XC6VLX240T-1FFG1759I Allicdata Electronics
Allicdata Part #:

122-1682-ND

Manufacturer Part#:

XC6VLX240T-1FFG1759I

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Xilinx Inc.
Short Description: IC FPGA 720 I/O 1759FCBGA
More Detail: N/A
DataSheet: XC6VLX240T-1FFG1759I datasheetXC6VLX240T-1FFG1759I Datasheet/PDF
Quantity: 1000
Stock 1000Can Ship Immediately
Specifications
Series: Virtex®-6 LXT
Part Status: Active
Number of LABs/CLBs: 18840
Number of Logic Elements/Cells: 241152
Total RAM Bits: 15335424
Number of I/O: 720
Voltage - Supply: 0.95 V ~ 1.05 V
Mounting Type: Surface Mount
Operating Temperature: -40°C ~ 100°C (TJ)
Package / Case: 1760-BBGA, FCBGA
Supplier Device Package: 1759-FCBGA (42.5x42.5)
Base Part Number: XC6VLX240T
Description

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Field programmable gate arrays (FPGAs) are integrated circuits that are becoming increasingly popular in the embedded systems market due to their flexibility and scalability. The XC6VLX240T-1FFG1759I is an FPGA specifically designed to meet the needs of embedded applications. In this article, we will discuss the application fields and working principles of the XC6VLX240T-1FFG1759I FPGA.

State Machine-Based Design with XC6VLX240T-1FFG1759I

Due to its scalability and flexibility, the XC6VLX240T-1FFG1759I suits applications that require complex logic for state machine-based designs. It is capable of designing, plasticizing and reprogramming of logic and data sequences for machines or robots with complex multi-state behaviour and decision-making capability. It can also provide timing accuracy, with the addition of an external clock. The XC6VLX240T-1FFG1759I also has several built-in peripherals, such as gigabit transceivers, PCIe Gen1/Gen2 controllers, and memory controllers, making it easier for the user to accommodate their application designs.

Signal Processing and Control with XC6VLX240T-1FFG1759I

The XC6VLX240T-1FFG1759I FPGA is also well suited for signal processing and control applications. Its efficient design and on-chip resources allow for the implementation of complex algorithms, such as PID controllers and low-latency video and audio applications. Additionally, the XC6VLX240T-1FFG1759I can be used to implement image and video processing systems, such as face recognition, object detection and augmented or virtual reality applications. Its high speed-profiles enable real-time computation and image processing, as well as high performance in data-intensive applications.

CPU Interface with XC6VLX240T-1FFG1759I

In addition to its signal processing and control capabilities, the XC6VLX240T-1FFG1759I FPGA can be used to interface with CPUs. Its high-speed I/O capabilities and memory controllers allow for the implementation of CPU bridges, which enable communication between a CPU and an FPGA. In addition, the XC6VLX240T-1FFG1759I can provide a high-speed, low latency bridge between multiple CPUs, as well as between memory, peripherals and processors. This makes it well-suited for multi-processor applications, where it can be used to communicate and coordinate multiple subsystems.

Working Principles of XC6VLX240T-1FFG1759I

The XC6VLX240T-1FFG1759I is an FPGA device composed of thousands of programmable logic blocks, or CLBS. These CLBs consist of multiple logic functions and memory elements, which can be programmed to perform specific tasks. The device is powered by an integrated fabric, which enables communication between the CLBs, and an anti-fuse configuration memory, which stores the configuration data.

The FPGA also interfaces with external peripherals, such as SRAM and OTP memory, high-speed I/O devices and embedded processors. These peripherals allow the FPGA to interface with other components, such as CPUs and external memories, as well as to perform complex logic operations. The configuration memory stores the configuration data for the logic functions and memory elements, which allows for the device to be reconfigured on-the-fly.

Conclusion:

The XC6VLX240T-1FFG1759I FPGA is an ideal choice for applications requiring flexibility, scalability and performance. Its state machine-based design capabilities, signal processing and control capabilities, and ability to interface with CPUs make it suitable for a wide range of embedded applications. Furthermore, its built-in peripherals, high-speed I/O capabilities and memory controllers make it easy to develop and deploy applications quickly.

The specific data is subject to PDF, and the above content is for reference

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