STW7N95K3 Allicdata Electronics
Allicdata Part #:

497-8798-5-ND

Manufacturer Part#:

STW7N95K3

Price: $ 2.36
Product Category:

Discrete Semiconductor Products

Manufacturer: STMicroelectronics
Short Description: MOSFET N-CH 950V 7.2A TO-247
More Detail: N-Channel 950V 7.2A (Tc) 150W (Tc) Through Hole TO...
DataSheet: STW7N95K3 datasheetSTW7N95K3 Datasheet/PDF
Quantity: 1000
1 +: $ 2.36000
10 +: $ 2.28920
100 +: $ 2.24200
1000 +: $ 2.19480
10000 +: $ 2.12400
Stock 1000Can Ship Immediately
$ 2.36
Specifications
Vgs(th) (Max) @ Id: 5V @ 100µA
Package / Case: TO-247-3
Supplier Device Package: TO-247-3
Mounting Type: Through Hole
Operating Temperature: -55°C ~ 150°C (TJ)
Power Dissipation (Max): 150W (Tc)
FET Feature: --
Input Capacitance (Ciss) (Max) @ Vds: 1031pF @ 100V
Vgs (Max): ±30V
Gate Charge (Qg) (Max) @ Vgs: 34nC @ 10V
Series: SuperMESH3™
Rds On (Max) @ Id, Vgs: 1.35 Ohm @ 3.6A, 10V
Drive Voltage (Max Rds On, Min Rds On): 10V
Current - Continuous Drain (Id) @ 25°C: 7.2A (Tc)
Drain to Source Voltage (Vdss): 950V
Technology: MOSFET (Metal Oxide)
FET Type: N-Channel
Part Status: Active
Packaging: Tube 
Description

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The STW7N95K3 is a transistor that falls under the category of a single MOSFET (Metal Oxide Semiconductor Field Effect Transistor). This particular transistor is used for various applications including power switching, load switching, and voltage regulation. In order to understand how the STW7N95K3 works and what it can be used for, a basic overview of the underlying technology behind it must first be discussed.

A transistor is a semiconductor device that acts as an amplifier or switch to control the flow of current. The STW7N95K3 is a type of MOSFET which stands for Metal Oxide Semiconductor Field Effect Transistor. This type of transistor uses an electric field to control the current that flows through it. The STW7N95K3 is unique in that it is a single MOSFET, meaning that it only has one channel. This is opposed to the more common dual MOSFET which has two channels, allowing it to handle higher power loads.

The purpose of the STW7N95K3 is to provide protection from voltage spikes, transient voltages, and current overloads. It also is used to regulate the amount of power going to a load. The STW7N95K3 is capable of carrying up to 95 amps at 7 volts, making it suitable for most low to medium power applications. It is also designed to handle high switching frequencies and features an ultra-low on-resistance, making it well-suited for many power switching applications.

The STW7N95K3 is most commonly used for load switching, although it can also be used for voltage regulation, as mentioned previously. It typically acts as a switch in order to regulate the amount of power that is supplied to a load. For example, if the current being supplied to a load exceeds the maximum specifications, the STW7N95K3 will act as a switch to limit the amount of current going to the load. The STW7N95K3 can also be used to provide protection from transient voltages, which can damage components.

The STW7N95K3 works using the principle of field effect. This means that the current flow through the transistor is controlled by the amount of electric field that is applied to the gate terminal of the transistor. By applying a certain voltage to the gate terminal of the STW7N95K3, the amount of current that is allowed to flow through it can be controlled. The STW7N95K3 is designed to be able to handle high switching frequencies and low on-resistance, making it suitable for many power switching applications.

In conclusion, the STW7N95K3 is a single MOSFET transistor that is mostly used for load switching or voltage regulation. It is capable of carrying up to 95 amps at 7 volts, making it well-suited for most low to medium power applications. It also can be used for protection from transient voltages and current overloads. The STW7N95K3 is designed to have an ultra-low on-resistance and handle high switching frequencies, making it suitable for many power switching applications. By understanding how the STW7N95K3 works and what it can be used for, engineers can better utilize this transistor for various applications.

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

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