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SN65LVDS050DR
+StücklisteIC TRANSCEIVER FULL 2/2 16SOIC
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HerstellerTexas Instruments
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Herstellerteil #SN65LVDS050DR
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Datenblatt SN65LVDS050DR DataSheet
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Auf Lager8423
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Spezifikationen
| Attribut | Wert |
| Series | 65LVDS |
| Part Status | Active |
| Type | Transceiver |
| Protocol | LVDS |
| Number of Drivers/Receivers | 2/2 |
| Duplex | Full |
| Data Rate | 100Mbps |
| Voltage - Supply | 3V ~ 3.6V |
| Operating Temperature | -40°C ~ 85°C |
| Mounting Type | Surface Mount |
| Package / Case | 16-SOIC (0.154", 3.90mm Width) |
| Supplier Device Package | 16-SOIC |
| Base Product Number | 65LVDS050 |
Übersicht
Description
The SN65LVDS050DR offers features like low power dissipation, typically around 40 mW, and operates over a wide common-mode voltage range. It is also designed to provide high noise immunity and low electromagnetic interference (EMI), characteristics that are key for maintaining signal integrity over long cable runs.
The device comes in a small-outline package, making it suitable for compact designs. It can be used in point-to-point or multidrop configurations and is compatible with the TIA/EIA-644 LVDS standard. Overall, it offers a reliable and efficient solution for high-speed data communication needs.
Equivalent
1. MAX9120 by Maxim Integrated
2. DS90LV031A by Texas Instruments
3. ADN4663 by Analog Devices
4. MC100LVEP16 by ON Semiconductor
These chips offer similar functionalities in terms of LVDS signaling and can be considered as alternatives depending on specific application requirements and availability. Always verify pin compatibility and performance characteristics before substituting.
Features
1. Low Voltage Differential Signaling (LVDS): It uses LVDS technology for low power consumption and minimal electromagnetic interference.
2. Data Rate: Capable of supporting data rates up to 400 Mbps.
3. Supply Voltage: Operates with a supply voltage ranging from 3.0 V to 3.6 V.
4. Power Consumption: Offers low power consumption, typically around 60 mW.
5. Propagation Delay: Provides a typical propagation delay of 1.7 ns.
6. Output Voltage: Generates a typical output differential voltage of 350 mV.
7. Temperature Range: Operates over an industrial temperature range from -40°C to 85°C.
8. Package: Available in an 8-pin SOIC (Small Outline Integrated Circuit) package.
9. Applications: Suitable for use in high-speed data transmission applications such as telecommunications, networking, and other digital communication systems.
These features make it ideal for applications requiring high-speed data transfer with low power requirements.
Pinout
1. VCC (Pin 1): Power supply pin.
2. D1 (Pin 2): Data input for channel 1.
3. D2 (Pin 3): Data input for channel 2.
4. EN (Pin 4): Enable pin. When high, it enables the driver.
5. Y1 (Pin 5): Non-inverting output for channel 1.
6. Z1 (Pin 6): Inverting output for channel 1.
7. Y2 (Pin 7): Non-inverting output for channel 2.
8. Z2 (Pin 8): Inverting output for channel 2.
The device is designed for high-speed data transmission with low power consumption and is typically used in applications requiring high-speed data communication, such as telecommunications and data networking.
Manufacturer
Application
1. Communication Systems: Facilitates high-speed data transfer over twisted-pair cables in telecommunications.
2. Data Acquisition Systems: Ensures reliable data transmission in industrial and commercial automation.
3. Computer Peripherals: Used in interfaces like USB and SATA where high-speed data transfer is crucial.
4. Consumer Electronics: Supports video and audio transmission in devices requiring efficient data handling.
5. Networking Equipment: Employed in routers and switches for efficient data routing.
6. Medical Imaging: Transfers high-resolution images with minimal signal degradation.
These applications benefit from its low-voltage differential signaling (LVDS) capability, enhancing data integrity and speed.