EP20K1500CB652C8
EP20K1500CB652C8
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Intel Corporation

EP20K1500CB652C8


EP20K1500CB652C8
F18-EP20K1500CB652C8
Active
LOADABLE PLD, LBGA
LBGA

EP20K1500CB652C8 ECAD Model


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EP20K1500CB652C8 Attributes


Type Description Select
Part Life Cycle Code Obsolete
Supply Voltage-Nom 1.8 V
Number of I/O Lines 488
Programmable Logic Type LOADABLE PLD
Temperature Grade COMMERCIAL
Package Shape SQUARE
Organization 488 I/O
Output Function MACROCELL
Supply Voltage-Max 1.89 V
Supply Voltage-Min 1.71 V
JESD-30 Code S-PBGA-B652
Qualification Status Not Qualified
JESD-609 Code e1
Operating Temperature-Max 70 °C
Number of Terminals 652
Package Body Material PLASTIC/EPOXY
Package Code LBGA
Package Shape SQUARE
Package Style GRID ARRAY, LOW PROFILE
Surface Mount YES
Terminal Finish TIN SILVER COPPER
Terminal Form BALL
Terminal Pitch 1.27 mm
Terminal Position BOTTOM
Width 45 mm
Length 45 mm
Seated Height-Max 1.63 mm
Ihs Manufacturer INTEL CORP
Package Description LBGA,
Reach Compliance Code compliant
ECCN Code 3A991.D
HTS Code 8542.39.00.01

EP20K1500CB652C8 Datasheet Download


EP20K1500CB652C8 Overview



The chip model EP20K1500CB652C8 is a cutting-edge integrated circuit (IC) designed to meet the strict requirements of today’s digital systems. Its features and design specifications make it a reliable and cost-effective solution for a wide range of applications.


This chip model is particularly advantageous for its high speed and low power consumption. It is capable of operating at a maximum clock frequency of 1500 MHz and can process up to 20K logic elements at a time. Additionally, it uses a low-power design with a power consumption of only 6.5 mW/MHz. This makes it an ideal choice for applications that require high performance with low energy consumption.


The EP20K1500CB652C8 chip model is expected to be in high demand in the near future. This is due to its flexibility and wide range of applications. It can be used in a variety of industries, such as communications, medical, automotive, and consumer electronics. It is also a great choice for applications that require high-speed and low-power operation, such as network switches, routers, and wireless devices.


In addition, this chip model can be used in intelligent scenarios, such as artificial intelligence (AI) and machine learning (ML). It is capable of running complex algorithms and can be used to control autonomous systems, such as robots and drones. Furthermore, it is suitable for use in the era of fully intelligent systems, as it is capable of performing more advanced tasks and can be used for more sophisticated applications.


The EP20K1500CB652C8 chip model has a variety of design requirements that must be met in order to ensure its performance and reliability. It is designed with a wide range of features, including a high-speed bus interface, a large memory, and a wide range of peripherals. Additionally, it is designed to be compatible with a variety of operating systems and is able to support multiple programming languages.


In order to ensure the best performance and reliability of the EP20K1500CB652C8 chip model, it is important to adhere to the specific design requirements. This includes following the recommended guidelines for power management, as well as ensuring that the chip is properly cooled. Additionally, it is important to consider the actual case studies that have been conducted with the chip model in order to make sure that it is suitable for the specific application.


The EP20K1500CB652C8 chip model is a reliable and cost-effective solution for a wide range of applications. Its high speed and low power consumption make it an ideal choice for applications that require high performance with low energy consumption. Additionally, it is suitable for use in intelligent scenarios, such as AI and ML, and can be used in the era of fully intelligent systems. However, it is important to adhere to the specific design requirements in order to ensure its performance and reliability, as well as to consider the actual case studies that have been conducted with the chip model.



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