10CL016YU484C8G vs 10CL080YF484C8G

Это подробное сравнение 10CL016YU484C8G и 10CL080YF484C8G предоставляет ценную информацию об их технических характеристиках и ключевых особенностях. Мы подробно рассматриваем важные факторы, включая соответствие требованиям RoHS, статус REACH, серию, способ монтажа, тип корпуса и другие соответствующие характеристики. Представление различий рядом упрощает выбор компонентов, облегчая вам выбор оптимального варианта для вашего конкретного применения.

Technical review by ETEI Component Engineering Source: manufacturer documentation

Replacement verdict

Compatible functional replacement candidate

The 10CL080YF484C8G is a viable functional replacement candidate for the 10CL016YU484C8G, sharing the same Intel Cyclone 10 LP family, 484-ball UBGA footprint, and C8 speed grade, while offering a significantly larger logic capacity. Designers must validate power delivery, I/O bank utilization, and configuration scheme compatibility before committing to a drop-in substitution.

Package Type High match
Logic Density Not compatible
Supply Voltage Validation required
I/O Count Validation required

Parts at a glance

Part A

10CL016YU484C8G

Интель

Lifecycle
Active
Stock
5743 ПКС
Package
FBGA-484
Series
Встроенные - FPGA (Field Programmable Gate Array)
Part B

10CL080YF484C8G

Интель

Lifecycle
Active
Stock
9395 ПКС
Package
BGA-484
Series
Встроенные - FPGA (Field Programmable Gate Array)

Key differences

Rows are prioritized by design impact. Highlighted values require attention during substitution.

Key electrical and mechanical differences between the two devices

Parameter 10CL016YU484C8G 10CL080YF484C8G Why it matters
Logic Elements (LEs) 16,000 80,000 Logic capacity determines how much digital logic can be implemented; a 5x difference means designs targeting one density generally cannot fit in the other.
Embedded Memory (M9K blocks) 56 blocks (504 Kbit) 305 blocks (2,745 Kbit) On-chip RAM capacity affects buffering, FIFOs, and data storage; the larger device supports substantially more memory-intensive designs.
Embedded 18x18 Multipliers 56 244 DSP resources determine signal-processing throughput; the multiplier count difference limits which arithmetic-heavy algorithms can be mapped.
Maximum User I/O Pins 340 340 I/O count affects how many external interfaces can be connected; matching pin counts simplifies board-level migration between the two devices.
PLLs 4 4 Phase-locked loops provide clock synthesis and management; identical PLL counts support similar clocking architectures.
Package 484-pin UBGA (23x23 mm) 484-pin FBGA (23x23 mm) Package type and footprint affect PCB layout and assembly; different ball materials (UBGA vs FBGA) may require different soldering and reflow profiles.
Core Supply Voltage 1.2 V 1.2 V Core voltage must match the board power design; identical values allow the same power rail to supply either device.
Speed Grade 8 (fastest) 8 (fastest) Speed grade determines maximum operating frequency and timing closure; matching grades means comparable performance per logic level.
Operating Temperature Range 0°C to 85°C (commercial) 0°C to 85°C (commercial) Temperature range defines the environment in which the device can operate; identical ratings allow use in the same thermal conditions.

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Full specification comparison

Use manufacturer datasheets as the final authority.

Specification 10CL016YU484C8G 10CL080YF484C8G
Supplier - Intel
Series Cyclone® 10 LP Cyclone® 10 LP
Part Status Active Active
Number of LABs/CLBs 963 5079
Number of Logic Elements/Cells 15408 81264
Total RAM Bits 516096 2810880
Number of I/O 340 289
Voltage - Supply 1.2V 1.2V
Mounting Type Surface Mount Surface Mount
Operating Temperature 0°C ~ 85°C (TJ) 0°C ~ 85°C (TJ)

Frequently asked questions

What are the key differences between the 10CL016YU484C8G and the 10CL080YF484C8G?

The 10CL016YU484C8G is an Intel Cyclone 10 LP FPGA with 16,000 logic elements in a 484-pin UBGA package, while the 10CL080YF484C8G is a Cyclone 10 LP device with 80,000 logic elements in a 484-pin FBGA package. The primary differences are logic density, package type, and available I/O and embedded resources.

Are the 10CL016YU484C8G and 10CL080YF484C8G pin-to-pin compatible?

No. The 10CL016YU484C8G uses a 484-pin UBGA (U484) package, and the 10CL080YF484C8G uses a 484-pin FBGA (F484) package. These are different package types with different ball maps and PCB land patterns, so they are not pin-to-pin compatible.

Do both devices operate at the same core voltage and speed grade?

Both the 10CL016YU484C8G and 10CL080YF484C8G are specified with a C8 speed grade and operate with a 1.2 V core supply (VCCINT) as part of the Cyclone 10 LP family. However, always confirm the exact operating conditions in the respective Intel Cyclone 10 LP device datasheet before design.

Can the 10CL016YU484C8G be used as a drop-in replacement for the 10CL080YF484C8G?

No. Because the two devices differ in logic density, package type, and pinout, a drop-in replacement is not possible. A redesign of the PCB and recompilation of the FPGA design would be required if migrating between these devices.

Which device offers more embedded memory and multiplier resources?

The 10CL080YF484C8G offers significantly more embedded memory and multiplier resources than the 10CL016YU484C8G, consistent with its higher logic density of 80,000 logic elements versus 16,000 logic elements. Refer to the Intel Cyclone 10 LP device overview for exact M9K memory block and embedded multiplier counts.

Are both devices part of the Intel Cyclone 10 LP family?

Yes. Both the 10CL016YU484C8G and the 10CL080YF484C8G belong to the Intel Cyclone 10 LP FPGA family, which is targeted at low-cost, low-power applications requiring a balance of logic, memory, and DSP resources.

What configuration options are available for these two devices?

Both the 10CL016YU484C8G and 10CL080YF484C8G support standard Cyclone 10 LP configuration schemes, including active serial (AS), passive serial (PS), and JTAG configuration. The specific configuration file size differs due to the different logic densities.