| Allicdata Part #: | IM06RFCSST3R9K40-ND |
| Manufacturer Part#: |
IM06RFCSST3R9K40 |
| Price: | $ 0.00 |
| Product Category: | Inductors, Coils, Chokes |
| Manufacturer: | Vishay Dale |
| Short Description: | IM-6RFCS-40 3.9 10% RJ4 |
| More Detail: | 3.9µH Unshielded Molded Inductor 1.2A 230 mOhm Max... |
| DataSheet: | IM06RFCSST3R9K40 Datasheet/PDF |
| Quantity: | 1000 |
| 1 +: | 0.00000 |
| Q @ Freq: | 60 @ 10MHz |
| Height - Seated (Max): | -- |
| Size / Dimension: | 0.190" Dia x 0.447" L (4.83mm x 11.35mm) |
| Supplier Device Package: | Axial |
| Package / Case: | Axial |
| Mounting Type: | Through Hole |
| Features: | -- |
| Inductance Frequency - Test: | 10MHz |
| Operating Temperature: | -55°C ~ 125°C |
| Ratings: | -- |
| Frequency - Self Resonant: | 76MHz |
| Series: | IM-6-RFCS-40 |
| DC Resistance (DCR): | 230 mOhm Max |
| Shielding: | Unshielded |
| Current - Saturation: | -- |
| Current Rating: | 1.2A |
| Tolerance: | ±10% |
| Inductance: | 3.9µH |
| Material - Core: | Iron |
| Type: | Molded |
| Part Status: | Obsolete |
| Packaging: | -- |
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Fixed inductors are components that transform energy from an electrical to a magnetic field and vice versa, joining electric and magnetic circuits. They are generally used to soften or shape a waveform, to store energy and to initiate oscillations. Fixed inductors may also be part of a filter, to separate signals with different frequencies, for example.IM06RFCSST3R9K40 is one of the more common fixed inductors, giving it a wide range of applications and practical uses, particularly in consumer electronic products.
Design Elements
The design of any fixed inductor should have certain elements. They must have a coil structure, formed from copper wire, to allow for a greater inductance. This is opposed by a core that creates a magnetic field. The most efficient coil constructions have more turns of the copper wire, as this reduces the electric current for the same inductance.
IM06RFCSST3R9K40 has an efficient coil construction, which allows for a maximum inductance of 2.5 mH. This allows it to be used in a wide range of applications, such as power conditioning units, EMI filter circuits and magnetically coupled circuits.
Working Principle
The working principle of any fixed inductor involves the conversion of electric energy to magnetic energy. This is done by passing an electric current through the coil, which then creates a magnetic field. This field will then exert a force on the core, which then stores the energy as an electromagnetic field. The inductor then produces an electric current, while dissipating a portion of the energy as heat.
IM06RFCSST3R9K40 works in the same way as any other fixed inductor. It creates a magnetic field when an electric current is passed through the coil and stores this energy in the core. It then converts the stored energy back to an electric current when a voltage is applied. This electric current can be used to power circuits and can be used in a variety of applications.
Application Areas
IM06RFCSST3R9K40 is a versatile fixed inductor that can be used in a variety of applications. Commonly, they are used in consumer electronic products such as TVs and computers. They are also found in home automation systems, audio amplifiers, power supplies, motor control systems, medical equipment and LED lighting.
The inductor is also often used in motors, for example, as an EMI filter, to reduce any electromagnetic interference from the electric current running through the motor. This interference can produce unwanted electric noise that could damage other circuits and components in the motor. IM06RFCSST3R9K40’s efficient coil construction makes it particularly suited for this application.
In addition, fixed inductors are often used in amplifier circuits, where they can be used to “soften” a signal waveform, to ensure no distortion is caused in the amplified signal. They are also used in power supply circuits, for instance, to convert alternating current to direct current.
Conclusion
Fixed inductors are components which convert electrical energy to magnetic energy and vice versa. They are used in a wide range of applications, such as consumer electronic products, motors, audio amplifiers, power supplies, home automation systems, medical equipment and LED lighting. IM06RFCSST3R9K40 is one of the more common fixed inductors, which has an efficient coil construction for maximum inductance. This inductor can be used in a variety of applications, as it can efficiently convert electric energy to a magnetic field, and then back again.
