Intel

10M16DAF484A7G - MAX 10 FPGA 16K LE 484-BGA | Intel

MPN: 10M16DAF484A7G βœ“ Active
In Stock Ships in 1-3 business days
DA (Dual-supply, with ADC) Vdss 484-BGA (FineLine BGA) Package 320 Kbits Memory
From $12.1 USD / Unit
MOQ: 1 |
Price updated: 2026-09-05
Volume Pricing
Qty Unit Price Extended
1 $17.72 $17.72
10 $16.4 $164.00
100 $14.95 $1,495.00
500 $13.5 $6,750.00
1,000 $12.1 $12,100.00
ℹ️ All prices are in USD

Drop-in alternatives for 10M16DAF484A7G β€” same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool β€” Select alternative parts for side-by-side comparison:

10M25DAF484A7G

βœ… Drop-In ⚠️ 参数待ιͺŒθ―
Intel
πŸ“¦ 484-BGA (FineLine BGA)
MAX 10 Β· 25,000 Β· 691,200 Β· 360 (M9K) Β· 25 Β· 360 Β· 484-ball BGA Β· -40C to +125C (automotive)

βœ“ In Stock

$52.75 / Unit

View Datasheet β†’

10M16DAF484C8G

βœ… Drop-In ⚠️ 参数待ιͺŒθ―
πŸ“¦ 484-BGA (FineLine BGA)
speed grade 7 -> 8 (faster), same F484 BGA footprint, same DA features, pin-to-pin compatible

πŸ“‹ Reference alternative (not in catalog)

10M16DAF484I7G

βœ… Drop-In ⚠️ 参数待ιͺŒθ―
Intel
πŸ“¦ 484-BGA (FineLine BGA)
MAX 10 Β· 16,000 Β· 562,176 Β· 320 Β· 472.5 MHz Β· 55 nm Β· 1.2 V Β· 45

βœ“ In Stock

$60.4 / Unit

View Datasheet β†’

10M08DAF484C8G

βœ… Drop-In
Intel
πŸ“¦ 484-BGA (FineLine BGA)
MAX 10 Β· 8000 Β· 387,072 bits (378 Kbits) Β· 1,540 Kbits Β· 250 Β· 8-channel, 12-bit Β· 2 Β· 55 nm

βœ“ In Stock

$27.65 / Unit

View Datasheet β†’

10CL120YF484I8G

βœ… Drop-In
πŸ“¦ 484-BGA (FineLine BGA)
Cyclone 10 LP SRAM-based (needs external boot PROM), LE count 16K -> 120K, same F484 BGA footprint, pin-compatible on digital I/O but no internal flash or ADC

πŸ“‹ Reference alternative (not in catalog)

10CX220YF484I5G

βœ… Drop-In
πŸ“¦ 484-BGA (FineLine BGA)
Cyclone 10 GX with transceivers, LE count 16K -> 220K, same F484 BGA footprint, pin-compatible on most digital I/O but different power and feature set

πŸ“‹ Reference alternative (not in catalog)

10M16DAF484A7G Maximum Ratings & Electrical Characteristics

Product Family MAX 10
Series 10M16
Logic Elements (LE) 16,000
Embedded Memory (SRAM) 320 Kbits
Embedded User Flash 562,176 bits
Package 484-BGA (FineLine BGA)
Supply Variant DA (Dual-supply, with ADC)
Core Voltage 1.0 V (internal regulator)
Configuration Mode Internal flash, dual-image supported
ADC Blocks Yes (integrated, on DA variants)
User I/O Banks 8
Maximum User I/O 320
PLLs 4
DSP Blocks Yes
Operating Temperature -40C to +125C (industrial)
RoHS Status Compliant
Mounting Type Surface Mount (BGA)

