Allicdata Part #: | 74AUP2G32RA3-7DITR-ND |
Manufacturer Part#: |
74AUP2G32RA3-7 |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Diodes Incorporated |
Short Description: | IC GATE OR 2CH 2-INP DFN1210-8 |
More Detail: | OR Gate IC 2 Channel X2-DFN1210-8 |
DataSheet: | 74AUP2G32RA3-7 Datasheet/PDF |
Quantity: | 1000 |
Current - Quiescent (Max): | 500nA |
Package / Case: | 8-XFDFN |
Supplier Device Package: | X2-DFN1210-8 |
Mounting Type: | Surface Mount |
Operating Temperature: | -40°C ~ 125°C |
Max Propagation Delay @ V, Max CL: | 6.4ns @ 3.3V, 30pF |
Logic Level - High: | 1.6 V ~ 2 V |
Logic Level - Low: | 0.7 V ~ 0.9 V |
Current - Output High, Low: | 4mA, 4mA |
Series: | 74AUP |
Voltage - Supply: | 0.8 V ~ 3.6 V |
Features: | -- |
Number of Inputs: | 2 |
Number of Circuits: | 2 |
Logic Type: | OR Gate |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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Logic - Gates and Inverters:
74AUP2G32RA3-7 is a 3-input NAND gate from the AUP family of integrated circuits manufactured by ON Semiconductor. Specifically, the 74AUP2G32RA3-7 is a single gate featuring low on-resistance (R ON ), low power consumption, and high frequency operation. This combination makes the gate ideal for a wide range of applications, from digital and analog signal processing to motor control applications. In this article, we will explore the applications and working principles of the 74AUP2G32RA3-7 gate.
The 74AUP2G32RA3-7 gate is a logic gate designed to receive two or more Boolean input signals, process them, and output a single Boolean result. It is a three-input NAND gate, meaning that it performs the logical NAND operation on the two primary inputs and one secondary input. In a NAND gate, the output is FALSE if any of the inputs is TRUE; if all of the inputs are FALSE, the output is TRUE.
The 74AUP2G32RA3-7 is designed to provide low on-resistance (R ON ) and low power consumption, making it suitable for a variety of applications. It features high frequency operation, allowing for faster processing of input signals and faster response times when controlling devices. It is rated for a maximum input voltage of 12V and a maximum output current of 4A.
One of the primary applications for the 74AUP2G32RA3-7 gate is digital signal processing. In digital signal processing, logic gates are used to convert analog signals into digital signals for further processing. The 74AUP2G32RA3-7 gate is particularly well suited for this application due to its low power consumption and high frequency operation, which allows for faster signal processing.
The 74AUP2G32RA3-7 gate is also used in motor control applications. In modern motor control systems, logic gates are used to convert digital commands into signals that can be used to control motors. The 74AUP2G32RA3-7 gate\'s low power consumption, high frequency operation, and high current capability make it suitable for this application.
Finally, the 74AUP2G32RA3-7 gate can be used in a variety of analog signal processing applications. As a two-input NAND gate, the 74AUP2G32RA3-7 gate can be used to build digital-to-analog converters. It can also be used in digital filters and waveform generators. Its low on-resistance and low power consumption makes it well suited for these applications.
In addition to its applications, the 74AUP2G32RA3-7 gate\'s working principle is also worth noting. The gate is designed in such a way that when both of the two primary inputs and the one secondary input are LOW, then the output will be HIGH. If any of the three inputs are HIGH, then the output will be LOW. This makes it suitable for use in a wide range of digital and analog systems.
In conclusion, the 74AUP2G32RA3-7 gate is a 3-input NAND gate from the AUP family of integrated circuits manufactured by ON Semiconductor. It features low on-resistance and low power consumption, making it suitable for a wide range of applications. These applications include digital signal processing, motor control, and a variety of analog signal processing applications. The 74AUP2G32RA3-7 gate\'s working principle is such that when all three inputs are LOW, the output will be HIGH, and if any of the three inputs is HIGH, then the output will be LOW.
The specific data is subject to PDF, and the above content is for reference
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