Title :
Frequency syntonization using GPS carrier phase measurements
Author :
Tu, Kun-Yuan ; Chang, Fan-Ren ; Liao, Chia-Shu ; Wang, Li-Sheng
Author_Institution :
Dept. of Electr. Eng., Nat. Taiwan Univ., Taipei, Taiwan
fDate :
6/1/2001 12:00:00 AM
Abstract :
A new methodology of frequency syntonization using GPS carrier phase double differences is presented. The proposed scheme can achieve the traceability of frequency dissemination and obtain the very high frequency stability in the short term, as well as in the long term. The GPS receivers used in our system were elaborately modified in order to estimate the frequency offset of the remote low-cost oven-controlled crystal oscillator clock with respect to the primary cesium atomic clock in real time by performing the double differences on the GPS carrier phase observables. The fuzzy controller and the proportional-derivative controller were employed to implement the controllers of our system, respectively. Through the D/A converter, the remote clock was then steered to synchronize with the primary clock. For averaging times of one day under the configuration of about a 30-m baseline, our experimental results show that the accuracy of the remote clock can be improved from about 3×10-9 to about 3×10-14 , and the stability of the remote clock can be improved from about 3×10-10 to about 2×10-14. Moreover, the 30-m baseline tests with the common high-performance cesium clock revealed that our system has a frequency stability of about 2×10 -16 for averaging times of one day
Keywords :
Global Positioning System; atomic clocks; calibration; frequency stability; frequency standards; fuzzy control; inference mechanisms; synchronisation; telecommunication control; transfer standards; two-term control; D/A converter; GPS carrier phase measurements; GPS receivers; calibration; carrier phase double differences; frequency dissemination; frequency offset; frequency syntonization; fuzzy controller; inference engine; oven-controlled crystal oscillator clock; primary cesium atomic clock; proportional-derivative controller; remote clock; traceability; very high frequency stability; Clocks; Control systems; Frequency estimation; Global Positioning System; Oscillators; PD control; Phase estimation; Phase measurement; Proportional control; Stability;
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on