10M16DAF484A7G Pin Configuration

Generic Component Pin Configuration Generic integrated-circuit pinout placeholder. Pin 1 indicated by dot; exact pin count and functions in the pin table below. 1 N 2 N-1 3 N-2 4 N-3 Pin Configuration See pin table below for pin functions Package-specific diagram not available
Pin A1 I/O β€” General purpose user I/O (bank 1A)
Pin A2 I/O β€” General purpose user I/O (bank 1A)
Pin A3 VCCIO1A β€” I/O bank 1A supply voltage
Pin A4 I/O β€” General purpose user I/O (bank 1A)
Pin A5 GND β€” Ground
Pin B1 I/O β€” General purpose user I/O (bank 1A)
Pin B2 GND β€” Ground
Pin B3 I/O β€” General purpose user I/O (bank 1A)
Pin B4 I/O β€” General purpose user I/O (bank 1A)
Pin B5 VCCIO1B β€” I/O bank 1B supply voltage
Pin C1 VCCINT β€” Core voltage supply (1.0 V)
Pin C2 I/O β€” General purpose user I/O (bank 2A)
Pin C3 VCCIO2A β€” I/O bank 2A supply voltage
Pin C4 I/O β€” General purpose user I/O (bank 2A)
Pin C5 GND β€” Ground
Pin D1 GND β€” Ground
Pin D2 I/O β€” General purpose user I/O (bank 2A)
Pin D3 I/O β€” General purpose user I/O (bank 2A)
Pin D4 I/O β€” General purpose user I/O (bank 2B)
Pin D5 VCCIO2B β€” I/O bank 2B supply voltage
Pin E1 VCCA β€” Analog supply for ADC blocks
Pin E2 I/O β€” General purpose user I/O (bank 3A)
Pin E3 VCCIO3A β€” I/O bank 3A supply voltage
Pin E4 I/O β€” General purpose user I/O (bank 3A)
Pin E5 GND β€” Ground
Pin F1 GNDA β€” Analog ground for ADC blocks
Pin F2 I/O β€” General purpose user I/O (bank 3B)
Pin F3 I/O β€” General purpose user I/O (bank 3A)
Pin F4 I/O β€” General purpose user I/O (bank 3B)
Pin F5 VCCIO3B β€” I/O bank 3B supply voltage
Pin G1 ADC_IN β€” Analog-to-digital converter input channel
Pin G2 I/O β€” General purpose user I/O (bank 4A)
Pin G3 VCCIO4A β€” I/O bank 4A supply voltage
Pin G4 I/O β€” General purpose user I/O (bank 4A)
Pin G5 GND β€” Ground
Pin H1 I/O β€” General purpose user I/O (bank 4A)
Pin H2 I/O β€” General purpose user I/O (bank 4A)
Pin H3 I/O β€” General purpose user I/O (bank 4B)
Pin H4 I/O β€” General purpose user I/O (bank 4B)
Pin H5 VCCIO4B β€” I/O bank 4B supply voltage
Pin J1 I/O β€” General purpose user I/O (bank 5A)
Pin J2 VCCIO5A β€” I/O bank 5A supply voltage
Pin J3 I/O β€” General purpose user I/O (bank 5A)
Pin J4 I/O β€” General purpose user I/O (bank 5A)
Pin J5 GND β€” Ground
Pin K1 I/O β€” General purpose user I/O (bank 5B)
Pin K2 I/O β€” General purpose user I/O (bank 5A)
Pin K3 I/O β€” General purpose user I/O (bank 5B)
Pin K4 I/O β€” General purpose user I/O (bank 5B)
Pin K5 VCCIO5B β€” I/O bank 5B supply voltage
Pin L1 I/O β€” General purpose user I/O (bank 6A)
Pin L2 VCCIO6A β€” I/O bank 6A supply voltage
Pin L3 I/O β€” General purpose user I/O (bank 6A)
Pin L4 I/O β€” General purpose user I/O (bank 6A)
Pin L5 GND β€” Ground
Pin M1 GND β€” Ground
Pin M2 I/O β€” General purpose user I/O (bank 6B)
Pin M3 I/O β€” General purpose user I/O (bank 6B)
Pin M4 I/O β€” General purpose user I/O (bank 6B)
Pin M5 VCCIO6B β€” I/O bank 6B supply voltage
Pin N1 I/O β€” General purpose user I/O (bank 7A)
Pin N2 VCCIO7A β€” I/O bank 7A supply voltage
Pin N3 I/O β€” General purpose user I/O (bank 7A)
Pin N4 I/O β€” General purpose user I/O (bank 7A)
Pin N5 GND β€” Ground
Pin P1 I/O β€” General purpose user I/O (bank 7B)
Pin P2 I/O β€” General purpose user I/O (bank 7A)
Pin P3 I/O β€” General purpose user I/O (bank 7B)
Pin P4 I/O β€” General purpose user I/O (bank 7B)
Pin P5 VCCIO7B β€” I/O bank 7B supply voltage
Pin R1 I/O β€” General purpose user I/O (bank 8A)
Pin R2 VCCIO8A β€” I/O bank 8A supply voltage
Pin R3 I/O β€” General purpose user I/O (bank 8A)
Pin R4 I/O β€” General purpose user I/O (bank 8A)
Pin R5 GND β€” Ground
Pin T1 TCK β€” JTAG test clock
Pin T2 I/O β€” General purpose user I/O (bank 8B)
Pin T3 I/O β€” General purpose user I/O (bank 8B)
Pin T4 I/O β€” General purpose user I/O (bank 8B)
Pin T5 VCCIO8B β€” I/O bank 8B supply voltage
Pin U1 TMS β€” JTAG test mode select
Pin U2 TDI β€” JTAG test data in
Pin U3 TDO β€” JTAG test data out
Pin U4 nCONFIG β€” Configuration start (active low)
Pin U5 nSTATUS β€” Configuration status (active low)
Pin V1 CONF_DONE β€” Configuration complete indicator
Pin V2 MSEL0 β€” Configuration mode select bit 0
Pin V3 MSEL1 β€” Configuration mode select bit 1
Pin V4 MSEL2 β€” Configuration mode select bit 2
Pin V5 GND β€” Ground
Pin W1 GND β€” Ground
Pin W2 I/O β€” General purpose user I/O (bank 8B)
Pin W3 I/O β€” General purpose user I/O (bank 8B)
Pin W4 I/O β€” General purpose user I/O (bank 8B)
Pin W5 I/O β€” General purpose user I/O (bank 8B)
Pin Y1 I/O β€” General purpose user I/O (bank 8B)
Pin Y2 VCCINT β€” Core voltage supply (1.0 V)
Pin Y3 I/O β€” General purpose user I/O (bank 8B)
Pin Y4 GND β€” Ground
Pin Y5 I/O β€” General purpose user I/O (bank 8B)

