Title :
Improved micro-flow regulator for drug delivery systems
Author :
Cousseau, P. ; Hirschi, R. ; Frehner, B. ; Gamper, S. ; Maillefer, D.
Author_Institution :
Debiotech S.A., Lausanne, Switzerland
Abstract :
The paper reports on the design, manufacturing, and experimental testing of a micromachined pressure compensating flow regulator. This device was designed to provide a constant liquid flow rate of 1 ml/hr within a pressure difference of 100 to 600 mbar. At pressures higher than 600 mbar the device is designed to block the flow, preventing an over-delivery of medicine. Structural and fluidic simulations were used to design the geometry of the device before manufacturing. After devices have been characterized experimental results demonstrate the credibility of the design, the accuracy of the flow rate and the long-term stability of the device. One application of this device is the replacement of the flow restrictor in an elastomeric infusion system, which will increase the accuracy and safety of the drug delivery system. This pressure compensating flow regulator is passive, hence it needs no external energy source. The device is relatively inexpensive to manufacture and is therefore, potentially a disposable unit in a microfluidic system. Finally, it is small and lightweight, ideal for portable applications.
Keywords :
biocontrol; drug delivery systems; flow control; microfluidics; 100 to 600 mbar; drug delivery system; elastomeric infusion system; flow restrictor; fluidic simulation; liquid flow rate; microfluidic system; micromachined pressure compensating micro-flow regulator; portable instrument; Drug delivery; Fluid flow; Geometry; Medical simulation; Pulp manufacturing; Regulators; Solid modeling; Stability; Testing; Virtual manufacturing;
Conference_Titel :
Micro Electro Mechanical Systems, 2001. MEMS 2001. The 14th IEEE International Conference on
Conference_Location :
Interlaken, Switzerland
Print_ISBN :
0-7803-5998-4
DOI :
10.1109/MEMSYS.2001.906595