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MP2108 Scheda tecnica(PDF) 7 Page - Monolithic Power Systems

Il numero della parte MP2108
Spiegazioni elettronici  2A, 6V, 720KHz Synchronous Buck Converter
PDF  10 Pages
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Produttore elettronici  MPS [Monolithic Power Systems]
Homepage  http://www.monolithicpower.com
Logo MPS - Monolithic Power Systems

MP2108 Scheda tecnica(HTML) 7 Page - Monolithic Power Systems

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MP2108 – 2A, 6V, 720KHz SYNCHRONOUS BUCK CONVERTER
INITIAL RELEASE – SPECIFICATIONS SUBJECT TO CHANGE
MP2108 Rev. 0.93
www.MonolithicPower.com
7
2/28/2006
MPS Proprietary Information. Unauthorized Photocopy and Duplication Prohibited.
© 2006 MPS. All Rights Reserved.
TM
Calculate the required inductance value by the
equation:
()
I
f
V
V
V
V
L
SW
IN
OUT
IN
OUT
×
×
×
=
Where ∆I is the peak-to-peak inductor ripple
current. It is recommended to choose ∆I to be
30%~40% of the maximum load current.
Compensation
The system stability is 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 loop gain is:
LOAD
CS
VEA
OUT
FB
VDC
R
G
A
V
V
A
×
×
×
⎟⎟
⎜⎜
=
Where VFB is the feedback voltage, 0.9V, AVEA
is the transconductance error amplifier voltage
gain, 400 V/V and GCS is the current sense
transconductance, (roughly the output current
divided by the voltage at COMP), 4.5A/V.
RLOAD is the load resistance:
OUT
OUT
LOAD
I
V
R
=
Where IOUT is the output load current.
The system has 2 poles of importance, one is
due to the compensation capacitor (C3), and
the other is due to the load resistance and the
output capacitor (C2), where:
3
C
A
2
G
f
VEA
EA
1
P
×
×
π
=
P1 is the first pole, and GEA is the error amplifier
transconductance (300µA/V) and
2
C
R
2
1
f
LOAD
2
P
×
×
π
=
The system has one zero of importance, due to
the compensation capacitor (C3) and the
compensation resistor (R3). The zero is:
3
C
3
R
2
1
f 1
Z
×
×
π
=
If large value capacitors with relatively high
equivalent-series-resistance (ESR) are used,
the zero due to the capacitance and ESR of the
output capacitor can be compensated by a third
pole set by R3 and C4. The pole is:
4
C
3
R
2
1
f 3
P
×
×
π
=
The system crossover frequency (the frequency
where the loop gain drops to 1dB or 0dB) is
important. Set the crossover frequency below
one tenth of the switching frequency to insure
stable operation. Lower crossover frequencies
result in slower response and worse transient
load recovery. Higher crossover frequencies
degrade the phase and/or gain margins and
can result in instability.
Table 1—Compensation Values for Typical
Output Voltage/Capacitor Combinations
VOUT
C2
R3
C3
C4
1.8V 22µF Ceramic
6.8kΩ
3.3nF
None
2.5V 22µF Ceramic
9.1kΩ
2.2nF
None
3.3V 22µF Ceramic
12kΩ
1.8nF
None
1.8V
47µF Tantalum
(300mΩ)
13kΩ
2nF
1nF
2.5V
47µF Tantalum
(300mΩ)
18kΩ
1.2nF 750pF
3.3V
47µF Tantalum
(300mΩ)
24kΩ
1nF
560pF
Choosing the Compensation Components
The values of the compensation components
given in Table 1 yields a stable control loop for
the output voltage and capacitor given. To
optimize the compensation components for
conditions not listed in Table 1, use the
following procedure.



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