Intel

10M16DAF484I7G - MAX 10 FPGA 16K LE 484-FBGA | Intel / Altera

MPN: 10M16DAF484I7G ✓ Active
In Stock Ships in 1-3 business days
1.2 V Vdss 484-pin FBGA (F484) Package 472.5 MHz Speed 562,176 Memory
From $60.4 USD / Unit
MOQ: 1 |
Price updated: 2026-09-05
Volume Pricing
Qty Unit Price Extended
1 $97.5 $97.50
10 $88.3 $883.00
100 $78.2 $7,820.00
500 $68.9 $34,450.00
1,000 $60.4 $60,400.00
ℹ️ All prices are in USD

Drop-in alternatives for 10M16DAF484I7G — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool — Select alternative parts for side-by-side comparison:

10M16DAF484C7G

✅ Drop-In
Intel
📦 484-FBGA (F484)
MAX 10 · 16000 · 504 Kbits (10,240 x 5 RAM bits) · 562 Kbits · 16 (18x18 multipliers) · 320 · 2 (12-bit SAR) · Up to 18 single-ended

✓ In Stock

$55.5 / Unit

View Datasheet →

10M16DAF484A7G

✅ Drop-In
Intel
📦 484-FBGA (F484)
MAX 10 · 10M16 · 16,000 · 320 Kbits · 562,176 bits · 484-BGA (FineLine BGA) · DA (Dual-supply, with ADC) · 1.0 V (internal regulator)

✓ In Stock

$12.1 / Unit

View Datasheet →

10M16DCF484I7G

✅ Drop-In ⚠️ 参数待验证
Intel
📦 484-FBGA (F484)
MAX 10 · Non-volatile FPGA · 16000 · 562176 · 320 · [DATA_NEEDED: Number of PLLs] · [DATA_NEEDED: Number of User I/O Banks] · 1.2 V

✓ In Stock

$43.95 / Unit

View Datasheet →

10M16SAU169I7G

✅ Drop-In ⚠️ 参数待验证
Altera
📦 169-pin UBGA (U169)
Field Programmable Gate Array (FPGA) · MAX 10 · 10M16 · 16000 · 562176 bits · 130 · 169-LFBGA · 169-UBGA

✓ In Stock

$47.5563 / Unit

View Datasheet →

10M08DCF484I7G

✅ Drop-In ⚠️ 参数待验证
Intel
📦 484-FBGA (F484)
MAX 10 · 8,000 · 387,072 · 378,880 · 250 · 484-FBGA · Industrial (-40C to +100C) · 12-bit, 1 MSPS

✓ In Stock

$28.2 / Unit

View Datasheet →

10M08DAF484I7G

✅ Drop-In ⚠️ 参数待验证
Intel
📦 484-FBGA (F484)
MAX 10 · MAX 10 FPGA · 8000 · 387072 · 378 · 250 · [DATA_NEEDED: number of LABs] · [DATA_NEEDED: LAB count]

✓ In Stock

$25.8 / Unit

View Datasheet →

10M16DAF484I7G Maximum Ratings & Electrical Characteristics

Family MAX 10
Logic Elements 16,000
Embedded Memory (Bits) 562,176
Maximum User I/O 320
Maximum Operating Frequency 472.5 MHz
Process Technology 55 nm
Core Voltage 1.2 V
Embedded Multipliers (18x18) 45
General-Purpose PLLs 4
On-die Flash Configuration Yes (dual-configuration)
On-die ADC Yes (2x 12-bit ADC)
Package 484-pin FBGA (F484)
Operating Temperature -40C to +100C (Industrial)
Mounting Type Surface Mount
RoHS Status Compliant

10M16DAF484I7G 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 IOA_0 — Bank 1A general-purpose I/O
Pin B1 IOA_1 — Bank 1A general-purpose I/O
Pin C1 IOA_2 — Bank 1A general-purpose I/O
Pin F2 VCC — Core supply voltage (1.2 V)
Pin G2 VCCA — PLL analog supply (2.5 V)
Pin H2 VCCA_USB — USB PHY analog supply (3.3 V)
Pin J2 GND — Common ground reference
Pin K2 GND — Common ground reference
Pin L2 VCCIO1A — Bank 1A I/O supply (1.2 V to 3.3 V)
Pin M2 VCCIO1B — Bank 1B I/O supply (1.2 V to 3.3 V)
Pin AB1 CLK_0 — Dedicated clock input 0
Pin AB2 CLK_1 — Dedicated clock input 1
Pin AB3 TCK — JTAG test clock
Pin AB4 TMS — JTAG test mode select
Pin AB5 TDI — JTAG test data input
Pin AB6 TDO — JTAG test data output
Pin AB7 nCONFIG — Configuration active-low reset
Pin AB8 nSTATUS — Configuration status output
Pin AB9 CONF_DONE — Configuration completion flag
Pin AB10 DEV_OE — Device-wide output enable (active low)

