10AX115N4F40I3LG - Arria 10 GX FPGA 1.15M LE 1517-FCBGA | Intel
MPN: 10AX115N4F40I3LG ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $3250 | $3,250.00 |
| 10 | $2995 | $29,950.00 |
| 100 | $2750 | $275,000.00 |
| 500 | $2520 | $1,260,000.00 |
| 1,000 | $2350 | $2,350,000.00 |
Drop-in alternatives for 10AX115N4F40I3LG — 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:
10AX115N4F40E3LG
✅ Drop-In ⚠️ 参数待验证✓ In Stock
$6200 / Unit
View Datasheet →10AX115N3F40I3LG
✅ Drop-In ⚠️ 参数待验证📋 Reference alternative (not in catalog)
10AX115N4F40I2LG
✅ Drop-In ⚠️ 参数待验证📋 Reference alternative (not in catalog)
10AX115N2F40I2LG
✅ Drop-In ⚠️ 参数待验证✓ In Stock
$7965.99 / Unit
View Datasheet →10AX115H4F34I3LG
✅ Drop-In ⚠️ 参数待验证✓ In Stock
$5550 / Unit
View Datasheet →10AX090N4F40I3LG
✅ Drop-In ⚠️ 参数待验证✓ In Stock
$3290 / Unit
View Datasheet →10AX115N4F40I3LG Maximum Ratings & Electrical Characteristics
| Series | Arria 10 GX |
| Manufacturer | Intel (formerly Altera) |
| Logic Elements (LE) | 1,150,000 |
| Embedded Memory (bits) | 68,857,856 (approx. 8 MB) |
| Maximum User I/O | 600 |
| Transceiver Count | Up to 96 full-duplex channels |
| Maximum Transceiver Data Rate | 28.05 Gbps |
| Hard PCIe Blocks | PCIe Gen3 x8 hard IP |
| Process Technology | 20 nm |
| Core Voltage | 0.9 V |
| Package | 1517-BBGA / FCBGA (F1517, 40 mm, 1.0 mm pitch) |
| Temperature Grade | Industrial (-40C to +100C) |
| RoHS Status | Compliant |
| Mounting Type | Surface Mount (BGA) |
10AX115N4F40I3LG 1517-bbga / fcbga (f1517, 40 mm, 1.0 mm pitch) Pin Configuration Guide
Complete pinout information for 10AX115N4F40I3LG (1517-bbga / fcbga (f1517, 40 mm, 1.0 mm pitch) 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 10AX115N4F40I3LG.
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
10AX115N4F40I3LG is suitable for 6 applications: High-Speed Data Acquisition, 4K/8K Video Broadcast Equipment, Wireless Baseband Processing, Military Radar and Electronic Warfare, Medical Imaging Systems, High-Performance Computing Accelerators.
High-Speed Data Acquisition
The 10AX115N4F40I3LG fits high-speed data acquisition applications due to its 1,150,000 logic elements and up to 96 transceivers at 28.05 Gbps. Combined with 68,857,856 bits of embedded M20K memory, the device can buffer multi-channel ADC samples at gigasample-per-second rates. Placed between the front-end ADCs and a host CPU or DSP array, it performs real-time channel calibration, decimation, and triggering without external memory round-trips.
Recommended
4K/8K Video Broadcast Equipment
The 10AX115N4F40I3LG is ideal for 4K/8K video broadcast infrastructure thanks to its 600 user I/Os, 1.15M LEs, and embedded HDMI 2.0 / DisplayPort / 12G-SDI PHY support via transceivers. The 68 Mb embedded memory enables multi-frame buffering for color-space conversion and HDR tone mapping. Used in video routers, contribution encoders, and studio-grade frame synchronizers, it outperforms ASIC alternatives by allowing late-stage codec updates.
Recommended
Wireless Baseband Processing
The 10AX115N4F40I3LG suits wireless baseband processing because of its variable-precision DSP blocks supporting up to 1,500 GMACS fixed-point and integrated CPRI / OBSAI protocol interfaces via 28 Gbps transceivers. In LTE and 5G small-cell base stations, it implements PHY-layer functions including FFT/IFFT, channel coding, and MIMO detection. The industrial temperature grade allows deployment in outdoor radio units without derating.
Recommended
Military Radar and Electronic Warfare
The 10AX115N4F40I3LG supports military radar and electronic warfare (EW) systems through its combination of 1.15M LEs, embedded memory bandwidth, and 28 Gbps transceivers. Pulse compression, MTI filtering, and beamforming algorithms benefit from the variable-precision DSP blocks and M20K memory blocks. The industrial temperature grade and high-density FCBGA package meet the SWaP-C requirements of airborne radar and maritime EW pods.
Recommended
Medical Imaging Systems
The 10AX115N4F40I3LG is well suited to medical imaging modalities such as CT, MRI, and ultrasound because of its parallel DSP throughput and 600 high-speed user I/Os for parallel sensor interfaces. Beamforming in ultrasound front-ends benefits from the variable-precision DSP blocks, while CT reconstruction algorithms map efficiently onto the 1.15M LE fabric. Industrial temperature rating and high reliability support FDA-compliant medical device designs.
