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MCP4802-E/MS 数据表(PDF) 28 Page - Microchip Technology

部件名 MCP4802-E/MS
功能描述  8/10/12-Bit Dual Voltage Output Digital-to-Analog Converter with Internal VREF and SPI Interface
PDF  46 Pages
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制造商  MICROCHIP [Microchip Technology]
网页  http://www.microchip.com
标志 MICROCHIP - Microchip Technology

MCP4802-E/MS 数据表(HTML) 28 Page - Microchip Technology

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MCP4802/4812/4822
DS22249A-page 28
 2010 Microchip Technology Inc.
6.6
Bipolar Operation
Bipolar
operation
is
achievable
using
the
MCP4802/4812/4822 family of devices by utilizing an
external
operational
amplifier
(op
amp).
This
configuration is desirable due to the wide variety and
availability of op amps. This allows a general purpose
DAC, with its cost and availability advantages, to meet
almost any desired output voltage range, power and
noise performance.
Example 6-3 illustrates a simple bipolar voltage source
configuration. R1 and R2 allow the gain to be selected,
while R3 and R4 shift the DAC's output to a selected
offset. Note that R4 can be tied to VDD, instead of VSS,
if a higher offset is desired. Also note that a pull-up to
VDD could be used instead of R4, or in addition to R4, if
a higher offset is desired.
EXAMPLE 6-3:
DIGITALLY-CONTROLLED BIPOLAR VOLTAGE SOURCE
6.6.1
DESIGN EXAMPLE: DESIGN A
BIPOLAR DAC USING EXAMPLE 6-3
WITH 12-BIT MCP4822 OR
MCP4821
An output step magnitude of 1 mV, with an output range
of ±2.05V, is desired for a particular application.
Step 1: Calculate the range: +2.05V – (-2.05V) = 4.1V.
Step 2: Calculate the resolution needed:
4.1V/1 mV = 4100
Since 212 = 4096, 12-bit resolution is
desired.
Step 3:The amplifier gain (R2/R1), multiplied by full-
scale VOUT (4.096V), must be equal to the
desired minimum output to achieve bipolar
operation. Since any gain can be realized by
choosing resistor values (R1+R2), the VREF
value must be selected first. If a VREF of 4.096V
is used (G=2), solve for the amplifier’s gain by
setting the DAC to 0, knowing that the output
needs to be -2.05V.
The equation can be simplified to:
Step 4: Next, solve for R3 and R4 by setting the DAC to
4096, knowing that the output needs to be
+2.05V.
DAC
VDD
VDD
SPI
3-wire
VOUT
R3
R4
R2
R1
VIN+
0.1 µF
VCC+
VCC
VIN+
VOUTR4
R3 R4
+
--------------------
=
VO
VO
VIN+ 1
R2
R1
------
+

 V
DD
R2
R1
------


=
VOUT
2.048 G
Dn
2
N
------

=
(a) Single Output DAC:
MCP4801
MCP4811
MCP4821
(b) Dual Output DAC:
MCP4802
MCP4812
MCP4822
G
= Gain selection (1x or 2x)
Dn = Digital value of DAC (0-255) for MCP4801/MCP4802
= Digital value of DAC (0-1023) for MCP4811/MCP4812
= Digital value of DAC (0-4095) for MCP4821/MCP4822
N = DAC bit resolution
R2
R1
---------
2.05
4.096V
-----------------
=
If R1 = 20 k and R2 = 10 k, the gain will be 0.5.
R2
R1
------
1
2
---
=
R4
R3 R4
+

------------------------
2.05V
0.5 4.096V

+
1.5 4.096V
-------------------------------------------------------
2
3
---
==
If R4 = 20 k, then R3 = 10 k



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