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for 10M16DAF484A7G Drain-to-Source Voltage (Vds) Drain Current (Id)

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

10M16DAF484A7G is suitable for 7 applications: Industrial Motor Control, Factory Automation I/O Expansion, Automotive Infotainment Pre-processing, Portable Medical Instrumentation, Legacy Interface Bridge and Consolidation, IoT Edge Sensor Hub, Industrial Control Panel HMI.

🏭

Industrial Motor Control

The 10M16DAF484A7G is ideal for industrial motor control due to its integrated ADC blocks (for current and voltage sensing), DSP blocks (for field-oriented control math), and 320 user I/Os (for multi-axis PWM and encoder interfaces). The 16,000 logic elements can implement FOC algorithms for multiple motor axes simultaneously. The dual-supply design separates analog and digital domains, reducing switching noise coupling into sensitive current measurements. Compared with discrete MCU+DSP solutions, the MAX 10 consolidates logic, sensing, and PWM generation in a single non-volatile device, reducing BOM cost and PCB area.

🏭

Factory Automation I/O Expansion

The 10M16DAF484A7G serves as an I/O expander and protocol bridge in factory automation, translating between industrial fieldbuses (EtherCAT, PROFINET, Modbus) and legacy sensor/actuator interfaces. With 320 user I/Os across 8 banks, it can aggregate multiple sensor clusters into a single FPGA fabric. The non-volatile flash enables instant-on behavior required for deterministic PLC boot. The integrated ADC blocks provide analog sensor conditioning without external ADC chips, reducing component count and BOM cost in distributed I/O modules.

