Title :
Microdispenser With Continuous Flow and Selectable Target Volume for Microfluidic High-Pressure Applications
Author :
Boden, Roger ; Ogden, Sean ; Hjort, Klas
Author_Institution :
Dept. of Eng. Sci., Uppsala Univ., Uppsala, Sweden
Abstract :
This paper presents a reusable microdispenser intended for continuous flow dispensing of variable and controlled volumes of liquid against high back-pressures. The microdispenser consists of two active valves and a dispenser chamber, all actuated by the volume change associated with the solid-to-liquid phase transition of paraffin wax. It is fabricated using stainless steel sheets, a flexible printed circuit board, and a polyimide membrane. All are covered with Parylene C for insulation and fusion bonding at assembly. A finite element method (FEM) model of the paraffin actuator is used to predict the resulting flow characteristics. The results show dispensing of well-defined volumes of 350 and 540 nL, with a good repeatability between dispensing sequences, as well as reproducibility between devices. In addition, the flow characteristics show no back-pressure dependence of the dispensed flow in the interval 0.5-2.0 MPa. The FEM model can be used to predict the flow characteristics qualitatively.
Keywords :
finite element analysis; flexible electronics; microactuators; microfabrication; microfluidics; micropumps; polymers; printed circuits; solid-liquid transformations; stainless steel; FEM model; Parylene C; active valves; continuous flow; controlled volumes; dispensed flow; dispenser chamber; dispensing sequences; finite element method; flexible printed circuit board; flow characteristics; fusion bonding; high back-pressures; insulation; microdispenser; microfluidic high-pressure applications; paraffin actuator; paraffin wax; polyimide membrane; selectable target volume; solid-to-liquid phase transition; stainless steel sheets; Actuators; Cavity resonators; Heating; Liquids; Micropumps; Pressure measurement; Valves; High pressure; MEMS; liquid chromatography; microdispenser; micropump; phase change material;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2013.2279976