規格
| 屬性 | 價值 |
| Package | Tray |
| Series | MAX® 10 |
| ProductStatus | Active |
| NumberofLABs/CLBs | 2500 |
| NumberofLogicElements/Cells | 40000 |
| TotalRAMBits | 1290240 |
| NumberofI/O | 178 |
| Voltage-Supply | 1.15V ~ 1.25V |
| MountingType | Surface Mount |
| OperatingTemperature | -40°C ~ 100°C (TJ) |
| Package/Case | 256-LBGA |
概述
Description
The 10M40DAF256I7G is an Intel (formerly Altera) MAX 10 FPGA from the 10M40 family, featuring 40,000 logic elements (LEs). Key details:
- Package: FineLine BGA (FBGA-256)
- Logic Density: 40K LEs, with embedded memory (1.1 Mb) and DSP blocks.
- Voltage: 1.2V core, supports 1.8V/2.5V/3.3V I/O.
- Non-Volatile: Flash-based, instant-on configuration.
- Peripherals: Built-in ADC, PLLs, and Nios II soft-core processor support.
- Applications: Industrial control, automotive, communications, and embedded systems.
This FPGA balances cost, power efficiency, and flexibility for low-to-mid-range designs.
- Package: FineLine BGA (FBGA-256)
- Logic Density: 40K LEs, with embedded memory (1.1 Mb) and DSP blocks.
- Voltage: 1.2V core, supports 1.8V/2.5V/3.3V I/O.
- Non-Volatile: Flash-based, instant-on configuration.
- Peripherals: Built-in ADC, PLLs, and Nios II soft-core processor support.
- Applications: Industrial control, automotive, communications, and embedded systems.
This FPGA balances cost, power efficiency, and flexibility for low-to-mid-range designs.
Equivalent
The 10M40DAF256I7G is an Intel (formerly Altera) MAX 10 FPGA. Equivalent alternatives include:
- Lattice Semiconductor ICE40UP (lower power, smaller FPGAs)
- Xilinx Spartan-6 (similar mid-range FPGAs)
- Microchip PolarFire (low-power alternative)
- Intel Cyclone IV (cost-optimized alternative)
Check pin compatibility, features, and power requirements before substitution. For exact replacements, consult Intel’s cross-reference tools or distributors like Arrow, Avnet, or Mouser.
- Lattice Semiconductor ICE40UP (lower power, smaller FPGAs)
- Xilinx Spartan-6 (similar mid-range FPGAs)
- Microchip PolarFire (low-power alternative)
- Intel Cyclone IV (cost-optimized alternative)
Check pin compatibility, features, and power requirements before substitution. For exact replacements, consult Intel’s cross-reference tools or distributors like Arrow, Avnet, or Mouser.
Features
The Intel (Altera) 10M40DAF256I7G is a MAX 10 FPGA with these key features:
- Logic Elements (LEs): 40,000
- Memory: 1,152 Kbits embedded RAM
- DSP Blocks: 108 (18x18 multipliers)
- I/O Pins: 142 (supports LVDS, LVCMOS)
- Package: 256-pin FineLine BGA (FBGA)
- Flash Memory: Integrated configuration flash
- Operating Temp: -40°C to +100°C (Industrial grade)
- Power: Single 3.3V/2.5V supply with low-power modes
- Clock Management: Up to 4 PLLs
- Protocol Support: SPI, I2C, UART, PCIe Gen1/2
Compact, cost-effective, and suitable for industrial, automotive, and embedded applications.
- Logic Elements (LEs): 40,000
- Memory: 1,152 Kbits embedded RAM
- DSP Blocks: 108 (18x18 multipliers)
- I/O Pins: 142 (supports LVDS, LVCMOS)
- Package: 256-pin FineLine BGA (FBGA)
- Flash Memory: Integrated configuration flash
- Operating Temp: -40°C to +100°C (Industrial grade)
- Power: Single 3.3V/2.5V supply with low-power modes
- Clock Management: Up to 4 PLLs
- Protocol Support: SPI, I2C, UART, PCIe Gen1/2
Compact, cost-effective, and suitable for industrial, automotive, and embedded applications.
Pinout
The 10M40DAF256I7G is an Intel (formerly Altera) MAX 10 FPGA with:
- Pin count: 256 pins (in a FineLine BGA package).
- Key functions:
- Logic elements: 40,000.
- Memory: 1.1 Mb embedded RAM.
- DSP blocks: 132 (18x18 multipliers).
- I/O: Up to 200 user I/Os (supports LVDS, LVCMOS).
- On-chip features: ADC, flash memory, PLLs.
- Power supply: Dual-voltage (1.2V core, 1.8V/2.5V/3.3V I/O).
Designed for low-power, cost-sensitive applications like industrial control and embedded systems.
- Pin count: 256 pins (in a FineLine BGA package).
- Key functions:
- Logic elements: 40,000.
- Memory: 1.1 Mb embedded RAM.
- DSP blocks: 132 (18x18 multipliers).
- I/O: Up to 200 user I/Os (supports LVDS, LVCMOS).
- On-chip features: ADC, flash memory, PLLs.
- Power supply: Dual-voltage (1.2V core, 1.8V/2.5V/3.3V I/O).
Designed for low-power, cost-sensitive applications like industrial control and embedded systems.
Manufacturer
The 10M40DAF256I7G is manufactured by Intel (formerly Altera). Intel is a leading global technology company specializing in semiconductor design and manufacturing, known for its processors, FPGAs (Field-Programmable Gate Arrays), and other advanced computing solutions.
The 10M40DAF256I7G is part of Intel's MAX 10 FPGA family, offering low-power, non-volatile programmability for embedded and industrial applications. Intel acquired Altera in 2015, integrating its FPGA expertise into its broader product portfolio.
The 10M40DAF256I7G is part of Intel's MAX 10 FPGA family, offering low-power, non-volatile programmability for embedded and industrial applications. Intel acquired Altera in 2015, integrating its FPGA expertise into its broader product portfolio.
Application
The 10M40DAF256I7G is an Intel (formerly Altera) MAX 10 FPGA, commonly used in:
1. Industrial Automation – Control systems, motor drives, and PLCs.
2. Consumer Electronics – Smart devices, displays, and IoT edge processing.
3. Communications – Networking equipment and protocol bridging.
4. Automotive – Infotainment and ADAS subsystems.
5. Medical Devices – Portable diagnostics and imaging systems.
6. Aerospace & Defense – Avionics and ruggedized embedded systems.
Its low power, high integration, and non-volatile configuration make it ideal for cost-sensitive, space-constrained applications.
1. Industrial Automation – Control systems, motor drives, and PLCs.
2. Consumer Electronics – Smart devices, displays, and IoT edge processing.
3. Communications – Networking equipment and protocol bridging.
4. Automotive – Infotainment and ADAS subsystems.
5. Medical Devices – Portable diagnostics and imaging systems.
6. Aerospace & Defense – Avionics and ruggedized embedded systems.
Its low power, high integration, and non-volatile configuration make it ideal for cost-sensitive, space-constrained applications.