Title :
Control mechanism of an organic self-regulating microfluidic system
Author :
Lee, Sanghoon ; Eddington, David T. ; Kim, Youngmin ; Kim, Wooseung ; Beebe, David J.
Author_Institution :
Dept. of Biomed. Eng., Dankook Univ., Cheonan, South Korea
Abstract :
The control mechanism and fluid dynamic properties of a previously developed organic pH regulation system are analyzed. The system regulates an output fluid stream to a pH of 6.7 with varying input flow rates. A pH sensitive hydrogel post acts as the feedback pH sensor and flow regulator. The control mechanism of the system is studied through numerical modeling of the regulator and the model is validated through experimentation. Analysis of the fluid dynamics at a T-channel junction, in which two buffer streams merge into one, is performed by solving the Navier-Stokes equation with commercial software. Various areas of a star-shaped orifice are occluded by a flexible membrane to throttle the rate that compensating buffer is fed back into the system. The relationship between orifice open area and volume of compensating buffer through the orifice was analyzed numerically. The axial and lateral visualization of the hydrogel post was obtained via optical microscopy. The model of the regulation system successfully predicts experimental results.
Keywords :
Navier-Stokes equations; biomimetics; computational fluid dynamics; feedback; flow control; intelligent actuators; intelligent materials; microfluidics; microvalves; pH control; polymer gels; swelling; 3-D micromolded channel network; CFD; Navier-Stokes equation; T-channel junction; biocompatible systems; control mechanism; feedback control; feedback pH sensor; flexible membrane; fluid dynamic properties; optical microscopy; organic pH regulation system; organic self-regulating microfluidic system; output fluid stream; pH sensitive hydrogel post; responsive hydrogels; star-shaped orifice; swelling behavior; Control systems; Feedback; Fluid dynamics; Fluid flow control; Mechanical factors; Microfluidics; Optical buffering; Optical microscopy; Orifices; Regulators;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2003.820292