Datasheet LTC1921CMS8 Datasheet (Linear Technology)

Page 1
1
LTC1921
1921i
Dual –48V Supply
and Fuse Monitor
May 2002
The LTC®1921 monitors two independent –48V supplies, including their fuses, and drives up to three optoisolators to indicate status, in accordance with standard backplane specifications. Requiring only three noncritical resistors and optoisolators, the LTC1921 replaces multiple voltage comparators, a voltage reference and several precision resistors.
The monitor features dual supply overvoltage and under­voltage detection circuits. The preset trip thresholds in­clude overvoltage, undervoltage and undervoltage recovery that are guaranteed over temperature and meet or exceed common backplane specifications. Additional built-in cir­cuitry detects the condition of supply fuses. Overvoltage and undervoltage detectors ignore fast supply transients, eliminating false detection. The LTC1921 operates from –10V to –80V with a typical power dissipation of less than 10mW.
The LTC1921 is available in an 8-pin MSOP package.
Independently Monitors Two –48V Supplies for – Undervoltage Faults: –38.5V ±1V
MAX
– Overvoltage Faults: –70V ±1.5V
MAX
Accurately Detects Undervoltage Fault Recovery: –43V ±0.5V
MAX
Monitors Two External Fuses
Operates from –10V to –80V
Tolerates DC Faults to –100V
Tolerates Accidental Supply Reversal to 100V
Withstands Transient Voltages Up to 200V/–200V
Small Footprint: 8-Lead MSOP Package
Requires No Precision External Components
Specified from –40°C to 85°C
Telecom Backplanes or Switch Cards
Networking Backplanes or Switch Cards
High Voltage Fuse Monitoring
, LTC and LT are registered trademarks of Linear Technology Corporation.
Information furnished by Linear Technology Corporation is believed to be accurate and reliable. However, no responsibility is assumed for its use. Linear Technology Corporation makes no represen­tation that the interconnection of its circuits as described herein will not infringe on existing patent rights.
FUSE GOOD
SUPPLY A GOOD
MOC207
MOC207
MOC207
1921 TA01
SUPERVISOR
µP
LOGIC
SUPPLY
LOGIC
COMMON
47k
47k 47k
R3 47k 1/4W
SUPPLY B GOOD
OUT FV
A
3
4
57
2
8
1
6
V
B
FUSE A
RTN
LTC1921
FUSE B
OUT A
OUT B
D1 MURS320
F1
SUPPLY A
–48V
SUPPLY B
–48V
F2
D2 MURS320
R1
100k
–48V
RETURN
R2 100k
–48V LOAD
Final Electrical Specifications
FEATURES
DESCRIPTIO
U
APPLICATIO S
U
TYPICAL APPLICATIO
U
Page 2
2
LTC1921
1921i
(Note 1) All voltages referred to RTN
Supply Voltage
(VA, VB, FUSE A, FUSE B) ....................... 100V to –100V
Transient Voltage (VA, VB, FUSE A, FUSE B)
(Note 2) ........................................................ 0V to 200V
Transient Voltage (VA, VB, FUSE A, FUSE B)
(Note 2) ......................................................0V to –200V
OUT A, OUT B, OUT F Pins ......................... 0.3V to – 8V
Maximum Junction Temperature ......................... 150°C
Operating Temperature Range
LTC1921CMS8 ........................................ 0°C to 70°C
LTC1921IMS8 .................................... –40°C to 85°C
Storage Temperature Range ................. –65°C to 150°C
Lead Temperature (Soldering, 10 sec)..................300°C
ORDER PART
NUMBER
LTC1921CMS8 LTC1921IMS8
T
JMAX
= 150°C, θJA = 250°C/W
MS8 PART MARKING
LTZV LTZU
1 2 3 4
V
A
FUSE A
RTN
OUT F
8 7 6 5
V
B
FUSE B OUT B OUT A
TOP VIEW
MS8 PACKAGE
8-LEAD PLASTIC MSOP
Consult LTC Marketing for parts specified with wider operating temperature ranges.
The denotes specifications which apply over the full operating temperature range, otherwise specifications are at TA = 25°C. (Note 3) RTN = 0V, VA = –48V, VB = –48V, FUSE A = –48V, FUSE B = –48V, unless otherwise noted.
