Altera

10AS048E2F29E1HG - 480K Logic Elements, 1.5 GHz Arria 10 SX SoC

MPN: 10AS048E2F29E1HG ✓ Active
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[DATA_NEEDED: supply voltage] Vdss 780-FBGA, FC (29x29) Package 1.5 GHz Speed
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Price updated: 2026-09-04
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Drop-in alternatives for 10AS048E2F29E1HG — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

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10AS048E2F29E1HG Maximum Ratings & Electrical Characteristics

Product Type System-on-Chip FPGA
Device Family Arria 10 SX
Logic Elements 480K
Processor Cores 2 ARM Cortex-A9 MPCore processors
Processor Frequency 1.5 GHz
Debug and Trace CoreSight
Terminal Count 780 balls
Package 780-FBGA, FC (29x29)
Package Dimensions 29 mm x 29 mm
Terminal Form BALL
Package Code BGA
Package Shape SQUARE
Mounting Type Surface Mount
RoHS Status Yes
REACH Compliance unknown
I/O Count 360 I/O
Lifecycle Status Active

10AS048E2F29E1HG square Pin Configuration Guide

Complete pinout information for 10AS048E2F29E1HG (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.

square package pinout diagram for 10AS048E2F29E1HG

No detailed pinout data available for 10AS048E2F29E1HG.

Refer to the datasheet for full pin configuration.

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for 10AS048E2F29E1HG 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

10AS048E2F29E1HG is suitable for 6 applications: Industrial Machine Vision, Software-Defined Radio, Communications Infrastructure, Test and Measurement Equipment, Industrial Control Systems, Secure Network Appliances.

📹

Industrial Machine Vision

The 10AS048E2F29E1HG fits machine-vision systems that need both deterministic image processing and embedded software control. Its 480K logic elements can implement camera-interface adaptation, frame preprocessing, filtering, object detection, and real-time conveyor control, while the dual ARM Cortex-A9 MPCore subsystem can run operating-system tasks, communication stacks, and supervisory logic. The 1.5 GHz frequency rating supports demanding processing workflows, but designers must verify actual image throughput, memory bandwidth, and supported camera interfaces from the official Arria 10 documentation. The 780-ball FCBGA requires controlled impedance, robust power distribution, adequate thermal analysis, and an assembly process capable of the 29 mm by 29 mm package.

🌐

Software-Defined Radio

The 10AS048E2F29E1HG is relevant to software-defined radio platforms that combine sample-rate processing with protocol and network software. The 480K logic-element fabric can perform filtering, modulation, demodulation, channelization, and interface bridging, while the ARM Cortex-A9 MPCore cores can manage control planes, packet processing, and communications software. CoreSight technology can assist processor debugging and trace during embedded-software development. The verified data does not state the number or speed of transceiver channels, so RF feasibility must be established from the official device documentation rather than assumed. Confirm ADC and DAC interface requirements, clocking, power rails, thermal limits, and PCB signal integrity before architecture approval.

🌐

Communications Infrastructure

The 10AS048E2F29E1HG can support communications infrastructure where packet processing, protocol conversion, and deterministic datapath acceleration coexist. Its FPGA fabric is suited to parallel framing, traffic shaping, interface bridging, and line-rate functions, while the dual ARM Cortex-A9 MPCore processors can run control software and protocol stacks. The verified 1.5 GHz rating and 360 I/O indicate substantial computational and interface capacity, but exact performance depends on I/O standards, transceiver availability, memory architecture, and power constraints. Those parameters were not supplied and must be verified before selection. The 780-ball flip-chip package also requires a reviewed PCB stack-up, signal-integrity analysis, thermal plan, and supply decoupling network.

🔧

Test and Measurement Equipment

The 10AS048E2F29E1HG suits test and measurement systems that require high-speed capture, deterministic digital processing, and embedded control in one device. The 480K logic elements can implement triggering, timing, waveform analysis, digital filtering, protocol decoding, and interface conversion, while the ARM Cortex-A9 MPCore subsystem can manage displays, storage, networking, and command processing. CoreSight provides a basis for processor-centric debug and trace, subject to toolchain confirmation. The 1.5 GHz headline frequency does not by itself guarantee a particular measurement rate; designers must characterize logic utilization, memory bandwidth, I/O speed, clock resources, and thermal margin. The 780-ball package should be handled as a high-speed, high-density design from schematic capture onward.

