RCH654NP-391K Allicdata Electronics
Allicdata Part #:

RCH654NP-391K-ND

Manufacturer Part#:

RCH654NP-391K

Price: $ 0.29
Product Category:

Inductors, Coils, Chokes

Manufacturer: Sumida America Components Inc.
Short Description: FIXED IND 390UH 210MA 2.47 OHM
More Detail: 390µH Unshielded Wirewound Inductor 210mA 2.47 Ohm...
DataSheet: RCH654NP-391K datasheetRCH654NP-391K Datasheet/PDF
Quantity: 1000
100 +: $ 0.25988
Stock 1000Can Ship Immediately
$ 0.29
Specifications
DC Resistance (DCR): 2.47 Ohm Max
Height - Seated (Max): 0.197" (5.00mm)
Size / Dimension: 0.236" Dia (6.00mm)
Supplier Device Package: --
Package / Case: Radial
Mounting Type: Through Hole
Inductance Frequency - Test: 1kHz
Operating Temperature: -40°C ~ 85°C
Ratings: --
Frequency - Self Resonant: --
Q @ Freq: --
Series: RCH-654
Shielding: Unshielded
Current - Saturation: --
Current Rating: 210mA
Tolerance: ±10%
Inductance: 390µH
Material - Core: Ferrite
Type: Wirewound
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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Fixed inductors, also known as chokes, are one of the most common and versatile electronic components. They are used in a wide variety of applications, ranging from analog filtering and signal processing to power regulation and control. The RCH654NP-391K is a premium grade axial-leaded single-layer fixed inductor designed for use in a variety of applications.

The RCH654NP-391K is designed for use in ac/dc switching power supplies, LED drivers, voltage converters, desktop computer systems, and other industrial applications that require inductance stability and high ripple current. It features a ceramic body, with a molded plastic case for additional protection. The device features a proprietary non-magnetic ferrite core and high-temperature solder resistance for superior performance and reliability. The device is rated to operate over temperature ranges from -40°C to +125°C.

The RCH654NP-391K offers inductance values up to 391nH and a saturation current of up to 12A. The device has a low profile, which makes it ideal for applications where compact space is an issue. The low profile also reduces power consumption and minimizes radiated noise. The device also has a high Q factor to ensure an output with high performance and efficiency. The inductor has a high self-resonance frequency, providing superior temporal and transient response.

The RCH654NP-391K features a low resistance design, which minimizes power dissipation, resulting in energy savings and improved efficiency. The inductor features superior temperature stability, enabling it to maintain its performance over the operating temperature ranges. It also has high current handling capability and high energy storage capacity, leading to improved performance and power efficiency in applications with high inductive load. The device can also be used in applications requiring high-precision current sensing and low-noise operation.

The working principle of the RCH654NP-391K is based on the concept of inductance. An inductor works by using the magnetic field generated by the current to oppose any changes to the current. The more current that flows through the inductor, the more it opposes changes in current. The value of inductance is determined by the geometry of the inductor and the material it is made from. This makes the RCH654NP-391K ideal for applications requiring precise inductance control.

In summary, the RCH654NP-391K is a high-performance single-layer fixed inductor designed for use in a variety of applications, including ac/dc switching power supplies, LED drivers, voltage converters, desktop computer systems, and other industrial applications. It features a ceramic body, with a molded plastic case for additional protection, and is rated to operate over temperature from -40°C to +125°C. The device features a proprietary non-magnetic ferrite core and high-temperature solder resistance for superior performance and reliability, and offers inductance values up to 391nH and a saturation current of up to 12A. The low profile and high self-resonance frequency provides superior temporal and transient response, as well as low power dissipation and improved efficiency. The device is also well-suited for applications requiring precise inductance control, high-precision current sensing and low-noise operation.

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

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