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LESR6-NP - LEM

Description: Current Sensor 6A 1 Channel Hall Effect, Closed Loop Bidirectional Module

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PCB Footprints
LESR6-NP - LEM PCB footprint - Other - Other - LESR6-NP-2
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3D Models
LESR6-NP - LEM  - 3D model - Other - LESR6-NP-2
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LESR6-NP Details

  • Manufacturer Part Number:

    LESR6-NP

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Active

  • Manufacturer:

    LEM Holdings SSA

  • Body Breadth:

    13.4 mm

  • Body Height:

    20.3 mm

  • Body Length or Diameter:

    21.91 mm

  • Mounting Feature:

    BOARD MOUNT

  • Number of Terminals:

    14

  • Operating Temperature-Max:

    105 °C

  • Operating Temperature-Min:

    -40 °C

  • Output Range:

    0.25-4.75V

  • Output Type:

    OUTPUT VOLTAGE

  • Package Shape/Style:

    RECTANGULAR

  • Sensors/Transducers Type:

    CURRENT SENSOR

  • Supply Voltage-Max:

    5.25 V

  • Supply Voltage-Min:

    4.75 V

  • Surface Mount:

    NO

LESR6-NP Frequently Asked Questions (FAQs)

  • The recommended PCB layout for the LESR6-NP involves keeping the current path as short as possible, using a solid ground plane, and placing the device close to the current-carrying conductor. Additionally, it's recommended to use a Kelvin connection for the sense lines to minimize errors.
  • The LESR6-NP has an internal overcurrent detection circuit that triggers an open-drain output when the current exceeds the specified threshold. This output can be connected to a microcontroller or other logic circuit to initiate a shutdown or alarm in the event of an overcurrent condition.
  • The typical response time of the LESR6-NP to changes in current is around 1-2 microseconds, making it suitable for high-speed current sensing applications.
  • Yes, the LESR6-NP is rated for operation up to 125°C, making it suitable for use in high-temperature environments. However, the device's accuracy and linearity may be affected at extreme temperatures, so it's essential to consult the datasheet and application notes for specific guidance.
  • The LESR6-NP has a shielded design and is constructed with EMI-resistant materials to minimize the effects of electromagnetic interference. Additionally, the device's differential output helps to reject common-mode noise and improve immunity to EMI.

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