10M08DCV81I7G

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10M08DCV81I7G

IC FPGA 56 I/O 81WLCSP

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Spezifikationen

Series MAX® 10
Part Status Active
DigiKey Programmable Not Verified
Total RAM Bits 387072
Number of I/O 56
Voltage - Supply 1.15V ~ 1.25V
Mounting Type Surface Mount
Operating Temperature -40°C ~ 100°C (TJ)
Package / Case 81-UFBGA, WLCSP
Supplier Device Package 81-VBGA, WLCSP (4.5x4.4)
Number of Logic Elements/Cells 8000
Number of LABs/CLBs 500

Übersicht

Description

The term "10M08DCV81I7G" refers to a specific FPGA (Field-Programmable Gate Array) chip from Intel's MAX 10 series. This series is designed for applications requiring low power, small form factor, and flexible design capabilities. The "10M" indicates the MAX 10 family, while "08" signifies the device density, which usually corresponds to the number of logic elements. The "DC" denotes the package type (in this case, a dual in-line package), and "V" represents the voltage grade. The "81" usually relates to the specific performance and features of the chip, while "I7G" typically indicates the temperature range and other environmental specifications.
MAX 10 FPGAs are often used in applications like digital signal processing, automotive systems, and consumer electronics due to their reconfigurability and built-in features like analog-to-digital converters (ADCs). They support a variety of design tools, facilitating rapid prototyping and deployment. For detailed specifications and applications, refer to the official Intel documentation.

Package

The package type of the 10M08DCV81I7G is a 144-pin TQFP (Thin Quad Flat Package). This type of package is characterized by its thin profile and has pins on all four sides, making it suitable for surface mounting in compact electronic designs.

Pinout

The 10M08DCV81I7G is an Altera (now Intel) MAX 10 FPGA with a pin count of 81. This device is designed for various applications, providing features such as reconfigurable logic, DSP blocks, and I/O options.
Key functions of the pins include:
1. Power Pins: Supply voltage and ground connections.
2. I/O Pins: Configurable as input or output for interfacing with external components.
3. Configuration Pins: Used for programming the FPGA and managing its initialization.
4. Clock Pins: Dedicated pins for clock inputs to synchronize operations.
The MAX 10 family is known for its non-volatile memory, making it suitable for applications that require low power and high integration.

Manufacturer

The manufacturer of the 10M08DCV81I7G is Intel Corporation. Intel is a multinational technology company headquartered in Santa Clara, California, known primarily for designing and manufacturing semiconductor products, including microprocessors, integrated circuits, and system-on-chip solutions. Founded in 1968, Intel is a leader in the computer hardware industry and is recognized for its innovations in computing technologies, particularly in personal computers and data centers. The 10M08DCV81I7G is part of Intel's FPGA (Field Programmable Gate Array) product line, specifically the 10M series, which is utilized in various applications, including telecommunications, automotive, and industrial systems. Intel's diverse portfolio also extends to memory and storage solutions, artificial intelligence, and IoT (Internet of Things) technologies.

Application

The 10M08DCV81I7G is a low-power FPGA (Field Programmable Gate Array) from Intel's MAX 10 series. Its application areas include digital signal processing, embedded systems, motor control, industrial automation, data acquisition, and communication systems. It is suitable for applications requiring reconfigurable logic, low power consumption, and integrated analog features.

Equivalent

The 10M08DCV81I7G is an FPGA from Intel's MAX 10 series. Equivalent products include the Xilinx Spartan-6 series (e.g., XC6SLX9) and Lattice ECP5 series (e.g., LFE5U-25F). For specific applications, other MAX 10 variants like 10M08DAF484I7 or similar-density FPGAs may also serve as alternatives, depending on the design requirements. Always verify pin compatibility and features for your specific use case.

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