Images à titre indicatif uniquement
SN65LVDS33PWR
+NomenclatureIC TRANSCEIVER 0/4 16TSSOP
-
FabricantTexas Instruments
-
Pièce fabricant #SN65LVDS33PWR
-
Fiche technique SN65LVDS33PWR DataSheet
-
En stock9880
365 Garantie qualité 24h/24
7*24 Garantie de service 24h/24
90-Garantie après-vente 24h/24
Garantie produit authentique
Spécifications
| Attribut | Valeur |
| Series | 65LVDS |
| Part Status | Active |
| Type | Receiver |
| Protocol | LVDS |
| Number of Drivers/Receivers | 0/4 |
| Receiver Hysteresis | 50 mV |
| Data Rate | 400Mbps |
| Voltage - Supply | 3V ~ 3.6V |
| Operating Temperature | -40°C ~ 85°C |
| Mounting Type | Surface Mount |
| Package / Case | 16-TSSOP (0.173", 4.40mm Width) |
| Supplier Device Package | 16-TSSOP |
| Base Product Number | 65LVDS33 |
Présentation
Description
Key features of the SN65LVDS33PWR include its ability to support data rates up to 400 Mbps, a wide common-mode voltage range, and a fail-safe circuit that ensures a stable output when the input is open, undriven, or shorted. It is packaged in a TSSOP-8, which provides a compact form factor for space-constrained designs.
This receiver is typically used in telecommunications, data communications, and consumer electronics to interface between LVDS signals and devices that use LVCMOS logic levels. It is ideal for applications that require reliable high-speed data transfer, such as in video displays, network routers, and various digital interfaces.
Equivalent
1. DS90LV032A by Texas Instruments - Quad LVDS differential line receiver.
2. MC100LVELT23 by ON Semiconductor - Dual LVDS differential line receiver.
3. FIN1104 by ON Semiconductor - Low voltage quad receiver.
These equivalents offer similar functionalities and packaging, but always compare datasheets for specific performance parameters and compatibility.
Features
1. Data Rate: Supports high-speed data transmission up to 400 Mbps.
2. Supply Voltage: Operates within a voltage range of 3.0V to 3.6V.
3. Low Power Consumption: Offers low power dissipation, suitable for power-sensitive applications.
4. Input Range: Accepts a wide differential input voltage range, enhancing signal integrity.
5. Termination: Features integrated 100-ohm termination for signal matching.
6. Temperature Range: Operates efficiently over a wide temperature range from -40°C to +85°C.
7. Package Type: Comes in a TSSOP (Thin Shrink Small Outline Package) with 16 pins, promoting compact design.
8. Compliance: Meets LVDS standards, ensuring compatibility with other LVDS-compliant devices.
9. Jitter Performance: Delivers low jitter, important for maintaining signal accuracy in high-speed data transmission.
10. Applications: Ideal for use in communication systems, data acquisition, and high-speed networking equipment.
These features make the SN65LVDS33PWR suitable for high-speed data transmission in various industrial and communication applications.
Pinout
Pin Count:
- Total Pins: 14
Key Functions:
- The device is primarily used for converting LVDS signals to LVCMOS levels.
- It supports high-speed data transmission, typically used in applications that require minimal power consumption and reduced electromagnetic interference (EMI).
- The receiver operates with a supply voltage range from 3.0 V to 3.6 V.
- It is capable of handling data rates up to 400 Mbps.
Pin Configuration:
- The pin configuration typically includes differential input pairs (LVDS), output pins (LVCMOS), power supply (VCC), and ground (GND).
- Exact pin functions, such as which specific pins correspond to inputs, outputs, and power, can be confirmed in the device's datasheet provided by Texas Instruments.
For detailed pin assignments and electrical characteristics, refer to the SN65LVDS33PWR datasheet available on the manufacturer's website.
Manufacturer
Application
1. Data Communication Interfaces: Used in high-speed communication links such as routers, switches, and base stations.
2. Consumer Electronics: Suitable for use in devices like TVs and cameras for video data transfer.
3. Automotive Systems: Employed in infotainment systems and advanced driver-assistance systems (ADAS).
4. Industrial Automation: Utilized in factory automation for reliable data transfer.
5. Medical Imaging Equipment: Ensures high-speed data transfer with reduced noise.
These applications benefit from the device's efficiency, low noise, and high data integrity.