
AMD Xilinx
XCR5128-10PC84C
XCR5128-10PC84C ECAD Model
XCR5128-10PC84C Attributes
Type | Description | Select |
---|---|---|
Rohs Code | No | |
Part Life Cycle Code | Obsolete | |
Supply Voltage-Nom | 5 V | |
Propagation Delay | 12 ns | |
Number of Dedicated Inputs | 2 | |
Number of Macro Cells | 128 | |
Number of I/O Lines | 64 | |
Programmable Logic Type | EE PLD | |
Temperature Grade | COMMERCIAL | |
Package Shape | SQUARE | |
Technology | CMOS | |
Organization | 2 DEDICATED INPUTS, 64 I/O | |
Additional Feature | YES | |
Clock Frequency-Max | 71 MHz | |
In-System Programmable | YES | |
JTAG BST | YES | |
Output Function | MACROCELL | |
Power Supplies | 5 V | |
Supply Voltage-Max | 5.25 V | |
Supply Voltage-Min | 4.75 V | |
JESD-30 Code | S-PQCC-J84 | |
Qualification Status | Not Qualified | |
JESD-609 Code | e0 | |
Moisture Sensitivity Level | 3 | |
Operating Temperature-Max | 70 °C | |
Peak Reflow Temperature (Cel) | 225 | |
Time@Peak Reflow Temperature-Max (s) | 30 | |
Number of Terminals | 84 | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | QCCJ | |
Package Equivalence Code | LDCC84,1.2SQ | |
Package Shape | SQUARE | |
Package Style | CHIP CARRIER | |
Surface Mount | YES | |
Terminal Finish | TIN LEAD | |
Terminal Form | J BEND | |
Terminal Pitch | 1.27 mm | |
Terminal Position | QUAD | |
Width | 29.3116 mm | |
Length | 29.3116 mm | |
Seated Height-Max | 5.08 mm | |
Ihs Manufacturer | XILINX INC | |
Part Package Code | LCC | |
Package Description | PLASTIC, LCC-84 | |
Pin Count | 84 | |
Reach Compliance Code | unknown | |
HTS Code | 8542.39.00.01 |
XCR5128-10PC84C Datasheet Download
XCR5128-10PC84C Overview
Chip model XCR5128-10PC84C is a modern microcontroller from Xilinx, a leading provider of programmable logic solutions. It is designed to provide a powerful yet cost-effective solution for embedded applications. This chip model is equipped with a wide range of features and capabilities that make it a great choice for a variety of applications.
The XCR5128-10PC84C chip model is based on the Arm Cortex-M4 processor core. It is designed to provide high-performance, low-power operation and support for a variety of peripherals. It also includes an integrated memory controller and a wide range of integrated peripherals, including an analog-to-digital converter, UART, SPI, I2C, and GPIO.
The XCR5128-10PC84C chip model offers an impressive range of advantages. It is highly reliable, with a long product life and low power consumption. It is also highly flexible, allowing users to customize the chip to meet their specific needs. It is also easy to use and program, making it a great choice for novice and experienced users alike.
The demand for the XCR5128-10PC84C chip model is expected to remain strong in the future, as more and more applications require embedded solutions. This chip model is particularly well-suited for applications in the automotive, industrial, and medical industries, where its low-power, reliable performance can provide a great advantage.
When it comes to using the XCR5128-10PC84C chip model, there are a few important things to keep in mind. First, the chip model should be used in accordance with the manufacturer’s recommended guidelines. Additionally, users should be aware of the chip model’s limitations, such as its limited memory and processing power. Finally, users should be aware of the chip model’s power and temperature requirements, as these can affect its performance and reliability.
The XCR5128-10PC84C chip model is well-suited for the development and popularization of future intelligent robots. This chip model has the power, flexibility, and reliability needed to support the development of robots that can interact with their environment in a meaningful way. Additionally, the chip model’s low power consumption makes it an ideal choice for robots that need to operate for long periods of time without needing to recharge.
To use the XCR5128-10PC84C chip model effectively, users should have a strong understanding of embedded programming and development. Additionally, users should have a good understanding of the chip model’s features, capabilities, and limitations. Finally, users should have a good understanding of the robot’s intended purpose and the environment in which it will be used, as this will help them to design and program the robot more efficiently.
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