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MP1583DP Scheda tecnica(PDF) 8 Page - Monolithic Power Systems

Il numero della parte MP1583DP
Spiegazioni elettronici  3A, 23V, 385KHz Step-Down Converter
PDF  13 Pages
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Produttore elettronici  MPS [Monolithic Power Systems]
Homepage  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MP1583DP Scheda tecnica(HTML) 8 Page - Monolithic Power Systems

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MP1583 – 3A, 23V, 385KHz STEP-DOWN CONVERTER
MP1583 Rev. 3.1
www.MonolithicPower.com
8
6/20/2011
MPS Proprietary Information. Unauthorized Photocopy and Duplication Prohibited.
© 2011 MPS. All Rights Reserved.
The MP1583 can be optimized for a wide range
of capacitance and ESR values.
Compensation Components
The MP1583 employs current mode control for
easy compensation and fast transient response.
The system stability and transient response are
controlled through the COMP pin. COMP is the
output of the internal transconductance error
amplifier.
A
series
capacitor-resistor
combination sets a pole-zero combination to
control the characteristics of the control system.
The DC gain of the voltage feedback loop is:
OUT
FB
VEA
CS
LOAD
VDC
V
V
A
G
R
A
×
×
×
=
Where AVEA is the error amplifier voltage gain,
GCS is the current sense transconductance and
RLOAD is the load resistor value.
The system has two poles of importance. One
is due to the compensation capacitor (C3) and
the output resistor of error amplifier while the
other is due to the output capacitor and the load
resistor. These poles are located at:
VEA
EA
P
A
C
G
f
×
×
=
3
2
1
π
LOAD
P
R
C
f
×
×
=
2
2
1
2
π
Where
GEA
is
the
error
amplifier
transconductance.
The system has one zero of importance, due to
the compensation capacitor (C3) and the
compensation resistor (R3). This zero is located
at:
3
3
2
1
1
R
C
f
Z
×
×
=
π
The system may have another zero of
importance, if the output capacitor has a large
capacitance and/or a high ESR value. The zero
due to the ESR and capacitance of the output
capacitor is located at:
ESR
ESR
R
C
f
×
×
=
2
2
1
π
In this case, a third pole set by the
compensation
capacitor
(C6)
and
the
compensation
resistor
(R3)
is
used
to
compensate the effect of the ESR zero on the
loop gain. This pole is located at:
3
6
2
1
3
R
C
f
P
×
×
=
π
The goal of compensation design is to shape
the converter transfer function to get a desired
loop gain. The system crossover frequency
(where the feedback loop has unity gain) is
important.
Lower crossover frequencies result in slower
line and load transient responses, while higher
crossover frequencies could cause system
instability. A good standard is to set the
crossover frequency to approximately one-tenth
of the switching frequency. The switching
frequency for the MP1583 is 385KHz, so the
desired crossover frequency is around 38KHz.
Table 3 lists the typical values of compensation
components for some standard output voltages
with various output capacitors and inductors.
The values of the compensation components
have
been
optimized
for
fast
transient
responses and good stability at given conditions.
Table 3—Compensation Values for Typical
Output Voltage/Capacitor Combinations
(Please reference Fig. 3 and Fig. 4)
VOUT
C2
R3
C3
C6
2.5V
22μF
Ceramic
3.9kΩ
5.6nF
None
3.3V
22μF
Ceramic
4.7kΩ
4.7nF
None
5V
22μF
Ceramic
7.5kΩ
4.7nF
None
12V
22μF
Ceramic
16.9kΩ
1.5nF
None
2.5V
560μF Al.
30mΩ ESR
91kΩ
1nF
150pF
3.3V
560μF Al
30mΩ ESR
120kΩ
1nF
120pF
5V
470μF Al.
30mΩ ESR
100kΩ
1nF
120pF
12V
220μF Al.
30mΩ ESR
169kΩ
1nF
39pF



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