The specific data is subject to PDF, and the above content is for reference
| Part Number | Manufacturer | Price | Quantity | Description |
|---|
| IM06BH391J | Vishay Dale | 0.0 $ | 1000 | IM-6 390 5% B08390H Unshi... |
| IM06RFCSES220K40 | Vishay Dale | 0.0 $ | 1000 | IM-6RFCS-40 22 10% ES E22... |
| IM06STR15K | Vishay Dale | 0.0 $ | 1000 | IM-6 .15 10% RJ4150nH Uns... |
| IM06RFCSRU2R7K40 | Vishay Dale | 0.0 $ | 1000 | IM-6RFCS-40 2.7 10% R362.... |
| IM06RFCSRU331J40 | Vishay Dale | 0.0 $ | 1000 | IM-6RFCS-40 330 5% R36330... |
| IM06SJ3R3K | Vishay Dale | 0.0 $ | 1000 | IM-6 3.3 10% RJ23.3H Unsh... |
| IM06ER8R2K | Vishay Dale | 0.0 $ | 1000 | IM-6 8.2 10% ER E28.2H Un... |
| IM06SH511H | Vishay Dale | 0.0 $ | 1000 | IM-6 510 3% RJ1510H Unshi... |
| IM06SH681J | Vishay Dale | 0.0 $ | 1000 | IM-6 680 5% RJ1680H Unshi... |
| IM06SH7R3J | Vishay Dale | 0.0 $ | 1000 | IM-6 7.3 5% RJ17.3H Unshi... |
| IM06BH8R2K | Vishay Dale | 0.0 $ | 1000 | IM-6 8.2 10% B088.2H Unsh... |
| IM06BHR10H | Vishay Dale | 0.0 $ | 1000 | IM-6 .1 3% B08100nH Unshi... |
| IM06RFCSBHR15K40 | Vishay Dale | 0.0 $ | 1000 | IM-6RFCS-40 .15 10% B0815... |
| IM06RU911J | Vishay Dale | 0.0 $ | 1000 | IM-6 910 5% R36910H Unshi... |
| IM06RUR22J | Vishay Dale | 0.0 $ | 1000 | IM-6 .22 5% R36220nH Unsh... |
| IM06SH330K | Vishay Dale | 0.0 $ | 1000 | IM-6 33 10% RJ133H Unshie... |
| IM06BH102J | Vishay Dale | 0.0 $ | 1000 | IM-6 1K 5% B081mH Unshiel... |
| IM06KE151K | Vishay Dale | 0.0 $ | 1000 | IM-6 150 10% K05150H Unsh... |
| IM06RFCSBHR68J40 | Vishay Dale | 0.0 $ | 1000 | IM-6RFCS-40 .68 5% B08680... |
| IM06SS2R7K | Vishay Dale | 0.0 $ | 1000 | IM-6 2.7 10% RJ52.7H Unsh... |
| IM06BH3R3H | Vishay Dale | 0.0 $ | 1000 | IM-6 3.3 3% B083.3H Unshi... |
| IM06EB301J | Vishay Dale | 0.0 $ | 1000 | IM-6 300 5% EB E2300H Uns... |
| IM06RFCSRU101J40 | Vishay Dale | 0.0 $ | 1000 | IM-6RFCS-40 100 5% R36100... |
| IM06RU391J | Vishay Dale | 0.0 $ | 1000 | IM-6 390 5% R36390H Unshi... |
| IM06SJ330K | Vishay Dale | 0.0 $ | 1000 | IM-6 33 10% RJ233H Unshie... |
| IM06BH220K | Vishay Dale | 0.0 $ | 1000 | IM-6 22 10% B0822H Unshie... |
| IM06BH7R3J | Vishay Dale | 0.0 $ | 1000 | IM-6 7.3 5% B087.3H Unshi... |
| IM06KE150K | Vishay Dale | 0.0 $ | 1000 | IM-6 15 10% K0515H Unshie... |
| IM06RU120K | Vishay Dale | 0.0 $ | 1000 | IM-6 12 10% R3612H Unshie... |
| IM06RU180K | Vishay Dale | 0.0 $ | 1000 | IM-6 18 10% R3618H Unshie... |
| IM06ST561J | Vishay Dale | 0.0 $ | 1000 | IM-6 560 5% RJ4560H Unshi... |
| IM06BH8R2J | Vishay Dale | 0.0 $ | 1000 | IM-6 8.2 5% B088.2H Unshi... |
| IM06RFCSSHR10K40 | Vishay Dale | 0.0 $ | 1000 | IM-6RFCS-40 .1 10% RJ1100... |
| IM06BH621J | Vishay Dale | 0.0 $ | 1000 | IM-6 620 5% B08620H Unshi... |
| IM06SS8R2J | Vishay Dale | 0.0 $ | 1000 | IM-6 8.2 5% RJ58.2H Unshi... |
| IM06RR102J | Vishay Dale | 0.0 $ | 1000 | IM-6 1K 5% R161mH Unshiel... |
| IM06SH821J | Vishay Dale | 0.0 $ | 1000 | IM-6 820 5% RJ1820H Unshi... |
| IM06BHR22H | Vishay Dale | 0.0 $ | 1000 | IM-6 .22 3% B08220nH Unsh... |
| IM06RFCSBH4R7K40 | Vishay Dale | 0.0 $ | 1000 | IM-6RFCS-40 4.7 10% B084.... |
| IM06RU150K | Vishay Dale | 0.0 $ | 1000 | IM-6 15 10% R3615H Unshie... |
FIXED IND 10UH 590MA 350 MOHM10H Unshiel...
FIXED IND 22NH 1.4A 70 MOHM SMD22nH Unsh...
FIXED IND 13NH 600MA SMD13nH Unshielded ...
FIXED IND 680UH 210MA 4.6 OHM680H Unshie...
FIXED IND 470UH 1.3A 280 MOHM TH470H Uns...
FIXED IND 8.2UH 165MA 2.2 OHM TH8.2H Uns...
IM06RFCSST3R9K40 Datasheet/PDF