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SFH 310 FA

SFH 310 FA

Product Overview

The SFH 310 FA belongs to the category of optoelectronic devices and is commonly used as an infrared emitter. It possesses unique characteristics that make it suitable for various applications. The package of SFH 310 FA includes essential components such as the emitter, packaging/quantity, and other relevant features.

Basic Information

  • Category: Optoelectronic Device
  • Use: Infrared Emitter
  • Characteristics: High efficiency, compact size, reliable performance
  • Package: Standard optoelectronic device package
  • Essence: Infrared emission
  • Packaging/Quantity: Typically available in reels or trays

Specifications

The SFH 310 FA has the following specifications: - Wavelength: 950 nm - Forward Current: 100 mA - Forward Voltage: 1.2 V - Power Dissipation: 120 mW - Viewing Angle: 60 degrees

Detailed Pin Configuration

The SFH 310 FA has a standard pin configuration with three pins: 1. Anode (+) 2. Cathode (-) 3. No Connection (NC)

Functional Features

The SFH 310 FA offers the following functional features: - High efficiency in infrared emission - Compact size for easy integration into various systems - Reliable performance under specified operating conditions

Advantages and Disadvantages

Advantages

  • High efficiency
  • Compact size
  • Reliable performance

Disadvantages

  • Limited viewing angle
  • Sensitive to reverse voltage

Working Principles

The SFH 310 FA operates based on the principle of electroluminescence, where electrical current causes the semiconductor material to emit infrared radiation. When forward biased, the device emits infrared light at a wavelength of 950 nm.

Detailed Application Field Plans

The SFH 310 FA finds extensive application in various fields, including: - Proximity sensors - Optical encoders - Industrial automation - Consumer electronics

Detailed and Complete Alternative Models

Some alternative models to SFH 310 FA include: - SFH 313 FA - SFH 315 FA - TSUS5400

In conclusion, the SFH 310 FA is a versatile optoelectronic device with specific characteristics and functional features that make it suitable for a wide range of applications. Its compact size, high efficiency, and reliable performance contribute to its popularity in the industry.

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Liste 10 almindelige spørgsmål og svar relateret til anvendelsen af SFH 310 FA i tekniske løsninger

  1. What is SFH 310 FA?

    • SFH 310 FA is a high-performance infrared LED emitter designed for applications such as proximity sensors, presence detection, and gesture recognition.
  2. What is the typical operating voltage of SFH 310 FA?

    • The typical operating voltage of SFH 310 FA is around 1.35V.
  3. What is the maximum forward current for SFH 310 FA?

    • The maximum forward current for SFH 310 FA is typically 100mA.
  4. What is the typical radiant intensity of SFH 310 FA?

    • The typical radiant intensity of SFH 310 FA is around 18mW/sr.
  5. Can SFH 310 FA be used in automotive applications?

    • Yes, SFH 310 FA is suitable for automotive applications such as driver monitoring systems and occupancy detection.
  6. What is the recommended operating temperature range for SFH 310 FA?

    • The recommended operating temperature range for SFH 310 FA is -40°C to +110°C.
  7. Does SFH 310 FA require any external optics for its application?

    • Yes, SFH 310 FA may require external optics depending on the specific application requirements.
  8. Is SFH 310 FA compatible with standard surface mount technology (SMT) processes?

    • Yes, SFH 310 FA is compatible with standard SMT processes, making it suitable for high-volume production.
  9. What are the key advantages of using SFH 310 FA in technical solutions?

    • Some key advantages of SFH 310 FA include its high radiant intensity, compact size, and reliable performance in various sensing applications.
  10. Are there any specific design considerations when integrating SFH 310 FA into a technical solution?

    • Design considerations may include optimizing the placement of SFH 310 FA for effective sensing, ensuring proper thermal management, and selecting appropriate drive circuitry for reliable operation.