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AD6676EBZ 数据表(PDF) 39 Page - Analog Devices

部件名 AD6676EBZ
功能描述  Wideband IF Receiver Subsystem
PDF  90 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

AD6676EBZ 数据表(HTML) 39 Page - Analog Devices

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Data Sheet
AD6676
Rev. A | Page 39 of 90
DIGITAL SIGNAL PROCESSING PATH
The Σ-Δ ADC provides a highly oversampled 5-bit digital
output representing the desired IF signal pass band as well as the
out-of-band shaped noise described earlier. Referring to Figure 104,
the digital signal processing path translates this oversampled
real IF signal to a complex dc centered IF signal, having a more
manageable data rate suitable for transfer via the JESD204B
interface. The QDDC performs the real-to-complex frequency
translation followed by digital filtering to remove the ADC
out-of-band noise, as well as any other undesired signal content,
before decimation to a lower data rate without any loss of
dynamic range.
DC
–FADC/2
FADC/2
COMPLEX OUTPUT AFTER QDDC
fIF
fIF
DC
–FADC/2
FADC/2
ADC REAL OUTPUT
DESIRED
SIGNAL
ADC NOISE
IMAGE
SIGNAL
COMPLEX OUTPUT AFTER DECIMATION
fDATA_IQ/2
fDATA_IQ/2
DC
COMPLEX OUTPUT AFTER FILTERING
–FADC/2
FADC/2
DIGITAL FILTER RESPONSE
Figure 104. Digital Signal Processing Path Performs Frequency Translation to
a Zero IF as well as Filtering and Downsampling
Quadrature Digital Downconversion
Digital downconversion occurs in two stages using a coarse and
a fine QDDC. As shown in Figure 103, the coarse QDDC
resides immediately after the Σ-Δ ADC and the fine QDDC
follows the first decimation stage. The coarse QDDC provides
6-bit tuning resolution whereas the fine QDDC provides 10-bit
tuning resolution. The composite tuning resolution is either
FADC/3072 or FADC/4096, depending on whether the first
decimation stage is configured for 3× or 4× decimation, which
in turn depends on the decimation mode selected as described
in Table 13. For applications requiring finer tuning resolution to
position the IF signal exactly about dc, consider adding a finer
resolution QDDC in the host processor.
Table 13. Finite Composite Tuning Resolution of Coarse and
Fine NCO
DEC_MODE
(Register 0x140,
Bits[2:0])
Decimation
Factor
Tuning
Resolution
Tuning Res.
(MHz) at FADC =
3.072 GSPS
1
32
FADC/4096
0.75
2
24
FADC/3072
1.00
3
16
FADC/4096
0.75
4
12
FADC/3072
1.00
The tuning frequency settings of the combined coarse and
fine NCO (SPI Register 0x141 and SPI Register 0x142) are
automatically calculated and set by the AD6676 during the
device SPI initialization phase. The user defined FADC and IF
settings (SPI Register 0x100 thru SPI Register 0x103) are used
to calculate the settings such that the center of the IF pass band
is centered about dc. The coarse tuning NCO is set via
MIX1_TUNING[5:0], whereas the fine tuning NCO is set via
MIX2_TUNING[7:0]. The decimal equivalent frequency setting
of each NCO register is based on the following equations.


ADC
IF
F
F
MIX1
64
Round
(8)
where:
MIX1 is a 6-bit binary number representing the NCO frequency
setting in MIX1_TUNING.
FIF is the desired carrier frequency in hertz (Hz).
FADC is the ADC clock rate in hertz (Hz).


64
Round
MIX1
F
F
M
MIX2
ADC
IF
(9)
where:
MIX2 is a 8-bit twos complement number representing the
NCO frequency setting in MIX2_TUNING.
M is 3072 for DEC_MODE = 2 and 4, or 4096 for DEC_MODE =
1 and 3.
It is important to note the residue, fOFFSET, between the desired
FIF and the AD6676 composite NCO setting, FIF_NCO, because
any offset may need to be compensated with an additional fine
QDDC located in the host processor. Use the following
equations to calculate both parameters:
ADC
NCO
IF
F
M
MIX2
MIX1
F
64
_
(10)
fOFFSET = FIF – FIF_NCO
(11)



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