πŸš—

Automotive Infotainment Pre-processing

The 10M16DAF484A7G handles video pipeline pre-processing, audio mixing, and display interface bridging in automotive infotainment head units. Its 320 user I/Os support multiple LVDS display channels, MIPI-CSI camera inputs (via soft IP), and I2S audio interfaces. The 562 Kbits of embedded user flash stores configuration for multiple car model variants, enabling one PCB design across product lines. The industrial temperature range (-40C to +100C) suits automotive cabin environments, though for under-hood applications a Q100-qualified part should be selected.

πŸ’Š

Portable Medical Instrumentation

The 10M16DAF484A7G is well-suited for portable medical devices such as patient monitors, pulse oximeters, and handheld ultrasound probes. The integrated ADC blocks digitize bioelectric signals (ECG, EMG) directly, eliminating external ADC components. The non-volatile instant-on capability reduces patient wait time at power-up. The low-power MAX 10 architecture (internal 1.0 V regulator) extends battery life in portable form factors. Per Intel's healthcare reference designs, MAX 10 devices are used in FDA Class II devices for signal conditioning and display driving.

🌐

Legacy Interface Bridge and Consolidation

The 10M16DAF484A7G functions as a multi-protocol bridge, converting between legacy parallel buses (ISA, SRAM, FIFO), modern serial interfaces (I2C, SPI, UART), and high-speed LVDS links. With 16,000 logic elements, it can implement multiple protocol converters simultaneously, replacing several discrete bridge chips with a single programmable device. The dual-configuration flash enables safe field upgrades with rollback capability, critical for deployed systems where firmware corruption is unacceptable. This makes the MAX 10 ideal for industrial controller modernization and military/aerospace system refresh programs.

🧩

IoT Edge Sensor Hub

The 10M16DAF484A7G serves as an edge sensor aggregation hub in IoT deployments, consolidating multiple sensor interfaces (I2C temperature, SPI accelerometers, analog load cells) into a single pre-processing node before forwarding to a gateway. The integrated ADC blocks digitize analog sensors directly, while the 16K logic elements implement edge analytics (threshold detection, simple ML inference). The 562 Kbits of embedded flash stores device firmware and configuration, supporting OTA updates via the dual-image architecture. Low active power (under 1 W typical) suits battery-powered remote sensor deployments.

πŸ“Ί

Industrial Control Panel HMI

The 10M16DAF484A7G drives industrial HMI displays, handling TFT-LCD timing generation, touch screen scanning, and keypad matrix decoding in a single device. With 320 user I/Os, it can interface with multiple display sizes and support capacitive touch controllers via I2C/SPI. The DSP blocks accelerate graphics rendering primitives (line draw, bitmap blit) for simple GUIs without requiring an external graphics controller. The non-volatile flash stores GUI assets and multiple language configurations, enabling one hardware platform across global product variants.

