DocumentCode :
1941741
Title :
Cavity element for resonant micro optical gyroscope
Author :
Ford, Carol ; Ramberg, Randy ; Johnson, Klein ; Berglund, William ; Ellerbusch, Benjamin ; Schermer, Ross ; Gopinath, Anand
Author_Institution :
Honeywell Inc., Minneapolis, MN, USA
fYear :
2000
fDate :
2000
Firstpage :
285
Lastpage :
290
Abstract :
There is a need for an environmentally rugged, inertial based attitude and navigation control system with performance in the 10 degree/hr range but with an ultimate performance goal of 1 degree/hr. This non-GPS based system must withstand accelerations in the 3000 G range with a wide spectrum of vibrations. Optical gyros have good performance to size ratio and are insensitive to vibrations, acceleration, and are capable of handling a large range of rates. Cost, however, has been a limitation to wide use of optical gyros. Previous attempts using waveguides as the cavity have been limited by the performance of the waveguide, modulators, couplers, and the injection laser. However, telecommunications and optical computing developments have driven performance of the major components needed for a waveguide gyro. These improvements make a waveguide based gyro feasible. Honeywell and the University of Minnesota have been making significant strides toward a feasible resonant micro optic gyro (RMOG). Uniquely crucial components have been developed. Experimental measurements, when coupled with theoretical analysis predicts that 1 degree/hour performance can be achieved. This paper reports the results of the work conducted to date
Keywords :
attitude control; gyroscopes; inertial navigation; laser beam applications; optical planar waveguides; resonance; Honeywell; University of Minnesota; acceleration; cavity element; couplers; experimental measurements; inertial based attitude control system; inertial based navigation control system; injection laser; integrated planar optical waveguide; modulators; nonGPS based system; optical computing; optical gyros; performance; performance to size ratio; resonant micro optic gyro; resonant micro optical gyroscope; telecommunications; vibration; waveguide gyro; Acceleration; Attitude control; Control systems; Costs; Gyroscopes; Navigation; Optical modulation; Optical waveguide theory; Optical waveguides; Resonance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Position Location and Navigation Symposium, IEEE 2000
Conference_Location :
San Diego, CA
Print_ISBN :
0-7803-5872-4
Type :
conf
DOI :
10.1109/PLANS.2000.838315
Filename :
838315
Link To Document :
بازگشت