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MXP4KE400CA

MXP4KE400CA Product Overview

Introduction

The MXP4KE400CA belongs to the category of high-power transient voltage suppressor (TVS) diodes. These diodes are designed to protect sensitive electronics from voltage transients induced by lightning, electrostatic discharge (ESD), and other transient voltage events.

Basic Information Overview

  • Category: High-power transient voltage suppressor diode
  • Use: Protection against voltage transients induced by lightning, ESD, and other transient voltage events
  • Characteristics: High power handling capability, fast response time, low clamping voltage
  • Package: Axial leaded, surface mount
  • Essence: Safeguarding sensitive electronics from voltage transients
  • Packaging/Quantity: Available in reels, tubes, or bulk packaging with varying quantities

Specifications

  • Peak Power Dissipation: 400W
  • Breakdown Voltage: 5V to 440V
  • Operating Temperature Range: -55°C to 175°C
  • Polarity: Unidirectional

Detailed Pin Configuration

The MXP4KE400CA is available in both axial leaded and surface mount packages. The pin configuration includes: - Anode - Cathode

Functional Features

  • Fast response time to transient voltage events
  • Low clamping voltage to limit the voltage excursion on sensitive electronics
  • High power dissipation capability for reliable protection

Advantages and Disadvantages

Advantages

  • Effective protection against voltage transients
  • Wide range of breakdown voltages available
  • Suitable for various electronic applications

Disadvantages

  • Higher cost compared to lower power TVS diodes
  • Requires careful consideration of placement and layout for optimal performance

Working Principles

The MXP4KE400CA operates based on the principle of avalanche breakdown. When a transient voltage event occurs, the diode rapidly conducts, diverting the excess energy away from the protected circuitry and limiting the voltage to a safe level.

Detailed Application Field Plans

The MXP4KE400CA is widely used in various applications including: - Power supplies - Communication equipment - Automotive electronics - Industrial control systems - Consumer electronics

Detailed and Complete Alternative Models

  • MXP6KE500CA
  • MXP10KE600CA
  • MXP15KE700CA
  • MXP20KE800CA

In conclusion, the MXP4KE400CA is a high-power transient voltage suppressor diode that offers effective protection against voltage transients for a wide range of electronic applications.

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技術ソリューションにおける MXP4KE400CA の適用に関連する 10 件の一般的な質問と回答をリストします。

  1. What is MXP4KE400CA?

    • MXP4KE400CA is a type of transient voltage suppressor diode used to protect electronic circuits from voltage spikes and transients.
  2. What is the maximum voltage rating of MXP4KE400CA?

    • The maximum voltage rating of MXP4KE400CA is 342 volts.
  3. What is the peak pulse power handling capability of MXP4KE400CA?

    • MXP4KE400CA has a peak pulse power handling capability of 400 watts.
  4. What are the typical applications of MXP4KE400CA?

    • MXP4KE400CA is commonly used in surge protection for telecommunications equipment, industrial control systems, and automotive electronics.
  5. What is the breakdown voltage of MXP4KE400CA?

    • The breakdown voltage of MXP4KE400CA is typically around 356 volts.
  6. What is the response time of MXP4KE400CA to voltage transients?

    • MXP4KE400CA has a very fast response time, typically in the nanosecond range.
  7. How does MXP4KE400CA compare to other transient voltage suppressors?

    • MXP4KE400CA offers high surge capability and low clamping voltage, making it suitable for protecting sensitive electronic components.
  8. Can MXP4KE400CA be used in high-frequency applications?

    • Yes, MXP4KE400CA can be used in high-frequency applications due to its fast response time and low capacitance.
  9. What are the temperature specifications for MXP4KE400CA?

    • MXP4KE400CA is typically rated for operation over a temperature range of -55°C to 175°C.
  10. Are there any specific layout or mounting considerations for using MXP4KE400CA?

    • It is recommended to minimize the length of leads and keep the device close to the protected circuit to reduce inductance and maximize its effectiveness.