10
LT1370
sn1370 1370fs
APPLICATIO S I FOR ATIO
UU W U
Output Diode
The suggested output diode (D1) is a Motorola MBRD835L.
It is rated at 8A average forward current and 35V reverse
voltage. Typical forward voltage is 0.4V at 3A. The diode
conducts current only during switch OFF time. Peak re-
verse voltage for boost converters is equal to regulator
output voltage. Average forward current in normal opera-
tion is equal to output current.
Frequency Compensation
Loop frequency compensation is performed on the output
of the error amplifier (V
C
pin) with a series RC network.
The main pole is formed by the series capacitor and the
output impedance (500k) of the error amplifier. The
pole falls in the range of 2Hz to 20Hz. The series resistor
creates a “zero” at 1kHz to 5kHz, which improves loop
stability and transient response. A second capacitor, typi-
cally one-tenth the size of the main compensation capaci-
tor, is sometimes used to reduce the switching frequency
ripple on the V
C
pin. V
C
pin ripple is caused by output
voltage ripple attenuated by the output divider and multi-
plied by the error amplifier. Without the second capacitor,
V
C
pin ripple is:
V
C
Pin Ripple =
V
RIPPLE
= Output ripple (V
P–P
)
g
m
= Error amplifier transconductance
(1500µmho)
R
C
= Series resistor on V
C
pin
V
OUT
= DC output voltage
1.245(V
RIPPLE
)(g
m
)(R
C
)
(V
OUT
)
To prevent irregular switching, V
C
pin ripple should be
kept below 50mV
P–P
.
Worst-case V
C
pin ripple occurs at
maximum output load current and will also be increased if
poor quality (high ESR) output capacitors are used. The
addition of a 0.0047µF capacitor on the V
C
pin reduces
switching frequency ripple to only a few millivolts. A low
value for R
C
will also reduce V
C
pin ripple, but loop phase
margin may be inadequate.
Input Capacitors
The input capacitor of a boost converter is less critical due
to the fact that the input current waveform is triangular and
does not contain large squarewave currents as is found in
the output capacitor. Capacitors in the range of 10µF to
100µF with an ESR of 0.1 or less work well up to full 6A
switch current. Higher ESR capacitors may be acceptable
at low switch currents. Input capacitor ripple current for a
boost converter is :
I
RIPPLE
=
f = 500kHz switching frequency
0.3(V
IN
)(V
OUT
– V
IN
)
(f)(L)(V
OUT
)
The input capacitor can see a very high surge current when
a battery or high capacitance source is connected “live”
and solid tantalum capacitors can fail under this condition.
Several manufacturers have developed tantalum capaci-
tors specially tested for surge capability (AVX TPS series,
for instance) but even these units may fail if the input
voltage approaches the maximum voltage rating of the
capacitor during a high surge. AVX recommends derating
capacitor voltage by 2:1 for high surge applications.
Ceramic, OS-CON and aluminum electrolytic capacitors
may also be used and have a high tolerance to turn-on
surges.
Ceramic Capacitors
Higher value, lower cost ceramic capacitors are now
becoming available in smaller case sizes. These are tempt-
ing for switching regulator use because of their very low
ESR. Unfortunately, the ESR is so low that it can cause
loop stability problems. Solid tantalum capacitor ESR
generates a loop “zero” at 5kHz to 50kHz that is instru-
mental in giving acceptable loop phase margin. Ceramic
capacitors remain capacitive to beyond 300kHz and usu-
ally resonate with their ESL before ESR becomes effective.
They are appropriate for input bypassing because of their
high ripple current ratings and tolerance of turn-on surges.
11
LT1370
sn1370 1370fs
APPLICATIO S I FOR ATIO
UU W U
Layout Considerations
For maximum efficiency, LT1370 switch rise and fall times
are made as short as possible. To prevent radiation and
high frequency resonance problems, proper layout of the
components connected to the switch node is essential. B
field (magnetic) radiation is minimized by keeping output
diode, switch pin and output bypass capacitor leads as
short as possible. Figure 3 shows recommended posi-
tions for these components. E field radiation is kept low by
minimizing the length and area of all traces connected to
the switch pin. A ground plane should always be used
under the switcher circuitry to prevent interplane
coupling.
The high speed switching current path is shown schemati-
cally in Figure 4. Minimum lead length in this path is
essential to ensure clean switching and low EMI. The path
including the switch, output diode and output capacitor is
the only one containing nanosecond rise and fall times.
Keep this path as short as possible.
More Help
For more detailed information on switching regulator
circuits, please see Application Note 19. Linear
Technology also offers a computer software program,
SwitcherCAD
TM
, to assist in designing switching convert-
ers. In addition, our Applications Department is always
ready to lend a helping hand.
Figure 4
LOAD
V
OUT
L1
SWITCH
NODE
LT1370 • F04
V
IN
HIGH
FREQUENCY
CIRCULATING
PATH
V
IN
NFBGNDFB
V
SW
V
C
S/S
C
D
KEEP PATH FROM
V
SW
,
OUTPUT DIODE,
OUTPUT CAPACITORS
AND GROUND RETURN
AS SHORT AS POSSIBLE
C
LT1370 • F03
Figure 3. Layout ConsiderationsR Package
SwitcherCAD is a trademark of Linear Technology Corporation.
12
LT1370
sn1370 1370fs
TYPICAL APPLICATIONS N
U
Positive-to-Negative Converter with Direct Feedback
LT1370
V
IN
V
C
V
IN
2.7V TO 13V
*BH ELECTRONICS 501-0726
GND
NFB
LT1370 • TA03
V
SW
S/S
D2
P6KE-15A
D3
1N4148
D1
MBRD835L
C1
100µF
C2
0.047µF
C3
0.0047µF
R1
2k
R3
2.49k
1%
R2
2.49k
1%
–V
OUT
–5V
C4
100µF
× 2
ON
OFF
V
IN
3V
5V
9V
I
OUT
1.75A
2.25A
3A
2
1
4
T1*
3
MAX I
OUT
+
+
Dual Output Flyback Converter with Overvoltage Protection
LT1370
V
IN
FB
V
C
V
IN
2.7V TO 10V
*DALE LPE-5047-100MB
GND
NFB
LT1370 • TA04
V
SW
S/S
P6KE-20A
1N4148
MBRS360T3
MBRS360T3
C1
22µF
R2
6.19k
1%
R1
68.1k
1%
C2
0.047µF
C3
0.0047µF
R3
2k
R5
2.49k
1%
R4
12.1k
1%
–V
OUT
–15V
V
OUT
15V
C4
47µF
C5
47µF
ON
OFF
2, 3
8, 9
7
T1*
4
10
1
+
+
+

LT1370CR#PBF

Mfr. #:
Manufacturer:
Analog Devices / Linear Technology
Description:
Switching Voltage Regulators 500kHz Hi Eff 6A Sw Reg
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
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