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STL60N32N3LL

STL60N32N3LL

Product Overview

Category

The STL60N32N3LL belongs to the category of power MOSFETs.

Use

It is used as a high-voltage, fast-switching N-channel enhancement-mode power MOSFET.

Characteristics

  • High voltage capability
  • Low input capacitance
  • Fast switching speed
  • Low on-resistance

Package

The STL60N32N3LL is typically available in a TO-220 package.

Essence

The essence of the STL60N32N3LL lies in its ability to efficiently control and switch high voltages in various electronic applications.

Packaging/Quantity

It is commonly packaged in reels or tubes, with quantities varying based on manufacturer specifications.

Specifications

  • Drain-Source Voltage (VDS): 650V
  • Continuous Drain Current (ID): 60A
  • On-Resistance (RDS(on)): 0.032Ω
  • Gate-Source Voltage (VGS): ±20V
  • Total Gate Charge (Qg): 80nC
  • Operating Temperature Range: -55°C to 150°C

Detailed Pin Configuration

The pin configuration of the STL60N32N3LL typically includes three pins: gate, drain, and source. The gate pin controls the switching of the MOSFET, while the drain and source pins handle the flow of current.

Functional Features

  • High voltage capability allows for use in high-power applications
  • Low input capacitance enables fast switching speeds
  • Low on-resistance minimizes power loss and heat generation

Advantages and Disadvantages

Advantages

  • Efficiently controls high voltages
  • Fast switching speed
  • Low power dissipation

Disadvantages

  • Sensitive to static electricity
  • Requires careful handling during installation

Working Principles

The STL60N32N3LL operates based on the principles of field-effect transistors, where the application of a voltage to the gate terminal controls the flow of current between the drain and source terminals.

Detailed Application Field Plans

The STL60N32N3LL is commonly used in: - Switched-mode power supplies - Motor control systems - Inverters - Power factor correction circuits

Detailed and Complete Alternative Models

Some alternative models to the STL60N32N3LL include: - STP60N65M5 - IRFP4668 - FDPF33N25T

In conclusion, the STL60N32N3LL power MOSFET offers high-voltage capability, fast switching speed, and low on-resistance, making it suitable for a wide range of power control applications.

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Enumere 10 preguntas y respuestas comunes relacionadas con la aplicación de STL60N32N3LL en soluciones técnicas

  1. What is the maximum drain current of the STL60N32N3LL MOSFET?

    • The maximum drain current of the STL60N32N3LL MOSFET is 60A.
  2. What is the gate-source voltage rating of the STL60N32N3LL MOSFET?

    • The gate-source voltage rating of the STL60N32N3LL MOSFET is ±20V.
  3. What is the on-resistance (RDS(on)) of the STL60N32N3LL MOSFET?

    • The on-resistance (RDS(on)) of the STL60N32N3LL MOSFET is typically 0.032 ohms.
  4. What is the maximum power dissipation of the STL60N32N3LL MOSFET?

    • The maximum power dissipation of the STL60N32N3LL MOSFET is 375W.
  5. What are the typical applications for the STL60N32N3LL MOSFET?

    • The STL60N32N3LL MOSFET is commonly used in high-current switching applications such as motor control, power supplies, and inverters.
  6. What is the operating temperature range of the STL60N32N3LL MOSFET?

    • The operating temperature range of the STL60N32N3LL MOSFET is -55°C to 175°C.
  7. Does the STL60N32N3LL MOSFET require a heat sink for operation?

    • Yes, due to its high power dissipation, the STL60N32N3LL MOSFET typically requires a heat sink for proper operation.
  8. Is the STL60N32N3LL MOSFET suitable for automotive applications?

    • Yes, the STL60N32N3LL MOSFET is designed to meet automotive quality and reliability standards, making it suitable for automotive applications.
  9. What is the gate charge of the STL60N32N3LL MOSFET?

    • The gate charge of the STL60N32N3LL MOSFET is typically 100nC.
  10. Can the STL60N32N3LL MOSFET be used in parallel to increase current handling capability?

    • Yes, the STL60N32N3LL MOSFET can be used in parallel to increase current handling capability, but proper attention should be given to current sharing and thermal management.