DocumentCode :
2579930
Title :
Characterization and control of a high-Q MEMS inertial sensor using low-cost hardware
Author :
Gregory, J.A. ; Cho, J. ; Najafi, K.
Author_Institution :
Center for Wireless Integrated Microsensing & Syst. (WIMS2), Univ. of Michigan Ann Arbor, Ann Arbor, MI, USA
fYear :
2012
fDate :
23-26 April 2012
Firstpage :
239
Lastpage :
247
Abstract :
We propose a high-performance, low-cost system for control and characterization of MEMS rate and rate-integrating gyroscopes and other resonant sensors. MEMS gyroscopes, some accelerometers and clocks utilize mechanical resonators. High-quality factor, low-frequency resonator devices with damping time constants from seconds to several minutes pose special characterization challenges. The proposed system uses the commercial “USRP” software defined radio (SDR) hardware and open source GnuRadio software as a platform for the proposed characterization and control system. For characterization of resonators, we developed software to perform dual channel swept-frequency gain-phase analysis, impulse response real-time spectral analysis, and ring down testing which achieve performance comparable to dedicated commercial hardware. To highlight the capabilities of the characterization tools, we implemented an automatic mode matching algorithm in the software. The same hardware is used for control of gyroscopes in either rate or rate integrating modes. We present here two control schemes; a rate-only control implemented entirely in the FPGA of a USRP1, and a hybrid software/firmware control which is capable of rate and rate-integrating operation. Experimental results of characterization, automatic tuning and rate-mode operation of a rate and rate-integrating MEMS gyroscope are presented to demonstrate the viability of the proposed system.
Keywords :
Q-factor; accelerometers; clocks; firmware; gyroscopes; inertial systems; micromechanical resonators; microsensors; mode matching; public domain software; software radio; transient response; FPGA; MEMS rate; SDR hardware; USRP software defined radio; accelerometer; automatic mode matching algorithm; automatic tuning; clock; control system; damping time constant; dual channel swept-frequency gain-phase analysis; high-Q MEMS inertial sensor; high-performance low-cost system; high-quality factor; hybrid software/firmware control; impulse response real-time spectral analysis; low-cost hardware; low-frequency resonator device; mechanical resonator; open source GnuRadio software; rate-integrating MEMS gyroscope; rate-integrating gyroscope; rate-mode operation; rate-only control; resonant sensor; resonator characterization; ring down testing; Bandwidth; Generators; Graphical user interfaces; Software;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Position Location and Navigation Symposium (PLANS), 2012 IEEE/ION
Conference_Location :
Myrtle Beach, SC
ISSN :
2153-358X
Print_ISBN :
978-1-4673-0385-9
Type :
conf
DOI :
10.1109/PLANS.2012.6236886
Filename :
6236886
Link To Document :
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