EnergetiQ Series, Varistors, MOVs

Results:
18
Manufacturer
Series
Energy
Varistor Voltage (Min)
Capacitance @ Frequency
Varistor Voltage (Typ)
Varistor Voltage (Max)
Maximum AC Volts
Maximum DC Volts
Operating Temperature
Current - Surge
Package / Case
Grade
Mounting Type
Qualification
Features
Number of Circuits
Results remaining18
Applied Filters:
EnergetiQ
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ImageProduct DetailPriceAvailabilityECAD ModelFeaturesMounting TypePackage / CaseNumber of CircuitsGradeSeriesMaximum AC VoltsMaximum DC VoltsVaristor Voltage (Min)Varistor Voltage (Typ)Varistor Voltage (Max)Current - SurgeEnergyCapacitance @ FrequencyOperating TemperatureQualification
B72214Q0151K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
150 V
200 V
216 V
240 V
264 V
8 kA
85J
1100 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0551K101
VARISTOR 910V 6KA DISC 14MM
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Disc 14mm
1
-
EnergetiQ
550 V
745 V
819 V
910 V
1.001 kV
6 kA
260J
245 pF @ 1 kHz
-40°C ~ 85°C (TA)
-
B72214Q0231K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
230 V
300 V
324 V
360 V
396 V
8 kA
130J
700 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0461K101
VARISTOR 750V 8KA DISC 14MM
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Disc 14mm
1
-
EnergetiQ
460 V
615 V
675 V
750 V
825 V
8 kA
270J
330 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0251K101
1+
$0.2535
5+
$0.2394
10+
$0.2254
Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
250 V
320 V
351 V
390 V
429 V
8 kA
140J
650 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0271K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
275 V
350 V
387 V
430 V
473 V
8 kA
150J
500 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0131K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
130 V
170 V
184.5 V
205 V
225.5 V
8 kA
75J
1300 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0141K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
140 V
180 V
198 V
220 V
242 V
8 kA
80J
1200 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0211K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
210 V
270 V
297 V
330 V
363 V
8 kA
115J
750 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0381K101
VARISTOR 620V 8KA DISC 14MM
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Disc 14mm
1
-
EnergetiQ
385 V
505 V
558 V
620 V
682 V
8 kA
225J
400 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0171K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
175 V
225 V
243 V
270 V
297 V
8 kA
100J
1000 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0511K101
VARISTOR 820V 6KA DISC 14MM
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Disc 14mm
1
-
EnergetiQ
510 V
670 V
738 V
820 V
902 V
6 kA
240J
260 pF @ 1 kHz
-40°C ~ 85°C (TA)
-
B72214Q0621K101
VARISTOR 1KV 6KA DISC 14MM
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Disc 14mm
1
-
EnergetiQ
625 V
825 V
900 V
1 kV
1.1 kV
6 kA
290J
220 pF @ 1 kHz
-40°C ~ 85°C (TA)
-
B72214Q0681K101
VARISTOR 1.1KV 6KA DISC 14MM
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Disc 14mm
1
-
EnergetiQ
680 V
895 V
990 V
1.1 kV
1.21 kV
6 kA
320J
200 pF @ 1 kHz
-40°C ~ 85°C (TA)
-
B72214Q0301K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
300 V
385 V
423 V
470 V
517 V
8 kA
175J
550 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72214Q0421K101
VARISTOR 680V 8KA DISC 14MM
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Disc 14mm
1
-
EnergetiQ
420 V
560 V
612 V
680 V
748 V
8 kA
245J
360 pF @ 1 kHz
-45°C ~ 105°C (TA)
-
B72220Q321K502
20MM, 320VAC, 10%, ENERGETIQ
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
320 V
420 V
459 V
510 V
561 V
15 kA
255J
950 pF @ 1 kHz
-40°C ~ 105°C (TA)
-
B72214Q0321K101
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Quantity
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PCB Symbol, Footprint & 3D Model
-
Through Hole
Radial
1
-
EnergetiQ
320 V
420 V
459 V
510 V
561 V
8 kA
185J
500 pF @ 1 kHz
-45°C ~ 105°C (TA)
-

About  Varistors, MOVs

Transient voltage suppression (TVS) devices based on Metal Oxide Varistor (MOV) technology are commonly employed to safeguard electrical and electronic devices from excessive voltage risks. These risks could arise from sources like lightning-induced transients, static electricity, or similar hazards. MOV-based TVS devices possess a relatively high parasitic capacitance, which makes them suitable for use in low-frequency circuits, particularly AC utility power inputs. In these applications, they excel due to their ability to dissipate high amounts of power and exhibit clamping behavior. The high power dissipation capability of MOV-based TVS devices allows them to absorb and divert excess energy away from protected devices during transient events. This prevents the voltage from surpassing safe levels and potentially damaging the equipment. The clamping behavior of these devices ensures that even after a protection event, they continue to allow normal operation of the protected devices without the need for a reset process, as is typically required with crowbar protection mechanisms. MOV-based TVS devices are designed to respond rapidly to transient voltage surges, effectively limiting the voltage level and protecting downstream components. They achieve this by transitioning from a high-resistance state to a low-resistance state when subjected to excessive voltage. This characteristic enables the MOV-based TVS device to shunt the excess current away from sensitive components, diverting it to ground or other paths. These devices are commonly used in various applications, including power distribution systems, telecommunications networks, industrial equipment, and consumer electronics. Their ability to handle high surge currents and provide continuous protection without requiring manual intervention makes them a reliable choice for safeguarding electrical and electronic devices against transient voltage hazards. In summary, TVS devices based on Metal Oxide Varistor (MOV) technology offer effective protection against transient voltage surges. They excel in low-frequency circuits, such as AC utility power inputs, due to their high power dissipation capability and clamping behavior. MOV-based TVS devices rapidly respond to transient events, diverting excess energy away from protected devices and preventing voltage damage. Their reliable performance makes them widely used in various applications to ensure the safety and longevity of electrical and electronic equipment.