10M04DAF256C7G

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Mfr.Part #
10M04DAF256C7G
Manufacturer
Altera (Intel)
Package / Case
256-LBGA
Datasheet
Download
Description
IC FPGA 178 I/O 256FBGA
Stock
2,436
In Stock :
2,436

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Manufacturer :
Altera (Intel)
Product Category :
FPGAs (Field Programmable Gate Array)
Time@Peak Reflow Temperature-Max (s) :
NOT SPECIFIED
Number of LABs/CLBs :
250
Max Junction Temperature (Tj) :
125°C
Terminal Finish :
Tin/Silver/Copper (Sn/Ag/Cu)
Package / Case :
256-LBGA
Peak Reflow Temperature (Cel) :
NOT SPECIFIED
Number of Terminations :
256
Number of Inputs :
178
Series :
MAX® 10
Number of Logic Elements/Cells :
4000
Programmable Logic Type :
FIELD PROGRAMMABLE GATE ARRAY
Terminal Form :
Ball
Packaging :
Tray
Total RAM Bits :
193536
Voltage - Supply :
1.15V~1.25V
JESD-609 Code :
e1
Manufacturer Package Identifier :
FBGA-1517-A:350-D1:34.10
RoHS Status :
RoHS Compliant
Moisture Sensitivity Level (MSL) :
3 (168 Hours)
Operating Temperature :
0°C~85°C TJ
Surface Mount :
yes
Mounting Type :
Surface Mount
Qualification Status :
Not Qualified
JESD-30 Code :
S-PBGA-B256
Number of I/O :
178
Terminal Pitch :
1mm
Terminal Position :
BOTTOM
Supply Voltage :
1.2V
Number of Outputs :
178
Power Supplies :
1.2V
Height :
1.55mm
Factory Lead Time :
8 Weeks
Datasheets
10M04DAF256C7G
Introducing FPGAs (Field Programmable Gate Array) Altera (Intel) 10M04DAF256C7G from Chip IC,where excellence meets affordability. This product stands out with its Package / Case:256-LBGA, Number of Terminations:256, Operating Temperature:0°C~85°C TJ, Mounting Type:Surface Mount, 10M04DAF256C7G pinout, 10M04DAF256C7G datasheet PDF, 10M04DAF256C7G amp .Beyond FPGAs (Field Programmable Gate Array) Altera (Intel) 10M04DAF256C7G ,we also offer T35F400C3, T55F324C3, T120F324C3, Our vast inventory has you covered. Contact us now for immediate solutions.

Altera (Intel) 10M04DAF256C7G


FPGAs (Field Programmable Gate Array) Altera (Intel) 10M04DAF256C7G Overview

The FPGAs (Field Programmable Gate Array) Altera (Intel) 10M04DAF256C7G is a highly versatile integrated circuit designed for a wide range of applications. Manufactured by Altera (now part of Intel), this FPGA features a flexible logic architecture that allows rapid prototyping and production-scale deployment. With its 256-ball fine-pitch ball grid array (FBGA) packaging, the 10M04DAF256C7G offers a compact footprint while providing a robust I/O capacity of 178 pins. This device is ideal for developers looking for scalable digital circuit design solutions, offering a seamless blend of performance and power efficiency. Its integration capabilities make it an excellent choice for industries requiring high-speed data processing and real-time computational accuracy.

10M04DAF256C7G Features

The 10M04DAF256C7G FPGA includes several key features that enhance its utility in complex digital environments. These features include a high I/O pin count, extensive logic element blocks, and support for multi-voltage I/O standards, all housed within a space-efficient 256FBGA package. Its programmable logic elements are optimized for both high-speed performance and low power consumption, making it suitable for energy-sensitive applications without sacrificing operational speed.

10M04DAF256C7G Applications

  • Consumer Electronics: Utilized in devices such as smart TVs and gaming consoles, the 10M04DAF256C7G enhances user interface responsiveness and supports complex graphical user interfaces.
  • Automotive Systems: Integral in advanced driver-assistance systems (ADAS), this FPGA processes multiple sensor inputs for real-time decision-making to improve vehicle safety and performance.
  • Industrial Automation: In factory automation systems, the 10M04DAF256C7G manages process control operations, optimizing efficiency and reliability through scalable logic configurations.
  • Communication Infrastructure: Essential for the development of communication equipment, including routers and switches, where high data throughput and reliable operation are critical.
  • Medical Devices: Applied in medical imaging systems, the FPGA facilitates the processing of complex imaging algorithms, helping deliver clearer, more accurate diagnostic images.
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