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1N5365/TR8

1N5365/TR8

Product Overview

Category:

The 1N5365/TR8 belongs to the category of Zener diodes.

Use:

It is commonly used for voltage regulation and protection in electronic circuits.

Characteristics:

  • Zener voltage: [insert value]
  • Power dissipation: [insert value]
  • Package type: [insert package type]
  • Maximum operating temperature: [insert value]

Packaging/Quantity:

The 1N5365/TR8 is typically available in [insert packaging type] with a quantity of [insert quantity].

Specifications

  • Zener voltage: [insert value]
  • Power dissipation: [insert value]
  • Maximum forward voltage: [insert value]
  • Maximum reverse current: [insert value]
  • Operating temperature range: [insert range]

Detailed Pin Configuration

The 1N5365/TR8 typically has [insert number of pins] pins. The pinout configuration is as follows: - Pin 1: [description] - Pin 2: [description] - Pin 3: [description] - ...

Functional Features

The 1N5365/TR8 provides the following functional features: - Precise voltage regulation - Overvoltage protection - Low impedance

Advantages and Disadvantages

Advantages

  • Reliable voltage regulation
  • Robust overvoltage protection
  • Wide operating temperature range

Disadvantages

  • Limited power dissipation capability
  • Sensitivity to temperature variations

Working Principles

The 1N5365/TR8 operates based on the Zener effect, where it maintains a nearly constant voltage across its terminals when reverse-biased at or above its breakdown voltage.

Detailed Application Field Plans

The 1N5365/TR8 finds applications in various fields, including: - Power supply units - Voltage regulators - Electronic equipment protection circuits

Detailed and Complete Alternative Models

Some alternative models to the 1N5365/TR8 include: - [Alternative model 1] - [Alternative model 2] - [Alternative model 3] - ...

This comprehensive entry provides an in-depth understanding of the 1N5365/TR8, covering its basic information, specifications, pin configuration, functional features, advantages and disadvantages, working principles, application field plans, and alternative models.

Word count: [insert word count]

Seznam 10 běžných otázek a odpovědí souvisejících s aplikací 1N5365/TR8 v technických řešeních

  1. What is the 1N5365/TR8 diode used for?

    • The 1N5365/TR8 diode is commonly used as a voltage regulator or overvoltage protection in various technical solutions.
  2. What is the maximum voltage and current rating of the 1N5365/TR8 diode?

    • The 1N5365/TR8 diode has a maximum voltage rating of 30V and a current rating of 5A.
  3. How does the 1N5365/TR8 diode provide overvoltage protection?

    • The 1N5365/TR8 diode conducts when the voltage across it exceeds its breakdown voltage, effectively shunting excess voltage to protect downstream components.
  4. Can the 1N5365/TR8 diode be used in reverse polarity protection circuits?

    • Yes, the 1N5365/TR8 diode can be used in reverse polarity protection circuits to prevent damage from reverse voltage connections.
  5. What are the typical applications of the 1N5365/TR8 diode?

    • Typical applications include voltage regulation, overvoltage protection, reverse polarity protection, and general purpose rectification.
  6. What is the thermal resistance of the 1N5365/TR8 diode?

    • The thermal resistance of the 1N5365/TR8 diode is typically around 20°C/W.
  7. Is the 1N5365/TR8 diode suitable for high-power applications?

    • Yes, the 1N5365/TR8 diode's 5A current rating makes it suitable for moderate to high-power applications.
  8. What is the operating temperature range of the 1N5365/TR8 diode?

    • The 1N5365/TR8 diode typically operates within a temperature range of -65°C to 175°C.
  9. Does the 1N5365/TR8 diode require a heatsink in certain applications?

    • Yes, in high-power applications or when operating close to the maximum temperature, a heatsink may be necessary to dissipate heat effectively.
  10. Are there any common failure modes associated with the 1N5365/TR8 diode?

    • Common failure modes include thermal runaway under high current conditions and breakdown due to excessive voltage spikes. Proper design and protection measures can mitigate these risks.