DocumentCode :
1605576
Title :
Microbubble powered actuator
Author :
Liwei Lin ; Pisano, A.P. ; Lee, A.P.
Author_Institution :
Berkeley Sensor & Actuator Center, California Univ., CA, USA
fYear :
1991
Firstpage :
1041
Lastpage :
1044
Abstract :
A micromechanical, bubble-powered actuator is presented which can produce mechanical displacements as large as 140 mu m of a polysilicon actuator plate in a direction perpendicular to the substrate with as little as 8.4 mA input current. This device has been designed, fabricated, and successfully tested to have controllable displacement in a nonconducting liquid (Fluorinert FC43). The principle of actuation is the local heating of a polysilicon line resistor (immersed in liquid) in order to create a single, controllable microbubble that expands and lifts the actuator plate formed at the end of a microcantilever beam. The displacement of this actuator is stable and is controllable by adjusting the input current, which changes the bubble size and, subsequently, changes the actuator plate displacement. Linear beam theory has been used to calculate the displacement of the actuator plate and a simplified model has been used to explain the thermal behavior of the bubble.<>
Keywords :
bubbles; electric actuators; micromechanical devices; silicon; 8.4 mA; Fluorinert FC43; bubble-powered actuator; controllable displacement; input current; linear beam theory; local heating; mechanical displacements; microactuator; microbubble powered actuator; microcantilever beam; model; nonconducting liquid; polycrystalline Si plate; Actuators; Displacement control; Fabrication; Ink; Micromechanical devices; Resistors; Structural beams; Testing; Thermal force; Wet etching;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Solid-State Sensors and Actuators, 1991. Digest of Technical Papers, TRANSDUCERS '91., 1991 International Conference on
Conference_Location :
San Francisco, CA, USA
Print_ISBN :
0-87942-585-7
Type :
conf
DOI :
10.1109/SENSOR.1991.149074
Filename :
149074
Link To Document :
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