LTC3520 Linear Technology, LTC3520 Datasheet - Page 17

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LTC3520

Manufacturer Part Number
LTC3520
Description
Synchronous 1A Buck-Boost and 600mA Buck Converters
Manufacturer
Linear Technology
Datasheet

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APPLICATIONS INFORMATION
In addition to affecting output current ripple, the size of
the inductor can also affect the stability of the feedback
loop. In boost mode, the converter transfer function has
a right half plane zero at a frequency that is inversely
proportional to the value of the inductor. As a result, a
large inductor can move this zero to a frequency that is
low enough to degrade the phase margin of the feedback
loop. It is recommended that the inductor value be chosen
less than 10µH if the buck-boost converter is to be used
in the boost region.
Buck-Boost Output Capacitor Selection
A low ESR output capacitor should be utilized at the buck-
boost converter output in order to minimize output volt-
age ripple. Multilayer ceramic capacitors are an excellent
choice as they have low ESR and are available in small
footprints. The capacitor should be chosen large enough
to reduce the output voltage ripple to acceptable levels.
Neglecting the capacitor ESR and ESL, the peak-to-peak
output voltage ripple can be calculated by the following
formulas, where f is the frequency in MHz, C
capacitance in µF, L is the inductance in µH, and I
the output current in amps.
Since the output current is discontinuous in boost mode,
the ripple in this mode will generally be much larger than
the magnitude of the ripple in buck mode. In addition to
controlling the ripple magnitude, the value of the output
capacitor also affects the location of the resonant frequency
in the open loop converter transfer function. If the output
V
V
P P BOOST
P P B
,
,
U U CK
=
=
8
I
LC
LOAD
OUT
C
1
OUT
(
f
V
2
OUT
V
(
V
OUT
IN
f
V
IN
V
V
OUT
)
IN
)
V
OUT
OUT
LOAD
is the
is
capacitor is too small, the bandwidth of the converter
will extend high enough to degrade the phase margin.
To prevent this from happening, it is recommended that
a minimum value of 22µF be used for the buck-boost
output capacitor.
Buck-Boost Input Capacitor Selection
The supply current to the buck-boost converter is provided
by the PV
low ESR ceramic capacitor with a value of at least 22µF
be located as close to this pin as possible.
Inductor Style and Core Material
Different inductor core materials and styles have an
impact on the size and price of an inductor at any given
peak current rating. Toroid or shielded pot cores in ferrite
or permalloy materials are small and reduce emissions,
but generally cost more than powdered iron core induc-
tors with similar electrical characteristics. The choice of
inductor style depends upon the price, sizing, and EMI
requirements of a particular application. However, the
inductor must also have low ESR to provide acceptable
effi ciency and must be able to carry the highest current
required by the application without saturating. Table 3
provides a list of several manufacturers of inductors that
are well suited to LTC3520 applications.
Table 3. Inductor Vendor Information
MANUFACTURER
Coilcraft
Murata
Sumida
TDK
TOKO
IN1
and PV
PHONE
847-639-6400
814-238-0490
847-956-0702
847-803-6296
847-699-7864
IN3
pins. It is recommended that a
WEB SITE
www.coilcraft.com
www.murata.com
www.sumida.com
www.component.tdk.com
www.tokoam.com
LTC3520
17
3520f

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