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NCEP85T30LL
+BOM-
Nhà sản xuấtWuxi NCE Power Semiconductor
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Ông. Phần #NCEP85T30LL
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Bảng dữ liệu NCEP85T30LL DataSheet
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Thông số kỹ thuật
| thuộc tính | Giá trị |
| Manufacturer | Wuxi NCE Power Semiconductor |
| Package / Case | TOLL |
| Operating Temperature | -55℃~+175℃ |
| Current - Continuous Drain(Id) | 330A |
| Pd - Power Dissipation | 450W |
| Drain to Source Voltage (Vdss) | 85V |
| Rds(on) | 1.6mΩ@10V,165A |
| Gate Threshold Voltage (Vgs(th) @ Id) | 2V |
| Gate Charge(Qg) | 142nC |
| Input Capacitance(Ciss @ Vds) | 10700pF@40V |
| Reverse Transfer Capacitance (Crss @ Vds) | 76pF |
Tổng quan
Description
- "NCEP" stands for the National Centers for Environmental Prediction.
- "85" might refer to a year, emission scenario, or specific model version.
- "T30" is likely a reference to the model's resolution, with "T" denoting a spectral truncation in atmospheric models, where "30" could suggest a coarse resolution.
- "LL" could denote a particular model layer or a specific feature or format of the dataset.
Without specific context, it's challenging to provide a precise explanation, but it generally pertains to a specialized dataset or tool used for atmospheric or climate study within the NCEP framework.
Equivalent
Pinout
1. Gate (G): This pin is used to control the MOSFET. By applying a voltage to this pin, you can turn the MOSFET on or off.
2. Drain (D): This is the pin through which the main current flows from drain to source when the MOSFET is on.
3. Source (S): This pin is connected to the ground or the lower voltage supply in most applications.
Please refer to the specific datasheet of the NCEP85T30LL for precise technical details and to confirm the pin configuration and function for your application, as variations might exist depending on the manufacturer.
Manufacturer
Application
1. Printed Circuit Boards (PCBs): It's used for high-frequency and microwave PCBs, offering excellent signal integrity.
2. Antenna Systems: Ideal for antennas in telecommunications due to its low dielectric loss.
3. RF and Microwave Components: Used in filters, couplers, and other RF/microwave components for enhanced performance.
4. Automotive Radar: Employed in advanced driver-assistance systems (ADAS) for its stability and reliability.
5. Aerospace and Defense: Utilized in radar and communication systems due to its thermal and mechanical properties.
These applications benefit from the material’s low dielectric constant and loss tangent, ensuring efficient signal transmission and minimal energy loss.