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NJW4350D - Nisshinbo

Description: MAX3087ESA+T

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PCB Footprints
NJW4350D - Nisshinbo PCB footprint - Dual-In-Line Packages - Dual-In-Line Packages - DIP16
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3D Models
NJW4350D - Nisshinbo  - 3D model - Dual-In-Line Packages - DIP16
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NJW4350D Details

  • Manufacturer Part Number:

    NJW4350D

  • Part Life Cycle Code:

    Obsolete

  • ECCN Code:

    EAR99

  • HTS Code:

    8542.39.00.60

  • Factory Lead Time:

    12 Weeks

  • Manufacturer:

    Nisshinbo Micro Devices

  • YTEOL:

    0

  • Analog IC - Other Type:

    STEPPER MOTOR CONTROLLER

  • JESD-30 Code:

    R-PDIP-T16

  • Number of Functions:

    1

  • Number of Terminals:

    16

  • Operating Temperature-Max:

    85 °C

  • Operating Temperature-Min:

    -40 °C

  • Output Current-Max:

    1.5 A

  • Package Body Material:

    PLASTIC/EPOXY

  • Package Code:

    DIP

  • Package Shape:

    RECTANGULAR

  • Package Style:

    IN-LINE

  • Qualification Status:

    Not Qualified

  • Supply Voltage-Max (Vsup):

    5.5 V

  • Supply Voltage-Min (Vsup):

    4.5 V

  • Supply Voltage-Nom (Vsup):

    5 V

  • Surface Mount:

    NO

  • Technology:

    DMOS

  • Temperature Grade:

    INDUSTRIAL

  • Terminal Form:

    THROUGH-HOLE

  • Terminal Position:

    DUAL

NJW4350D Frequently Asked Questions (FAQs)

  • A recommended PCB layout for optimal thermal performance would be to use a 2-layer or 4-layer board with a solid ground plane on the bottom layer, and to place thermal vias under the IC to dissipate heat effectively.
  • To ensure stable operation with a single power supply, it's recommended to use a decoupling capacitor (e.g., 10uF) between VCC and GND, and to keep the power supply voltage within the recommended range (4.5V to 5.5V).
  • The maximum allowable power dissipation for the NJW4350D is 1.5W. Exceeding this limit may cause the IC to overheat and potentially fail.
  • While the NJW4350D is rated for operation up to 85°C, it's recommended to derate the power dissipation by 1.5mW/°C above 70°C to ensure reliable operation. For high-temperature applications, consider using a heat sink or thermal management techniques.
  • To troubleshoot issues with the NJW4350D, start by verifying the power supply voltage, checking for proper decoupling, and ensuring that the input signals are within the recommended ranges. Use an oscilloscope to monitor the output signals and check for any signs of oscillation or instability.

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