Allicdata Part #: | PL10104NLT-ND |
Manufacturer Part#: |
PL10104NLT |
Price: | $ 3.89 |
Product Category: | Inductors, Coils, Chokes |
Manufacturer: | PulseR |
Short Description: | INDUCTOR PLANAR 2T LOW PBC |
More Detail: | 1.3µH Unshielded Planar Inductor 25A 0.48 mOhm Max... |
DataSheet: | PL10104NLT Datasheet/PDF |
Quantity: | 1000 |
250 +: | $ 3.49587 |
DC Resistance (DCR): | 0.48 mOhm Max |
Height - Seated (Max): | 0.290" (7.37mm) |
Size / Dimension: | 0.780" L x 0.770" W (19.81mm x 19.56mm) |
Supplier Device Package: | -- |
Package / Case: | Nonstandard |
Mounting Type: | Surface Mount |
Features: | -- |
Operating Temperature: | -40°C ~ 130°C |
Ratings: | -- |
Frequency - Self Resonant: | -- |
Q @ Freq: | -- |
Series: | -- |
Shielding: | Unshielded |
Current - Saturation: | 26A |
Current Rating: | 25A |
Tolerance: | ±15% |
Inductance: | 1.3µH |
Material - Core: | -- |
Type: | Planar |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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Fixed inductors are devices that store electrical energy in the form of magnetic energy. Inductors are widely used in a variety of electronics applications. The PL10104NLT is one such example of a fixed inductor. This article will discuss the application fields and working principles of this device.
PL10104NLT is a miniaturized, chip-type, low profile, low loss inductor used in high-frequency switching power supply circuits. It uses electronic components that are made of ferrite and is designed in a precision winding and assembly process. The inductance range of this device is 4.7uH to 10uH with a rated current up to 7A. It has an operating temperature range of -40℃ to +125℃ and a self-resonant frequency of 55MHz.
The PL10104NLT inductor plays an important role in many applications, especially in switching mode power supplies (SMPS). Switching mode power supplies are electronic circuits which convert AC power from a particular line voltage to another form or voltage level. This type of power conversion is carried out at very high speeds and results in the production of high frequency electrical signals. The PL10104NLT inductors are used to store a specific amount of energy which allows the current to flow by stabilizing the output voltage from the SMPS.
The PL10104NLT inductor also has other applications. It can be used in low-pass and high-pass filters, for impedance matching, for signal decoupling, and for creating oscillator circuits. It is also used in DC-DC converters as well as in inductive charging applications. Furthermore, it is used in communication circuits such as RF modems, antennas, and amplifiers.
The working principle of the PL10104NLT inductor is based on Faraday’s law of induction. Faraday\'s law states that when a conductor moves through a magnetic field, an electromotive force (EMF) is induced in it. This EMF is determined by the rate of change of the magnetic field. The PL10104NLT consists of a ferrite core with a wire wrapped around it. When a current is passed through the wire, an EMF is induced across the ends of the wire which causes a magnetic field to be established around the ferrite core. This magnetic field then stores the energy in the form of magnetic energy.
When a voltage is applied across the inductor, the stored energy in the magnetic field is released which causes a current to flow through the inductor. This current is then used to stabilize the output voltage of a switching mode power supply. The amount of energy stored in the magnetic field is directly proportional to the inductance of the inductor.
In conclusion, the PL10104NLT is a chip-type, low profile, low loss inductor used in high-frequency switching power supply circuits. It is designed in a precision winding and assembly process and has an operating temperature range of -40℃ to +125℃ and a self-resonant frequency of 55MHz. The inductor has many applications, including use in SMPSs, low-pass and high-pass filters, for impedance matching, for signal decoupling, for creating oscillator circuits, and for communication circuits. The working principle of this device is based on Faraday’s law of induction. When a current is passed through the wire, an EMF is induced across the ends of the wire which causes a magnetic field to be established around the ferrite core. This in turn stores energy in the form of magnetic energy.
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