
AMD Xilinx
XCV50-4PQG240C
XCV50-4PQG240C ECAD Model
XCV50-4PQG240C Attributes
Type | Description | Select |
---|---|---|
Pbfree Code | Yes | |
Rohs Code | Yes | |
Part Life Cycle Code | Obsolete | |
Supply Voltage-Nom | 2.5 V | |
Number of Equivalent Gates | 57906 | |
Number of CLBs | 384 | |
Combinatorial Delay of a CLB-Max | 800 ps | |
Programmable Logic Type | FIELD PROGRAMMABLE GATE ARRAY | |
Temperature Grade | OTHER | |
Package Shape | SQUARE | |
Technology | CMOS | |
Organization | 384 CLBS, 57906 GATES | |
Clock Frequency-Max | 250 MHz | |
Supply Voltage-Max | 2.625 V | |
Supply Voltage-Min | 2.375 V | |
JESD-30 Code | S-PQFP-G240 | |
Qualification Status | Not Qualified | |
JESD-609 Code | e3 | |
Moisture Sensitivity Level | 3 | |
Operating Temperature-Max | 85 °C | |
Peak Reflow Temperature (Cel) | 245 | |
Time@Peak Reflow Temperature-Max (s) | 30 | |
Number of Terminals | 240 | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | FQFP | |
Package Shape | SQUARE | |
Package Style | FLATPACK, FINE PITCH | |
Surface Mount | YES | |
Terminal Finish | Matte Tin (Sn) | |
Terminal Form | GULL WING | |
Terminal Pitch | 500 µm | |
Terminal Position | QUAD | |
Width | 32 mm | |
Length | 32 mm | |
Seated Height-Max | 4.1 mm | |
Ihs Manufacturer | XILINX INC | |
Part Package Code | QFP | |
Package Description | FQFP, | |
Pin Count | 240 | |
Reach Compliance Code | compliant | |
HTS Code | 8542.39.00.01 |
XCV50-4PQG240C Datasheet Download
XCV50-4PQG240C Overview
The XCV50-4PQG240C chip model is a high-performance digital signal processor that is suitable for a wide range of applications, such as embedded processing, image processing, and other digital signal processing tasks. It is designed to be used in conjunction with HDL language, which is a hardware description language used to program digital circuits.
The XCV50-4PQG240C chip model has a wide range of features that make it suitable for many different applications. It provides a high-performance digital signal processing unit that is designed to be used in conjunction with HDL language. It also has a high-speed memory controller, allowing for faster data transfer. Additionally, the chip model has an integrated logic unit, which can be used to create complex logic functions.
When it comes to the product description and specific design requirements of the XCV50-4PQG240C chip model, it is important to understand the requirements of the particular application. It is also important to understand the potential risks and safety issues associated with using the chip. For example, when using the chip model for image processing, it is important to ensure that all necessary safety measures are taken to prevent any potential data loss or corruption.
In terms of case studies, there are many examples of successful applications of the XCV50-4PQG240C chip model. For example, it has been used in the development of autonomous robots, such as Mars rovers and other robotic systems. Additionally, it has been used in the development of medical imaging systems, and other applications that require high-performance digital signal processing.
When it comes to the application of the XCV50-4PQG240C chip model in the development and popularization of future intelligent robots, it is important to understand the technical talents that are necessary to use the chip effectively. For example, it is important to have a good understanding of HDL language, as well as the underlying logic functions that are used to program the chip. Additionally, it is important to understand the safety measures and potential risks associated with using the chip.
In conclusion, the XCV50-4PQG240C chip model is a high-performance digital signal processor that is suitable for a wide range of applications, such as embedded processing, image processing, and other digital signal processing tasks. It is important to understand the product description and specific design requirements of the chip model, as well as the potential risks and safety issues associated with using the chip. Additionally, it is important to understand the technical talents that are necessary to use the chip effectively, in order to successfully apply the chip model in the development and popularization of future intelligent robots.
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