EP1K50FI256-2

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Mfr.Part #
EP1K50FI256-2
Manufacturer
Altera (Intel)
Package / Case
256-BBGA
Datasheet
Download
Description
IC FPGA 186 I/O 256FBGA
Stock
4,411
In Stock :
4,411

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Manufacturer :
Altera (Intel)
Product Category :
FPGAs (Field Programmable Gate Array)
ECCN Code :
3A991
Voltage - Supply :
2.375V~2.625V
Programmable Logic Type :
LOADABLE PLD
Packaging :
Tray
Width :
17mm
Surface Mount :
yes
HTS Code :
8542.39.00.01
Total RAM Bits :
40960
Power Supplies :
2.52.5/3.3V
Number of Inputs :
186
Moisture Sensitivity Level (MSL) :
3 (168 Hours)
Output Function :
MIXED
RoHS Status :
RoHS Compliant
Terminal Pitch :
1mm
Operating Temperature :
-40°C~85°C TA
Supply Voltage :
2.5V
Base Part Number :
EP1K50
JESD-30 Code :
S-PBGA-B256
Number of Logic Elements/Cells :
2880
Mounting Type :
Surface Mount
Length :
17mm
Number of Outputs :
186
Height Seated (Max) :
2.1mm
Terminal Finish :
Tin/Silver/Copper (Sn/Ag/Cu)
Terminal Form :
Ball
Number of Gates :
199000
Terminal Position :
BOTTOM
Peak Reflow Temperature (Cel) :
260
Qualification Status :
Not Qualified
Time@Peak Reflow Temperature-Max (s) :
40
JESD-609 Code :
e1
Clock Frequency :
37.5MHz
Number of Terminations :
256
Series :
ACEX-1K®
Number of I/O :
186
Package / Case :
256-BBGA
Number of LABs/CLBs :
360
Propagation Delay :
0.4 ns
Reach Compliance Code :
Compliant
Datasheets
EP1K50FI256-2
Introducing FPGAs (Field Programmable Gate Array) Altera (Intel) EP1K50FI256-2 from Chip IC,where excellence meets affordability. This product stands out with its Operating Temperature:-40°C~85°C TA, Base Part Number:EP1K50, Mounting Type:Surface Mount, Number of Terminations:256, Package / Case:256-BBGA, EP1K50FI256-2 pinout, EP1K50FI256-2 datasheet PDF, EP1K50FI256-2 amp .Beyond FPGAs (Field Programmable Gate Array) Altera (Intel) EP1K50FI256-2 ,we also offer T35F400C3, T55F324C3, T120F324C3, Our vast inventory has you covered. Contact us now for immediate solutions.

Altera (Intel) EP1K50FI256-2


FPGAs Altera (Intel) EP1K50FI256-2 Overview

Introducing the FPGAs Altera (Intel) EP1K50FI256-2, a high-performance integrated circuit developed by Intel's Altera division, designed to meet the demanding needs of modern digital applications. This IC FPGA is housed in a compact 256FBGA package and supports a wide array of functionalities with its 186 I/O pins, making it exceptionally versatile for a broad range of applications. The FPGA is engineered to deliver optimal performance for programmable logic solutions, providing designers with the flexibility to implement complex logic circuits while maintaining high-speed operation and low power consumption.

EP1K50FI256-2 Features

The EP1K50FI256-2 FPGA offers significant advantages for developers looking to harness the power of programmable logic. Key features include its ample I/O interfaces, allowing for flexible connectivity options, and a robust 256-pin Fine Ball Grid Array (FBGA) package that ensures a compact footprint along with enhanced thermal management. The device is characterized by its adaptability to multiple voltages, contributing to its utility in multi-voltage systems. Additionally, its integration capabilities allow for significant reduction in development time and cost, making it an ideal choice for both prototyping and production-scale applications.

EP1K50FI256-2 Applications

  • Communications Equipment: Utilized in routers and switches to manage data flow efficiently and with high throughput, ensuring reliable network performance.
  • Automotive Systems: Plays a crucial role in automotive electronics where robustness and reliability are critical, such as in driver assistance systems and infotainment units.
  • Consumer Electronics: Applied in devices like high-definition televisions and gaming consoles to enhance processing capabilities and support sophisticated user interfaces.
  • Industrial Automation: Helps to automate complex industrial processes by controlling machinery and processing data from sensors, increasing operational efficiency and safety.
  • Medical Devices: Essential in medical imaging systems, enabling rapid processing of complex diagnostic data, thus improving the speed and accuracy of medical diagnostics.
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