TIP41C Allicdata Electronics

TIP41C Discrete Semiconductor Products

Allicdata Part #:

497-2622-5-ND

Manufacturer Part#:

TIP41C

Price: $ 0.00
Product Category:

Discrete Semiconductor Products

Manufacturer: STMicroelectronics
Short Description: TRANS NPN 100V 6A TO-220
More Detail: Bipolar (BJT) Transistor NPN 100V 6A 65W Through ...
DataSheet: TIP41C datasheetTIP41C Datasheet/PDF
Quantity: 1000
Stock 1000Can Ship Immediately
Specifications
Series: --
Packaging: Tube 
Part Status: Active
Transistor Type: NPN
Current - Collector (Ic) (Max): 6A
Voltage - Collector Emitter Breakdown (Max): 100V
Vce Saturation (Max) @ Ib, Ic: 1.5V @ 600mA, 6A
Current - Collector Cutoff (Max): 700µA
DC Current Gain (hFE) (Min) @ Ic, Vce: 15 @ 3A, 4V
Power - Max: 65W
Frequency - Transition: --
Operating Temperature: 150°C (TJ)
Mounting Type: Through Hole
Package / Case: TO-220-3
Supplier Device Package: TO-220AB
Description

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The TIP41C is a type of bipolar junction transistor (BJT), which is a semiconductor device typically composed of three layers of semiconductor material, each layer carrying either a positive or negative electric charge. This type of transistor typically has an emitter, a base, and a collector. It has two p-n junctions created by two semiconductor layers of opposite charge. The TIP41C is part of a class of BJTs known as npn-type transistors, meaning that the middle semiconductor layer is made of p-type material while the first and third layers are made of n-type material.

The TIP41C is a NPN (Negative Positive Negative) type of transistor, also known as an NPN transistor. The purpose of this type of transistor is to amplify current. This is because when the base (middle) terminal of the transistor is triggered by a small current, a larger current is driven through the collector and emitter terminals. Thus, a small current can control a larger current.

The TIP41C is a NPN power transistor specifically designed for audio amplifiers and general purpose switching applications. It is a four-terminal device created in a TO220-4 package offering improved energy efficiency. The features of this transistor include a high transition frequency, collector-emitter voltage ratings of up to 60 volts, a total power dissipation of up to 30 watts, a continuous collector current of up to 7.5A, and a maximum current gain of up to 750.

The principle behind the TIP41C is based on the "common emitter" configuration, which is a circuitry design that is commonly employed in electronic circuits. In this configuration, one end of the transistor is connected to a power supply and the other end, the emitter, is connected to a load, such as a speaker. When the base terminal is triggered by a small current, the current that is driven to the load is amplified, thus enabling higher current levels to be driven to the load. This process is known as current amplification or "gain."

One common application of the TIP41C is in audio amplifiers. This type of transistor is used to drive current to an audio driver, such as a speaker. This current is made more powerful by amplifying it using the transistor. This amplifies sound to produce louder volume and better sound quality, making the overall audio system more enjoyable. Additionally, other common uses of the TIP41C include low-power switching applications, motor control and process control.

The main feature of the TIP41C is its efficiency. It is designed with high power ratings and a low collector-emitter saturation voltage. This allows it to provide amplified output with very low heat dissipation. Additionally, this transistor operates at a very high frequency, making it suitable for applications such as switching, linear amplifiers and filtering.

In conclusion, the TIP41C is a type of NPN transistor ideal for audio amplifiers and general switching applications. Its principle is based on common emitter design, which allows it to amplify current from a small source to higher levels. This makes it a useful device for those looking to achieve better sound quality and louder volumes. Furthermore, its high power ratings, low collector-saturation voltage and high frequency make it an efficient and reliable choice for many types of electronic devices.

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

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