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PDF LTC1435A Data sheet ( Hoja de datos )

Número de pieza LTC1435A
Descripción High Efficiency Low Noise Synchronous Step-Down Switching Regulator
Fabricantes Linear Technology 
Logotipo Linear Technology Logotipo



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FEATURES
s Dual N-Channel MOSFET Synchronous Drive
s Programmable Fixed Frequency
s Wide VIN Range: 3.5V to 36V Operation
s Low Minimum On-Time (300ns) for High
Frequency, Low Duty Cycle Applications
s Very Low Dropout Operation: 99% Duty Cycle
s Low Standby Current
s Secondary Feedback Control
s Programmable Soft Start
s Remote Output Voltage Sense
s Logic Controlled Micropower Shutdown: IQ < 25µA
s Foldback Current Limiting (Optional)
s Current Mode Operation for Excellent Line and Load
Transient Response
s Output Voltages from 1.19V to 9V
s Available in 16-Lead Narrow SO and SSOP Packages
U
APPLICATIONS
s Notebook and Palmtop Computers, PDAs
s Cellular Telephones and Wireless Modems
s Portable Instruments
s Battery-Operated Devices
s DC Power Distribution Systems
LTC1435A
High Efficiency Low Noise
Synchronous Step-Down
Switching Regulator
DESCRIPTION
The LTC®1435A is a synchronous step-down switching
regulator controller that drives external N-channel power
MOSFETs using a fixed frequency architecture. A wide
duty cycle range of 5% to 99% allows high VIN to low VOUT
DC/DC conversion, as well as low dropout operation that
extends operating time in battery-operated systems. Burst
ModeTM operation provides high efficiency at low load
currents.
The operating frequency is set by an external capacitor
allowing maximum flexibility in optimizing efficiency. A
secondary winding feedback control pin, SFB, guarantees
regulation regardless of load on the main output by
forcing continuous operation. Burst Mode operation is
inhibited when the SFB pin is pulled low, which reduces
noise and RF interference.
Soft start is provided by an external capacitor that can be
used to properly sequence supplies. The operating cur-
rent level is user-programmable via an external current
sense resistor. Wide input supply range allows operation
from 3.5V to 30V (36V maximum).
, LTC and LT are registered trademarks of Linear Technology Corporation.
Burst Mode is a trademark of Linear Technology Corporation.
TYPICAL APPLICATION
COSC
43pF
CSS
0.1µF
COSC
RUN/SS
VIN
TG
CC ITH
SW
330pF
LTC1435A
RC INTVCC
10k
100pF
SGND
VOSENSE
BOOST
BG
PGND
SENSESENSE+
1000pF
VIN
4.5V TO 22V
+
M1
Si4412DY
CIN
22µF
35V
×2
DB
CMDSH-3
CB
0.1µF
L1
4.7µH
RSENSE
0.033
+
4.7µF
M2
Si4412DY
D1
MBRS140T3
VOUT
1.6V/3A
R1
35.7k
R2
102k
+
COUT
100µF
6.3V
×2
Figure 1. High Efficiency Step-Down Converter
1435A F01
1

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LTC1435A pdf
TYPICAL PERFORMANCE CHARACTERISTICS
LTC1435A
Burst Mode Operation
Soft Start: Load Current vs Time
VOUT
20mV/DIV
VITH
200mV/DIV
ILOAD = 50mA
1435A G16
RUN/SS
5V/DIV
INDUCTOR
CURRENT
1A/DIV
1435A G17
PIN FUNCTIONS
COSC (Pin 1): External capacitor COSC from this pin to
ground sets the operating frequency.
RUN/SS (Pin 2): Combination of Soft Start and Run
Control Inputs. A capacitor to ground at this pin sets the
ramp time to full current output. The time is approximately
0.5s/µF. Forcing this pin below 1.3V causes the device to
be shut down. In shutdown all functions are disabled.
ITH (Pin 3): Error Amplifier Compensation Point. The
current comparator threshold increases with this control
voltage. Nominal voltage range for this pin is 0V to 2.5V.
SFB (Pin 4): Secondary Winding Feedback Input. Nor-
mally connected to a feedback resistive divider from the
secondary winding. This pin should be tied to: ground to
force continuous operation; INTVCC in applications that
don’t use a secondary winding; and a resistive divider from
the output in applications using a secondary winding.
SGND (Pin 5): Small-Signal Ground. Must be routed
separately from other grounds to the (–) terminal of COUT.
VOSENSE (Pin 6): Receives the feedback voltage from an
external resistive divider across the output.
SENSE (Pin 7): The (–) Input to the Current Comparator.
SENSE + (Pin 8): The (+) Input to the Current Comparator.
Built-in offsets between SENSEand SENSE+ pins in
conjunction with RSENSE set the current trip thresholds.
EXTVCC (Pin 9): Input to the Internal Switch Connected to
INTVCC. This switch closes and supplies VCC power when-
ever EXTVCC is higher than 4.7V. See EXTVCC connection
in Applications Information section. Do not exceed 10V on
this pin. Connect to VOUT if VOUT 5V.
PGND (Pin 10): Driver Power Ground. Connects to source
of bottom N-channel MOSFET and the (–) terminal of CIN.
BG (Pin 11): High Current Gate Drive for Bottom
N-Channel MOSFET. Voltage swing at this pin is from
ground to INTVCC.
INTVCC (Pin 12): Output of the Internal 5V Regulator and
EXTVCC Switch. The driver and control circuits are pow-
ered from this voltage. Must be closely decoupled to power
ground with a minimum of 2.2µF tantalum or electrolytic
capacitor.
VIN (Pin 13): Main Supply Pin. Must be closely decoupled
to the IC’s signal ground pin.
SW (Pin 14): Switch Node Connection to Inductor. Volt-
age swing at this pin is from a Schottky diode (external)
voltage drop below ground to VIN.
BOOST (Pin 15): Supply to Topside Floating Driver. The
bootstrap capacitor is returned to this pin. Voltage swing
at this pin is from INTVCC to VIN + INTVCC.
TG (Pin 16): High Current Gate Drive for Top N-Channel
MOSFET. This is the output of a floating driver with a
voltage swing equal to INTVCC superimposed on the
switch node voltage SW.
5

