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EPF8636ALC84-3

EPF8636ALC84-3

Product Overview

Category: Programmable Logic Device (PLD)

Use: The EPF8636ALC84-3 is a high-performance PLD designed for various digital logic applications. It offers flexibility and versatility in designing complex digital circuits.

Characteristics: - High-speed operation - Large number of programmable logic elements - Flexible input/output configurations - Low power consumption - Reliable performance

Package: The EPF8636ALC84-3 comes in an 84-pin leaded chip carrier (LCC) package, which provides ease of installation and compatibility with standard circuit boards.

Essence: This PLD is the result of advanced semiconductor technology, combining programmable logic elements and interconnect resources to enable efficient digital circuit design.

Packaging/Quantity: Each EPF8636ALC84-3 unit is individually packaged and sold separately.

Specifications

  • Number of Logic Elements: 36,000
  • Maximum Operating Frequency: 300 MHz
  • Input/Output Voltage Levels: 3.3V
  • Operating Temperature Range: -40°C to 85°C
  • Supply Voltage: 3.3V
  • Package Type: 84-pin LCC

Pin Configuration

The EPF8636ALC84-3 has 84 pins arranged as follows:

  1. VCCIO0
  2. GND
  3. IO0
  4. IO1
  5. IO2
  6. IO3
  7. IO4
  8. IO5
  9. IO6
  10. IO7
  11. IO8
  12. IO9
  13. IO10
  14. IO11
  15. IO12
  16. IO13
  17. IO14
  18. IO15
  19. IO16
  20. IO17
  21. IO18
  22. IO19
  23. IO20
  24. IO21
  25. IO22
  26. IO23
  27. IO24
  28. IO25
  29. IO26
  30. IO27
  31. IO28
  32. IO29
  33. IO30
  34. IO31
  35. IO32
  36. IO33
  37. IO34
  38. IO35
  39. GND
  40. VCCIO1
  41. TCK
  42. TMS
  43. TDI
  44. TDO
  45. GND
  46. VCCIO2
  47. IO36
  48. IO37
  49. IO38
  50. IO39
  51. IO40
  52. IO41
  53. IO42
  54. IO43
  55. IO44
  56. IO45
  57. IO46
  58. IO47
  59. IO48
  60. IO49
  61. IO50
  62. IO51
  63. IO52
  64. IO53
  65. IO54
  66. IO55
  67. IO56
  68. IO57
  69. IO58
  70. IO59
  71. IO60
  72. IO61
  73. IO62
  74. IO63
  75. IO64
  76. IO65
  77. IO66
  78. IO67
  79. IO68
  80. IO69
  81. IO70
  82. IO71
  83. GND
  84. VCCIO3

Functional Features

  • High-speed data processing and logic operations
  • Flexible input/output configurations for versatile circuit design
  • Efficient utilization of programmable logic elements
  • Support for various digital logic standards
  • On-chip memory for storing configuration data
  • Built-in security features to protect intellectual property

Advantages and Disadvantages

Advantages: - High-performance PLD suitable for complex digital circuit design - Versatile input/output configurations offer flexibility in application - Low power consumption for energy-efficient operation - Reliable performance in a wide temperature range - Advanced security features protect designs from unauthorized access

Disadvantages: - Limited number of pins may restrict the complexity of certain designs - Initial learning curve required to effectively utilize the PLD's capabilities - Higher cost compared to simpler logic devices

Working Principles

The EPF8636ALC84-3 operates based on the principles of programmable logic. It consists of an array of programmable logic elements interconnected through configurable routing resources. The device can be programmed to implement various logical functions, such as AND, OR, XOR, and more. The configuration data is stored in on-chip memory, allowing the PLD to retain its functionality even after power cycles.

Detailed Application Field Plans

The EPF8636ALC84-3 finds applications in a wide range of fields, including: 1. Telecommunications 2. Industrial automation

기술 솔루션에 EPF8636ALC84-3 적용과 관련된 10가지 일반적인 질문과 답변을 나열하세요.

Sure! Here are 10 common questions and answers related to the application of EPF8636ALC84-3 in technical solutions:

1. What is EPF8636ALC84-3? EPF8636ALC84-3 is a specific model of Field-Programmable Gate Array (FPGA) manufactured by Intel. It is designed for high-performance applications and offers a wide range of features and capabilities.

2. What are the key features of EPF8636ALC84-3? Some key features of EPF8636ALC84-3 include 36,000 logic elements, 1,152 embedded memory blocks, 504 multipliers, and support for various I/O standards.

3. What are the typical applications of EPF8636ALC84-3? EPF8636ALC84-3 can be used in a variety of applications such as telecommunications, industrial automation, automotive electronics, medical devices, and aerospace systems.

4. How does EPF8636ALC84-3 differ from other FPGA models? EPF8636ALC84-3 has its own unique set of specifications and capabilities that differentiate it from other FPGA models. It is important to review the datasheet or technical documentation for detailed comparisons.

5. What programming languages can be used with EPF8636ALC84-3? EPF8636ALC84-3 can be programmed using Hardware Description Languages (HDLs) such as VHDL or Verilog. Intel also provides software tools like Quartus Prime to facilitate the design and programming process.

6. Can EPF8636ALC84-3 be reprogrammed after deployment? Yes, EPF8636ALC84-3 is a field-programmable device, which means it can be reprogrammed even after it has been deployed in a system. This flexibility allows for iterative design improvements and updates.

7. What are the power requirements for EPF8636ALC84-3? The power requirements for EPF8636ALC84-3 can vary depending on the specific application and configuration. It is important to refer to the datasheet or technical documentation for detailed power specifications.

8. How does EPF8636ALC84-3 handle I/O interfaces? EPF8636ALC84-3 supports various I/O standards such as LVCMOS, LVTTL, SSTL, HSTL, and LVDS. The specific I/O voltage levels and configurations can be defined during the design process.

9. Can EPF8636ALC84-3 interface with other components or devices? Yes, EPF8636ALC84-3 can interface with other components or devices through its I/O pins. It can communicate with external memory, sensors, communication modules, and other peripherals based on the system requirements.

10. Are there any limitations or considerations when using EPF8636ALC84-3? While EPF8636ALC84-3 offers high-performance capabilities, it is important to consider factors such as power consumption, thermal management, and signal integrity during the design process. Additionally, proper testing and verification procedures should be followed to ensure reliable operation.