A new type of balanced-bridge controlled oscillator

A novel bridge-stabilized crystal oscillator circuit having exceptional temperature stability is described. The contribution to the oscillator temperature coefficient from the circuit components (exclusive of the crystal) is reduced to about 10/sup -11///spl deg/C, which is several orders of magnitude better than conventional oscillator circuits. This avoids a situation where the overall tempco is limited by circuit component drift rather than crystal stability, which can easily occur with conventional circuits when the crystal is ovenized at a turnover point. Previous attempts to use a bridge in an oscillator were made by Meacham, who used an imperfectly balanced bridge, and Sulzer, who used a balanced pseudo-bridge. The reasons why these are unsatisfactory are discussed. Although the bridge greatly reduces reactive frequency pulling, it does not directly address the additional issue of pulling due to variations in crystal drive current amplitude. However, it is an enabling technology for a novel ALC circuit with greatly improved stability. The new bridge controlled oscillator is also much less sensitive to other environmental effects such as humidity, power supply voltage, load impedance, and stray capacitance.

[1]  Van Valkenburg,et al.  Introduction to Modern Network Synthesis , 1960 .

[2]  L.A. Meacham,et al.  The Bridge-Stabilized Oscillator , 1938, Proceedings of the Institute of Radio Engineers.

[3]  A. Benjaminson A Crystal Oscillator with Bidirectional Frequency Control and Feedback ALC , 1986, 40th Annual Symposium on Frequency Control.

[4]  Anatol I. Zverev,et al.  Handbook of Filter Synthesis , 1967 .

[5]  W. A. Edson,et al.  Vacuum-tube oscillators , 1953 .

[6]  Richard K. Karlquist,et al.  A low-profile high-performance crystal oscillator for timekeeping applications , 1997, Proceedings of International Frequency Control Symposium.

[7]  P. G. Sulzer,et al.  High-Stability Bridge-Balancing Oscillator , 1955, Proceedings of the IRE.