LBC2518T150KV Allicdata Electronics
Allicdata Part #:

LBC2518T150KV-ND

Manufacturer Part#:

LBC2518T150KV

Price: $ 0.08
Product Category:

Inductors, Coils, Chokes

Manufacturer: Taiyo Yuden
Short Description: FIXED IND 15UH 285MA 845 MOHM
More Detail: 15µH Unshielded Wirewound Inductor 285mA 845 mOhm ...
DataSheet: LBC2518T150KV datasheetLBC2518T150KV Datasheet/PDF
Quantity: 1000
2000 +: $ 0.07859
Stock 1000Can Ship Immediately
$ 0.08
Specifications
Series: LB, C Type
Packaging: Tape & Reel (TR) 
Part Status: Active
Type: Wirewound
Material - Core: --
Inductance: 15µH
Tolerance: ±10%
Current Rating: 285mA
Current - Saturation: --
Shielding: Unshielded
DC Resistance (DCR): 845 mOhm Max
Q @ Freq: --
Frequency - Self Resonant: 23MHz
Ratings: --
Operating Temperature: -40°C ~ 105°C
Inductance Frequency - Test: 2.52MHz
Features: --
Mounting Type: Surface Mount
Package / Case: 1007 (2518 Metric)
Supplier Device Package: 1007 (2518 Metric)
Size / Dimension: 0.098" L x 0.071" W (2.50mm x 1.80mm)
Height - Seated (Max): 0.079" (2.00mm)
Description

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Fixed inductors are electronic components used to store energy in an electric field as electrostatic induction. They are often used as part of power supply devices, such as power supplies and capacitors, to store, conduct, and control energy. LBC2518T150KV is a type of fixed inductor, and it has a wide range of application fields and working principles.

The LBC2518T150KV fixed inductor is a cylindrical component with rounded ends. It is designed to be used in RF circuits, and it has an inductance of 150nH. This inductor has a frequency ranging from 0kHz to 15kHz. It has a rated temperature of 25℃ and an operating temperature range of -55℃ to +110℃. The inductance of an LBC2518T150KV is purposely designed to be minimized in the audio frequency range.

One of the most common application fields for the LBC2518T150KV is RF Communication. It can be used in Radio Frequency (RF) transmitters and receivers. The inductor helps maintain the correct signal quality in these circuits, by minimizing the RF signal loss and ringing. Additionally, no added capacitance is required for efficient energy storage for RF applications.

The LBC2518T150KV inductor can also be used in switching power supplies. The inductor helps regulate the current flow in the circuit, and can be used to reduce the size and number of components in the power supply. Additionally, this inductor can also be used as part of a resonance circuit, to reduce the voltage drop in the circuit and reduce the response time of the system.

The working principle of the LBC2518T150KV is based on Faraday’s Law of induction. When an alternating current is applied to the inductor, the current produces an oscillating magnetic field which induces an EMF in the inductor winding. This EMF produces a current in the direction opposite to the current flow, and this current is known as the ‘back EMF’ or ‘induced current’. This current opposes the flow of current, which results in a net inductance.

The magnetic field of the inductor is similar to the field of a permanent magnet, and the strength of the magnetic field depends on the inductance of the inductor. The LBC2518T150KV has a rated inductance of 150nH, which means that when an AC current of 1kHz is applied to the inductor, the magnetic field strength is 150nH. The LBC2518T150KV also has a temperature coefficient of -6 to +4uH per degree, which means that the inductance will change with temperature.

In conclusion, the LBC2518T150KV fixed inductor is a cylindrical component with rounded ends, and it is designed to be used in RF circuits. It has a frequency range of 0kHz to 15kHz and a temperature range of -55℃ to +110℃. Additionally, it has an inductance of 150nH and a temperature coefficient of -6 to +4uH per degree. It is a widely used component for RF communication applications, switching power supplies, and resonance circuits. The working principle of the LBC2518T150KV is based on Faraday’s Law of induction, and it produces an induced current which opposes the flow of current and produces a net inductance.

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

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