Demonstration circuit DC257 is a constant-frequency
step-down converter using an LTC®1707 monolithic synchronous regulator. It provides low input voltage, high
conversion efficiency for cell phones and other portable
electronics operating from one or two Li-Ion cells or three
to six NiCd cells. Constant 350kHz operation and up to
600mA output capability in an SO-8 package provide a low
noise, space-efficient solution for wireless applications.
The circuit highlights the capability of the LTC1707. Designed to work at low voltages, the input voltage (VIN) can
range from 2.85V to 8.5V. At VIN < 2.7V, the LTC1707
shuts down and draws just a few microamperes, making
it ideal for single lithium-ion battery applications. DC257’s
output voltage is programmable from 1.5V to 3.3V via a
jumper.
At low output currents, the LTC1707 automatically switches
TM
to Burst Mode
operation to reduce switching losses and
maintain high operating efficiencies. In switching-noise
sensitive applications, Burst Mode operation can be inhibited by grounding the SYNC/MODE pin or synchronizing it
with an external clock. Gerber files for this circuit board
are available. Call the LTC factory.
, LTC and LT are registered trademarks of Linear Technology Corporation.
Burst Mode is a trademark of Linear Technology Corporation.
UWWW
PERFOR A CE SU ARY
SYMBOLPARAMETERCONDITIONSJUMPER POSITIONVALUE
V
IN
V
OUT
I
Q
Input Voltage Range2.85V to 8.5V
Output VoltageSee Figure 2JP1 = “1.5V”1.51V ±0.036V
This demonstration board is easily set up to evaluate the
performance of the LTC1707 IC. Please follow the procedure outlined below for proper operation.
• Refer to Figure 5 for proper connection of monitoring
equipment to ensure correct measurement.
• Connect the input power supply to the VIN and GND
terminals on the left-hand side of the board. Do not
increase VIN over 10V or the part will be damaged.
• Connect the load between the V
and GND
OUT
terminals on the right side of the board.
• The RUN/SS pin can be left unconnected. To shut
down the LTC1707, tie this pin to GND.
• Set the desired output voltage with jumper JP1, as
shown in Figure 2 and Table 1.
U
OPERATIO
Table 1. Output Voltage Selection
JP1 POSITIONOUTPUT VOLTAGE
“1.5V”1.51V
“1.8V”1.82V
“2.5V”2.52V
“2.9V2.94V
“3.3V”3.33V
“OPEN”
Figure 2. Output Voltage Selection (JP1)
(3.3V Position Shown)
The circuit in Figure 1 highlights the capabilities of the
LTC1707. The application circuit is set up for a variety of
output voltages. Output voltages from 1.5V to 3.3V or user
programmable voltages can be obtained by selecting the
appropriate jumper position.
The LTC1707 is a monolithic synchronous step-down
switching regulator using a fixed-frequency architecture.
Burst Mode operation provides high efficiency at low load
currents. Operating efficiencies typically exceed 90% over
two decades of load current range. 100% duty cycle
provides low dropout operation, which extends operating
time in battery-operated systems.
Do not use small spring-clip leads when testing this
circuit. Soldered wire connections are required to properly
verify the performance of the PC board.
This demonstration board is intended for the evaluation of
the LTC1707 switching regulator IC and was not designed
for any other purpose.
The operating frequency of this demo circuit is 350kHz,
the frequency of the LTC1707’s internal oscillator. For
higher frequencies, SYNC/MODE (E8) can be synchronized with an external clock. Burst Mode operation is
automatically disabled when the SYNC/MODE pin is externally driven. Grounding SYNC/MODE also disables
Burst Mode operation, potentially reducing noise and RF
interference.
Soft-start is provided by an external capacitor, CSS, which
can be used to properly sequence supplies. The maximum
operating current level is 0.6A.
This demo board is optimized for 3.3V outputs and 5V
input. Output voltages from 1.5V to 3.3V are available by
selecting the appropriate position of JP1. For other output
voltages, select the OPEN position and add an appropriate
resistor value in the space provided. The output voltage
must never exceed 3.3V because the output capacitor may
be damaged. The input supply can range from 2.85V to
8.5V.
