ERZ-E11B391CS Allicdata Electronics

ERZ-E11B391CS Circuit Protection

Allicdata Part #:

ERZ-E11B391CS-ND

Manufacturer Part#:

ERZ-E11B391CS

Price: $ 0.09
Product Category:

Circuit Protection

Manufacturer: Panasonic Electronic Components
Short Description: VARISTOR 390V 6KA DISC 13MM
More Detail: 390V 6kA Varistor 1 Circuit Through Hole Disc 13mm
DataSheet: ERZ-E11B391CS datasheetERZ-E11B391CS Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
2000 +: $ 0.08462
Stock 1000Can Ship Immediately
$ 0.09
Specifications
Varistor Voltage (Typ): 390V
Package / Case: Disc 13mm
Mounting Type: Through Hole
Operating Temperature: -40°C ~ 85°C (TA)
Capacitance @ Frequency: 450pF @ 1kHz
Number of Circuits: 1
Energy: 140J
Current - Surge: 6kA
Varistor Voltage (Max): 429V
Series: ZNR®
Varistor Voltage (Min): 351V
Maximum DC Volts: 320V
Maximum AC Volts: 250V
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Bulk 
Description

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One of the most versatile and innovative technologies in the suppression electronics industry is the TVS - Varistor, MOV, with ERZ-E11B391CS application field and working principle. Varistor technology is used in a variety of devices, ranging from automotive electronics to industrial control and audio/video components. This wide range of uses makes the technology very useful in a variety of protection applications.

The ERZ-E11B391CS is a varistor that is able to protect against a variety of transient voltage peaks in electronic equipment. It can provide solid state protection to bridge between transients and junctions of components. It can provide protection against overvoltage pulses caused due to inductive loads, surges, and short circuits. It can also act as a shunting device for the dissipation of away unwanted transient energy.

Varistors work by providing a fast response to transient voltage spikes. When an overvoltage condition occurs, the varistor conductivity increases by several orders of magnitude. This increased conductivity allows the unwanted energy to be diverted away from the electrical circuitry. As the current flow increases, the varistor resistance decreases, allowing more current to flow through the circuit and dissipating the energy away. The varistor also transfers energy via its capacitor-like capacitance. This prevents the energy from over-stressing the components of the circuit.

The ERZ-E11B391CS is a metal oxide varistor (MOV). These varistors are made by mixing zinc oxide powder with a binder material. When exposed to shocks and vibrations, the compound becomes compressed and exhibits high conductivity. The MOV also provides protection against the thermal runaway of Internal Fuseable Element (IFEs), which refer to power semiconductor elements that are prone to failure under high temperature environments.

The ERZ-E11B391CS has an operating voltage of 11 Volts and a withstand voltage of 391 Volts. It has a wide range of operating temperature range from -40°C to +85°C, making it suitable for a wide variety of industrial and automotive electronic applications. It also offers excellent response time to voltage spikes and self-resets after the voltage is reduced to normal levels.

The ERZ-E11B391CS also has a low capacitance-to-leakage ratio and wide dynamic range of protective capabilities, making it suitable for use in high-speed semiconductor applications. The aspect ratio of this varistor is 1:10, which ensures excellent matches with other assemblies and reduces overall component cost. It can be integrated in series with other components to improve the integrity of a circuit.

In conclusion, the ERZ-E11B391CS varistor is one of the most versatile and innovative technologies available in the suppression electronics industry. With its wide range of operating temperature, excellent response time, and low capacitance to leakage ratio, it has become a popular choice for automotive and industrial protection applications. It can also be integrated in series with other components to improve the overall quality and performance of the circuit.

The specific data is subject to PDF, and the above content is for reference

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