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XC95288XL-10CS280C

XC95288XL-10CS280C

Product Overview

Category

XC95288XL-10CS280C belongs to the category of programmable logic devices (PLDs).

Use

This product is commonly used in digital circuit design and implementation. It offers a flexible and customizable solution for various applications.

Characteristics

  • High-density programmable logic device
  • Low power consumption
  • Fast performance
  • Wide range of I/O options
  • Easy integration with other components

Package

XC95288XL-10CS280C is available in a compact 280-pin ceramic package.

Essence

The essence of this product lies in its ability to provide a reconfigurable hardware platform that can be programmed to perform specific functions as required by the user.

Packaging/Quantity

XC95288XL-10CS280C is typically packaged individually and is available in various quantities depending on the customer's requirements.

Specifications

  • Logic Cells: 2880
  • Flip-Flops: 5760
  • Maximum Frequency: 100 MHz
  • Operating Voltage: 3.3V
  • I/O Pins: 280
  • Programmable Interconnect Points: 14400
  • On-Chip RAM: 72 Kbits
  • On-Chip Flash Memory: 256 Kbits

Detailed Pin Configuration

The pin configuration of XC95288XL-10CS280C is as follows:

  1. VCCIO
  2. GND
  3. TCK
  4. TMS
  5. TDI
  6. TDO
  7. VCCINT
  8. GND
  9. IO_0
  10. IO_1
  11. IO_2
  12. IO_3 ... (continued)

Functional Features

XC95288XL-10CS280C offers the following functional features:

  • Programmable logic cells for implementing complex digital circuits
  • Flip-flops for storing and manipulating data
  • Programmable interconnect points for flexible routing of signals
  • On-chip RAM and flash memory for data storage
  • Various I/O options for interfacing with external devices

Advantages and Disadvantages

Advantages

  • High-density programmable logic device
  • Low power consumption
  • Fast performance
  • Flexible and customizable design
  • Wide range of I/O options

Disadvantages

  • Limited on-chip memory capacity
  • Relatively high cost compared to simpler logic devices

Working Principles

XC95288XL-10CS280C operates based on the principles of reconfigurable hardware. It can be programmed using a hardware description language (HDL) or a graphical programming tool. The programmed configuration is stored in the on-chip flash memory and can be modified as needed.

During operation, the device receives input signals through its I/O pins, processes them using the programmed logic cells, and produces output signals accordingly. The programmable interconnect points allow for flexible routing of signals within the device.

Detailed Application Field Plans

XC95288XL-10CS280C finds applications in various fields, including:

  1. Telecommunications: Used in network routers and switches for data processing and routing.
  2. Industrial Automation: Employed in control systems for monitoring and controlling industrial processes.
  3. Automotive Electronics: Integrated into automotive systems for functions such as engine control and driver assistance.
  4. Consumer Electronics: Utilized in devices like gaming consoles and multimedia players for custom functionality.

Detailed and Complete Alternative Models

Some alternative models to XC95288XL-10CS280C include:

  1. XC95144XL-10TQG100C
  2. XC9536XL-10VQG44C
  3. XC9572XL-10VQG44C
  4. XC95108XL-10TQG100C

These models offer similar functionality but differ in terms of logic capacity, I/O count, and package type.

In conclusion, XC95288XL-10CS280C is a high-density programmable logic device that provides a flexible and customizable solution for digital circuit design. With its fast performance and wide range of I/O options, it finds applications in various fields such as telecommunications, industrial automation, automotive electronics, and consumer electronics. While it has advantages like low power consumption and flexibility, it also has limitations in terms of on-chip memory capacity and cost.

Liste 10 perguntas e respostas comuns relacionadas à aplicação de XC95288XL-10CS280C em soluções técnicas

Sure! Here are 10 common questions and answers related to the application of XC95288XL-10CS280C in technical solutions:

  1. Q: What is XC95288XL-10CS280C? A: XC95288XL-10CS280C is a field-programmable gate array (FPGA) manufactured by Xilinx.

  2. Q: What are the key features of XC95288XL-10CS280C? A: Some key features include 288 macrocells, 10ns maximum propagation delay, 280-pin package, and support for various I/O standards.

  3. Q: What are the typical applications of XC95288XL-10CS280C? A: XC95288XL-10CS280C is commonly used in digital signal processing, telecommunications, industrial control systems, and other high-performance applications.

  4. Q: How can I program XC95288XL-10CS280C? A: XC95288XL-10CS280C can be programmed using Xilinx's programming tools such as iMPACT or Vivado.

  5. Q: What voltage levels does XC95288XL-10CS280C support? A: XC95288XL-10CS280C supports both 3.3V and 5V voltage levels.

  6. Q: Can XC95288XL-10CS280C interface with external memory devices? A: Yes, XC95288XL-10CS280C has dedicated pins for interfacing with external memory devices such as SRAM or SDRAM.

  7. Q: Does XC95288XL-10CS280C have built-in support for communication protocols? A: XC95288XL-10CS280C does not have built-in support for specific communication protocols, but it can be programmed to implement various protocols like UART, SPI, I2C, etc.

  8. Q: Can XC95288XL-10CS280C be used in safety-critical applications? A: Yes, XC95288XL-10CS280C can be used in safety-critical applications if proper design and verification techniques are followed.

  9. Q: What is the power consumption of XC95288XL-10CS280C? A: The power consumption of XC95288XL-10CS280C depends on the specific design and operating conditions but typically ranges from a few hundred milliwatts to a few watts.

  10. Q: Are there any known limitations or considerations when using XC95288XL-10CS280C? A: Some considerations include limited resources compared to newer FPGA models, potential for signal integrity issues at high frequencies, and the need for careful design and testing to ensure reliable operation.

Please note that these answers are general and may vary depending on specific requirements and use cases.