參數(shù)資料
型號(hào): AD9772AASTZ
廠(chǎng)商: Analog Devices Inc
文件頁(yè)數(shù): 22/40頁(yè)
文件大小: 0K
描述: IC DAC 14BIT 160MSPS 48-LQFP
產(chǎn)品培訓(xùn)模塊: DAC Architectures
標(biāo)準(zhǔn)包裝: 1
系列: TxDAC+®
設(shè)置時(shí)間: 11ns
位數(shù): 14
數(shù)據(jù)接口: 并聯(lián)
轉(zhuǎn)換器數(shù)目: 1
電壓電源: 模擬和數(shù)字
功率耗散(最大): 272mW
工作溫度: -40°C ~ 85°C
安裝類(lèi)型: 表面貼裝
封裝/外殼: 48-LQFP
供應(yīng)商設(shè)備封裝: 48-LQFP(7x7)
包裝: 托盤(pán)
輸出數(shù)目和類(lèi)型: 2 電流,單極;2 電流,雙極
采樣率(每秒): 160M
產(chǎn)品目錄頁(yè)面: 785 (CN2011-ZH PDF)
AD9772A
Rev. C | Page 29 of 40
APPLICATIONS INFORMATION
MULTICARRIER
The AD9772A’s wide dynamic range performance makes it well
suited for next-generation base station applications in which it
reconstructs multiple modulated carriers over a designated fre-
quency band. Cellular multicarrier and multimode radios are
often referred to as software radios because the carrier tuning
and modulation scheme is software programmable and performed
digitally. The AD9772A is the recommended TxDAC in the
Analog Devices, Inc., SoftCell chipset, which comprises the
AD6622 (a quadrature digital upconverter IC), the AD6624
(an Rx digital downconverter IC that acts as a companion to the
AD6622), and the AD6644 (a 14-bit, 65 MSPS ADC). Figure 53
shows a generic software radio Tx signal chain using the
AD9772A and AD6622.
Figure 54 shows a spectral plot of the AD9772A operating at
64.54 MSPS, reconstructing eight IS-136-modulated carriers spread
over a 25 MHz band. In this example, the AD9772A exhibits an
SFDR performance of 74 dBc and a carrier-to-noise ratio (CNR) of
73 dB. Figure 55 shows a spectral plot of the AD9772A operating at
52 MSPS, reconstructing four equal GSM-modulated carriers
spread over a 15 MHz band. The SFDR and CNR (in 100 kHz BW)
are measured to be 76 dBc and 83.4 dB, respectively, and have a
channel power of 13.5 dBFS. The test vectors were generated
using the Rohde & Schwarz WinIQSIM software.
JTAG
OTHER AD6622s FOR
INCREASED CHANNEL
CAPACITY
AD9772A
PLLLOCK
CLK+/
CLK–
SUMMATION
SPORT
RCF
CIC
FILTER
NCO
QAM
SPORT
RCF
SPORT
RCF
SPORT
RCF
CLK
PORT
AD6622
CIC
FILTER
CIC
FILTER
CIC
FILTER
NCO
QAM
NCO
QAM
NCO
QAM
02
253
-0
53
Figure 53. Generic Multicarrier Signal Chain Using the AD6622 and AD9772A
FREQUENCY (MHz)
–40
–50
–100
0
AM
P
L
IT
UD
E
(
d
Bm)
–60
–70
–80
–90
510
15
20
30
25
–30
–20
0
225
3-
0
54
Figure 54. Spectral Plot of AD9772A Reconstructing Eight IS-136-Modulated
Carriers @ fDATA = 64.54 MSPS, PLLVDD = 0
FREQUENCY (MHz)
–10
–110
0
A
M
PL
IT
U
D
E
(
d
B
m
)
–30
–50
–70
–90
5
10
15
20
25
–100
–80
–60
–40
–20
02
25
3-
05
5
Figure 55. Spectral Plot of AD9772A Reconstructing Four GSM-Modulated
Carriers @ fDATA = 52 MSPS, PLLVDD = 0
Although the above IS-136 and GSM spectral plots are
representative of the AD9772A’s performance for a set of test
conditions, the following recommendations are offered to
maximize the performance and system integration of the
AD9772A into multicarrier applications:
1.
To achieve the highest possible CNR, the PLL clock
multiplier should be disabled (that is, PLLVDD to
PLLCOM) and the AD9772A clock input should be driven
with a low jitter, low phase noise clock source at twice the
input data rate. In this case, the divide-by-2 clock
appearing at PLLLOCK should serve as the master clock
for the digital upconverter IC(s), such as the AD6622.
PLLLOCK should be limited to a fanout of 1.
2.
The AD9772A achieves its optimum noise and distortion
performance when the device is configured for baseband
operation and the differential output and full-scale current,
IOUTFS, are set to approximately 20 mA.
3.
Although the frequency roll-off of the 2× interpolation
filter provides a maximum reconstruction bandwidth of
0.422 × fDATA, the optimum adjacent image rejection (due to
the interpolation process) can be achieved (that is, > 73 dBc) if
the maximum channel assignment is kept below 0.400 × fDATA.
4.
To simplify the filter requirements (that is, mixer image
and LO rejection) of the subsequent IF stages, it is often
advantageous to offset the frequency band from dc to relax
the transition band requirements of the IF filter.
5.
Oversampling the frequency band often results in improved
SFDR and CNR performance. This implies that the data input
rate to the AD9772A is greater than fPASSBAND/0.4 Hz, where
fPASSBAND is the maximum bandwidth that the AD9772A is
required to reconstruct and place carriers. The improved noise
performance results in a reduction in the TxDAC’s noise
spectral density due to the added process gain realized with
oversampling, and higher oversampling ratios provide greater
flexibility in the frequency planning.
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