
AMD Xilinx
XC5206-5PQG100C
XC5206-5PQG100C ECAD Model
XC5206-5PQG100C Attributes
Type | Description | Select |
---|---|---|
Pbfree Code | Yes | |
Rohs Code | Yes | |
Part Life Cycle Code | Obsolete | |
Supply Voltage-Nom | 5 V | |
Number of Equivalent Gates | 6000 | |
Number of CLBs | 196 | |
Combinatorial Delay of a CLB-Max | 4.6 ns | |
Programmable Logic Type | FIELD PROGRAMMABLE GATE ARRAY | |
Temperature Grade | OTHER | |
Package Shape | RECTANGULAR | |
Technology | CMOS | |
Organization | 196 CLBS, 6000 GATES | |
Additional Feature | MAX AVAILABLE 10000 LOGIC GATES | |
Clock Frequency-Max | 83 MHz | |
Supply Voltage-Max | 5.25 V | |
Supply Voltage-Min | 4.75 V | |
JESD-30 Code | R-PQFP-G100 | |
Qualification Status | Not Qualified | |
JESD-609 Code | e3 | |
Moisture Sensitivity Level | 3 | |
Operating Temperature-Max | 85 °C | |
Peak Reflow Temperature (Cel) | 250 | |
Time@Peak Reflow Temperature-Max (s) | 40 | |
Number of Terminals | 100 | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | QFP | |
Package Shape | RECTANGULAR | |
Package Style | FLATPACK | |
Surface Mount | YES | |
Terminal Finish | Matte Tin (Sn) | |
Terminal Form | GULL WING | |
Terminal Pitch | 650 µm | |
Terminal Position | QUAD | |
Width | 14 mm | |
Length | 20 mm | |
Seated Height-Max | 3.4 mm | |
Ihs Manufacturer | XILINX INC | |
Part Package Code | QFP | |
Package Description | QFP, | |
Pin Count | 100 | |
Reach Compliance Code | compliant | |
HTS Code | 8542.39.00.01 |
XC5206-5PQG100C Datasheet Download
XC5206-5PQG100C Overview
The XC5206-5PQG100C chip model is a multi-purpose chip designed to meet the needs of high-performance digital signal processing, embedded processing, image processing, and other applications. It is a field-programmable gate array (FPGA) chip, and it requires the use of a hardware description language (HDL) to program it. This chip model is designed to provide a high degree of flexibility and scalability, allowing it to be used in a variety of applications.
The XC5206-5PQG100C chip model was designed with the intention of providing a high degree of flexibility and scalability for a wide range of applications. Its features include a high-performance embedded processor, a wide range of digital signal processing capabilities, and a wide range of image processing capabilities. It also has an on-chip memory controller, allowing it to be used in embedded systems.
This chip model can be used in advanced communication systems, as it has the capability to process high-speed data streams. It also has the flexibility to be upgraded in the future, allowing it to be used in more complex applications. Additionally, the chip model has the ability to be used in a variety of applications, including digital signal processing, image processing, embedded systems, and more.
When designing with the XC5206-5PQG100C chip model, it is important to consider the specific requirements for the project. This includes the types of data that will be processed, the speed of the data, the memory requirements, and the type of processor that will be used. Additionally, it is important to consider the design of the chip model and the specific requirements for the application.
When using the XC5206-5PQG100C chip model, it is important to follow the instructions provided in the product description. Additionally, there are several case studies available that provide information on the successful implementation of the chip model in various applications. It is important to consider these case studies when using the chip model, as they can provide valuable insight into the design and implementation of the chip model. Additionally, it is important to consider any potential risks associated with using the chip model, as well as any potential safety precautions that should be taken.
Overall, the XC5206-5PQG100C chip model is an excellent choice for a wide range of applications, including digital signal processing, embedded processing, image processing, and advanced communication systems. It is important to consider the specific design requirements of the project, as well as any potential risks or safety precautions when using the chip model. Additionally, there are several case studies available that provide insight into the successful implementation of the chip model in various applications.
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