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IRLZ24NSTRL

IRLZ24NSTRL

Product Overview

Category

The IRLZ24NSTRL belongs to the category of power MOSFETs.

Use

It is commonly used as a switching device in various electronic circuits and applications.

Characteristics

  • Low on-state resistance
  • High input impedance
  • Fast switching speed
  • Low gate drive power
  • High power handling capability

Package

The IRLZ24NSTRL is typically available in a TO-220AB package.

Essence

This MOSFET is essential for controlling high-power loads in electronic circuits.

Packaging/Quantity

It is usually packaged in reels or tubes, with varying quantities depending on the supplier.

Specifications

  • Drain-Source Voltage (VDS): 55V
  • Continuous Drain Current (ID): 17A
  • RDS(ON) (Max) @ VGS = 10V: 0.072Ω
  • Gate-Source Voltage (VGS) ±20V
  • Total Power Dissipation (PD): 75W

Detailed Pin Configuration

The IRLZ24NSTRL has three pins: 1. Gate (G) 2. Drain (D) 3. Source (S)

Functional Features

  • Low power consumption
  • High efficiency
  • Reliable switching performance
  • Suitable for both low and high-frequency applications

Advantages

  • Low on-state resistance reduces conduction losses
  • Fast switching speed minimizes switching losses
  • High input impedance allows for easy interfacing with control circuits
  • High power handling capability enables use in high-power applications

Disadvantages

  • Sensitivity to static electricity
  • Requires careful handling during assembly to prevent damage

Working Principles

The IRLZ24NSTRL operates based on the principle of field-effect transistors, where the voltage applied to the gate terminal controls the flow of current between the drain and source terminals.

Detailed Application Field Plans

The IRLZ24NSTRL is widely used in the following applications: - Switching power supplies - Motor control - LED lighting - Audio amplifiers - DC-DC converters - Solar inverters

Detailed and Complete Alternative Models

Some alternative models to the IRLZ24NSTRL include: - IRFZ44N - FQP30N06L - IRL540N - STP55NF06L

In conclusion, the IRLZ24NSTRL is a versatile power MOSFET with excellent characteristics that make it suitable for various electronic applications, especially those requiring efficient power control and switching capabilities.

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Seznam 10 běžných otázek a odpovědí souvisejících s aplikací IRLZ24NSTRL v technických řešeních

  1. What is the IRLZ24NSTRL MOSFET used for?

    • The IRLZ24NSTRL MOSFET is commonly used for switching applications in power supplies, motor control, and other high-current circuits.
  2. What is the maximum drain-source voltage of the IRLZ24NSTRL?

    • The maximum drain-source voltage of the IRLZ24NSTRL is 55V.
  3. What is the maximum continuous drain current of the IRLZ24NSTRL?

    • The maximum continuous drain current of the IRLZ24NSTRL is 17A.
  4. What is the on-state resistance (RDS(on)) of the IRLZ24NSTRL?

    • The on-state resistance (RDS(on)) of the IRLZ24NSTRL is typically around 0.045 ohms.
  5. Is the IRLZ24NSTRL suitable for PWM (Pulse Width Modulation) applications?

    • Yes, the IRLZ24NSTRL is suitable for PWM applications due to its fast switching characteristics.
  6. Can the IRLZ24NSTRL be used in automotive applications?

    • Yes, the IRLZ24NSTRL is often used in automotive applications such as electronic power steering, engine control, and lighting systems.
  7. Does the IRLZ24NSTRL require a heat sink for high-power applications?

    • For high-power applications, it is recommended to use a heat sink with the IRLZ24NSTRL to dissipate heat effectively.
  8. What are the typical operating temperature range of the IRLZ24NSTRL?

    • The typical operating temperature range of the IRLZ24NSTRL is -55°C to 175°C.
  9. Is the IRLZ24NSTRL suitable for low-voltage applications?

    • While the IRLZ24NSTRL has a relatively high drain-source voltage rating, it can still be used in low-voltage applications with appropriate circuit design.
  10. Are there any common failure modes associated with the IRLZ24NSTRL?

    • Common failure modes for the IRLZ24NSTRL include overcurrent conditions, overvoltage spikes, and excessive junction temperatures. Proper protection and thermal management should be considered to mitigate these risks.