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AD7453BRT-R2 датащи(PDF) 10 Page - Analog Devices

номер детали AD7453BRT-R2
подробное описание детали  Pseudo Differential, 555 kSPS, 12-Bit ADC in an 8-Lead SOT-23
PDF  20 Pages
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производитель  AD [Analog Devices]
домашняя страница  http://www.analog.com
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AD7453BRT-R2 датащи(HTML) 10 Page - Analog Devices

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REV. 0
–10–
AD7453
CIRCUIT INFORMATION
The AD7453 is a 12-bit, low power, single supply, successive
approximation analog-to-digital converter (ADC) with a pseudo
differential analog input. It operates with a single 2.7 V to
5.25 V power supply and is capable of throughput rates up to
555 kSPS when supplied with a 10 MHz SCLK. It requires an
external reference to be applied to the VREF pin.
The AD7453 has an on-chip differential track-and-hold amplifier,
a successive approximation (SAR) ADC, and a serial interface,
housed in an 8-lead SOT-23 package. The serial clock input
accesses data from the part and provides the clock source for
the successive approximation ADC. The AD7453 features a
power-down option for reduced power consumption between
conversions. The power-down feature is implemented across
the standard serial interface, as described in the Modes of
Operation section.
CONVERTER OPERATION
The AD7453 is a successive approximation ADC based around
two capacitive DACs. Figures 3 and 4 show simplified schematics
of the ADC in the acquisition and conversion phase, respectively.
The ADC is comprised of control logic, an SAR, and two capaci-
tive DACs. In Figure 3 (acquisition phase), SW3 is closed and
SW1 and SW2 are in Position A, the comparator is held in a
balanced condition, and the sampling capacitor arrays acquire
the differential signal on the input.
VIN+
VIN–
A
B
SW1
SW3
COMPARATOR
CONTROL
LOGIC
CAPACITIVE
DAC
CAPACITIVE
DAC
CS
CS
VREF
SW2
B
A
Figure 3. ADC Acquisition Phase
When the ADC starts a conversion (Figure 4), SW3 will open
and SW1 and SW2 will move to Position B, causing the com-
parator to become unbalanced. Both inputs are disconnected
once the conversion begins. The control logic and the charge
redistribution DACs are used to add and subtract fixed amounts
of charge from the sampling capacitor arrays to bring the com-
parator back into a balanced condition. When the comparator is
rebalanced, the conversion is complete. The control logic
generates the ADC’s output code. The output impedances of
the sources driving the VIN+ and the VIN– pins must be matched;
otherwise the two inputs will have different settling times, resulting
in errors.
VIN+
VIN–
A
B
SW1
SW3
COMPARATOR
CONTROL
LOGIC
CAPACITIVE
DAC
CAPACITIVE
DAC
CS
CS
VREF
SW2
B
A
Figure 4. ADC Conversion Phase
ADC TRANSFER FUNCTION
The output coding for the AD7453 is straight (natural) binary.
The designed code transitions occur at successive LSB values
(i.e., 1 LSB, 2 LSB, and so on). The LSB size is VREF/4096.
The ideal transfer characteristic of the AD7453 is shown in
Figure 5.
000...00
0V
ANALOG INPUT
111...11
000...01
111...00
011...11
1LSB
VREF – 1LSB
1LSB = VREF/4096
111...10
000...10
Figure 5. Ideal Transfer Characteristic
TYPICAL CONNECTION DIAGRAM
Figure 6 shows a typical connection diagram for the AD7453.
In this setup the GND pin is connected to the analog ground
plane of the system. The VREF pin is connected to the AD780, a
2.5 V decoupled reference source. The signal source, is con-
nected to the VIN+ analog input via a unity gain buffer. A dc
voltage is connected to the VIN– pin to provide a pseudo ground
for the VIN+ input. The VDD pin should be decoupled to AGND
with a 1
mF tantalum capacitor in parallel with a 0.1 mF ceramic
capacitor. The reference pin should be decoupled to AGND
with a capacitor of at least 0.1
mF. The conversion result is
output in a 16-bit word with four leading zeros followed by the
MSB of the 12-bit result.
VIN+
VIN–
VDD
SCLK
SDATA
CS
GND
VREF
C/ P
SERIAL
INTERFACE
+2.7V TO +5.25V
SUPPLY
2.5V
AD780
0.1 F
0.1 F
10 F
AD7453
VREF
P-TO-P
DC INPUT
VOLTAGE
Figure 6. Typical Connection Diagram



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