5800-152-TR-RC Allicdata Electronics
Allicdata Part #:

5800-152-TR-RC-ND

Manufacturer Part#:

5800-152-TR-RC

Price: $ 0.00
Product Category:

Inductors, Coils, Chokes

Manufacturer: Bourns Inc.
Short Description: FIXED IND 1.5MH 190MA 3.9 OHM
More Detail: 1.5mH Unshielded Wirewound Inductor 190mA 3.9 Ohm ...
DataSheet: 5800-152-TR-RC datasheet5800-152-TR-RC Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
DC Resistance (DCR): 3.9 Ohm Max
Height - Seated (Max): --
Size / Dimension: 0.275" Dia x 0.700" L (6.99mm x 17.78mm)
Supplier Device Package: Axial
Package / Case: Axial
Mounting Type: Through Hole
Inductance Frequency - Test: 1kHz
Operating Temperature: -55°C ~ 105°C
Ratings: --
Frequency - Self Resonant: --
Q @ Freq: --
Series: 5800
Shielding: Unshielded
Current - Saturation: 290mA
Current Rating: 190mA
Tolerance: ±10%
Inductance: 1.5mH
Material - Core: Ferrite
Type: Wirewound
Part Status: Obsolete
Packaging: Tray 
Description

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Fixed InductorsAn inductor is an electrical component composed of coils of wire wound around a core, usually a toroidal core of powdered iron. The inductor stores energy in its magnetic field whenever a current flows through it, and it is used to oppose changes in current flow. Inductors are used in a variety of applications, including portable electronics, power supplies, electronic controls, and audio amplifiers. The 5800-152-TR-RC application field and working principle is a fixed inductor, which are inductors that are designed to operate in a fixed range with a specified output voltage, current, and power.The 5800-152-TR-RC is a surface mount, axial leaded, MIL-STD-202/155 inductor designed for applications in which a reliable and/or ruggedized device is needed. It has a total of 70 nH inductance, with a maximum rating of 1000 V at 30 A. The operating temperature range is -55 to +105 degrees Celsius. It is designed to provide exceptional performance in a wide variety of high temperature, high current, and high humidity environments.The 5800-152-TR-RC features a dual ferrite core, which comprises two donut-shaped ferrites and is great for high-frequency applications. This core ensures the inductor is able to operate efficiently even under high current conditions, unlike single-pole ferrites. In addition, it has an axial construction, which results in a smaller package with more efficient coils. This increases the power density of the component.In addition, the 5800-152-TR-RC also uses a ceramic coating to further enhance its performance. This coating adds a barrier between the inner and outer surface of the component, which reduces electrical interference and helps to dissipate heat quickly. This ensures that the device operates efficiently even under high temperature and humidity conditions.The 5800-152-TR-RC is also an excellent choice for high-power applications that require high frequency, high current, and low losses. This is because the dual ferrite core and ceramic coating ensure the device is able to operate efficiently even under high-current conditions. In addition, the axial construction reduces voltage losses and ensures greater power output.The working principle of the 5800-152-TR-RC is dependent on the magnetic field generated by the current flowing through it. As current passes through the coils of the inductor, the magnetic field produced by these coils creates a force that opposes the current, resulting in an inductance. This inductance is then able to store energy in its magnetic field, providing stability and reliability to the device.The 5800-152-TR-RC is a reliable and robust inductor that is ideal for high-power applications or applications that require high performance in adverse environmental conditions. It has a dual ferrite core and a ceramic coating, which results in improved performance and higher power output. The axial construction also ensures lower voltage losses. In addition, the working principle of the 5800-152-TR-RC is based on the magnetic field produced by the coils, and this energy is then stored in the magnetic field whenever current passes through the inductor.

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

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