DocumentCode :
2657805
Title :
Estimating empirical station timing biases using IGS clock products
Author :
Senior, K. ; Ray, J.
Author_Institution :
US Naval Res. Lab., Washington, DC, USA
fYear :
2003
fDate :
4-8 May 2003
Firstpage :
250
Lastpage :
257
Abstract :
We demonstrate a method to determine empirical station timing biases for geodetic receivers located at timing laboratories. Mutual observations of GPS time, as reported by the Bureau International des Poids et Mesures (BIPM) in its circular T and as observed by the International GPS service (IGS), are used together with the Circular T offsets of the lab timescales (UTC-UTCi). This method effectively extends the previously determined calibration bias of a lab´s main time transfer system differentially to a colocated geodetic receiver system, without need of any additional local measurements. The empirical biases include both the internal delays within the geodetic GPS receiver/antenna hardware as well as the intra-laboratory offset to the source of UTCi. When applied to the subset of IGS stations located at timing labs, we find that useful results can be obtained provided that the geodetic system uses a frequency standard closely related to the local UTCi realization and that the GPS receiver does not reset its internal clock too frequently. We find daily RMS repeatabilities in some cases of about 1 to 2 ns over periods up to about a year. Given sufficient available data, the mean station bias can be estimated from a single monthly circular T update to the 1 ns level, which is smaller than the uncertainty in current absolute calibrations. This method can be used to validate laboratory calibration measurements for the geodetic systems and to continuously monitor intra-laboratory calibration stability without disrupting normal operations, It can also be exploited to improve the near real-time steering of the IGS timescale to track UTC more closely.
Keywords :
Global Positioning System; calibration; clocks; frequency standards; radio receivers; radio stations; time measurement; transfer standards; GPS time; circular T offset; current absolute calibration; empirical station timing biases; frequency standard; geodetic GPS receiver-antenna hardware; global positioning system; internal delays; international GPS service; international global positioning system clocks; intralaboratory calibration stability; intralaboratory offset; laboratory calibration measurements; labs main time transfer system; mean station bias; real-time steering; Antenna measurements; Calibration; Clocks; Delay; Global Positioning System; Hardware; Laboratories; Receiving antennas; Time measurement; Timing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Frequency Control Symposium and PDA Exhibition Jointly with the 17th European Frequency and Time Forum, 2003. Proceedings of the 2003 IEEE International
ISSN :
1075-6787
Print_ISBN :
0-7803-7688-9
Type :
conf
DOI :
10.1109/FREQ.2003.1275098
Filename :
1275098
Link To Document :
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