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MP2403DN Datasheet(PDF) 8 Page - Monolithic Power Systems

Part # MP2403DN
Description  3A, 32V, 250kHz Integrated Synchronous Step-Down Converter
PDF  13 Pages
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Manufacturer  MPS [Monolithic Power Systems]
Direct Link  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MP2403DN Datasheet(HTML) 8 Page - Monolithic Power Systems

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MP2403 – 3A, 32V, 250kHz INTEGRATED SYNCHRONOUS STEP-DOWN CONVERTER
MP2403 Rev.1.0
www.MonolithicPower.com
8
4/20/2010
MPS Proprietary Information. Unauthorized Photocopy and Duplication Prohibited.
© 2010 MPS. All Rights Reserved.
APPLICATIONS INFORMATION
COMPONENT SELECTION
Setting the Output Voltage
The output voltage is set using a resistive voltage
divider from the output voltage to FB pin. The
voltage divider divides the output voltage down to
the feedback voltage by the ratio:
2
R
1
R
2
R
V
V
OUT
FB
+
=
Thus the output voltage is:
2
R
2
R
1
R
80
.
0
VOUT
+
×
=
Where VFB is the feedback voltage and VOUT is the
output voltage.
R2 can be as high as 100kΩ, but a typical value is
10kΩ. Using that value, R1 is determined by:
)
k
)(
80
.
0
V
(
5
.
12
1
R
OUT
Ω
×
=
For example, for a 3.3V output voltage, R2 is
10kΩ, and R1 is 31.25kΩ.
Inductor
The inductor is required to supply constant current
to the output load while being driven by the
switched input voltage. A larger value inductor will
result in less ripple current that will result in lower
output ripple voltage. However, the larger value
inductor will have a larger physical size, higher
series resistance, and/or lower saturation current.
A good rule for determining the inductance value
is to allow the peak-to-peak ripple current in the
inductor to be approximately 30% of the maximum
switching current limit. Also, make sure that the
peak inductor current is below the maximum
switch current limit. The inductance value can be
calculated by:
⎟⎟
⎜⎜
×
×
=
IN
OUT
S
OUT
V
V
1
ΔI
f
V
L
Where VIN is the input voltage, fS is the 250KHz
switching frequency, and ΔIL is the peak-to-peak
inductor ripple current.
Choose an inductor that will not saturate under
the maximum inductor peak current. The peak
inductor current can be calculated by:
⎟⎟
⎜⎜
×
×
×
+
=
IN
OUT
S
OUT
LOAD
LP
V
V
1
L
f
2
V
I
I
Where ILOAD is the load current.
Optional Schottky Diode
During the transition between high-side switch
and low-side switch, the body diode of the low-
side power MOSFET conducts the inductor
current. The forward voltage of this body diode is
high. An optional Schottky diode may be
paralleled between the SW pin and GND pin to
improve overall efficiency. Table 2 lists example
Schottky diodes and their Manufacturers
.
Table 2—Diode Selection Guide
Part Number
Voltage/Current
Rating
Vendor
B340
40V, 3A
Diodes, Inc.
SK34
40V, 3A
Diodes, Inc.
MBRS340
40V, 3A
International
Rectifier
Input Capacitor
The input current to the step-down converter is
discontinuous, therefore a capacitor is required to
supply the AC current to the step-down converter
while maintaining the DC input voltage. Use low
ESR capacitors for the best performance.
Ceramic capacitors are preferred, but low-ESR
electrolytic capacitors may also suffice. Choose
X5R or X7R dielectrics when using ceramic
capacitors.
Since the input capacitor (C1) absorbs the input
switching current it requires an adequate ripple
current rating. The RMS current in the input
capacitor can be estimated by:
)
V
V
1
(
V
V
I
I
IN
OUT
IN
OUT
LOAD
1
C
×
×
=
The worst-case condition occurs at VIN = 2VOUT,
where:
2
I
I
LOAD
1
C =
For simplification, choose an input capacitor with
an RMS current rating greater than half of the
maximum load current.



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