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2504021217Y0 - Fair-Rite

Description: Ferrite Beads

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2504021217Y0 - Fair-Rite PCB footprint - Ferrite Bead Chip - Ferrite Bead Chip - 2504021217Y0
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2504021217Y0 - Fair-Rite  - 3D model - Ferrite Bead Chip - 2504021217Y0
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2504021217Y0 Details

  • Manufacturer Part Number:

    2504021217Y0

  • Pbfree Code:

    Yes

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Active

  • ECCN Code:

    EAR99

  • HTS Code:

    8504.50.80.00

  • Manufacturer:

    Fair-Rite Products Corp

  • YTEOL:

    7.39

  • Case Code:

    0402

  • Construction:

    Chip Bead

  • DC Resistance-Max:

    0.5 Ω

  • Filter Type:

    FERRITE CHIP

  • Frequency-Max:

    1000 MHz

  • Frequency-Min:

    100 MHz

  • Height:

    0.5 mm

  • JESD-609 Code:

    e3

  • Length:

    1 mm

  • Mounting Type:

    SURFACE MOUNT

  • Number of Functions:

    1

  • Number of Terminals:

    2

  • Operating Temperature-Max:

    125 °C

  • Operating Temperature-Min:

    -55 °C

  • Output Impedance:

    120 OHM Ω

  • Packing Method:

    TAPE AND REEL

  • Rated Current:

    0.2 A

  • Terminal Finish:

    TIN OVER NICKEL

  • Width:

    0.5 mm

2504021217Y0 Frequently Asked Questions (FAQs)

  • The recommended land pattern for the 2504021217Y0 inductor is a rectangular pad with a size of 3.8mm x 2.5mm, with a non-solder mask defined (NSMD) pad shape to ensure proper soldering and thermal relief.
  • The 2504021217Y0 inductor is designed for high-frequency applications up to 1 GHz, with a self-resonant frequency of 1.2 GHz. It exhibits low core losses and high impedance at high frequencies, making it suitable for RF and microwave circuits.
  • The 2504021217Y0 inductor has a maximum operating temperature of 125°C, with a derating of 1.5% per degree Celsius above 80°C. It is essential to ensure the inductor operates within the specified temperature range to maintain its performance and reliability.
  • Yes, the 2504021217Y0 inductor is suitable for use in switching regulator designs due to its low core losses, high saturation current, and high impedance at high frequencies. However, it's essential to ensure the inductor is properly sized and selected for the specific application to avoid saturation and ensure efficient energy transfer.
  • To minimize the impact of the inductor's magnetic field in a densely populated PCB, it's recommended to keep the inductor at least 5mm away from other components, use a shielded inductor or a mu-metal shield, and orient the inductor to minimize the magnetic field's effect on nearby components.

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