Fabrication of a Valveless Micropump with Polyimide Membrane
スポンサーリンク
概要
- 論文の詳細を見る
A valveless/diffuser micropump with a thin polyimide membrane was designed, fabricated using surface micromachining and characterized. The micropump was actuated by deforming the membrane with alternating air pressure. The micropump chamber had the depth of 525 μm, and the diameter was 7 mm. The top side of the chamber was covered by the polyimide membrane with the thickness of 5.4 μm, and the polyimide ftlm was deposited using the spin coating technique. The deflection of membrane was large, and was nearly 200μm at the static air pressure of 10 kPa and 350μm at 30 kPa. The residual stress in the polyimide membrane induced through the fabrication processes was estimated to be 18.9 MPa. The static pressure limit of the membrane prior to fracture was over 200 kPa. The flow rate of water in the micropump reached 310 μl/min with the applied air pressure of 10 kPa at 3 Hz. Based on the advantages of surface micromachining processes and nice mechanical characteristics of polyimide membrane, fabrication of further miniaturized micropumps such as nanoliter-level micropumps using similar fabrication processes may be possible.
- 2010-08-01
著者
-
LIU Yingwei
Department of Precision Machinery Engineering, College of Science and Technology, Nihon University
-
MATSUNO Shingo
Department of Precision Machinery Engineering, College of Science and Technology, Nihon University
-
KOMATSUZAKI Hiroki
Department of Precision Machinery Engineering, College of Science and Technology, Nihon University
-
IMAI Satomitsu
Department of Precision Machinery Engineering, College of Science and Technology, Nihon University
-
NISHIOKA Yasushiro
Department of Precision Machinery Engineering, College of Science and Technology, Nihon University
-
Imai Satomitsu
Department Of Precision Machinery Engineering College Of Science And Technology Nihon University
-
Imai Satomitsu
Department Of Mechanical Engineering Tokyo Metropolitan College Of Aeronautical Engineering
-
Matsuno Shingo
Department Of Precision Machinery Engineering College Of Science And Technology Nihon University
-
Liu Yingwei
Department Of Precision Machinery Engineering College Of Science And Technology Nihon University
-
Komatsuzaki Hiroki
Department Of Precision Machinery Engineering College Of Science And Technology Nihon University
-
Nishioka Yasushiro
Department Of Precision Machinery Engineering College Of Science And Technology Nihon University
-
Nishioka Yasushiro
Department Of Physics Faculty Of Science University Of Tokyo
関連論文
- Fabrication of a Valveless Micropump with Polyimide Membrane
- Single-Molecule Behaviors of Conjugated 2,2'-Bipyridine Derivative Inserted in Matrix Layer Using Dendrimer-Based Template
- Verification of the Mechanism of the Head-Positioning Error Caused by Disk Flutter and Slider Supporting Structure for Reducing Head-Positioning Error
- Diffuser Micropump Structured with Extremely Flexible Diaphragm of 2-μm-thick Polyimide Film
- Effect of 2-Propanol Concentration in Electrolyte Solution on Polypyrrole Actuator Performance
- Lead--Zirconate--Titanate Acoustic Energy Harvesters with Dual Top Electrodes
- Flexible polyimide micropump fabricated using hot embossing (Special issue: Microprocesses and nanotechnology)
- Plastic Flow in bcc ^3He
- Fabrication processes for capacity-equalized mold with fine patterns (Special issue: Microprocesses and nanotechnology)
- Single-Molecule Behaviors of Conjugated 2,2$'$-Bipyridine Derivative Inserted in Matrix Layer Using Dendrimer-Based Template
- Effective Linewidth Measurement of 45-nm-Half-Pitch Ultraviolet Nanoimprint Lithography Patterns by Scanning Electron Microscope Inspection and Extremely Shallow Si Etching (Special Issue : Microprocesses and Nanotechnology)
- Improved Performances of Acoustic Energy Harvester Fabricated Using Sol/Gel Lead Zirconate Titanate Thin Film
- Lead-Zirconate-Titanate Acoustic Energy Harvester Equipped with Sound-Collecting Helmholtz Resonator
- Semitransparent Gold-Meshed Electrode Fabricated by Transfer Printing Using Self-Organized Microporous Polymer Mold
- Organic Solar Cells Based on Ternary Blend Active Layer of Two Donors PTB7, P3HT and Accepter PC61BM