B82500 Series, Fixed Inductors

Results:
4
Manufacturer
Series
Current Rating (Amps)
DC Resistance (DCR)
Inductance
Frequency - Self Resonant
Operating Temperature
Current - Saturation (Isat)
Inductance Frequency - Test
Q @ Freq
Height - Seated (Max)
Tolerance
Shielding
Mounting Type
Size / Dimension
Supplier Device Package
Ratings
Type
Package / Case
Features
Material - Core
Results remaining4
Applied Filters:
B82500
Select
ImageProduct DetailPriceAvailabilityECAD ModelSupplier Device PackageFeaturesMounting TypeHeight - Seated (Max)Current Rating (Amps)ShieldingToleranceOperating TemperatureInductanceQ @ FreqRatingsCurrent - Saturation (Isat)Package / CaseMaterial - CoreDC Resistance (DCR)SeriesTypeFrequency - Self ResonantInductance Frequency - TestSize / Dimension
B82500C0000A008
FIXED IND 330UH 1A 600 MOHM TH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
Through Hole
-
1 A
Unshielded
±20%
-55°C ~ 125°C
330 µH
-
-
-
Axial
Ferrite
600mOhm
B82500
Drum Core, Wirewound
4.2MHz
100 kHz
0.394" Dia x 1.260" L (10.00mm x 32.00mm)
B82500C0000A005
FIXED IND 820UH 500MA 2.5 OHM TH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
Through Hole
-
500 mA
Unshielded
±20%
-55°C ~ 125°C
820 µH
-
-
-
Axial
Ferrite
2.5Ohm
B82500
Drum Core, Wirewound
3MHz
100 kHz
0.394" Dia x 1.260" L (10.00mm x 32.00mm)
B82500C0000A010
FIXED IND 120UH 2A 150 MOHM TH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
Through Hole
-
2 A
Unshielded
±20%
-55°C ~ 125°C
120 µH
-
-
-
Axial
Ferrite
150mOhm
B82500
Drum Core, Wirewound
5.8MHz
100 kHz
0.394" Dia x 1.260" L (10.00mm x 32.00mm)
B82500C0000A002
FIXED IND 3.9MH 200MA 20 OHM TH
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Quantity
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PCB Symbol, Footprint & 3D Model
-
-
Through Hole
-
200 mA
Unshielded
±20%
-55°C ~ 125°C
3.9 mH
-
-
-
Axial
Ferrite
20Ohm
B82500
Drum Core, Wirewound
1.8MHz
100 kHz
0.394" Dia x 1.260" L (10.00mm x 32.00mm)

Fixed Inductors

Inductors, also known as coils, chokes, or reactors, are fundamental passive electrical components with two terminals that store energy in a magnetic field when an electric current flows through them. When the current changes, the magnetic field induces a voltage in the conductor. The induced voltage has a polarity that opposes the change in current that generated it, creating a self-inductance effect. The unit of measurement for inductance is the Henry (H), named after the American physicist Joseph Henry. Inductors are present in various forms and sizes, ranging from microhenries (μH) to millihenries (mH) and even higher. In practical applications, inductors can be used to filter out unwanted high-frequency signals and to store and release energy in DC-DC converters. Inductors can also be used in conjunction with capacitors to create resonant circuits for filtering specific frequencies. Inductors come in different mounting options, including surface mount technology (SMT), through-hole, and chassis mounting. Surface mount inductors are ideal for compact designs, while through-hole inductors provide robustness and ease of assembly. Chassis-mounted inductors offer a more rugged design for industrial and heavy-duty applications. In summary, inductors are essential components in electronic circuits, providing energy storage, signal filtering, and frequency selection capabilities. With a wide range of mounting options and applications, these fundamental passive components play a vital role in modern electronics.