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ADP1864AUJZ-R7 Datasheet(PDF) 10 Page - Analog Devices

Part # ADP1864AUJZ-R7
Description  Constant Frequency Current-Mode Step-Down DC/DC Controller in TSOT
PDF  16 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

ADP1864AUJZ-R7 Datasheet(HTML) 10 Page - Analog Devices

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ADP1864
Rev. 0 | Page 10 of 16
APPLICATION INFORMATION
DUTY CYCLE
To determine the worst case inductor ripple current, output
voltage ripple, and slope compensation factor, determine the
system maximum and minimum duty cycle. The duty cycle is
calculated by the equation
()
D
IN
D
OUT
V
V
V
V
DC
CYCLE
DUTY
+
+
=
where VD is the diode forward drop. A typical Schottky diode
has a forward voltage drop of 0.5 V.
RIPPLE CURRENT
Choose the peak-to-peak inductor ripple current between 20%
and 40% of the maximum load current at the system’s highest
input voltage. A good starting point for a design is to pick the
peak-to-peak ripple current at 30% of the load current.
ΔI(PEAK) = 0.3 × ILOAD(MAX)
SENSE RESISTOR
Choose the sense resistor value to provide the desired current
limit. The internal current comparator measures the peak
current (sum of load current and positive inductor ripple
current) and compares it against the current limit threshold.
The current sense resistor value is calculated by the equation
()
()
()
2
PEAK
MAX
LOAD
MIN
SENSE
I
I
PCSV
R
Δ
+
=
where PCSV is the peak current sense voltage, typically 0.125 V.
To ensure the design provides the required output load current
over all system conditions, consider the variation in PCSV over
temperature (see the Specifications section) as well as increases
in ripple current due to inductor tolerance.
If the system is being operated with >40% duty cycle, incor-
porate the slope compensation factor into the calculation.
()
()
()
2
PEAK
MAX
LOAD
MIN
SENSE
I
I
PCSV
SF
R
Δ
+
×
=
where SF is the slope factor correction ratio, taken from
Figure 14, at the system maximum duty cycle (minimum input
voltage).
0
1.0
DUTY CYCLE
1.05
0.35
0.95
0.85
0.75
0.65
0.55
0.45
0.1
0.2
0.3
0.4
0.5
0.6
0.7
0.8
0.9
Figure 14. Slope Factor (SF) vs. Duty Ratio
INDUCTOR VALUE
The inductor value choice is important because it dictates the
inductor ripple and, therefore, the voltage ripple at the output.
When operating the part at greater than 40% duty cycle, keep
the inductor value low enough for the slope compensation to
remain effective.
The inductor ripple current is inversely related to the inductor
value.
()
(
)
+
+
×
×
=
Δ
D
IN
D
OUT
OUT
IN
PEAK
V
V
V
V
f
L
V
V
I
Smaller inductor values are typically smaller in size and usually
less expensive, but increase the ripple current and the output
voltage ripple. Too large an inductor value results in added
expense and may impede effective load transient responses at
>40% duty cycle because it reduces the effect of slope
compensation.
Start with the highest input voltage, and assume ripple current
is 30% of the maximum load current:
(
)
()
+
+
×
×
×
=
D
IN
D
OUT
MAX
LOAD
OUT
IN
V
V
V
V
f
I
V
V
L
3
.
0
From this starting point, modify the inductance to obtain the
right balance of size, cost, and output voltage ripple while
maintaining the inductor ripple current between 20% and 40%
of the maximum load current.



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