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74HCT4060D-Q100,11

74HCT4060D-Q100,11

Basic Information Overview

  • Category: Integrated Circuit (IC)
  • Use: Binary Counter/Divider
  • Characteristics: High-speed operation, low power consumption, wide operating voltage range
  • Package: SOIC (Small Outline Integrated Circuit)
  • Essence: 14-stage ripple-carry binary counter/divider and oscillator
  • Packaging/Quantity: Tape and Reel, 2500 units per reel

Specifications

  • Supply Voltage Range: 2 V to 6 V
  • Operating Temperature Range: -40°C to +125°C
  • Input Capacitance: 3.5 pF
  • Output Current: ±4 mA
  • Logic Family: HCT

Detailed Pin Configuration

  1. MR (Master Reset)
  2. CP (Clock Pulse)
  3. Q12 (Output 12)
  4. Q13 (Output 13)
  5. Q14 (Output 14)
  6. Q15 (Output 15)
  7. Q16 (Output 16)
  8. GND (Ground)
  9. Q11 (Output 11)
  10. Q10 (Output 10)
  11. Q9 (Output 9)
  12. Q8 (Output 8)
  13. VCC (Supply Voltage)
  14. Q7 (Output 7)

Functional Features

  • Ripple-carry binary counter/divider with an integrated oscillator
  • Can be used as a frequency divider or timer
  • Provides 14-stage binary counting sequence
  • Oscillator frequency can be controlled by external components
  • Reset function allows synchronization of multiple devices

Advantages

  • High-speed operation enables efficient counting and dividing tasks
  • Low power consumption makes it suitable for battery-powered applications
  • Wide operating voltage range provides flexibility in various systems
  • Compact SOIC package allows for easy integration into circuit boards

Disadvantages

  • Limited number of output stages (up to 14)
  • May require additional external components for specific applications

Working Principles

The 74HCT4060D-Q100,11 is a binary counter/divider IC that utilizes a ripple-carry architecture. It consists of 14 flip-flops connected in a binary sequence. The device also includes an integrated oscillator, which generates clock pulses for counting or dividing purposes. The oscillator frequency can be adjusted by external resistors and capacitors.

When the CP (Clock Pulse) input receives a rising edge, the counter advances by one stage. The outputs (Q7-Q16) represent the binary count value. The MR (Master Reset) input allows resetting the counter to its initial state. This feature enables synchronization of multiple devices.

Detailed Application Field Plans

The 74HCT4060D-Q100,11 finds applications in various fields, including: 1. Frequency Division: Used as a frequency divider in communication systems, digital clocks, and frequency synthesizers. 2. Timer Circuits: Employed in timer circuits for controlling time intervals in industrial automation, appliances, and lighting systems. 3. Oscillator Control: Utilized to generate precise clock signals for microcontrollers, digital signal processors, and data communication devices. 4. Event Sequencing: Applied in event sequencing circuits for sequential control in robotics, automotive systems, and process control.

Detailed and Complete Alternative Models

Some alternative models to the 74HCT4060D-Q100,11 include: - CD4060BE: Similar 14-stage ripple-carry binary counter/divider with an oscillator, available in DIP package. - MC14060B: Binary counter/divider IC with 12-stage ripple-carry architecture, offered in SOIC package. - HEF4060BT: High-speed CMOS counter/divider IC with 14-stage ripple-carry design, available in SOT109-1 package.

(Note: The above alternatives are provided as examples and may have different specifications and pin configurations.)

In conclusion, the 74HCT4060D-Q100,11 is a versatile binary counter/divider IC with an integrated oscillator. Its high-speed operation, low power consumption, and wide operating voltage range make it suitable for various applications. With its compact package and functional features, it offers advantages in terms of efficiency and flexibility. However, it has limitations in terms of the number of output stages and may require additional external components for specific applications.

10 domande e risposte comuni relative all'applicazione di 74HCT4060D-Q100,11 nelle soluzioni tecniche

Sure! Here are 10 common questions and answers related to the application of 74HCT4060D-Q100,11 in technical solutions:

  1. Q: What is the purpose of the 74HCT4060D-Q100,11? A: The 74HCT4060D-Q100,11 is a high-speed CMOS ripple-carry binary counter/divider with an integrated oscillator. It can be used for various timing and frequency division applications.

  2. Q: What is the maximum operating voltage for the 74HCT4060D-Q100,11? A: The maximum operating voltage for the 74HCT4060D-Q100,11 is 5.5V.

  3. Q: How many stages does the 74HCT4060D-Q100,11 have? A: The 74HCT4060D-Q100,11 has 14 stages.

  4. Q: Can the 74HCT4060D-Q100,11 be used as a frequency divider? A: Yes, the 74HCT4060D-Q100,11 can be used as a frequency divider by connecting the input signal to the appropriate stage output.

  5. Q: What is the typical power consumption of the 74HCT4060D-Q100,11? A: The typical power consumption of the 74HCT4060D-Q100,11 is low, making it suitable for battery-powered applications.

  6. Q: Does the 74HCT4060D-Q100,11 have an integrated oscillator? A: Yes, the 74HCT4060D-Q100,11 has an integrated oscillator that can be used to generate clock signals.

  7. Q: Can the 74HCT4060D-Q100,11 be cascaded to increase the number of stages? A: Yes, multiple 74HCT4060D-Q100,11 ICs can be cascaded to increase the number of stages and achieve higher division ratios.

  8. Q: What is the maximum clock frequency for the 74HCT4060D-Q100,11? A: The maximum clock frequency for the 74HCT4060D-Q100,11 is typically around 25 MHz.

  9. Q: Can the 74HCT4060D-Q100,11 be used in both digital and analog applications? A: The 74HCT4060D-Q100,11 is primarily designed for digital applications but can also be used in some analog applications like frequency measurement.

  10. Q: Are there any specific precautions to consider when using the 74HCT4060D-Q100,11? A: It is important to ensure proper decoupling and power supply bypassing to minimize noise and voltage fluctuations. Additionally, care should be taken to avoid exceeding the maximum operating voltage and clock frequency limits.

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