TECHNICAL FIELD
The invention relates to a layout, in particular for a timepiece time base, intended to generate a time reference, and to a method of generating a time reference.
BACKGROUND INFORMATION
SUMMARY OF THE INVENTION
an oscillator circuit including a second oscillator including and a silicon resonator, the frequency F2 of which is different from that of the resonator of the first oscillator, and which presents a first order thermal coefficient in a ratio λ.F10/F20 with the first order thermal coefficient of the resonator of the first oscillator, F10 and F20 being the respective natural frequencies of the first and second resonators,
- the oscillator circuit also including a frequency divider dividing the frequency F2 of the signal output by the second oscillator by a factor λ and generating the output signal of this oscillator circuit,
- means for generating, by frequency difference between the signal output by the first oscillator and the signal output by the second oscillator circuit, a first temperature-stable time reference,
- the correction means include includes a programmable frequency divider having a range of division factors with which to compensate the frequency drifts of the first oscillator due to the temperature and/or the absolute accuracy of the first oscillator.
- the second oscillator includes a silicon resonator, the first order thermal coefficient of which is in a ration λ.F1/F2 with the first order thermal coefficient of the first oscillator, and a frequency divider dividing the frequency F2 of the signal output by this resonator by a factor λ and generating the output signal of the second oscillator.
- generation of a second frequency, different from the first frequency by a second oscillator including a silicon resonator, the first order thermal coefficient of the resonator of the first oscillator being roughly equal to the first order thermal coefficient of the resonator of the second oscillator multiplied by the ratio F20/λ.F10,
- generation of a first temperature-stable time reference by frequency difference between the signal output by the first oscillator and the signal output by the second oscillator, after division of the latter by the factor λ,
BRIEF DESCRIPTION OF THE DRAWINGS
Detailed Description
FIG. 1 represents a an exemplary schematic diagram of a time base using the frequency difference of the signals from two oscillators, each including a silicon resonator. In this figure, the first oscillator OSC1 operates at a lower frequency than the oscillator OSC2. At the output of the second oscillator, there is a frequency divider DIV2, associated with the second oscillator OSC2 and performing a frequency division by an integer number λ. These two components together define an oscillator circuit (symbolized by broken lines in FIGS. 1 and 2). The frequency difference between the signal S1 from the first oscillator OSC1 and the signal S2 from the second oscillator OSC2, after frequency division by a factor λ, forms a time reference REF, the. The frequency of which is stable, if the ratio between the frequencies is the inverse of the ratio of their first order thermal coefficient.
ΔT being a temperature variation, α1 being the first order thermal coefficient of the resonator of the oscillator OSC1 and F10 being its natural frequency,
α2 being the first order thermal coefficient of the resonator of the oscillator OSC2 and F20 being its natural frequency, and also, the following condition is satisfied: