AD623AN Analog Devices Inc, AD623AN Datasheet - Page 19

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AD623AN

Manufacturer Part Number
AD623AN
Description
IC AMP INST R-R LP 8DIP
Manufacturer
Analog Devices Inc
Datasheet

Specifications of AD623AN

Slew Rate
0.3 V/µs
Mounting Type
Through Hole
Rohs Status
RoHS non-compliant
Amplifier Type
Instrumentation
Number Of Circuits
1
Output Type
Rail-to-Rail
-3db Bandwidth
800kHz
Current - Input Bias
17nA
Voltage - Input Offset
25µV
Current - Supply
375µA
Voltage - Supply, Single/dual (±)
2.7 V ~ 12 V, ± 2.5 V ~ 6 V
Operating Temperature
-40°C ~ 85°C
Package / Case
8-DIP (0.300", 7.62mm)
No. Of Amplifiers
1
Bandwidth
0.8MHz
Amplifier Case Style
DIP
No. Of Pins
8
Operating Temperature Range
-40°C To +85°C
Programmable Gain Max
1000
Current - Output / Channel
-
Gain Bandwidth Product
-
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant

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Ground Returns for Input Bias Currents
Input bias currents are those dc currents that must flow to bias
the input transistors of an amplifier. These are usually transistor
base currents. When amplifying floating input sources, such as
transformers or ac-coupled sources, there must be a direct dc
path into each input in order that the bias current can flow.
Figure 49, Figure 50, and Figure 51 show how a bias current
path can be provided for the cases of transformer coupling,
thermocouple, and capacitive ac coupling. In dc-coupled resistive
bridge applications, providing this path is generally not necessary
as the bias current simply flows from the bridge supply through
the bridge into the amplifier. However, if the impedances that
the two inputs see are large and differ by a large amount (>10 kΩ),
the offset current of the input stage causes dc errors
proportional with the input offset voltage of the amplifier.
Figure 49. Ground Returns for Bias Currents with Transformer-Coupled Inputs
Figure 50. Ground Returns for Bias Currents with Thermocouple Inputs
100kΩ
Figure 51. Ground Returns for Bias Currents with AC-Coupled Inputs
100kΩ
R
R
R
G
G
G
–IN
+IN
+IN
–IN
+IN
–IN
2
1
8
3
2
1
8
3
2
1
8
3
AD623
AD623
AD623
–V
–V
–V
4
4
4
S
S
S
+V
+V
+V
7
7
7
S
S
S
5
5
5
REF
REF
REF
6
6
6
LOAD
LOAD
LOAD
OUTPUT
TO POWER
SUPPLY
GROUND
OTUPUT
TO POWER
SUPPLY
GROUND
OUTPUT
TO POWER
SUPPLY
GROUND
Rev. D | Page 19 of 24
Output Buffering
The AD623 is designed to drive loads of 10 kΩ or greater. If
the load is less than this value, the output of the AD623 should
be buffered with a precision single-supply op amp, such as the
OP113. This op amp can swing from 0 V to 4 V on its output
while driving a load as small as 600 Ω. Table 7 summarizes the
performance of some buffer op amps.
Table 7. Buffering Options
Op Amp
OP113
OP191
Single-Supply Data Acquisition System
Interfacing bipolar signals to single-supply ADCs presents a
challenge. The bipolar signal must be mapped into the input
range of the ADC. Figure 53 shows how this translation can be
achieved.
The bridge circuit is excited by a 5 V supply. The full-scale output
voltage from the bridge (±10 mV) therefore has a common-
mode level of 2.5 V. The AD623 removes the common-mode
component and amplifies the input signal by a factor of 100
(R
prevent this signal from running into the ground rail of the
AD623, the voltage on the REF pin must be raised to at least
1 V. In this example, the 2 V reference voltage from the
ADC is used to bias the output voltage of the AD623 to 2 V ± 1 V.
This corresponds to the input range of the ADC.
GAIN
5V
= 1.02 kΩ). This results in an output signal of ±1 V. To
V
IN
Figure 53. A Single-Supply Data Acquisition System
Description
Single supply, high output current
Rail-to-rail input and output, low supply current
R
G
±10mV
AD623
5V
Figure 52. Output Buffering
1.02kΩ
0.1µF
REFERENCE
R
G
AD623
5V
0.1µF
REFERENCE
OP113
5V
0.1µF
A
REFOUT
REFIN
IN
AD7776
V
OUT
5V
AD623
0.1µF
AD7776

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