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74HC595N
+BOMIC 8-BIT SHIFT REGISTER DIP-16
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Nhà sản xuấtTAEJIN
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Ông. Phần #74HC595N
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Bảng dữ liệu 74HC595N DataSheet
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Có sẵn5221
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Thông số kỹ thuật
| thuộc tính | Giá trị |
| Series | 74HC |
| PartStatus | Active |
| LogicType | Shift Register |
| OutputType | Tri-State |
| NumberofElements | 1 |
| NumberofBitsperElement | 8 |
| Function | Serial to Parallel, Serial |
| Voltage-Supply | 2V ~ 6V |
| OperatingTemperature | -55°C ~ 125°C |
| MountingType | Through Hole |
| Package/Case | 16-DIP (0.300", 7.62mm) |
| SupplierDevicePackage | 16-DIP |
Tổng quan
Description
Key features include:
- Serial Data Input (DS): Allows data to be input serially, one bit at a time.
- Shift Register Clock Input (SHCP): Triggers the data to shift by one position.
- Storage Register Clock Input (STCP): Transfers the shifted data to the storage register.
- Output Enable (OE): Controls the activation of the output pins, enabling or disabling their states.
- Three-State Outputs (Q0-Q7): Provide the parallel data outputs.
By cascading multiple 74HC595N chips, you can extend the number of outputs to control even more components. This makes it ideal for applications like LED displays, signal routing, and digital data storage, where controlling numerous outputs efficiently is required.
Equivalent
Features
1. 8-bit Shift Register: Converts serial data input to parallel output.
2. Storage Register: Latches data to ensure stable output.
3. Three-State Outputs: Allows multiple outputs to be connected to a common bus.
4. High-Speed CMOS Technology: Offers high performance and low power consumption.
5. Wide Operating Voltage: Typically between 2V to 6V.
6. Serial and Parallel Interface: Facilitates easy cascading of multiple 74HC595N chips for increased output capability.
7. Clock and Latch Pins: Separate clock and latch inputs for precise data timing and control.
8. Compact Package: Available in DIP, making it easy to handle and solder for DIY and professional projects.
9. High Noise Immunity: Ensures reliable operation in noisy environments.
The 74HC595N is commonly used in applications requiring LED displays, data storage in remote sensing, and interface expansion for microcontrollers.
Pinout
1. Q1-Q7 (Pins 15, 1-7): Parallel data output pins for the stored bits.
2. Q0 (Pin 15): Parallel data output for the first bit.
3. VCC (Pin 16): Power supply pin (typically +5V).
4. GND (Pin 8): Ground pin.
5. SER (Pin 14): Serial data input pin.
6. SRCLK (Pin 11): Shift register clock input; data is shifted on rising edge.
7. RCLK (Pin 12): Register clock input (latch pin); data is transferred to output on rising edge.
8. OE (Pin 13): Output enable; active-low, enables output pins.
9. MR (Pin 10): Master reset; active-low, clears shift register when low.
The 74HC595N is commonly used for driving LEDs, displays, and other devices requiring multiple outputs in microcontroller projects. It allows serial-to-parallel conversion and is utilized for expanding the number of digital outputs.
Manufacturer
NXP Semiconductors is a Dutch global semiconductor manufacturer that provides various solutions for automotive, industrial, mobile, and communication infrastructure markets. Texas Instruments, based in the United States, is a well-known company that designs and manufactures semiconductors for a wide array of electronic applications, including analog and embedded processing. ON Semiconductor, now called onsemi, is an American company that focuses on intelligent technology for a variety of sectors, including automotive, industrial, and consumer electronics.
These companies are leaders in the semiconductor industry and are known for producing reliable and high-performance components used in a multitude of electronic devices and systems worldwide. Each of these manufacturers adheres to international standards, ensuring that their products, like the 74HC595N, are widely compatible and used in various electronics projects and applications.
Application
1. LED Displays: Driving multiple LEDs or LED matrices with limited I/O pins.
2. LCD Displays: Controlling segments of LCDs efficiently.
3. Relay Control: Managing multiple relays from a single microcontroller.
4. Data Acquisition: Expanding the number of inputs/outputs for sensors.
5. Digital Circuit Design: Prototyping and educational purposes to demonstrate serial-to-parallel conversion.
6. Signal Processing: Used in systems requiring digital data manipulation.
It's valued for its simple interfacing and expandability.