ELJ-EA330KF Inductors, Coils, Chokes |
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Allicdata Part #: | PCD1426TR-ND |
Manufacturer Part#: |
ELJ-EA330KF |
Price: | $ 0.00 |
Product Category: | Inductors, Coils, Chokes |
Manufacturer: | Panasonic Electronic Components |
Short Description: | FIXED IND 33UH 95MA 700 MOHM SMD |
More Detail: | 33µH Shielded Wirewound Inductor 95mA 700 mOhm Max... |
DataSheet: | ELJ-EA330KF Datasheet/PDF |
Quantity: | 1000 |
1 +: | 0.00000 |
DC Resistance (DCR): | 700 mOhm Max |
Height - Seated (Max): | 0.094" (2.40mm) |
Size / Dimension: | 0.126" L x 0.098" W (3.20mm x 2.50mm) |
Supplier Device Package: | -- |
Package / Case: | 1210 (3225 Metric) |
Mounting Type: | Surface Mount |
Inductance Frequency - Test: | 2.52MHz |
Operating Temperature: | -20°C ~ 85°C |
Ratings: | -- |
Frequency - Self Resonant: | 16MHz |
Q @ Freq: | 10 @ 2.52MHz |
Series: | EA |
Shielding: | Shielded |
Current - Saturation: | -- |
Current Rating: | 95mA |
Tolerance: | ±10% |
Inductance: | 33µH |
Material - Core: | -- |
Type: | Wirewound |
Part Status: | Obsolete |
Packaging: | Tape & Reel (TR) |
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Fixed inductors are electrical components used in a wide range of electronic technologies. Specifically, ELJ-EA330KF fixed inductors consist of a coil of electrical conductor that generates a magnetic field when a current passes through it. The purpose of these inductors is to restrict the flow of AC electrical current while allowing the flow of DC electrical current. In addition, they also store electrical charge for later use. ELJ-EA330KF fixed inductors have a range of applications across a variety of industries.
One of the most common applications for ELJ-EA330KF fixed inductors is in the telecommunications industry. In this industry, the inductors are used to regulate the frequencies of transmitted data and ensure it reaches its intended destination, as well as providing extra strength for the signal. ELJ-EA330KF fixed inductors are also used in amplifier circuits to filter out unwanted noise and distortion in audio inputs. Additionally, they are commonly used in motor circuits for power generation and control.
In terms of their working principles, ELJ-EA330KF fixed inductors are based on Faraday’s law of electromagnetic induction. This states that a current flowing through a conductor will generate a magnetic field in its surrounding environment. This magnetic field, in turn, will induce a current in the conductor itself. This creates a feedback loop where the current generates a magnetic field and the magnetic field induces a current in the conductor. The size of the current induced depends on the strength of the magnetic field.
In practice, when voltage is applied across the ELJ-EA330KF fixed inductors, an electrical current is generated. This current then creates a magnetic field in the environment surrounding the inductor. When the voltage is unplugged, the current in the inductor collapses and the magnetic field collapses as well. This effect is known as inductive reactance and it is what allows the ELJ-EA330KF fixed inductors to control the frequency and amplitude of the current.
In addition to the Faraday’s law of electromagnetic induction, ELJ-EA330KF fixed inductors also rely on the Principle of Self-Induction. This principle states that if a current is changing in a conductor, an electromotive force (EMF) will be created around that conductor. This EMF will resist the change in current, creating a feedback loop where the EMF and current reinforce each other. This effect is known as self-inductance and it is what allows the ELJ-EA330KF fixed inductors to store electrical energy.
In conclusion, ELJ-EA330KF fixed inductors are electrical components that are commonly used in a variety of applications in the telecommunications, sound engineering, and power generation industries. They work by relying on Faraday’s law of electromagnetic induction and the Principle of Self-Induction, allowing them to regulate the frequency and amplitude of electrical current, as well as store electrical charge.
The specific data is subject to PDF, and the above content is for reference
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