Recommended
High-Performance Computing Accelerators
The 10AX115N4F40I3LG accelerates HPC workloads through PCIe Gen3 hard IP blocks and 28 Gbps transceivers supporting coherent interconnects such as CCIX and OpenCAPI. With 1.15M LEs and 68 Mb embedded memory, it implements custom compute kernels for financial analytics, genomics, and machine learning inference alongside x86 host CPUs. The hard PCIe Gen3 x8 IP eliminates soft-logic overhead, delivering higher effective bandwidth than PCIe Gen3 soft cores.
Recommended
Recommended Products Summary
Engineering reference data for 10AX115N4F40I3LG — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 10AX115N4F40E3LG | 10AX115N3F40I3LG | 10AX115N4F40I2LG | 10AX115N2F40I2LG | 10AX115H4F34I3LG | 10AX090N4F40I3LG |
|---|---|---|---|---|---|---|---|
| Brand | Intel | Intel | Intel | Intel | Intel | Intel | Intel |
| Package | 1517-BBGA, FCBGA (F1517, 40 mm) | 1517-BBGA, FCBGA (F1517, 40 mm) - same | 1517-BBGA, FCBGA (F1517, 40 mm) - same | 1517-BBGA, FCBGA (F1517, 40 mm) - same | 1517-BBGA, FCBGA (F1517, 40 mm) - same | 1517-BBGA, FCBGA - same | 1517-BBGA, FCBGA - same |
| Logic Elements | 1,150,000 | 1,150,000 | 1,150,000 | 1,150,000 | 1,150,000 | 1,150,000 | 900,000 |
| Embedded Memory (bits) | 68,857,856 | 68,857,856 | 68,857,856 | 68,857,856 | 68,857,856 | 68,857,856 | 53,560,320 |
| Speed Grade | -3 (N4) | -3 (N4) | -3 (N3) | -2 (N4) | -2 (N2) | -3 (H4) | -3 (N4) |
| Temperature Grade | Industrial (-40C to +100C) | Commercial (0C to +85C) | Industrial (-40C to +100C) | Industrial (-40C to +100C) | Industrial (-40C to +100C) | Industrial (-40C to +100C) | Industrial (-40C to +100C) |
| Maximum Transceiver Rate | 28.05 Gbps | 28.05 Gbps | 28.05 Gbps | 28.05 Gbps | 28.05 Gbps | 17.4 Gbps | 28.05 Gbps |
| Process / Core Voltage | 20 nm / 0.9 V | 20 nm / 0.9 V | 20 nm / 0.9 V | 20 nm / 0.9 V | 20 nm / 0.9 V | 20 nm / 0.9 V | 20 nm / 0.9 V |
Key Differentiators
- Highest logic density in the F1517 FCBGA package family (vs 10AX090N4F40I3LG)
- Full 28.05 Gbps transceiver support (vs 10AX115H4F34I3LG)
- Industrial temperature grade availability (vs 10AX115N4F40E3LG)
Design Notes
The 1517-ball FCBGA package requires HDI PCB technology with at least 12 layers, laser-drilled microvias for inner-ball breakout, and 1.0 mm ball pitch routing rules. Estimated: at 1.0 mm pitch with 0.4 mm via pad and 0.125 mm trace/space (typical Arria 10 reference design), designers should plan for at least 2-3 microvia layers to escape all signal balls. Reference the Intel Arria 10 GX Board Design Guidelines for stackup recommendations.
Estimated: at typical Arria 10 utilization (70 percent logic, 60 percent transceiver, full DSP), total power dissipation can reach 25-40 W. The FCBGA package exposes a thermal die-attach pad that must be soldered to a copper heat spreader or thermal via array connecting to internal copper planes. Forced-air cooling with at least 200 LFM airflow is required for industrial-temperature operation; heatsinks should be designed for 0.5 C/W or lower thermal resistance.
The 0.9 V core supply must be generated by a high-current, low-noise DC-DC regulator capable of 20-30 A peak load with sub-1 percent transient response. According to the Intel Arria 10 GX Power Distribution Network Design Guidelines, use a multi-phase buck controller such as the LTC3887 or ISL8277 with input decoupling of at least 8x 22 uF ceramic capacitors per phase. Decoupling requires 0402-size 0.1 uF and 1 uF capacitors placed within 5 mm of each power pin cluster.
Transceiver channels at 28.05 Gbps require strict impedance control (100 ohm differential) and length matching within 0.127 mm (5 mil) for the entire channel. Use a high-frequency PCB laminate such as Megtron 6 or RO4350B for transceiver routing layers with controlled dielectric thickness. Reference the Intel Arria 10 Transceiver Signal Integrity Guide for via optimization and AC-coupling capacitor placement requirements.
Do not confuse the F1517 package suffix with similar F1517 packages from other Arria 10 family members: verify the exact ball map against the device-specific pinout file before PCB layout. Mis-mapping the F1517 ball assignments between Arria 10 GX and Arria 10 GT or SX variants causes non-functional boards that are extremely difficult to rework at BGA level. Always generate the device-specific pinout from Intel Quartus Prime pin planner rather than reusing a previous project.
Compliance Information
RoHS and REACH compliance per Intel FPGA product declaration. AEC-Q100 not applicable as this is a high-density FPGA, not an automotive-grade IC. Industrial temperature grade (-40C to +100C) certified per Intel datasheet.