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SC4525C датащи(PDF) 13 Page - Semtech Corporation

номер детали SC4525C
подробное описание детали  28V 3A Step-Down Switching Regulator Thermal Shutdown
PDF  21 Pages
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домашняя страница  http://www.semtech.com
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SC4525C датащи(HTML) 13 Page - Semtech Corporation

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SC4525C
13
Applications Information (Cont.)
Figure 6(b) and (c). Methods of Bootstrapping the
SC4525C
Loop Compensation
The goal of compensation is to shape the frequency
response of the converter so as to achieve high DC
accuracy and fast transient response while maintaining
loop stability.
Figure 7. Block diagram of control loops
12
12
Fig.7
+
-
Vo
L1
Co
Resr
COMP
EA
REF
Vc
SW
CONTROLLER AND SCHOTTKY DIODE
FB
PWM
MODULATOR
Vramp
CA
R4
R6
C5
R7
C8
Io
Rs
12
12
Fig.7
+
-
Vo
L1
Co
Resr
COMP
EA
REF
Vc
SW
CONTROLLER AND SCHOTTKY DIODE
FB
PWM
MODULATOR
Vramp
CA
R4
R6
C5
R7
C8
Io
Rs
The block diagram in Figure 7 shows the control loops of a
buck converter with the SC4525C. The inner loop (current
loop) consists of a current sensing resistor (R
s=3.53mW)
and a current amplifier (CA) with gain (G
CA=18.5). The
outer loop (voltage loop) consists of an error amplifier
(EA), a PWM modulator, and a LC filter.
Since the current loop is internally closed, the remaining
task for the loop compensation is to design the voltage
compensator (C
5, R7, and C8).
For a converter with switching frequency F
SW, output
inductance L
1, output capacitance CO and loading R, the
control (V
C) to output (VO) transfer function in Figure 7 is
given by:
(8)
This transfer function has a finite DC gain
an ESR zero F
Z at
a dominant low-frequency pole F
P at
and double poles at half the switching frequency.
Including the voltage divider (R
4 and R6), the control to
feedback transfer function is found and plotted in Figure
8 as the converter gain.
Since the converter gain has only one dominant pole at
low frequency, a simple Type-2 compensation network
is sufficient for voltage loop compensation. As shown in
Figure 8, the voltage compensator has a low frequency
integrator pole, a zero at F
Z1, and a high frequency pole
at F
P1. The integrator is used to boost the gain at low
frequency. The zero is introduced to compensate the
excessive phase lag at the loop gain crossover due to the
integrator pole (-90deg) and the dominant pole (-90deg).
CESAT
D
IN
D
O
V
V
V
V
V
D
+
+
=
=
1
V
0
.
1
V
R
R
O
6
4
1
SW
D
O
L
L
F
)
D
1
(
)
V
V
(
I
+
=
D
SW
O
D
O
1
F
I
%
20
)
D
1
(
)
V
V
(
L
+
=
)
D
1
(
D
I
I
O
CIN
_
RMS
=


+
D
=
D
O
SW
L
O
C
F
8
1
ESR
I
V
SW
IN
O
IN
F
V
4
I
C
D
>
,
R
G
R
G
S
CA
PWM
)
/
s
Q
/
s
1
()
/
s
1
(
)
C
R
s
1
(
G
V
V
2
n
2
n
p
O
ESR
PWM
c
o
ω
+
ω
+
ω
+
+
=
7
1
Z
5
R
F
2
1
C
π
=
7
1
P
8
R
F
2
1
C
π
=
,
C
R
1
O
p
ω
,
C
R
1
O
ESR
Z =
ω
k
3
.
22
10
28
.
0
10
R
3
7
20
9
.
15
=
=
nF
45
.
0
10
1
.
22
10
16
2
1
C
3
3
5
=
π
=
pF
12
10
1
.
22
10
600
2
1
C
3
3
8
=
π
=