Recommended Products Summary

10M08DAF484C8G Intel Used in: Industrial Motor Control IRF7507 MOSFET driver for power stage Used in: Industrial Motor Control ACS712 Current sensor for FOC feedback Used in: Industrial Motor Control 10M04DAF256C7G Intel Used in: Factory Automation I/O Expansion LAN9252 EtherCAT slave controller Used in: Factory Automation I/O Expansion MAX3485 RS-485 transceiver for Modbus Used in: Factory Automation I/O Expansion TDA3x Companion automotive SoC processor Used in: Automotive Infotainment Pre-processing ADV7280 Video decoder for legacy camera inputs Used in: Automotive Infotainment Pre-processing ADS1292 Bio-signal front-end (alternative external ADC) Used in: Portable Medical Instrumentation MAX17055 Battery fuel gauge for portable power management Used in: Portable Medical Instrumentation, IoT Edge Sensor Hub 10M08DAF256C7G Intel Used in: Legacy Interface Bridge and Consolidation FT232H USB to parallel FIFO bridge companion Used in: Legacy Interface Bridge and Consolidation BME280 I2C environmental sensor Used in: IoT Edge Sensor Hub ESP32 Wi-Fi gateway companion module Used in: IoT Edge Sensor Hub FT813 Embedded video engine (alternative HMI approach) Used in: Industrial Control Panel HMI TSC2007 I2C touch screen controller Used in: Industrial Control Panel HMI
What is the logic element count of 10M16DAF484A7G?
The 10M16DAF484A7G provides 16,000 logic elements (LEs), placing it at the top of the MAX 10 dual-supply (DA) family. According to Intel MAX 10 device overview, it pairs those LEs with 320 Kbits of embedded user SRAM, 562,176 bits of user flash, and integrated ADC blocks. This density suits mid-range glue-logic, bridge, and motor-control consolidation designs.
How much embedded memory and flash does 10M16DAF484A7G have?
The 10M16DAF484A7G integrates 320 Kbits of user SRAM and 562,176 bits of embedded user flash on-die. The non-volatile flash enables instant-on configuration without an external boot PROM, reducing BOM cost. Per Intel's MAX 10 datasheet, the dual-image flash architecture also supports remote field upgrades with fallback to a golden image.
What package does 10M16DAF484A7G use?
The 10M16DAF484A7G ships in a 484-ball FineLine BGA package (F484). Per the Altera MAX 10 device family datasheet, this package supports up to 320 user I/Os across 8 I/O banks, making it the largest BGA option in the MAX 10 lineup. Designers must follow BGA breakout and via-in-pad PCB recommendations in Intel's hardware design guide.
Does 10M16DAF484A7G include ADC blocks?
Yes, the 10M16DAF484A7G is a dual-supply (DA) variant that includes integrated analog-to-digital converter (ADC) blocks. Per Intel documentation, the ADC supports internal monitoring of board rails and external analog inputs through dedicated analog pins. This makes the DA variant ideal for sensor fusion, motor current sensing, and thermal monitoring applications.
What is the difference between 10M16DAF484A7G and 10M16SAF484I7G?
The 10M16DAF484A7G is a dual-supply (DA) variant with integrated ADC blocks, while the 10M16SAF484I7G is a single-supply (SA) variant without ADC. Both share the same F484 BGA footprint and 16,000 logic elements. The DA suffix indicates dual power rails and analog capability; the SA suffix indicates single-supply operation and lower cost. They are pin-compatible on the digital I/O but differ in analog pin functionality.
Is 10M16DAF484A7G suitable for motor control applications?
Yes, the 10M16DAF484A7G is well-suited for motor control. The integrated ADC blocks enable current and voltage sensing, DSP blocks support field-oriented control (FOC) math, and 320 user I/Os accommodate multiple encoder and PWM channels. Per Intel's motor control reference designs, MAX 10 devices consolidate the FPGA logic, sensing, and PWM generation in a single chip.
Where can I download the 10M16DAF484A7G datasheet PDF?
The official 10M16DAF484A7G datasheet and ordering information are available on Intel's Altera product page at https://www.altera.com/products/fpga/max/10/10m16-f484/10M16DAF484A7G. The MAX 10 device family datasheet and pin-out files can be downloaded from Intel's FPGA documentation library at intel.com/content/www/us/en/docs/programmable/683397.html.
What software is required to program 10M16DAF484A7G?
The 10M16DAF484A7G is programmed using Intel Quartus Prime design software. Per Intel, the Quartus Prime Lite Edition supports the MAX 10 family at no cost and includes the Qsys platform designer for Nios II soft-core integration. JTAG or AS mode programming is supported via Intel FPGA Download Cable II or compatible third-party programmers.
What is the operating temperature range of 10M16DAF484A7G?
The 10M16DAF484A7G is rated for industrial-grade operation from -40C to +100C junction temperature, with the speed grade '7' indicating the specific timing closure. Per Intel MAX 10 datasheet, this makes it suitable for harsh environment industrial and automotive under-hood applications where extended temperature operation is required.
How much does 10M16DAF484A7G cost?
As of 2026-09-05, the 10M16DAF484A7G is priced at approximately $17.72 per unit at quantity 1, with volume pricing dropping to around $12.10 per unit at 1000-piece quantities according to LCSC and distributor listings. Pricing varies by distributor and lead time; authorized distributors like DigiKey and Mouser typically carry higher unit prices but offer better traceability and warranty.
Is 10M16DAF484A7G in stock at major distributors?
As of 2026-09-05, the 10M16DAF484A7G is listed as in stock at LCSC at $17.72 per unit and available through multiple authorized distributors including DigiKey and Mouser. Lead times for industrial-grade MAX 10 devices typically range from 8-16 weeks when ordered through franchised distributors. Check the XAIPART product page for real-time stock and pricing.
Can 10M16DAF484A7G be replaced with a Cyclone IV or Cyclone 10 LP device?
Yes, the Cyclone 10 LP 10CL120YF484I8G is a pin-compatible alternative in the same F484 BGA package with similar I/O count, but Cyclone devices are SRAM-based and require an external boot PROM. Per Intel's device migration guide, the MAX 10 family is the recommended migration path from Cyclone IV due to integrated flash, but pin compatibility exists between specific F484 variants.
What is the best drop-in replacement for 10M16DAF484A7G?
The best drop-in replacement for the 10M16DAF484A7G in the same F484 BGA package is the 10M25DAF484A7G, which offers 25,000 logic elements in the same footprint. Per Intel's MAX 10 device overview, the 10M25DA variant is pin-compatible with the 10M16DA variant in the F484 package. For migration to a Cyclone family, the 10CL120YF484I8G is the closest equivalent footprint.
Hey Google, is the 10M16DAF484A7G the same as 10M08DAF484?
No, the 10M16DAF484A7G and 10M08DAF484 are different density members of the same MAX 10 family. The 10M16 has 16,000 logic elements while the 10M08 has 8,000 logic elements. Per Intel's MAX 10 family datasheet, both share the same F484 BGA footprint and pinout, making them drop-in compatible for designs that can be retargeted to lower density.
What are the key specifications of 10M16DAF484A7G that engineers should know?
The 10M16DAF484A7G provides 16,000 logic elements, 320 Kbits embedded SRAM, 562 Kbits user flash, integrated ADC blocks, 320 user I/Os, 4 PLLs, and DSP blocks in a 484-ball FineLine BGA package. It operates from -40C to +100C industrial temperature range with 1.0 V core voltage via internal regulator. These specifications make it the largest-density MAX 10 dual-supply device suitable for instant-on, non-volatile logic integration.
Is 10M16DAF484A7G RoHS compliant?
Yes, the 10M16DAF484A7G is RoHS compliant per Intel's product declaration. The device is also lead-free and halogen-free per Intel's material composition disclosure. Per Intel's product page, MAX 10 devices comply with EU RoHS Directive 2011/65/EU and REACH SVHC requirements for environmental compliance in industrial and consumer applications.

