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BDW94C - STMicroelectronics

Description: BDW94C, Darlington Transistor, PNP 12 A 100 V HFE:100, 3-Pin, TO-220

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BDW94C - STMicroelectronics PCB footprint - Transistor Outline, Vertical - Transistor Outline, Vertical - TO-220 MECHANICAL DATA**
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BDW94C - STMicroelectronics  - 3D model - Transistor Outline, Vertical - TO-220 MECHANICAL DATA**
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BDW94C Details

  • Manufacturer Part Number:

    BDW94C

  • Brand Name:

    STMicroelectronics

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Active

  • Part Package Code:

    TO-220AB

  • Package Description:

    PLASTIC, TO-220, 3 PIN

  • Pin Count:

    3

  • Country Of Origin:

    Mainland China

  • ECCN Code:

    EAR99

  • HTS Code:

    8541.29.00.95

  • Factory Lead Time:

    14 Weeks

  • Manufacturer:

    STMicroelectronics

  • YTEOL:

    9

  • Collector Current-Max (IC):

    12 A

  • Collector-Emitter Voltage-Max:

    100 V

  • Configuration:

    DARLINGTON WITH BUILT-IN DIODE AND RESISTOR

  • DC Current Gain-Min (hFE):

    100

  • JEDEC-95 Code:

    TO-220AB

  • JESD-30 Code:

    R-PSFM-T3

  • JESD-609 Code:

    e3

  • Number of Elements:

    1

  • Number of Terminals:

    3

  • Operating Temperature-Max:

    150 °C

  • Package Body Material:

    PLASTIC/EPOXY

  • Package Shape:

    RECTANGULAR

  • Package Style:

    FLANGE MOUNT

  • Polarity/Channel Type:

    PNP

  • Power Dissipation Ambient-Max:

    80 W

  • Power Dissipation-Max (Abs):

    80 W

  • Qualification Status:

    Not Qualified

  • Surface Mount:

    NO

  • Terminal Finish:

    Matte Tin (Sn)

  • Terminal Form:

    THROUGH-HOLE

  • Terminal Position:

    SINGLE

  • Transistor Application:

    SWITCHING

  • Transistor Element Material:

    SILICON

  • Transition Frequency-Nom (fT):

    20 MHz

  • VCEsat-Max:

    3 V

BDW94C Frequently Asked Questions (FAQs)

  • A good PCB layout for the BDW94C should include a large copper area for heat dissipation, with multiple vias connecting the top and bottom layers. This helps to reduce thermal resistance and improve heat transfer.
  • To ensure reliable operation at high temperatures, it's essential to follow the recommended thermal design guidelines, use a suitable heat sink, and ensure good airflow around the device. Additionally, consider using a thermal interface material to improve heat transfer between the device and heat sink.
  • For EMI filtering and noise reduction, use a pi-filter configuration with a common-mode choke, and ensure that the filter components are placed close to the BDW94C. Also, use a shielded cable for the output and consider adding a ferrite bead to the input for additional noise reduction.
  • To optimize the output filter design, use a combination of capacitors with different values and types (e.g., ceramic, electrolytic, and film capacitors). This helps to reduce ripple and noise across the frequency spectrum. Additionally, consider using a snubber circuit to reduce high-frequency noise.
  • For testing and measurement, use a high-impedance probe to measure the output voltage, and ensure that the oscilloscope is set to the correct bandwidth and sampling rate. Also, use a current probe to measure the output current, and consider using a thermal camera to monitor the device temperature.

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BDW94C Overview

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About STMicroelectronics

STMicroelectronics (ST) is a global semiconductor company that designs, manufactures, and markets a broad range of integrated circuits (ICs), discrete devices, and other electronic components. STMicroelectronics offers a diverse portfolio of semiconductor products covering a wide range of applications and industries. Their product categories include microcontrollers, analog and mixed-signal ICs, MEMS (Micro-Electro-Mechanical Systems) sensors, power management ICs, RF (Radio Frequency) transceivers, aut

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