
AMD Xilinx
XC7VX980T-1FFG1928I
XC7VX980T-1FFG1928I ECAD Model
XC7VX980T-1FFG1928I Attributes
Type | Description | Select |
---|---|---|
Pbfree Code | Yes | |
Rohs Code | Yes | |
Part Life Cycle Code | Active | |
Supply Voltage-Nom | 1 V | |
Number of Inputs | 480 | |
Number of Outputs | 480 | |
Number of Logic Cells | 979200 | |
Number of CLBs | 76500 | |
Combinatorial Delay of a CLB-Max | 740 ps | |
Programmable Logic Type | FIELD PROGRAMMABLE GATE ARRAY | |
Package Shape | SQUARE | |
Technology | CMOS | |
Organization | 76500 CLBS | |
Clock Frequency-Max | 1.818 GHz | |
Power Supplies | 1,1.8 V | |
Supply Voltage-Max | 1.03 V | |
Supply Voltage-Min | 970 mV | |
JESD-30 Code | S-PBGA-B1928 | |
Qualification Status | Not Qualified | |
JESD-609 Code | e1 | |
Moisture Sensitivity Level | 4 | |
Operating Temperature-Max | 100 °C | |
Operating Temperature-Min | -40 °C | |
Peak Reflow Temperature (Cel) | 245 | |
Time@Peak Reflow Temperature-Max (s) | 30 | |
Number of Terminals | 1928 | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | BGA | |
Package Equivalence Code | BGA1924,44X44,40 | |
Package Shape | SQUARE | |
Package Style | GRID ARRAY | |
Surface Mount | YES | |
Terminal Finish | TIN SILVER COPPER | |
Terminal Form | BALL | |
Terminal Pitch | 1 mm | |
Terminal Position | BOTTOM | |
Width | 45 mm | |
Length | 45 mm | |
Seated Height-Max | 3.65 mm | |
Ihs Manufacturer | XILINX INC | |
Reach Compliance Code | not_compliant | |
ECCN Code | 3A001.A.7.B | |
HTS Code | 8542.39.00.01 | |
Part Package Code | BGA | |
Package Description | FBGA-1928 | |
Pin Count | 1928 |
XC7VX980T-1FFG1928I Datasheet Download
XC7VX980T-1FFG1928I Overview
The chip model XC7VX980T-1FFG1928I is an advanced FPGA designed to provide the highest performance for digital signal processing, embedded processing, and image processing applications. It is based on the 7-series Xilinx FPGA architecture, which is optimized for high-speed, high-bandwidth applications. The chip model XC7VX980T-1FFG1928I supports multiple interfaces including PCI Express, Ethernet, USB, and Serial RapidIO. It also supports multiple HDL languages, including Verilog, VHDL, and SystemVerilog.
The chip model XC7VX980T-1FFG1928I is suitable for a variety of applications, including high-performance computing, high-speed data acquisition, and high-speed communications. It can be used in network applications such as network security, network monitoring, and network routing. It is also suitable for image processing applications such as facial recognition, object recognition, and image enhancement. In the era of fully intelligent systems, the chip model XC7VX980T-1FFG1928I can be used in applications such as robotics, autonomous vehicles, and machine learning.
The product description of the chip model XC7VX980T-1FFG1928I includes its features, specifications, and design requirements. It has a total of 980,000 logic cells, with a maximum clock frequency of 1.8 GHz and a maximum operating temperature of 85°C. It supports up to 8GB of DDR3 memory and up to 8GB of QDRII+ memory. It also supports multiple communication protocols, including PCIe, Ethernet, USB, and Serial RapidIO. The chip model XC7VX980T-1FFG1928I also supports multiple HDL languages, including Verilog, VHDL, and SystemVerilog.
When designing with the chip model XC7VX980T-1FFG1928I, it is important to consider the power requirements, temperature requirements, and timing constraints of the application. It is also important to consider the complexity of the design and the available resources. Designers should also pay attention to the design of the power and clock network, as well as the timing constraints of the design.
In conclusion, the chip model XC7VX980T-1FFG1928I is an advanced FPGA designed to provide the highest performance for digital signal processing, embedded processing, and image processing applications. It is suitable for a variety of applications, including high-performance computing, high-speed data acquisition, and high-speed communications. When designing with the chip model XC7VX980T-1FFG1928I, it is important to consider the power requirements, temperature requirements, and timing constraints of the application. It is also important to consider the complexity of the design and the available resources.
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