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MXSMLJ18CA

MXSMLJ18CA

Product Overview

  • Belongs to: Electronic components
  • Category: TVS diode
  • Use: Protection against transient voltage spikes
  • Characteristics: Fast response time, low clamping voltage, high surge current capability
  • Package: SOD-123 package
  • Essence: Provides robust protection for sensitive electronic equipment
  • Packaging/Quantity: Available in reels of 3000 units

Specifications

  • Peak Pulse Power: 300W
  • Breakdown Voltage: 18V
  • Clamping Voltage: 29.2V
  • Operating Temperature Range: -55°C to +150°C
  • Storage Temperature Range: -55°C to +150°C

Detailed Pin Configuration

  • Pin 1: Anode
  • Pin 2: Cathode

Functional Features

  • Fast response to transient over-voltage events
  • Low clamping voltage to protect downstream components
  • High surge current capability for reliable protection

Advantages and Disadvantages

Advantages

  • Effective protection against voltage transients
  • Compact SOD-123 package for space-constrained applications
  • Wide operating temperature range

Disadvantages

  • Limited breakdown voltage compared to higher-rated TVS diodes
  • May require additional circuitry for handling sustained over-voltage conditions

Working Principles

The MXSMLJ18CA operates by diverting excessive voltage away from sensitive components during transient voltage spikes. When the voltage exceeds the breakdown voltage, the diode conducts, providing a low-impedance path for the excess energy to be dissipated.

Detailed Application Field Plans

The MXSMLJ18CA is commonly used in various electronic systems, including: - Consumer electronics - Telecommunication equipment - Industrial control systems - Automotive electronics

Detailed and Complete Alternative Models

  • Alternative Model 1: P6SMB18CA
    • Breakdown Voltage: 18V
    • Package: DO-214AA
  • Alternative Model 2: SMBJ18CA
    • Breakdown Voltage: 18V
    • Package: DO-214AA
  • Alternative Model 3: 1.5SMC18CA
    • Breakdown Voltage: 18V
    • Package: DO-214AB

This concludes the detailed entry for the MXSMLJ18CA TVS diode, covering its product overview, specifications, functional features, advantages and disadvantages, working principles, application field plans, and alternative models.

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Enumere 10 preguntas y respuestas comunes relacionadas con la aplicación de MXSMLJ18CA en soluciones técnicas

  1. What is MXSMLJ18CA?

    • MXSMLJ18CA is a transient voltage suppressor diode, commonly used to protect electronic circuits from voltage spikes and transients.
  2. What is the maximum working voltage of MXSMLJ18CA?

    • The maximum working voltage of MXSMLJ18CA is 18V.
  3. What is the peak pulse power handling capability of MXSMLJ18CA?

    • MXSMLJ18CA has a peak pulse power handling capability of 300W.
  4. In what type of applications is MXSMLJ18CA typically used?

    • MXSMLJ18CA is commonly used in applications such as power supplies, telecommunications equipment, automotive electronics, and industrial controls.
  5. What is the response time of MXSMLJ18CA to voltage transients?

    • The response time of MXSMLJ18CA to voltage transients is very fast, typically in the nanosecond range.
  6. How does MXSMLJ18CA protect electronic circuits?

    • MXSMLJ18CA protects electronic circuits by diverting excessive current away from sensitive components when voltage spikes or transients occur.
  7. Can MXSMLJ18CA be used for overvoltage protection in data communication systems?

    • Yes, MXSMLJ18CA is suitable for overvoltage protection in data communication systems, including Ethernet and USB interfaces.
  8. What are the temperature specifications for MXSMLJ18CA?

    • MXSMLJ18CA has an operating temperature range of -55°C to +150°C.
  9. Is MXSMLJ18CA RoHS compliant?

    • Yes, MXSMLJ18CA is RoHS compliant, meaning it meets the Restriction of Hazardous Substances directive.
  10. Are there any recommended layout considerations for integrating MXSMLJ18CA into a circuit?

    • Yes, it is recommended to minimize the length and impedance of the traces connecting MXSMLJ18CA to the protected circuit, and to ensure a low-inductance path to ground for optimal performance.