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MP2326GD Datasheet(PDF) 18 Page - Monolithic Power Systems

Part # MP2326GD
Description  19V, 4A, 40關A IQ, High-Efficiency Constant-On-Time (COT) Step-Down Converter in a 2mmx3mm QFN Package
PDF  25 Pages
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Manufacturer  MPS [Monolithic Power Systems]
Direct Link  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MP2326GD Datasheet(HTML) 18 Page - Monolithic Power Systems

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MP2326 – 19V, 4A, LOW IQ STEP-DOWN CONVERTER
MP2326 Rev. 1.1
www.MonolithicPower.com
18
1/28/2016
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2016 MPS. All Rights Reserved.
Equations 12 and 13 are the typical switching
frequency calculation formulas. The actual
frequency will change a little at different load
currents and with different input voltages.
Selecting the Inductor
The inductor is necessary to supply constant
current to the output load while being driven by
the switched input voltage. A larger value
inductor results in less ripple current, which
results in lower output-ripple voltage. However,
a larger value inductor will have a larger
physical footprint, a higher series resistance,
and/or a lower saturation current. A good rule
for determining the inductance value is to
design the peak-to-peak ripple current in the
inductor to be in the range of 30% to 40% of the
maximum output current. Make sure that the
peak inductor current is below the maximum
switch current limit. The inductance value can
be calculated by:
OUT
OUT
SW
L
IN
VV
L(1
)
FI
V
 

(14)
Where ΔIL is the peak-to-peak inductor ripple
current.
The inductor should not saturate under the
maximum inductor peak current. The peak
inductor current can be calculated by:
OUT
OUT
LP
OUT
SW
IN
VV
II
(1
)
2F
L
V

 
(15)
Selecting the Input Capacitor
The input current to the step-down converter is
discontinuous
and
therefore
requires
a
capacitor to supply the AC while maintaining
the DC input voltage. Ceramic capacitors are
recommended for best performance and should
be placed as close to VIN as possible.
Capacitors
with
X5R
and
X7R
ceramic
dielectrics are recommended because they are
fairly stable with temperature fluctuations.
The capacitors must also have a ripple current
rating greater than the maximum input ripple
current of the converter. The input ripple current
can be estimated as follows:
OUT
OUT
CIN
OUT
IN
IN
VV
II
(1
)
VV

 
(16)
The worst-case condition occurs at VIN = 2VOUT,
where:
OUT
CIN
I
I
2
(17)
For simplification, choose an input capacitor
with an RMS current rating greater than half of
the maximum load current.
The input capacitance value determines the
input-voltage ripple of the converter. If there is
an input-voltage ripple requirement in the
system, choose the input capacitor that meets
the specification.
The input-voltage ripple can be estimated as
follows:
OUT
OUT
OUT
IN
SW
IN
IN
IN
IV
V
V(1
)
FC
V
V

 
(18)
Under worst-case conditions where VIN = 2VOUT:
OUT
IN
SW
IN
I
1
V
4F
C
 
(19)
Selecting the Output Capacitor
The output capacitor is required to maintain the
DC output voltage. Ceramic or POSCAP
capacitors are recommended. The output-
voltage ripple can be estimated as:
OUT
OUT
OUT
ESR
SW
IN
SW
OUT
VV
1
V(1
) (R
)
FL
V
8 F
C

 

(20)
If using ceramic capacitors, the impedance at
the switching frequency is dominated by the
capacitance. The output-voltage ripple is
caused
mainly
by
the
capacitance.
For
simplification, the output-voltage ripple can be
estimated as follows:
OUT
OUT
OUT
2
SW
OUT
IN
VV
V(1
)
8F
L C
V

 
 
(21)
The output-voltage ripple caused by ESR is
very small. Therefore, an external ramp is
needed to stabilize the system. The external
ramp can be generated through the capacitor
Cr.
When using POSCAP capacitors, the ESR
dominates the impedance at the switching
frequency. For simplification, the output ripple
can be approximated as:



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