| Allicdata Part #: | IR02BH331K-ND |
| Manufacturer Part#: |
IR02BH331K |
| Price: | $ 0.00 |
| Product Category: | Inductors, Coils, Chokes |
| Manufacturer: | Vishay Dale |
| Short Description: | IR-2 330 10% B08 |
| More Detail: | 330µH Unshielded Inductor 45mA 28 Ohm Max Axial |
| DataSheet: | IR02BH331K Datasheet/PDF |
| Quantity: | 1000 |
| 1 +: | 0.00000 |
| Q @ Freq: | 30 @ 790kHz |
| Height - Seated (Max): | -- |
| Size / Dimension: | 0.120" Dia x 0.260" L (3.02mm x 6.60mm) |
| Supplier Device Package: | Axial |
| Package / Case: | Axial |
| Mounting Type: | Through Hole |
| Features: | -- |
| Inductance Frequency - Test: | 790kHz |
| Operating Temperature: | -55°C ~ 105°C |
| Ratings: | -- |
| Frequency - Self Resonant: | 7MHz |
| Series: | IR |
| DC Resistance (DCR): | 28 Ohm Max |
| Shielding: | Unshielded |
| Current - Saturation: | -- |
| Current Rating: | 45mA |
| Tolerance: | ±10% |
| Inductance: | 330µH |
| Material - Core: | Ferrite |
| Type: | -- |
| Part Status: | Obsolete |
| Packaging: | -- |
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Fixed Inductors are common circuit elements, used in a variety of electronic systems and applications. The IR02BH331K Inductor is an especially useful type of inductor, with a wide range of applications and a simple operation.
Applications
The IR02BH331K inductor is most commonly seen in use in switch mode power supplies. These power supplies are becoming increasingly important, as they enable some electronic systems to operate in a much more efficient manner. These inductors are also used in motor control, high frequency communication electronics and audio amplifiers. In many of these applications, the inductor is an important part of the supply chain, as it limits the amount of current that can pass through the circuit. This in turn helps to protect other more vulnerable components from damage.
Operation
The operation of a fixed inductors such as the IR02BH331K is rather simple. As current flows through the inductor, it will generate a magnetic field that opposes the change in the current. This resistance is called inductive reactance and it limits the amount of current that can flow through the inductor. The amount of inductance, or resistance, that is produced depends on the length, size, and number of turns of the inductor’s wire. This resistance is measured in Henrys, which can be converted to its equivalent in ohms (or vice versa).
Fixed inductors such as the IR02BH331K are usually also rated in milliampres. This indicates how much current the inductor can handle without heating too much or saturating. As mentioned above, this feature is especially important in switch mode power supplies, as it limits the amount of current that can get to the sensitive parts of the circuit.
Design Considerations
When designing and selecting an inductor for a circuit, there are several design considerations to take into account. Firstly, the inductance of the inductor must be chosen to match the needs of the circuit. Generally, higher inductance is associated with higher losses. Therefore, it is important to choose an inductance which is both sufficient for the aims of the circuit and does not result in excessive losses. It is also important to consider the value of the characteristics parameters, such as inductance tolerance, DC resistance, and operating temperature range.
Secondly, the physical size and weight of the inductor must be taken into account. The size of the inductor is important as it can directly influence the amount of inductance that is produced. The weight of the inductor is also important as it can affect the overall weight of the system, which may in turn influence the cost.
Finally, the current rating of the inductor must be taken into account. The higher the current rating of the inductor, the smaller the output voltage of the circuit will be. It is therefore important to choose an inductor with an appropriate current rating for the circuit’s needs.
In conclusion, the IR02BH331K is an especially useful type of fixed inductor, with a wide range of applications. It operates by generating a magnetic field that opposes the change in the current, limiting the amount of current that can flow through the inductor. Careful consideration must be taken into account when selecting an inductor, taking into account the inductance, physical size, weight and current rating of the inductor.
The specific data is subject to PDF, and the above content is for reference
| Part Number | Manufacturer | Price | Quantity | Description |
|---|
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| IR02EV100K | Vishay Dale | 0.0 $ | 1000 | IR-2 10 10% EV E210H Unsh... |
| IR02RU471K | Vishay Dale | 0.0 $ | 1000 | IR-2 470 10% R36470H Unsh... |
| IR02RUR22K | Vishay Dale | 0.0 $ | 1000 | IR-2 .22 10% R36220nH Uns... |
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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...
IR02BH331K Datasheet/PDF