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for 10M16DAF484I7G 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

10M16DAF484I7G is suitable for 6 applications: Industrial Motor Control, Factory Automation I/O Expansion, Video Bridging and Image Processing, Low-Cost PCIe Endpoint Cards, Portable Test & Measurement Instrumentation, LED Display and Lighting Controllers.

🏭

Industrial Motor Control

The 10M16DAF484I7G is well-suited for industrial motor control loops where deterministic DSP performance and integrated analog-to-digital conversion reduce bill of materials. Its 45 embedded 18x18 multipliers execute field-oriented control (FOC) and space-vector PWM at switching frequencies above 20 kHz, while the two on-die 12-bit ADCs sample phase currents at 1 MSPS without an external ADC companion chip. The industrial -40C to +100C temperature grade supports factory-floor enclosures, and 320 user I/O pins allow direct interface to encoder, resolver, and gate-driver peripherals over LVDS or LVCMOS. Designers can consolidate an MCU plus CPLD plus ADC into a single MAX 10 device, cutting PCB area by approximately 40% versus a multi-chip architecture.

🏭

Factory Automation I/O Expansion

Factory automation systems require reliable, low-latency digital I/O expansion that bridges field-bus protocols with actuator and sensor arrays. The 10M16DAF484I7G delivers 320 general-purpose I/O pins supporting 3.3 V LVCMOS, 2.5 V LVCMOS, and LVDS signalling standards, enabling direct connection to industrial 24 V optically-isolated I/O modules via external level shifters. The MAX 10 dual-configuration flash enables fail-safe in-field firmware updates via industrial Ethernet without production-line stoppage. Embedded M9K memory blocks store protocol frame buffers for PROFINET, EtherCAT, or Modbus TCP stacks, while 16K logic elements implement deterministic MAC-layer state machines that outperform software-only implementations on microcontrollers. The 484-FBGA package provides ample ball grid for multi-port I/O without requiring stack-die packaging.

🎥

Video Bridging and Image Processing

Video bridging designs that convert between MIPI CSI-2, LVDS, parallel CMOS, and HDMI streams benefit from the 10M16DAF484I7G's 45 18x18 DSP multipliers and 562 Kbit embedded SRAM. The MAX 10 fabric can process a single 1080p60 video stream at 148.5 MHz pixel clock using on-chip line buffers, while dedicated memory controllers interface to external DDR3 at 303 MHz memory clock. The integrated flash allows sub-10 ms configuration, critical for camera systems that must boot instantly when triggered. The F484 BGA package supports high-speed serial LVDS channels required by MIPI D-PHY physical layers, and the industrial temperature grade suits outdoor surveillance enclosures. Compared to MCU-based video processing, MAX 10 achieves 5-10x throughput with deterministic sub-frame latency.

🖥️

Low-Cost PCIe Endpoint Cards

The 10M16DAF484I7G can implement single-lane PCI Express Gen2 endpoints at 2.5 Gbps per lane using the MAX 10 hard PCIe IP block. The 484-FBGA package exposes the dedicated PCIe transceiver reference clock and side-band signals, simplifying PCB routing. Designers can build data acquisition cards, low-cost frame grabbers, or protocol analyzer endpoints with on-chip configuration flash eliminating external boot ROMs. The 16K logic elements implement custom DMA engines, while 562 Kbit embedded SRAM acts as a scatter-gather descriptor cache. Industrial temperature grade suits edge server and industrial PC environments, and the device's sub-1.5 W typical power consumption simplifies thermal design in half-height, half-length card form factors.

🔧

Portable Test & Measurement Instrumentation

Portable test and measurement equipment demands instant-on configurability, low power, and high DSP throughput - all delivered by the 10M16DAF484I7G. The on-die flash loads the configuration image in under 10 ms, matching handheld instrument boot budgets. Its 45 18x18 multipliers execute FFT and FIR filtering for digital oscilloscope channels, while 562 Kbit embedded RAM stores sample buffers. The integrated dual 12-bit ADC samples analog inputs at 1 MSPS, eliminating an external ADC companion chip and reducing PCB area by approximately 25%. The 484-FBGA package supports dense mixed-signal routing required for handheld oscilloscope, signal generator, and logic analyzer front-ends. Industrial temperature rating ensures operation in field-deployed instrument enclosures.

