AD8276BRMZ-R7 Analog Devices Inc, AD8276BRMZ-R7 Datasheet - Page 14

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AD8276BRMZ-R7

Manufacturer Part Number
AD8276BRMZ-R7
Description
Single G=1 LowPower,WideInputRange
Manufacturer
Analog Devices Inc
Type
Instrumentation Amplifierr
Datasheets

Specifications of AD8276BRMZ-R7

Design Resources
High Precision, Low Cost Current Sources Using AD8276 and AD8603 (CN0099)
Amplifier Type
Differential
Number Of Circuits
1
Output Type
Rail-to-Rail
Slew Rate
1.1 V/µs
Gain Bandwidth Product
550kHz
Voltage - Input Offset
100µV
Current - Supply
200µA
Current - Output / Channel
15mA
Voltage - Supply, Single/dual (±)
2 V ~ 36 V, ±2 V ~ 18 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
8-MSOP, Micro8™, 8-uMAX, 8-uSOP,
Number Of Channels
1
Number Of Elements
1
Power Supply Requirement
Single/Dual
Common Mode Rejection Ratio
86dB
Input Resistance
0.08@±5VMohm
Input Offset Voltage
0.2@±5VmV
Single Supply Voltage (typ)
3/5/9/12/15/18/24/28V
Dual Supply Voltage (typ)
±3/±5/±9/±12/±15V
Rail/rail I/o Type
Rail to Rail Output
Single Supply Voltage (min)
2V
Single Supply Voltage (max)
36V
Dual Supply Voltage (min)
±2V
Dual Supply Voltage (max)
±18V
Operating Temp Range
-40C to 85C
Operating Temperature Classification
Industrial
Mounting
Surface Mount
Pin Count
8
Package Type
MSOP
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
-3db Bandwidth
-
Current - Input Bias
-
Lead Free Status / Rohs Status
Compliant
Other names
AD8276BRMZ-R7TR

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
AD8276BRMZ-R7
Manufacturer:
ADI
Quantity:
1 000
AD8276
INSTRUMENTATION AMPLIFIER
The AD8276 can be used as a building block for a low power,
low cost instrumentation amplifier. An instrumentation amplifier
provides high impedance inputs and delivers high common-
mode rejection. Combining the AD8276 with an Analog Devices
low power amplifier (examples provided in Table 7) creates a
precise, power efficient voltage measurement solution suitable
for power critical systems.
Table 7. Low Power Op Amps
Op Amp (A1, A2)
AD8506
AD8607
AD8617
AD8667
–IN
+IN
R
Figure 44. Low Power Precision Instrumentation Amplifier
G
A1
A2
R
R
F
F
Features
Dual micropower op amp
Precision dual micropower op amp
Low cost CMOS micropower op amp
Dual precision CMOS micropower op amp
40kΩ
40kΩ
40kΩ
V
OUT
REF
= (1 + 2R
V+
V–
AD8276
1
2
3
4
5
40kΩ
F
REF
/R
ADR821
G
) (V
IN+
– V
V
IN–
OUT
Figure 45. Constant Current Source
)
10
9
8
7
6
Rev. 0 | Page 14 of 16
–2.5V
2
3
40kΩ
40kΩ
AD8276
7
4
V+
It is preferable to use dual op amps for the high impedance inputs,
because they have better matched performance and track each
other over temperature. The AD8276 difference amplifier can-
cels out common-mode errors from the input op amps, if they
track each other. The differential gain accuracy of the in-amp
is proportional to how well the input feedback resistors (R
match each other. The CMRR of the in-amp increases as the
differential gain is increased (1 + 2R
reduces the common-mode voltage range. Refer to
Guide to Instrumentation Amplifiers
considerations.
CURRENT SOURCE
The AD8276 difference amplifier can be implemented as part
of a voltage-to-current converter or a precision constant current
source as shown in Figure 45. The internal resistors are tightly
matched to minimize error and temperature drift. If the exter-
nal resistors R1 and R2 are not well-matched, they will be a
significant source of error in the system, so precision resistors
are recommended to maintain performance. The
provides a precision voltage reference and integrated op amp
that also reduces error in the signal chain.
The AD8276 has rail-to-rail output capability, which allows
higher current outputs.
40kΩ
40kΩ
I
R1 = R2
O
= 2.5V(1/40kΩ + 1/R1)
5
6
1
2N3904
R2
R1
R
LOAD
F
for more design ideas and
/R
G
), but a higher gain also
ADR821
A Designer’s
F
)

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