10AS032H2F34E2SG - Arria 10 SX 320K LE SoC FPGA | Altera / Intel
MPN: 10AS032H2F34E2SG ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $1760.42 | $1,760.42 |
| 10 | $1675 | $16,750.00 |
| 100 | $1585 | $158,500.00 |
| 500 | $1495 | $747,500.00 |
| 1,000 | $1410 | $1,410,000.00 |
Drop-in alternatives for 10AS032H2F34E2SG — 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:
10AS032H2F34E2LG
✅ Drop-In✓ In Stock
$1380 / Unit
View Datasheet →10AS032H2F34E1HG
✅ Drop-In✓ In Stock
$1227.9 / Unit
View Datasheet →10AS032H1F35I1HG
✅ Drop-In ⚠️ 参数待验证✓ In Stock
$2265 / Unit
View Datasheet →10AS032H1F34I1HG
✅ Drop-In✓ In Stock
$2077.26 / Unit
View Datasheet →10AS032H1F34E1HG
✅ Drop-In✓ In Stock
$1755 / Unit
View Datasheet →10AS032E4F29I3SG
✅ Drop-In ⚠️ 参数待验证✓ In Stock
$2250 / Unit
View Datasheet →10AS027H3F34E2SG
✅ Drop-In📋 Reference alternative (not in catalog)
10AS032H2F34E2SG Maximum Ratings & Electrical Characteristics
| Family | Arria 10 SX |
| Device | 10AS032 |
| Logic Elements | 320,000 |
| Processor Core | Dual ARM Cortex-A9 MPCore with CoreSight |
| HPS Frequency | 1.5 GHz (max) |
| Process Technology | 20 nm |
| Package | 1152-pin FC-FBGA (F34), 35 x 35 mm |
| Mounting Type | Surface Mount, BGA |
| RoHS Status | Compliant |
| Core Voltage | 0.9 V (typical) |
| Memory | Integrated DDR4 hard memory controller |
| Package Code | BGA |
| Package Shape | Square |
| Terminal Form | Ball |
| Terminal Count | 1152 |
10AS032H2F34E2SG square Pin Configuration Guide
Complete pinout information for 10AS032H2F34E2SG (square 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 10AS032H2F34E2SG.
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
10AS032H2F34E2SG is suitable for 6 applications: Wireless Baseband Processing, Radar and Signal Intelligence, Broadcast Video Infrastructure, Industrial Machine Vision, Test and Measurement Equipment, Medical Imaging and Diagnostics.
Wireless Baseband Processing
The 10AS032H2F34E2SG's 320K logic elements and dual ARM Cortex-A9 HPS running up to 1.5 GHz make it a strong fit for wireless baseband processing. The FPGA fabric accelerates PHY-layer DSP functions such as FFT, channel estimation, and FEC decoding, while the Cortex-A9 cores handle MAC-layer scheduling, protocol stack, and management plane tasks. Compared with ASIC + external CPU designs, an SoC FPGA reduces board area and BOM by integrating the processor and accelerator on a single die. The 20nm Arria 10 SX architecture provides the DSP block density and transceiver bandwidth needed for LTE and 5G NR baseband implementations.
Recommended
Radar and Signal Intelligence
For radar and SIGINT systems, the 10AS032H2F34E2SG integrates high-speed DSP, large logic capacity, and a hard processor on one chip. The FPGA fabric performs wideband digital downconversion, pulse compression, and beamforming in real time, while the Cortex-A9 subsystem handles target tracking, classification, and operator interfaces. The 1.5 GHz HPS with NEON engines accelerates vector math for STAP and adaptive filtering. Compared with separate DSP + MCU solutions, the SoC FPGA reduces latency between the FPGA fabric and the processor, critical for time-sensitive signal processing tasks.
Recommended
Broadcast Video Infrastructure
Broadcast video head-ends and contribution encoders benefit from the 10AS032H2F34E2SG's combination of high logic density and an embedded processor. The FPGA fabric implements multi-stream HEVC/H.264 encoding, transrating, and color space conversion at 4K/UHD resolutions, while the Cortex-A9 subsystem runs control software, IP stack, and web management interfaces. The integrated DDR4 controller supports the high memory bandwidth required for uncompressed video buffers. Compared with a CPU-only encoder, the SoC FPGA provides the parallel processing horsepower needed to encode multiple HD streams simultaneously.
Recommended
Industrial Machine Vision
Factory automation and machine vision systems use the 10AS032H2F34E2SG to combine high-speed image processing with embedded control. The FPGA fabric handles multi-camera sensor aggregation, Bayer demosaicing, edge detection, and convolutional neural network inference, while the ARM Cortex-A9 subsystem runs the vision application, communicates with PLCs over Ethernet/IP or PROFINET, and drives HMI displays. The 20nm Arria 10 SX silicon provides the logic density and DSP blocks needed for real-time inspection. Compared with GPU + x86 solutions, the SoC FPGA delivers deterministic latency critical to factory-line timing.
