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SC2447TSTRT bảng dữ liệu(PDF) 17 Page - Semtech Corporation

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© 2006 Semtech Corp.
www.semtech.com
POWER MANAGEMENT
SC2447
charge balance between the load and the converter
output. The third term is voltage ripple due to ESL and
the fourth term is the voltage ripple due to ESR. The
total output voltage ripple is then the vector sum of the
last three terms.
Since the inductor current waveform is a triangular with
peak-to-peak value
δ*I
o, the ripple-voltage caused by
inductor current ripple is
,
f
C
8
I
v
s
o
o
C
δ
≈
∆
the ripple-voltage due to ESL is
,
D
I
f
L
v
o
s
esl
ESL
δ
=
∆
and the ESR ripple-voltage is
.
I
R
v
o
esr
ESR
δ
=
∆
Aluminum capacitors (e.g. electrolytic, solid OS-CON,
POSCAP, tantalum) have high capacitances and low ESLs.
The ESR has the dominant effect on the output ripple
voltage. It is therefore very important to minimize the
ESR.
When determining the ESR value, both the steady state
ripple-voltage and the dynamic load transient need to be
considered. To keep the steady state output ripple-
voltage <
∆V
o, the ESR should satisfy
.
I
V
R
o
o
1
esr
δ
∆
<
To limit the dynamic output voltage overshoot/
undershoot to within
α (say 3%) of the steady state
output voltage) from no load to full load, the ESR value
should satisfy
.
I
V
R
o
o
2
esr
α
<
Then, the required ESR value of the output capacitors
should be
R
esr = min{Resr1,Resr2 }.
The voltage rating of aluminum capacitors should be at
least 1.5V
o.
The RMS current ripple rating should also
be greater than
.
3
2
I
o
δ
Usually it is necessary to have several capacitors of the
same type in parallel to satisfy the ESR requirement. The
voltage ripple cause by the capacitor charge/discharge
should be an order of magnitude smaller than the voltage
ripple caused by the ESR. To guarantee this, the
capacitance should satisfy
.
R
f
2
10
C
esr
s
o
π
>
In many applications, several low ESR ceramic capacitors
are added in parallel with the aluminum capacitors in
order to further reduce ESR and improve high frequency
decoupling. Because the values of capacitance and ESR
are usually different in ceramic and aluminum capacitors,
the following remarks are made to clarify some practical
issues.
Remark 1: High frequency ceramic capacitors may not
carry most of the ripple current. It also depends on the
capacitor value. Only when the capacitor value is set
properly, the effect of ceramic capacitor low ESR starts
to be significant.
For example, if a 10
µF, 4mΩ ceramic capacitor is
connected in parallel with 2x1500
µF, 90mΩ electrolytic
capacitors, the ripple current in the ceramic capacitor is
only about 42% of the current in the electrolytic
capacitors at the ripple frequency. If a 100
µF, 2mΩ
ceramic capacitor is used, the ripple current in the
ceramic capacitor will be about 4.2 times of that in the
electrolytic capacitors. When two 100
µF, 2mΩ ceramic
capacitors are used, the current ratio increases to 8.3.
In this case most of the ripple current flows in the
ceramic decoupling capacitor. The ESR of the ceramic
capacitors will then determine the output ripple-voltage.
Remark 2: The total equivalent capacitance of the filter
bank is not simply the sum of all the paralleled capacitors.
The total equivalent ESR is not simply the parallel
combination of all the individual ESRs either. Instead
Application Information (Cont.)



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