ABSOLUTE AXI U RATI GS
WWWU
PACKAGE/ORDER I FOR ATIO
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ELECTRICAL CHARACTERISTICS
Note 1: Absolute Maximum Ratings are those values beyond which the life of a device may be impaired.
Note 2: Transient voltage for less than 10µs. This parameter is not 100% tested. Voltage should not exceed 200V between any two pins.
Note 3: All currents into device pins are positive; all currents out of device pins are negative. All voltages are referenced to RTN unless otherwise specified.
PARAMETER CONDITIONS MIN TYP MAX UNITS Power Supply
Supply Voltage Range (RTN – VA, RTN –␣ VB) 10 80 V Supply Current (IA + IB) –160 –250 µA
–300 µA
Supply Monitor
Undervoltage Threshold –39.5 –37.5 V Undervoltage Recovery Threshold –43.5 –42.5 V Overvoltage Threshold –71.5 –68.5 V Overvoltage Threshold Hysteresis 1 1.6 V
Fuse Monitor
Input Resistance, FUSE A, FUSE B 11 M Fuse Comparison Threshold |V
FUSEA
– VA|, |V
FUSEB
– VB| 2.5 V
LTC1921C 0.9 4.5 V LTC1921I
0.5 4.5 V
Output
Propagation Delay C
OUT
= 100pF, Overdrive = 1V 220 µs
Output Switch Resistance, OUT F, OUT A, OUT B VA = VB = –35V, V
FUSEA
= V
FUSEB
= 0V 25
I
OUT
= 10mA 50
Output Switch Off Leakage 500 pA Output Switch Resistance in Undervoltage Lockout, VA = VB = –10V, I
OUT
= 10mA 60
OUT F, OUT A, OUT B V
A
= –10V, VB = 0V, I
OUT
= 10mA 80
VA = 0V, VB = –10V, I
OUT
= 10mA 80
Page 3
3
LTC1921
1921i
TYPICAL PERFOR A CE CHARACTERISTICS
UW
Supply Current vs Supply Voltage
SUPPLY VOLTAGE (V)
0
SUPPLY CURRENT (µA)
400
350
300
250
200
150
100
50
0
80
1921 G01
20 40 60 1007010 30 50 90
VA = VB = V
FUSEA
= V
FUSEB
TEMPERATURE (°C)
UNDERVOLTAGE THRESHOLD (V)
1921 G04
–37.5 –37.7 –37.9 –38.1 –38.3 –38.5 –38.7 –38.9 –39.1 –39.3 –39.5
–50 –30 –10 10
30 50 70
90
Undervoltage Threshold vs TemperatureSupply Current vs Temperature
TEMPERATURE (°C)
–50
SUPPLY CURRENT (µA)
100
I
A
+ I
B
IA, I
B
120
140
90
1921 G02
80
60
0
–30 –10 10 30 50 70
40
20
180
160
VA = –48V V
B
= –48V
V
FUSEA
= –48V
V
FUSEB
= –48V
Undervoltage Recovery Threshold vs Temperature
TEMPERATURE (°C)
–50 –30 –10 10
UNDERVOLTAGE RECOVERY THRESHOLD (V)
30 50 70
90
1921 G05
–42.5 –42.6 –42.7 –42.8 –42.9 –43.0 –43.1 –43.2 –43.3 –43.4 –43.5
Overvoltage Threshold vs Temperature
TEMPERATURE (°C)
OVERVOLTAGE THRESHOLD (V)
1921 G06
–68.0
–68.5
–69.0
–69.5
–70.0
–70.5
–71.0
–71.5
–72.0
–50 –30 –10 10
30 50 70
90
Overvoltage Hysteresis vs Temperature
Fuse Window Positive Threshold vs Temperature
Fuse Window Negative Threshold vs Temperature
TEMPERATURE (°C)
OVERVOLTAGE HYSTERESIS (V)
1921 G07
1.50
1.45
1.40
1.35
1.30
1.25
1.20
1.15
1.10
1.05
1.00 –50 –30 –10 10
30 50 70
90
TEMPERATURE (°C)
FUSE POSITIVE THRESHOLD (V)
1921 G08
2.7
2.5
2.3
2.1
1.9
1.7
1.5 –50 –30 –10 10
30 50 70
90
TEMPERATURE (°C)
FUSE NEGATIVE THRESHOLD (V)
1921 G09
–2.0
–2.2
–2.4
–2.6
–2.8
–3.0
–3.2
–50 –30 –10 10
30 50 70
90
Output R
DS(ON)
vs Temperature
TEMPERATURE (°C)
–50
OUTPUT R
DS(ON)
()
20
25
30
10 50
1921 G03
15
10
–30 –10
30 70 90
5
0
OUT A (OUT F = 0V)
OUT F, OUT B (OUT A = 0V)
VA = –35V V
B
= –35V
I = –10mA
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4
LTC1921
1921i
VA (Pin 1):
Supply to be Monitored. The voltage at this pin is compared to the valid supply voltage window and the result is output at OUT A (Pin 5). Supply current is drawn from this pin as well as from VB (Pin 8).