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OPERATIO
DEMO MANUAL DC257
NO-DESIGN SWITCHER
U
SYNC/MODE
7
V
FB
3
V
REF
8
SHUTDOWN
V
IN
0.6V
V
IN
1.19V
REF
UVLO
TRIP = 2.7V
1.5µA
–
+
BURST
DEFEAT
Y = “0” ONLY WHEN X IS A CONSTANT “1”
Y
X
SLOPE
OSC
FREQ
SHIFT
0.8V
2.25µA
V
IN
RUN/SS
2
0.86V
COMP
+
–
+
–
EA
RUN/SOFT
START
OVDET
V
IN
–
EN
+
0.12V
I
1
TH
–
+
BURST
SLEEP
QRS
SWITCHING
Q
LOGIC
AND
BLANKING
CIRCUIT
V
0.4V
IN
–
+
I
COMP
ANTI-
SHOOT-THRU
+
I
RCMP
–
6Ω
5
4
DC257 F03
6
SW
GND
V
IN
Figure 3. Functional Block Diagram
Main Control Loop (Refer to Functional Diagram)
The LTC1707 uses a constant-frequency, current mode
step-down architecture. Both the main and synchronous
switches, consisting of top P-channel and bottom
N-channel power MOSFETs, are internal. During normal
operation, the internal top power MOSFET is turned on
during each cycle when the oscillator sets the RS latch,
and turned off when the current comparator, I
the RS latch. The peak inductor current at which I
resets the RS latch is controlled by the voltage on the I
COMP
, resets
COMP
TH
pin, which is the output of error amplifier EA. The VFB pin
allows EA to receive an output feedback voltage from an
external resistive divider. When the load current increases,
it causes a slight decrease in the feedback voltage relative
to the 0.8V reference, which, in turn, causes the I
TH
voltage to increase until the average inductor current
matches the new load current. While the top MOSFET is
off, the bottom MOSFET is turned on until either the
inductor current starts to reverse, as indicated by the
current reversal comparator I
, or the next cycle
RCMP
begins.
The main control loop is shut down by pulling the RUN/
SS pin low. Releasing RUN/SS allows an internal 2.25µA
current source to charge soft-start capacitor CSS. When
CSS reaches 0.7V, the main control loop is enabled with
the ITH voltage clamped at approximately 5% of its
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DEMO MANUAL DC257
NO-DESIGN SWITCHER
U
OPERATIO
maxi
mum value. As CSS continues to charge, ITH is gradu-
ally released, allowing normal operation to resume.
Comparator OVDET guards against transient overshoots
> 7.5% by turning the main switch off and keeping it off
until the fault is removed.
SYNC/MODE Pin Function (Frequency Synchronization
and Burst Mode Disable)
The LTC1707 can be synchronized with an external
TTL/CMOS-compatible clock signal driving the SYNC/
MODE pin (E8). The frequency range of this signal must be
from 385kHz to 550kHz. DO NOT attempt to synchronize
the LTC1707 below 385kHz as this may cause abnormal
operation and an undesired frequency spectrum. The top
MOSFET turn-on follows the rising edge of the external
source.
When the LTC1707 is clocked by an external source, Burst
Mode operation is disabled; the LTC1707 then operates in
PWM pulse-skipping mode. In this mode, when the output
load is very low, current comparator I
for more than one cycle and forces the main switch to stay
off for the same number of cycles. Increasing the output
load slightly allows constant-frequency PWM operation to
resume.
remains tripped
COMP
When the converter uses Burst Mode operation, the peak
current of the inductor is set to approximately 200mA,
even though the voltage at the ITH pin indicates a lower
value. The voltage at the I
average current is greater than the load requirement. As
the ITH voltage drops below 0.12V, the BURST comparator
trips, causing the internal sleep line to go high and turn off
both power MOSFETs.
In sleep mode, both power MOSFETs are held off and the
internal circuitry is partially turned off, reducing the quiescent current to 200µA. The load current is now supplied
from the output capacitor. When the output voltage drops,
causing ITH to rise above 0.22V, the top MOSFET is again
turned on and this process repeats.
SHORT-CIRCUIT PROTECTION
When the output is shorted to ground, the frequency of the
oscillator is reduced to about 35kHz, 1/10 of the nominal
frequency. This frequency foldback ensures that the
inductor current has more time to decay, thereby preventing runaway. The oscillator's frequency will gradually
increase to 350kHz (or the synchronized frequency) when
VFB rises above 0.3V.
DROPOUT OPERATION
pin drops when the inductor’s
TH
Frequency synchronization is inhibited when the feedback
voltage, VFB, is below 0.6V. This prevents the external
clock from interfering with the frequency foldback for
short-circuit protection.
The LTC1707 is capable of Burst Mode operation, in which
the internal power MOSFETs operate intermittently based
on load demand. To enable Burst Mode operation, simply
allow the SYNC/MODE pin to float or connect it to a logic
high. To disable Burst Mode operation and enable PWM
pulse-skipping mode, connect the SYNC/MODE pin to
GND.
