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AD6676EBZ 数据表(PDF) 30 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) 30 Page - Analog Devices

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AD6676
Data Sheet
Rev. A | Page 30 of 90
Some applications may benefit from a reduced IDAC1FS setting
because a reduction in the PIN_0dBFS levels results in a decibel
per decibel reduction in the gain and linearity (P1dB, IIP3)
requirements of the front-end driver. This enables a lower
power RF line-up with the possibility of 3.3 V operations.
Alternatively, it can allow a greater IF AGC operation range
from the AD6676 when the previous stages output (P1dB) level
is set by its power supply setting. Carefully evaluate the trade-
off in the ac performance of the AD6676 when deciding to
operate at reduced IDAC1FS settings.
Using the MRGN Parameter to Optimize NTF
The MRGN application parameters provide an additional degree
of freedom when trying to optimize the NTF for a particular
application. This feature is particularly useful when the AD6676
operates with a low oversampling ratio where the quantization
noise contribution begins to limit the NSD performance. In such
cases, the default MRGN settings may not be adequate, resulting
in regions of the pass band (typically at the edges) where the
worst-case NSD is higher than in other regions. For these cases,
the NTF can be optimized by adjusting the Σ-Δ ADC resonator
frequencies in such a way that that result in a more optimally
distributed NSD over the entire pass band.
The MRGN_L, MRGN_U, and MRGN_IF parameters are
located in Register 0x107 through Register 0x109. MRGN_L
and MRGN_U specify the number of megahertz by which the
lower and upper edges of the target pass band are extended,
whereas MRGN_IF specifies the resonance frequency offset of
RESON1 from the center of the target pass band. The maximum
setting in these registers must be in the range of 10 MHz to
20 MHz because higher offset settings can adversely affect the
STF. The MRGN parameter is represented as an array equal to
[MRGN_L, MRGN_U, MRGN_IF].
The following example using a low oversampling ratio of 10
highlights the effects of the MRGN parameters on the NTF and
STF. In this example, the goal is to optimize the worst-case NSD
performance across a 160 MHz pass band region with FADC =
3.2 GHz and IF = 300 MHz while trying to preserve a flat STF.
Figure 84 shows the corresponding NTF performance for different
MRGN settings, and Table 8 lists the resonant frequencies of
RESON1, RESON3, and RESON3 that pertain to these settings.
Note that the default setting of [5 5 0] results in the upper half of
the pass band having the worst NSD (−141 dBFS/Hz at 380 MHz).
Symmetrical MRGN settings of [10 10 0] and [15 15 0] are shown
to highlight how the NTF varies as only the resonant frequencies
of RESON2 and RESON3 are increasingly offset symmetrically
about the IF center of 300 MHz. To improve on the default setting
of [5 5 0], an asymmetrical setting of [8 16 2] that is weighted
towards the upper half of the pass band region was found to
achieve a more distributed worst-case NSD of −145 dBFS/Hz.
Table 8. Resonator Frequencies vs. MRGN Settings
(FADC = 3.2 GHz, FIF = 300 MHz, BW = 160 MHz)
MRGN_L
MRGN_U
MRGN_IF
RESON2
(MHz)
RESON1
(MHz)
RESON3
(MHz)
5
5
0
233
298
365
10
10
0
229
299
370
15
15
0
227
298
373
8
16
2
230
306
374
–140
–155
–150
–145
220
240
260
280
300
320
340
360
380
INPUT FREQUENCY (MHz)
MRGN = [5 5 0]
MRGN = [15 15 0]
MRGN = [10 10 0]
MRGN = [8 16 2]
Figure 84. NSD Performance for MRGN Settings Shown in Table 8
Maintaining a flat STF across the pass band is also desirable
when modifying the MRGN settings. Figure 84 shows how each
of the different MRGN settings affects the STF. Note that the
asymmetrical MRGN setting of [8 16 2] results in an STF that is
slightly skewed above IF center but still maintains ±0.5 dB flatness.
0.25
–1.25
–0.75
–0.25
0
–1.00
–0.50
220
240
260
280
300
320
340
360
380
FREQUENCY (MHz)
MRGN = [8 16 2]
MRGN = [10 10 2]
MRGN = [15 15 2]
MRGN = [5 5 0]
Figure 85. STF for Four Different MRGN Settings
Whereas the previous example represents an extreme case, other
cases having higher oversampling ratio can also potentially benefit
from optimization. After the values of fCLK, IF, and BW have been
determined for a particular application, it may be advantageous
to explore whether a different MRGN setting yields any
improvement. It is important to note that this sort of
optimization is based on an iterative trial and error method.
However, after the MRGN setting has been determined, both
the STF and NTF remain repeatable.



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