10M16DCU324C8G
Altera
- Lifecycle
- Active
- Stock
- 5166 Stückzahl
- Series
- Embedded feFPGAs (Field Programmable Gate Array)
Dieser detaillierte Vergleich von 10M16DCU324C8G und 10M16SCU324C8G bietet wertvolle Einblicke in deren Spezifikationen und Hauptmerkmale. Wir gehen ausführlich auf wichtige Faktoren ein, darunter RoHS-Konformität, REACH-Status, Serie, Montageart, Gehäusetyp und weitere relevante Eigenschaften. Die übersichtliche Darstellung der Unterschiede vereinfacht die Komponentenauswahl und erleichtert Ihnen die Wahl der optimalen Lösung für Ihre Anwendung.
Replacement verdict
The 10M16DCU324C8G and 10M16SCU324C8G are functionally compatible FPGA candidates sharing the same Intel MAX 10 device family, 16,000 logic elements, 324-ball UBGA package, and commercial temperature grade. The primary distinction is the integrated high-speed transceiver capability: the 10M16DCU324C8G includes transceiver blocks while the 10M16SCU324C8G does not. Designers must validate transceiver-dependent interfaces before substituting, but core logic, I/O, and package footprint remain interchangeable.
Altera
Intel
Rows are prioritized by design impact. Highlighted values require attention during substitution.
Key electrical and mechanical differences between the two devices
| Parameter | 10M16DCU324C8G | 10M16SCU324C8G | Why it matters |
|---|---|---|---|
| Family | Intel MAX 10 | Intel MAX 10 | Both parts belong to the same device family, so they share the same architecture, toolchain, and IP support. |
| Logic Elements (LEs) | 16000 | 16000 | Equal logic capacity means both devices can implement the same logic functions and designs. |
| Package | 324-pin UBGA | 324-pin UBGA | Identical package and pin count allow the same PCB footprint and board layout. |
| Operating Temperature Range | 0°C to 85°C (Commercial) | 0°C to 85°C (Commercial) | Same temperature grade ensures both parts are suitable for the same environmental conditions. |
| Speed Grade | 8 | 8 | Matching speed grade means equivalent timing performance and maximum operating frequency. |
| On-Chip Flash Memory | Dual Configuration (D) | Single Configuration (S) | Dual configuration flash allows two images to be stored for fail-safe updates, while single configuration stores only one image. |
| Supply Voltage | 1.2 V core | 1.2 V core | Same core voltage means identical power supply design requirements. |
| Configuration Method | Internal configuration flash | Internal configuration flash | Both devices support instant-on configuration from internal flash without external memory. |
| User I/O Count | 246 | 246 | Equal I/O count ensures the same number of external interfaces can be supported. |
| Embedded Multiplier (18x18) | 90 | 90 | Same DSP resource count supports identical signal processing capability. |
Send your BOM and application constraints for technical and sourcing review.
Use manufacturer datasheets as the final authority.
| Specification | 10M16DCU324C8G | 10M16SCU324C8G |
|---|---|---|
| Series | MAX® 10 | MAX® 10 |
| Part Status | Active | Active |
| Number of LABs/CLBs | - | 1000 |
| Number of Logic Elements/Cells | - | 16000 |
| Total RAM Bits | 562176 | 562176 |
| Number of I/O | 246 | 246 |
| Voltage - Supply | 1.15V ~ 1.25V | 2.85V ~ 3.465V |
| Mounting Type | Surface Mount | Surface Mount |
| Operating Temperature | 0°C ~ 85°C (TJ) | 0°C ~ 85°C (TJ) |
| Digi Key Programmable | Not Verified | - |
| Number of LA Bs / CL Bs | 1000 | - |
| Number of Logic Elements / Cells | 16000 | - |
| Packaging | Tray | - |
Both are Intel (formerly Altera) MAX 10 family field-programmable gate arrays (FPGAs) in a 324-pin UBGA package with a speed grade of 8. The 10M16DCU324C8G is a dual-supply device, while the 10M16SCU324C8G is a single-supply device, as indicated by the "D" and "S" in their respective part numbers.
The "D" denotes a dual-supply MAX 10 FPGA, which requires both 1.2 V and 2.5 V (or 3.3 V) power rails for core and I/O operation. The "S" denotes a single-supply MAX 10 FPGA, which operates from a single 3.3 V supply for both core and I/O, simplifying power design.
Yes, both devices share the same 324-pin UBGA package footprint and pinout, allowing them to be used interchangeably on the same PCB layout. However, power supply connections differ due to the dual-supply versus single-supply architecture, so the power delivery network must be designed accordingly.
Yes, both are 10M16 devices with 16,000 logic elements (LEs), 549 Kbits of M9K embedded memory, and 288 embedded 18x18 multipliers. They also include the same number of user I/O pins and analog-to-digital converter (ADC) blocks, as they belong to the same MAX 10 10M16 density tier.
They can be used interchangeably only if the power supply architecture is compatible. The dual-supply 10M16DCU324C8G requires a 1.2 V core supply and a separate I/O supply, while the single-supply 10M16SCU324C8G requires only a 3.3 V supply. The PCB power plane and regulator design must match the selected device.
The 10M16DCU324C8G (dual-supply) requires a 1.2 V core voltage (VCCINT) and a 2.5 V or 3.3 V I/O voltage (VCCIO). The 10M16SCU324C8G (single-supply) requires a single 3.3 V supply (VCC) for both core and I/O. Both devices also require a 1.5 V or 1.8 V supply for the ADC block, if used.
Yes, both devices are supported by Intel Quartus Prime software, including the Standard Edition and Lite Edition, with the MAX 10 device support package installed. The same design files, pin assignments, and IP cores can be used for either device, provided the power supply constraints are respected.
Both devices are used in applications requiring moderate logic density, such as industrial control, motor control, sensor fusion, communication interfaces, and embedded system glue logic. The single-supply 10M16SCU324C8G is often preferred in cost-sensitive or space-constrained designs where a single 3.3 V rail is available, while the dual-supply 10M16DCU324C8G offers lower core power consumption for higher-performance logic.
Yes, both devices include on-chip configuration flash memory (CFM) that allows them to be used in instant-on applications. They support the same configuration schemes, including active serial (AS), passive serial (PS), and JTAG, and both can be programmed via the Intel Quartus Prime Programmer.