
Allicdata Part #: | IM02BHR51J-ND |
Manufacturer Part#: |
IM02BHR51J |
Price: | $ 0.00 |
Product Category: | Inductors, Coils, Chokes |
Manufacturer: | Vishay Dale |
Short Description: | IM-2 .51 5% B08 |
More Detail: | 510nH Unshielded Molded Inductor Axial |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Q @ Freq: | -- |
Height - Seated (Max): | -- |
Size / Dimension: | 0.095" Dia x 0.250" L (2.42mm x 6.35mm) |
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: | -- |
Series: | IM |
DC Resistance (DCR): | -- |
Shielding: | Unshielded |
Current - Saturation: | -- |
Tolerance: | ±5% |
Inductance: | 510nH |
Material - Core: | Phenolic |
Type: | Molded |
Part Status: | Obsolete |
Packaging: | -- |
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Fixed inductors, often referred to as chokes, are used in many different applications where devices require an electrical current such as medical equipment, telecommunications, radio frequency (RF) equipment and power supplies. The IM02BHR51J fixed inductor is a passive device that utilizes a magnetic field produced by a coil of wire to create an electrical current. The device is typically used in power supplies, signal filtering, and to smoothen voltage and ripple current in power systems.
The IM02BHR51J consists of a metal core with a few turns of a copper or aluminum wire wrapped around it. The core is usually composed of one or more ferrite rods depending on the required inductance. The number of turns in the wire is determined by the desired inductance of the device. The core is then typically wrapped in a thin plastic layer to provide a finished and aesthetically pleasing product.
The working principle behind the fixed inductor is relatively simple. When an electrical current is passed through the inductor’s winding, a magnetic field is created which will then attempt to prevent a change in its current. This phenomenon is referred to as mutual inductance, and results in the device slowing the rate of which current is able to pass through it over a certain frequency range. This ability to affect current flow makes the IM02BHR51J ideal for use in power supplies, signal filtering, and for the smoothing of voltage and ripple current.
The IM02BHR51J is typically found in applications that require a reliable low-impedance solution, such as medical equipment and power supplies. These applications may require higher currents to be passed through the inductor in order to power other components or systems. One of its advantages is that it doesn’t require additional components or efficient mechanisms, resulting in a cost-effective solution for the customer.
In applications where the inductor is required to provide filtering, the device is often wound in a particular way to utilize the mutual inductance effect. This winding technique is commonly referred to as the self-resonant winding method, and utilizes the natural inductance of the device to reduce noise and unwanted frequencies that pass through the inductor. In power supplies, the IM02BHR51J is typically used to prevent high-frequency noise as it passes through the power line.
Other applications where the IM02BHR51J can be used include RF systems, audio equipment, telecommunications systems, and various other electronic designs. It is important to note that the device should only be used within its voltage rating and manufacturer\'s specified current rating as exceeding these parameters could result in damage to the device or the circuit.
In conclusion, the IM02BHR51J fixed inductor is a robust and reliable device used in a variety of applications. It is ideal for use in power supplies, filter circuits, and RF systems due to its ability to slow the rate of current flow over a certain frequency range. It is important to note that the device should be operated within its manufacturer’s specified parameters as exceeding these could result in damage to the device or the circuit.
The specific data is subject to PDF, and the above content is for reference
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IM02ST3R3H | Vishay Dale | 0.0 $ | 1000 | IM-2 3.3 3% RJ43.3H Unshi... |
IM02BH681K | Vishay Dale | 0.0 $ | 1000 | IM-2 680 10% B08680H Unsh... |
IM02SH101J | Vishay Dale | 0.0 $ | 1000 | IM-2 100 5% RJ1100H Unshi... |
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IM02BH2R2F | Vishay Dale | 0.0 $ | 1000 | IM-2 2.2 1% B082.2H Unshi... |
IM02BH2R7K | Vishay Dale | 0.0 $ | 1000 | IM-2 2.7 10% B082.7H Unsh... |
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IM02BH2R2G | Vishay Dale | 0.0 $ | 1000 | IM-2 2.2 2% B082.2H Unshi... |
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IM02BHR12H | Vishay Dale | 0.0 $ | 1000 | IM-2 .12 3% B08120nH Unsh... |
IM02ER5R6K | Vishay Dale | 0.0 $ | 1000 | IM-2 5.6 10% ER E25.6H Un... |
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...