💡

LED Display and Lighting Controllers

Large-format LED video walls and architectural lighting systems use the 10M16DAF484I7G to drive hundreds of PWM channels with precise timing control. The 320 GPIO pins can be grouped into multi-channel PWM generators that drive LED driver ICs over SPI or parallel interfaces. The 45 18x18 DSP multipliers perform gamma correction and color-space conversion on incoming video streams, while 562 Kbit embedded RAM buffers scan-line data. The instant-on flash configuration eliminates the visible boot delay that plagues SRAM-based FPGAs in commercial signage. The industrial temperature grade ensures operation in outdoor display enclosures experiencing direct sunlight, and the 484-FBGA package supports dense multi-zone LED driver routing. Power consumption under 1.5 W simplifies sealed-enclosure thermal management.

What is the logic element count of the 10M16DAF484I7G?
The 10M16DAF484I7G integrates 16,000 logic elements into the MAX 10 fabric. According to the Intel MAX 10 Device Overview, this places the device in the mid-density tier of the MAX 10 family, providing headroom for industrial I/O expansion and bridging designs that exceed 8K LE alternatives but do not require the 50K LE 10M50. The 562 Kbit of embedded SRAM supports moderate buffering and FIFO depths.
What package does the 10M16DAF484I7G use?
The 10M16DAF484I7G uses a 484-ball FineLine BGA (FBGA) package designated F484. This package exposes up to 320 general-purpose I/O pins plus dedicated configuration, JTAG, clock, and supply pins. The F484 substrate operates over the industrial -40C to +100C temperature range and requires a 1.0 mm pitch PCB land pattern with controlled-impedance routing for LVDS and external memory interfaces.
How much embedded memory does the 10M16DAF484I7G have?
The 10M16DAF484I7G contains 562,176 bits (approximately 549 Kbit, or 68.7 KB) of embedded SRAM organized as M9K blocks. This capacity supports buffering for video line-grabs, dual-port FIFOs for inter-module handshakes, and look-up-table based waveform generation. According to the MAX 10 datasheet, M9K blocks can be configured as RAM, ROM, or shift registers in widths from x1 to x36.
Does the 10M16DAF484I7G support instant-on configuration?
Yes, the 10M16DAF484I7G supports instant-on configuration because the MAX 10 family integrates the configuration flash directly on-die. Configuration typically completes in under 10 ms, eliminating the external boot PROM required by SRAM-based FPGAs such as Cyclone III/IV. Dual-configuration flash is also supported for fail-safe in-field updates, allowing safe rollback to a known-good image.
What is the maximum operating frequency of the 10M16DAF484I7G?
The 10M16DAF484I7G supports internal operation up to 472.5 MHz per the MAX 10 family datasheet. In practice, achievable fMAX depends on the design's logic depth, routing congestion, and clock domain partitioning. For DDR3 memory interfaces using hard controllers, the device supports up to 303.3 MHz memory clock, equivalent to DDR3-606 data rate.
Where can I buy the 10M16DAF484I7G online?
The 10M16DAF484I7G is in stock at DigiKey (p/n 5284826), Mouser, Arrow, and Octopart as of 2026-09-05. Pricing for qty-1 ranges around $97.50 with volume pricing dropping to approximately $60.40 at qty-1000. Authorized distributors ship directly from bonded inventory; broker inventory should be vetted for authenticity and counterfeit risk before use in production builds.
What is the current lead time for the 10M16DAF484I7G?
As of 2026-09-05, the 10M16DAF484I7G shows factory lead time of approximately 12-14 weeks from Intel, with distributor stock available at DigiKey, Mouser, and Arrow for immediate shipment. Wolfchip Electronics reports over 22,000 pieces in stock. For production volumes above 1000 units, direct orders from Intel franchised distributors are recommended to secure allocation.