FUSE A (Pin 2): This pin monitors the state of a fuse by comparing the voltage at this pin to the voltage at V
A
(Pin␣ 1). The result is output at OUT F (Pin 4). RTN (Pin 3): Supply Return Reference. This pin must be
at an equal or higher potential than the other pins and should be wired to the –48V return.
OUT F (Pin 4): This pin indicates the state of the external fuses by ORing the comparisons made to the FUSE A and FUSE B pins. If V
FUSEA
≅ VA (V
FUSEA
is within the specified
window around VA) and V
FUSEB
VB, then OUT F will
exhibit a high internal impedance to the RTN pin. If V
FUSEA
VA or V
FUSEB
VB, then OUT F is shorted
internally to the RTN pin and can shunt enough current to turn off an optocoupler or LED wired between these pins. OUT F should be clamped externally so that it cannot be driven more than 8V below RTN. This is done automati­cally by the optocoupler or LED diodes shown in the application circuits.
OUT A (Pin 5): Indicates the State of VA. If VA is within the specified voltage window (neither undervoltage nor over­voltage), OUT A will exhibit a high internal impedance to the
UU
U
PI FU CTIO S
TYPICAL PERFOR A CE CHARACTERISTICS
UW
Undervoltage Response Time
OUT F pin. If VA is outside the specified overvoltage or undervoltage limits, then OUT A is shorted internally to the OUT F pin and can shunt enough current to turn off an optocoupler or LED wired between these pins. OUT A should be clamped externally so that it cannot be driven more than 8V below RTN. This is done automatically by the optocoupler or LED diodes shown in the application circuits.
OUT B (Pin 6): Indicates the State of VB. If VB is within the specified voltage window (neither undervoltage nor over­voltage), OUT B will exhibit a high internal impedance to the OUT A pin. If VB is outside the specified overvoltage or undervoltage limits, then OUT B is shorted internally to the OUT A pin and can shunt enough current to turn off an optocoupler or LED wired between these pins. OUT B should be clamped externally so that it cannot be driven more than 8V below RTN. This is done automatically by the optocoupler or LED diodes shown in the application circuits.
FUSE B (Pin 7): This pin monitors the state of a fuse by comparing the voltage at this pin to the voltage at V
B
(Pin␣ 8). The result is output at OUT F (Pin 4). VB (Pin 8):
Supply to be Monitored. The voltage at this pin is compared to the valid supply voltage window and the result is output at OUT B (Pin 6). Supply current is drawn from this pin as well as from VA (Pin 1).
SUPPLY STEP FROM UNDERVOLTAGE
RECOVERY THRESHOLD (V)
4.6
10000
4.8
1921 G10
RESPONSE TIME (µs)
4.5
5.24.7
4.9 5.0 5.1
100
1000
TA = 25°C
SUPPLY STEP FROM OVERVOLTAGE
RECOVERY THRESHOLD (V)
1.5
10000
1.9
1921 G11
RESPONSE TIME (µs)
1.3
2.51.7
2.1 2.3
100
1000
TA = 25°C
Overvoltage Response Time
Page 5
5
LTC1921
1921i
BLOCK DIAGRA
W
72
FUSE A
8
V
B
1
V
A
FUSE B
6
OUT B
1921 BD
5
OUT A
4
OUT F
REFREGULATOR
3
RTN
+ –
+ –
+ –
+ –
+ –
+ –
+ –
+ –
Page 6
6
LTC1921
1921i
Supply Monitoring
The LTC1921 is designed to monitor dual –48V power supplies. This is accomplished with precision window comparators and an accurate bandgap reference, as well as internal level shifting circuitry. The comparators are preset to standard voltage thresholds in order to accu­rately verify the status of each supply. These comparators also include precision hysteresis which allows accurate determination of voltage recovery. Status of the two supplies are indicated by the OUT A and OUT B pins.
