DKLP-0331-0350 Allicdata Electronics
Allicdata Part #:

486-5716-ND

Manufacturer Part#:

DKLP-0331-0350

Price: $ 38.86
Product Category:

Filters

Manufacturer: Schurter Inc.
Short Description: COMMON MODE CHOKE 3A 3LN TH
More Detail: 3 Line Common Mode Choke Through Hole 3A DCR 260 ...
DataSheet: DKLP-0331-0350 datasheetDKLP-0331-0350 Datasheet/PDF
Quantity: 1000
1 +: $ 35.32410
10 +: $ 31.79420
20 +: $ 28.26120
50 +: $ 26.14170
100 +: $ 23.84550
200 +: $ 23.49220
Stock 1000Can Ship Immediately
$ 38.86
Specifications
Series: DKLP-3
Packaging: Bulk 
Part Status: Active
Filter Type: --
Number of Lines: 3
Current Rating (Max): 3A
DC Resistance (DCR) (Max): 260 mOhm
Voltage Rating - DC: 760V
Voltage Rating - AC: 540V
Operating Temperature: -25°C ~ 100°C
Ratings: --
Approvals: UR
Features: --
Mounting Type: Through Hole
Size / Dimension: 3.150" L x 3.150" W (80.00mm x 80.00mm)
Package / Case: Nonstandard
Description

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Common Mode Chokes (CMCs) are passive filter components commonly used in a wide variety of applications. DKLP-0331-0350 CMCs provide a solution to many noise and EMI related problems. These parts are designed to work in two modes, common mode and differential mode. They both help prevent the spread of interference along and throughout multiple conductors.

Applications

The most common application for DKLP-0331-0350 CMCs is regulating the flow of electro-magnetic interference between different parts of a power system or from EMI sources within the system to other parts of it. Due to their small size, they can be used in noise suppression systems in both AC and DC low voltage circuits. For instance, they are often used in automotive and industrial power distribution systems to reduce EMI generated by the internal power distribution components.

CMCs are also used in power-line communications for reducing the interference between two or more different communication channels. In addition, they can be applied to high frequency radio antenna systems, where they help reduce the external magnetic interference from other sources. Moreover, DKLP-0331-0350 CMCs can be used for controlling high frequency interference between various signals that run alongside power wires in the power generation systems. This helps keep the transmission of power disturbance-free.

Working Principle

DKLP-0331-0350 CMCs operate by combining two different techniques to achieve their common mode functions: Inductive Resisting and Capacitive Decoupling. In Inductive-Resisting mode, the CMC takes a series of energy consuming inductor coils that act as a type of choke. This system works by introducing extra resistance to unwanted energy that is fed back into the power supply through the inductors.

In Capacitive Decoupling mode, the CMC works by using capacitors that create an effective barrier between two conductors. The capacitors act as a low impedance barrier that reduces the flow of energy. This reduces the amount of interference that is transferred back and forth between multiple electrical components.

The DKLP-0331-0350 CMC is designed to operate in both of these modes, commonly known as common mode and differential mode. In common mode, the CMC filters out any extraneous noise or energy that is picked up through the two conductors. This prevents any type of interference from affecting the performance of the power system. In differential mode, the CMC reduces the amount of transferral of energy between the two conductors, thus reducing the amount of energy that is needed to carry out the desired function.

Conclusion

DKLP-0331-0350 CMCs are a reliable and effective solution to many noise and EMI related problems. They provide excellent performance in AC and DC low-voltage circuits and are ideal for power distribution systems, power-line communications, radio antenna systems, and power generation systems. With their two-mode operation, DKLP-0331-0350 CMCs can reduce extraneous noise and energy transferral, resulting in improved system performance. With their small size and high efficiency, these devices are a great way to ensure efficient operation in any power system.

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

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