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ADA4522-4ARUZ-R7 Datasheet(PDF) 30 Page - Analog Devices

Part # ADA4522-4ARUZ-R7
Description  55 V, EMI Enhanced, Zero Drift, Ultralow Noise, Rail-to-Rail Output Operational
PDF  33 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

ADA4522-4ARUZ-R7 Datasheet(HTML) 30 Page - Analog Devices

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Data Sheet
ADA4522-1/ADA4522-2/ADA4522-4
APPLICATIONS INFORMATION
analog.com
Rev. G | 30 of 33
Figure 85. Mismatch in Seebeck Voltages Causes Seebeck Voltage Error
In Figure 85, VSC1 and VSC2 are the Seebeck voltages due to solder
to component at Junction 1 and Junction 2, respectively. VTS1 and
VTS2 are the Seebeck voltages due to solder to trace at Junction 1
and Junction 2. TA1 and TA2 are the temperatures of Junction 1 and
Junction 2, respectively.
To minimize these thermocouple effects, orient resistors so that
heat sources warm both ends equally. Where possible, it is recom-
mended that the input signal paths contain matching numbers and
types of components to match the number and type of thermocou-
ple junctions. For example, dummy components, such as zero
value resistors, can be used to match the thermoelectric error
source (real resistors in the opposite input path). Place matching
components in close proximity and orient them in the same manner
to ensure equal Seebeck voltages, thus canceling thermal errors.
Additionally, use leads that are of equal length to keep thermal
conduction in equilibrium. Keep heat sources on the PCB as far
away from amplifier input circuitry as is practical.
It is highly recommended to use a ground plane. A ground plane
helps distribute heat throughout the board, maintain a constant
temperature across the board, and reduce EMI noise pickup.
COMPARATOR OPERATION
An op amp is designed to operate in a closed-loop configuration
with feedback from its output to its inverting input. In contrast to
op amps, comparators are designed to operate in an open-loop
configuration and to drive logic circuits. Although op amps are dif-
ferent from comparators, occasionally an unused section of a dual
op amp is used as a comparator to save board space and cost;
however, this is not recommended for the ADA4522-1/ADA4522-2/
ADA4522-4.
Figure 86 and Figure 87 show the ADA4522-1/ADA4522-2/
ADA4522-4 configured as a comparator, with 10 kΩ resistors in
series with the input pins. Any unused channels are configured as
buffers with the input voltage kept at the midpoint of the power sup-
plies. The ADA4522-1/ADA4522-2/ADA4522-4 have input devices
that are protected from large differential input voltages by Diode
D5 and Diode D6, as shown in Figure 72. These diodes consist
of substrate PNP bipolar transistors, and conduct whenever the
differential input voltage exceeds approximately 600 mV; however,
these diodes also allow a current path from the input to the lower
supply rail, resulting in an increase in the total supply current of the
system. Both comparator configurations yield the same result. At 30
V of power supply, ISY+ remains at 1.55 mA per dual amplifier, but
ISY− increases close to 2 mA in magnitude per dual amplifier.
Figure 86. Comparator Configuration A
Figure 87. Comparator Configuration B
Figure 88. Supply Current (ISY) per Dual Amplifier vs. Supply Voltage (VSY)
(ADA4522-1/ADA4522-2/ADA4522-4 as a Comparator)
Note that 10 kΩ resistors are used in series with the input of the
op amp. If smaller resistor values are used, the supply current of
the system increases much more. For more details on op amps as
comparators, see the AN-849 Application Note, Using Op Amps as
Comparators.
USE OF LARGE SOURCE RESISTANCE
The ADA4522-1/ADA4522-2/ADA4522-4 are designed to work with
low value source resistance. Note that the amplifier has an ultralow
voltage noise density of 6 nV/√Hz. A 1 kΩ resistor contributes 4
nV/√Hz; therefore, placing a 1 kΩ resistor at the input increases



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