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MPQ9840GL датащи(PDF) 25 Page - Monolithic Power Systems

номер детали MPQ9840GL
подробное описание детали  36V, 3.5A, Low IQ, Synchronous Step-Down Converter AEC-Q100 Qualified
PDF  34 Pages
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производитель  MPS [Monolithic Power Systems]
домашняя страница  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MPQ9840GL датащи(HTML) 25 Page - Monolithic Power Systems

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MPQ9840 – 36V, 3.5A, LOW IQ, SYNC STEP-DOWN CONVERTER, AEC-Q100
MPQ9840 Rev. 1.02
www.MonolithicPower.com
25
7/1/2020
MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited.
© 2020 MPS. All Rights Reserved.
APPLICATION INFORMATION
Setting the Output Voltage
The external resistor divider connected to FB
sets the output voltage (see Figure 4).
Figure 4: Feedback Network
Choose RFB1 first, RFB2 can then be calculated
with Equation (3):
1
0.8V
V
R
R
OUT
FB1
FB2
(3)
Table 1 lists the recommended feedback
resistor values for common output voltages.
For fixed output version, connect FB pin to the
output directly.
Table 1: Resistor Selection for Common Output
Voltages
VOUT (V)
RFB1 (kΩ)
RFB2 (kΩ)
3.3
41.2 (1%)
13 (1%)
5
68.1 (1%)
13 (1%)
Selecting the Inductor
A 1µH to 10µH inductor with a DC current rating
at least 25% higher than the maximum load
current is recommended for most applications.
For higher efficiency, choose an inductor with a
lower DC resistance. A larger-value inductor
results in less ripple current and a lower output
ripple voltage, but also has a larger physical
size, higher series resistance, and lower
saturation current. A good rule for determining
the inductor value is to allow the inductor ripple
current to be approximately 30% of the
maximum load current. The inductance value
can then be calculated with Equation (4):
 

OUT
OUT
SW
L
IN
VV
L(1
)
fI
V
(4)
Where ∆IL is the peak-to-peak inductor ripple
current.
Choose the inductor ripple current to be
approximately 30% of the maximum load
current. The maximum inductor peak current
can be calculated with Equation (5):

 
OUT
OUT
LP
LOAD
SW
IN
VV
II
(1
)
2f
L
V
(5)
Selecting the Input Capacitor
The input current to the step-down converter is
discontinuous
and
therefore
requires
a
capacitor to supply AC current to the converter
while maintaining the DC input voltage. For the
best performance, use low ESR capacitors.
Ceramic capacitors with X5R or X7R dielectrics
are highly recommended because of their low
ESR and small temperature coefficients.
For most applications, use a 4.7µF to 10µF
capacitor. It is strongly recommended to use
another lower-value capacitor (e.g.: 0.1µF) with
a small package size (0603) to absorb high-
frequency switching noise. Place the smaller
capacitor as close to VIN and GND as possible.
Since CIN absorbs the input switching current, it
requires an adequate ripple current rating. The
RMS current in the input capacitor can be
estimated with Equation (6):

 
OUT
OUT
CIN
LOAD
IN
IN
VV
II
(1
)
VV
(6)
The worst-case condition occurs at VIN = 2VOUT,
shown in Equation (7):
 LOAD
CIN
I
I
2
(7)
For simplification, choose an input capacitor
with an RMS current rating greater than half of
the maximum load current.
The input capacitor can be electrolytic, tantalum,
or ceramic. When using electrolytic or tantalum
capacitors, add a small, high-quality ceramic
capacitor (e.g.: 0.1μF) as close to the IC as
possible. When using ceramic capacitors,
ensure that they have enough capacitance to
provide a sufficient charge to prevent excessive
voltage ripple at the input.



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