XCV405E-6FGG676C
XCV405E-6FGG676C
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rohs

AMD Xilinx

XCV405E-6FGG676C


XCV405E-6FGG676C
F20-XCV405E-6FGG676C
Active
FIELD PROGRAMMABLE GATE ARRAY, CMOS, BGA
BGA

XCV405E-6FGG676C ECAD Model


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XCV405E-6FGG676C Attributes


Type Description Select
Pbfree Code Yes
Rohs Code Yes
Part Life Cycle Code Obsolete
Supply Voltage-Nom 1.8 V
Number of Equivalent Gates 129600
Number of CLBs 2400
Combinatorial Delay of a CLB-Max 470 ps
Programmable Logic Type FIELD PROGRAMMABLE GATE ARRAY
Temperature Grade COMMERCIAL
Package Shape SQUARE
Technology CMOS
Organization 2400 CLBS, 129600 GATES
Clock Frequency-Max 357 MHz
Supply Voltage-Max 1.89 V
Supply Voltage-Min 1.71 V
JESD-30 Code S-PBGA-B676
Qualification Status Not Qualified
JESD-609 Code e1
Moisture Sensitivity Level 3
Operating Temperature-Max 70 °C
Peak Reflow Temperature (Cel) 250
Time@Peak Reflow Temperature-Max (s) 30
Number of Terminals 676
Package Body Material PLASTIC/EPOXY
Package Code BGA
Package Shape SQUARE
Package Style GRID ARRAY
Surface Mount YES
Terminal Finish Tin/Silver/Copper (Sn95.5Ag4.0Cu0.5)
Terminal Form BALL
Terminal Pitch 1 mm
Terminal Position BOTTOM
Width 27 mm
Length 27 mm
Seated Height-Max 2.6 mm
Ihs Manufacturer XILINX INC
Part Package Code BGA
Package Description BGA,
Pin Count 676
Reach Compliance Code compliant
HTS Code 8542.39.00.01

XCV405E-6FGG676C Datasheet Download


XCV405E-6FGG676C Overview



The XCV405E-6FGG676C chip model is a high-performance digital signal processing solution designed for embedded processing, image processing, and other applications. This chip model is capable of executing complex instructions and tasks in a short amount of time, making it an ideal choice for projects that require a high level of performance.


The XCV405E-6FGG676C chip model is designed to be used with the HDL (Hardware Description Language) language. This language is used to describe the structure and behavior of digital systems, making it a great choice for designing and programming digital systems. The XCV405E-6FGG676C chip model includes a set of instructions and command formats that allow users to program and control the chip.


In order to use the XCV405E-6FGG676C chip model effectively, it is important to understand the product description and specific design requirements. This includes understanding the chip’s instruction set, the available memory, the signal processing capabilities, and the power consumption. It is also important to be aware of the limitations of the chip, such as the maximum clock speed and the number of operations it can perform in a given amount of time. Additionally, it is important to be familiar with the tools and techniques used for programming the chip.


The XCV405E-6FGG676C chip model can be applied to the development and popularization of future intelligent robots. This chip model is capable of executing complex instructions and tasks in a short amount of time, making it an ideal choice for robotic projects that require a high level of performance. In order to use the XCV405E-6FGG676C chip model effectively, technical talents such as software engineers, electrical engineers, and computer scientists are needed. These professionals should be familiar with the HDL language, the product description and specific design requirements, and the tools and techniques used for programming the chip.


Overall, the XCV405E-6FGG676C chip model is a powerful and efficient solution for embedded processing, image processing, and other applications. It is capable of executing complex instructions and tasks in a short amount of time, making it an ideal choice for projects that require a high level of performance. In addition, it can be applied to the development and popularization of future intelligent robots. However, in order to use the XCV405E-6FGG676C chip model effectively, technical talents such as software engineers, electrical engineers, and computer scientists are needed.



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