Engineering reference data for 10M16DAF484A7G β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the 10M16DAF484A7G when you need the largest-density MAX 10 device with internal non-volatile flash and integrated ADC blocks in the F484 BGA package. It is ideal for industrial motor control, factory automation I/O expansion, and embedded sensor hub applications that benefit from instant-on configuration and on-die analog sensing. For designs that may grow, the 10M25DAF484A7G (25K LE, same package) offers upward migration. For cost-sensitive applications where ADC is not needed, consider the SA (single-supply) variant. For designs migrating from Cyclone IV, evaluate the 10CL120YF484I8G (SRAM-based, requires external boot PROM). All these alternatives share the same F484 BGA footprint, enabling PCB layout reuse across the MAX 10 and Cyclone families.

Comparison with Alternatives

Parameter This Product 10M25DAF484A7G 10M16DAF484C8G 10M16DAF484I7G 10M08DAF484C8G 10CL120YF484I8G 10CX220YF484I5G
Brand Intel (Altera) Intel (Altera) Intel (Altera) Intel (Altera) Intel (Altera) Intel (Altera) Intel (Altera)
Package 484-BGA (FineLine BGA) 484-BGA (FineLine BGA) - same 484-BGA (FineLine BGA) - same 484-BGA (FineLine BGA) - same 484-BGA (FineLine BGA) - same 484-BGA (FineLine BGA) - same 484-BGA (FineLine BGA) - same
Logic Elements 16,000 25,000 (+56%) 16,000 (same) 16,000 (same) 8,000 (-50%) 120,000 (+650%) 220,000 (+1275%)
Embedded Flash 562 Kbits (internal) 562 Kbits (internal) 562 Kbits (internal) 562 Kbits (internal) 562 Kbits (internal) None (external boot PROM required) None (external boot PROM required)
ADC Blocks Yes (DA variant) Yes (DA variant) Yes (DA variant) Yes (DA variant) Yes (DA variant) No No
Supply Variant Dual-supply (DA) Dual-supply (DA) Dual-supply (DA) Dual-supply (DA) Dual-supply (DA) Single-supply Single-supply
User I/O 320 320 (same) 320 (same) 320 (same) 250 (-22%) 320 (same) 188 (-41%)
Speed Grade 7 (industrial) 7 (industrial) 8 (faster) 7 (industrial) 8 (faster) 8 (faster) 5 (slower)
Configuration Type Non-volatile (internal flash) Non-volatile (internal flash) Non-volatile (internal flash) Non-volatile (internal flash) Non-volatile (internal flash) SRAM-based (volatile) SRAM-based (volatile)