π
=
O
FB
O
C
S
CA
C
V
V
C
F
2
1
R
G
1
log
20
A
dB
9
.
15
3
.
3
0
.
1
10
22
10
80
2
1
10
1
.
6
28
1
log
20
A
6
3
3
C
=
π
=
m
7
g
10
R
20
C
A
=
CESAT
D
IN
D
O
V
V
V
V
V
D
+
+
=
=
1
V
0
.
1
V
R
R
O
6
4
1
SW
D
O
L
L
F
)
D
1
(
)
V
V
(
I
+
=
D
SW
O
D
O
1
F
I
%
20
)
D
1
(
)
V
V
(
L
+
=
)
D
1
(
D
I
I
O
CIN
_
RMS
=


+
D
=
D
O
SW
L
O
C
F
8
1
ESR
I
V
SW
IN
O
IN
F
V
4
I
C
D
>
,
R
G
R
G
S
CA
PWM
)
/
s
Q
/
s
1
()
/
s
1
(
)
C
R
s
1
(
G
V
V
2
n
2
n
p
O
ESR
PWM
c
o
ω
+
ω
+
ω
+
+
=
7
1
Z
5
R
F
2
1
C
π
=
7
1
P
8
R
F
2
1
C
π
=
,
C
R
1
O
p
ω
,
C
R
1
O
ESR
Z =
ω
k
3
.
22
10
28
.
0
10
R
3
7
20
9
.
15
=
=
nF
45
.
0
10
1
.
22
10
16
2
1
C
3
3
5
=
π
=
pF
12
10
1
.
22
10
600
2
1
C
3
3
8
=
π
=


π
=
O
FB
O
C
S
CA
C
V
V
C
F
2
1
R
G
1
log
20
A
dB
9
.
15
3
.
3
0
.
1
10
22
10
80
2
1
10
1
.
6
28
1
log
20
A
6
3
3
C
=
π
=
m
7
g
10
R
20
C
A
=
CESAT
D
IN
D
O
V
V
V
V
V
D
+
+
=
=
1
V
0
.
1
V
R
R
O
6
4
1
SW
D
O
L
L
F
)
D
1
(
)
V
V
(
I
+
=
D
SW
O
D
O
1
F
I
%
20
)
D
1
(
)
V
V
(
L
+
=
)
D
1
(
D
I
I
O
CIN
_
RMS
=


+
D
=
D
O
SW
L
O
C
F
8
1
ESR
I
V
SW
IN
O
IN
F
V
4
I
C
D
>
,
R
G
R
G
S
CA
PWM
)
/
s
Q
/
s
1
()
/
s
1
(
)
C
R
s
1
(
G
V
V
2
n
2
n
p
O
ESR
PWM
c
o
ω
+
ω
+
ω
+
+
=
7
1
Z
5
R
F
2
1
C
π
=
7
1
P
8
R
F
2
1
C
π
=
,
C
R
1
O
p
ω
,
C
R
1
O
ESR
Z =
ω
k
3
.
22
10
28
.
0
10
R
3
7
20
9
.
15
=
=
nF
45
.
0
10
1
.
22
10
16
2
1
C
3
3
5
=
π
=
pF
12
10
1
.
22
10
600
2
1
C
3
3
8
=
π
=


π
=
O
FB
O
C
S
CA
C
V
V
C
F
2
1
R
G
1
log
20
A
dB
9
.
15
3
.
3
0
.
1
10
22
10
80
2
1
10
1
.
6
28
1
log
20
A
6
3
3
C
=
π
=
m
7
g
10
R
20
C
A
=
CESAT
D
IN
D
O
V
V
V
V
V
D
+
+
=
=
1
V
0
.
1
V
R
R
O
6
4
1
SW
D
O
L
L
F
)
D
1
(
)
V
V
(
I
+
=
D
SW
O
D
O
1
F
I
%
20
)
D
1
(
)
V
V
(
L
+
=
)
D
1
(
D
I
I
O
CIN
_
RMS
=


