DocumentCode :
2422422
Title :
A 3D-3C Micro-PIV Method
Author :
Pommer, Matthew S. ; Kiehl, A.R. ; Soni, Gaurav ; Dakessian, Nora S. ; Meinhart, Carl D.
Author_Institution :
Dept. of Mech. Eng., California Univ., Santa Barbara, CA
fYear :
2007
fDate :
16-19 Jan. 2007
Firstpage :
1196
Lastpage :
1201
Abstract :
The authors present an experimental method to construct a three-dimensional (3D) three-component (3C) velocity distribution with micron spatial resolution. The micron resolution particle image velocimetry (micro-PIV) technique and the concept of continuity are used to estimate the out-of-plane component of velocity. The micro-PIV technique is used to resolve a number of 2D-2C (x,y,u,v) velocity-vector field layers spaced a known distance in the out-of-plane direction. The method requires some a priori knowledge such as a wall condition or plane of symmetry, and the method can be used to investigate steady or phase referenced flows. To demonstrate the capabilities of the method we determined the velocity distribution around an individual living human red blood cell adhered within a glass microchannel. The relatively small cell demonstrated the spatial resolution of the method. A number of velocity vector fields were resolved with the out-of-plane velocity estimated. A numerical simulation was constructed to show agreement with the experimental results. The spatial resolution of the experimental results where order 3 mum for the in-plane components and order 2 mum in the out-of-plane direction. The uncertainty of the out-of-plane velocity is calculated and estimated at each layer.
Keywords :
blood; flow measurement; microchannel flow; velocimeters; 3D three-component velocity distribution; microfluidics; particle image velocimetry; phase referenced flows; red blood cells; spatial resolution; velocity-vector fields; Assembly; Glass; Image resolution; Microchannel; Microfluidics; Numerical simulation; Red blood cells; Spatial resolution; Systems engineering and theory; Uncertainty; microchannel; microfluidics; red blood cell; three-component; three-dimensional; velocity distribution;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nano/Micro Engineered and Molecular Systems, 2007. NEMS '07. 2nd IEEE International Conference on
Conference_Location :
Bangkok
Print_ISBN :
1-4244-0610-2
Type :
conf
DOI :
10.1109/NEMS.2007.352234
Filename :
4160537
Link To Document :
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