Title :
Experimental evaluation of alternative drive-mode control electronics developed for high-performance MEMS gyroscopes
Author :
Sahin, E. ; Alper, S.E. ; Akin, T.
Author_Institution :
MEMS Res. & Applic. Center, Middle East Tech. Univ., Ankara, Turkey
Abstract :
This paper presents the illustrative measurement results of a comprehensive study for understanding the effects of different drive-mode control electronic architectures on the overall performance of a micromachined capacitive vibratory gyroscope. Three different control electronic architectures have been implemented for generating either (a) square wave, (b) sinusoidal wave or (c) complex waveform driving signals for the gyroscope under test. Performance characterization of the gyroscope with these control electronics indicate that the electronics generating the sinusoidal wave drive waveform provides the lowest white noise among the others, with an angle random walk reaching down to 0.03°/hr1/2 at least twice lower than its closest competitor. On the other hand, the bias stability of the gyroscope is observed to be almost unchanged for electronics that generate different drive waveforms indicating that the bias stability is still dominated by a noise source other than the drive-mode control electronic architectures.
Keywords :
gyroscopes; microsensors; alternative drive-mode control electronics; complex waveform driving signals; high-performance MEMS gyroscopes; micromachined capacitive vibratory gyroscope; sinusoidal wave signals; square wave signals; Circuit stability; Couplings; Gyroscopes; Micromechanical devices; RLC circuits; Resonant frequency; Sensor systems; Gyroscope; angular rate sensor; automatic gain control; drive-mode control electronics;
Conference_Titel :
Solid-State Sensors, Actuators and Microsystems Conference (TRANSDUCERS), 2011 16th International
Conference_Location :
Beijing
Print_ISBN :
978-1-4577-0157-3
DOI :
10.1109/TRANSDUCERS.2011.5969566