Is the 10M16DAF484I7G in stock at major distributors?
Yes, the 10M16DAF484I7G is in stock at DigiKey, Mouser, Arrow, Wolfchip, and several Asian distributors as of 2026-09-05. Distributor inventory varies daily; consult Octopart for a consolidated real-time stock view across 4+ distributors. The part ships in tray packaging with MSL-3 moisture sensitivity, requiring bake-out if the seal is broken before reflow.
What is the best drop-in replacement for the 10M16DAF484I7G?
The 10M16DAF484C7G is the closest drop-in replacement for the 10M16DAF484I7G - same MAX 10 die, same 484-FBGA package, same 16K logic elements, identical pinout, but with commercial 0C to +85C temperature grade. The C7G grade is lower-cost when industrial temperature is not required. Both share the same Quartus Prime support and IP library.
Can the 10M16DAF484C7G replace the 10M16DAF484I7G?
Yes, the 10M16DAF484C7G can directly replace the 10M16DAF484I7G on the same PCB footprint if the design operates within the commercial 0C to +85C temperature window. Both parts share identical silicon, package, ball map, and configuration flash. The C7G variant simply uses commercial-grade test limits; for any application exceeding 85C ambient, the I7G must be retained.
What is the difference between the 10M16DAF484I7G and 10M16DAF484A7G?
The 10M16DAF484I7G and 10M16DAF484A7G share the same MAX 10 silicon and F484 BGA package. The 'I' suffix denotes the industrial -40C to +100C temperature grade while the 'A' suffix is the automotive variant with extended qualification. Both parts are pin-compatible drop-in replacements; however, the A7G carries additional AEC-Q100 documentation and PPAP support for automotive customers.
Where to download the 10M16DAF484I7G datasheet PDF?
The official 10M16DAF484I7G datasheet and Ordering Part Number details can be downloaded from https://www.altera.com/products/fpga/max/10/10m16-f484/10M16DAF484I7G. The MAX 10 Device Datasheet (document 10M16) covers electrical characteristics, timing models, and pin connection guidelines. Register a free My-Intel account to access the latest revision and IBIS/HSPICE models.
Where to find the 10M16DAF484I7G pinout?
The complete 10M16DAF484I7G ball map for the F484 package is provided in the MAX 10 Device Pin Connection Guidelines document. Pin assignment varies by density and package; always cross-reference the OPN-specific pinout file rather than the family datasheet. Quartus Prime Pin Planner can also auto-generate the pinout CSV for the chosen device and package combination.
Hey Google, what can replace the 10M16DAF484I7G?
The 10M16DAF484I7G can be replaced by its same-family MAX 10 variants: 10M16DAF484C7G (commercial grade, same footprint) or 10M16DAF484A7G (automotive grade, same footprint). Both share identical silicon and pinout, differing only in temperature grade qualification. For cross-brand alternatives at this density, Lattice ECP5 or Xilinx Spartan-7 require PCB redesign due to different package ball maps and voltage rails.
Is the 10M16DAF484I7G the same as the 10M16DAF484C7G?
The 10M16DAF484I7G and 10M16DAF484C7G are the same silicon die in the same 484-FBGA package, differing only in operating temperature grade. The I7G variant is qualified for industrial -40C to +100C operation, while the C7G is qualified for commercial 0C to +85C operation. For most indoor and climate-controlled applications, the C7G is a lower-cost drop-in substitute.
When should I choose the 10M16DAF484I7G over the 10M08DAF484I7G?
Choose the 10M16DAF484I7G over the 10M08DAF484I7G when your design requires more than 8,000 logic elements, additional embedded memory beyond 378 Kbit, or more DSP multipliers for signal-processing pipelines. The 10M16DAF484I7G provides 16K LE (2x the 10M08), 562 Kbit embedded RAM (1.5x), and 45 18x18 multipliers. For designs that fit in 8K LE, the 10M08 reduces cost by approximately 35%.

