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ADP5072ACBZ-R7 Datasheet(PDF) 19 Page - Analog Devices

Part # ADP5072ACBZ-R7
Description  1 A/0.6 A DC to DC Switching Regulator Independent Positive and Negative Outputs
PDF  24 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

ADP5072ACBZ-R7 Datasheet(HTML) 19 Page - Analog Devices

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Data Sheet
ADP5072
Rev. 0 | Page 19 of 24
When the ADP5072 inverting regulator is operated in CCM at
duty cycles greater than 50%, slope compensation is required to
stabilize the current mode loop. For stable current mode operation,
ensure that the selected inductance is equal to or greater than
the minimum calculated inductance, LMIN2, for the application
parameters in the following equation:
0.13
0.16
(1
)
MIN2
IN
2
L2 L
V
DUTY

>=
×



(µH)
Table 11 suggests a series of inductors to use with the ADP5072
inverting regulator.
LOOP COMPENSATION
The ADP5072 uses external components to compensate the
regulator loop, allowing the optimization of the loop dynamics
for a given application.
Boost Regulator
The boost converter produces an undesirable right half plane
zero in the regulation feedback loop. This feedback loop requires
compensating the regulator such that the crossover frequency
occurs well below the frequency of the right half plane zero. The
right half plane zero is determined by the following equation:
2
(1
)
()
2
LOAD1
1
Z1
R
DUTY
f RHP
L1
π
=
×
where:
fZ1(RHP) is the right half plane zero frequency.
RLOAD1 is the equivalent load resistance or the output voltage
divided by the load current.
DIODE1
POS
IN
1
POS
DIODE1
V
VV
DUTY
VV

−+
= 

+

where VDIODE1 is the forward voltage drop of the Schottky
diode (D1).
To stabilize the regulator, ensure that the regulator crossover
frequency is less than or equal to one-tenth of the right half
plane zero frequency.
The boost regulator loop gain is
FB1
IN
VL1
M1
OUT1
COMP1
CS1
OUT1
POS
POS
VV
A
g
R
||Z
g
Z
VV
=
×
××
×
×
where:
AVL1 is the loop gain.
VFB1 is the feedback regulation voltage
VPOS is the regulated positive output voltage.
VIN is the input voltage.
gM1 is the error amplifier transconductance gain.
ROUT1 is the output impedance of the error amplifier and is 33 MΩ.
ZCOMP1 is the impedance of the series resistor/capacitor (RC)
network from COMP1 to AGND.
gCS1 is the current sense transconductance gain (the inductor
current divided by the voltage at COMP1), which is internally
set by the ADP5072 and is 6.25 A/V.
ZOUT1 is the impedance of the load in parallel with the output
capacitor.
To determine the crossover frequency (fC1), it is important to
note that, at that frequency, the compensation impedance (ZCOMP1)
is dominated by a resistor (RC1), and the output impedance (ZOUT1)
is dominated by the impedance of an output capacitor (COUT1).
Therefore, when solving for the crossover frequency, the equation
(by definition of the crossover frequency) is simplified to
1
1
2
FB1
IN
VL1
M1
C1
CS1
POS
POS
C1
OUT1
VV
A
g
R
g
VV
πf
C
=
×
×
××
×
=
××
where fC1 is the crossover frequency.
To solve for RC1, use the following equation:
2
2)
C1
OUT1
POS
C1
FB1
IN
M1
CS1
f
C
(V
R
V
Vg
g
π ××
×
=
×
×
×
where gCS1 = 6.25 A/V.
Using typical values for VFB1 and GM1 results in
2
4188
)
C1
OUT1
POS
C1
IN
f
C
(V
R
V
××
×
=
For improved accuracy, it is recommended to use the value of the
output capacitance, COUT1, expected for the dc bias conditions
under which it operates in the calculation for RC1.
After the compensation resistor is known, set the zero formed
by the compensation capacitor and resistor, CC1 and RC1, to one-
fourth of the crossover frequency, or
2
C1
C1
C1
C
πf
R
=
××
where CC1 is the compensation capacitor value.
ERROR
AMPLIFIER
REF1
gM1
FB1
COMP1
RC1
CC1
Figure 44. Compensation Components



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