+
D
=
D
O
SW
L
O
C
F
8
1
ESR
I
V
SW
IN
O
IN
F
V
4
I
C
D
>
,
R
G
R
G
S
CA
PWM
)
/
s
Q
/
s
1
()
/
s
1
(
)
C
R
s
1
(
G
V
V
2
n
2
n
p
O
ESR
PWM
c
o
ω
+
ω
+
ω
+
+
=
7
1
Z
5
R
F
2
1
C
π
=
7
1
P
8
R
F
2
1
C
π
=
,
C
R
1
O
p
ω
,
C
R
1
O
ESR
Z =
ω
k
3
.
22
10
28
.
0
10
R
3
7
20
9
.
15
=
=
nF
45
.
0
10
1
.
22
10
16
2
1
C
3
3
5
=
π
=
pF
12
10
1
.
22
10
600
2
1
C
3
3
8
=
π
=


π
=
O
FB
O
C
S
CA
C
V
V
C
F
2
1
R
G
1
log
20
A
dB
9
.
15
3
.
3
0
.
1
10
22
10
80
2
1
10
1
.
6
28
1
log
20
A
6
3
3
C
=
π
=
m
7
g
10
R
20
C
A
=
CESAT
D
IN
D
O
V
V
V
V
V
D
+
+
=
=
1
V
0
.
1
V
R
R
O
6
4
1
SW
D
O
L
L
F
)
D
1
(
)
V
V
(
I
+
=
D
SW
O
D
O
1
F
I
%
20
)
D
1
(
)
V
V
(
L
+
=
)
D
1
(
D
I
I
O
CIN
_
RMS
=


+
D
=
D
O
SW
L
O
C
F
8
1
ESR
I
V
SW
IN
O
IN
F
V
4
I
C
D
>
,
R
G
R
G
S
CA
PWM
)
/
s
Q
/
s
1
()
/
s
1
(
)
C
R
s
1
(
G
V
V
2
n
2
n
p
O
ESR
PWM
c
o
ω
+
ω
+
ω
+
+
=
7
1
Z
5
R
F
2
1
C
π
=
7
1
P
8
R
F
2
1
C
π
=
,
C
R
1
O
p
ω
,
C
R
1
O
ESR
Z =
ω
k
3
.
22
10
28
.
0
10
R
3
7
20
9
.
15
=
=
nF
45
.
0
10
1
.
22
10
16
2
1
C
3
3
5
=
π
=
pF
12
10
1
.
22
10
600
2
1
C
3
3
8
=
π
=


π
=
O
FB
O
C
S
CA
C
V
V
C
F
2
1
R
G
1
log
20
A
dB
9
.
15
3
.
3
0
.
1
10
22
10
80
2
1
10
1
.
6
28
1
log
20
A
6
3
3
C
=
π
=
m
7
g
10
R
20
C
A
=
CESAT
D
IN
D
O
V
V
V
V
V
D
+
+
=
=
1
V
0
.
1
V
R
R
O
6
4
1
SW
D
O
L
L
F
)
D
1
(
)
V
V
(
I
+
=
D
SW
O
D
O
1
F
I
%
20
)
D
1
(
)
V
V
(
L
+
=
)
D
1
(
D
I
I
O
CIN
_
RMS
=


+
D
=
D
O
SW
L
O
C
F
8
1
ESR
I
V
SW
IN
O
IN
F
V
4
I
C
D
>
,
R
G
R
G
S
CA
PWM
)
/
s
Q
/
s
1
()
/
s
1
(
)
C
R
s
1
(
G
V
V
2
n
2
n
p
O
ESR
PWM
c
o
ω
+
ω
+
ω
+
+
=
7
1
Z
5
R
F
2
1
C
π
=
7
1
P
8
R
F
2
1
C
π
=
,
C
R
1
O
p
ω
,
C
R
1
O
ESR
Z =
ω
k
3
.
22
10
28
.
0
10
R
3
7
20
9
.
15
=
=
nF
45
.
0
10
1
.
22
10
16
2
1
C
3
3
5
=
π
=
pF
12
10
1
.
22
10
600
2
1
C
3
3
8
=
π
=


