ER1025-26JP Allicdata Electronics
Allicdata Part #:

ER1025-26JP-ND

Manufacturer Part#:

ER1025-26JP

Price: $ 2.81
Product Category:

Inductors, Coils, Chokes

Manufacturer: API Delevan Inc.
Short Description: FIXED IND 1.8UH 455MA 300 MOHM
More Detail: 1.8µH Unshielded Molded Inductor 455mA 300 mOhm Ma...
DataSheet: ER1025-26JP datasheetER1025-26JP Datasheet/PDF
Quantity: 1000
3500 +: $ 2.53310
Stock 1000Can Ship Immediately
$ 2.81
Specifications
Series: ER1025
Packaging: Tape & Reel (TR) 
Part Status: Active
Type: Molded
Material - Core: Iron
Inductance: 1.8µH
Tolerance: ±5%
Current Rating: 455mA
Current - Saturation: --
Shielding: Unshielded
DC Resistance (DCR): 300 mOhm Max
Q @ Freq: 30 @ 7.9MHz
Frequency - Self Resonant: 125MHz
Ratings: --
Operating Temperature: -55°C ~ 105°C
Inductance Frequency - Test: 7.9MHz
Mounting Type: Through Hole
Package / Case: Axial
Supplier Device Package: --
Size / Dimension: 0.095" Dia x 0.250" L (2.41mm x 6.35mm)
Height - Seated (Max): --
Description

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Fixed inductors are electrical components for circuits in which the production of alternating current (AC) and direct current (DC) signals is necessary. This type of inductor is characterized by its steady inductance value, unaffected by applied currents. ER1025-26JP is one such type of fixed inductor, which finds various applications in industrial and consumer electronics, as well as in energy and telecommunications amongst other fields. This paper will outline the main application fields for ER1025-26JP, as well as discuss its working principle.

The ER1025-26JP is a general-purpose inductor designed for use in high frequency circuit applications in energy, telecommunications, and consumer electronics applications. It features a values range of 0.001 μH to 1.0 μH and has an excellent Q-Factor of 110 at 850MHz. Its inductance characteristics are stable, regardless of applied temperature, operating voltage, or current. This inductor is also highly resistant to vibration and shock. In terms of its physical characteristics, it features a D-shaped ferrite core with a high-current self-supporting coil.

The ER1025-26JP finds applications in a variety of fields due to its frequency range and Q-Factor characteristics. Its Q-Factor enables it to effectively reduce EMI/RFI interference in consumer electronics, notably through the elimination of various electromagnetic noises, such as those from AC adapter power cords and various connectors. In terms of telecommunications, it finds application in antenna circuits and other RF amplifiers, as well as wireless transmission systems, allowing for high-speed data transmission.

In energy applications, ER1025-26JP is often used for controlling energy in battery-powered applications, removing the need for bulky transformers to do the job. It also finds application in power supplies, providing resistance against overcurrent and overvoltage conditions, as well as resonant circuits for controlling switching power supplies. Furthermore, the high endurance of ER1025-26JP allows it to be used in various automotive applications, such as TV sets, audio amplifiers, and other electronics.

In terms of its working principle, ER1025-26JP is a type of air-core inductor, meaning that its inductance characteristics are not dependent on magnetic materials. It works by storing energy in its inductive coils formed by the material’s electrical field. This stored energy is then released through the circulation of currents in the inductor, generating a magnetic field. This magnetic field induces a voltage in the inductor, which in turn resists any changes in the current that is flowing through it. This resistance is what is referred to as “inductance”.

In conclusion, ER1025-26JP is a type of fixed inductor with a range of applications, particularly in energy, telecommunications, and consumer electronics. Its advantages include a wide range of frequencies and Q-Factor ratings, as well as excellent vibration and shock resistance. Its working principle is based on the storage and release of energy through inductive coils in order to create a magnetic field, which in turn induces a voltage in the inductor.

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

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