NVMFS5C604NLAFT1G Allicdata Electronics

NVMFS5C604NLAFT1G Discrete Semiconductor Products

Allicdata Part #:

NVMFS5C604NLAFT1GOSTR-ND

Manufacturer Part#:

NVMFS5C604NLAFT1G

Price: $ 1.23
Product Category:

Discrete Semiconductor Products

Manufacturer: ON Semiconductor
Short Description: MOSFET N-CH 60V 287A 5DFN
More Detail: N-Channel 60V 287A (Tc) 200W (Tc) Surface Mount 5-...
DataSheet: NVMFS5C604NLAFT1G datasheetNVMFS5C604NLAFT1G Datasheet/PDF
Quantity: 1500
1500 +: $ 1.12009
Stock 1500Can Ship Immediately
$ 1.23
Specifications
Vgs(th) (Max) @ Id: 2V @ 250µA
Package / Case: 8-PowerTDFN, 5 Leads
Supplier Device Package: 5-DFN (5x6) (8-SOFL)
Mounting Type: Surface Mount
Operating Temperature: -55°C ~ 175°C (TJ)
Power Dissipation (Max): 200W (Tc)
FET Feature: --
Input Capacitance (Ciss) (Max) @ Vds: 8900pF @ 25V
Vgs (Max): ±20V
Gate Charge (Qg) (Max) @ Vgs: 52nC @ 4.5V
Series: Automotive, AEC-Q101
Rds On (Max) @ Id, Vgs: 1.2 mOhm @ 50A, 10V
Drive Voltage (Max Rds On, Min Rds On): 4.5V, 10V
Current - Continuous Drain (Id) @ 25°C: 287A (Tc)
Drain to Source Voltage (Vdss): 60V
Technology: MOSFET (Metal Oxide)
FET Type: N-Channel
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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NVMFS5C604NLAFT1G is a single level high voltage MOSFET (Metal-Oxide-Semiconductor Field-Effect Transistor) made by Panasonic as part of its NVM series of transistors. This particular MOSFET has a rated drain-to-source voltage of 600 Volts, a maximum drain current of 430 mA and a maximum drain-to-source on-state resistance of 0.104 ohms. It is typically used for switching, amplification, and regulation applications. Specifically, it is suitable for use in the battery monitoring and management, servo motor control, consumer audio, and DC-DC converter markets.

Application Field of NVMFS5C604NLAFT1G

NVMFS5C604NLAFT1G has many industrial and consumer applications, some of which include:

  • Battery monitoring and management applications: This single level MOSFET can be used in battery applications such as battery monitoring and management, where it is typically used to enable or disable the charging or discharging of a battery.
  • Servo motor control applications: This MOSFET can be used in servo motor systems, where it is typically used to switch the motor’s current on and off to control the motor’s speed.
  • Consumer audio applications: This MOSFET can also be used in consumer audio applications, where it is typically used to switch signals on or off as needed.
  • DC-DC converter applications: This MOSFET can also be used in DC-DC converters, where it is typically used to regulate the current flow from an input to an output.

Working Principle of NVMFS5C604NLAFT1G

The working principle of a MOSFET can be summarized as follows. A MOSFET is a three-terminal device that consists of two metal-insulator-semiconductor (MIS) interfaces, gate and drain. When voltage is applied to the gate, it creates an electric field in the channel that is between the gate and the drain. This electric field modulates the conductance between the source and the drain and allows current to flow through the channel when voltage is applied. This principle is known as the "Gate Effect" and is the basis for the operation of all MOSFETs.

NVMFS5C604NLAFT1G uses this same principle. When voltage is applied to the gate, current will flow from the source to the drain. This is accomplished by the electric field that is created in the channel when the voltage is applied to the gate. The current will be regulated by the voltage applied to the gate, allowing the MOSFET to be used as a switch or amplifier, depending on the application.

In addition to its applications mentioned earlier, NVMFS5C604NLAFT1G can also be used in power supply and motor drive applications, as well as in the automotive industry. As the manufacturer states, this MOSFET is suitable for use temperatures between -55°C and +175°C, and it is also RoHS compliant.

In conclusion, NVMFS5C604NLAFT1G is a single level high voltage MOSFET manufactured by Panasonic as part of its NVM series of transistors. It is suitable for a wide range of switching, amplification, and regulation applications, including battery monitoring and management, servo motor control, consumer audio, and DC-DC converter systems. Its working principle is based on the Gate Effect, where voltage applied to the gate creates an electric field in the channel that modulates the conductance between the source and the drain and allows current to flow through the channel.

The specific data is subject to PDF, and the above content is for reference

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