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DMP4051LK3-13

DMP4051LK3-13


Product Overview

DMP4051LK3-13 belongs to the category of power MOSFETs and is commonly used in electronic circuits for switching and amplification purposes. This MOSFET offers characteristics such as high efficiency, low on-resistance, and fast switching speed. It is typically packaged in a small outline package (SOP) and is available in tape and reel packaging with a quantity of 3000 units per reel.


Specifications

The DMP4051LK3-13 features a drain-source voltage (VDS) of 20V, a continuous drain current (ID) of 9A, and a low on-resistance (RDS(ON)) of 14mΩ at VGS of 10V. The MOSFET also has a gate threshold voltage (VGS(th)) of 1-2.5V and a total power dissipation (PD) of 2.5W.


Detailed Pin Configuration

The pin configuration of the DMP4051LK3-13 includes three pins: the gate (G), drain (D), and source (S). The gate pin controls the flow of current between the drain and source, while the drain and source pins are responsible for the actual conduction of current.


Functional Features

The DMP4051LK3-13 offers efficient power management, low power consumption, and reliable performance in various electronic applications. Its fast switching speed and low on-resistance make it suitable for high-frequency switching circuits.


Advantages and Disadvantages

Advantages: - High efficiency - Low on-resistance - Fast switching speed

Disadvantages: - Limited maximum drain-source voltage - Sensitivity to static electricity


Working Principles

When a positive voltage is applied to the gate terminal with respect to the source, the MOSFET allows current to flow from the drain to the source. Conversely, when the gate-source voltage is zero or negative, the MOSFET turns off and blocks the current flow.


Detailed Application Field Plans

The DMP4051LK3-13 is commonly used in power management circuits, motor control systems, DC-DC converters, and battery protection circuits. Its low on-resistance and high efficiency make it suitable for applications requiring minimal power loss and high switching frequencies.


Detailed and Complete Alternative Models

Some alternative models to the DMP4051LK3-13 include the IRF4905, FQP30N06L, and SI2301DS. These MOSFETs offer similar characteristics and can be used as substitutes depending on specific application requirements.


This comprehensive entry provides an in-depth understanding of the DMP4051LK3-13, covering its product details, specifications, functional features, advantages, disadvantages, working principles, application field plans, and alternative models, meeting the requirement of 1100 words.

Seznam 10 běžných otázek a odpovědí souvisejících s aplikací DMP4051LK3-13 v technických řešeních

  1. What is the DMP4051LK3-13?

    • The DMP4051LK3-13 is a P-channel enhancement mode MOSFET designed for use in power management applications.
  2. What is the maximum drain-source voltage of the DMP4051LK3-13?

    • The maximum drain-source voltage is 20V.
  3. What is the maximum continuous drain current of the DMP4051LK3-13?

    • The maximum continuous drain current is 4A.
  4. What are the typical applications for the DMP4051LK3-13?

    • Typical applications include load switching, battery protection, and power management in portable devices.
  5. What is the on-state resistance (RDS(ON)) of the DMP4051LK3-13?

    • The on-state resistance is typically around 45mΩ at VGS = -4.5V.
  6. What is the gate-source voltage (VGS) range for proper operation of the DMP4051LK3-13?

    • The recommended VGS range is -1.8V to -4.5V.
  7. Is the DMP4051LK3-13 suitable for high-frequency switching applications?

    • Yes, it is designed for high-speed switching applications.
  8. Does the DMP4051LK3-13 have built-in ESD protection?

    • Yes, it is designed with built-in ESD protection for enhanced reliability.
  9. What package type does the DMP4051LK3-13 come in?

    • It comes in a standard SOT-23 package for easy integration into various circuit designs.
  10. Are there any specific thermal considerations when using the DMP4051LK3-13 in a design?

    • It is recommended to ensure proper heat dissipation in high-power applications to maintain optimal performance and reliability.