AD9912/PCBZ Analog Devices Inc, AD9912/PCBZ Datasheet - Page 21

Eval Board

AD9912/PCBZ

Manufacturer Part Number
AD9912/PCBZ
Description
Eval Board
Manufacturer
Analog Devices Inc
Series
AgileRF™r
Datasheets

Specifications of AD9912/PCBZ

Kit Features
Flexible System Clock I/P Accepts Crystal
Supported Devices
AD9912
Tool / Board Applications
Direct Digital Synthesizer
Development Tool Type
Hardware - Eval/Demo Board
Mcu Supported Families
AD9912
Main Purpose
Timing, Direct Digital Synthesis (DDS)
Embedded
No
Utilized Ic / Part
AD9912
Primary Attributes
14-Bit DAC, 48-Bit Tuning Word Width
Secondary Attributes
1GHz, Graphical User Interface
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant
SYSCLK
SYSCLK PLL Multiplier
When the SYSCLK PLL multiplier path is employed, the
frequency applied to the SYSCLK input pins must be limited so
as not to exceed the maximum input frequency of the SYSCLK
PLL phase detector. A block diagram of the SYSCLK generator
appears in Figure 45.
The SYSCLK PLL multiplier has a 1 GHz VCO at its core.
A phase/frequency detector (PFD) and charge pump provide
the steering signal to the VCO in typical PLL fashion. The PFD
operates on the falling edge transitions of the input signal, which
means that the loop locks on the negative edges of the reference
signal. The charge pump gain is controlled via the I/O register
map by selecting one of three possible constant current sources
ranging from 125 μA to 375 μA in 125 μA steps. The center
frequency of the VCO is also adjustable via the I/O register map
and provides high/low gain selection. The feedback path from
VCO to PFD consists of a fixed divide-by-2 prescaler followed
by a programmable divide-by-N block, where 2 ≤ N ≤ 33. This
limits the overall divider range to any even integer from 4 to 66,
inclusive. The value of N is programmed via the I/O register map
via a 5-bit word that spans a range of 0 to 31, but the internal
logic automatically adds a bias of 2 to the value entered, extending
the range to 33. Care should be taken when choosing these
values so as not to exceed the maximum input frequency of the
SYSCLK PLL phase detector or SYSCLK PLL doubler. These
values can be found in the AC Specifications section.
External Loop Filter (SYSCLK PLL)
The loop bandwidth of the SYSCLK PLL multiplier can be
adjusted by means of three external components as shown in
Figure 46. The nominal gain of the VCO is 800 MHz/V. The
recommended component values (shown in Table 6) establish
a loop bandwidth of approximately 1.6 MHz with the charge
pump current set to 250 μA. The default case is N = 40, and
it assumes a 25 MHz SYSCLK input frequency and generates
an internal DAC sampling frequency (f
INPUT
FROM
FREQUENCY
DETECTOR
Figure 45. Block Diagram of the SYSCLK PLL
PHASE
SYSCLK PLL MULTIPLIER
(125µA, 250µA, 375µA)
~2pF
LOOP_FILTER
CHARGE
PUMP
2
I
CP
(N = 2 TO 33)
÷N
(HIGH/LOW RANGE)
S
) of 1 GHz.
K
1GHz
VCO
÷2
VCO
DAC
SAMPLE
CLOCK
Rev. F | Page 21 of 40
Table 6. Recommended Loop Filter Values for a Nominal
1.5 MHz SYSCLK PLL Loop Bandwidth
Multiplier
<8
10
20
40 (default)
60
Detail of SYSCLK Differential Inputs
A diagram of the SYSCLK input pins is provided in Figure 47.
Included are details of the internal components used to bias the
input circuitry. These components have a direct effect on the
static levels at the SYSCLK input pins. This information is
intended to aid in determining how best to interface to the
device for a given application.
SYSCLKB
SYSCLK
AVDD
Figure 46. External Loop Filter for SYSCLK PLL
CHARGE
PUMP
Figure 47. Differential SYSCLK Inputs
FERRITE
MUX
R1
390 Ω
470 Ω
1 kΩ
2.2 kΩ
2.7 kΩ
BEAD
29
~2pF
V
V
AD9912
SS
SS
26
~1.5pF
~1.5pF
AMP
~3pF
~3pF
CRYSTAL RESONATOR WITH
Series C1
1 nF
820 pF
390 pF
180 pF
120 pF
LOOP FILTER
C2
SYSCLK PLL BYPASSED
SYSCLK PLL ENABLED
EXTERNAL
SYSCLK PLL ENABLED
+
+
~1V
~1V
31
LOOP_FILTER
~2pF
~2pF
1kΩ
1kΩ
500Ω
500Ω
VCO
R1
C1
INTERNAL
CLOCK
INTERNAL
INTERNAL
CLOCK
CLOCK
Shunt C2
82 pF
56 pF
27 pF
10 pF
5 pF
AD9912
V
V
SS
SS

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