FA28B2480 Allicdata Electronics
Allicdata Part #:

FA28B2480-ND

Manufacturer Part#:

FA28B2480

Price: $ 20.60
Product Category:

Filters

Manufacturer: Leader Tech Inc.
Short Description: FERRITE 250OHM HINGED 52X1.50MM
More Detail: Hinged (Snap On) Free Hanging Ferrite Core 250 Ohm...
DataSheet: FA28B2480 datasheetFA28B2480 Datasheet/PDF
Quantity: 1000
20 +: $ 18.54180
Stock 1000Can Ship Immediately
$ 20.6
Specifications
Series: --
Part Status: Active
Type: Flat
Design: Hinged (Snap On)
Impedance @ Frequency: 250 Ohm @ 100MHz
Material: 28
Inner Dimension: 2.047" W x 0.059" H (52.00mm x 1.50mm)
Outer Dimension: 3.181" W x 0.799" H (80.80mm x 20.30mm)
Ratings: --
Mounting Type: Free Hanging
Length: 1.126" (28.60mm)
Description

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Ferrite Cores – Cables and Wiring

Ferrite cores are a type of magnetic material typically used for wire and cable winding purposes. The purpose of this technology is to protect wiring from the disruptive effects of electromagnetic interference (EMI). FA28B2480 is a type of ferrite core which is widely used in electronics and communications industry.

This ferrite core covers the application field of video, audio, communication devices, and other electrical/electronic products. It is divided into two parts, one is EMI interference filter section and the other is pulse transformer section. Both of these parts are necessary and essential for the performance of the ferrite core.

The primary application of FA28B2480 ferrite core is as an EMI interference filter. This type of filter will typically be used to minimize the spurious emissions from electronic devices, such as those emitted from radio frequency. The EMI interference filter will act to ensure that any EMI passing through the cables will be filtered out, thus minimizing the amount of data disruption that could occur should EMI enter the connection. In addition to this, the filter can also act to reduce the size of the cable, which is useful for certain applications. The EMI interference filter comprises a series of components, including a capacitor, an inductor, and an inductive filter.

The other application of FA28B2480 ferrite core is as a pulse transformer. This type of transformer is a key component in the transmission and receipt of digital signals. The signal passes through the core, and this energy is then transferred to the output devices. This is done through a series of windings, which effectively modify the signal such that it is suitable for the end devices. This type of transformer is usually used in digital signal processors, as well as in various types of modems and high-speed communication devices.

The working principle of these ferrite cores is based around the concept of magnetic flux. This flux is responsible for the transfer of the energy between the two windings, which are in close proximity. When a current is passed through the core, the electro-magnetic field of the core interacts with the windings which it encloses. This allows for the energy to be transmitted between the windings and the energy is then modified according to the design of the core. The ferrite cores tend to operate best when the flux is kept to a minimum, and the most efficient ferrite cores will be those which are designed with a very small core diameter.

The ability to regulate the amount of flux is also an important factor when using a ferrite core, as it can be used to increase the efficiency of a given set up. The flux is usually reduced by adding a resistive element in the core to reduce the amount of current which is passing through. This can also be used to reduce the amount of energy which is lost when a signal is being transferred between two devices.

In conclusion, FA28B2480 is a type of ferrite core which is used for EMI interference control and pulse transformer applications. It is comprised of a series of components which allow for the efficient conversion of magnetic flux, and it is able to control the size of the core, which is beneficial for certain applications. The working principle is based around the concept of magnetic flux, which is responsible for the transfer of energy between the two windings.

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

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