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ADA4254ACPZ-R7 数据表(PDF) 23 Page - Analog Devices

部件名 ADA4254ACPZ-R7
功能描述  Zero Drift, High Voltage, Low Power, Programmable Gain Instrumentation Amplifier
PDF  59 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADA4254ACPZ-R7 数据表(HTML) 23 Page - Analog Devices

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Data Sheet
ADA4254
Rev. B | Page 23 of 59
THEORY OF OPERATION
PROGRAMMABLE GAIN INSTRUMENTATION
AMPLIFIER
The ADA4254 is a direct current mode instrumentation amplifier
implemented with zero drift amplifiers. The ADA4254 topology
ensures precision operation over temperature. Refer to the
simplified architecture shown in Figure 79 to understand the
following circuit description.
The input multiplexer connects the inputs to Amplifier A3 and
Amplifier A7, which are configured to replicate these input voltages
on the RIN input resistor. The A1, A2, A5, and A6 amplifiers are
configured to replicate the internal reference voltage, VREF, on R1,
R2, R5, and R6, creating four nominally equal dc bias currents in
the drains of M1, M2, M5, and M6. Amplifier A4 and Amplifier
A8 are configured to replicate the currents in R3 and R7 in the
drains of M4 and M8, respectively, forming current mirrors.
When positive voltage is applied to the ADA4254 inputs, a
proportional current is conducted by RIN. The drain currents of
M3 and M4 increase by this amount, and the drain currents of
M7 and M8 reduce by this amount. This portion of the amplifier
operates as a transconductance with differential output, each
having a gain of 1/RIN. Output amplifier A9 is configured as a
transimpedance amplifier with gain of ROUT. A9 provides a
common-mode level shift to the output and produces the
differential output voltage (VOUT, DIFF) as follows:
VOUT, DIFF = ()
2
IN
IN
OUT
IN
VV
R
R


where:
V+IN is the positive input voltage.
V−IN is the negative input voltage.
The overall gain of the ADA4254 amplifier is 2 × ROUT/RIN. The
different gain settings are achieved by internally switching in
different values for ROUT and RIN.
The value of RIN can be set to 12 different values via the G3 to
G0 bits, resulting in 12 binary weighted input gains. The value
of ROUT can also be set to three different values via G4 and G5,
resulting in three output scaling gains. Table 6 shows the 36
possible gain configurations, making the ADA4254 versatile
when interfacing with a wide selection of sensors and ADCs.
Table 6. Possible Gain Settings
Input Gain
Output Scaling Gain (V/V)
1
1.25
1.375
0.0625
0.0625
0.078125
0.085938
0.125
0.125
0.15625
0.171875
0.25
0.25
0.3125
0.34375
0.5
0.5
0.625
0.6875
1
1
1.25
1.375
2
2
2.5
2.75
4
4
5
5.5
8
8
10
11
16
16
20
22
32
32
40
44
64
64
80
88
128
128
160
176
Each amplifier used in the ADA4254 uses a proprietary, zero
drift architecture to ensure very low offset voltage, offset
voltage drift, and 1/f noise.
A3
EMI
FILTER
M3
A4
M4
A8
M8
A1
M1
A2
M2
A7
A9
M7
A6
M6
A5
M5
R5
R6
R2
VREF
+IN
–IN
(V+IN – V–IN) × ROUT
VOCM
VOCM +
RIN
VSSH
INPUT TRANSCONDUCTANCE AMPLIFIER
OUTPUT TRANSIMPEDANCE AMPLIFIER
VDDH
R1
RIN
(V+IN – V–IN) × ROUT
RIN
V+IN – V–IN
RIN
V+IN – V–IN
RIN
V+IN – V–IN
RIN
+IN1
+IN2
–IN1
–IN2
+OUT
–OUT
VOCM
R3
R8
R7
AVDD
AVSS
ROUT
R4
ROUT
Figure 79. Simplified ADA4254 Programmable Gain Instrumentation Amplifier Topology



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