XC2VP40-7FFG1148I
XC2VP40-7FFG1148I
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rohs

AMD Xilinx

XC2VP40-7FFG1148I


XC2VP40-7FFG1148I
F20-XC2VP40-7FFG1148I
Active
FIELD PROGRAMMABLE GATE ARRAY, CMOS, 1 MM PITCH, FLIP CHIP, FBGA-1148
1 MM PITCH, FLIP CHIP, FBGA-1148

XC2VP40-7FFG1148I ECAD Model


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XC2VP40-7FFG1148I Attributes


Type Description Select
Pbfree Code Yes
Rohs Code Yes
Part Life Cycle Code Obsolete
Supply Voltage-Nom 1.5 V
Number of CLBs 4848
Combinatorial Delay of a CLB-Max 280 ps
Programmable Logic Type FIELD PROGRAMMABLE GATE ARRAY
Package Shape SQUARE
Technology CMOS
Organization 4848 CLBS
Clock Frequency-Max 1.35 GHz
Supply Voltage-Max 1.575 V
Supply Voltage-Min 1.425 V
JESD-30 Code S-PBGA-B1148
Qualification Status Not Qualified
JESD-609 Code e1
Moisture Sensitivity Level 4
Peak Reflow Temperature (Cel) 245
Time@Peak Reflow Temperature-Max (s) 30
Number of Terminals 1148
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 35 mm
Length 35 mm
Seated Height-Max 3.4 mm
Ihs Manufacturer XILINX INC
Part Package Code BGA
Package Description 1 MM PITCH, FLIP CHIP, FBGA-1148
Pin Count 1148
Reach Compliance Code not_compliant
HTS Code 8542.39.00.01

XC2VP40-7FFG1148I Datasheet Download


XC2VP40-7FFG1148I Overview



The chip model XC2VP40-7FFG1148I is a field-programmable gate array (FPGA) developed by Xilinx, a leader in the semiconductor industry. This FPGA is designed to provide users with a cost-effective and reliable solution for their design needs. It is a low-power, low-cost, and high-performance FPGA, with a rich feature set.


The XC2VP40-7FFG1148I is ideal for a variety of applications, including digital signal processing, computer vision, machine learning, and embedded systems. It is capable of supporting a wide range of communication protocols, including Ethernet, USB, and CAN. It has a large on-chip memory, which is capable of storing up to 8 million bits of data. Additionally, it has a high-speed clock generator, which can generate up to 200 MHz.


The XC2VP40-7FFG1148I is designed to be flexible, allowing users to customize their designs with a variety of features. It is also capable of supporting a wide range of programming languages, including VHDL, Verilog, and C. Additionally, it is capable of supporting multiple development tools, including Xilinx ISE and Vivado.


The XC2VP40-7FFG1148I is a reliable and cost-effective solution for a variety of applications. It is capable of supporting a wide range of communication protocols and has a large on-chip memory. Additionally, it is flexible and can be customized with a variety of features. It is also capable of supporting multiple development tools, including Xilinx ISE and Vivado.


In terms of industry trends and future development, the XC2VP40-7FFG1148I is well-suited for applications that require low-power, low-cost, and high-performance solutions. It is capable of supporting a wide range of communication protocols, making it suitable for a variety of applications. Additionally, it is capable of supporting multiple development tools, making it easier to customize designs.


In terms of future upgrades, the XC2VP40-7FFG1148I is capable of supporting a wide range of communication protocols, making it suitable for advanced communication systems. Additionally, it is capable of supporting multiple development tools, making it easier to customize designs.


When using the XC2VP40-7FFG1148I, it is important to consider the application environment and the specific technologies that are needed. It is also important to consider the original design intention of the chip model and the possibility of future upgrades. Additionally, it is important to consider the product description and specific design requirements, as well as actual case studies and precautions.


Overall, the XC2VP40-7FFG1148I is a reliable and cost-effective solution for a variety of applications. It is capable of supporting a wide range of communication protocols and has a large on-chip memory. Additionally, it is flexible and can be customized with a variety of features. It is also capable of supporting multiple development tools, making it easier to customize designs. When considering the application environment and the specific technologies that are needed, it is important to consider the original design intention of the chip model and the possibility of future upgrades. Additionally, it is important to consider the product description and specific design requirements, as well as actual case studies and precautions.



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