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KBU6M - GeneSiC Semiconductor

Description: Bridge Rectifiers 1000V 6A Bridge Rectifier

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PCB Footprints
KBU6M - GeneSiC Semiconductor PCB footprint - Other - Other - KBU6M-2
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3D Models
KBU6M - GeneSiC Semiconductor  - 3D model - Other - KBU6M-2
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KBU6M Details

  • Manufacturer Part Number:

    KBU6M

  • Pbfree Code:

    Yes

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Transferred

  • ECCN Code:

    EAR99

  • HTS Code:

    8541.10.00.80

  • Manufacturer:

    GeneSic Semiconductor Inc

  • YTEOL:

    6.85

  • Breakdown Voltage-Min:

    1000 V

  • Configuration:

    BRIDGE, 4 ELEMENTS

  • Diode Element Material:

    SILICON

  • Diode Type:

    BRIDGE RECTIFIER DIODE

  • Forward Voltage-Max (VF):

    1 V

  • JESD-30 Code:

    R-PSFM-W4

  • Non-rep Pk Forward Current-Max:

    250 A

  • Number of Elements:

    4

  • Number of Phases:

    1

  • Number of Terminals:

    4

  • Operating Temperature-Max:

    150 °C

  • Operating Temperature-Min:

    -55 °C

  • Output Current-Max:

    6 A

  • Package Body Material:

    PLASTIC/EPOXY

  • Package Shape:

    RECTANGULAR

  • Package Style:

    FLANGE MOUNT

  • Rep Pk Reverse Voltage-Max:

    1000 V

  • Surface Mount:

    NO

  • Terminal Form:

    WIRE

  • Terminal Position:

    SINGLE

KBU6M Frequently Asked Questions (FAQs)

  • A 2-layer PCB with a thermal relief pattern on the bottom layer and a solid copper pour on the top layer is recommended. This helps to dissipate heat efficiently and reduces thermal resistance.
  • Ensure proper heat sinking, use a thermally conductive interface material, and follow the recommended PCB layout guidelines. Also, consider using a heat sink with a thermal resistance of 1°C/W or lower.
  • The maximum allowed voltage transient is 1.5 times the maximum rated voltage (Vdrm) for a duration of 100ms. Exceeding this may cause damage to the device.
  • Yes, but it's essential to ensure that the devices are matched in terms of voltage and current ratings, and that the gate drive circuits are properly synchronized to prevent shoot-through currents.
  • Implement a fast-acting overcurrent protection circuit that can detect and respond to overcurrent conditions within 1-2 microseconds. This can be achieved using a dedicated overcurrent protection IC or a custom-designed circuit.

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KBU6M Overview

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