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P6KE160A-B

P6KE160A-B

Product Overview

Category

The P6KE160A-B belongs to the category of transient voltage suppressor (TVS) diodes.

Use

It is used to protect sensitive electronic components from voltage spikes and transients.

Characteristics

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

Package

The P6KE160A-B is typically available in a DO-15 package.

Essence

The essence of the P6KE160A-B lies in its ability to divert excessive voltage away from sensitive components, thereby safeguarding them from damage.

Packaging/Quantity

The P6KE160A-B is commonly packaged in reels or tubes, with quantities varying based on manufacturer specifications.

Specifications

  • Peak Power Dissipation: 600W
  • Breakdown Voltage: 142V to 158V
  • Maximum Clamping Voltage: 243V at 1A
  • Operating Temperature Range: -55°C to 175°C
  • RoHS Compliant: Yes

Detailed Pin Configuration

The P6KE160A-B TVS diode has a standard two-pin configuration, with no polarity distinction.

Functional Features

  • Bi-directional clamping capability
  • Low incremental surge resistance
  • Fast response time

Advantages

  • Effective protection against voltage surges
  • Fast response time ensures minimal impact on the protected circuit
  • Wide operating temperature range

Disadvantages

  • Limited peak power dissipation compared to higher-rated TVS diodes
  • Higher clamping voltage compared to some alternative models

Working Principles

When a voltage surge occurs, the P6KE160A-B conducts current to divert the excess energy away from the protected circuit. It does so by rapidly transitioning into a low-resistance state, effectively clamping the voltage to a safe level.

Detailed Application Field Plans

The P6KE160A-B is commonly used in various applications, including: - Power supplies - Telecommunication equipment - Automotive electronics - Industrial control systems - Consumer electronics

Detailed and Complete Alternative Models

Some alternative models to the P6KE160A-B include: - P6KE120A-B - P6KE130A-B - P6KE150A-B - P6KE170A-B

In conclusion, the P6KE160A-B transient voltage suppressor diode offers effective protection against voltage surges and transients, making it an essential component in various electronic applications.

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Seznam 10 běžných otázek a odpovědí souvisejících s aplikací P6KE160A-B v technických řešeních

  1. What is the P6KE160A-B?

    • The P6KE160A-B 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 the P6KE160A-B?

    • The maximum peak pulse power of the P6KE160A-B is 600 watts.
  3. What is the breakdown voltage of the P6KE160A-B?

    • The breakdown voltage of the P6KE160A-B is 144V.
  4. How does the P6KE160A-B protect electronic circuits?

    • The P6KE160A-B clamps the voltage during transient events, diverting excess current away from sensitive components and preventing damage.
  5. What are some common applications for the P6KE160A-B?

    • The P6KE160A-B is commonly used in power supplies, telecommunications equipment, automotive electronics, and industrial control systems.
  6. What is the response time of the P6KE160A-B?

    • The response time of the P6KE160A-B is very fast, typically in the nanosecond range.
  7. Can the P6KE160A-B be used for overvoltage protection in automotive systems?

    • Yes, the P6KE160A-B is suitable for overvoltage protection in automotive systems due to its high surge capability and reliability.
  8. Is the P6KE160A-B RoHS compliant?

    • Yes, the P6KE160A-B is RoHS compliant, making it suitable for use in environmentally conscious designs.
  9. What is the operating temperature range of the P6KE160A-B?

    • The P6KE160A-B can operate within a temperature range of -55°C to 175°C, making it suitable for a wide range of environments.
  10. Can multiple P6KE160A-B diodes be connected in series or parallel for higher voltage or current handling?

    • Yes, multiple P6KE160A-B diodes can be connected in series to handle higher voltages or in parallel to handle higher currents, but proper consideration should be given to ensure balanced sharing of voltage and current across the diodes.