Allicdata Part #: | HEC4023BT,118-ND |
Manufacturer Part#: |
HEC4023BT,118 |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | NXP USA Inc |
Short Description: | IC GATE NAND 3CH 3-INP 14SO |
More Detail: | NAND Gate IC 3 Channel 14-SO |
DataSheet: | HEC4023BT,118 Datasheet/PDF |
Quantity: | 1000 |
1 +: | 0.00000 |
Current - Output High, Low: | 3.4mA, 3.4mA |
Base Part Number: | 4023 |
Package / Case: | 14-SOIC (0.154", 3.90mm Width) |
Supplier Device Package: | 14-SO |
Mounting Type: | Surface Mount |
Operating Temperature: | -55°C ~ 125°C |
Max Propagation Delay @ V, Max CL: | 30ns @ 15V, 50pF |
Logic Level - High: | 3.5 V ~ 11 V |
Logic Level - Low: | 1.5 V ~ 4 V |
Series: | 4000B |
Current - Quiescent (Max): | 4µA |
Voltage - Supply: | 3 V ~ 15 V |
Features: | -- |
Number of Inputs: | 3 |
Number of Circuits: | 3 |
Logic Type: | NAND Gate |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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Logic Gates and Inverters are important components when it comes to digital circuits. They are designed to take binary inputs and translate them into logic output, allowing for the processing and interpretation of data from a variety of sources. One of the more popular of these components is the HEC 4023BT,118. This article will explore what this does, its applications, and how it works.
What is the HEC 4023BT,118?
The HEC 4023BT,118 is a general purpose logic gate. It belongs to the family of logic gates known as CMOS logic gates, and it is of the RTL (Resistor-Transistor Logic) type. This logic gate is commonly used in digital systems, and it is especially popular in applications that require good noise immunity and low power consumption due to its low offset voltage. The HEC 4023 BT,118 can function with voltages ranging from 5 to 20V, and it is typically used in 12V systems.
Applications of the HEC 4023BT,118
The HEC 4023BT,118 is used in a variety of applications. It is often used in analog-to-digital converters and in data acquisition systems due to its low voltage and low power requirements. It can also be used in systems that require a high degree of noise immunity, such as communication systems and medical equipment. The HEC 4023BT,118 can also be used in logic circuits such as Multiplexers and Frequency Counters.
In addition to its wide variety of applications, the HEC 4023BT,118 also offers extremely good noise immunity due to its low offset voltage, which allows it to function smoothly and reliably with high electrical noise. This makes it an ideal component for use in noisy or sensitive applications.
Working Principle of the HEC 4023BT,118
The working principle of the HEC 4023BT,118 is relatively simple. It is a high speed logic gate that is composed of three main components: a transistor, a resistor, and a capacitor. The transistor is used to control the logic level of the output, while the resistor and capacitor are used to isolate the noise from the input of the logic gate. When an input is applied, the transistor is switched on and the output of the transistor is adjusted through the resistor and capacitor.
The HEC 4023BT,118 is composed of two inputs, one input is called A and the other input is called B. If either A or B are low, then the output will also be low. If both A and B are high, then the output will be high. The HEC 4023BT,118 also has an enable input, which can be used to enable or disable the logic gate.
The HEC 4023BT,118 is capable of operating in both TTL (Transistor-Transistor Logic) and CMOS (Complementary Metal Oxide Semiconductor) logic. In TTL logic, the maximum voltage is 5V and the minimum voltage is 0V. In CMOS logic, the maximum voltage is 20V and the minimum voltage is 0V.
Conclusion
The HEC 4023BT,118 is a powerful logic gate that is well-suited to a variety of applications. Its low power consumption make it ideal for applications that require high noise immunity, while its low offset voltage allows it to function accurately and reliably with high electrical noise. Its ability to operate in both TTL and CMOS logic make it a versatile component in a variety of circuits.
The specific data is subject to PDF, and the above content is for reference
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