10M16DCF484I7G FPGA - 16K LE, 320 I/O | Intel MAX 10
MPN: 10M16DCF484I7G ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $55.49 | $55.49 |
| 10 | $55 | $550.00 |
| 100 | $51.6 | $5,160.00 |
| 500 | $47.85 | $23,925.00 |
| 1,000 | $43.95 | $43,950.00 |
Drop-in alternatives for 10M16DCF484I7G — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
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10M16DCF484C8G
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View Datasheet →10M16DCF484C7G
✅ Drop-In ⚠️ 参数待验证✓ In Stock
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View Datasheet →10M16DCF484A7G
✅ Drop-In ⚠️ 参数待验证✓ In Stock
$51 / Unit
View Datasheet →10M16DAF484I7G
✅ Drop-In ⚠️ 参数待验证✓ In Stock
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View Datasheet →10M16DAF484C7G
✅ Drop-In ⚠️ 参数待验证✓ In Stock
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View Datasheet →10M16DCF484I7G Maximum Ratings & Electrical Characteristics
| Product Family | MAX 10 |
| FPGA Type | Non-volatile FPGA |
| Number of Logic Elements | 16000 |
| Total RAM Bits | 562176 |
| Number of User I/O | 320 |
| Core Supply Voltage | 1.2 V |
| Process Technology | 55 nm |
| Package / Case | 484-BGA (F484) |
| Package Type | Fine-pitch BGA |
| Mounting Style | Surface Mount |
| Configuration | Non-volatile, internal flash |
| Temperature Grade | Industrial (I7 per ordering code) |
| RoHS Status | Compliant |
10M16DCF484I7G fine-pitch bga Pin Configuration Guide
Complete pinout information for 10M16DCF484I7G (fine-pitch bga package). This digital IC includes GPIO, communication interfaces (UART, SPI, I2C), and power pins. Refer to the manufacturer datasheet for alternate pin functions and configuration options. Essential for embedded system design and PCB layout.
No detailed pinout data available for 10M16DCF484I7G.
Refer to the datasheet for full pin configuration.
Safe Operating Area (SOA) & Thermal Characteristics
No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.
Typical Applications
10M16DCF484I7G is suitable for 6 applications: Industrial Automation and I/O Expansion, Motor Control and PWM Generation, Automotive HMI, Telematics and In-Vehicle Networking, LED Display and Large-Format Signage Processors, Camera Sensor Interface and Image Preprocessing, Industrial IoT Gateways and Protocol Bridging.
Industrial Automation and I/O Expansion
The Intel 10M16DCF484I7G is well suited to industrial automation because it provides instant-on, non-volatile FPGA logic with 320 I/Os, so a machine controller can capture sensors and drive actuators immediately at power-up. With 16,000 logic elements it can implement simple soft processors, state machines, and protocol bridges in one device. The 1.2 V core reduces power compared with older 3.3 V/5 V CPLDs, and the industrial I7 temperature grade lets the FPGA operate in unventilated cabinets. When more logic is needed, the same MAX 10 family offers larger F484-compatible density options; for smaller cost-sensitive boards, lower-density MAX 10 parts are also available. Designers should separate high-voltage industrial signals from the FPGA I/O with isolators or line drivers.
Recommended
Motor Control and PWM Generation
The 10M16DCF484I7G can generate high-resolution PWM waveforms for motor control because FPGAs provide deterministic, low-jitter timing not available from software timers. With 16,000 logic elements, complete motor-control state machines, fault logic, and quadrature encoder decoding can fit in the FPGA. The 320 user I/Os allow connection of multiple gate-driver inputs, current-sense ADCs, and encoder channels without external demultiplexing. Because the device is non-volatile, the motor-control logic is available immediately after power-up, which is essential for safe startup. In multi-axis systems, the same F484 package also supports communication with a host processor. Add hardware overcurrent and overvoltage protection around the FPGA outputs rather than relying only on logic-level fault handling.
Recommended
Automotive HMI, Telematics and In-Vehicle Networking
Automotive ECUs increasingly use FPGAs for display bridging, camera pre-processing, and fail-safe logic. The 10M16DCF484I7G, when ordered as an A-grade or I-grade variant where allowed by the application, provides a reprogrammable fabric that can adapt to evolving protocols without changing PCB hardware. Its 16,000 logic elements and 320 I/Os support multiple UART, CAN, or local interconnect buses through soft logic, along with simple display controllers. The on-chip non-volatile configuration eliminates the need to manage external flash firmware for the FPGA. For safety-related functions, implement CRC-checked configuration health monitoring in the design and provide proper watchdog support from an external supervisor.