The supply window comparison works in a straightfor­ward way (Figure 1). As long as each supply magnitude remains in the valid supply window (38.5V to 70V), the outputs will indicate a valid supply condition by exhibiting a high internal impedance. If a supply magnitude falls below the undervoltage threshold (38.5V), then its respec­tive output will short internally (OUT A to OUT F or OUT B to OUT A) until that supply reaches the undervoltage recovery threshold, which is preset to –43V. At this time, the output will return to a high impedance state. If a supply magnitude rises above the overvoltage threshold (70V), then its respective output will short internally, just as with an undervoltage condition. The output will return to its nominal state when the supply overcomes the overvoltage hysteresis.
APPLICATIO S I FOR ATIO
WUUU
Monitoring for each supply, VA and VB, is independent of the condition of the other supply. The LTC1921 can be powered equally from either VA, VB or both supplies. This allows the LTC1921 to provide correct information at its outputs as long as at least one supply is functional, whether or not the fuses are intact (see Figure 2).
Undervoltage Lockout
If both supplies are active and their magnitude falls below 13V, or if only one supply is active and its magnitude falls below 19V, the LTC1921 will lock all outputs into a fault condition by closing all three output switches. This state will be held until one supply magnitude is driven above 19V or both are driven above 13V.
Fuse Monitoring
In addition to monitoring two supplies, the LTC1921 can monitor the condition of two supply fuses via the FUSE A (Pin 2) and FUSE B (Pin 7) inputs. Fuse monitoring is accomplished by comparing the potential at FUSE A to the potential at supply VA and comparing the potential at FUSE␣ B to the potential at supply VB. If V
FUSEA
is within the
specified voltage window around VA and V
FUSEB
is within the specified voltage window around VB, the OUT F pin will indicate that the fuses are intact by exhibiting a high
0
0
V
SUPPLY
R3
–38.5
–43 –48
–68.7
–70
1921 F01
TIME
NOMINAL
VOLTAGE
UNDERVOLTAGE
RECOVERY
OVERVOLTAGE
FAULT
OVERVOLTAGE RECOVERY
UNDERVOLTAGE
FAULT
SUPPLY VOLTAGE (V)
I
OUT
(A)
Figure 1. Supply Comparison
Page 7
7
LTC1921
1921i
internal impedance to the return (RTN) pin. The applica­tion must be designed so that an open fuse condition will force the fuse input (FUSE A or FUSE B) to be outside the specified window around the supply pins, such as with a weak pull-up resistor to RTN, so that the LTC1921 can properly indicate a fault at OUT F. If supply diodes that exhibit high reverse leakage, such as Schottky diodes, are used, then the values of the pull-up resistors must be reduced accordingly.
The FUSE A and FUSE B pins may also be used in conjunction with VA and VB for simple window compari­son, provided that one of the circuit nodes to be compared can provide the small amount of supply current required to bias the IC. The LTC1921 is ideally suited for comparison functions in a circuit where only high supply voltages are available.
Output Pins
The output pins in the LTC1921 are designed to shunt external optocoupler diodes or LEDs during a supply or fuse fault condition. Up to three diodes may be used in
series, one for each output. In this configuration (Figure␣ 2), a diode connected between OUT F and RTN will indicate the condition of both fuses. A diode connected between OUT A and OUT F will indicate the condition of supply A (VA) and a diode connected between OUT B and OUT A will indicate the condition of supply B (VB). A resistor connected from OUT B to the negative supply is required to bias the diodes. The LTC1921 is designed to allow the current from this resistor to flow through the diodes during normal supply conditions and intact fuses, and will shunt this current away from the proper diodes during a fault condition. These diodes will further clamp the output pin potentials to RTN in order to keep the outputs within rated voltages. If LEDs are used instead of optocouplers, they should be green since they will be lit when the supplies are within the proper voltage range.
The LTC1921 may be connected in such a way as to OR various outputs to allow the use of fewer optocouplers or LEDs (Figures 3a and 3b). One and two diode circuits are shown.
