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P6KA13AHE3/54

P6KA13AHE3/54 Encyclopedia Entry

Product Overview

The P6KA13AHE3/54 belongs to the category of TVS (Transient Voltage Suppressor) diodes. These diodes are designed to protect sensitive electronics from voltage transients induced by lightning, electrostatic discharge, and other transient voltage events. The P6KA13AHE3/54 is specifically used for surge protection in various electronic circuits.

Basic Information

  • Category: TVS Diodes
  • Use: Surge protection in electronic circuits
  • Characteristics: High surge capability, low clamping voltage
  • Package: DO-15
  • Essence: Protection against voltage transients
  • Packaging/Quantity: Available in reels or bulk packaging

Specifications

  • Peak Pulse Power: 600W
  • Breakdown Voltage: 11.7V to 13.3V
  • Operating Temperature Range: -55°C to +175°C
  • Polarity: Unidirectional

Detailed Pin Configuration

The P6KA13AHE3/54 TVS diode has a standard DO-15 package with two leads. The pin configuration is as follows: - Pin 1: Anode - Pin 2: Cathode

Functional Features

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

Advantages and Disadvantages

Advantages

  • Effective protection against voltage transients
  • Fast response time ensures minimal impact on the protected circuit
  • RoHS compliance for environmental friendliness

Disadvantages

  • Unidirectional protection only
  • Limited breakdown voltage range

Working Principles

The P6KA13AHE3/54 operates based on the principle of avalanche breakdown. When a transient voltage spike occurs, the TVS diode rapidly conducts, diverting excess current away from the protected circuit and limiting the voltage across it.

Detailed Application Field Plans

The P6KA13AHE3/54 is widely used in various applications requiring surge protection, including: - Power supplies - Communication equipment - Industrial control systems - Automotive electronics - Consumer electronics

Detailed and Complete Alternative Models

  • P6KE6.8A
  • 1.5KE15A
  • SMAJ12A

In conclusion, the P6KA13AHE3/54 TVS diode offers effective surge protection for a wide range of electronic circuits, making it an essential component in safeguarding sensitive electronics from transient voltage events.

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Lista 10 Vanliga frågor och svar relaterade till tillämpningen av P6KA13AHE3/54 i tekniska lösningar

Sure, here are 10 common questions and answers related to the application of P6KA13AHE3/54 in technical solutions:

  1. What is the P6KA13AHE3/54?

    • The P6KA13AHE3/54 is a TVS (transient voltage suppressor) diode designed to protect sensitive electronics from voltage spikes and transients.
  2. What is the maximum peak pulse power of P6KA13AHE3/54?

    • The maximum peak pulse power of P6KA13AHE3/54 is 600W.
  3. What is the breakdown voltage of P6KA13AHE3/54?

    • The breakdown voltage of P6KA13AHE3/54 is 11.7V.
  4. What are the typical applications of P6KA13AHE3/54?

    • P6KA13AHE3/54 is commonly used in surge protection for telecommunications equipment, industrial control systems, and automotive electronics.
  5. What is the operating temperature range of P6KA13AHE3/54?

    • The operating temperature range of P6KA13AHE3/54 is -55°C to +175°C.
  6. How does P6KA13AHE3/54 provide overvoltage protection?

    • P6KA13AHE3/54 clamps the voltage during transient events, diverting excess current away from sensitive components and preventing damage.
  7. Can P6KA13AHE3/54 be used in high-speed data lines?

    • Yes, P6KA13AHE3/54 can be used to protect high-speed data lines such as Ethernet, USB, and HDMI interfaces.
  8. Is P6KA13AHE3/54 RoHS compliant?

    • Yes, P6KA13AHE3/54 is RoHS compliant, making it suitable for use in environmentally conscious designs.
  9. What is the packaging type of P6KA13AHE3/54?

    • P6KA13AHE3/54 is available in a DO-15 package, which is a popular axial leaded package for through-hole mounting.
  10. Are there any recommended layout considerations when using P6KA13AHE3/54?

    • It is recommended to keep the traces short between the P6KA13AHE3/54 and the protected circuit, and to minimize any sharp bends or corners in the layout to reduce parasitic inductance.

I hope these answers are helpful! Let me know if you need more information.