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SMCJ16A-M3/9AT

SMCJ16A-M3/9AT

Product Overview

The SMCJ16A-M3/9AT belongs to the category of transient voltage suppressor diodes. These diodes are used to protect sensitive electronic devices from voltage spikes and transients. The SMCJ16A-M3/9AT is characterized by its high surge capability, low clamping voltage, and fast response time. It is typically available in a DO-214AB package and is designed to provide essential protection for a wide range of electronic applications.

Package: DO-214AB
Essence: Transient Voltage Suppressor Diode
Packaging/Quantity: Tape & Reel (1000 pieces per reel)

Specifications

  • Peak Pulse Power: 1500W
  • Breakdown Voltage: 16V
  • Clamping Voltage: 28.8V
  • Maximum Reverse Leakage Current: 1µA
  • Operating Temperature Range: -55°C to +150°C

Detailed Pin Configuration

The SMCJ16A-M3/9AT follows a standard DO-214AB pin configuration with two leads for connection.

Functional Features

  • High surge capability
  • Fast response time
  • Low clamping voltage
  • RoHS compliant

Advantages and Disadvantages

Advantages: - Effective protection against voltage transients - Wide operating temperature range - RoHS compliant

Disadvantages: - Relatively low breakdown voltage compared to some alternative models

Working Principles

The SMCJ16A-M3/9AT operates by diverting excess current away from sensitive components when a voltage transient occurs. This helps to prevent damage to the connected circuitry by limiting the voltage across it.

Detailed Application Field Plans

The SMCJ16A-M3/9AT is commonly used in various electronic applications including: - Power supplies - Telecommunication equipment - Automotive electronics - Industrial control systems

Detailed and Complete Alternative Models

Some alternative models to the SMCJ16A-M3/9AT include: - P6SMB16A - 1.5SMC16A - SMBJ16A

In conclusion, the SMCJ16A-M3/9AT transient voltage suppressor diode offers reliable protection against voltage transients and surges in a wide range of electronic applications. Its high surge capability, low clamping voltage, and fast response time make it a valuable component in safeguarding sensitive electronic devices.

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Seznam 10 běžných otázek a odpovědí souvisejících s aplikací SMCJ16A-M3/9AT v technických řešeních

  1. What is the maximum peak pulse current rating of SMCJ16A-M3/9AT?

    • The maximum peak pulse current rating of SMCJ16A-M3/9AT is 300A.
  2. What is the breakdown voltage of SMCJ16A-M3/9AT?

    • The breakdown voltage of SMCJ16A-M3/9AT is 16V.
  3. What is the typical clamping voltage of SMCJ16A-M3/9AT?

    • The typical clamping voltage of SMCJ16A-M3/9AT is 25.6V at 10A.
  4. What are the applications of SMCJ16A-M3/9AT in technical solutions?

    • SMCJ16A-M3/9AT is commonly used for transient voltage suppression in various electronic and electrical systems, such as power supplies, telecommunications equipment, industrial controls, and automotive electronics.
  5. What is the operating temperature range of SMCJ16A-M3/9AT?

    • The operating temperature range of SMCJ16A-M3/9AT is -55°C to 150°C.
  6. Is SMCJ16A-M3/9AT RoHS compliant?

    • Yes, SMCJ16A-M3/9AT is RoHS compliant, making it suitable for use in environmentally sensitive applications.
  7. What is the package type of SMCJ16A-M3/9AT?

    • SMCJ16A-M3/9AT comes in a surface mount SMC package.
  8. Does SMCJ16A-M3/9AT have a low leakage current?

    • Yes, SMCJ16A-M3/9AT has a low leakage current, which is beneficial for minimizing power loss in standby or off-state conditions.
  9. Can SMCJ16A-M3/9AT handle multiple surge events?

    • Yes, SMCJ16A-M3/9AT is designed to withstand multiple surge events without degradation in performance.
  10. Are there any recommended layout considerations for using SMCJ16A-M3/9AT in circuit designs?

    • It is recommended to minimize the length and impedance of the traces connecting SMCJ16A-M3/9AT to the circuit to ensure optimal transient voltage suppression performance. Additionally, proper thermal management should be considered due to the potential for high power dissipation during transient events.