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AM26LV31IDR
+StücklisteIC DRIVER 4/0 16SOIC
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HerstellerTexas Instruments
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Herstellerteil #AM26LV31IDR
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Paket SOIC (D)-16
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Auf Lager3059
365 Tage Qualitätsgarantie
7*24 Stunden-Servicegarantie
90-Tage Kundendienstgarantie
Originalproduktgarantie
Spezifikationen
| Attribut | Wert |
| Package | Tape & Reel (TR),Cut Tape (CT) |
| ProductStatus | Active |
| Type | Driver |
| Protocol | RS422, RS485 |
| NumberofDrivers/Receivers | 4/0 |
| Voltage-Supply | 3V ~ 3.6V |
| OperatingTemperature | -40°C ~ 85°C |
| MountingType | Surface Mount |
| Package/Case | 16-SOIC (0.154, 3.90mm Width) |
Übersicht
Description
Key features include a wide supply voltage range, low power dissipation, and high output drive capability, making it suitable for interfacing with TTL, CMOS, and other logic families. The device comprises four independent drivers, each capable of driving a differential load, which improves data throughput and reduces electromagnetic interference.
The AM26LV31IDR is typically used in applications such as industrial control systems, telecommunications, and computer networking, where reliable data transfer is critical. Its small footprint and surface-mount packaging make it suitable for space-constrained designs, and it operates over an extended temperature range, ensuring robustness in various environmental conditions.
Equivalent
1. SN65LBC174D by Texas Instruments
2. DS26LV31T by Texas Instruments
3. MAX1488 by Maxim Integrated
4. LTC485 by Analog Devices
These alternatives offer similar functionalities, including low power consumption, wide supply voltage range, and compatibility with RS-422 standards. However, it's important to check specific specifications and pin configurations before selecting a replacement.
Features
1. Low Voltage Operation: It operates on a single 3.3V power supply, making it suitable for low-voltage applications.
2. High-Speed Performance: The device supports data rates up to 32 Mbps, catering to high-speed data transmission needs.
3. Low Power Consumption: It features low power dissipation, ideal for battery-operated and energy-efficient systems.
4. Tri-State Outputs: The outputs can be disabled to a high-impedance state, allowing for bus sharing and reducing power consumption during inactive states.
5. Wide Common-Mode Range: This ensures compatibility with various receiver types and enhances noise immunity.
6. Short-Circuit Protection: The device includes short-circuit protection to prevent damage from unexpected electrical faults.
7. Thermal Shutdown: Built-in thermal shutdown protects the device from overheating.
8. Extended Temperature Range: It operates over an extended temperature range, making it suitable for industrial applications.
These features make the AM26LV31IDR well-suited for applications requiring reliable and efficient differential signaling.
Pinout
Here are the key details:
- Pin Count: 16 pins
- Function: The AM26LV31IDR is used to send digital signals over long distances by converting single-ended digital input signals into differential output signals. This enhances noise immunity, making it suitable for high-speed data transmission.
Key features include high-speed performance, low power consumption due to operation from a single 3.3V supply, and the ability to drive long bus lines with large capacitive loads. It also features thermal shutdown and current limiting for enhanced reliability in various applications.
Manufacturer
Application
1. Communication Systems: Used for data transfer in telecommunications and networking equipment.
2. Industrial Automation: Facilitates reliable data communication in factory automation and control systems.
3. Data Acquisition: Implements high-speed data transmission in data logging and acquisition systems.
4. Computer Peripherals: Enhances interface performance in printers, scanners, and external storage devices.
5. Consumer Electronics: Supports high-speed connectivity in audiovisual devices.
6. Instrumentation: Ensures stable data communication in measurement and test equipment.
Its low-voltage differential signaling supports robust performance over long distances with low power consumption.