When the input supply voltage decreases toward the
output voltage, the duty cycle increases toward the maximum on-time. Further reduction of the supply voltage
forces the main switch to remain on for more than one
cycle until it reaches 100% duty cycle. The output voltage
will then be determined by the input voltage minus the
voltage drop across the P-channel MOSFET and the inductor.
In Burst Mode operation or pulse skipping mode operation with the outputs lightly loaded, the LTC1707 passes
through continuous mode as it enters dropout.
6
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OPERATIO
DEMO MANUAL DC257
NO-DESIGN SWITCHER
U
UNDERVOLTAGE LOCKOUT
A precision undervoltage lockout shuts down the LTC1707
when VIN drops below 2.7V, making it ideal for single
lithium-ion battery applications. In shutdown, the LTC1707
draws only several microamperes, which is low enough to
prevent deep discharge and possible damage to a lithiumion battery nearing its end of charge. A 150mV hysteresis
ensures reliable operation with noisy supplies.
LOW SUPPLY OPERATION
The LTC1707 is designed to operate from supply voltages as
low as 2.85V. At this voltage, the converter is most likely to
be running at high duty cycles or in dropout, where the main
switch is on continuously. Hence, the I2R loss is due mainly
to the R
of the P-channel MOSFET. See the LTC1707
DS(ON)
data sheet for additional information.
SLOPE COMPENSATION AND
PEAK INDUCTOR CURRENT
Slope compensation provides stability by preventing subharmonic oscillations. It works by internally adding a ramp
to the inductor current signal at duty cycles in excess of
40%. As a result, the maximum inductor peak current is
lower for V
OUT/VIN
> 0.4 than when V
OUT/VIN
< 0.4. See the
maximum inductor peak current vs duty cycle graph in
Figure 4.
The graph labeled “With External Clock” shows the worstcase peak current reduction obtained when the oscillator
is synchronized at its minimum frequency, that is, to a
clock just above the oscillator’s free-running frequency.
HOW TO MEASURE VOLTAGE REGULATION
When trying to measure voltage regulation, remember
that all measurements must be taken at the point of
regulation. This point is where the LTC1707’s control loop
looks for the information to keep the output voltage
constant. In this demonstration board, this information
point occurs between Pin 4, the GND of the LTC1707, and
the output side of R7. These points correspond to the GND
(E5) and V
OSENSE
(E6) terminals of the board. Output
voltage test leads should be attached directly to these
terminals. The load should be placed between V
and GND (E5). Measurements
should not
be taken at the
OUT
(E7)
end of test leads at the load. Refer to Figure 5 for the proper
monitoring equipment configuration.
Figure 4. Maximum Inductor Peak Current Vs Duty Cycle
950
900
850
800
750
700
650
600
550
MAXIMUM INDUCTOR PEAK CURRENT (mA)
500
0
WITH
EXTERNAL
CLOCK
20
DUTY CYCLE (%)
WITHOUT
EXTERNAL
CLOCK
40
60
80
100
DC257 F04
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DEMO MANUAL DC257
NO-DESIGN SWITCHER
U
OPERATIO
MONOLITHIC SYNCHRONOUS
STEP-DOWN REGULATOR
V
REF
I
IN
+
A
+
V
IN
+
V
E1E8
V
IN
E2
RUN/SS
E3
GND
E4
1.5V
LTC1707CS8
JP1
1.8V
2.5V
2.9V
3.3V
OPEN
DEMO CIRCUIT
Linear Technology
(408) 432-1900
DC257
SYNC/
MODE
E7
E6
V
OSENSE
V
OUT
E5
GND
DC257 F05
10Ω
I
OUT
+
A
+
V
LOAD
V
OUT
Figure 5. Proper Measurement Setup
CUT THIS
TRACE
MONOLITHIC SYNCHRONOUS
STEP-DOWN REGULATOR
V
REF
I
IN
+
A
+
V
IN
+
V
E1E8
V
IN
E2
RUN/SS
E3
GND
E4
1.5V
1.8V
LTC1707CS8
JP1
2.5V
2.9V
3.3V
OPEN
DEMO CIRCUIT
Linear Technology
(408) 432-1900
DC257
SYNC/
MODE
V
E7
E6
V
OSENSE
OUT
E5
GND
DC257 F06
10Ω
I
OUT
+
A
+
V
LOAD
V
OUT
This applies to line regulation (input-to-output voltage
regulation) as well as load regulation tests. In doing the
line regulation tests, always look at the input voltage
across the input terminals.
For the purposes of these tests, the demonstration circuit
should be powered from a regulated DC bench supply, so
that variations on the DC input do not add errors to the
regulation measurements.
