2SB10630P Allicdata Electronics
Allicdata Part #:

2SB10630P-ND

Manufacturer Part#:

2SB10630P

Price: $ 0.00
Product Category:

Discrete Semiconductor Products

Manufacturer: Panasonic Electronic Components
Short Description: TRANS PNP 100V 5A TO-220F
More Detail: Bipolar (BJT) Transistor PNP 100V 5A 20MHz 2W Thro...
DataSheet: 2SB10630P datasheet2SB10630P Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Series: --
Packaging: Bulk 
Part Status: Obsolete
Transistor Type: PNP
Current - Collector (Ic) (Max): 5A
Voltage - Collector Emitter Breakdown (Max): 100V
Vce Saturation (Max) @ Ib, Ic: 2V @ 300mA, 3A
Current - Collector Cutoff (Max): 50µA (ICBO)
DC Current Gain (hFE) (Min) @ Ic, Vce: 100 @ 1A, 5V
Power - Max: 2W
Frequency - Transition: 20MHz
Operating Temperature: 150°C (TJ)
Mounting Type: Through Hole
Package / Case: TO-220-3 Full Pack
Supplier Device Package: TO-220F-A1
Description

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2SB10630P transistors belong to the single bipolar (BJT) category. BJTs are current-controlled devices with three leads, the collector, base, and emitter. Unlike Field Effect Transistors (FETs), which control the current flowing between their drain and source terminals by applying a voltage to the gate, BJTs control the current flowing from collector to emitter by applying a current to the base.

The 2SB10630P belongs to the Screen-Saver family of E-mode transistors, a new generation of BJTs optimized for high-speed switching applications. Its three leads are comprised of a collector, a base, and an emitter. The power dissipation of the transistor is 102W and its collector-to-base voltage is 30V. Its maximum collector-current rating is 6A with a minimum breakdown voltage of 60V. The junctions of the transistor are composed of an n-type polysilicon layer and a p-type polysilicon layer.

The typical application field of the 2SB10630P is as a driver in power management applications, mainly as high-side drivers in computer power supply units. In these applications, the transistor serves as a switch between the power source and a load, such as that of a PC fan. It is often used to regulate voltage levels and to protect other sensitive components from a potential overload of the power switching circuit.

The 2SB10630P is a two-stage BJT which employs an E-mode operation. Its two-stage circuit topology is a benefit when incorporated into high-frequency applications. This is because it offers excellent gain linearity and better noise performance than other single-stage topologies. Furthermore, the two-stage amplifier yields faster switching times, providing a wider range of switching frequencies.

The 2SB10630P has a maximum switching frequency of 500kHz, meaning it can operate at speeds faster than the normal switching frequency. This means that when the transistor is turned on and off, the switch speed is much faster than with standard BJTs. This is beneficial in applications where a high switching speed is required, such as power management applications.

In an actual circuit, the collector of the 2SB10630P is connected to the positive electrode of the power supply, while the emitter is connected to the load (PC fan) and the base is connected to a voltage equal to or greater than the base voltage of the transistor. When the base voltage rises, a current is allowed to flow into the base, which then causes the collector current to increase. As the collector current increases, the voltage drop between the collector and emitter of the transistor decreases, resulting in the load being supplied with more current. This flow will continue until the base voltage is shut off.

In summary, the 2SB10630P is a single bipolar (BJT) transistor that is commonly used as drivers in power management applications, with its two-stage E-mode topology providing excellent gain linearity, better noise performance, and faster switching times than other transistors. Its high switching speed and maximum switching frequency of 500kHz make it an ideal solution for power regulation and protection applications.

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

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