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LTC2913 Datasheet(PDF) 11 Page - Linear Technology

Part # LTC2913
Description  High Voltage Surge Stopper
PDF  24 Pages
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Manufacturer  LINER [Linear Technology]
Direct Link  http://www.linear.com
Logo LINER - Linear Technology

LTC2913 Datasheet(HTML) 11 Page - Linear Technology

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LTC4366
436612fe
For more information www.linear.com/LTC4366
11
APPLICATIONS INFORMATION
The typical LTC4366 application is a protected system
that distributes power to loads safe from overvoltage
transients. External component selection is discussed in
the following sections.
Dual Shunt Regulators
The LTC4366 uses two shunt regulators coupled with
the external voltage dropping resistors, RSS and RIN, to
generate internal supply rails at the VDD and OUT pins.
These shunt-regulated rails allow overvoltage protection
from unlimited high voltage transients irrespective of the
voltage rating of the LTC4366’s internal circuitry.
At the beginning of start-up, during shutdown, or after an
overvoltage fault, the GATE pin is clamped to the OUT pin
thereby shutting off the MOSFET. This allows the VSS and
OUT pins to be pulled to ground by output load and RSS.
Under this condition the VDD pin is clamped with a 12V
shunt regulator to VSS. The full supply voltage minus 12V
is then impressed on the RIN resistor which sets the shunt
current. The shunt current can be as high as 10mA which
is several orders of magnitude higher than the typical 9µA
VDD pin quiescent current.
In normal operation the OUT voltage is equal to the input
supply.WithC1fullychargedIC1iszeroatthispoint.Under
this condition the voltage between the OUT and VSS pins
are clamped with a 5.7V shunt regulator. The input supply
voltage minus 5.7V is impressed on RSS. The RSS current
is divided into three areas: the 5.7V shunt current, bias
current between OUT and VSS and finally the RIN current.
The 5.7V shunt current can be as high as 10mA which
greatly exceeds the typical OUT (160µA) bias current.
Turn-On Sequence
The voltage between the VDD and VSS pins is shunt regu-
lated to 12V after ramping up the input supply. Next, the
internally generated supply, VCC, produces a 30µs power-
on-reset pulse which clears the fault latch and initializes
internallatches.Next,theshutdowncomparatordetermines
if the SD pin is externally pulled low, thereby requesting a
low bias current shutdown state. Otherwise the external
MOSFET, M1, is allowed to turn on.
Turningonthe7.5µAGATEpull-upcurrentsourcefromthe
VDD pin begins what can be described as a “bootstrapped”
method for powering up the MOSFET gate. Once the GATE
reaches the VDD pin voltage (minus a Schottky diode), the
7.5µA source loses voltage headroom and stops charging
theGATE(middleofwaveformsinFigure2.).Thebootstrap
method relies on charging C1 to a sufficient voltage after
GATE stops increasing. The voltage on C1 is then used
as a supply for a charge pump that charges the gate to
its final value 12V above OUT. C1 will discharge if the
charge pump current exceeds the C1 charging current.
If the voltage drops below 4.35V, the charge pump will
pause allowing C1 to recharge.
VDD
SD
R1
470k
R2
100k
OUT
CG
10nF
GATE
M1
FQA62N25C
SD
FB
CT
8.2nF
C1
0.47µF
RFB1
12.4k
VOUT
1.5A
(43V CLAMP)
VIN
28V
(18V DC TO 250V DC)
RFB2
422k
436612 F01
RSS
46.4k
RG
10
RIN
324k
Q1
MMBT3904
LTC4366-2
TIMER
BASE
VSS
Figure 1. Typical Application
Figure 2. Turn-On Waveforms
VGATE
10V/DIV
VOUT
10V/DIV
VC1
5V/DIV
20ms/DIV
436612 TA01b
CHARGE
PUMP PAUSE
CHARGE
PUMP STARTS
C1 CHARGING
C1 RECHARGING



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