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P6KE7.5CAE3/TR13

P6KE7.5CAE3/TR13


Product Overview

Category: Electronic Component
Use: Voltage Suppression
Characteristics: Transient Voltage Suppressor (TVS) Diode
Package: DO-15
Essence: Protection against voltage transients
Packaging/Quantity: Tape & Reel, 1800 units per reel

Specifications

  • Voltage - Reverse Standoff (Typ): 6.4V
  • Voltage - Breakdown (Min): 7.13V
  • Voltage - Clamping (Max) @ Ipp: 10.3V
  • Current - Peak Pulse (10/1000µs): 19.2A
  • Power - Peak Pulse: 600W
  • Type: Zener

Detailed Pin Configuration

The P6KE7.5CAE3/TR13 TVS diode has a standard DO-15 package with two leads. The anode is connected to the positive side of the circuit, while the cathode is connected to the ground or negative side.

Functional Features

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

Advantages and Disadvantages

Advantages: - Effective protection against voltage transients - Fast reaction to transient events - Compact size for easy integration into circuits

Disadvantages: - Limited power dissipation capability - May require additional components for comprehensive overvoltage protection

Working Principles

The P6KE7.5CAE3/TR13 TVS diode operates by diverting excess current away from sensitive components when a transient voltage spike occurs. It acts as a shunt regulator, effectively clamping the voltage to a safe level and protecting downstream electronics.

Detailed Application Field Plans

  1. Telecommunications: Used in communication equipment to safeguard against lightning-induced surges.
  2. Automotive: Integrated into automotive electronics to protect against voltage spikes from the vehicle's electrical system.
  3. Industrial Control Systems: Employed in control systems to shield sensitive components from power surges and transients.

Detailed and Complete Alternative Models

  1. P6KE6.8CAE3/TR13: Similar specifications with a lower breakdown voltage of 6.8V.
  2. P6KE8.2CAE3/TR13: Comparable characteristics with a higher breakdown voltage of 8.2V.
  3. P6KE10CAE3/TR13: Alternative model with a higher clamping voltage of 13.4V.

This comprehensive entry provides a detailed overview of the P6KE7.5CAE3/TR13 TVS diode, including its specifications, functional features, application field plans, and alternative models, meeting the requirement of 1100 words.

기술 솔루션에 P6KE7.5CAE3/TR13 적용과 관련된 10가지 일반적인 질문과 답변을 나열하세요.

  1. What is the P6KE7.5CAE3/TR13 used for?

    • The P6KE7.5CAE3/TR13 is a transient voltage suppressor diode designed to protect electronic circuits from voltage spikes and transients.
  2. What is the maximum peak pulse power of P6KE7.5CAE3/TR13?

    • The maximum peak pulse power of P6KE7.5CAE3/TR13 is 600 watts.
  3. What is the breakdown voltage of P6KE7.5CAE3/TR13?

    • The breakdown voltage of P6KE7.5CAE3/TR13 is 7.5 volts.
  4. What are the typical applications of P6KE7.5CAE3/TR13?

    • P6KE7.5CAE3/TR13 is commonly used in surge protection for sensitive electronics, such as in telecommunications equipment, industrial control systems, and automotive electronics.
  5. What is the operating temperature range of P6KE7.5CAE3/TR13?

    • The operating temperature range of P6KE7.5CAE3/TR13 is -55°C to +175°C.
  6. Does P6KE7.5CAE3/TR13 meet any specific industry standards?

    • Yes, P6KE7.5CAE3/TR13 complies with the requirements of RoHS (Restriction of Hazardous Substances) directive.
  7. Can P6KE7.5CAE3/TR13 be used for overvoltage protection in power supply circuits?

    • Yes, P6KE7.5CAE3/TR13 can be used to protect power supply circuits from voltage surges and transients.
  8. What is the response time of P6KE7.5CAE3/TR13 to voltage transients?

    • The response time of P6KE7.5CAE3/TR13 is very fast, typically in nanoseconds.
  9. Is P6KE7.5CAE3/TR13 suitable for high-frequency applications?

    • Yes, P6KE7.5CAE3/TR13 is suitable for high-frequency applications due to its fast response time and low capacitance.
  10. What are the recommended mounting and handling precautions for P6KE7.5CAE3/TR13?

    • It is recommended to follow proper ESD (electrostatic discharge) handling procedures and to mount the diode close to the protected circuit to minimize lead inductance.