IR3820MTRPBF International Rectifier, IR3820MTRPBF Datasheet - Page 14

IC REG SYNC BUCK 12A 5X6 15QFN

IR3820MTRPBF

Manufacturer Part Number
IR3820MTRPBF
Description
IC REG SYNC BUCK 12A 5X6 15QFN
Manufacturer
International Rectifier
Series
SupIRBuck™r
Type
Step-Down (Buck)r
Datasheet

Specifications of IR3820MTRPBF

Internal Switch(s)
Yes
Synchronous Rectifier
Yes
Number Of Outputs
1
Voltage - Output
0.6 ~ 12 V
Current - Output
12A
Frequency - Switching
600kHz
Voltage - Input
2.5 ~ 21 V
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Package / Case
15-PowerVQFN
Power - Output
3.7W
Part Status
Active
Package
PQFN / 5 x 6
Circuit
Single Output
Iout (a)
12
Switch Freq (khz)
600
Input Range (v)
2.5 - 21
Output Range (v)
0.6 - 12
Ocp Otp Uvlo Pre-bias Soft Start And
PGOOD
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
IR3820MTRPBFTR

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
IR3820MTRPBF
Manufacturer:
IR
Quantity:
20 000
Company:
Part Number:
IR3820MTRPBF
Quantity:
2 153
Company:
Part Number:
IR3820MTRPBF
Quantity:
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To cancel one of the LC filter poles, place the
zero before the LC filter resonant frequency pole:
Use equations (15) and (16) to calculate C4.
One more capacitor is sometimes added in
parallel with C4 and R3. This introduces one
more pole which is mainly used to suppress the
switching noise.
The additional pole is given by:
The pole sets to one half of switching frequency
which results in the capacitor C
For a general solution for unconditional stability
for any type of output capacitors, in a wide range
of ESR values we should implement local
feedback with a compensation network (type III).
The typically used compensation network for
voltage-mode controller is shown in figure 15.
In such a configuration, the transfer function is
given by:
The error amplifier gain is independent of the
transconductance under the following condition:
By replacing Z
transformer function can be expressed as:
H
11/04/08
(
g
s
)
m
=
*
sR
Z
C
For
f
F
F
8
z
z
POLE
>>
(
C
=
=
1
4
F
75
0
1
F
P
=
+
.
in
P
75
%
<<
and
C
π
V
V
=
and Z
F
3
*
e
o
2
*
LC
)
F
2
π
2
R
*
=
s
π
3
*
1
(
1
g
R
*
1
f
1
1
L
according to figure 15, the
+
1
m
F
3
+
+
o
s
*
*
sR
*
sR
1
g
C
g
C
C
Z
m
3
4
4
C
o
m
in
3
1
⎜ ⎜
Z
+
C
*
Z
4
C
C
>>
C
C
IN
4
f
4
-
* )
4
POLE
POLE
POLE
- -
+
*
1
π
[
C
1
C
(17)
*
3
+
3
:
R
⎟ ⎟
1
sC
-
3
- -
( *
*
7
F
(
1
(18)
R
s
+
8
sR
+
R
10
10
C
)
7
]
)
H(s) dB
As known, the transconductance amplifier has
high
therefore, consideration should be taken when
loading the error amplifier output. It may exceed
its source/sink output current capability, so that
the amplifier will not be able to swing its output
voltage over the necessary range.
The compensation network has three poles and
two zeros and they are expressed as follows:
Cross over frequency is expressed as:
F
F
F
F
F
Fig.15: Compensation network with local
Z
P
P
P
1 z
z
2
1
2
3
IN
Gain(dB)
=
=
=
=
=
F
R
feedback and its asymptotic gain plot
0
2
2
2
2
o
C
impedance
10
π
π
π
π
=
7
*
*
F
R
*
*
R
V
C
Z
1
R
R
3
1
1
OUT
3
7
*
10
3
⎜ ⎜
*
( *
C
R
1
R
1
*
C
C
C
7
8
9
C
R
4
*
4
4
7
8
V
+
*
V
+
osc
V
C
in
C
Fb
REF
F
R
3
3
(current
*
Z
10
⎟ ⎟
2
IR3820MPbF
2
)
π
*
2
R
1
L
2
π
3
F
o
E/A
π
P
*
*
2
C
*
R
1
C
o
1
C
3
source)
7
*
3
*
C
PD-60329
R
F
3
C
8
P
Comp
3
4
Frequency
output,
Z
Ve
f
14

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