تصویر کی نمائندگی ہو سکتی ہے۔
پروڈکٹ کی تفصیلات کے لیے وضاحتیں دیکھیں۔
SA6.0AHE3/73

SA6.0AHE3/73

Product Category

SA6.0AHE3/73 belongs to the category of semiconductor devices, specifically a Schottky diode.

Basic Information Overview

  • Use: SA6.0AHE3/73 is used as a rectifier in various electronic circuits and power supply applications.
  • Characteristics: It exhibits low forward voltage drop and fast switching speed, making it suitable for high-frequency applications.
  • Package: The diode is typically available in a surface-mount package.
  • Essence: The essence of SA6.0AHE3/73 lies in its ability to efficiently convert alternating current (AC) to direct current (DC) with minimal power loss.
  • Packaging/Quantity: It is commonly packaged in reels or tubes containing a specific quantity based on manufacturer specifications.

Specifications

  • Voltage Rating: 60V
  • Forward Current: 6A
  • Reverse Leakage Current: <5µA
  • Operating Temperature Range: -65°C to +125°C
  • Package Type: DO-201AD (SMA)

Detailed Pin Configuration

The SA6.0AHE3/73 Schottky diode typically has two pins: anode and cathode. The anode is connected to the positive terminal of the circuit, while the cathode is connected to the negative terminal.

Functional Features

  • Low forward voltage drop
  • High switching speed
  • Low reverse leakage current
  • High thermal stability

Advantages and Disadvantages

Advantages: - Efficient energy conversion - Suitable for high-frequency applications - Low power dissipation

Disadvantages: - Susceptible to high reverse voltage breakdown - Limited maximum current handling capability

Working Principles

SA6.0AHE3/73 operates based on the Schottky barrier principle, where the metal-semiconductor junction allows for faster electron flow compared to conventional PN-junction diodes. This results in lower forward voltage drop and faster switching characteristics.

Detailed Application Field Plans

  • Power supply units
  • Voltage clamping circuits
  • Switching regulators
  • Solar panel bypass diodes

Detailed and Complete Alternative Models

  • SS16
  • SR560
  • SB540

This completes the English editing encyclopedia entry structure for SA6.0AHE3/73, providing comprehensive information about its product category, basic overview, specifications, pin configuration, functional features, advantages and disadvantages, working principles, application field plans, and alternative models.

Word count: 324

تکنیکی حل میں SA6.0AHE3/73 کے اطلاق سے متعلق 10 عام سوالات اور جوابات کی فہرست بنائیں

  1. What is SA6.0AHE3/73?

    • SA6.0AHE3/73 is a Schottky diode rectifier designed for high efficiency applications.
  2. What are the key features of SA6.0AHE3/73?

    • The key features include low forward voltage drop, high current capability, and fast switching speed.
  3. What are the typical applications of SA6.0AHE3/73?

    • SA6.0AHE3/73 is commonly used in power supplies, LED lighting, and automotive systems.
  4. What is the maximum forward voltage of SA6.0AHE3/73?

    • The maximum forward voltage is typically around 0.55V at a forward current of 3A.
  5. What is the reverse voltage rating of SA6.0AHE3/73?

    • The reverse voltage rating is typically 60V.
  6. What is the operating temperature range for SA6.0AHE3/73?

    • The operating temperature range is usually -65°C to +175°C.
  7. Does SA6.0AHE3/73 require a heat sink in high power applications?

    • Yes, in high power applications, it is recommended to use a heat sink to maintain optimal performance.
  8. Can SA6.0AHE3/73 be used in parallel for higher current applications?

    • Yes, SA6.0AHE3/73 can be used in parallel to increase the current handling capability.
  9. What are the packaging options available for SA6.0AHE3/73?

    • SA6.0AHE3/73 is available in various surface mount packages such as SMA and SMB.
  10. Are there any specific layout considerations when using SA6.0AHE3/73 in a circuit?

    • It is important to minimize the length of the traces between the diode and the load to reduce parasitic resistance and inductance. Additionally, proper decoupling and thermal management should be considered for optimal performance.