MCP4728EV Microchip Technology, MCP4728EV Datasheet - Page 47

BOARD EVAL 12BIT 4CH DAC MCP4728

MCP4728EV

Manufacturer Part Number
MCP4728EV
Description
BOARD EVAL 12BIT 4CH DAC MCP4728
Manufacturer
Microchip Technology
Type
D/Ar
Datasheets

Specifications of MCP4728EV

Number Of Dac's
4
Number Of Bits
12
Outputs And Type
1, Single Ended
Data Interface
I²C
Settling Time
6µs
Dac Type
Voltage
Voltage Supply Source
Single
Operating Temperature
-40°C ~ 125°C
Utilized Ic / Part
MCP4728
Product
Data Conversion Development Tools
Resolution
12 bit
Interface Type
I2C
Supply Voltage (max)
5.5 V
Supply Voltage (min)
2.7 V
Silicon Manufacturer
Microchip
Silicon Core Number
MCP4728
Kit Application Type
Data Converter
Application Sub Type
DAC
Kit Contents
Board
For Use With/related Products
MCP4728
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
MCP4728EV
Manufacturer:
Microchip Technology
Quantity:
135
Part Number:
MCP4728EV
Manufacturer:
MICROCHIP
Quantity:
12 000
6.0
6.1
The resolution is the number of DAC output states that
divide the full scale range. For the 12-bit DAC, the
resolution is 2
to 4095.
6.2
The least significant bit is the ideal voltage difference
between two successive codes.
EQUATION 6-1:
6.3
Integral nonlinearity (INL) error is the maximum
deviation of an actual transfer function from an ideal
transfer function (straight line). In the MCP4728, INL is
calculated using two end-points (zero and full scale).
INL can be expressed as a percentage of full scale
range (FSR) or in fractions of an LSB. INL is also called
relative accuracy.
the INL error in LSB and
of INL accuracy.
EQUATION 6-2:
© 2010 Microchip Technology Inc.
Where:
Where:
INL is expressed in LSB
V
V
V
Ideal
OUT
REF
n
TERMINOLOGY
Resolution
Least Significant Bit (LSB)
Integral Nonlinearity (INL)
=
=
=
=
=
LSB
12
The number of digital input bits,
n = 12 for MCP4728
2.048V If internal reference is
INL
, meaning the DAC code ranges from 0
V
Code*LSB
The output voltage measured at
the given input code
DD
Equation 6-2
=
=
=
=
V
------------ -
(
---------------------------------------------------------
(
---------------------------------------------------------
V
V
REF
2
INL ERROR
Full Scale
Full Scale
If external reference is
selected
selected
(
-------------------------------------- -
n
V
Figure 6-1
OUT
2
LSB
4095
12
shows how to calculate
V
V
V
Ideal
1
Zero Scale
Zero Scale
shows an example
)
)
)
FIGURE 6-1:
6.4
Differential nonlinearity (DNL) error (see
the measure of step size between codes in actual
transfer function. The ideal step size between codes is
1 LSB. A DNL error of zero would imply that every code
is exactly 1 LSB wide. If the DNL error is less than
1 LSB, the DAC guarantees monotonic output and no
missing codes. The DNL error between any two
adjacent codes is calculated as follows:
EQUATION 6-3:
Where:
DNL is expressed in LSB.
Analog
Output
ΔV
(LSB)
OUT
7
6
5
1
0
4
3
2
Differential Nonlinearity (DNL)
000
INL = 0.5 LSB
=
001
DNL
The measured DAC output
voltage difference between two
adjacent input codes
010
Ideal Transfer Function
Actual Transfer Function
=
INL Accuracy.
DNL ERROR
ΔV
--------------------------------- -
011
DAC Input Code
INL = - 1 LSB
OUT
LSB
100 101
MCP4728
LSB
INL = < -1 LSB
DS22187E-page 47
110
Figure
111
6-2) is

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