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CD4013BPWRE4

CD4013BPWRE4

Product Overview

  • Category: Integrated Circuit (IC)
  • Use: Flip-Flop
  • Characteristics: Dual D-Type Positive Edge-Triggered Flip-Flop
  • Package: TSSOP (Thin Shrink Small Outline Package)
  • Essence: Digital Logic IC
  • Packaging/Quantity: Tape and Reel, 2500 pieces per reel

Specifications

The CD4013BPWRE4 is a dual D-type positive edge-triggered flip-flop integrated circuit. It operates on a wide voltage range of 3V to 18V, making it suitable for various digital logic applications. The flip-flop has two independent data inputs (D0 and D1), each with its own clock input (CLK0 and CLK1). The outputs (Q0 and Q1) provide the complement of the input data at the rising edge of the clock signal.

Detailed Pin Configuration

The CD4013BPWRE4 has a total of 14 pins, which are assigned specific functions as follows:

  • Pin 1: Data Input D0
  • Pin 2: Clock Input CLK0
  • Pin 3: Set/Reset Input (active low) S/R0
  • Pin 4: Output Q0
  • Pin 5: Output Complement /Q0
  • Pin 6: Ground (GND)
  • Pin 7: Output Complement /Q1
  • Pin 8: Output Q1
  • Pin 9: Set/Reset Input (active low) S/R1
  • Pin 10: Clock Input CLK1
  • Pin 11: Data Input D1
  • Pin 12: VDD (Positive Power Supply)
  • Pin 13: No Connection (NC)
  • Pin 14: No Connection (NC)

Functional Features

The CD4013BPWRE4 offers several functional features that make it a versatile flip-flop IC. Some of its key features include:

  1. Dual D-Type Flip-Flop: The IC contains two independent flip-flops, allowing for simultaneous operation and data storage.

  2. Positive Edge-Triggered: The flip-flop triggers on the rising edge of the clock signal, ensuring accurate timing and synchronization.

  3. Set/Reset Inputs: The IC provides set/reset inputs for each flip-flop, allowing for easy initialization and control of the outputs.

  4. Wide Voltage Range: The CD4013BPWRE4 operates on a wide voltage range of 3V to 18V, making it compatible with various digital systems.

Advantages and Disadvantages

Advantages: - Dual flip-flop design allows for efficient use of space and resources. - Positive edge-triggering ensures precise timing and synchronization. - Set/reset inputs provide flexibility in controlling the outputs. - Wide voltage range compatibility enhances versatility.

Disadvantages: - Limited number of flip-flops per IC (dual flip-flop). - Requires external components for complete functionality in certain applications. - Sensitive to noise and voltage fluctuations.

Working Principles

The CD4013BPWRE4 operates based on the principles of positive edge-triggered flip-flops. When the clock input receives a rising edge, the state of the data input is captured and stored in the flip-flop. The output then reflects the stored data until the next rising edge occurs. The set/reset inputs allow for manual control of the output states, overriding the stored data.

Detailed Application Field Plans

The CD4013BPWRE4 finds applications in various digital systems where flip-flops are required. Some potential application fields include:

  1. Sequential Logic Circuits: The flip-flop can be used to store and manipulate binary information in sequential logic circuits such as counters and shift registers.

  2. Data Storage and Transfer: The IC can be utilized in memory systems to store and transfer data between different stages or modules.

  3. Clock Synchronization: The positive edge-triggered feature makes it suitable for synchronizing signals in clock distribution networks.

  4. Control Systems: The flip-flop can be employed in control systems to store and update control signals based on specific conditions.

Detailed and Complete Alternative Models

  1. CD4013BE: DIP (Dual Inline Package) version of the CD4013BPWRE4.
  2. MC74HC74AN: Dual D-Type Flip-Flop IC with similar functionality.
  3. SN74LS74AN: Dual Positive-Edge Triggered D-Type Flip-Flop IC with complementary outputs.

These alternative models offer similar functionality and can be used as substitutes for the CD4013BPWRE4 in various applications.

In conclusion, the CD4013BPWRE4 is a dual D-type positive edge-triggered flip-flop IC that finds applications in sequential logic circuits, data storage systems, clock synchronization, and control systems. Its functional features, wide voltage range compatibility, and compact package

Liste 10 almindelige spørgsmål og svar relateret til anvendelsen af CD4013BPWRE4 i tekniske løsninger

Sure! Here are 10 common questions and answers related to the application of CD4013BPWRE4 in technical solutions:

  1. Q: What is CD4013BPWRE4? A: CD4013BPWRE4 is a dual D-type flip-flop integrated circuit (IC) that can be used in various digital logic applications.

  2. Q: What is the operating voltage range for CD4013BPWRE4? A: CD4013BPWRE4 operates within a voltage range of 3V to 18V.

  3. Q: How many flip-flops are there in CD4013BPWRE4? A: CD4013BPWRE4 contains two independent D-type flip-flops.

  4. Q: What is the maximum clock frequency supported by CD4013BPWRE4? A: CD4013BPWRE4 can support clock frequencies up to 20 MHz.

  5. Q: Can CD4013BPWRE4 operate in both rising and falling edge-triggered modes? A: Yes, CD4013BPWRE4 can be configured to operate in either rising or falling edge-triggered mode.

  6. Q: What is the typical propagation delay of CD4013BPWRE4? A: The typical propagation delay of CD4013BPWRE4 is around 30 ns.

  7. Q: Can CD4013BPWRE4 be used in battery-powered applications? A: Yes, CD4013BPWRE4 can be used in battery-powered applications as it has a low power consumption.

  8. Q: Does CD4013BPWRE4 have any built-in protection features? A: CD4013BPWRE4 has built-in diode clamps to protect against electrostatic discharge (ESD) and other voltage spikes.

  9. Q: Can CD4013BPWRE4 be cascaded to create larger flip-flop configurations? A: Yes, multiple CD4013BPWRE4 ICs can be cascaded together to create larger flip-flop configurations.

  10. Q: What are some common applications of CD4013BPWRE4? A: CD4013BPWRE4 is commonly used in applications such as counters, registers, shift registers, frequency dividers, and data storage circuits.

Please note that these answers are general and may vary depending on specific use cases and requirements.