参数资料
型号: ADP1872-BL2-EVZ
厂商: Analog Devices Inc
文件页数: 24/40页
文件大小: 0K
描述: EVAL BOARD FOR ADP1872
标准包装: 1
主要目的: DC/DC,步降
稳压器拓扑结构: 降压
板类型: 裸(未填充)
已供物品: 裸板
已用 IC / 零件: ADP1872
R COMP ( f CROSS + f ZERO )
Z COMP =
ADP1872/ADP1873
Ceramic capacitors are known to have low ESR. However, the
trade-off of using X5R technology is that up to 80% of its capaci-
tance may be lost due to derating because the voltage applied
across the capacitor is increased (see Figure 79). Although X7R
series capacitors can also be used, the available selection is
limited to only up to 22 μF.
20
Data Sheet
Error Amplifier Output Impedance (Z COMP )
Assuming C C2 is significantly smaller than C COMP , C C2 can be
omitted from the output impedance equation of the error amplifier.
The transfer function simplifies to
f CROSS
f CROSS =
× f SW
10
0
–10
–20
–30
–40
–50
–60
–70
–80
X7R (50V)
X5R (25V)
X5R (16V)
10μF TDK 25V, X7R, 1210 C3225X7R1E106M
and
1
12
where f ZERO , the zero frequency, is set to be 1/4 th of the crossover
frequency for the ADP1872.
Error Amplifier Gain (G M )
The error amplifier gain (transconductance) is
G M = 500 μA/V
H = 1 V/V = G M × G CS ×
× Z COMP × Z FILT
G CS =
1
A CS × R ON
f CROSS =
f SW
f ZERO =
–90 22μF MURATA 25V, X7R, 1210 GRM32ER71E226KE15L
47μF MURATA 16V, X5R, 1210 GRM32ER61C476KE15L
–100
0 5 10 15 20 25 30
DC VOLTAGE (V DC )
Figure 79. Capacitance vs. DC Voltage Characteristics for Ceramic Capacitors
Electrolytic capacitors satisfy the bulk capacitance requirements
for most high current applications. Because the ESR of electrolytic
capacitors is much higher than that of ceramic capacitors, when
using electrolytic capacitors, several MLCCs should be mounted
in parallel to reduce the overall series resistance.
COMPENSATION NETWORK
Due to its current-mode architecture, the ADP1872/ADP1873
require Type II compensation. To determine the component
values needed for compensation (resistance and capacitance
values), it is necessary to examine the converter’s overall loop
gain (H) at the unity gain frequency (f SW /10) when H = 1 V/V.
V OUT
V REF
Examining each variable at high frequency enables the unity
gain transfer function to be simplified to provide expressions
for the R COMP and C COMP component values.
Output Filter Impedance (Z FILT )
Examining the filter’s transfer function at high frequencies
simplifies to
Current-Sense Loop Gain (G CS )
The current-sense loop gain is
(A/V)
where:
A CS (V/V) is programmable for 3 V/V, 6 V/V, 12 V/V, and 24 V/V
(see the Programming Resistor (RES) Detect Circuit and Valley
R ON is the channel impedance of the lower side MOSFET.
Crossover Frequency
The crossover frequency is the frequency at which the overall
loop (system) gain is 0 dB (H = 1 V/V). It is recommended for
current-mode converters, such as the ADP1872, that the user
set the crossover frequency between 1/10 th and 1/15 th of the
switching frequency.
1
12
The relationship between C COMP and f ZERO (zero frequency) is
1
2 π × R COMP × C COMP
The zero frequency is set to 1/4 th of the crossover frequency.
Combining all of the above parameters results in
V
Z FILTER =
1
sC OUT
R COMP =
f CROSS
f CROSS + f ZERO
×
2 π f CROSS C OUT
G M G CS
× OUT
V REF
at the crossover frequency (s = 2πf CROSS ).
Rev. B | Page 24 of 40
C COMP =
1
2 × π × R COMP × f ZERO
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