XC5VSX240T-2FF1738I
XC5VSX240T-2FF1738I
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rohs

AMD Xilinx

XC5VSX240T-2FF1738I


XC5VSX240T-2FF1738I
F20-XC5VSX240T-2FF1738I
Active
FIELD PROGRAMMABLE GATE ARRAY, CMOS, BGA-1738
BGA-1738

XC5VSX240T-2FF1738I ECAD Model


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XC5VSX240T-2FF1738I Attributes


Type Description Select
Rohs Code No
Part Life Cycle Code Active
Supply Voltage-Nom 1 V
Number of Inputs 960
Number of Outputs 960
Number of Logic Cells 239616
Number of CLBs 18720
Combinatorial Delay of a CLB-Max 770 ps
Programmable Logic Type FIELD PROGRAMMABLE GATE ARRAY
Temperature Grade INDUSTRIAL
Package Shape SQUARE
Technology CMOS
Organization 18720 CLBS
Power Supplies 1,2.5 V
Supply Voltage-Max 1.05 V
Supply Voltage-Min 950 mV
JESD-30 Code S-PBGA-B1738
Qualification Status Not Qualified
JESD-609 Code e0
Moisture Sensitivity Level 4
Operating Temperature-Max 100 °C
Operating Temperature-Min -40 °C
Peak Reflow Temperature (Cel) 225
Time@Peak Reflow Temperature-Max (s) 30
Number of Terminals 1738
Package Body Material PLASTIC/EPOXY
Package Code BGA
Package Equivalence Code BGA1738,42X42,40
Package Shape SQUARE
Package Style GRID ARRAY
Surface Mount YES
Terminal Finish TIN LEAD
Terminal Form BALL
Terminal Pitch 1 mm
Terminal Position BOTTOM
Width 42.5 mm
Length 42.5 mm
Seated Height-Max 3.25 mm
Ihs Manufacturer XILINX INC
Part Package Code BGA
Package Description BGA-1738
Pin Count 1738
Reach Compliance Code not_compliant
HTS Code 8542.39.00.01

XC5VSX240T-2FF1738I Datasheet Download


XC5VSX240T-2FF1738I Overview



The XC5VSX240T-2FF1738I chip model is a powerful and reliable solution for many industries. It is a Field Programmable Gate Array (FPGA) developed by Xilinx and is based on their Virtex-5 family of FPGAs. This chip model offers a wide range of features, including high-speed transceivers, memory controllers, and system-level integration. It has a large number of logic cells and can support multiple clock frequencies.


The XC5VSX240T-2FF1738I chip model is designed to meet the needs of a variety of industries, including aerospace, automotive, defense, medical, and telecommunications. Its high-speed transceivers, memory controllers, and system-level integration make it an ideal solution for these industries. In addition, its low power consumption makes it an attractive choice for battery-powered applications.


The XC5VSX240T-2FF1738I chip model has been designed to meet a variety of design requirements. Its logic cells are optimized for high-speed operation and its memory controllers are designed for high-density memory applications. It also has built-in support for multiple clock frequencies and can be used in both synchronous and asynchronous systems. In addition, its low power consumption makes it suitable for battery-powered applications.


The XC5VSX240T-2FF1738I chip model has been widely used in various industries and applications. For example, it has been used in aerospace applications to control and monitor flight systems, in automotive applications to control engine and transmission systems, and in medical applications to monitor vital signs. It has also been used in defense applications to control weapons systems and in telecommunications applications to control wireless networks.


The XC5VSX240T-2FF1738I chip model is a powerful and reliable solution for many industries. However, it is important to consider the design requirements of the application before selecting the chip model. It is also important to consider whether the chip model can be upgraded in the future to meet the changing needs of the application.


The XC5VSX240T-2FF1738I chip model is expected to remain in high demand in the future as more industries and applications adopt it. Its high-speed transceivers, memory controllers, and system-level integration make it a powerful and reliable solution for many industries. Its low power consumption also makes it attractive for battery-powered applications. As more industries and applications adopt the chip model, the demand for it is expected to increase.


In conclusion, the XC5VSX240T-2FF1738I chip model is a powerful and reliable solution for many industries. Its high-speed transceivers, memory controllers, and system-level integration make it an ideal solution for a variety of industries. Its low power consumption also makes it attractive for battery-powered applications. As more industries and applications adopt the chip model, the demand for it is expected to increase. It is important to consider the design requirements of the application before selecting the chip model and to consider whether the chip model can be upgraded in the future to meet the changing needs of the application.



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