APPLICATIO S I FOR ATIO
WUUU
MOC207
MOC207
MOC207
FUSE STATUS
SUPPLY A STATUS
1921 F02
5V
47k
5V
47k
5V
47k
R3 47k 1/4W
SUPPLY B STATUS
OK: WITHIN SPECIFICATION OV: OVERVOLTAGE UV: UNDERVOLTAGE
–48V OUT
= LOGIC COMMON
0: LED/PHOTODIODE ON 1: LED/PHOTODIODE OFF *IF BOTH FUSES (F1 AND F2) ARE OPEN, ALL STATUS OUTPUTS WILL BE HIGH SINCE R3 WILL NOT BE POWERED
OUT F
–48V
RETURN
V
A
3
4
57
2
8
1
6
V
B
FUSE A
F1
D1
D2
F2
RTN
LTC1921
FUSE B
OUT A
OUT B
SUPPLY A
–48V
SUPPLY B
–48V
R1 100kR2100k
SUPPLY A
STATUS
0 0 1 1
V
B
OK
UV OR OV
OK
UV OR OV
V
A
OK
OK UV OR OV UV OR OV
SUPPLY B
STATUS
0 1 0 1
FUSE STATUS
0 1 1
1*
FUSE B
= V
B
V
B
= V
B
V
B
FUSE A
= V
A
= V
A
V
A
V
A
Figure 2
Page 8
8
LTC1921
1921i
MOCD207
FUSE STATUS
SUPPLY STATUS
1921 F03a
5V
47k
5V
47k
R3 47k 1/4W
–48V OUT
OUT F
–48V
RETURN
V
A
3
4
57
2
8
1
6
V
B
FUSE A
RTN
LTC1921
FUSE B
OUT A
OUT B
SUPPLY A
–48V
SUPPLY B
–48V
R1 100k
F1
F2
R2 100k
OK: WITHIN SPECIFICATION OV: OVERVOLTAGE UV: UNDERVOLTAGE
0: LED/PHOTODIODE ON 1: LED/PHOTODIODE OFF *IF BOTH FUSES (F1 AND F2) ARE OPEN, ALL STATUS OUTPUTS WILL BE HIGH SINCE R3 WILL NOT BE POWERED
SUPPLY STATUS
0 1 1 1
V
B
OK
UV OR OV
OK
UV OR OV
V
A
OK
OK UV OR OV UV OR OV
FUSE STATUS
0 1 1
1*
FUSE B
= V
B
V
B
= V
B
V
B
FUSE A
= V
A
= V
A
V
A
V
A
= LOGIC COMMON
MOC207
STATUS
1921 F03b
5V
OK: WITHIN SPECIFICATION 0: LED/PHOTODIODE ON 1: LED/PHOTODIODE OFF
47k
LOGIC
COMMON
48k 1/2W
–48V OUT
OUT FV
A
3
4
57
2
8
1
6
V
B
FUSE A
RTN
LTC1921
FUSE B
OUT A
OUT B
SUPPLY A
–48V
SUPPLY B
–48V
100k
–48V
RETURN
100k
FUSE B
= V
B
V
A
OK
V
B
OK
STATUS
0 1
FUSE A
= V
A
ALL OTHER CONDITIONS
Figure 3a. Combined Supply Status
Figure 3b. All Outputs Combined
APPLICATIO S I FOR ATIO
WUUU
Page 9
9
LTC1921
1921i
TYPICAL APPLICATIO S
U
+
V
EE
V
DD
C8
100nF
100V
LT4250L
PWRGD
SENSE
C1
470nF
25V
C2
15nF
100V
C3
0.1µF
100V
C4
0.1µF
100V
C6
0.1µF
100V
C5
100µF
100V
C7
100µF
16V
Q1
IRF530
R2
10
5%
R31k5%
R8
100
R4
549k
1%
R5
6.49k
1%
R6
10k
1%
R1
0.02
5%
4
OV
3
2
–48V A
–48V
RTN
–48V B
UV
5
6
8
7
1
GATE
DRAIN
LUCENT
JW050A1-E
V
OUT
+
SENSE
+
TRIM
SENSE
V
OUT
V
IN
+
9
5V
1921 TA02
8
7
6
5
3
1
2
4
ON/OFF
CASE
V
IN
V
OUT
+
V
OUT
V
IN
+
CASE
V
IN
1N4003
+
LUCENT
FLTR100V10
*
* DIODES INC. SMAT70A
MOC207
R7
51k
5%
MOC207
MOC207
MOC207
FUSE
STATUS
SUPPLY A
STATUS
R11
47k
1/4W
SUPPLY B
STATUS
OUT FV
A
3
4
57
2
8
1
6
V
B
FUSE A
3A
3A
RTN
LTC1921
FUSE B
OUT A
OUT B
R10
10k
1W
R9
10k
1W
= DIODES INC. B3100
Complete –48V Telecom Supply Monitor and Hot Swap
TM
Controller
Hot Swap is a trademark of Linear Technology Corporation.
