DocumentCode :
61164
Title :
Quality Factor Maximization Through Dynamic Balancing of Tuning Fork Resonator
Author :
Zotov, Sergei A. ; Simon, Brenton R. ; Prikhodko, Igor P. ; Trusov, Alexander A. ; Shkel, Andrei M.
Author_Institution :
Dept. of Mech. & Aerosp. Eng., Univ. of California at Irvine, Irvine, CA, USA
Volume :
14
Issue :
8
fYear :
2014
fDate :
Aug. 2014
Firstpage :
2706
Lastpage :
2714
Abstract :
This paper presents a method of dynamically balancing tuning fork microresonators, enabling maximization of quality factor (Q-factor) in structures with imperfections. Nonsymmetric tuning of stiffness in a coupled 2-DOF resonator is completed through the use of the negative electrostatic spring effect. This variable stiffness is shown to be able to adjust the reaction forces of the structure at the anchors, effectively balancing any spring imperfections caused by fabrication imperfections. Balancing the structure through stiffness matching minimizes the loss of energy through the substrate and maximizes Q-factor of the device´s antiphase mode. The approach is experimentally demonstrated using a vacuum packaged microelectromechanical tuning fork resonator with operational frequency of 2.2 kHz and antiphase Q-factor of 0.6 million. By electrostatically tuning the reaction force at the anchors caused by fabrication imperfections, anchor loss can be suppressed, increasing the Q-factor to above 0.8 million. The experimentally validated analytical model of substrate dissipation is confirmed to be applicable to Q-factor tuning in antiphase driven resonators and gyroscopes.
Keywords :
Q-factor; electronics packaging; electrostatic devices; microcavities; microfabrication; micromechanical resonators; optimisation; vibrations; anchor structure; antiphase Q-factor maximization; antiphase driven resonator; antiphase mode device; coupled 2-DOF resonator; dynamic balancing tuning fork microresonator; frequency 2.2 kHz; gyroscope; negative electrostatic spring effect; quality factor maximization; reaction force adjustment; spring imperfection; substrate dissipation model; vacuum packaged microelectromechanical tuning fork resonator; Mathematical model; Optical resonators; Q-factor; Springs; Substrates; Tuning; Vibrations; MEMS; Q-factor; tuning fork resonator;
fLanguage :
English
Journal_Title :
Sensors Journal, IEEE
Publisher :
ieee
ISSN :
1530-437X
Type :
jour
DOI :
10.1109/JSEN.2014.2314614
Filename :
6782434
Link To Document :
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