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P6KE11CAHE3/54

P6KE11CAHE3/54

Product Overview

Category

The P6KE11CAHE3/54 belongs to the category of transient voltage suppressor diodes.

Use

It is used to protect electronic circuits from overvoltage transients.

Characteristics

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

Package

The P6KE11CAHE3/54 is available in a DO-15 package.

Essence

This diode is essential for safeguarding sensitive electronic components from voltage spikes.

Packaging/Quantity

The P6KE11CAHE3/54 is typically packaged in reels and is available in quantities suitable for production runs.

Specifications

  • Peak Pulse Power: 600W
  • Breakdown Voltage: 11V
  • Maximum Clamping Voltage: 18.2V
  • Operating Temperature Range: -55°C to 175°C

Detailed Pin Configuration

The P6KE11CAHE3/54 has two pins, with the anode connected to one pin and the cathode connected to the other.

Functional Features

  • Suppresses voltage transients by diverting excess current away from sensitive components
  • Provides protection against voltage surges and ESD events

Advantages and Disadvantages

Advantages

  • Fast response time ensures quick protection
  • Low clamping voltage minimizes stress on protected components
  • High surge capability provides robust protection

Disadvantages

  • May require additional circuitry for comprehensive overvoltage protection
  • Can degrade over time with repeated exposure to high-energy transients

Working Principles

When a voltage transient occurs, the P6KE11CAHE3/54 conducts excess current to ground, limiting the voltage across the protected circuit.

Detailed Application Field Plans

The P6KE11CAHE3/54 is commonly used in: - Power supplies - Communication equipment - Automotive electronics - Industrial control systems

Detailed and Complete Alternative Models

Some alternative models to the P6KE11CAHE3/54 include: - P6KE6.8CAHE3/54 - P6KE13CAHE3/54 - P6KE15CAHE3/54 - P6KE18CAHE3/54

In conclusion, the P6KE11CAHE3/54 transient voltage suppressor diode is a crucial component for protecting electronic circuits from voltage transients. Its fast response time, low clamping voltage, and high surge capability make it an effective solution for various applications in different industries.

기술 솔루션에 P6KE11CAHE3/54 적용과 관련된 10가지 일반적인 질문과 답변을 나열하세요.

  1. What is the P6KE11CAHE3/54 used for?

    • The P6KE11CAHE3/54 is a transient voltage suppressor diode designed to protect electronic circuits from voltage spikes and transients.
  2. What is the maximum clamping voltage of the P6KE11CAHE3/54?

    • The maximum clamping voltage of the P6KE11CAHE3/54 is 18.2V at 10A.
  3. What is the peak pulse power dissipation of the P6KE11CAHE3/54?

    • The peak pulse power dissipation of the P6KE11CAHE3/54 is 600W.
  4. In what type of applications can the P6KE11CAHE3/54 be used?

    • The P6KE11CAHE3/54 can be used in various applications such as power supplies, telecommunications equipment, automotive electronics, and industrial control systems.
  5. What is the breakdown voltage of the P6KE11CAHE3/54?

    • The breakdown voltage of the P6KE11CAHE3/54 is 12V.
  6. Is the P6KE11CAHE3/54 RoHS compliant?

    • Yes, the P6KE11CAHE3/54 is RoHS compliant, making it suitable for use in environmentally sensitive applications.
  7. What is the operating temperature range of the P6KE11CAHE3/54?

    • The P6KE11CAHE3/54 has an operating temperature range of -55°C to 175°C, allowing it to function effectively in a wide range of environments.
  8. Can the P6KE11CAHE3/54 be used for surge protection in power supply units?

    • Yes, the P6KE11CAHE3/54 is commonly used for surge protection in power supply units to safeguard sensitive components from voltage surges.
  9. Does the P6KE11CAHE3/54 require a heat sink for proper operation?

    • In most applications, the P6KE11CAHE3/54 does not require a heat sink due to its high power dissipation capability.
  10. What are some typical failure modes of the P6KE11CAHE3/54?

    • Some typical failure modes of the P6KE11CAHE3/54 include short circuit due to excessive current or open circuit due to prolonged exposure to overvoltage conditions. Regular testing and monitoring can help prevent these failures.