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74LVTH162373ZQLR

74LVTH162373ZQLR

Product Overview

Category

The 74LVTH162373ZQLR belongs to the category of integrated circuits (ICs).

Use

This IC is commonly used for data storage and transfer applications in digital systems.

Characteristics

  • High-speed operation
  • Low power consumption
  • Wide operating voltage range
  • Compatibility with various logic families
  • Output drive capability

Package

The 74LVTH162373ZQLR is available in a small-outline integrated circuit (SOIC) package.

Essence

This IC serves as a transparent latch with 16-bit D-type flip-flops. It provides non-inverting outputs and operates at high speed while consuming low power.

Packaging/Quantity

The 74LVTH162373ZQLR is typically packaged in reels, containing a quantity of 2500 units per reel.

Specifications

  • Supply Voltage: 2.7V to 3.6V
  • Input Voltage: 0V to VCC
  • Output Voltage: 0V to VCC
  • Operating Temperature Range: -40°C to +85°C
  • Logic Family: LVTH

Detailed Pin Configuration

The 74LVTH162373ZQLR has a total of 48 pins, which are distributed as follows:

  • Pin 1: Output Enable (OE)
  • Pins 2-17: Data Inputs (D0-D15)
  • Pins 18-33: Data Outputs (Q0-Q15)
  • Pins 34-41: Flip-Flop Clock Inputs (CLK0-CLK7)
  • Pins 42-45: Latch Enable Inputs (LE0-LE3)
  • Pin 46: GND (Ground)
  • Pin 47: VCC (Supply Voltage)
  • Pin 48: Output Enable (OE)

Functional Features

  • Transparent latch with 16-bit D-type flip-flops
  • Non-inverting outputs
  • High-speed operation
  • Low power consumption
  • Output drive capability for driving heavily loaded bus lines

Advantages and Disadvantages

Advantages

  • High-speed operation allows for efficient data transfer.
  • Low power consumption helps in reducing overall system power requirements.
  • Wide operating voltage range provides flexibility in different applications.
  • Compatibility with various logic families enables easy integration into existing systems.
  • Output drive capability ensures reliable signal transmission even on heavily loaded bus lines.

Disadvantages

  • Limited to 16-bit data storage and transfer, which may not be sufficient for certain applications requiring larger data sizes.
  • The small-outline integrated circuit (SOIC) package may limit the ease of soldering and handling for some users.

Working Principles

The 74LVTH162373ZQLR operates as a transparent latch with 16-bit D-type flip-flops. It allows data to pass through when the latch enable inputs (LE0-LE3) are enabled. The flip-flop clock inputs (CLK0-CLK7) control the storage and transfer of data. The output enable (OE) pin enables or disables the outputs (Q0-Q15). The IC operates at high speed while consuming low power, making it suitable for various digital applications.

Detailed Application Field Plans

The 74LVTH162373ZQLR finds applications in various fields, including:

  1. Data communication systems
  2. Computer peripherals
  3. Industrial automation
  4. Automotive electronics
  5. Consumer electronics

In data communication systems, this IC can be used for buffering and transferring data between different components. In computer peripherals, it can facilitate data storage and transfer within devices such as printers and scanners. In industrial automation, the IC can be utilized for controlling and monitoring processes. In automotive electronics, it can enable data communication between different vehicle systems. Lastly, in consumer electronics, it can be employed for various digital applications requiring data storage and transfer.

Detailed and Complete Alternative Models

  1. 74LVTH162373MTD: Similar to the 74LVTH162373ZQLR, but available in a TSSOP package.
  2. SN74LVTH162373DLR: Another variant of the 74LVTH162373 with a different package option (SSOP).
  3. MC74LVTH162373DG: A comparable IC from a different manufacturer (Motorola) with similar specifications and features.

These alternative models provide similar functionality and can be considered as substitutes for the 74LVTH162373ZQLR depending on specific requirements and availability.

Word count: 615 words

Seznam 10 běžných otázek a odpovědí souvisejících s aplikací 74LVTH162373ZQLR v technických řešeních

Sure! Here are 10 common questions and answers related to the application of 74LVTH162373ZQLR in technical solutions:

  1. Q: What is the 74LVTH162373ZQLR? A: The 74LVTH162373ZQLR is a 16-bit transparent D-type latch with 3-state outputs, designed for low-voltage (LV) operation.

  2. Q: What is the voltage range supported by the 74LVTH162373ZQLR? A: The 74LVTH162373ZQLR supports a wide voltage range from 1.65V to 5.5V.

  3. Q: What is the maximum data transfer rate of the 74LVTH162373ZQLR? A: The 74LVTH162373ZQLR has a maximum data transfer rate of 400Mbps.

  4. Q: Can the 74LVTH162373ZQLR be used in bidirectional data transmission? A: Yes, the 74LVTH162373ZQLR can be used for bidirectional data transmission as it has 3-state outputs.

  5. Q: How many latch enable inputs does the 74LVTH162373ZQLR have? A: The 74LVTH162373ZQLR has two latch enable inputs, namely OE (Output Enable) and LE (Latch Enable).

  6. Q: What is the purpose of the Output Enable (OE) input? A: The OE input controls the output buffers of the 74LVTH162373ZQLR. When OE is high, the outputs are enabled; when OE is low, the outputs are in high-impedance state.

  7. Q: Can the 74LVTH162373ZQLR be cascaded to increase the number of latches? A: Yes, multiple 74LVTH162373ZQLR chips can be cascaded together to increase the number of latches in a system.

  8. Q: What is the typical power consumption of the 74LVTH162373ZQLR? A: The typical power consumption of the 74LVTH162373ZQLR is low, making it suitable for power-sensitive applications.

  9. Q: Can the 74LVTH162373ZQLR tolerate bus contention? A: Yes, the 74LVTH162373ZQLR has built-in bus-hold circuitry that helps to minimize the effects of bus contention.

  10. Q: What are some common applications of the 74LVTH162373ZQLR? A: The 74LVTH162373ZQLR is commonly used in various digital systems, such as data storage, address decoding, and bus interfacing.

Please note that these answers are general and may vary depending on specific design considerations and requirements.