MCP6V01-E/SN Microchip Technology, MCP6V01-E/SN Datasheet - Page 29

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MCP6V01-E/SN

Manufacturer Part Number
MCP6V01-E/SN
Description
IC OPAMP AUTO-ZERO SNGL 8SOIC
Manufacturer
Microchip Technology
Datasheet

Specifications of MCP6V01-E/SN

Slew Rate
0.5 V/µs
Package / Case
8-SOIC (3.9mm Width)
Amplifier Type
Chopper (Zero-Drift)
Number Of Circuits
1
Output Type
Rail-to-Rail
Gain Bandwidth Product
1.3MHz
Current - Input Bias
1pA
Voltage - Input Offset
2µV
Current - Supply
300µA
Current - Output / Channel
22mA
Voltage - Supply, Single/dual (±)
1.8 V ~ 5.5 V
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Number Of Channels
1
Common Mode Rejection Ratio (min)
130 dB
Input Offset Voltage
0.002 mV
Input Bias Current (max)
1 pA
Operating Supply Voltage
3 V, 5 V
Maximum Operating Temperature
+ 125 C
Minimum Operating Temperature
- 40 C
Mounting Style
SMD/SMT
Shutdown
No
Supply Voltage (max)
5.5 V
Supply Voltage (min)
1.8 V
Technology
CMOS
Voltage Gain Db
156 dB
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
For Use With
MCP6V01DM-VOS - DEMO BOARD FOR MCP6V01MCP6V01RD-TCPL - REF DESIGN THERMCPL FOR MCP6V01
-3db Bandwidth
-
Lead Free Status / Rohs Status
Lead free / RoHS Compliant

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Manufacturer
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Price
Part Number:
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Quantity:
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4.4
4.4.1
Many sensors are configured as Wheatstone bridges.
Strain gauges and pressure sensors are two common
examples. These signals can be small and the
common mode noise large. Amplifier designs with high
differential gain are desirable.
Figure 4-15
bridge with a minimum of components. Because the
circuit is not symmetric, the ADC input is single ended,
and there is a minimum of filtering, the CMRR is good
enough for moderate common mode noise.
FIGURE 4-15:
Figure 4-16
Wheatstone bridges. This circuit is symmetric and has
high CMRR. Using a differential input to the ADC helps
with the CMRR.
FIGURE 4-16:
© 2008 Microchip Technology Inc.
R R
R R
R R
R R
V
Typical Applications
DD
WHEATSTONE BRIDGE
shows how to interface to a Wheatstone
shows a higher performance circuit for
10 nF
10 nF
V
DD
0.2R
0.2R
Simple Design.
High Performance Design.
1 µF
200Ω
200Ω
200 Ω
200 Ω
0.01C
100R
MCP6V01
20 kΩ
20 kΩ
3 kΩ
1 µF
1 µF
3 kΩ
3 kΩ
½ MCP6V02
½ MCP6V02
ADC
V
DD
ADC
V
DD
4.4.2
The ratiometric circuit in
wire RTD. It corrects for the sensor’s wiring resistance
by subtracting the voltage across the middle R
top R1 does not change the output voltage; it balances
the op amp inputs. Failure (open) of the RTD is
detected by an out of range voltage.
FIGURE 4-17:
The voltages at the input of the ADC can be calculated
with the following:
Where:
R
R
R
V
V
R
100Ω
W
W
W
V
V
CM
DM
V
G
RTD
W
V
V
B
T
RTD
G
DM
CM
W
RTD SENSOR
=
=
=
=
=
=
=
=
=
10 nF
10 nF
1
G
G
V
------------------------------------------------------------------------------
V
T
+
RTD
RTD
DD
+
MCP6V01/2/3
2 R
Voltage at the top of R
Voltage at the bottom of R
Voltage across top and middle
R
ADC’s common mode input
ADC’s differential mode input
R
20 kΩ
R
20 kΩ
V
(
W
T
B
V
RTD Sensor.
B
’s
1 µF
R
2.49 kΩ
2.49 kΩ
T
3
Figure 4-17
+
2.49 kΩ
2.49 kΩ
3
(
R
R
R
V
G
R
2
1
1
B
1
RTD
)
2
+
G
+
W
R
2.55 kΩ
R
2.55 kΩ
1 G
100 kΩ
100 kΩ
100 nF
100 nF
DS22058C-page 29
conditions a three
V
2
2
R
R
W
3
3
½ MCP6V02
½ MCP6V02
W
)V
RTD
W
RTD
3 kΩ
3 kΩ
ADC
W
V
. The
DD

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