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BYWB29-200-E3/81

BYWB29-200-E3/81

Product Overview

Category

The BYWB29-200-E3/81 belongs to the category of semiconductor devices.

Use

It is used as a rectifier diode in electronic circuits.

Characteristics

  • High current capability
  • Low forward voltage drop
  • Fast switching speed

Package

The BYWB29-200-E3/81 is typically available in a surface mount package.

Essence

This diode is essential for converting alternating current (AC) to direct current (DC) in various electronic applications.

Packaging/Quantity

It is commonly packaged in reels or tubes and is available in quantities suitable for production runs.

Specifications

  • Maximum Forward Voltage: 1.2V
  • Reverse Voltage: 200V
  • Average Rectified Current: 2A
  • Operating Temperature Range: -55°C to 150°C

Detailed Pin Configuration

The BYWB29-200-E3/81 has a standard pin configuration with two terminals, anode, and cathode.

Functional Features

  • Efficient rectification of AC to DC
  • Low power dissipation
  • Compact size for space-constrained designs

Advantages

  • High current capability allows for use in demanding applications
  • Low forward voltage drop minimizes power loss
  • Fast switching speed enables rapid response in circuits

Disadvantages

  • Limited reverse voltage tolerance compared to some other diode types
  • Sensitive to overvoltage conditions

Working Principles

The BYWB29-200-E3/81 operates based on the principle of unidirectional conduction, allowing current flow in one direction while blocking it in the reverse direction.

Detailed Application Field Plans

This diode is widely used in power supply units, battery chargers, inverters, and motor drive circuits due to its efficient rectification and fast switching characteristics.

Detailed and Complete Alternative Models

  • BYWB29-100-E3/81
  • BYWB29-400-E3/81
  • BYWB29-600-E3/81

In conclusion, the BYWB29-200-E3/81 rectifier diode offers high current capability, low forward voltage drop, and fast switching speed, making it suitable for various electronic applications requiring efficient AC to DC conversion.

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Seznam 10 běžných otázek a odpovědí souvisejících s aplikací BYWB29-200-E3/81 v technických řešeních

  1. What is BYWB29-200-E3/81?

    • BYWB29-200-E3/81 is a specific type of diode used in electronic circuits for rectification and voltage regulation.
  2. What are the key specifications of BYWB29-200-E3/81?

    • The key specifications include a maximum repetitive reverse voltage of 200V, forward current of 3A, and a low forward voltage drop.
  3. How is BYWB29-200-E3/81 typically used in technical solutions?

    • It is commonly used in power supply circuits, voltage regulators, and rectifier circuits to convert alternating current (AC) to direct current (DC).
  4. What are the advantages of using BYWB29-200-E3/81 in technical applications?

    • Its low forward voltage drop and high current capability make it suitable for efficient power conversion and voltage regulation.
  5. Are there any important considerations when designing with BYWB29-200-E3/81?

    • It's crucial to consider heat dissipation and thermal management due to its power handling capabilities.
  6. Can BYWB29-200-E3/81 be used in high-frequency applications?

    • While it can be used in some high-frequency applications, it's more commonly employed in medium to low frequency circuits due to its characteristics.
  7. What are the typical operating temperatures for BYWB29-200-E3/81?

    • The diode can typically operate within a temperature range of -55°C to 175°C, making it suitable for various environments.
  8. Does BYWB29-200-E3/81 require any special mounting or handling considerations?

    • Proper heat sinking and careful handling to avoid static discharge are important considerations when working with this diode.
  9. Can BYWB29-200-E3/81 be used in automotive applications?

    • Yes, it can be used in automotive electronics where reliable power conversion and regulation are required.
  10. Are there any common failure modes associated with BYWB29-200-E3/81?

    • Overheating due to excessive current or inadequate heat dissipation is a common cause of failure, so proper design and thermal management are essential.