supply using the 0 to VREF
參數(shù)資料
型號: ADSP-BF504BCPZ-4F
廠商: Analog Devices Inc
文件頁數(shù): 61/80頁
文件大小: 0K
描述: IC CCD SIGNAL PROCESSOR 88LFCSP
視頻文件: Blackfin? BF50x Processor Family
標(biāo)準(zhǔn)包裝: 1
系列: Blackfin®
類型: 定點(diǎn)
接口: CAN,EBI/EMI,I²C,IrDA,PPI,SPI,SPORT,UART/USART
時(shí)鐘速率: 400MHz
非易失內(nèi)存: 閃存(16MB)
芯片上RAM: 68kB
電壓 - 輸入/輸出: 3.30V
電壓 - 核心: 1.29V
工作溫度: -40°C ~ 85°C
安裝類型: 表面貼裝
封裝/外殼: 88-VFQFN 裸露焊盤,CSP
供應(yīng)商設(shè)備封裝: 88-LFCSP(12x12)
包裝: 托盤
Rev. A
|
Page 64 of 80
|
July 2011
ADSP-BF504/ADSP-BF504F/ADSP-BF506F
supply using the 0 to VREF range or 2 × VREF range, respectively.
The common mode must be in this range to guarantee the func-
tionality of the ADC.
When a conversion takes place, the common mode is rejected,
resulting in a virtually noise free signal of amplitude –VREF to
+VREF corresponding to the digital codes of 0 to 4096. If the 2 ×
VREF range is used, then the input signal amplitude extends from
– 2 VREF to +2 VREF after conversion.
Driving Differential Inputs
Differential operation requires that VIN+ and VIN– be simultane-
ously driven with two equal signals that are 180° out of phase.
The common mode must be set up externally. The common-
mode range is determined by VREF, the power supply, and the
particular amplifier used to drive the analog inputs. Differential
modes of operation with either an ac or dc input provide the
best THD performance over a wide frequency range. Because
not all applications have a signal preconditioned for differential
operation, there is often a need to perform single-ended-to-dif-
ferential conversion.
Using an Op Amp Pair
An op amp pair can be used to directly couple a differential sig-
nal to one of the analog input pairs of the ADC. The circuit
configurations illustrated in Figure 72 (Dual Op Amp Circuit to
how a dual op amp can be used to convert a single-ended signal
into a differential signal for both a bipolar and unipolar input
signal, respectively.
The voltage applied to Point A sets up the common-mode volt-
age. In both diagrams, it is connected in some way to the
reference, but any value in the common-mode range can be
input here to set up the common mode. The AD8022 is a suit-
able dual op amp that can be used in this configuration to
provide differential drive to the ADC.
Take care when choosing the op amp; the selection depends on
the required power supply and system performance objectives.
for dc coupling applications requiring best distortion
performance.
The circuit configuration shown in Figure 72 (Dual Op Amp
ential Signal) converts a unipolar, single-ended signal into a
differential signal.
The differential op amp driver circuit shown in Figure 73 (Dual
Differential Unipolar Signal) is configured to convert and level
shift a single-ended, ground-referenced (bipolar) signal to a dif-
ferential signal centered at the VREF level of the ADC.
Pseudo Differential Mode
The ADC can have a total of six pseudo differential pairs. In this
mode, VIN+ is connected to the signal source that must have an
amplitude of VREF (or 2 × VREF, depending on the range chosen)
Figure 70. Input Common-Mode Range vs. VREF (0 to VREF Range, VDD = 5 V)
Figure 71. Input Common-Mode Range vs. VREF (2 × VREF Range, VDD = 5 V)
VREF (V)
5.0
0
0.5
1.0
1.5
2.0
2.5
3.0
3.5
4.0
4.5
COMMON-MODE
RANGE
(V)
3.5
3.0
2.5
2.0
1.5
1.0
0.5
0
TA = 25°C
VREF (V)
2.5
0
0.5
1.0
1.5
2.0
COMMON-MODE
RANGE
(V)
5.0
4.0
4.5
3.0
3.5
2.0
2.5
0.5
1.0
1.5
0
TA = 25°C
Figure 72. Dual Op Amp Circuit to Convert a Single-Ended Unipolar Signal
Into a Differential Signal
GND
2 × VREF p–p
27
V+
V–
V+
V–
VREF
2.5V
3.75V
1.25V
2.5V
3.75V
1.25V
VREF
(DCAPA/DCAPB)
VIN+
ADC
1
VIN–
440
220
0.47μF
1ADDITIONAL PINS OMITTED FOR CLARITY.
220
10k
A
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