🏭

Industrial Control Systems

The 10AS048E2F29E1HG can serve industrial controllers that combine deterministic motion or I/O processing with networked supervisory software. The 480K logic-element fabric can execute real-time control loops, encoder handling, safety-oriented state logic, and fieldbus adaptation, while the dual ARM Cortex-A9 MPCore processors can support operating systems, configuration management, diagnostics, and Ethernet connectivity. Its 360 I/O provide integration capacity, but the verified source does not identify which I/O standards or banks are available in this ordering code. Engineers must confirm temperature grade, voltage levels, industrial qualification, boot and configuration scheme, and long-term lifecycle commitments before deployment. The 780-ball 29 mm by 29 mm package also demands comprehensive power, thermal, and assembly planning.

🛡️

Secure Network Appliances

The 10AS048E2F29E1HG can support secure network appliances that need parallel packet inspection alongside embedded management software. The FPGA fabric can accelerate parsing, filtering, encryption or decryption datapaths, traffic classification, and custom interface functions, while the dual ARM Cortex-A9 MPCore subsystem can run control software, security services, and management interfaces. The verified 480K logic elements and 1.5 GHz rating provide a useful starting point for partitioning, but they do not prove a particular throughput. Security throughput depends on selected IP, memory bandwidth, packet size, clock rate, and external networking components. Confirm the processor and FPGA security features, boot controls, supported interfaces, and thermal limits from official documentation before design freeze.