Recommended
Test and Measurement Equipment
High-end oscilloscopes, protocol analyzers, and RF test instruments use the 10AS032H2F34E2SG as a central processing hub. The FPGA fabric digitizes and pre-processes signals at multi-GS/s rates with low latency, while the Cortex-A9 subsystem handles instrument calibration, display rendering, and remote-control interfaces such as LXI or USB. The 1.5 GHz HPS plus NEON engines accelerate FFT-based spectrum analysis. Compared with dedicated ASIC front ends plus an external processor, the SoC FPGA offers flexible reconfigurability for evolving test standards.
Recommended
Medical Imaging and Diagnostics
Medical imaging systems such as ultrasound carts and MRI reconstruction platforms leverage the 10AS032H2F34E2SG's combination of DSP bandwidth and an embedded processor. The FPGA fabric performs beamforming, FIR filtering, and image reconstruction algorithms in real time, while the ARM Cortex-A9 cores handle patient data interfaces, DICOM stack, and touch-screen UI. The integrated DDR4 hard controller delivers the memory throughput needed for high-resolution image buffers. Compared with CPU + GPU architectures, the SoC FPGA provides deterministic processing latency essential to diagnostic accuracy.
Recommended
Recommended Products Summary
Engineering reference data for 10AS032H2F34E2SG — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 10AS032H2F34E2LG | 10AS032H2F34E1HG | 10AS032H1F34I1HG | 10AS027H3F34E2SG |
|---|---|---|---|---|---|
| Brand | Altera | Altera | Altera | Altera | Altera |
| Package | 1152-FBGA, FC (F34), 35x35 mm | 1152-FBGA, FC (F34) - same | 1152-FBGA, FC (F34) - same | 1152-FBGA, FC (F34) - same | 1152-FBGA, FC (F34) - same |
| Logic Elements | 320,000 | 320,000 | 320,000 | 320,000 | 270,000 |
| Processor Core | Dual ARM Cortex-A9 1.5 GHz | Dual ARM Cortex-A9 1.5 GHz | Dual ARM Cortex-A9 1.5 GHz | Dual ARM Cortex-A9 1.5 GHz | Dual ARM Cortex-A9 1.5 GHz |
| Speed Grade | H2 (E2) | H2 (E2) | H2 (E1) | H1 (I1) | H3 (E2) |
| Process Technology | 20 nm | 20 nm | 20 nm | 20 nm | 20 nm |
| RoHS Compliance | Yes | Yes | Yes | Yes | Yes |
| Approx Unit Price (USD, qty 1, as of 2026-09-05) | 1760.42 | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] |
Key Differentiators
- Highest-density Arria 10 SX in F34 package (vs 10AS027H3F34E2SG)
- H2 speed grade gives highest performance in F34 footprint (vs 10AS032H2F34E1HG)
- Integrated dual-core ARM Cortex-A9 SoC (vs 10AS032E4F29I3SG)
Design Notes
The 1152-pin FC-FBGA F34 package requires high-density PCB design with microvia stack-ups, controlled-impedance routing for transceivers, and matched-length lanes for DDR4. Allocate at least 8 PCB layers and follow Altera's recommended BGA breakout pattern with 1.0mm pitch. Use a continuous ground plane beneath the BGA to provide a return path and thermal dissipation, and consider via-in-pad with filled/capped vias for high-current rails. Failure to follow BGA layout guidelines can result in solder defects and signal-integrity issues at multi-GHz transceiver rates.
The 35 x 35 mm FC-FBGA package must dissipate significant heat, especially when both FPGA fabric and HPS run at full utilization. Use a thermal interface material (TIM) and attach a heatsink or cold plate directly to the package top, with thermal vias under the central die region. Estimated: at full FPGA fabric utilization the die can dissipate 15-25W, requiring a heatsink rated at <0.5 C/W for industrial temperature operation. Always validate thermal design with a computational fluid dynamics (CFD) simulation or thermal probe measurements.
Common pitfalls with Arria 10 SX designs include: (1) misconfiguring MSEL pins, which select the FPGA configuration scheme and must match the actual boot source (QSPI, SD card, JTAG, etc.); (2) failing to provide proper power-up sequencing for the HPS and FPGA rails per Altera's PowerTree design; (3) leaving JTAG pins floating in production - they should be pulled to a defined state; (4) not following HPS DDR pin-out rules when routing to external memory, which can cause read/write errors. Always review Altera's AN 692 (Arria 10 HPS-to-FPGA bridge) and pin connection guidelines before board bring-up.
Compliance Information
RoHS compliance confirmed by distributor listings on DigiKey and Ampheo. REACH, halogen-free, and conflict-minerals declarations should be confirmed with Intel/Altera directly.