画像は参考用です
SN75175NSR
+BOMIC TRANSCEIVER 0/4 16SO
-
メーカーSTマイクロエレクトロニクス
-
メーカー品番 #SN75175NSR
-
在庫状況8826
365 日間品質保証
7*24 日間の品質保証
90-時間単位のサービス保証
1日間のアフターサービス保証
仕様
| 属性 | 値 |
| Part Status | Active |
| Type | Receiver |
| Protocol | RS422, RS423, RS485 |
| Number of Drivers/Receivers | 0/4 |
| Receiver Hysteresis | 50 mV |
| Voltage - Supply | 4.75V ~ 5.25V |
| Operating Temperature | 0°C ~ 70°C |
| Mounting Type | Surface Mount |
| Package / Case | 16-SOIC (0.209", 5.30mm Width) |
| Supplier Device Package | 16-SO |
| Base Product Number | 75175 |
概要
Description
Key features of the SN75175NSR include its ability to handle high-speed data transmission, high input impedance, and wide common-mode voltage range. This makes it suitable for industrial, commercial, and consumer applications that require robust and reliable data communication over long distances. It operates over a wide temperature range, making it versatile for various environments.
The SN75175NSR comes in a small-outline package (SOP) which is advantageous for space-constrained applications. The device also includes built-in protection features against short circuits and excessive power consumption, enhancing its reliability and lifespan. Overall, it is a widely used component for efficient and reliable data communication in various electronic systems.
Equivalent
1. DS75176BN - A similar quad differential line receiver with similar specifications.
2. MAX485 - A low-power transceiver for RS-485 and RS-422 communication.
3. AM26LS32 - A quad differential line receiver with similar functionality.
4. MC3486 - Another quad differential line receiver equivalent.
When selecting an equivalent, check the specific application needs, such as voltage levels and operating temperature range.
Features
1. Four Independent Receivers: It contains four separate receivers, each able to handle differential signals.
2. Wide Supply Voltage Range: Operates over a voltage range of 4.75 V to 5.25 V.
3. High Input Impedance: Ensures minimal loading on connected lines.
4. Built-In Hysteresis: Provides noise margin for differential inputs, improving noise immunity.
5. Open-Collector Outputs: Allows for wired-OR connection, useful in bus systems.
6. Common-Mode Input Voltage Range: Supports a wide range from -7 V to +12 V, accommodating large ground shifts.
7. TTL-Compatible Outputs: Outputs are compatible with TTL logic levels.
8. Thermal Protection: Equipped with thermal shutdown to prevent damage from overheating.
9. Low Power Consumption: Efficient operation reduces overall power usage.
10. Robust Construction: Designed to withstand harsh environments, making it suitable for industrial applications.
These features make the SN75175NSR well-suited for data communication applications requiring reliable and efficient differential signal processing.
Pinout
Here is a brief overview of its pin configuration and function:
1. Pins 1, 7, 9, 15: Ground (GND) - Common ground for the IC.
2. Pins 2, 6, 10, 14: Non-inverting Inputs (A) - Positive input terminals for the differential line signals.
3. Pins 3, 5, 11, 13: Inverting Inputs (B) - Negative input terminals for the differential line signals.
4. Pins 4, 12: Enable (EN) - Active low enable pins for the receivers.
5. Pins 8, 16: Power Supply (VCC) - Positive power supply for the IC.
6. Pins 2, 6, 10, 14 (Repeated): Output (Y) - Output terminals for the received data.
The SN75175NSR is designed to convert differential input signals into TTL-compatible output levels, allowing for effective data transmission over long distances.
Manufacturer
Application
1. Industrial Automation: Utilized in communication protocols for factory automation and control systems.
2. Data Communication: Used in RS-422 and RS-485 communication interfaces for networking and data transmission applications.
3. Telecommunications: Employed in telephone line receivers and network equipment.
4. Embedded Systems: Integrated into microcontroller-based systems for interfacing with serial communication devices.
5. Instrumentation: Used in data acquisition systems for receiving sensor data over long distances.
Its robust design and high noise immunity make it ideal for environments requiring reliable data transmission over differential signaling.