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ACT361 Datasheet(PDF) 7 Page - Active-Semi, Inc

Part # ACT361
Description  High Performance ActivePSRTM Primary Switching Regulator
PDF  14 Pages
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Manufacturer  ACTIVE-SEMI [Active-Semi, Inc]
Direct Link  http://www.active-semi.com
Logo ACTIVE-SEMI - Active-Semi, Inc

ACT361 Datasheet(HTML) 7 Page - Active-Semi, Inc

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ACT361
Rev 8, 14-Nov-12
Innovative Power
TM
- 7 -
www.active-semi.com
Copyright © 2012 Active-Semi, Inc.
V
5
.
73
5
8
.
0
40
)
3
.
0
5
(
375
V
V
)
V
V
(
V
V
OUTCV
DREV
DS
OUTCV
INDCMAX
RO
=
×
+
×
=
+
×
=
(5)
140
T
/
nH
117
mH
3
.
2
A
L
N
2
LE
P
P
=
=
=
7
.
2
3
.
0
30
.
0
5
7
.
0
5
.
14
V
V
V
V
V
N
N
CORD
DS
OUTCV
DA
DD
S
A
=
+
+
+
=
+
+
+
=
14
3
.
0
5
74
V
V
V
N
N
DS
OUTCV
RO
S
P
=
+
=
+
=
mH
35
.
2
kHz
42
mA
318
%
35
90
f
I
D
V
L
SW
PK
INDCMIN
P
=
×
×
=
×
×
=
mA
318
%
35
56
.
55
2
D
I
2
I
IN
PK
=
×
=
×
=
mA
56
.
55
%
70
90
7
.
0
5
V
I
V
I
INDCMIN
OUTPL
OUTCV
IN
=
×
×
=
×
×
=
η
(6)
(7)
(8)
(9)
(10)
k
76
.
9
6
.
53
20
.
2
7
.
2
)
3
.
0
5
(
20
.
2
R
V
N
N
)
V
V
(
V
R
1
FB
FB
S
A
DS
OUTCV
FB
2
FB
=
×
×
+
=
+
=
(16)
F
μ
333
mV
50
kHz
42
7
.
0
V
f
I
C
RIPPLE
SW
OUTCC
OUT
=
×
=
×
=
(17)
(11)
10
140
14
1
N
N
N
N
P
P
S
S
=
×
=
×
=
(12)
27
10
7
.
2
N
N
N
N
S
S
A
A
=
×
=
×
=
(13)
k
6
.
53
126237
07
.
1
35
.
2
140
27
K
R
L
N
N
R
CS
P
P
A
1
FB
×
×
=
×
×
=
(15)
()
()
R
07
.
1
9
.
0
69
.
0
40
35
.
2
5
9
.
0
7
.
0
396
.
0
9
.
0
F
L
V
I
I
V
9
.
0
R
xfm
system
SW
P
OUT
OUTMAX
OUTFL
CSLIM
CS
=
×
×
×
+
×
=
⎟⎟
⎜⎜
×
×
×
+
×
=
η
η
(14)
where η is the estimated circuit efficiency, fL is the
line frequency, tC is the estimated rectifier
conduction time, CIN is empirically selected to be
2 × 4.7µF electrolytic capacitors based on the
3µF/W rule of thumb.
When the transistor is turned off, the voltage on the
transistor’s collector consists of the input voltage
and the reflected voltage from the transformer’s
secondary winding. There is a ringing on the rising
top edge of the flyback voltage due to the leakage
inductance of the transformer. This ringing is
clamped by a RCD network if it is used. Design this
clamped voltage as 50V below the breakdown of
the NPN transistor. The flyback voltage has to be
considered with selection of the maximum reverse
voltage rating of secondary rectifier diode. If a 40V
Schottky diode is used, then the flyback voltage can
be calculated:
where VDS is the Schottky diode forward voltage,
VDREV is the maximum reverse voltage rating of the
diode and VOUTCV is the output voltage.
The maximum duty cycle is set to be 35% at low
line voltage 85VAC and the circuit efficiency is
estimated to be 70%. Then the full load input
current is:
The maximum input primary peak current at full
load base on duty of 35%:
The primary inductance of the transformer:
Where fSW is the full load frequency at CV mode.
The primary to secondary turns ratio NP/NS:
The auxiliary to secondary turns ratio NA/NS:
Where VDA is the diode forward voltage of the
auxiliary side.
An EE16 transformer gapped core with an effective
inductance ALE of 117nH/T
2
is selected. The
number of turns of the primary winding is:
The number of turns of secondary and auxiliary
windings can be derived accordingly:
The current sense resistance (RCS) determines the
current limit value based on the following equation:
Where Fsw is the frequency at CC mode.
The voltage feedback resistors are selected
according to below equation:
Where K is IC constant and K = 126237.
When selecting the output capacitor, a low ESR
electrolytic capacitor is recommended to minimize
ripple from the current ripple. The approximate
equation for the output capacitance value is given by:
A 470µF electrolytic capacitor is used to keep the
ripple small.
PCB Layout Guideline
Good PCB layout is critical to have optimal
performance. Decoupling capacitor (C3), current
sense resistor (R7) and feedback resistor (R8/R9)
should be placed close to VDD, CS and FB pins
respectively. There are two main power path loops.
One is formed by C1/C2, primary winding, NPN
transistor and the ACT361. The other is the
secondary
winding,
rectifier
D7
and
output
capacitors (C7). Keep these loop areas as small as
possible. Connect high current ground returns, the
input capacitor ground lead, and the ACT361 G pin
to a single point (star ground configuration).
TYPICAL APPLICATION CONT’D



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