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MCP47CMB02 Datasheet(PDF) 63 Page - Microchip Technology

Part # MCP47CMB02
Description  8/10/12-Bit Digital-to-Analog Converters, 1 LSb INL Single/Dual Voltage Outputs with I2C Interface
PDF  124 Pages
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Manufacturer  MICROCHIP [Microchip Technology]
Direct Link  http://www.microchip.com
Logo MICROCHIP - Microchip Technology

MCP47CMB02 Datasheet(HTML) 63 Page - Microchip Technology

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 2018-2019 Microchip Technology Inc.
DS20006089B-page 63
MCP47CXBXX
Table 5-2 shows the gain bit operation.
The volatile G bit value can be modified by:
• POR Event
• BOR Event
•I2C Write Commands
•I2C General Call Reset Command
5.3.2
OUTPUT VOLTAGE
The Volatile DAC register values, along with the
device’s Configuration bits, control the analog VOUT
voltage. The Volatile DAC register’s value is unsigned
binary. The formula for the output voltage is provided in
Equation 5-2. Examples of Volatile DAC register values
and the corresponding theoretical VOUT voltage for the
MCP47CXBXX devices are shown in Table 5-6.
EQUATION 5-2:
CALCULATING OUTPUT
VOLTAGE (VOUT)
When Gain = 2 (VRL = VREF), if VREF > VDD/2, the VOUT
voltage is limited to VDD. So if VREF = VDD, the VOUT
voltage does not change for Volatile DAC register
values mid-scale and greater, since the output amplifier
is at full-scale output.
The following events update the DAC register value,
and therefore, the analog Voltage Output (VOUT):
• Power-on Reset
• Brown-out Reset
•I2C write command (to Volatile registers) on the
rising edge of the last write command bit
•I2C General Call Reset command; the output is
updated with default POR data or MTP values
•I2C general call wake-up command; the output is
updated with default POR data or MTP values
Next, the VOUT voltage starts driving to the new value
after the event has occurred.
5.3.3
STEP VOLTAGE (VS)
The step voltage depends on the device resolution and
the calculated output voltage range. One LSb is
defined as the ideal voltage difference between two
successive codes. The step voltage can easily be cal-
culated by using Equation 5-3 (the DAC register value
is equal to ‘1’). Theoretical step voltages are shown in
Table 5-3 for several VREF voltages.
EQUATION 5-3:
VS CALCULATION
TABLE 5-3:
THEORETICAL STEP VOLTAGE (VS)(1)
TABLE 5-2:
OUTPUT DRIVER GAIN
Gain Bit
Gain
Comment
0
1
1
2
Limits VREF pin voltages
relative to device VDD voltage.
Where:
# Resistors in R-Ladder = 4096 (MCP47CXB2X)
1024 (MCP47CXB1X)
256 (MCP47CXB0X)
VOUT
VRL DAC Register Value
# Resistor in Resistor Ladder
----------------------------------------------------------------------Gain
=
Where:
# Resistors in R-Ladder = 4096 (12-bit)
1024 (10-bit)
256 (8-bit)
VS
VRL
# Resistor in Resistor Ladder
----------------------------------------------------------------------Gain
=
Step
Voltage
VREF
5.02.7
1.81.5
1.0
VS
1.22 mV
659 uV
439 uV
366 uV
244 uV
12-bit
4.88 mV
2.64 mV
1.76 mV
1.46 mV
977 uV
10-bit
19.5mV
10.5mV
7.03 mV
5.86mV
3.91 mV
8-bit
Note 1:
When Gain = 1x, VFS = VRL and VZS = 0V.



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