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PEAK
I
LOAD
I
=
K
x
L
I
+ '
where
L =
I
'
IN x
V
(
)
IN
OUT - V
V
OUT
SW
V
x
L
x
f
x
2
IN
OUT
V
V
where
IN
IN
OUT
(
)
- V
V
x
V
L =
I
'
OUT
SW
V
x
L
x
f
x
2
I
+
x
R
=
V
L
ESR
ESR
'
'
V
x
I
OUT
LED
VIN
¹
·
©
§
Q =
V
'
(
)
IN
OUT
LED
- V
V
x
I
OUT
OUT
SW
C
x
V
x
f
LM3556
SNVS796D – AUGUST 2011 – REVISED OCTOBER 2015
www.ti.com
Larger capacitors (for example, a 22-µF capacitor) or capacitors in parallel may be used if lower output voltage
ripple is desired. To estimate the output voltage ripple, considering the ripple due to capacitor discharge (
ΔVQ)
and the ripple due to the capacitors equivalent series resistance (ESR) (
ΔVESR), use Equation 1 and Equation 2.
For continuous conduction mode, the output voltage ripple due to the capacitor discharge is:
(1)
The output voltage ripple due to the ESR of the output capacitor is found by:
(2)
In ceramic capacitors the ESR is very low so the assumption is that 80% of the output voltage ripple is due to
capacitor discharge and 20% from ESR. Table 16 lists different manufacturers for various output capacitors and
their case sizes suitable for use with the LM3556.
8.2.2.2 Input Capacitor Selection
Choosing the correct size and type of input capacitor helps minimize the voltage ripple caused by the switching
of the LM3556 device’s boost converter and reduces noise on the boost converter's input terminal that can feed
through and disrupt internal analog signals. In the Figure 41 a 10-µF ceramic input capacitor works well. It is
important to place the input capacitor as close as possible to the LM3556’s input (IN) pin. This reduces the series
resistance and inductance that can inject noise into the device due to the input switching currents. Table 16 lists
various input capacitors recommended for use with the LM3556.
Table 16. Recommended Input/Output Capacitors (X5R/X7R Dielectric)
MANUFACTURER
PART NUMBER
VALUE
CASE SIZE
VOLTAGE RATING
TDK Corporation
C1608JB0J106M
10 µF
0603 (1.6 mm × 0.8 mm × 0.8 mm)
6.3 V
TDK Corporation
C2012JB1A106M
10 µF
0805 (2 mm × 1.25 mm × 1.25 mm)
10 V
Murata
GRM188R60J106M
10 µF
0603 (1.6 mm x 0.8 mm x 0.8 mm)
6.3 V
Murata
GRM21BR61A106KE19
10 µF
0805 (2 mm × 1.25 mm × 1.25 mm)
10 V
8.2.2.3 Inductor Selection
The LM3556 is designed to use a 1-µH or 0.47-µH inductor. Table 17 lists various inductors and their
manufacturers that work well with the LM3556. When the device is boosting (VOUT > VIN) the inductor is typically
the largest area of efficiency loss in the circuit. Therefore, choosing an inductor with the lowest possible series
resistance is important. Additionally, the saturation rating of the inductor must be greater than the maximum
operating peak current of the LM3556. This prevents excess efficiency loss that can occur with inductors that
operate in saturation. For proper inductor operation and circuit performance, ensure that the inductor saturation
and the peak current limit setting of the LM3556 are greater than IPEAK in Equation 3:
where
•
ƒSW = 4 MHz
•
Efficiency can be found in Typical Characteristics.
(3)
Table 17. Recommended Inductors
MANUFACTURER
L
PART NUMBER
DIMENSIONS (L × W × H)
ISAT
RDC
TOKO
1 µH
FDSD0312
3 mm x 3 mm x 1.2 mm
4.5 A
43 m
Ω
TOKO
1 µH
DFE252010C
2.5 mm × 2 mm × 1 mm
3.4 A
60 m
Ω
TOKO
1 µH
DFE252012C
2.5 mm × 2 mm × 1.2 mm
3.8 A
45 m
Ω
28
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