74LVT245Low Voltage Octal Bidirectional Transceiver with 3-STATE Inputs/Outputs | |||
| Partnumber | Manufacturer | Quantity | Availability |
|---|---|---|---|
| 74LVT245 | 30 | In Stock | |
Description and Introduction
Low Voltage Octal Bidirectional Transceiver with 3-STATE Inputs/Outputs The 74LVT245 is a high-performance, low-voltage, 8-bit transceiver manufactured by various semiconductor companies, including Texas Instruments and NXP Semiconductors. Here are the key specifications:
- **Technology**: CMOS These specifications are typical for the 74LVT245 series, but exact values may vary slightly depending on the manufacturer and specific part number. Always refer to the datasheet for precise details. |
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Application Scenarios & Design Considerations
Low Voltage Octal Bidirectional Transceiver with 3-STATE Inputs/Outputs# 74LVT245 Octal Bus Transceiver Technical Documentation
## 1. Application Scenarios ### Typical Use Cases  Data Bus Buffering   Voltage Level Translation   Bus Isolation and Driving  ### Industry Applications  Computing Systems   Telecommunications   Industrial Automation   Automotive Electronics  ### Practical Advantages and Limitations  Advantages:   Limitations:  ## 2. Design Considerations ### Common Design Pitfalls and Solutions  Power Supply Decoupling   Direction Control Timing   Mixed-Voltage Interface  ### Compatibility Issues  Voltage Level Compatibility   Timing Constraints   Temperature Considerations  ### PCB Layout Recommendations  Power Distribution  |
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| Partnumber | Manufacturer | Quantity | Availability |
| 74LVT245 | PHI | 78 | In Stock |
Description and Introduction
Low Voltage Octal Bidirectional Transceiver with 3-STATE Inputs/Outputs The 74LVT245 is a transceiver manufactured by Philips Semiconductors (PHI). It is an octal bus transceiver with 3-state outputs, designed for low-voltage (3.3V) applications. The device features non-inverting bidirectional data flow and is compatible with TTL levels. It supports live insertion and power-off protection, making it suitable for hot-swapping applications. The 74LVT245 operates over a temperature range of -40°C to +85°C and is available in various package types, including TSSOP and SOIC. It has a typical propagation delay of 3.5 ns and a maximum supply current of 10 µA in standby mode. The device is RoHS compliant.
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Application Scenarios & Design Considerations
Low Voltage Octal Bidirectional Transceiver with 3-STATE Inputs/Outputs# Technical Documentation: 74LVT245 Octal Bus Transceiver
## 1. Application Scenarios ### Typical Use Cases  Data Bus Buffering and Isolation   Voltage Level Translation   Bidirectional Data Flow Control  ### Industry Applications  Automotive Electronics   Industrial Control Systems   Telecommunications Equipment   Consumer Electronics  ### Practical Advantages and Limitations  Advantages:   Limitations:  ## 2. Design Considerations ### Common Design Pitfalls and Solutions  Power Supply Sequencing   Simultaneous Switching Noise   Bus Contention   Signal Integrity Issues  ### Compatibility Issues  Mixed-Voltage Systems    |
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| Partnumber | Manufacturer | Quantity | Availability |
| 74LVT245 | FAIRCHILD | 1700 | In Stock |
Description and Introduction
Low Voltage Octal Bidirectional Transceiver with 3-STATE Inputs/Outputs The 74LVT245 is a bus transceiver manufactured by Fairchild Semiconductor. It is a 3.3V CMOS device designed for low-voltage operation. Key specifications include:
- **Logic Family**: LVT (Low Voltage TTL) This device is commonly used in applications requiring bidirectional level shifting and bus interfacing in low-voltage systems. |
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Application Scenarios & Design Considerations
Low Voltage Octal Bidirectional Transceiver with 3-STATE Inputs/Outputs# 74LVT245 Octal Bus Transceiver Technical Documentation
*Manufacturer: FAIRCHILD* ## 1. Application Scenarios ### Typical Use Cases -  Data Bus Buffering : Isolates microprocessor buses from peripheral devices to prevent loading effects and signal degradation ### Industry Applications ### Practical Advantages and Limitations  Advantages:   Limitations:  ## 2. Design Considerations ### Common Design Pitfalls and Solutions  Pitfall 1: Insufficient Decoupling   Pitfall 2: Improper Termination   Pitfall 3: Bus Contention  ### Compatibility Issues with Other Components  Mixed Voltage Systems:   Timing Considerations:  ### PCB Layout Recommendations  Power Distribution:   Signal Integrity:  |
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