Recommended
LED Display and Large-Format Signage Processors
Large LED display panels require real-time pixel generation, refresh-rate control, brightness correction, and tile synchronization. The 10M16DCF484I7G can act as the display controller because its 16,000 logic elements are enough for scan logic, gamma LUTs, and simple frame buffering, while 320 I/Os connect directly to row and column drivers. The non-volatile MAX 10 architecture lets the displays start with the desired scan parameters as soon as power is applied, avoiding blank or flickering startup states. Video data is typically received through a small serializer or LVDS receiver before being processed in the FPGA fabric. For LED modules that demand many parallel data lanes, the F484 package provides enough I/O to reduce the need for external shift registers.
Recommended
Camera Sensor Interface and Image Preprocessing
The 10M16DCF484I7G can connect to parallel or LVCMOS image sensors and perform preprocessing such as cropping, pixel format conversion, and simple filtering before forwarding data to a host processor or display. The 320 I/O count makes it possible to bring out a wide data bus for high-throughput sensor data. Its 562,176 memory bits provide line buffering needed for small convolution kernels and pixel reordering. The non-volatile configuration means the FPGA can boot into a ready-to-stream state without waiting for an external host. Designers should match the sensor I/O voltage with the appropriate VCCIO bank and add series resistors to reduce ringing on fast parallel pixel buses.
Recommended
Industrial IoT Gateways and Protocol Bridging
Industrial IoT gateways often combine a host processor with programmable logic for deterministic protocol timing, custom sensor decoding, and secure boot monitoring. The 10M16DCF484I7G fits this role because its internal flash allows the FPGA fabric to be active before the host OS is up, acting as a watchdog-protected bridge. Its 16,000 logic elements can implement several soft protocol engines, such as simple UART, SPI manager, or parallel bus conversion, while 320 I/Os provide ample connection to sensors and legacy equipment. The industrial I7 temperature grade is valuable for gateway devices mounted in factory environments. When implementing Modbus or Ethernet framing in soft logic, remember to verify timing closure with the target clock rate using Intel Quartus timing reports.
Recommended
Recommended Products Summary
Engineering reference data for 10M16DCF484I7G — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 10M16DCF484C8G | 10M16DCF484C7G | 10M16DCF484A7G | 10M16DAF484I7G | 10M16DAF484C7G |
|---|---|---|---|---|---|---|
| Brand | Intel | Intel | Intel | Intel | Intel | Intel |
| Package | 484-FBGA (F484) | 484-FBGA (F484) | 484-FBGA (F484) | 484-FBGA (F484) | 484-FBGA (F484) | 484-FBGA (F484) |
| Number of Logic Elements | 16000 | 16000 | 16000 | 16000 | 16000 | 16000 |
| Total RAM Bits | 562176 | 562176 | 562176 | 562176 | 562176 | 562176 |
| Number of User I/O | 320 | 320 | 320 | 320 | 320 | 320 |
| Configuration | Non-volatile, internal flash | Non-volatile, internal flash | Non-volatile, internal flash | Non-volatile, internal flash | Non-volatile, internal flash | Non-volatile, internal flash |
| Temperature / Ordering Grade | Industrial (I7) | Commercial (C8) | Commercial (C7) | A7 ordering grade | Industrial (I7) | Commercial (C7) |
| Core Supply Voltage | 1.2 V | 1.2 V | 1.2 V | 1.2 V | 1.2 V | 1.2 V |
Key Differentiators
- Industrial I7 ordering grade with 16K logic elements in a 484-ball FBGA (vs 10M16DCF484C8G)
- Non-volatile on-chip flash configuration gives instant-on operation (vs External-flash FPGAs in other vendors)
- Same package availability across multiple temperature/grade variants (vs 10M16DCF484C7G)
Design Notes
The MAX 10 10M16 family is referenced with a 1.2 V core supply. Ensure the core voltage remains within the FPGA datasheet tolerance during the largest logic utilization and switching activity. Estimated: if the core consumes 800 mA, the core power would be about 0.96 W at 1.2 V; the actual current depends on logic utilization, clock frequency, and I/O loading. Use a low-noise DC-DC converter or LDO that supports the peak current and place bulk capacitance near the FPGA power balls.
For the 484-ball FPGA, create a dense via-in-pad or microvia array under the exposed thermal pad to improve thermal transfer. Place 100 nF decoupling capacitors as close as possible to each power/ground ball pair on the same side of the board, and one or more 10 uF bulk capacitors near the main 1.2 V and VCCIO rails. Follow Intel/Altera layout guidelines for BGA escape routing and always verify the F484 land pattern against the package drawing.
Do not assume a different MAX 10 OPN with the same F484 package is automatically timing-equivalent; always confirm the speed grade and temperature grade in the ordering code. The I7G is industrial speed grade 7, while C8G is commercial speed grade 8. If a design originally made for C8G is moved to I7G, re-run Intel Quartus timing analysis because the maximum FMAX can differ. Also obtain the official pin-out file and boundary scan description for the exact F484 package variant before PCB layout.
Compliance Information
The G suffix in the Intel/Altera ordering code typically indicates a lead-free/RoHS-compliant variant. Full REACH, halogen-free, and conflict minerals declarations were not present in the retrieved web data.