![74FCT163244APVG8 Allicdata Electronics](https://files.allicdata.com/upload/common/default.jpg)
Allicdata Part #: | 74FCT163244APVG8-ND |
Manufacturer Part#: |
74FCT163244APVG8 |
Price: | $ 0.65 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | IDT, Integrated Device Technology Inc |
Short Description: | IC BUF NON-INVERT 3.6V 48SSOP |
More Detail: | Buffer, Non-Inverting 4 Element 4 Bit per Element ... |
DataSheet: | ![]() |
Quantity: | 1000 |
1000 +: | $ 0.59378 |
Series: | 74FCT |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Logic Type: | Buffer, Non-Inverting |
Number of Elements: | 4 |
Number of Bits per Element: | 4 |
Input Type: | -- |
Output Type: | 3-State |
Current - Output High, Low: | 8mA, 24mA |
Voltage - Supply: | 2.7 V ~ 3.6 V |
Operating Temperature: | -40°C ~ 85°C (TA) |
Mounting Type: | Surface Mount |
Package / Case: | 48-BSSOP (0.295", 7.50mm Width) |
Supplier Device Package: | 48-SSOP |
Base Part Number: | 74FCT163244 |
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74FCT163244APVG8 Application Field and Working Principle
Logic - Buffers, Drivers, Receivers, Transceivers
The 74FCT163244APVG8 are high performance CMOS advanced level Trigger (ALDT) integrated circuits intended for use in applications such as computer programs, data storage, high speed communications, digital switching and control systems. The device combines logic and a buffer to perform an ALDT operation.
Application Fields
The 74FCT163244APVG8 devices are commonly used in architecture, storage and communications applications that require high speed switching, like high speed communication network architectures, classification/filtering of IP packets, hard disk drives, and network processing. Furthermore, these devices also have wide applications in medical imaging, robotics, automotive, and military technology.
Working Principle
The 74FCT163244APVG8 use the ALDT algorithm to perform a logic and a buffer operation. The device has two trigger inputs and one output. The device can be configured to be either transparent or latched. A logic low on one of the input pins forces the output to remain low irrespective of the other input logic, thus resulting in a logic 1 condition. When both inputs are logic high, the output is logic high. When a logic high on the other input forces the output to remain high irrespective of the other input logic, thus resulting in a logic 0 condition.
The performance of the ALDT depends primarily on two parameters: the propagation delay and the instabilities due to using multichip synchronous operation. The propagation delay is the time it takes for the state of the output to change in response to the trigger input logic. The instabilities result in output transients and synchronization errors, which are related to the slew rate of the signal, the switching noise, and external sources of electromagnetic interference.
The 74FCT163244APVG8 transmission performance is quite impressive due to its low "on state" jitter and excellent output to input timing skew performance. Moreover, its fast switching capability ensures no data loss and improves overall system performance. Furthermore, the ALDT is supported by a wide power supply range, allowing the operation of the device in different voltage levels. This makes the device ideal for high speed applications, since it provides flexibility and dependability.
Conclusion
The 74FCT163244APVG8 devices are optimized for high speed switching applications. Its efficient ALDT logic and buffer implementation ensures fast signal transitions with minimal delay and instabilities. Furthermore, the device’s wide power supply range provides flexibility and makes the 74FCT163244APVG8 an efficient and reliable solution for architecture, storage and communication systems.
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