Page 10
10
LTC1921
1921i
TYPICAL APPLICATIO S
U
Single 48V Supply Monitor
MOC207
1921 TA04
LOGIC V
+
LOGIC
COMMON
SUPPLY GOOD
47k
OUT FV
A
3
4
5
7
47k
1/4W
2
8
1
6
V
B
FUSE A
RTN
V
+
LTC1921
FUSE B
OUT A
OUT B
Single –48V Supply Monitor
MOC207
1921 TA06
LOGIC V
+
LOGIC
COMMON
SUPPLY GOOD
47k
OUT FV
A
V
3
4
5
7
47k
1/4W
2
8
1
6
V
B
FUSE A
RTN
LTC1921
FUSE B
OUT A
OUT B
Page 11
11
LTC1921
1921i
U
PACKAGE DESCRIPTIO
MS8 Package
8-Lead Plastic MSOP
(Reference LTC DWG # 05-08-1660)
MSOP (MS8) 1001
0.53 ± 0.015 (.021 ± .006)
SEATING
PLANE
NOTE:
1. DIMENSIONS IN MILLIMETER/(INCH)
2. DRAWING NOT TO SCALE
3. DIMENSION DOES NOT INCLUDE MOLD FLASH, PROTRUSIONS OR GATE BURRS. MOLD FLASH, PROTRUSIONS OR GATE BURRS SHALL NOT EXCEED 0.152mm (.006") PER SIDE
4. DIMENSION DOES NOT INCLUDE INTERLEAD FLASH OR PROTRUSIONS. INTERLEAD FLASH OR PROTRUSIONS SHALL NOT EXCEED 0.152mm (.006") PER SIDE
5. LEAD COPLANARITY (BOTTOM OF LEADS AFTER FORMING) SHALL BE 0.102mm (.004") MAX
0.18
(.077)
0.254
(.010)
1.10
(.043)
MAX
0.22 – 0.38
(.009 – .015)
0.13 ± 0.05
(.005 ± .002)
0.86
(.034)
REF
0.65
(.0256)
BCS
0
° – 6° TYP
DETAIL “A”
DETAIL “A”
GAUGE PLANE
12
3
4
4.88
± 0.1
(.192 ± .004)
8
7
6
5
3.00 ± 0.102 (.118 ± .004)
(NOTE 3)
3.00 ± 0.102
(.118 ± .004)
NOTE 4
0.52
(.206)
REF
5.23
(.206)
MIN
3.2 – 3.45
(.126 – .136)
0.889
± 0.127
(.035 ± .005)
RECOMMENDED SOLDER PAD LAYOUT
0.42 ± 0.04
(.0165 ± .0015)
TYP
0.65
(.0256)
BSC
Page 12
12
LTC1921
1921i
Linear Technology Corporation
1630 McCarthy Blvd., Milpitas, CA 95035-7417
(408) 432-1900 ● FAX: (408) 434-0507
www.linear.com
LINEAR TECHNOLOGY CORPORATION 2002
LT/TP 0502 1.5K • PRINTED IN USA
RELATED PARTS
PART NUMBER DESCRIPTION COMMENTS
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TYPICAL APPLICATIO
U
1921 TA03
R3
5.1k 2W
D5 GREEN
D4 GREEN
D3 GREEN
OUT F
–48V RETURN
V
A
3
4
57
2
8
1
6
–48V OUT
V
B
FUSE A
RTN
LTC1921
FUSE B
OUT A
OUT B
D1
F1
SUPPLY A
–48V
SUPPLY B
–48V
F2
D2
R2 100k
R1 100k
Voltage and Fuse Monitor with LED Outputs
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