XC7K480T-3FFG901I
XC7K480T-3FFG901I
Image shown is a representation only, Exact specifications should be obtained from the product data sheet.
rohs

AMD Xilinx

XC7K480T-3FFG901I


XC7K480T-3FFG901I
F20-XC7K480T-3FFG901I
Active
FIELD PROGRAMMABLE GATE ARRAY, LEAD FREE, FBGA-900
LEAD FREE, FBGA-900

XC7K480T-3FFG901I ECAD Model


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XC7K480T-3FFG901I Attributes


Type Description Select
Rohs Code Yes
Part Life Cycle Code Active
Programmable Logic Type FIELD PROGRAMMABLE GATE ARRAY
Qualification Status Not Qualified
JESD-609 Code e1
Moisture Sensitivity Level 4
Peak Reflow Temperature (Cel) NOT SPECIFIED
Time@Peak Reflow Temperature-Max (s) NOT SPECIFIED
Number of Terminals 900
Package Body Material PLASTIC/EPOXY
Package Style GRID ARRAY
Surface Mount YES
Terminal Finish Tin/Silver/Copper (Sn96.5Ag3.0Cu0.5)
Terminal Form BALL
Terminal Position BOTTOM
Ihs Manufacturer XILINX INC
Reach Compliance Code compliant
HTS Code 8542.39.00.01
Part Package Code BGA
Package Description LEAD FREE, FBGA-900
Pin Count 900

XC7K480T-3FFG901I Datasheet Download


XC7K480T-3FFG901I Overview



The chip model XC7K480T-3FFG901I is a highly advanced component developed by Xilinx Inc., a leading semiconductor supplier. It is part of the Kintex-7 family of FPGAs, and is specifically designed to meet the demands of high-end applications such as aerospace, defense, and industrial automation. This model is ideal for applications that require high-performance, low-power operation, and the ability to integrate multiple technologies.


The XC7K480T-3FFG901I has several advantages that make it an ideal choice for those looking for a reliable and efficient chip. It has a high-speed transceiver, which supports up to 12.5 Gbps data transfer rate. This chip also has an integrated memory controller, which provides up to 4 GB of on-chip memory. Additionally, the chip has a wide range of I/O options, including support for LVDS, SSTL, and SATA. The chip also has a low-power design, which makes it suitable for applications that require long battery life.


The XC7K480T-3FFG901I is expected to see increased demand in the future, due to its features and performance. As more applications require advanced features and higher performance, the chip is likely to become a popular choice for designers. Additionally, the chip's low-power design makes it an attractive option for applications that require long battery life.


The product description and specific design requirements of the XC7K480T-3FFG901I are detailed in the product datasheet. The datasheet provides information on the chip's features, performance, and power consumption. Additionally, the datasheet outlines the chip's I/O options, memory controller, and transceiver. The datasheet also provides detailed information on the chip's configuration options, such as the number of logic cells, and the maximum operating frequency.


In order to ensure optimal performance and reliability, designers should take into account several factors when designing with the XC7K480T-3FFG901I. For example, the chip's transceiver should be carefully configured to ensure that data is transmitted and received at the highest possible speed. Additionally, designers should ensure that the chip's memory controller is configured properly to ensure that data is stored and retrieved efficiently. Finally, designers should ensure that the chip's I/O options are properly configured to ensure compatibility with external devices.


In conclusion, the XC7K480T-3FFG901I is a highly advanced chip that is ideal for applications that require high-performance, low-power operation, and the ability to integrate multiple technologies. The chip is expected to see increased demand in the future, due to its features and performance. Designers should take into account several factors when designing with the XC7K480T-3FFG901I, and should ensure that the chip's transceiver, memory controller, and I/O options are properly configured. The product datasheet provides detailed information on the chip's features, performance, and power consumption, as well as its configuration options. Whether the application environment requires the support of new technologies depends on what specific technologies are needed.



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