HLC021R2BTTR Allicdata Electronics

HLC021R2BTTR Inductors, Coils, Chokes

Allicdata Part #:

478-7188-2-ND

Manufacturer Part#:

HLC021R2BTTR

Price: $ 0.10
Product Category:

Inductors, Coils, Chokes

Manufacturer: AVX Corporation
Short Description: FIXED IND 1.2NH 751MA 110 MOHM
More Detail: 1.2nH Unshielded Multilayer Inductor 751mA 110 mOh...
DataSheet: HLC021R2BTTR datasheetHLC021R2BTTR Datasheet/PDF
Quantity: 1000
5000 +: $ 0.08568
Stock 1000Can Ship Immediately
$ 0.1
Specifications
DC Resistance (DCR): 110 mOhm Max
Height - Seated (Max): 0.018" (0.45mm)
Size / Dimension: 0.039" L x 0.023" W (1.00mm x 0.58mm)
Supplier Device Package: 0402 (1005 Metric)
Package / Case: 0402 (1005 Metric)
Mounting Type: Surface Mount
Inductance Frequency - Test: 450MHz
Operating Temperature: -55°C ~ 125°C
Ratings: --
Frequency - Self Resonant: 20GHz
Q @ Freq: 24 @ 450MHz
Series: MLO™
Shielding: Unshielded
Current - Saturation: --
Current Rating: 751mA
Tolerance: ±0.1nH
Inductance: 1.2nH
Material - Core: Non-Magnetic
Type: Multilayer
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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Fixed Inductors

Fixed inductors, also known as inductors, rely on the basic principle of Faraday\'s law of electromagnetic induction to achieve the conversion and storage of electric and magnetic energy. The HLC021R2BTTR is an inductor designed to do this. Let us examine the application field of this particular inductor and the working principle behind it.

Application Field

The HLC021R2BTTR inductor has many applications in the electronics industry. It can be used for many power supply systems, DC classifiers, DC filters, power amplifiers, and other related electronic circuits. It is designed with a wide range of inductance values (from 0.010 μH to 1.2 mH), thus making it very versatile and suitable for a range of devices and operations.

It also offers excellent high-frequency characteristics, and this makes it suitable for working with high-frequency RF signals. Additionally, given its wide array of possible inductance values, the HLC021R2BTTR can be used in almost any type of load based on the current needs. Its form factor also makes it suitable for tight environments such as circuit boards.

Working Principle

The HLC021R2BTTR inductor works based on the principle of electromagnetic induction. This means that when current flows through the inductor, it creates an electric field around the inductor, while a magnetic field passes through the inductor. This causes an electromotive force (EMF) to be created in the surroundings.

This EMF is then used by the circuit to store energy for future use. The inductance of the inductor is determined by its physical dimensions, and this allows it to store electrical energy more efficiently. The core material of the inductor also affects its inductance value, which is why the HLC021R2BTTR is designed with special core materials to maximize the inductance.

When the inductor is first connected to a voltage source, the EMF that is created first has to be great enough to counter the power source voltage that is applied. This is known as the initial no-load voltage. After some time, the EMF that is created will be low enough and in line with the power source voltage, and this is known as the steady no-load voltage. This phenomenon is governed by Faraday’s law.

The HLC021R2BTTR inductor is also designed to handle voltage spikes efficiently, thus making it very important in many electronic components that need to handle high voltage with minimum interference. This also makes it very suitable for demanding applications such as power supply systems.

Conclusion

The HLC021R2BTTR inductor is a versatile and reliable electronic component that can be used for a range of applications. It works based on the principle of electromagnetic induction, and is designed with a range of inductance values that make it suitable for a variety of needs. Additionally, it offers excellent high-frequency characteristics, making it suitable for working with high-frequency RF signals. Finally, it is designed with special core materials to maximize its inductance, reducing the amount of voltage spikes it needs to handle.

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

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