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ASSR-1611-001E - Avago Technologies

Description: Relay SSR 2.5A 60V AC/DC-o/p PDIP6 Solid State Relay 2.5 A PCB Mount MOSFET, 1.7 V

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ASSR-1611-001E - Avago Technologies PCB footprint - Dual-In-Line Packages - Dual-In-Line Packages - ASSR-1611 6-Pin DIP Package
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ASSR-1611-001E - Avago Technologies  - 3D model - Dual-In-Line Packages - ASSR-1611 6-Pin DIP Package
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ASSR-1611-001E Details

  • Manufacturer Part Number:

    ASSR-1611-001E

  • Pbfree Code:

    Yes

  • Rohs Code:

    Yes

  • Part Life Cycle Code:

    Active

  • Package Description:

    0.300 INCH, ROHS COMPLIANT, DIP-6

  • Reach Compliance Code:

    Compliant

  • Country Of Origin:

    Thailand

  • HTS Code:

    8541.40.95.00

  • Manufacturer:

    Avago Technologies

  • YTEOL:

    5.94

  • Additional Feature:

    CMOS COMPATIBLE, UL RECOGNIZED

  • Configuration:

    COMPLEX

  • Forward Current-Max:

    0.02 A

  • Input Type:

    DC

  • Isolation Voltage-Max:

    3750 V

  • JESD-609 Code:

    e3

  • Number of Elements:

    1

  • On-State Current-Max:

    2.5 A

  • On-state Resistance-Max:

    0.1 Ω

  • Operating Temperature-Max:

    85 °C

  • Operating Temperature-Min:

    -40 °C

  • Optoelectronic Device Type:

    TRANSISTOR OUTPUT SSR

  • Output Circuit Type:

    MOSFET

  • Overall Height:

    4.7 mm

  • Overall Length:

    9.9 mm

  • Terminal Finish:

    Matte Tin (Sn)

ASSR-1611-001E Frequently Asked Questions (FAQs)

  • A 4-layer PCB with a solid ground plane and a separate power plane is recommended. The device should be placed near the center of the board, and the antenna should be placed at least 10mm away from other components.
  • Implementing a robust error correction mechanism, such as CRC and retransmission, and using a spread spectrum modulation technique can help ensure reliable communication in noisy environments.
  • The maximum transmission distance depends on the environment and the antenna used. In ideal conditions, the device can achieve a transmission distance of up to 100 meters. However, this can be affected by obstacles, interference, and antenna design.
  • Optimizing power consumption can be achieved by using a low-power mode, reducing the transmission power, and using a power-saving protocol. Additionally, using a low-power microcontroller and optimizing the system's sleep mode can also help reduce power consumption.
  • The recommended antennas for use with the ASSR-1611-001E are a 1/4 wavelength monopole antenna or a chip antenna with a gain of 2-3 dBi. The antenna should be matched to the device's impedance for optimal performance.

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