
AMD Xilinx
XC4028XLA-07HQG160C
XC4028XLA-07HQG160C ECAD Model
XC4028XLA-07HQG160C Attributes
Type | Description | Select |
---|---|---|
Rohs Code | Yes | |
Part Life Cycle Code | Obsolete | |
Supply Voltage-Nom | 3.3 V | |
Number of Equivalent Gates | 18000 | |
Number of CLBs | 1024 | |
Combinatorial Delay of a CLB-Max | 900 ps | |
Programmable Logic Type | FIELD PROGRAMMABLE GATE ARRAY | |
Temperature Grade | OTHER | |
Package Shape | SQUARE | |
Technology | CMOS | |
Organization | 1024 CLBS, 18000 GATES | |
Additional Feature | CAN ALSO USE 50000 GATES | |
Clock Frequency-Max | 294 MHz | |
Supply Voltage-Max | 3.6 V | |
Supply Voltage-Min | 3 V | |
JESD-30 Code | S-PQFP-G160 | |
Qualification Status | Not Qualified | |
Operating Temperature-Max | 85 °C | |
Number of Terminals | 160 | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | HQFP | |
Package Shape | SQUARE | |
Package Style | FLATPACK, HEAT SINK/SLUG | |
Surface Mount | YES | |
Terminal Form | GULL WING | |
Terminal Pitch | 650 µm | |
Terminal Position | QUAD | |
Width | 28 mm | |
Length | 28 mm | |
Seated Height-Max | 4.1 mm | |
Ihs Manufacturer | XILINX INC | |
Part Package Code | QFP | |
Package Description | HQFP, | |
Pin Count | 160 | |
Reach Compliance Code | compliant | |
HTS Code | 8542.39.00.01 |
XC4028XLA-07HQG160C Datasheet Download
XC4028XLA-07HQG160C Overview
The Xilinx XC4028XLA-07HQG160C chip model is a powerful and versatile programmable logic device that can be used in a variety of applications, from consumer electronics to industrial robotics. It is based on the Xilinx Virtex-4 architecture, and it offers a range of features and performance capabilities that make it suitable for a variety of applications.
The XC4028XLA-07HQG160C chip model is well-suited for use in a wide range of industries. It is designed to be used in a variety of applications, including industrial automation, medical equipment, security systems, and embedded systems. The chip model supports a variety of communication protocols, including Ethernet, Serial, and USB. It also offers a wide range of I/O capabilities, including analog and digital I/O, as well as a variety of memory options. This makes it well-suited for use in a variety of applications.
The XC4028XLA-07HQG160C chip model has several advantages that make it well-suited for use in a variety of applications. It is designed to be highly scalable, with a wide range of features that can be customized to meet the needs of the user. It is also designed to be energy efficient, with a low power consumption that makes it suitable for use in a variety of applications. Additionally, the chip model is designed to be reliable, with a high level of reliability that makes it suitable for use in a variety of applications.
The demand for the XC4028XLA-07HQG160C chip model is expected to continue to grow in the future. With the increasing demand for more powerful and versatile programmable logic devices, the XC4028XLA-07HQG160C chip model is well-suited to meet the needs of a variety of industries. Additionally, with the increasing demand for energy-efficient programmable logic devices, the XC4028XLA-07HQG160C chip model is well-suited to meet the needs of a variety of industries.
When using the XC4028XLA-07HQG160C chip model, it is important to understand the product description and specific design requirements. Additionally, it is important to understand the actual case studies and precautions that may be necessary when using the chip model. This will help ensure that the chip model is used correctly and that it is used in the most effective manner possible.
The XC4028XLA-07HQG160C chip model can be applied to the development and popularization of future intelligent robots. The chip model is well-suited for use in a variety of applications, including industrial automation, medical equipment, security systems, and embedded systems. Additionally, the chip model is designed to be highly scalable and energy efficient, making it suitable for use in a variety of applications. To use the chip model effectively, it is important to have a strong understanding of the product description and design requirements, as well as a strong understanding of the actual case studies and precautions that may be necessary when using the chip model. Additionally, it is important to have a strong understanding of the various communication protocols and memory options that are available, as well as the various I/O capabilities that are available. This will help ensure that the chip model is used correctly and that it is used in the most effective manner possible.
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