LTC3787
28
3787fc
PC Board Layout Debugging
Start with one controller on at a time. It is helpful to use
a DC-50MHz current probe to monitor the current in the
inductor while testing the circuit. Monitor the output
switching node (SW pin) to synchronize the oscilloscope
to the internal oscillator and probe the actual output volt-
age. Check for proper performance over the operating
voltage and current range expected in the application.
The frequency of operation should be maintained over the
input voltage range down to dropout and until the output
load drops below the low current operation threshold—
typically 10% of the maximum designed current level in
Burst Mode operation.
The duty cycle percentage should be maintained from cycle
to cycle in a well designed, low noise PCB implementation.
Variation in the duty cycle at a subharmonic rate can sug-
gest noise pickup at the current or voltage sensing inputs
or inadequate loop compensation. Overcompensation of
the loop can be used to tame a poor PC layout if regulator
bandwidth optimization is not required. Only after each
controller is checked for its individual performance should
both controllers be turned on at the same time. A particu-
larly difficult region of operation is when one controller
channel is nearing its current comparator trip point while
the other channel is turning on its bottom MOSFET. This
occurs around the 50% duty cycle on either channel due
to the phasing of the internal clocks and may cause minor
duty cycle jitter.
Reduce V
IN
from its nominal level to verify operation with
high duty cycle. Check the operation of the undervoltage
lockout circuit by further lowering V
IN
while monitoring
the outputs to verify operation.
Investigate whether any problems exist only at higher out-
put currents or only at higher input voltages. If problems
coincide with high input voltages and low output currents,
look for capacitive coupling between the BOOST, SW, TG,
and possibly BG connections and the sensitive voltage
and current pins. The capacitor placed across the current
sensing pins needs to be placed immediately adjacent to
the pins of the IC. This capacitor helps to minimize the
effects of differential noise injection due to high frequency
capacitive coupling.
An embarrassing problem which can be missed in an oth-
erwise properly working switching regulator, results when
the current sensing leads are hooked up backwards. The
output voltage under this improper hook-up will still be
maintained, but the advantages of current mode control
will not be realized. Compensation of the voltage loop will
be much more sensitive to component selection. This
behavior can be investigated by temporarily shorting out
the current sensing resistor—don’t worry, the regulator
will still maintain control of the output voltage.
APPLICATIONS INFORMATION
LTC3787
29
3787fc
TYPICAL APPLICATIONS
MBOT2
MTOP2
SENSE1
+
SENSE1
SENSE2
+
SENSE2
VFB
ITH
SGND
EXTV
CC
RUN
FREQ
SS
PLLIN/MODE
PGOOD
TG1
SW1
BOOST1
BG1
VBIAS
INTV
CC
PGND
BG2
TG2
BOOST2
SW2
C
B1
, 0.1µF
C
OUTA1
22µF
s 4
C
B2
, 0.1µF
C
INT
4.7µF
R
B
232k
LTC3787
L2
3.3µH
L1
3.3µH
MTOP1
MBOT1
100k
3787 F10
INTV
CC
R
SENSE1
4m
C
SS
, 0.1µF
R
A
, 12.1k
C
ITHA
, 220pF
R
ITH
, 8.66k
C
ITH
, 15nF
R
SENSE2
4m
D1
D2
ILIM
PHASMD
CLKOUT
+
C
OUTB1
220µF
C
OUTA2
22µF
s 4
+
C
OUTB2
220µF
C
IN
22µF
s 2
V
IN
5V TO 24V
V
OUT
24V, 10A*
C
IN
, C
OUTA1
, C
OUTA2
: TDK C4532X5R1E226M
C
OUTB1
, C
OUTB2
: SANYO, 50CE220LX
L1, L2: PULSE PA1494.362NL
MBOT1, MBOT2, MTOP1, MTOP2: RENESAS HAT2169H
D1, D2: BAS140W
*WHEN V
IN
< 8V, MAXIMUM LOAD CURRENT AVAILABLE IS REDUCED.
