SLF6045T-3R3N2R8-3PF Allicdata Electronics
Allicdata Part #:

445-4570-2-ND

Manufacturer Part#:

SLF6045T-3R3N2R8-3PF

Price: $ 0.00
Product Category:

Inductors, Coils, Chokes

Manufacturer: TDK Corporation
Short Description: FIXED IND 3.3UH 2.8A 21.5 MOHM
More Detail: 3.3µH Shielded Wirewound Inductor 3.4A 27.95 mOhm ...
DataSheet: SLF6045T-3R3N2R8-3PF datasheetSLF6045T-3R3N2R8-3PF Datasheet/PDF
Quantity: 2000
Stock 2000Can Ship Immediately
Specifications
Series: SLF
Packaging: Tape & Reel (TR) 
Part Status: Active
Type: Wirewound
Material - Core: Ferrite
Inductance: 3.3µH
Tolerance: ±30%
Current Rating: 3.4A
Current - Saturation: 2.8A
Shielding: Shielded
DC Resistance (DCR): 27.95 mOhm Max
Q @ Freq: --
Frequency - Self Resonant: --
Ratings: --
Operating Temperature: -40°C ~ 105°C
Inductance Frequency - Test: 100kHz
Mounting Type: Surface Mount
Package / Case: Nonstandard
Supplier Device Package: --
Size / Dimension: 0.236" L x 0.236" W (6.00mm x 6.00mm)
Height - Seated (Max): 0.189" (4.80mm)
Description

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Fixed inductors are important components in the field of electrical engineering, and the SLF6045T-3R3N2R8-3PF is no exception. It is a popular inductor used for a variety of applications. In this article, we will discuss the application fields and working principle of the SLF6045T-3R3N2R8-3PF.

The SLF6045T-3R3N2R8-3PF is used in applications where high-frequency pulsed currents are required, such as in switching power supplies, DC-DC converters, and regulated power supplies. It is also used in other power processing systems including charger circuitry for rechargeable batteries, portable electronic devices, and in general computer applications.

The inductor exhibits a variety of properties which make it ideal for use in these applications. It has a high self-resonant frequency of up to 60 MHz, and can handle maximum current ratings up to 3.3A, making it suitable for high-speed switching scenarios. The 3.3nH inductance ensures that it is able to provide high-efficiency power conversion over a wide frequency range. Additionally, the inductance remains low and stable at high frequencies, allowing it to handle the high transient currents associated with switching. The part also has a 3.3Ω series resistance which enables it to reduce inrush currents in applications where this is a concern. The pinning is also user-friendly, making it easier to insert and remove the part from the board.

In addition to its applications in power conversion, the SLF6045T-3R3N2R8-3PF also has a number of uses in other digital and analog circuitry. The inductor is useful for suppressing EMI/RFI and improving signal integrity in RF applications, and is also often used as part of LC filters in power rails and signal lines, as well as in switched capacitor circuits such as charge pumps. The part is also used in general audio circuits, and is often used in balanced/unbalanced signal conditioning applications.

Now, let’s take a look at the working principle of the SLF6045T-3R3N2R8-3PF. The part works by creating a magnetic field when a DC or AC signal is passed through it. This is done through Faraday’s Law, which states that a changing magnetic field induces an electric field. When an electrical current is sent through the inductor, the changing magnetic field creates an electromotive force (EMF) in the coil which opposes the current, generating a back EMF. This opposes the current, and the result is a drop in voltage along the coil. The amount of voltage drop is directly proportional to the amount of current flowing through the inductor, and the amount of drop is determined by the inductance of the inductor.

In conclusion, the SLF6045T-3R3N2R8-3PF is an important component in the field of electrical engineering. It is used in a variety of applications such as switching power supplies, DC-DC converters, and regulated power supplies, and can also be used for suppressing EMI/RFI and improving signal integrity in RF applications. Finally, the working principle of the inductor is based on Faraday’s Law, which states that a changing magnetic field induces an electric field.

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

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