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ADP2441ACPZ-R2 数据表(PDF) 22 Page - Analog Devices

部件名 ADP2441ACPZ-R2
功能描述  36 V,1 A, Synchronous, Step-Down DC-to-DC Regulator
PDF  32 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP2441ACPZ-R2 数据表(HTML) 22 Page - Analog Devices

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ADP2441
Data Sheet
Rev. A | Page 22 of 32
Correspondingly, there are three transfer functions:
)
(
)
(
)
(
s
Z
g
V
V
s
V
s
V
COMP
m
OUT
REF
OUT
COMP
(14)
CS
COMP
L
G
s
V
s
I
)
(
)
(
(15)
)
(
)
(
)
(
s
Z
s
I
s
V
FILT
L
OUT
(16)
where:
gm is the transconductance of the error amplifier and equals
250 μA/V.
GCS is the current sense gain and equals 2 A/V.
VOUT is the output voltage of the regulator.
VREF is the internal reference voltage and equals 0.6 V.
ZCOMP(s) is the impedance of the RC compensation network that
forms a pole at the origin and a zero as expressed in Equation 17.
COMP
COMP
COMP
COMP
C
s
C
R
s
s
Z
1
)
(
(17)
ZFILT(s) is the impedance of the output filter and is expressed as
OUT
LOAD
LOAD
FILT
C
R
s
R
s
Z
1
)
(
(18)
where s is the angular frequency, which can be written as s = 2πf.
The overall loop gain, H(s), is obtained by multiplying the three
transfer functions previously mentioned as follows:
)
(
)
(
)
(
s
Z
s
Z
V
V
G
g
s
H
FILT
COMP
OUT
REF
CS
m
(19)
When the switching frequency (fSW), output voltage (VOUT),
output inductor (L), and output capacitor (COUT) values are
selected, the unity crossover frequency can be set to 1/12 of the
switching frequency.
At the crossover frequency, the gain of the open-loop transfer
function is unity.
H(fCROSSOVER) = 1
(20)
This yields Equation 21 for the RC compensation network
impedance at the crossover frequency.
REF
OUT
CS
m
OUT
CROSSOVER
CROSSOVER
COMP
V
V
G
g
C
f
f
Z
2
)
(
(21)
Placing s = fCROSSOVER in Equation 17,
COMP
COMP
COMP
C
f
C
R
f
f
Z
CROSSOVER
CROSSOVER
CROSSOVER
COMP
2
2
1
)
(
(22)
To ensure that there is sufficient phase margin at the crossover
frequency, place the compensator zero at 1/8 of the crossover
frequency, as shown in the following equation:
8
2
1
CROSSOVER
COMP
ZERO
f
C
R
f
COMP
(23)
Solving Equation 21, Equation 22, and Equation 23 yields the
value for the resistor and capacitor in the RC compensation
network, as shown in Equation 24 and Equation 25.
REF
OUT
OUT
CS
m
CROSSOVER
COMP
V
V
C
G
g
f
R
2
9
.
0
(24)
COMP
ZERO
COMP
R
f
C
2
1
(25)
Using these equations allows calculating the compensations for
the voltage loop.



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