LTC3707
28
3707fb
APPLICATIONS INFORMATION
4. Are the SENSE
and SENSE
+
leads routed together with
minimum PC trace spacing? The fi lter capacitor between
SENSE
+
and SENSE
should be as close as possible to
the IC. Ensure accurate current sensing with Kelvin con-
nections at the SENSE resistor.
5. Is the INTV
CC
decoupling capacitor connected close to
the IC, between
the INTV
CC
and the power ground pins?
This capacitor carries the MOSFET drivers current peaks.
An additional 1µF ceramic capacitor placed immediately
next to the INTV
CC
and PGND pins can help improve noise
performance substantially.
6. Keep the switching nodes (SW1, SW2), top gate nodes
(TG1, TG2), and boost nodes (BOOST1, BOOST2) away
from sensitive small-signal nodes, especially from the
opposites channel’s voltage and current sensing feedback
pins. All of these nodes have very large and fast moving
signals and therefore should be kept on the “output side”
of the LTC3707 and occupy minimum PC trace area.
7. Use a modifi ed “star ground” technique: a low imped-
ance, large copper area central grounding point on the same
side of the PC board as the input and output capacitors with
tie-ins for the bottom of the INTV
CC
decoupling capacitor,
the bottom of the voltage feedback resistive divider and
the SGND pin of the IC.
R
L1
D1
L1
SW1
R
SENSE1
V
OUT1
C
OUT1
+
V
IN
C
IN
R
IN
+
R
L2
D2
BOLD LINES INDICATE
HIGH, SWITCHING
CURRENT LINES.
KEEP LINES TO A
MINIMUM LENGTH.
L2
SW2
3707 F11
R
SENSE2
V
OUT2
C
OUT2
+
Figure 11. Branch Current Waveforms
LTC3707
29
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APPLICATIONS INFORMATION
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 voltage
as well. 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% to 20% 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 their individual performance
should both controllers be turned on at the same time.
A particularly diffi cult region of operation is when one
controller channel is nearing its current comparator trip
point when the other channel is turning on its top MOSFET.
This occurs around 50% duty cycle on either channel due
to the phasing of the internal clocks and may cause minor
duty cycle jitter.
Short-circuit testing can be performed to verify proper
overcurrent latchoff, or 5µA can be provided to the RUN/SS
pin(s) by resistors from V
IN
to prevent the short-circuit
latchoff from occurring.
Reduce V
IN
from its nominal level to verify operation
of the regulator in dropout. 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. If problems are encountered with
high current output loading at lower input voltages, look
for inductive coupling between C
IN
, Schottky and the top
MOSFET components to the sensitive current and voltage
sensing traces. In addition, investigate common ground
path voltage pickup between these components and the
SGND pin of the IC.
An embarrassing problem, which can be missed in an
otherwise properly working switching regulator, results
when the current sensing leads are hooked up backwards.
The output voltage under this improper hookup 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.
LTC3707
30
3707fb
TYPICAL APPLICATION
Figure 12. LTC3707 High Effi ciency Low Noise 5V/3A, 3.3V/5A, 12/120mA Regulator
0.1µF
0.1µF
4.7µF
1
2
3
4
5
6
7
8
9
10
11
12
13
14
28
27
26
25
24
23
22
21
20
19
18
17
16
15
+
22µF
50V
D1
MBRM
140T3
MBRS1100T3
D2
MBRM
140T3
M1 M2
M3 M4
1µF
10V
CMDSH-3TR
CMDSH-3TR
0.1µF
10
0.01
0.015
INTV
CC
3.3V
0.1µF
20k
1%
105k, 1%
33pF
15k
33pF
15k
1000pF
1000pF
1000pF
1000pF
0.1µF
20k
1%
63.4k
1%
RUN/SS1
SENSE1
+
SENSE1
V
OSENSE1
FREQSET
STBYMD
FCB
I
TH1
SGND
3.3V
OUT
I
TH2
V
OSENSE2
SENSE2
SENSE2
+
PGOOD
TG1
SW1
BOOST1
V
IN
BG1
EXTV
CC
INTV
CC
PGND
BG2
BOOST2
SW2
TG2
RUN/SS2
LTC3707
T1, 1:1.8
10µH
L1
6.3µH
150µF, 6.3V
PANASONIC SP
1µF
25V
180µF, 4V
PANASONIC SP
GND
ON/OFF
8
5
123
V
OUT2
3.3V
5A; 6A PEAK
V
OUT3
12V
120mA
33µF
25V
V
OUT1
5V
3A; 4A PEAK
V
IN
7V TO
28V
1628 F12
+ +
V
IN
: 7V TO 28V
V
OUT
: 5V, 3A/3.3V, 6A/12V, 120mA
SWITCHING FREQUENCY = 300kHz
MI, M2, M3, M4: NDS8410A
L1: SUMIDA CEP123-6R3MC
T1: 10mH 1:1.8 — DALE LPE6562-A262 GAPPED E-CORE OR BH ELECTRONICS #501-0657 GAPPED TOROID
LT1121
+
+
220k
100k
1M
PGOOD
100k
V
PULL-UP
(<7V)
59k
180pF
180pF
0.01µF

LTC3707EGN#PBF

Mfr. #:
Manufacturer:
Analog Devices / Linear Technology
Description:
Switching Voltage Regulators Hi Eff Two-Phase Dual Synch
Lifecycle:
New from this manufacturer.
Delivery:
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