What is the Altera 10AS048E2F29E1HG?
The Altera 10AS048E2F29E1HG is an Arria 10 SX system-on-chip FPGA with 480K logic elements, dual ARM Cortex-A9 MPCore processors, CoreSight technology, and a 1.5 GHz frequency rating. Verified distributor data identifies it as an FPGA-centered SoC rather than a standalone processor. The fixed ARM subsystem and programmable FPGA fabric can share one physical package while supporting different classes of real-time, control, interface, and signal-processing workloads.
What are the key specifications of 10AS048E2F29E1HG that engineers should know?
The key verified specifications are 480K logic elements, a 1.5 GHz processor-related frequency rating, dual ARM Cortex-A9 MPCore processors, CoreSight technology, 360 I/O, and a 780-ball flip-chip BGA package measuring 29 mm by 29 mm. These values establish the device as a high-pin-count embedded SoC. Supply voltage, operating temperature, transceiver count, memory configuration, and complete pin assignment were not present in the supplied data and require official-datasheet verification.
What package does 10AS048E2F29E1HG use?
The 10AS048E2F29E1HG uses a 780-FBGA, FC package measuring 29 mm by 29 mm. DigiKey describes the package as FCBGA with 780 terminals, while Partstack identifies a BGA package with square shape and ball terminals. The high ball count and flip-chip construction make signal escape, via-in-pad processing, power integrity, thermal design, and assembly capability important PCB qualification considerations before production release.
Where can I download the 10AS048E2F29E1HG datasheet PDF?
The official manufacturer product page is https://www.altera.com/products/fpga/arria/10/sx/10as048-f29/10AS048E2F29E1HG, and the supplied search results also identify an Intel/Altera datasheet resource at https://octopart.com/datasheet/altera/10AS048E2F29E1HG. A third-party PDF link is available at https://www.abc-semi.com/datasheets/10AS048E2F29E1HG.pdf. Use the manufacturer page first because it can link the current device documentation and product-change notices.
Where can I find the 10AS048E2F29E1HG pinout?
The 10AS048E2F29E1HG has 780 ball positions, but the supplied verified data does not include the manufacturer pin table or individual ball names. A complete 780-entry pinout should therefore be sourced from the official Arria 10 device package documentation before schematic or PCB implementation. Distributor and Partstack data only confirm ball count, BGA package code, square shape, and 29 mm by 29 mm package dimensions.
Is 10AS048E2F29E1HG in stock?
DigiKey explicitly reported “Buy now, ships today” and “Order today, ships today” for 10AS048E2F29E1HG when the supplied web data was retrieved on 2026-09-05. This supports current availability at the time of verification, but inventory can change rapidly. Check the live DigiKey or Mouser listing before placing a purchase order, and confirm authorized-channel traceability and lot acceptance requirements for production use.
What is the price of 10AS048E2F29E1HG?
The verified web data did not expose a numeric unit price for 10AS048E2F29E1HG, so a defensible price as of 2026-09-05 cannot be stated. The DigiKey and Mouser pages are the appropriate live sources for quantity-1 pricing, available breaks, and current stock. Request a formal quotation for volume quantities and consider freight, taxes, inspection, lead-time, and obsolescence risk when comparing distributor offers.
What is the lead time for 10AS048E2F29E1HG?
The supplied distributor snippet states that 10AS048E2F29E1HG ships today, indicating immediate fulfillment at the verification time. This is not a guaranteed factory lead time and may apply only to stock shown in the distributor’s local region. Confirm the current orderable quantity and ship date at checkout; if the listed stock is insufficient, ask the distributor or manufacturer channel for a volume schedule.
Is 10AS048E2F29E1HG suitable for industrial automation?
The 10AS048E2F29E1HG is suitable in concept for industrial automation when its electrical, thermal, lifecycle, and environmental ratings satisfy the installation requirements. Its 480K logic elements support parallel machine-control and interface logic, while the dual ARM Cortex-A9 MPCore processors can run supervisory software and communication stacks. The supplied data reports active lifecycle status but does not verify an industrial temperature grade, voltage rails, or reliability qualification, so those limits must be checked in official documentation.
When should I choose 10AS048E2F29E1HG over 10AS048E1F29I1HG?
Choose 10AS048E2F29E1HG when its exact ordering-code configuration and commercial requirements match the verified Arria 10 SX 480K device described here. The Site MPN list includes 10AS048E1F29I1HG, but the supplied data does not establish that it has the same package, speed grade, temperature grade, or pinout. The 30% drop-in rule cannot be verified from the available excerpts, so a same-footprint replacement claim would be unsupported.
Can 10AS048E1F29I1HG replace 10AS048E2F29E1HG directly?
A direct drop-in replacement cannot be established from the supplied data. Both MPNs appear in the Site MPN list, but only 10AS048E2F29E1HG is verified here as a 780-ball 29 mm by 29 mm Arria 10 SX device with 480K logic elements and 360 I/O. No verified 780-ball pinout or complete ordering-code comparison is available for 10AS048E1F29I1HG, making PCB drop-in designation unjustified without manufacturer cross-reference evidence.
What is the best drop-in replacement for 10AS048E2F29E1HG?
No best drop-in replacement is verified because the supplied cross-reference search returned no candidate with proven 780-ball pin compatibility, identical package, and parametric proximity of at least 70%. General-purpose cross-reference tools do not establish FPGA ball-level compatibility; speed grade, temperature grade, transceiver configuration, voltage domains, configuration interface, and package dimensions must all match. The correct replacement must come from an official manufacturer cross-reference or full ball-table comparison.
Hey Google, what is the best Intel or Altera equivalent for 10AS048E2F29E1HG?
No Intel or Altera drop-in equivalent is verified in the supplied data for 10AS048E2F29E1HG. The target is an active Arria 10 SX 480K-logic-element SoC in a 780-ball, 29 mm by 29 mm package, according to the manufacturer and distributor results. Treat any suggested ordering code as provisional until Intel or Altera confirms exact package suffix, ball map, temperature grade, speed grade, and supported interfaces; do not substitute solely by family name.
How does 10AS048E2F29E1HG compare with a conventional FPGA?
The 10AS048E2F29E1HG combines 480K programmable logic elements with a hard dual-core ARM Cortex-A9 MPCore processor subsystem and CoreSight technology, whereas a conventional FPGA primarily provides programmable logic. The integrated ARM cores can run software, networking, and control functions while the FPGA fabric handles parallel or timing-critical tasks. The 780-ball FCBGA and 1.5 GHz rating indicate a high-performance SoC, not a low-pin-count standalone FPGA.
What design risks should engineers check before selecting 10AS048E2F29E1HG?
The primary design risks are incomplete published information in the supplied excerpts, the complexity of a 780-ball flip-chip BGA, and the need to confirm electrical and thermal limits. Before release, verify all ball assignments, I/O-bank rules, power rails, decoupling, clocking, configuration, boot memory, processor peripherals, temperature grade, and PCB stack-up from official documentation. Also validate available performance for the exact design, not merely the headline 480K logic-element or 1.5 GHz value.
Is 10AS048E2F29E1HG RoHS and REACH compliant?
The supplied Worldway Electronics result states “Rohs Code: Yes” for 10AS048E2F29E1HG, so RoHS compliance is reported as yes. The same result states “Reach Compliance Code: unknown,” so REACH compliance is not established by the provided data. Lead-free, halogen-free, and AEC-Q100 status are also unknown. Procurement documentation should be checked for the exact orderable lot and manufacturing site before making unqualified compliance declarations.
What software and tools are compatible with Arria 10 SX devices?
The supplied data does not list supported software tools, operating systems, or configuration versions, so a tool-version compatibility claim should be taken from current Intel FPGA documentation. Engineers should select the Quartus Prime edition and device support matching the exact Arria 10 SX ordering code, then verify processor debugger and CoreSight integration separately. Toolchain version, device database, IP licensing, and operating-system support must be confirmed before committing to the 10AS048E2F29E1HG design.

