Allicdata Part #: | SBC4-3R3-642-ND |
Manufacturer Part#: |
SBC4-3R3-642 |
Price: | $ 0.29 |
Product Category: | Inductors, Coils, Chokes |
Manufacturer: | KEMET |
Short Description: | FIXED IND 3.3UH 6.4A 20 MOHM TH |
More Detail: | 3.3µH Unshielded Wirewound Inductor 6.4A 20 mOhm M... |
DataSheet: | SBC4-3R3-642 Datasheet/PDF |
Quantity: | 1000 |
3000 +: | $ 0.26854 |
Specifications
DC Resistance (DCR): | 20 mOhm Max |
Height - Seated (Max): | 0.472" (12.00mm) |
Size / Dimension: | 0.354" Dia (9.00mm) |
Package / Case: | Radial, Vertical Cylinder |
Mounting Type: | Through Hole |
Inductance Frequency - Test: | 10kHz |
Operating Temperature: | -- |
Ratings: | -- |
Frequency - Self Resonant: | -- |
Q @ Freq: | -- |
Series: | SBC |
Shielding: | Unshielded |
Current - Saturation: | 8.6A |
Current Rating: | 6.4A |
Tolerance: | ±20% |
Inductance: | 3.3µH |
Material - Core: | Ferrite |
Type: | Wirewound |
Part Status: | Active |
Packaging: | Bulk |
Description
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Fixed inductors are electrical components that are used to store energy in an electric field and, in some cases, also to transform electric energy into a magnetic field. Fixed inductors are widely used in a variety of applications, ranging from radio frequency (RF) communications to power supplies. The SBC4-3R3-642 is a fixed inductor that is designed to be used in a wide range of applications.The SBC4-3R3-642 is a surface-mount inductor with a 3.3 ohm resistance per coil and a tolerance of +/- 5%. The device is designed for use in a variety of different applications, including power supply applications, high frequency switching applications, and automotive power supply and powertrain applications. The device is constructed using a ferrite core material, which provides excellent thermal conductivity and high inductance.The SBC4-3R3-642 is designed to operate over a wide range of operating frequencies, from 200 kHz to 4.2 MHz. The device is capable of handling currents of up to 6.4 A, making it an ideal choice for applications that require a high level of current handling capability. The device is also designed to withstand a peak reverse voltage up to 40 VDC.The working principle of the SBC4-3R3-642 is based on the principle of self induction, which states that an electric current passing through a conductor will generate a magnetic field. This magnetic field, in turn, will induce an opposing current in the same conductor. As the current applied to the device increases, the device will generate a voltage drop that is proportional to the current flowing through it. This voltage drop can be used to control the current through the device and, in turn, the power that is delivered to its downstream components.The SBC4-3R3-642 is designed to be used in a wide range of applications, such as power supply applications, high frequency switching applications, automotive power supply and powertrain applications, and RF communication applications. In power supply applications, the device can be used to regulate the current through an active filter circuit, providing a constant voltage output. In high frequency switching applications, the device can be used to control the speed of switching of a circuit, allowing for a higher switching frequency than would be achievable with a conventional inductor. In automotive power supply and powertrain applications, the device can be used to reduce noise and power losses in a power train circuit. Finally, in RF communication applications, the device can provide low-pass filtering that can reduce the amount of noise that is present in a communication system.The SBC4-3R3-642 is a highly versatile fixed inductor that can be used in a wide variety of applications. The device is capable of operating over a wide range of frequencies and can handle currents of up to 6.4 A, making it an ideal choice for power supply, high frequency switching, automotive power supply, and RF communication applications. The device\'s construction, which uses a ferrite core material, provides excellent thermal conductivity and high inductance. The device\'s working principle is based on the principle of self induction, which enables the device to induce an opposing voltage that can be used to control the current through the device and, in turn, the power delivered to its downstream components.The specific data is subject to PDF, and the above content is for reference
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