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AD5142ABCPZ10-RL7 Datasheet(PDF) 26 Page - Analog Devices

Part # AD5142ABCPZ10-RL7
Description  Dual Channel, 128-/256-Position, I2C, Nonvolatile Digital Potentiometer
PDF  29 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

AD5142ABCPZ10-RL7 Datasheet(HTML) 26 Page - Analog Devices

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Data Sheet
AD5122A/AD5142A
THEORY OF OPERATION
analog.com
Rev. D | 26 of 29
PROGRAMMING THE VARIABLE RESISTOR
Rheostat Operation—±8% Resistor Tolerance
The AD5122A/AD5142A operate in rheostat mode when only two
terminals are used as a variable resistor. The unused terminal can
be floating, or it can be tied to Terminal W, as shown in Figure 42.
Figure 42. Rheostat Mode Configuration
The nominal resistance between Terminal A and Terminal B, RAB,
is 10 kΩ or 100 kΩ, and has 128/256 tap points accessed by the
wiper terminal. The 7-bit/8-bit data in the RDAC latch is decoded
to select one of the 128/256 possible wiper settings. The general
equations for determining the digitally programmed output resist-
ance between Terminal W and Terminal B are
AD5122A:
RWBD = D128×RAB+RW   From 0x00 to 0x7F (1)
AD5142A:
RWBD = D256×RAB+RW   From 0x00 to 0xFF (2)
where:
D is the decimal equivalent of the binary code in the 7-bit/8-bit
RDAC register.
RAB is the end-to-end resistance.
RW is the wiper resistance.
In potentiometer mode, similar to the mechanical potentiometer, the
resistance between Terminal W and Terminal A also produces a
digitally controlled complementary resistance, RWA. RWA also gives
a maximum of 8% absolute resistance error. RWA starts at the
maximum resistance value and decreases as the data loaded into
the latch increases. The general equations for this operation are
AD5122A:
RAWD =128−D128×RAB+RW   From 0x00 to 0x7F (3)
AD5142A:
RAWD =256−D256×RAB+RW   From 0x00 to 0xFF (4)
where:
D is the decimal equivalent of the binary code in the 7-bit/8-bit
RDAC register.
RAB is the end-to-end resistance.
RW is the wiper resistance.
If the part is configured in linear gain setting mode, the resistance
between Terminal W and Terminal A is directly proportional to the
code loaded in the associate RDAC register. The general equations
for this operation are
AD5122A:
RAWD = D128×RAB+RW   From 0x00 to 0x7F (5)
AD5142A:
RAWD = D256×RAB+RW   From 0x00 to 0xFF (6)
where:
D is the decimal equivalent of the binary code in the 7-bit/8-bit
RDAC register.
RAB is the end-to-end resistance.
RW is the wiper resistance.
In the bottom scale condition or top scale condition, a finite total
wiper resistance of 40 Ω is present. Regardless of which setting the
part is operating in, limit the current between Terminal A to Terminal
B, Terminal W to Terminal A, and Terminal W to Terminal B, to
the maximum continuous current or to the pulse current specified
in Table 5. Otherwise, degradation or possible destruction of the
internal switch contact can occur.
PROGRAMMING THE POTENTIOMETER
DIVIDER
Voltage Output Operation
The digital potentiometer easily generates a voltage divider at
wiper-to-B and wiper-to-A that is proportional to the input voltage at
A to B, as shown in Figure 43.
Figure 43. Potentiometer Mode Configuration
Connecting Terminal A to 5 V and Terminal B to ground produces
an output voltage at the Wiper W to Terminal B ranging from 0 V
to 5 V. The general equation defining the output voltage at VW with
respect to ground for any valid input voltage applied to Terminal A
and Terminal B is
VWD =RWBDRAB ×VA+RAWDRAB ×VB
(7)
where:
RWB(D) can be obtained from Equation 1 and Equation 2.
RAW(D) can be obtained from Equation 3 and Equation 4.
Operation of the digital potentiometer in the divider mode results
in a more accurate operation over temperature. Unlike the rheostat



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