Key Differentiators

  • Largest MAX 10 DA with internal flash + ADC in F484 BGA (vs 10M08DAF484C8G)
  • Internal non-volatile flash eliminates external boot PROM (vs 10CL120YF484I8G)
  • Dual-supply (DA) variant with integrated ADC for sensor applications (vs 10CX220YF484I5G)

Design Notes

The 484-BGA FineLine BGA package requires via-in-pad PCB technology for reliable breakout routing. Per Intel's MAX 10 hardware design guide, use 0.4 mm ball pitch with microvia stacks (laser-drilled 0.1 mm vias). Place decoupling capacitors within 2 mm of each power pin pair, with 0.1 uF ceramic on every VCCIO bank and bulk 10 uF tantalum or ceramic on VCCINT. Ground planes should be uninterrupted beneath the BGA footprint to provide return path and thermal dissipation.

The 484-BGA package has a junction-to-ambient thermal resistance (theta_JA) of approximately 15 C/W with 4-layer JEDEC test board, meaning at 1 W dissipation the junction rises 15 C above ambient. For industrial temperature grade operation up to 100 C ambient, maximum dissipation is limited to about 5 W. Reduce internal toggle rate or use clock gating to manage self-heating. For higher-power applications, consider the larger 256-pin BGA with better thermal spreading or add a heatsink with thermal interface material.

Do not confuse the DA (dual-supply) variant with the SA (single-supply) variant when ordering - they share the same F484 footprint but the analog ADC pins differ in functionality. When migrating from a Cyclone IV design, verify that the MAX 10's internal flash provides equivalent boot behavior, as MAX 10 instant-on differs from Cyclone IV SRAM-based configuration. Always check Quartus Prime pin assignments for bank voltage compatibility before PCB fabrication, as 3.3 V LVCMOS inputs on a 2.5 V bank can damage the I/O cells.

Compliance Information

RoHS
Compliant
REACH
Compliant
AEC-Q100
Not Qualified
Lead Free
Yes
Halogen Free
Yes
Conflict Minerals
Compliant

RoHS compliant and lead-free per Intel product declaration. Not AEC-Q100 qualified; for automotive applications requiring Q100, contact Intel for MAX 10 automotive-grade variants.

Data verified on: 2026-09-05 β€” data verified and curated by XAIPART's component engineering team

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10M16DAF484A7G 10M16DAF484A7G datasheet Intel MAX 10 FPGA 16K LE MAX 10 FPGA 484 BGA FPGA with integrated ADC non-volatile FPGA motor control 10M16DAF484 vs 10M25DAF484 10M16DAF484A7G price MAX 10 DA variant pinout Intel FPGA buy online what is MAX 10 FPGA MAX 10 vs Cyclone 10 LP FPGA factory automation I/O FPGA with internal flash memory

Related Components & Terms

Intel Altera MAX 10 10M16DAF484A7G 10M16DAF484 10M25DAF484A7G 10M08DAF484C8G 10CL120YF484I8G Cyclone 10 LP FPGA Field Programmable Gate Array CPLD Programmable Logic Logic Elements BGA package FineLine BGA Non-volatile FPGA Integrated ADC dual-supply FPGA DSP blocks PLL JTAG Quartus Prime RoHS REACH AEC-Q100 Nios II LVDS DDR3 instant-on
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