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LTC2913IMS-1 Datasheet(PDF) 9 Page - Linear Technology

Part # LTC2913IMS-1
Description  Dual UV/OV Voltage Monitor
Download  12 Pages
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Manufacturer  LINER [Linear Technology]
Direct Link  http://www.linear.com
Logo LINER - Linear Technology

LTC2913IMS-1 Datasheet(HTML) 9 Page - Linear Technology

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LTC2913
9
2913fa
UV/OV Timing
TheLTC2913hasanadjustabletimeoutperiod(tUOTO)that
holds OV or UV asserted after all faults have cleared. This
assures a minimum reset pulse width allowing a settling
time delay for the monitored voltage after it has entered
the valid region of operation.
When any VH input drops below its designed threshold,
the UV pin asserts low. When all inputs recover above
their designed thresholds, the UV output timer starts. If
all inputs remain above their designed thresholds when
the timer finishes, the UV pin weakly pulls high. However,
if any input falls below its designed threshold during this
timeoutperiod,thetimerresetsandrestartswhenallinputs
areabovethedesignedthresholds.TheOVoutputbehaves
as the UV output when LATCH is high (LTC2913-1).
Selecting the UV/OV Timing Capacitor
The UV and OV timeout period (tUOTO) for the LTC2913
is adjustable to accommodate a variety of applications.
Connecting a capacitor, CTMR, between the TMR pin and
ground sets the timeout period. The value of capacitor
needed for a particular timeout period is:
CTMR = tUOTO • 115 • 10–9 [F/s]
The Reset Timeout Period vs Capacitance graph found in
theTypicalPerformanceCharacteristicsshowsthedesired
delay time as a function of the value of the timer capacitor
that must be used. The TMR pin must have a minimum
10pF load or be tied to VCC. For long timeout periods, the
only limitation is the availability of a large value capacitor
withlowleakage.Capacitorleakagecurrentmustnotexceed
the minimum TMR charging current of 1.3µA. Tying the
TMR pin to VCC will bypass the timeout period.
Undervoltage Lockout
When VCC falls below 2V, the LTC2913 asserts an
undervoltage lockout (UVLO) condition. During UVLO,
UV is asserted and pulled low while OV is cleared and
blocked from asserting. When VCC rises above 2V, UV
follows the same timing procedure as an undervoltage
condition on any input.
Shunt Regulator
The LTC2913 has an internal shunt regulator. The VCC pin
operates as a direct supply input for voltages up to 6V.
Under this condition, the quiescent current of the device
remains below a maximum of 80µA. For VCC voltages
higher than 6V, the device operates as a shunt regulator
and must have a resistance RZ between the supply and the
VCC pin to limit the current to no greater than 10mA.
Whenchoosingthisresistancevalue,selectanappropriate
locationontheI-VcurveshownintheTypicalPerformance
Characteristics to accommodate any variations in VCC due
to changes in current through RZ.
UV and OV Output Characteristics
TheDCcharacteristicsoftheUVand0Vpull-downstrength
areshownintheTypicalPerformanceCharacteristics.Each
pin has a weak internal pull-up to VCC and a strong pull-
down to ground. This arrangement allows these pins to
have open-drain behavior while possessing several other
beneficial characteristics. The weak pull-up eliminates the
need for an external pull-up resistor when the rise time on
the pin is not critical. On the other hand, the open-drain
configuration allows for wired-OR connections, and is
useful when more than one signal needs to pull down
on the output. VCC of 1V guarantees a maximum VOL =
0.15V at UV.
AtVCC=1V,theweakpull-upcurrentonOVisbarelyturned
on. Therefore, an external pull-up resistor of no more than
100kisrecommendedontheOVpinifthestateandpull-up
strength of the OV pin is crucial at very low VCC.
Note however, by adding an external pull-up resistor, the
pull-up strength on the OV pin is increased. Therefore, if
it is connected in a wired-OR connection, the pull-down
strength of any single device must accommodate this
additional pull-up strength.
Output Rise and Fall Time Estimation
The UV and 0V outputs have strong pull-down capabil-
ity. The following formula estimates the output fall time
(90% to 10%) for a particular external load capacitance
(CLOAD):
tFALL ≈ 2.2 • RPD • CLOAD
APPLICATIONS INFORMATION


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