XC3142A-5PG84I
XC3142A-5PG84I
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rohs

AMD Xilinx

XC3142A-5PG84I


XC3142A-5PG84I
F20-XC3142A-5PG84I
Active
FIELD PROGRAMMABLE GATE ARRAY, CMOS, PGA, PGA84M,11X11
PGA, PGA84M,11X11

XC3142A-5PG84I ECAD Model


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XC3142A-5PG84I Attributes


Type Description Select
Rohs Code Yes
Part Life Cycle Code Obsolete
Supply Voltage-Nom 5 V
Number of Inputs 74
Number of Outputs 74
Number of Logic Cells 144
Number of Equivalent Gates 2000
Number of CLBs 144
Combinatorial Delay of a CLB-Max 4.1 ns
Programmable Logic Type FIELD PROGRAMMABLE GATE ARRAY
Package Shape SQUARE
Technology CMOS
Organization 144 CLBS, 2000 GATES
Additional Feature TYP. GATES = 2000-3000
Clock Frequency-Max 188 MHz
Power Supplies 5 V
Supply Voltage-Max 5.5 V
Supply Voltage-Min 4.5 V
JESD-30 Code S-CPGA-P84
Qualification Status Not Qualified
Number of Terminals 84
Package Body Material CERAMIC, METAL-SEALED COFIRED
Package Code PGA
Package Equivalence Code PGA84M,11X11
Package Shape SQUARE
Package Style GRID ARRAY
Surface Mount NO
Terminal Form PIN/PEG
Terminal Pitch 2.54 mm
Terminal Position PERPENDICULAR
Width 27.94 mm
Length 27.94 mm
Seated Height-Max 5.207 mm
Ihs Manufacturer XILINX INC
Part Package Code PGA
Package Description PGA, PGA84M,11X11
Pin Count 84
Reach Compliance Code unknown
HTS Code 8542.39.00.01

XC3142A-5PG84I Datasheet Download


XC3142A-5PG84I Overview



The XC3142A-5PG84I chip model is a highly integrated chip model, developed by Xilinx, a leading semiconductor company. It is a high-performance, low-cost, low-power, and low-cost-per-transistor solution for a wide range of applications. It offers a wide range of features and benefits, including high-speed data processing, low-power operation, advanced power management, and flexible system integration.


The XC3142A-5PG84I chip model is designed to meet the requirements of a wide range of industries, including consumer electronics, automotive, industrial, and medical. It is suitable for applications such as digital signal processing, communication systems, embedded systems, and automotive systems. It offers a wide range of features and benefits, including high-speed data processing, low-power operation, advanced power management, and flexible system integration.


In terms of industry trends, the XC3142A-5PG84I chip model is expected to gain increasing popularity in the near future as its low cost, low power consumption, and high performance make it a suitable choice for a variety of applications. The chip model is expected to be increasingly used in consumer electronics, automotive, industrial, and medical applications.


In terms of product description and design requirements of the chip model, the XC3142A-5PG84I chip model is built on a 65-nm process technology and is based on a Xilinx Virtex-5 FPGA architecture. It has a total of 18,432 logic cells and a total of 1,024 Kbits of embedded memory. It also provides a range of I/O options, including two high-speed SERDES, two LVDS, and two HDMI ports.


In terms of actual case studies and precautions, it is important to note that the XC3142A-5PG84I chip model is a complex device and requires careful design and implementation to ensure optimal performance. It is important to consider the application environment when selecting the chip model, as different applications may require different levels of performance and power consumption. Additionally, when designing for the chip model, it is important to consider the latest technologies and trends in the industry, as these may require the support of new technologies. For example, the chip model may require the support of a new communication protocol or a new algorithm for data processing.


Overall, the XC3142A-5PG84I chip model is a highly integrated, low-cost, low-power, and high-performance solution for a wide range of applications. It is expected to gain increasing popularity in the near future due to its wide range of features and benefits. It is important to consider the application environment when selecting the chip model and to consider the latest technologies and trends in the industry, as these may require the support of new technologies. Additionally, it is important to carefully design and implement the chip model to ensure optimal performance.



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