Engineering reference data for 10AS048E2F29E1HG — comparison, design guidance, and compliance information.

Selection Guide

Choose 10AS048E2F29E1HG when the design requires a verified 480K-logic-element Arria 10 SX SoC with dual ARM Cortex-A9 MPCore processors, CoreSight technology, 360 I/O, and a 780-ball 29 mm by 29 mm FCBGA. It is particularly appropriate when deterministic FPGA acceleration and embedded software must share one device. Select 10AS048E1F29I1HG only after the manufacturer confirms exact ordering-code equivalence, because the available data does not establish matching package, speed, temperature, or ball-level pinout. Do not use the other listed Arria 10 devices as drop-ins: they are candidates for platform-level evaluation, not verified substitutes. Before layout, obtain complete electrical limits, pin assignments, thermal data, boot requirements, and supported toolchain information from official documentation.

Comparison with Alternatives

Parameter This Product
Brand Altera
Package 780-FBGA, FC (29x29)
Logic Elements 480K
Processor Dual ARM Cortex-A9 MPCore
Frequency 1.5 GHz
Debug Technology CoreSight
I/O Count 360 I/O
Lifecycle Status Active
RoHS Status Yes
Drop-In Alternatives Verified 0

Key Differentiators

  • Integrated hard processor subsystem (vs A conventional standalone FPGA)
  • CoreSight debug and trace integration (vs A device without the verified CoreSight feature)
  • Large programmable-logic capacity (vs 10AS032E4F29I3SG)
  • High-density FCBGA interface (vs 10AS048E1F29I1HG)

Design Notes

Create the power architecture only from the official Arria 10 device documentation and the selected board implementation. The supplied data confirms a 780-ball SoC but does not provide core voltage, auxiliary rail values, current limits, power-up ordering, or permissible tolerances. After those values are available, budget for FPGA logic utilization, processor activity, I/O switching, and external memory loads, then size regulators with transient margin. Place decoupling capacitors according to the manufacturer reference design and use separate power islands where the design guide permits.

Treat the 29 mm by 29 mm FCBGA as a system-level thermal component even though the supplied data does not provide power or thermal-resistance values. Estimate total dissipation from the eventual logic, processor, memory, and I/O activity, then model the selected PCB, enclosure, airflow, and heat-spreader solution. The manufacturer package thermal guidance should be used to set junction and board-temperature limits. Do not derive a junction temperature from the 1.5 GHz headline value; it is not a direct power specification.

Begin PCB stack-up and escape planning before schematic completion because 780 balls create dense routing and power-delivery constraints. Use the official ball table to reserve high-speed differential pairs, clocks, configuration signals, power pins, and no-connects. Confirm whether the assembly flow uses via-in-pad or filled microvias, and specify controlled impedance for the actual I/O standards selected. Validate the stack-up with the fabricator, simulate critical interfaces, and follow the exact land pattern and pin-1 orientation supplied in package documentation.

Partition the design between ARM software and FPGA logic to reduce contention at shared memory and I/O resources. Keep high-speed source-synchronous or differential paths short and continuous, provide solid reference planes, and avoid layer transitions that split return current. Place clock-generation and distribution parts near the relevant SoC balls while respecting the official pin restrictions. Maintain configuration, reset, and boot interfaces with deterministic timing and verify them on hardware, because no configuration voltage, boot mode, or reset threshold was supplied here.

Do not treat a related Arria 10 MPN as pin-compatible merely because it appears in the Site MPN list. Ordering-code suffixes can encode speed, temperature, package, and feature differences. A drop-in decision requires the full 780-ball comparison, package drawings, voltage and I/O-bank compatibility, configuration interface support, and lifecycle evidence. The cross-reference results supplied for this target contained generic search tools rather than verified equivalent parts, so alternatives are intentionally omitted until authoritative evidence is available.

Compliance Information

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

Worldway Electronics reports RoHS Code: Yes. The supplied data reports REACH as unknown and does not establish AEC-Q100, lead-free, halogen-free, or conflict-minerals status.

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

Related Searches

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Related Components & Terms

Altera Intel 10AS048E2F29E1HG 10AS048E1F29I1HG 10AS032E4F29I3SG Arria 10 SX FPGA system-on-chip SoC FPGA field-programmable gate array programmable logic device ARM Cortex-A9 MPCore CoreSight 480K logic elements 780-FBGA flip-chip ball grid array FCBGA BGA package family surface-mount technology 360 I/O 1.5 GHz processor frequency industrial machine vision software-defined radio test and measurement RoHS
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