EP1S10F484C7

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Mfr.Part #
EP1S10F484C7
Manufacturer
Altera (Intel)
Package / Case
484-BBGA, FCBGA
Datasheet
Download
Description
IC FPGA 335 I/O 484FBGA
Stock
198
In Stock :
198

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Manufacturer :
Altera (Intel)
Product Category :
FPGAs (Field Programmable Gate Array)
Mounting Type :
Surface Mount
Number of Terminations :
484
RoHS Status :
Non-RoHS Compliant
Number of Logic Elements/Cells :
10570
JESD-30 Code :
S-PBGA-B484
Number of Inputs :
426
JESD-609 Code :
e0
Voltage - Supply :
1.425V~1.575V
Power Supplies :
1.51.5/3.3V
Total RAM Bits :
920448
Packaging :
Tray
Number of LABs/CLBs :
1057
Operating Temperature :
0°C~85°C TJ
Number of CLBs :
1200
Terminal Finish :
Tin/Lead (Sn/Pb)
Height Seated (Max) :
3.5mm
Terminal Position :
BOTTOM
Series :
Stratix®
Terminal Form :
Ball
Moisture Sensitivity Level (MSL) :
3 (168 Hours)
Number of I/O :
335
Time@Peak Reflow Temperature-Max (s) :
30
Terminal Pitch :
1mm
Supply Voltage :
1.5V
Base Part Number :
EP1S10
Qualification Status :
Not Qualified
HTS Code :
8542.39.00.01
Width :
23mm
ECCN Code :
3A991
Package / Case :
484-BBGA, FCBGA
Surface Mount :
yes
Number of Outputs :
426
Peak Reflow Temperature (Cel) :
220
Programmable Logic Type :
FIELD PROGRAMMABLE GATE ARRAY
Length :
23mm
Datasheets
EP1S10F484C7
Introducing FPGAs (Field Programmable Gate Array) Altera (Intel) EP1S10F484C7 from Chip IC,where excellence meets affordability. This product stands out with its Mounting Type:Surface Mount, Number of Terminations:484, Operating Temperature:0°C~85°C TJ, Base Part Number:EP1S10, Package / Case:484-BBGA, FCBGA, EP1S10F484C7 pinout, EP1S10F484C7 datasheet PDF, EP1S10F484C7 amp .Beyond FPGAs (Field Programmable Gate Array) Altera (Intel) EP1S10F484C7 ,we also offer T35F400C3, T55F324C3, T120F324C3, Our vast inventory has you covered. Contact us now for immediate solutions.

Altera (Intel) EP1S10F484C7


FPGAs (Field Programmable Gate Array) Altera (Intel) EP1S10F484C7 Overview

The Altera (Intel) EP1S10F484C7 is a cutting-edge FPGA (Field Programmable Gate Array) that excels in delivering high performance and flexibility for demanding system applications. Designed by Altera, now part of Intel, this integrated circuit leverages advanced technology to support a wide array of functionalities. With its 484-pin FBGA (Fine Pitch Ball Grid Array) packaging, the EP1S10F484C7 offers a compact solution, while still providing a robust 335 I/Os, making it ideal for interfacing with a diverse range of peripheral devices. Its versatility makes it perfectly suited for manufacturers and developers looking to integrate high-speed, reliable logic operations into their products.

EP1S10F484C7 Features

This FPGA model features a highly efficient architecture that supports complex digital computations, which is essential for real-time processing applications. It is particularly noted for its high integration capability which allows for substantial reduction in system latency and increased data throughput. The EP1S10F484C7 also offers a flexible logic resource configuration, enabling optimal design customization to meet specific application requirements.

EP1S10F484C7 Applications

  • Telecommunications Infrastructure: The EP1S10F484C7 can be utilized to enhance signal processing capabilities in equipment such as routers and switches, facilitating faster data transmission and improved reliability.
  • Automotive Electronics: This FPGA is used in vehicle systems for processing and managing complex functions such as advanced driver-assistance systems (ADAS) and infotainment systems, improving both performance and safety.
  • Industrial Automation: The robust I/O capabilities allow the EP1S10F484C7 to manage multiple sensors and actuators in automated manufacturing lines, increasing operational efficiency and reducing downtime.
  • Consumer Electronics: Ideal for high-definition video processing, this FPGA supports the development of products requiring intensive data processing like smart TVs and gaming consoles.
  • Medical Devices: In medical imaging systems, the EP1S10F484C7 assists in processing complex imaging algorithms quickly, enhancing diagnostic capabilities and patient outcomes.
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