9401760000 Allicdata Electronics
Allicdata Part #:

9401760000-ND

Manufacturer Part#:

9401760000

Price: $ 0.00
Product Category:

Circuit Protection

Manufacturer: Weidmuller
Short Description: VARISTOR CHASSIS
More Detail: Varistor 2 Circuit Chassis Mount Module
DataSheet: 9401760000 datasheet9401760000 Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Series: --
Packaging: Bulk 
Lead Free Status / RoHS Status: --
Part Status: Obsolete
Energy: --
Number of Circuits: 2
Operating Temperature: --
Mounting Type: Chassis Mount
Package / Case: Module
Description

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TVS - Varistors, MOVs, have many uses in the applications field. This article will discuss the working principle and applications of 9401760000 Varistor, MOVs.

Varistors are small, non-linear voltage-dependent resistors that can be used for a variety of applications. They are made up of a positive and a negative layer of a semiconductor material, most commonly zinc oxide. They are also typically constructed with silver-palladium electrodes and a ceramic binding agent. This combination creates a material with a very low temperature coefficient and a high-voltage coefficient. The material is typically rated at anywhere from 250 volts to as high as 10,000 volts.

Varistors are generally used to protect electrical circuits from damaging voltage surge events. They do this by diverting excessive voltages to ground, thus preventing the voltage from reaching the electrical components on the circuit. The typical protection provided by a VARISTOR is usually between 80 and 90 volts. Varistors are often used in a variety of applications such as computers, industrial equipment, automotive applications, and many other electrical applications.

MOVs, or metal oxide varistors, are similar to Varistors in that they are a voltage-dependent resistor used for protection in electronics. The main difference between Varistors and MOVs is that MOVs are constructed with a P-type core and a N-type electrode. The connectors and contacts that make up a MOV act like semiconductor material, allowing current to pass freely while still providing protection from voltage spikes. The typical voltage protection level of an MOV is between 130 and 160 volts.

MOVs are generally used in the same way as Varistors, that is, to provide protection from voltage spikes and surges. They are commonly used in electrical appliances, networking applications, and industrial equipment. MOVs are also commonly used in automotive applications as they are able to withstand the higher voltage levels that occur in automobiles due to higher starting currents and smaller components.

The working principle of both Varistors and MOVs is essentially the same. Voltage is applied to the device and as the voltage level increases, the resistance across the device will decrease. As the voltage level reaches certain thresholds, the device may short circuit, or it will begin to dissipate the energy of the surge, thus protecting the components on the circuit.

The 9401760000 Varistor, MOV is a general purpose, low-cost varistor commonly used in a variety of applications. It has a clamping voltage of 80-110 volts and is tested to withstand voltages of up to 175 volts. The device can be used for protecting circuits from voltage surges in applications such as computers, industrial equipment, automotive applications, and consumer electronics.

In conclusion, the 9401760000 Varistor, MOV is a versatile device used for many different applications. It is constructed with a combination of a zinc oxide semiconductor material, silver-palladium electrodes, and a ceramic binding agent. It is usually rated at anywhere from 250 volts to as high as 10,000 volts and is commonly used in computers, industrial equipment, consumer electronics, and automotive applications. It typically offers voltage protection of between 80-110 volts and 175 volts. The working principle of the device is that as the voltage applied across it increases, the resistance of the device decreases, allowing it to dissipate excessive energy.

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

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