8
Figure 6. Remote Output Voltage Sense
REMOTE OUTPUT-VOLTAGE SENSING
Remote output-voltage sensing can be accomplished by
modifying the PC board. A small PC trace connecting V
to V
OSENSE
must be cut, as shown in Figure 6. An external
connection from V
made. To prevent uncertainty, there is a 10Ω resistor
placed across the V
under any circumstance, allow V
OSENSE
and V
OUT
OUT
directly to the load must be
OSENSE
terminals. Never,
OSENSE
to float!
Page 9
OPERATIO
DEMO MANUAL DC257
NO-DESIGN SWITCHER
U
RUN/SOFT-START FUNCTION
is a delay before starting of approximately 310ms/µF,
followed by an additional 490ms/µF to reach full current.
The RUN/SS pin (E3) is a dual-purpose pin that provides
the soft-start function and a means to shut down the
LTC1707. Soft-start reduces surge currents from VIN by
gradually increasing the internal current limit. Power supply sequencing can also be accomplished using this pin.
C
= 0.1µF on this PC board.
SS
Pulling the RUN/SS pin below 0.7V (0.4V min) puts the
LTC1707 into a low quiescent current shutdown mode
(IQ < 15µA). See the LTC1707 data sheet for further
information.
An internal 2.25µA current source charges an external
capacitor, CSS. When the voltage on RUN/SS reaches
0.7V, the LTC1707 begins operating. As the voltage on
RUN/SS continues to increase from 0.7V to 1.8V, the
internal current limit also increases at a proportional linear
rate. The current limit begins at 25mA (at V
and ends at the Figure 4 value (V
RUN/SS
RUN/SS
≥ 1.8V). The output
≤␣ 0.7V)
current thus increases slowly, charging the output capacitor. If RUN/SS has been pulled all the way to ground, there
Table 2. List of Alternative Component Manufacturers
Table 2 is a partial list of manufacturers of components
that can be used in LTC1707 applications. Using components other than the ones supplied on the demonstration
board will require careful analysis to verify that all component specifications are not exceeded. Finally,
recharacterizing the circuit for efficiency is necessary.
(81) 0952-82-3959(81) 0952-82-4655
(81) 03-3607-5111(81) 03-3607-5114
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DEMO MANUAL DC257
NO-DESIGN SWITCHER
W
PCB LAYOUT AUD FIL
Component Side Silkscreen
Component Side
Component Side Solder Mask
10
Page 11
PCB LAYOUT AUD FIL
DEMO MANUAL DC257
NO-DESIGN SWITCHER
W
Solder Side
Information furnished by Linear Technology Corporation is believed to be accurate and reliable.
However, no responsibility is assumed for its use. Linear Technology Corporation makes no representation that the interconnection of its circuits as described herein will not infringe on existing patent rights.
Solder Side Solder Mask
Pastemask
11
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DEMO MANUAL DC257
NO-DESIGN SWITCHER
U
PC FAB DRAWI
G
2.000
C
DD
A
A
B
2.000
C
NOTES: UNLESS OTHERWISE SPECIFIED
1. MATERIAL: FR4 OR EQUIVALENT EPOXY,
2 OZ COPPER CLAD, THICKNESS 0.062 ±0.006
TOTAL OF 2 LAYERS
2. FINISH: ALL PLATED HOLES 0.001 MIN/0.0015 MAX
COPPER PLATE, ELECTRODEPOSITED TIN-LEAD COMPOSITION
BEFORE REFLOW, SOLDER MASK OVER BARE COPPER (SMOBC)
3. SOLDER MASK: BOTH SIDES USING SR1020 OR EQUIVALENT
4. SILKSCREEN: USING WHITE NONCONDUCTIVE EPOXY INK
5. ALL DIMENSIONS IN INCHES
6. SCORING
0.017
SYMBOL
A
B
C
D
DIAMETER
0.020
0.040
0.072
0.095
TOTAL HOLES
NUMBER
OF HOLES
6
12
2
8
28
PLATED
PLTD
PLTD
NPLTD
PLTD
Linear Technology Corporation
12
1630 McCarthy Blvd., Milpitas, CA 95035-7417
(408) 432-1900 ● FAX: (408) 434-0507
●
www.linear-tech.com
dc257f LT/TP 1099 500 • PRINTED IN USA
LINEAR TECHNOLOGY CORPORATION 1999
Page 13
Mouser Electronics
Authorized Distributor
Click to View Pricing, Inventory, Delivery & Lifecycle Information:
Analog Devices Inc.: DC257A
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