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ADF4252BCPZ-R7 bảng dữ liệu(PDF) 26 Page - Analog Devices

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Giải thích chi tiết về linh kiện  Dual Fractional-N/Integer-N Frequency Synthesizer
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ADF4252BCPZ-R7 bảng dữ liệu(HTML) 26 Page - Analog Devices

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ADF4252
Data Sheet
Rev. E | Page 26 of 30
DEVICE PROGRAMMING AFTER INITIAL POWER-UP
After initially applying power to the supply pins, there are three
ways to operate the device.
RF AND IF SYNTHESIZERS OPERATIONAL
All registers must be written to when powering up both the RF
and IF synthesizer.
RF SYNTHESIZER OPERATIONAL, IF POWER-DOWN
It is necessary to write to the R3, R2, R1, and R0 RF registers
when powering up the RF synthesizer only. It is also necessary
to write 0x0026 to R6, and to write all zeros to the R5, R4, and
R3 IF registers.
IF SYNTHESIZER OPERATIONAL, RF POWER-DOWN
It is necessary to write to the R6, R5, R4, and R3 IF registers
when powering up the IF synthesizer only. It is also necessary to
write 0x0023 to R3, and to write all zeros to the R2, R1, and R0
RF registers.
RF SYNTHESIZER: AN EXAMPLE
Program the RF synthesizer as follows:
PFD
OUT
f
MOD
FRAC
INT
RF
(4)
where:
RFOUT is the RF frequency output.
INT is the integer division factor.
FRAC is the fractionality.
MOD is the modulus.
R
D
REF
f
IN
PFD
1
(5)
where:
REFIN is the reference frequency input.
D is the RF REFIN doubler bit.
R is the RF reference division factor.
For example, in a GSM 1800 system where 1.8 GHz RF
frequency output (RFOUT) is required, a 13 MHz reference
frequency input (REFIN) is available and a 200 kHz channel
resolution (fRES) is required on the RF output.
RES
IN
f
REF
MOD 
65
kHz
200
MHz
13
MOD
Therefore, from Equation 5,
MHz
13
1
0
1
MHz
13
PFD
f
65
MHz
13
GHz
8
.
1
FRAC
INT
where INT = 138 and FRAC = 30.
IF SYNTHESIZER: AN EXAMPLE
The IF synthesizer must be programmed as follows:
IFOUT = [(P × B) + A] × fPFD
(6)
where:
IFOUT is the output frequency of the external voltage controlled
oscillator (VCO).
P is the IF prescaler.
B is the B counter value.
A is the A counter value.
Equation 5 applies in this example as well.
For example, in a GSM1800 system, where 540 MHz IF
frequency output (IFOUT) is required, a 13 MHz reference
frequency input (REFIN) is available and a 200 kHz channel
resolution (fRES) is required on the IF output. The prescaler is set
to 16/17. The IF REFIN doubler is disabled.
By Equation 5,
R
0
1
MHz
13
kHz
200
if R = 65.
By Equation 6,
540 MHz = 200 kHz × [(16 × B) + A]
if B = 168 and A = 12.
MODULUS
The choice of modulus (MOD) depends on the reference signal
(REFIN) available and the channel resolution (fRES) required at
the RF output. For example, a GSM system with 13 MHz REFIN
sets the modulus to 65. This means that the RF output resolution
(fRES) is the 200 kHz (13 MHz/65) necessary for GSM.
REFERENCE DOUBLER AND REFERENCE DIVIDER
There is a reference doubler on-chip, which allows the input
reference signal to be doubled. This is useful for increasing the
PFD comparison frequency. Making the PFD frequency higher
improves the noise performance of the system. Doubling the
PFD frequency usually results in an improvement in noise
performance of 3 dB. It is important to note that the PFD
cannot be operated above 30 MHz due to a limitation in the
speed of the Σ-Δ circuit of the N divider.
12-BIT PROGRAMMABLE MODULUS
Unlike most other fractional-N PLLs, the ADF4252 allows the
user to program the modulus over a 12-bit range. This means that
the user can set up the device in many different configurations
for a specific application, when combined with the reference
doubler and the 4-bit R counter.
For example, in an application that requires 1.75 GHz RF and
200 kHz channel step resolution, the system has a 13 MHz
reference signal.



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