The FDR838P is a versatile electronic component that belongs to the category of infrared sensors. This sensor is widely used in various applications due to its unique characteristics and functional features. In this entry, we will provide an overview of the FDR838P, including its basic information, specifications, detailed pin configuration, functional features, advantages and disadvantages, working principles, application field plans, and alternative models.
The FDR838P sensor has the following specifications: - Operating Voltage: 2.7V to 5.5V - Peak Wavelength: 940nm - Spectral Bandwidth: 50nm - Supply Current: 0.7mA - Output Voltage: 0.4V (no IR radiation), 3.0V (IR radiation)
The FDR838P sensor typically has three pins: 1. VCC (Power supply) 2. GND (Ground) 3. OUT (Output signal)
The FDR838P operates based on the principle of detecting infrared radiation emitted by objects. When exposed to IR radiation, the sensor's output voltage changes, allowing it to detect the presence or absence of infrared sources.
The FDR838P sensor finds extensive use in various applications, including: - Proximity sensing in mobile devices and appliances - Object detection in robotics and automation systems - Presence detection in security systems and smart home devices
Some alternative models to the FDR838P sensor include: - FDR837P: Similar specifications with a different package - FDR840P: Higher sensitivity and wider spectral bandwidth - FDR836P: Lower power consumption with slightly reduced sensitivity
In conclusion, the FDR838P infrared sensor offers reliable performance and versatile application possibilities, making it a valuable component in modern electronic devices and systems.
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What is FDR838P?
What are the key properties of FDR838P?
In what technical solutions can FDR838P be used?
How does FDR838P compare to other polymers in terms of performance?
What processing methods are compatible with FDR838P?
Are there any specific design considerations when using FDR838P?
Does FDR838P meet any industry standards or certifications?
Can FDR838P be recycled or reused?
What are the typical operating temperatures for FDR838P-based components?
Are there any limitations or precautions when using FDR838P?