Figure 10. High Efficiency 2-Phase 24V Boost Converter
Figure 11. High Efficiency 2-Phase 28V Boost Converter
MBOT2
MTOP2
SENSE1
+
SENSE1
SENSE2
+
SENSE2
VFB
ITH
SGND
EXTV
CC
RUN
FREQ
SS
PLLIN/MODE
PGOOD
TG1
SW1
BOOST1
BG1
VBIAS
INTV
CC
PGND
BG2
TG2
BOOST2
SW2
C
B1
, 0.1µF
C
OUTA1
6.8µF
× 4
C
B2
, 0.1µF
C
INT
4.7µF
R
B
271k
LTC3787
L2
3.3µH
L1
3.3µH
MTOP1
MBOT1
100k
3787 F11
INTV
CC
R
SENSE1
4m
C
SS
, 0.1µF
R
A
, 12.1k
C
ITHA
, 220pF
R
ITH
, 8.66k
C
ITH
, 15nF
R
SENSE2
4m
D1
D2
ILIM
PHASMD
CLKOUT
+
C
OUTB1
220µF
C
OUTA2
6.8µF
× 4
+
C
OUTB2
220µF
C
IN
6.8µF
× 4
V
IN
5V TO 28V
V
OUT
28V, 8A
C
IN
, C
OUTA1
, C
OUTA2
: TDK C4532X7RIH685K
C
OUTB1
, C
OUTB2
: SANYO, 50CE220LX
L1, L2: PULSE PA1494.362NL
MBOT1, MBOT2, MTOP1, MTOP2: RENESAS HAT2169H
D1, D2: BAS140W
LTC3787
30
3787fc
TYPICAL APPLICATIONS
Figure 12. High Efficiency 2-Phase 36V Boost Converter
MBOT2
MTOP2
SENSE1
+
SENSE1
SENSE2
+
SENSE2
VFB
ITH
SGND
EXTV
CC
RUN
FREQ
SS
PLLIN/MODE
PGOOD
TG1
SW1
BOOST1
BG1
VBIAS
INTV
CC
PGND
BG2
TG2
BOOST2
SW2
C
B1
, 0.1µF
C
OUTA1
6.8µF
× 4
C
B2
, 0.1µF
C
INT
4.7µF
R
B
348k
LTC3787
L2
10.2µH
L1
10.2µH
MTOP1
MBOT1
100k
3787 F12
INTV
CC
R
SENSE1
5m
C
SS
, 0.1µF
R
A
, 12.1k
C
ITHA
, 220pF
R
ITH
, 3.57k
C
ITH
, 15nF
R
SENSE2
5m
D1
D2
ILIM
PHASMD
CLKOUT
+
C
OUTB1
220µF
C
OUTA2
6.8µF
× 4
+
C
OUTB2
220µF
C
IN
6.8µF
× 4
V
IN
5V TO 36V
V
OUT
36V, 6A
C
IN
, C
OUTA1
, C
OUTA2
: TDK C4532X7RIH685K
C
OUTB1
, C
OUTB2
: SANYO, 50CE220LX
L1, L2: PULSE PA2050.103NL
MBOT1, MBOT2, MTOP1, MTOP2: RENESAS RJICO652DPB
D1, D2: BAS170W
Figure 13. High Efficiency 2-Phase 48V Boost Converter
MBOT2
MTOP2
SENSE1
+
SENSE1
SENSE2
+
SENSE2
VFB
ITH
SGND
EXTV
CC
RUN
FREQ
SS
PLLIN/MODE
PGOOD
TG1
SW1
BOOST1
BG1
VBIAS
INTV
CC
PGND
BG2
TG2
BOOST2
SW2
C
B1
, 0.1µF
C
OUTA1
6.8µF
× 4
C
B2
, 0.1µF
C
INT
4.7µF
R
B
475k
LTC3787
L2
16µH
L1
16µH
MTOP1
MBOT1
100k
3787 F13
INTV
CC
R
SENSE1
8m
C
SS
, 0.1µF
R
A
, 12.1k
C
ITHA
, 220pF
R
ITH
, 23.7k
C
ITH
, 10nF
R
SENSE2
8m
D1
D2
ILIM
PHASMD
CLKOUT
+
C
OUTB1
220µF
C
OUTA2
6.8µF
× 4
+
C
OUTB2
220µF
C
IN
6.8µF
× 4
V
IN
5V TO 38V
V
OUT
48V, 4A
C
IN
, C
OUTA1
, C
OUTA2
: TDK C4532X7RIH685K
C
OUTB1
, C
OUTB2
: SANYO, 63CE220K
L1, L2: PULSE PA2050.163NL
MBOT1, MBOT2, MTOP1, MTOP2: RENESAS RJK0652DPB
D1, D2: BAS170W

LTC3787HGN#TRPBF

Mfr. #:
Manufacturer:
Analog Devices / Linear Technology
Description:
Switching Voltage Regulators PolyPhSync Boost Cntr
Lifecycle:
New from this manufacturer.
Delivery:
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