EPF10K50EQC208-3

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Mfr.Part #
EPF10K50EQC208-3
Manufacturer
Altera (Intel)
Package / Case
208-BFQFP
Datasheet
Download
Description
IC FPGA 147 I/O 208QFP
Stock
216
In Stock :
216

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Manufacturer :
Altera (Intel)
Product Category :
FPGAs (Field Programmable Gate Array)
Number of Logic Elements/Cells :
2880
Number of Inputs :
147
Qualification Status :
Not Qualified
Series :
FLEX-10KE®
Terminal Finish :
Matte Tin (Sn)
Output Function :
MIXED
Package / Case :
208-BFQFP
Reach Compliance Code :
Compliant
Number of LABs/CLBs :
360
Peak Reflow Temperature (Cel) :
245
Terminal Position :
QUAD
Terminal Pitch :
0.5mm
Number of I/O :
147
Base Part Number :
EPF10K50
Moisture Sensitivity Level (MSL) :
3 (168 Hours)
Width :
28mm
Packaging :
Tray
ECCN Code :
3A991
JESD-30 Code :
S-PQFP-G208
Time@Peak Reflow Temperature-Max (s) :
40
Mounting Type :
Surface Mount
Propagation Delay :
0.8 ns
Length :
28mm
RoHS Status :
RoHS Compliant
Supply Voltage :
2.5V
Power Supplies :
2.52.5/3.3V
Number of Outputs :
147
Operating Temperature :
0°C~70°C TA
Voltage - Supply :
2.3V~2.7V
HTS Code :
8542.39.00.01
Height Seated (Max) :
4.1mm
JESD-609 Code :
e3
Number of Gates :
199000
Clock Frequency :
140MHz
Programmable Logic Type :
LOADABLE PLD
Total RAM Bits :
40960
Terminal Form :
Gull wing
Surface Mount :
yes
Number of Terminations :
208
Datasheets
EPF10K50EQC208-3
Introducing FPGAs (Field Programmable Gate Array) Altera (Intel) EPF10K50EQC208-3 from Chip IC,where excellence meets affordability. This product stands out with its Package / Case:208-BFQFP, Base Part Number:EPF10K50, Mounting Type:Surface Mount, Operating Temperature:0°C~70°C TA, Number of Terminations:208, EPF10K50EQC208-3 pinout, EPF10K50EQC208-3 datasheet PDF, EPF10K50EQC208-3 amp .Beyond FPGAs (Field Programmable Gate Array) Altera (Intel) EPF10K50EQC208-3 ,we also offer T35F400C3, T55F324C3, T120F324C3, Our vast inventory has you covered. Contact us now for immediate solutions.

Altera (Intel) EPF10K50EQC208-3


FPGAs Altera (Intel) EPF10K50EQC208-3 Overview

The FPGAs Altera (Intel) EPF10K50EQC208-3 is a high-performance, programmable logic device designed to meet the needs of a wide range of applications. This FPGA from Altera, now part of Intel, leverages advanced chip technology to provide substantial logic resources and versatile I/O capabilities in a compact 208-pin QFP (Quad Flat Package). It is ideal for developers looking to integrate reliable and customizable logic circuits into their hardware designs. The ability to reprogram these devices in the field allows for unparalleled flexibility and longevity of use, making it a valuable component for systems requiring complex logic configurations and adaptability to changing technological needs.

EPF10K50EQC208-3 Features

The EPF10K50EQC208-3 FPGA features 147 user I/O pins, providing ample connectivity for various peripheral devices and other components within system designs. The device is housed in a 208QFP, which ensures a balance between a compact form factor and ease of integration into existing systems. This model is built for robust performance in complex digital environments, supporting intricate digital logic designs and data-intensive applications.

EPF10K50EQC208-3 Applications

  • Telecommunications Equipment: This FPGA can be used to facilitate complex signal processing functions, routing, and switching tasks in telecommunications infrastructure.
  • Automotive Systems: Suitable for integration in advanced driver-assistance systems (ADAS) where high-speed data processing and reliability are crucial.
  • Industrial Automation: In industrial environments, the EPF10K50EQC208-3 can manage control systems, sensor interfaces, and robotic operations, enhancing automation efficiency and precision.
  • Consumer Electronics: Used in the development of consumer electronics, such as high-definition multimedia interfaces and interactive smart devices, where versatile and dynamic processing capabilities are needed.
  • Medical Devices: Ideal for medical imaging systems and diagnostic instruments where precision and the ability to process complex algorithms are essential.
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