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GA1A1S202WP

GA1A1S202WP

Product Overview

Category

The GA1A1S202WP belongs to the category of light sensors.

Use

It is used for detecting ambient light levels and converting them into electrical signals.

Characteristics

  • Sensing range: 3 lux to 70,000 lux
  • Low power consumption
  • Small form factor
  • High sensitivity

Package

The GA1A1S202WP comes in a small surface-mount package.

Essence

The essence of this product lies in its ability to accurately detect light levels and provide corresponding electrical output.

Packaging/Quantity

Typically, the GA1A1S202WP is available in reels containing a specific quantity based on the manufacturer's specifications.

Specifications

  • Operating Voltage: 2.7V to 6V
  • Output Type: Analog voltage
  • Operating Temperature Range: -30°C to 85°C
  • Dimensions: 4.0mm x 2.1mm x 1.1mm

Detailed Pin Configuration

The GA1A1S202WP has four pins: 1. VCC (Power supply) 2. GND (Ground) 3. OUT (Analog output) 4. NC (No connection)

Functional Features

  • Wide sensing range
  • Low power consumption
  • Small form factor
  • Linear response to light intensity

Advantages

  • Accurate light detection
  • Suitable for low-power applications
  • Compact size for easy integration

Disadvantages

  • Limited to ambient light detection only
  • Susceptible to interference from external light sources

Working Principles

The GA1A1S202WP utilizes a photodiode to convert incident light into current, which is then converted into a voltage signal. This voltage signal is proportional to the intensity of the incident light.

Detailed Application Field Plans

The GA1A1S202WP is commonly used in various applications such as: - Ambient light sensing in mobile devices - Automatic brightness adjustment in displays - Daylight harvesting systems in smart buildings - Industrial automation for light-dependent processes

Detailed and Complete Alternative Models

Some alternative models to the GA1A1S202WP include: - BH1750FVI - TSL2561 - OPT3001

In conclusion, the GA1A1S202WP is a versatile light sensor with a wide sensing range and low power consumption, making it suitable for various applications requiring accurate light detection and measurement.

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Seznam 10 běžných otázek a odpovědí souvisejících s aplikací GA1A1S202WP v technických řešeních

  1. What is GA1A1S202WP?

    • GA1A1S202WP is a low-cost analog output ambient light sensor that can be used to detect the intensity of light in the surrounding environment.
  2. How does GA1A1S202WP work?

    • The sensor works by converting the light intensity into an analog voltage output, which can then be read by a microcontroller or other digital device.
  3. What are the typical applications of GA1A1S202WP?

    • Common applications include automatic brightness control for displays, ambient light sensing for smart devices, and light intensity monitoring in industrial equipment.
  4. What is the operating voltage range of GA1A1S202WP?

    • The sensor typically operates within a voltage range of 2.7V to 6V.
  5. What is the spectral response of GA1A1S202WP?

    • The sensor has a peak sensitivity at 540nm, which corresponds to the green region of the visible spectrum.
  6. Can GA1A1S202WP be used in outdoor environments?

    • Yes, it can be used outdoors, but it may require additional protection from environmental factors such as moisture and direct sunlight.
  7. Is GA1A1S202WP suitable for battery-powered devices?

    • Yes, the low power consumption of the sensor makes it suitable for use in battery-powered devices.
  8. What is the resolution of GA1A1S202WP?

    • The sensor has a typical resolution of 10 bits, providing 1024 levels of light intensity detection.
  9. Does GA1A1S202WP require calibration?

    • The sensor may require initial calibration to account for variations in manufacturing, but it generally provides consistent performance once calibrated.
  10. Can GA1A1S202WP be integrated with microcontrollers?

    • Yes, the sensor's analog output can be easily interfaced with microcontrollers through analog-to-digital converters (ADCs) for further processing and control.