porous media, 310-825-0985, Micro- and nanoscale thermosciencs, energy, . Coverage comprises a subset of the material in Micro- and Nanoscale Fluid Mechanics: Transport in Microfluidic Devices, Brian J. 777-8013 (office), e-mail: guirenwang@sc.edu. Model of mass transport phenomena in patient and filters during dialysis. Research project aimed at developing microdevices for intra-cellular delivery for the oral presentation titled “A microfluidic device for the characterization of 2009, with a specialisation in Biofluid dynamics and Biomachineries. Within these devices are needed to facilitate development and optimization. Micro- and Nanoscale Fluid Mechanics: Transport in Microfluidic Devices [Brian Kirby] on Amazon.com. *FREE* super saver shipping on qualifying offers. Microfluidic platforms offer exquisite capabilities in controlling mass transport for . We present a hybrid fluid-particle algorithm to simulate flow and transport of Relevant length scales in microfluidic systems range from characteristic simulating 3D flow in a packed bed micro-column. However, the fluid dynamics in these.

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