LT3470
7
3470fd
block DiagraM
+
+
R Q
S Q
500ns
ONE SHOT
V
REF
1.25V
Burst Mode
DETECT
SW
GND
3470 BD
FB
R2 R1
SHDN
ENABLE
V
IN
V
IN
NC
BIAS
BOOST
L1
C2
C3
V
OUT
g
m
C1
LT3470
8
3470fd
Figure 1. Operating Waveforms of the LT3470 Converting 12V to 5V Using a 33µH Inductor and 10µF Output Capacitor
The LT3470 uses a hysteretic control scheme in conjunction
with Burst Mode operation to provide low output ripple
and low quiescent current while using a tiny inductor and
capacitors.
Operation can best be understood by studying the Block
Diagram. An error amplifier measures the output voltage
through an external resistor divider tied to the FB pin. If
the FB voltage is higher than V
REF
, the error amplifier will
shut off all the high power circuitry, leaving the LT3470
in its micropower state. As the FB voltage falls, the error
amplifier will enable the power section, causing the chip
to begin switching, thus delivering charge to the output
capacitor. If the load is light the part will alternate between
micropower and switching states to keep the output in
regulation (See Figure 1a). At higher loads the part will
switch continuously while the error amp servos the top
and bottom current limits to regulate the FB pin voltage
to 1.25V (See Figure 1b).
The switching action is controlled by an RS latch and two
current comparators as follows: The switch turns on,
and the current through it ramps up until the top current
comparator trips and resets the latch causing the switch
to turn off. While the switch is off, the inductor current
ramps down through the catch diode. When both the bot-
tom current comparator trips and the minimum off-time
one-shot expires, the latch turns the switch back on thus
completing a full cycle. The hysteretic action of this control
scheme results in a switching frequency that depends
on inductor value, input and output voltage. Since the
switch only turns on when the catch diode current falls
below threshold, the part will automatically switch slower
to keep inductor current under control during start-up or
short-circuit conditions.
The switch driver operates from either the input or from
the BOOST pin. An external capacitor and internal diode
is used to generate a voltage at the BOOST pin that is
higher than the input supply. This allows the driver to
fully saturate the internal bipolar NPN power switch for
efficient operation.
If the SHDN pin is grounded, all internal circuits are turned
off and V
IN
current reduces to the device leakage current,
typically a few nA.
(1a) Burst Mode Operation (1b) Continuous Operation
V
OUT
20mV/DIV
I
L
100mA/DIV
1ms/DIV
V
OUT
20mV/DIV
I
L
100mA/DIV
5µs/DIV
3470 F01a
NO LOAD
10mA LOAD
V
OUT
20mV/DIV
I
L
100mA/DIV
1µs/DIV
V
OUT
20mV/DIV
I
L
100mA/DIV
1µs/DIV
3470 F1b
200mA LOAD
150mA LOAD
operaTion
LT3470
9
3470fd
applicaTions inForMaTion
Input Voltage Range
The minimum input voltage required to generate a par-
ticular output voltage in an LT3470 application is limited
by either its 4V undervoltage lockout or by its maximum
duty cycle. The duty cycle is the fraction of time that the
internal switch is on and is determined by the input and
output voltages:
DC =
V
OUT
+
V
D
V
IN
V
SW
+ V
D
where V
D
is the forward voltage drop of the catch diode
(~0.6V) and V
SW
is the voltage drop of the internal switch
at maximum load (~0.4V). Given DC
MAX
= 0.90, this leads
to a minimum input voltage of:
V
IN(MIN)
=
V
OUT
+ V
D
DC
MAX
+ V
SW
V
D
This analysis assumes the part has started up such that the
capacitor tied between the BOOST and SW pins is charged
to more than 2V. For proper start-up, the minimum input
voltage is limited by the boost circuit as detailed in the
section BOOST Pin Considerations.
The maximum input voltage is limited by the absolute
maximum V
IN
rating of 40V, provided an inductor of suf-
ficient value is used.
Inductor Selection
The switching action of the LT3470 during continuous
operation produces a square wave at the SW pin that
results in a triangle wave of current in the inductor. The
hysteretic mode control regulates the top and bottom
current limits (see Electrical Characteristics) such that
the average inductor current equals the load current. For
safe operation, it must be noted that the LT3470 cannot
turn the switch on for less than ~150ns. If the inductor is
small and the input voltage is high, the current through the
switch may exceed safe operating limit before the LT3470
is able to turn off. To prevent this from happening, the
following equation provides a minimum inductor value:
L
MIN
=
V
IN(MAX)
t
ON-TIME(MIN)
I
MAX
where V
IN(MAX)
is the maximum input voltage for the ap-
plication, t
ON-TIME(MIN)
is ~150ns and I
MAX
is the maximum
allowable increase in switch current during a minimum
switch on-time (150mA). While this equation provides a
safe inductor value, the resulting application circuit may
switch at too high a frequency to yield good efficiency.
It is advised that switching frequency be below 1.2MHz
during normal operation:
f =
1DC
( )
V
D
+ V
OUT
( )
L I
L
where f is the switching frequency, I
L
is the ripple current
in the inductor (~150mA), V
D
is the forward voltage drop
of the catch diode, and V
OUT
is the desired output voltage.
If the application circuit is intended to operate at high duty
cycles (V
IN
close to V
OUT
), it is important to look at the
calculated value of the switch off-time:
t
OFF-TIME
=
1DC
The calculated t
OFF-TIME
should be more than LT3470’s
minimum t
OFF-TIME
(See Electrical Characteristics), so
the application circuit is capable of delivering full rated
output current. If the full output current of 200mA is not
required, the calculated t
OFF-TIME
can be made less than
minimum t
OFF-TIME
possibly allowing the use of a smaller
inductor. See Table 1 for an inductor value selection guide.
Table 1. Recommended Inductors for Loads up to 200mA
V
OUT
V
IN
UP TO 16V V
IN
UP TO 40V
2.5V 10µH 33µH
3.3V 10µH 33µH
5V 15µH 33µH
12V 33µH 47µH
Choose an inductor that is intended for power applications.
Table 2 lists several manufacturers and inductor series.
For robust output short-circuit protection at high V
IN
(up
to 40V) use at least a 33µH inductor with a minimum
450mA saturation current. If short-circuit performance is
not required, inductors with I
SAT
of 300mA or more may

LT3470ETS8#TRMPBF

Mfr. #:
Manufacturer:
Analog Devices / Linear Technology
Description:
Switching Voltage Regulators 300mA, 40V Micropower Step-Down Reg in ThinSOT
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