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LTC1435A arduino
LTC1435A
APPLICATIONS INFORMATION
control power to be derived from the output during normal
operation (4.8V < VOUT < 9V) and from the internal regu-
lator when the output is out of regulation (start-up, short
circuit). Do not apply greater than 10V to the EXTVCC pin
and ensure that EXTVCC < VIN.
Significant efficiency gains can be realized by powering
INTVCC from the output, since the VIN current resulting from
the driver and control currents will be scaled by a factor of
Duty Cycle/Efficiency. For 5V regulators this supply means
connecting the EXTVCC pin directly to VOUT. However, for
3.3V and other lower voltage regulators, additional circuitry
is required to derive INTVCC power from the output.
The following list summarizes the four possible connections
for EXTVCC:
1. EXTVCC left open (or grounded). This will cause INTVCC
to be powered from the internal 5V regulator resulting
in an efficiency penalty of up to 10% at high input volt-
ages.
2. EXTVCC connected directly to VOUT. This is the normal
connection for a 5V regulator and provides the highest
efficiency.
3. EXTVCC connected to an output-derived boost network.
For 3.3V and other low voltage regulators, efficiency
gains can still be realized by connecting EXTVCC to an
output-derived voltage which has been boosted to
greater than 4.8V. This can be done with either the in-
ductive boost winding as shown in Figure 4a or the
capacitive charge pump shown in Figure 4b. The charge
pump has the advantage of simple magnetics.
4. EXTVCC connected to an external supply. If an external
supply is available in the 5V to 10V range (EXTVCC VIN),
it may be used to power EXTVCC providing it is compat-
ible with the MOSFET gate drive requirements. When
driving standard threshold MOSFETs, the external sup-
ply must always be present during operation to prevent
MOSFET failure due to insufficient gate drive.
Topside MOSFET Driver Supply (CB, DB)
An external bootstrap capacitor CB connected to the Boost
pin supplies the gate drive voltage for the topside MOSFET.
Capacitor CB in the Functional Diagram is charged through
diode DB from INTVCC when the SW pin is low. When the
+
CIN
VIN
VIN
OPTIONAL
EXT VCC
CONNECTION
5V VSEC 9V
TG
EXTVCC
R6 LTC1435A
SFB SW
R5
SGND
BG
PGND
N-CH
1N4148
L1
1:N
VSEC
+
RSENSE
+
1µF
VOUT
COUT
N-CH
1435A F04a
Figure 4a. Secondary Output Loop and EXTVCC Connection
+
VIN
TG
EXTVCC
LTC1435A
SW
BG
PGND
VIN
CIN
+
1µF
BAT85 0.22µF
BAT85
N-CH
N-CH
VN2222LL
BAT85
L1 RSENSE
VOUT
+
COUT
1435A F04b
Figure 4b. Capacitive Charge Pump for EXTVCC
topside MOSFET is to be turned on, the driver places the
CB voltage across the gate source of the MOSFET. This en-
hances the MOSFET and turns on the topside switch. The
switch node voltage SW rises to VIN and the Boost pin rises
to VIN + INTVCC. The value of the boost capacitor CB needs
to be 100 times greater than the total input capacitance of
the topside MOSFET. In most applications 0.1µF is ad-
equate. The reverse breakdown on DB must be greater than
VIN(MAX).
Output Voltage Programming
The output voltage is set by a resistive divider according
to the following formula:
VOUT
=
1.19V
1+
R2
R1
, VOUT
1.19
V
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