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AD9546/PCBZ Datasheet(PDF) 129 Page - Analog Devices

No. de pieza AD9546/PCBZ
Descripción Electrónicos  Dual DPLL Digitized Clock Synchronizer
PDF  205 Pages
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AD9546/PCBZ Datasheet(HTML) 129 Page - Analog Devices

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Data Sheet
AD9546
Rev. 0 | Page 129 of 205
Whenever the AD9546 enters freerun or holdover mode, the
DPLL phase lock detector indicates an unlocked state.
For more information on how to choose the appropriate phase
lock threshold, fill rate, and drain rate values for a given
application, refer to the AN-1061 Application Note, Behavior of
the AD9548 Phase and Frequency Lock Detectors in the Presence
of Random Jitter.
DPLL Frequency Lock Detector
The operation of the frequency lock detector is identical to that
of the phase lock detector, with the following two exceptions:
The fill or drain decision is based on the period deviation
between the reference of the DPLL and the feedback
signals instead of the phase error at the output of the PFD.
The frequency lock detector is unaffected by the state of
the phase slew limiter.
Like the phase lock detector, the user has access to the 12-bit
(signed) instantaneous water level value of the frequency lock
detector via Register 0x310B to Register 0x310C (DPLL0) and
Register 0x320B to Register 0x320C (DPLL1). As shown in
Figure 93, the pertinent water level values appear along the left
side of the tub.
The frequency lock detector indicates frequency lock status via
Bit 2 of Register 0x3100 for DPLL0 and Register 0x3200 for
DPLL1 (Logic 0 is unlocked, and Logic 1 is locked). However,
because Bit 2 is dynamic in nature, the recommendation is to
use the IRQ mechanism for frequency lock indication instead.
The IRQ mechanism observes the state of Bit 2 and latches the
state transitions. Specifically, Bit 2 of Register 0x3010 for
DPLL0 and Register 0x3015 for DPLL1 latches a status change
from frequency unlocked to frequency locked as a Logic 1.
Likewise, Bit 3 of the same registers latches a status change
from frequency locked to frequency unlocked as a Logic 1.
Because Bit 2 and Bit 3 are latched bits, however, they may
represent a condition that is no longer true. Therefore, the user
must clear the frequency locked and frequency unlocked status
via Bit 2 and Bit 3, respectively, of Register 0x200B for DPLL0
and Register 0x2010 for DPLL1. Otherwise, the user may lose
indication of subsequent state transitions by the frequency lock
detector (see the Interrupt Request (IRQ) section).
The difference between the period of the signal arriving at the
reference input to the DPLL and the period of the signal
arriving at the feedback input to the DPLL constitutes the
period error between the two signals. The period error relates
to fREF and the feedback frequency (fFB) as
Period Error = 1/fFB − 1/fREF
For any given period error sample, the frequency lock detector
either adds water with the fill bucket or removes water with the
drain bucket (one or the other, but not both). The decision of
whether to add or remove water depends on the frequency lock
threshold specified by the user via Bits[23:0] (unsigned integer)
of the appropriate source profile at the start address shown in
Table 78 plus an offset of 5 to 7 (decimal). The value of
Bits[23:0] is the desired frequency lock threshold in ps. Thus,
the frequency lock threshold extends from 0 ps to 16.7 µs. The
frequency lock threshold represents the absolute value of the
period error between the reference and feedback signals at the
input to the DPLL as follows:
Frequency Lock Threshold = |Period Error|/10−12
For example, consider a nominal frequency at the reference
input to the DPLL of 80 kHz. Under a stable lock condition, the
frequency at the reference and feedback inputs to the DPLL are
equal. To configure the frequency lock detector to make fill or
drain decisions when the feedback and reference frequency at
the input to the DPLL differ by 100 Hz, establish the frequency
lock threshold for a 100 Hz deviation by choosing fREF = 80 kHz
and fFB = 80.1 kHz (or 79.9 kHz).
Frequency Lock Threshold = |Period Error|/10−12
= |1/fREF − 1/fFB|/10−12
= |1/80,000 − 1/80,100|/10−12
= 15,605 (nearest integer)
= 0x 00 3CF5 (hexadecimal)
For more information on how to choose the appropriate
frequency lock threshold, fill rate, and drain rate values for a
given application, refer to AN-1061 Application Note.
FREERUN TUNING WORD
The closed switch in Figure 91 indicates that the DPLL is
operating in closed-loop mode, where the loop filter delivers
FTWs in real time to the NCO. In open-loop operation, the
switch is in the open position and the FTW processor provides
a static FTW to the NCO. The loop controller opens or closes the
switch as needed. For example, when the DPLL is in freerun
mode (that is, Bit 0 = 1 of Register 0x2105 or Register 0x2205),
the loop controller opens the switch and the FTW processor
routes the freerun tuning word to the NCO.
In this case, the freerun tuning word establishes the NCO output
frequency, fNCO. The user sets the value of the freerun tuning
word via Bits[45:0] (unsigned integer) in Register 0x1000 to
Register 0x1005 (for DPLL0) and Register 0x1400 to
Register 0x1405 (for DPLL1).
fNCO ≈ fS × FTW0/248
where:
fNCO is the NCO output frequency.
fS is the system clock frequency.
FTW0 represents the value of the 46-bit freerun tuning word.
The preceding fNCO formula is an approximation (≈) because
the exact NCO output frequency differs slightly (see the DPLL
NCO section).



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