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GAL16LV8C-10LJN

GAL16LV8C-10LJN

Product Overview

Category

The GAL16LV8C-10LJN belongs to the category of programmable logic devices (PLDs).

Use

This device is commonly used in digital circuit design and implementation. It provides a flexible and customizable solution for various applications.

Characteristics

  • Programmable: The GAL16LV8C-10LJN can be programmed to perform specific logic functions.
  • Low power consumption: It operates at a low voltage, making it suitable for battery-powered devices.
  • High speed: The device offers fast operation, enabling efficient data processing.
  • Compact package: The GAL16LV8C-10LJN is available in a small form factor, allowing for space-efficient designs.

Package

The GAL16LV8C-10LJN is typically packaged in a 20-pin PLCC (Plastic Leaded Chip Carrier) package.

Essence

The essence of the GAL16LV8C-10LJN lies in its ability to provide reconfigurable logic functions, allowing designers to implement custom digital circuits without the need for dedicated hardware.

Packaging/Quantity

The GAL16LV8C-10LJN is commonly sold in reels or tubes containing multiple units. The exact quantity may vary depending on the supplier.

Specifications

  • Operating Voltage: 3.3V
  • Speed Grade: 10LJN
  • Number of Inputs: 16
  • Number of Outputs: 8
  • Maximum Frequency: 10 MHz
  • Programmable Logic Cells: 8
  • I/O Standard: LVTTL

Detailed Pin Configuration

The GAL16LV8C-10LJN has a total of 20 pins. The pin configuration is as follows:

  1. GND - Ground
  2. I/O0 - Input/Output 0
  3. I/O1 - Input/Output 1
  4. I/O2 - Input/Output 2
  5. I/O3 - Input/Output 3
  6. I/O4 - Input/Output 4
  7. I/O5 - Input/Output 5
  8. I/O6 - Input/Output 6
  9. I/O7 - Input/Output 7
  10. VCC - Power Supply
  11. CE1 - Chip Enable 1
  12. CE2 - Chip Enable 2
  13. OE - Output Enable
  14. CLK - Clock Input
  15. TCK - Test Clock Input
  16. TDI - Test Data Input
  17. TDO - Test Data Output
  18. TMS - Test Mode Select
  19. NC - No Connection
  20. GND - Ground

Functional Features

  • Reconfigurable Logic: The GAL16LV8C-10LJN can be programmed to implement various logic functions, such as AND, OR, XOR, and more.
  • Fast Operation: The device operates at high speeds, enabling efficient data processing in digital circuits.
  • Low Power Consumption: The GAL16LV8C-10LJN is designed to consume minimal power, making it suitable for battery-powered applications.
  • Flexible Design: Its programmable nature allows designers to modify the logic functions without changing the hardware design.

Advantages and Disadvantages

Advantages

  • Flexibility: The GAL16LV8C-10LJN offers a flexible solution for implementing custom logic functions.
  • Cost-effective: By using programmable logic devices, designers can avoid the need for dedicated hardware, reducing costs.
  • Time-saving: Programming the device eliminates the need for complex circuit design, saving time in the development process.

Disadvantages

  • Limited Complexity: The GAL16LV8C-10LJN has a limited number of logic cells, which may restrict the complexity of the circuits that can be implemented.
  • Programming Knowledge Required: Designers need to have programming skills to effectively utilize the device's capabilities.

Working Principles

The GAL16LV8C-10LJN operates based on the principles of programmable logic. It consists of configurable logic cells that can be programmed to perform specific logic functions. These logic cells are interconnected through programmable interconnects, allowing for the creation of custom digital circuits. The device is programmed using specialized software or hardware tools, which generate a configuration file that defines the desired logic functions. This file is then loaded into the GAL16LV8C-10LJN, enabling it to execute the programmed logic.

Detailed Application Field Plans

The GAL16LV8C-10LJN finds applications in various fields, including:

  1. Embedded Systems: It can be used in microcontroller-based systems to implement custom peripheral interfaces or control logic.
  2. Communication Systems: The device can be utilized in networking equipment to perform protocol conversion or data processing tasks

Seznam 10 běžných otázek a odpovědí souvisejících s aplikací GAL16LV8C-10LJN v technických řešeních

Sure! Here are 10 common questions and answers related to the application of GAL16LV8C-10LJN in technical solutions:

  1. Q: What is GAL16LV8C-10LJN? A: GAL16LV8C-10LJN is a programmable logic device (PLD) manufactured by Lattice Semiconductor.

  2. Q: What is the purpose of GAL16LV8C-10LJN? A: GAL16LV8C-10LJN is used for implementing digital logic functions in various electronic systems.

  3. Q: What are the key features of GAL16LV8C-10LJN? A: Some key features include 16 macrocells, 8 inputs/outputs, 10ns propagation delay, and low power consumption.

  4. Q: How is GAL16LV8C-10LJN programmed? A: GAL16LV8C-10LJN can be programmed using industry-standard programming tools such as a programmer or a hardware description language (HDL).

  5. Q: What are some typical applications of GAL16LV8C-10LJN? A: GAL16LV8C-10LJN is commonly used in applications like data communication, industrial control, automotive electronics, and consumer electronics.

  6. Q: Can GAL16LV8C-10LJN be reprogrammed? A: No, GAL16LV8C-10LJN is a one-time programmable (OTP) device and cannot be reprogrammed once it has been programmed.

  7. Q: What is the maximum operating frequency of GAL16LV8C-10LJN? A: GAL16LV8C-10LJN can operate at a maximum frequency of 100 MHz.

  8. Q: What is the power supply voltage range for GAL16LV8C-10LJN? A: The recommended power supply voltage range for GAL16LV8C-10LJN is typically between 4.75V and 5.25V.

  9. Q: Can GAL16LV8C-10LJN interface with other digital components? A: Yes, GAL16LV8C-10LJN can interface with other digital components such as microcontrollers, memory devices, and other PLDs.

  10. Q: Are there any specific design considerations when using GAL16LV8C-10LJN? A: Yes, some design considerations include proper decoupling capacitors, signal integrity, and ensuring correct power sequencing during system startup.

Please note that these answers are general and may vary depending on the specific requirements and application context.