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FDV301N
+Lista de MateriaisMOSFET N-CH 25V 220MA SOT23
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Fabricanteonsemi
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Peça do Fabricante #FDV301N
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Pacote SOT23-3
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Em Estoque4978
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Especificações
| Atributo | Valor |
| Package | Tape & Reel (TR),Cut Tape (CT) |
| ProductStatus | Active |
| FETType | N-Channel |
| Technology | MOSFET (Metal Oxide) |
| DraintoSourceVoltage(Vdss) | 25 V |
| Current-ContinuousDrain(Id)@25°C | 220mA (Ta) |
| DriveVoltage(MaxRdsOnMinRdsOn) | 2.7V, 4.5V |
| RdsOn(Max)@IdVgs | 4Ohm @ 400mA, 4.5V |
| Vgs(th)(Max)@Id | 1.06V @ 250µA |
| GateCharge(Qg)(Max)@Vgs | 0.7 nC @ 4.5 V |
| Vgs(Max) | ±8V |
| InputCapacitance(Ciss)(Max)@Vds | 9.5 pF @ 10 V |
| PowerDissipation(Max) | 350mW (Ta) |
| OperatingTemperature | -55°C ~ 150°C (TJ) |
| MountingType | Surface Mount |
| SupplierDevicePackage | SOT-23-3 |
Visão Geral
Description
Through screenings, lectures, and discussions, students learn to appreciate and critique the aesthetic and technical components of film and television. The course also encourages the exploration of cultural, historical, and ideological contexts that influence media production and reception.
Assignments may include writing critical essays, participating in discussions, and conducting research projects. Students are expected to develop a nuanced understanding of the language of film and television and to articulate their analyses effectively both in writing and verbally. Overall, FDV301N aims to enhance students' critical thinking skills and deepen their appreciation of film and television as complex art forms.
Equivalent
1. BSS138Also a N-channel MOSFET, widely used in low-power applications.
2. 2N7002 Another N-channel MOSFET, suitable for similar low-voltage applications.
3. IRLML2502: Offers similar characteristics and used in low-power circuits.
When choosing an equivalent, ensure to verify the specifications like voltage, current ratings, and package type to ensure compatibility with your application.
Features
1. Compact and Lightweight Design: This makes it easy to handle and ideal for extended use without causing fatigue.
2. Variable Speed Control: Allows for precision in different drilling applications, adapting to the material and task requirements.
3. Powerful Motor: Provides efficient performance for both light and heavy-duty tasks.
4. Ergonomic Grip: Ensures comfort and control, reducing strain during prolonged use.
5. Durable Construction: Built to withstand regular use in various environments, ensuring longevity and reliability.
6. Keyless Chuck: Facilitates quick and easy bit changes, enhancing productivity.
7. Cordless Operation: Offers flexibility and mobility, free from the constraints of power cords.
8. Rechargeable Battery: Ensures extended use with a quick recharge time, maintaining efficiency on the job.
Overall, the FDV301N is designed for convenience, efficiency, and durability, suitable for both professional and DIY enthusiasts.
Pinout
1. Gate (G): This pin is used to control the MOSFET by applying a voltage to it, which allows current to flow between the drain and source.
2. Drain (D): This is the terminal where the current enters the MOSFET. It is connected to the load.
3. Source (S): This pin is the terminal where the current exits the MOSFET. It is usually connected to ground or a common voltage reference in the circuit.
The FDV301N is designed for low voltage applications and offers features like fast switching and low on-resistance, making it suitable for a variety of switching and amplification applications in electronic circuits.
Manufacturer
In 2016, Fairchild Semiconductor was acquired by ON Semiconductor (now known as onsemi), another leading company in the semiconductor industry. Onsemi continues to build on Fairchild's legacy by developing advanced semiconductor solutions for power and signal management. The company is committed to delivering energy-efficient innovations that drive sustainable developments across numerous sectors worldwide.
Application
1. Aerospace Engineering: Analysis of airflow over aircraft surfaces to optimize performance and fuel efficiency.
2. Automotive Engineering: Design and testing of vehicle aerodynamics to reduce drag and improve stability.
3. Civil Engineering: Study of wind effects on structures like bridges and skyscrapers for safety and resilience.
4. Environmental Engineering: Modeling of pollutant dispersion in air and water bodies.
5. Mechanical Engineering: Design and optimization of machinery involving fluid flow, such as pumps and turbines.
6. Biomedical Engineering: Simulation of blood flow in cardiovascular systems for medical research and device development.