Title :
Analysis and results of compensated quartz crystal oscillator ovens
Author :
Brendel, R. ; Marianneau, G. ; Djian, F. ; Robert, E.
Author_Institution :
Lab. de Phys. et Metrologie des Oscillateurs, Univ. de Franche-Comte-Besancon, France
Abstract :
It is shown how it is possible to improve the performance of thermal enclosures by using a compensating system. It is also shown that because of the thermal network between the outside temperature, the temperature sensor and the device to be regulated, the latter may undergo residual temperature variations which reduce the overall thermal efficiency of the oven. Thermal transfer functions are measured using an experimental setup in which the node temperatures are measured by thermal sensors. By identifying the thermal response of the nodes with the theoretical transfer function under external temperature or heater excitation, the components of the equivalent R-C network can be determined. It is then possible to make use of a compensating system which can eliminate the parasitic static as well as dynamic thermal effects. Validating measurements and experimental results are presented which show the strong improvement achieved by this compensating system as compared to the conventional approach
Keywords :
compensation; crystal resonators; equivalent circuits; frequency stability; radiofrequency oscillators; temperature control; transfer functions; SiO2; analog servoloop; compensated quartz crystal oscillator ovens; equivalent R-C network; frequency stability; parasitic effects; performance; residual temperature variations; thermal efficiency; thermal enclosures; thermal sensors; thermal transfer functions; Automatic frequency control; Impedance; Oscillators; Ovens; Servomechanisms; Temperature measurement; Temperature sensors; Thermal resistance; Thermal sensors; Transfer functions;
Conference_Titel :
Frequency Control Symposium, 1992. 46th., Proceedings of the 1992 IEEE
Conference_Location :
Hershey, PA
Print_ISBN :
0-7803-0476-4
DOI :
10.1109/FREQ.1992.269977