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SMBJ5915CE3/TR13

SMBJ5915CE3/TR13

Product Overview

  • Category: Diode
  • Use: Voltage clamping in electronic circuits
  • Characteristics: Fast response time, low leakage current, high surge capability
  • Package: SMB (DO-214AA)
  • Essence: Transient voltage suppressor diode
  • Packaging/Quantity: Tape & Reel / 3000 units per reel

Specifications

  • Peak Pulse Power: 600W
  • Breakdown Voltage: 6.8V
  • Operating Voltage: 5.8V
  • Reverse Standoff Voltage: 5V
  • Clamping Voltage: 9.2V
  • Maximum Surge Current: 30A
  • Operating Temperature Range: -55°C to +150°C

Detailed Pin Configuration

The SMBJ5915CE3/TR13 has two pins, with the anode connected to the positive side and the cathode connected to the negative side of the circuit.

Functional Features

  • Provides protection against transient voltage spikes
  • Fast response time ensures minimal damage to sensitive components
  • Low leakage current for efficient operation

Advantages and Disadvantages

Advantages: - High surge capability - Compact package size - Wide operating temperature range

Disadvantages: - Limited breakdown voltage compared to some alternatives - Higher clamping voltage than some competing models

Working Principles

When a transient voltage spike occurs in the circuit, the SMBJ5915CE3/TR13 activates and diverts the excess voltage to protect downstream components. It does this by rapidly switching into a low-resistance state, effectively "clamping" the voltage to a safe level.

Detailed Application Field Plans

The SMBJ5915CE3/TR13 is commonly used in various electronic devices and systems, including: - Power supplies - Communication equipment - Automotive electronics - Industrial control systems

Detailed and Complete Alternative Models

Some alternative models to consider include: - SMBJ5916B: Higher breakdown voltage - SMBJ5914D: Lower clamping voltage - SMBJ5917A: Enhanced surge current capability

In conclusion, the SMBJ5915CE3/TR13 is a reliable transient voltage suppressor diode with fast response time and high surge capability, making it suitable for a wide range of electronic applications.

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Enumere 10 preguntas y respuestas comunes relacionadas con la aplicación de SMBJ5915CE3/TR13 en soluciones técnicas

  1. What is the SMBJ5915CE3/TR13?

    • The SMBJ5915CE3/TR13 is a transient voltage suppressor diode designed to protect sensitive electronic components from voltage spikes and transients.
  2. What is the maximum working voltage of the SMBJ5915CE3/TR13?

    • The maximum working voltage of the SMBJ5915CE3/TR13 is 15V.
  3. What is the peak pulse power of the SMBJ5915CE3/TR13?

    • The peak pulse power of the SMBJ5915CE3/TR13 is 600W.
  4. What are the typical applications of the SMBJ5915CE3/TR13?

    • The SMBJ5915CE3/TR13 is commonly used in applications such as power supplies, telecommunications equipment, automotive electronics, and industrial controls for transient voltage protection.
  5. What is the response time of the SMBJ5915CE3/TR13?

    • The response time of the SMBJ5915CE3/TR13 is very fast, typically responding within nanoseconds to clamp transient voltages.
  6. How does the SMBJ5915CE3/TR13 provide protection?

    • The SMBJ5915CE3/TR13 provides protection by diverting excess current away from sensitive components when a transient voltage event occurs.
  7. What is the operating temperature range of the SMBJ5915CE3/TR13?

    • The SMBJ5915CE3/TR13 has an operating temperature range of -55°C to 150°C, making it suitable for a wide range of environments.
  8. Is the SMBJ5915CE3/TR13 RoHS compliant?

    • Yes, the SMBJ5915CE3/TR13 is RoHS compliant, meaning it meets the Restriction of Hazardous Substances directive.
  9. Can the SMBJ5915CE3/TR13 be used for ESD protection?

    • While primarily designed for transient voltage suppression, the SMBJ5915CE3/TR13 can also provide some level of electrostatic discharge (ESD) protection.
  10. Are there any recommended layout considerations for using the SMBJ5915CE3/TR13?

    • It is recommended to place the SMBJ5915CE3/TR13 as close as possible to the protected circuitry and to minimize the length and impedance of the traces connecting it to the circuitry for optimal performance.