Parameters | |
---|---|
Series | Cyclone® |
Moisture Sensitivity Level (MSL) | 3 (168 Hours) |
Package / Case | 256-BGA |
Mfr | Intel |
Mounting Type | Surface Mount |
Operating Temperature | 0°C ~ 85°C (TJ) |
Supplier Device Package | 256-FBGA (17x17) |
Number of I/O | 185 |
Voltage - Supply | 1.425V ~ 1.575V |
Number of Logic Elements/Cells | 12060 |
Number of LABs/CLBs | 1206 |
Total RAM Bits | 239616 |
Package | Tray |
Product Status | Obsolete |
Conevo-Key Programmable | Not Verified |
Base Product Number | EP1C12 |
Standard Package | 90 |
ECCN | 3A991D |
HTSUS | 8542.39.0001 |
The Intel EP1C12F256C8N is a Cyclone® field-programmable gate array (FPGA) device designed for a variety of embedded and digital signal processing applications. It is part of Intel's Cyclone series, known for its robust performance and cost-effectiveness. This FPGA is built on a 90 nm process technology and features a rich set of I/O interfaces, making it highly adaptable to different system requirements.
EP1C12F256C8N Cyclone® FPGA Features
The Intel EP1C12F256C8N FPGA offers a comprehensive set of features that cater to both beginners and advanced developers. It includes 12,072 logic elements, 256 Kbit of on-chip memory, and various digital signal processing (DSP) blocks, enabling high-speed data processing and complex algorithm implementation. The device also supports a wide range of programming languages, including VHDL and Verilog, facilitating ease of design and rapid prototyping. Additionally, its low power consumption design makes it ideal for battery-powered applications.
EP1C12F256C8N Applications
The Intel EP1C12F256C8N FPGA is suitable for a broad spectrum of applications, ranging from automotive and industrial control systems to consumer electronics and communication devices. In the automotive sector, it can be used for engine control units (ECUs) and advanced driver assistance systems (ADAS). In industrial automation, it supports the development of smart sensors and control systems. For consumer electronics, the FPGA's high performance and flexibility make it ideal for implementing multimedia processing and connectivity features. Furthermore, in communication systems, it can be employed in the design of routers, switches, and other networking equipment, thanks to its robust I/O capabilities and processing power.