DocumentCode :
1386227
Title :
Performance of a Compliant Structure for a Thermal Resonant Microgyroscope
Author :
Shakoor, Rana I. ; Srinivasan, P. ; Bazaz, S.A.
Author_Institution :
Nano-Devices Group, Nat. Inst. of Lasers & Optronics (NILOP), Islamabad, Pakistan
Volume :
11
Issue :
6
fYear :
2011
fDate :
6/1/2011 12:00:00 AM
Firstpage :
1465
Lastpage :
1475
Abstract :
Realizing a structure that allows integration of actuation and sensing components operating at identical frequency is critical from functional standpoint of resonant microgyroscope. This paper presents the design and experimental test results of a compliant nickel structure for a microgyroscope. The device consists of three suspended proof masses supported by in-plane flexures anchored to the substrate thereby enabling to realize distinct driving and sensing components. Chevron-shaped beams driven electrothermally were employed for actuating drive component while parallel electrostatic combs were employed for sensing the Coriolis force induced rotation. Experimental investigation of the dynamic performance of the actuator and sensor structures revealed that their operating frequencies are very close (within 1%) thereby enabling to realize resonant microgyroscope with increased sensitivity. Comparison of the experimental results with the predictions made by analytical and finite-element models agreed well within 15%. Design guidelines for realizing microgyroscope with improved performance were briefly discussed highlighting the challenges associated with the frequency tuning.
Keywords :
Coriolis force; finite element analysis; gyroscopes; micromechanical devices; nickel; sensors; Coriolis force induced rotation; chevron-shaped beams; compliant nickel structure; distinct driving-sensing components; finite-element models; frequency tuning; inplane flexures; parallel electrostatic combs; thermal resonant microgyroscope; Analytical models; Finite element methods; Gyroscopes; Nickel; Resonant frequency; Sensors; Springs; Compliant structures; gyroscope; microactuator; resonant sensor;
fLanguage :
English
Journal_Title :
Sensors Journal, IEEE
Publisher :
ieee
ISSN :
1530-437X
Type :
jour
DOI :
10.1109/JSEN.2010.2094185
Filename :
5643095
Link To Document :
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