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SS496A

SS496A: Product Overview and Specifications

Introduction

SS496A is a Hall-effect sensor that belongs to the category of magnetic sensors. It is widely used in various applications due to its unique characteristics and reliable performance. This entry provides an overview of the basic information, specifications, pin configuration, functional features, advantages and disadvantages, working principles, application field plans, and alternative models of SS496A.

Basic Information Overview

  • Category: Magnetic Sensor
  • Use: Detection of magnetic fields
  • Characteristics: High sensitivity, low power consumption, compact size
  • Package: SOT-23 surface mount package
  • Essence: Hall-effect sensor
  • Packaging/Quantity: Available in tape and reel packaging, quantity varies based on supplier

Specifications

  • Operating Voltage: 3.8V to 30V
  • Output Current: 6mA
  • Operating Temperature: -40°C to 150°C
  • Output Type: Digital Open Collector
  • Sensitivity: 30G (typical)
  • Response Time: 5µs (typical)

Detailed Pin Configuration

The SS496A sensor has three pins: 1. VCC (Power supply) 2. GND (Ground) 3. OUT (Digital output)

Functional Features

  • High sensitivity to magnetic fields
  • Reverse polarity protection
  • Wide operating voltage range
  • Fast response time
  • Low power consumption

Advantages and Disadvantages

Advantages

  • Reliable detection of magnetic fields
  • Suitable for harsh environments
  • Compact and easy to integrate
  • Low power consumption

Disadvantages

  • Limited sensitivity range
  • Susceptible to electromagnetic interference

Working Principles

SS496A operates based on the Hall effect, where a voltage difference is generated across a conductor when subjected to a magnetic field. This voltage is then amplified and converted into a digital output signal, indicating the presence or absence of a magnetic field.

Detailed Application Field Plans

SS496A is commonly used in the following applications: - Proximity sensing - Position detection in automotive systems - Brushless DC motor control - Current sensing in power supplies - Speed detection in industrial equipment

Detailed and Complete Alternative Models

Some alternative models to SS496A include: - SS495A: Lower sensitivity, suitable for broader magnetic field ranges - SS497A: Higher sensitivity, ideal for precise magnetic field detection - A1324: Analog output Hall-effect sensor with adjustable sensitivity

In conclusion, SS496A is a versatile Hall-effect sensor with high sensitivity and reliable performance, making it suitable for various magnetic field detection applications.

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10个与SS496A在技术解决方案中的应用相关的常见问题及解答

  1. What is SS496A?

    • SS496A is a Hall effect sensor that can detect the presence of a magnetic field.
  2. How does SS496A work?

    • The SS496A operates based on the Hall effect, where a voltage is generated across the sensor in response to a magnetic field.
  3. What are the typical applications of SS496A?

    • SS496A is commonly used in position sensing, speed detection, and current sensing applications.
  4. What is the operating voltage range for SS496A?

    • The typical operating voltage range for SS496A is 4.5V to 10.5V.
  5. What is the output type of SS496A?

    • SS496A provides a digital output signal, typically in the form of a square wave.
  6. What is the sensitivity of SS496A?

    • The sensitivity of SS496A is typically specified in millivolts per gauss (mV/G).
  7. Can SS496A be used in automotive applications?

    • Yes, SS496A is suitable for automotive applications such as gear position sensing and wheel speed detection.
  8. What is the temperature range for SS496A?

    • The operating temperature range for SS496A is typically -40°C to 125°C.
  9. Does SS496A require external components for operation?

    • SS496A may require additional components such as resistors and capacitors for proper operation in a specific application.
  10. Is SS496A sensitive to environmental interference?

    • SS496A may be affected by stray magnetic fields and should be shielded or positioned carefully to minimize interference.