
Allicdata Part #: | NCP382HD10AAR2GOSTR-ND |
Manufacturer Part#: |
NCP382HD10AAR2G |
Price: | $ 0.22 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | ON Semiconductor |
Short Description: | IC PWR DISTRIB SWITCH 2CH 8SOIC |
More Detail: | N/A |
DataSheet: | ![]() |
Quantity: | 2500 |
1 +: | $ 0.22000 |
10 +: | $ 0.21340 |
100 +: | $ 0.20900 |
1000 +: | $ 0.20460 |
10000 +: | $ 0.19800 |
Voltage - Supply (Vcc/Vdd): | Not Required |
Base Part Number: | NCP382 |
Supplier Device Package: | 8-SOIC |
Package / Case: | 8-SOIC (0.154", 3.90mm Width) |
Operating Temperature: | -40°C ~ 85°C (TA) |
Fault Protection: | Current Limiting (Fixed), Over Temperature, UVLO |
Features: | Slew Rate Controlled, Status Flag |
Input Type: | Non-Inverting |
Rds On (Typ): | 80 mOhm |
Current - Output (Max): | 1A |
Series: | -- |
Voltage - Load: | 2.5 V ~ 5.5 V |
Interface: | On/Off |
Output Type: | P-Channel |
Output Configuration: | High Side |
Ratio - Input:Output: | 1:2 |
Number of Outputs: | 2 |
Switch Type: | General Purpose |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us: sales@allicdata.com
。The NCP382HD10AAR2G is a highly advanced PMIC - Power Distribution Switches, Load Drivers - designed to provide precise control and efficient power distribution in a wide variety of applications. The NCP382HD10AAR2G is a dual-channel power MOSFET driver that features a scalable current rating to meet the needs of the application, allowing precise control of the load current. The driver features low supply current rating and high output current capability, greatly increasing the energy efficiency of the system.
As a high-performance power switching device, the NCP382HD10AAR2G is designed to deliver superior power density, fast frequency response, and low power loss. The device can handle up to 10A peak load current and is rated for a continuous load current of up to 6A. The device also offers a wide operating temperature range of -20 to +125°C. Additionally, the device offers an adjustable output voltage range of 0.7V to 4.0V.
The NCP382HD10AAR2G also has configurable load current threshold and adjustable thermal protection, providing reliable power distribution even in extreme temperatures and conditions. The NCP382HD10AAR2G also includes support for externally-controlled configurable current limit protection, making it easy to customize the driver\'s features to the needs of the application.
The NCP382HD10AAR2G\'s output terminals are designed to minimize EMI and eliminate common mode noise, making it suitable for use in sensitive applications. The device also employs a number of other features that make it suitable for use in a variety of applications, including automotive, industrial, consumer, and networking. The NCP382HD10AAR2G is also compatible with a variety of logic levels and features protection against reverse polarity and transient overvoltage.
The working principle of the NCP382HD10AAR2G is based on the use of a MOSFET driver. The MOSFET driver is configured in a switch-mode structure, meaning that the output voltage is provided in the form of a regulated square wave. The frequency of the output square wave can be adjusted, allowing for precise and reliable control of the load current. Additionally, the MOSFET driver is also capable of driving higher load currents, providing more efficient power delivery and improved system efficiency.
In summary, the NCP382HD10AAR2G is a highly advanced PMIC - Power Distribution Switches, Load Drivers - designed to provide precise control and efficient power distribution in a wide variety of applications. Its adjustable current rating, wide operating temperature range, configurable load current threshold and adjustable thermal protection, and support for externally-controlled configurable current limit protection provide a wide range of features that make it suitable for use in a variety of applications. Additionally, the NCP382HD10AAR2G is also capable of driving higher load currents, providing more efficient power delivery and improved system efficiency.
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