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ADP2387ACPZN-R7 Datasheet(PDF) 15 Page - Analog Devices

Part # ADP2387ACPZN-R7
Description  20 V, 6 A, Synchronous, Step-Down DC-to-DC Regulator
PDF  25 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

ADP2387ACPZN-R7 Datasheet(HTML) 15 Page - Analog Devices

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Data Sheet
ADP2387
Rev. C | Page 15 of 25
APPLICATIONS INFORMATION
INPUT CAPACITOR SELECTION
The input capacitor reduces the input voltage ripple caused by
the switch current on PVIN. Place the input capacitor as close
as possible to the PVIN pin. A ceramic capacitor in the 10 µF to
47 µF range is recommended. Keep the loop that is composed of
this input capacitor, the high-side MOSFET, and the low-side
MOSFET as small as possible.
The voltage rating of the input capacitor must be greater than the
maximum input voltage. The rms current rating of the input
capacitor must be larger than the value calculated by the
following equation:
)
(1 D
D
I
I
OUT
C RMS
IN
×
×
=
OUTPUT VOLTAGE SETTING
An external resistive divider sets the output voltage of the
ADP2387. Use the following equation to calculate the resistor
values:


+
×
=
BOT
TOP
OUT
R
R
V
1
6
.
0
where:
RTOP is the top feedback resistor between VOUT and FB.
RBOT is the bottom feedback resistor between FB and GND.
To limit output voltage accuracy degradation due to the FB bias
current (0.1 µA maximum) to less than 0.5% (maximum),
ensure that RBOT < 30 kΩ.
Table 6 lists the recommended resistor divider values for various
output voltages.
Table 6. Resistor Divider Values for Various Output Voltages
VOUT (V)
RTOP ± 1% (kΩ)
RBOT ± 1% (kΩ)
1.0
10
15
1.2
10
10
1.5
15
10
1.8
20
10
2.5
47.5
15
3.3
10
2.21
5.0
22
3
VOLTAGE CONVERSION LIMITATIONS
The minimum output voltage for a given input voltage and
switching frequency is constrained by the minimum on time.
The minimum on time of the ADP2387 is typically 130 ns.
Calculate the minimum output voltage for a given input voltage
and switching frequency by using the following equation:
VOUT_MIN = VIN × tMIN_ON × fSW − (RDSON_HS − RDSON_LS) ×
IOUT_MIN × tMIN_ON × fSW − (RDSON_LS + RL) × IOUT_MIN
(1)
where:
VOUT_MIN is the minimum output voltage.
tMIN_ON is the minimum on time.
fSW is the switching frequency.
RDSON_HS is the high-side MOSFET on resistance.
RDSON_LS is the low-side MOSFET on resistance.
IOUT_MIN is the minimum output current.
RL is the series resistance of the output inductor.
The maximum output voltage for a given input voltage and
switching frequency is constrained by the minimum off time
and the maximum duty cycle. The minimum off time is typically
200 ns, and the maximum duty cycle of the ADP2387 is
typically 90%.
Calculate the maximum output voltage, limited by the minimum
off time for a given input voltage and switching frequency, by
using the following equation:
VOUT_MAX = VIN × (1 − tMIN_OFF × fSW) − (RDSON_HS − RDSON_LS) ×
IOUT_MAX × (1 − tMIN_OFF × fSW) − (RDSON_LS + RL) × IOUT_MAX (2)
where:
VOUT_MAX is the maximum output voltage.
tMIN_OFF is the minimum off time.
IOUT_MAX is the maximum output current.
Calculate the maximum output voltage, limited by the maximum
duty cycle for a given input voltage, using the following equation:
VOUT_MAX = DMAX × VIN
(3)
where DMAX is the maximum duty cycle.
As shown in Equation 1 to Equation 3, reducing the switching
frequency alleviates the minimum on time and minimum off
time limitation.



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