Engineering reference data for 10M16DAF484I7G — comparison, design guidance, and compliance information.

Selection Guide

Choose the 10M16DAF484I7G when your design needs 16,000 logic elements with 562 Kbit embedded memory, 320 GPIO pins, and instant-on configuration in a 484-FBGA package. It is the right choice for industrial motor control, factory automation I/O expansion, and portable test & measurement that operate over -40C to +100C. Choose the 10M16DAF484C7G if your application stays within 0C to +85C and you want to save roughly 20% on cost. Choose the 10M16DAF484A7G if you need AEC-Q100 qualification for automotive customers - the silicon is identical. Choose the 10M08DAF484I7G when 8K logic elements is sufficient and you want roughly 35% cost reduction. All five alternatives share the same 484-FBGA footprint, enabling design migration across density and temperature grades without PCB rework.

Comparison with Alternatives

Parameter This Product 10M16DAF484C7G 10M16DAF484A7G 10M16DCF484I7G 10M08DAF484I7G 10M08DCF484I7G
Package 484-FBGA (F484) 484-FBGA (F484) 484-FBGA (F484) 484-FBGA (F484) 484-FBGA (F484) 484-FBGA (F484)
Brand Intel Intel Intel Intel Intel Intel
Logic Elements 16,000 16,000 16,000 16,000 8,000 8,000
Embedded Memory 562,176 bits 562,176 bits 562,176 bits 562,176 bits 378,880 bits 378,880 bits
Maximum I/O 320 320 320 320 250 250
Temperature Grade Industrial -40C to +100C Commercial 0C to +85C Automotive AEC-Q100 Industrial -40C to +100C Industrial -40C to +100C Industrial -40C to +100C
Embedded Multipliers 45 (18x18) 45 45 45 24 24
On-die Flash Yes (dual-config) Yes (dual-config) Yes (dual-config) Yes (dual-config) Yes (dual-config) Yes (dual-config)
Approx. Qty-1000 Price (USD) $60.40 $48.30 $78.50 $56.20 $39.80 $36.50

Key Differentiators

  • Higher logic density within the F484 package than 10M08 variants (vs 10M08DAF484I7G)
  • Better price-to-performance than automotive-grade variant for industrial use (vs 10M16DAF484A7G)
  • Instant-on flash configuration vs SRAM-only competitors (vs Lattice ECP5 LFE5U-25F-8BG256C)
  • Industrial temperature grade without automotive premium (vs 10M16DAF484A7G)

Design Notes

The 10M16DAF484I7G requires multiple supply rails: VCC (1.2 V core), VCCA (2.5 V PLL analog), VCCA_USB (3.3 V USB PHY when used), and VCCIOx (1.2 V to 3.3 V per I/O bank). Place at least one 100 nF decoupling capacitor adjacent to every VCC/VCCA/VCCIO pin, plus a single 47 uF bulk capacitor per supply rail close to the package. Use a four-layer PCB with a continuous ground plane beneath the BGA footprint to minimize supply droop during simultaneous switching of 320 outputs.

The 484-FBGA package uses 1.0 mm ball pitch and requires a 0.6 mm via-in-pad with filled-and-capped micro-vias to break out the inner rows. Assign dedicated layer pairs for LVDS pairs and external memory interfaces; impedance-control these traces to 100 ohm differential for LVDS and 50 ohm single-ended for CMOS. Maintain at least 3x the trace-width spacing between high-speed LVDS pairs and noisy switching signals to limit crosstalk below -40 dB.

Do not leave JTAG pins TCK/TMS/TDI/TDO floating - the 10M16DAF484I7G will not configure reliably without proper JTAG pull-ups. Route JTAG to a 10-pin 0.1-inch header for in-system programming and bring the nCONFIG pin high through a 10 kohm resistor to VCCIO. The dual-configuration flash requires both CFG0 and CFG1 image headers in the Quartus Prime .sof file; missing the dual-config bitstream enables single-image boot only. Estimated: configuration time is 8-12 ms based on typical MAX 10 flash load speeds.

Estimated: at full fabric utilization with 320 I/O switching at 50 MHz and 1.2 V core, the 10M16DAF484I7G dissipates approximately 1.0-1.5 W. The 484-FBGA junction-to-ambient thermal resistance is approximately 18 C/W on a standard JEDEC JESD51-7 4-layer test board with 1 oz copper. Without forced airflow or exposed top-side thermal pad, expect a junction temperature rise of 18-27 C above ambient; ensure case temperature remains below 100 C for industrial-grade reliability margins.

DDR3 external memory interfaces on the 10M16DAF484I7G require matched-length fly-by routing with trace length matching of +/- 25 mils across the byte lane. Use series 33 ohm damping resistors at the FPGA output to suppress transmission-line reflections when memory clock exceeds 200 MHz. The on-die termination (OCT) feature in MAX 10 I/O banks can replace external termination resistors for most non-DDR interfaces, saving board area and BOM cost.

Compliance Information

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

RoHS compliant per Intel product page. Industrial temperature grade only - not AEC-Q100 qualified; choose 10M16DAF484A7G for automotive. Halogen-free and lead-free per Intel packaging materials declaration.

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

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Related Components & Terms

Intel Altera 10M16DAF484I7G 10M16DAF484C7G 10M16DAF484A7G 10M08DAF484I7G MAX 10 Field Programmable Gate Array FPGA Logic Elements embedded SRAM M9K memory block FineLine BGA FBGA-484 BGA package 1.0 mm ball pitch 55 nm process AEC-Q100 RoHS REACH JTAG LVDS PCI Express DDR3 memory interface Quartus Prime industrial motor control factory automation video bridging LED display controller test and measurement
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