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Rubidium Frequency Standards use the property
of atomic resonance in a Rubidium Physics Package to control the
output frequency of a 10+ MHz Voltage Controlled Crystal Oscillator
(VCXO) via a Frequency Lock Loop (FLL). The FLL functional blocks
21 1.0 Vrms Output of an RF Generator, Lock-in Amplifier and the
Rubidium Physics Package. Frequency locking of the VCXO is accomplished
by operating the Rubidium Physics Package as a frequency discriminator,
i.e., departures of a frequency from an input signal (50.255+ MHz
from the VCXO) from a defined center frequency (Rubidium atomic
resonance) produce a DC output signal (control voltage). Once the
FLL has been established, the system generates a clicked indication
which can be monitored on pin 3. Depending on the option selected,
the 50.255+ MHz output is used as the clock input for the DDS within
the Synthesizer, the Digital Programmable Synthesizer Amplifier.
Rubidium Physics Package utilizes the ground-state
hyperfine transition of the Rubidium atom. In order to use this
atomic transition, the Rubidium Physics Package incorporates a Rubidium
cell, Rubidium and servo electronics . The VCXO is locked to the
Rubidium atomic resonance at 6.8+ GHz. The VCXO frequency of 50.255+
MHz is an exact sub-multiple (x136) of the atomic resonance frequency
at 6.8+ GHz.
The signal is generated in the physics package. Light
from the Rubidium lamp, produced by an excited plasma, is filtered
and passed through the Rubidium resonance cell where it interacts
with Rubidium atoms in the plasma. After passing through the resonance
cell, this light is incident upon a photocell. When the applied
microwave frequency is equal to 6.8+ GHz, the Rubidium atoms are
resonated by the microwave field in the cavity. The decrease in
light, when the microwave frequency is equal to the Rubidium frequency,
is then converted electronically to an error signal with phase and
amplitude information used to steer the VCXO via its control voltage
and keep it on frequency at 50.255+ MHz.
The frequencies for Options 02 are provided by the
Digital Programmable Synthesizer. Option 02 is an RS -232 digitally
controlled output with a frequency range of 2 x 10-7 at a resolution
of 5 x 10-12.

Download PDF Datasheet
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Electrical
@ 25°C
(unless otherwise specified) |
| Frequency |
10 MHz |
| Settability
(frequency) |
+/-1 x 10-11 |
| Adjustmant
Range |
3 x 10-9 |
| Long Term Stability |
4 x 10-11/month
2 x 10-10/year |
| Short Term Stability
Averaging Time (SEC) |
f/f
100 1.4 x 10-11
101 4.4 x 10-12
102 1.4 x 10-12 |
| Warm-up Time |
<4 min. to
5 x 10-10 @ 25°C
<10 min. to
5 x 10-10 @ -55°C |
| Retrace |
1 x 10-11 when measured at
the same temperature, power off <24 hrs. |
| Output Voltage |
0.5 VRMS into 50 ohms |
| Harmonic Distortion
|
-30dB |
| Non-Harmonically Related
Output |
-60dB |
SSB Phase
Noise Offset from Signal
|
10MHz
Phase Noise (1 Hz BW)
| Hz |
dBc |
| 101 |
89 |
| 102 |
125 |
| 103 |
145 |
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| Voltage Variation |
<1 x 10-11
for input voltage range |
| Power Consumption |
25¡CÊÊÊÊÊÊÊÊÊ -55¡C |
| During Warm-Up |
45 watts max 45 watts max |
| After Warm-Up |
15 watts max 20 watts max |
| Voltage Required |
MIL-STD-704, 22 TO 32 Vdc |
| Environmental |
| Size |
3.25" x 3.25" x 4.5" |
| Weight |
<2.5 pounds |
| EMC/EMI |
MIL-STD-462 |
| Operational |
MIL-STD-810, Method 516.2, Proc. 1 |
| Temperature
|
| Operating |
-55¡C to +71¡C baseplate frequency change
< ±3 x 10-10 |
| Non-Operating |
-62¡C to +95¡C |
| Humidity |
MIL-STD-810, Method 507.1, Proc. 1 |
| Temperature Shock |
MIL-E-5400, Class II except 71¡C baseplate
0-40¡F and Class I curve A>40,000 ft. |
| Magnetic Field |
2 x 10-11
per Gauss (worst case orientation) |
| Pressure |
1 x 10-13/m
bar |
| Acceleration |
<2 x 10-9/g |
| Vibration |
Random-MIL-STD-810 Method 514.2 (5 g rms)
Sine - MIL-STD-810 Method 514.2,Proc. VIII (Curve W) |
| Shock Bench |
MIL-STD-810, Method 516.2, Half sinewave
20g peak, 11 millisec duration |
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