π
=
O
FB
O
C
S
CA
C
V
V
C
F
2
1
R
G
1
log
20
A
dB
9
.
15
3
.
3
0
.
1
10
22
10
80
2
1
10
1
.
6
28
1
log
20
A
6
3
3
C
=
π
=
m
7
g
10
R
20
C
A
=
CESAT
D
IN
D
O
V
V
V
V
V
D
+
+
=
=
1
V
0
.
1
V
R
R
O
6
4
1
SW
D
O
L
L
F
)
D
1
(
)
V
V
(
I
+
=
D
SW
O
D
O
1
F
I
%
20
)
D
1
(
)
V
V
(
L
+
=
)
D
1
(
D
I
I
O
CIN
_
RMS
=


+
D
=
D
O
SW
L
O
C
F
8
1
ESR
I
V
SW
IN
O
IN
F
V
4
I
C
D
>
,
R
G
R
G
S
CA
PWM
)
/
s
Q
/
s
1
()
/
s
1
(
)
C
R
s
1
(
G
V
V
2
n
2
n
p
O
ESR
PWM
c
o
ω
+
ω
+
ω
+
+
=
7
1
Z
5
R
F
2
1
C
π
=
7
1
P
8
R
F
2
1
C
π
=
,
C
R
1
O
p
ω
,
C
R
1
O
ESR
Z =
ω
k
3
.
22
10
28
.
0
10
R
3
7
20
9
.
15
=
=
nF
45
.
0
10
1
.
22
10
16
2
1
C
3
3
5
=
π
=
pF
12
10
1
.
22
10
600
2
1
C
3
3
8
=
π
=


π
=
O
FB
O
C
S
CA
C
V
V
C
F
2
1
R
G
1
log
20
A
dB
9
.
15
3
.
3
0
.
1
10
22
10
80
2
1
10
1
.
6
28
1
log
20
A
6
3
3
C
=
π
=
m
7
g
10
R
20
C
A
=
CESAT
D
IN
D
O
V
V
V
V
V
D
+
+
=
=
1
V
0
.
1
V
R
R
O
6
4
1
SW
D
O
L
L
F
)
D
1
(
)
V
V
(
I
+
=
D
SW
O
D
O
1
F
I
%
20
)
D
1
(
)
V
V
(
L
+
=
)
D
1
(
D
I
I
O
CIN
_
RMS
=


+
D
=
D
O
SW
L
O
C
F
8
1
ESR
I
V
SW
IN
O
IN
F
V
4
I
C
D
>
,
R
G
R
G
S
CA
PWM
)
/
s
Q
/
s
1
()
/
s
1
(
)
C
R
s
1
(
G
V
V
2
n
2
n
p
O
ESR
PWM
c
o
ω
+
ω
+
ω
+
+
=
7
1
Z
5
R
F
2
1
C
π
=
7
1
P
8
R
F
2
1
C
π
=
,
C
R
1
O
p
ω
,
C
R
1
O
ESR
Z =
ω
k
3
.
22
10
28
.
0
10
R
3
7
20
9
.
15
=
=
nF
45
.
0
10
1
.
22
10
16
2
1
C
3
3
5
=
π
=
pF
12
10
1
.
22
10
600
2
1
C
3
3
8
=
π
=


π
=
O
FB
O
C
S
CA
C
V
V
C
F
2
1
R
G
1
log
20
A
dB
9
.
15
3
.
3
0
.
1
10
22
10
80
2
1
10
1
.
6
28
1
log
20
A
6
3
3
C
=
π
=
m
7
g
10
R
20
C
A
=
D1
D1
(b)
(b)
SC4525C
BST
GND
IN
SW
VOUT
C1
VIN
D2
D2
D3
D3
D1
(C)
SC4525C
BST
GND
IN
SW
VOUT>8V
C1
VIN
D2
D4
D4 is either a pn juntion diode or a Schottky diode
depending on the operating temperature.



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