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15KPA48ATR

15KPA48ATR

Product Overview

Category

The 15KPA48ATR belongs to the category of transient voltage suppressor (TVS) diodes.

Use

It is used to protect sensitive electronic components from voltage transients induced by lightning, electrostatic discharge (ESD), and other transient voltage events.

Characteristics

  • High surge capability
  • Low clamping voltage
  • Fast response time
  • RoHS compliant

Package

The 15KPA48ATR is available in a DO-201AD package.

Essence

This TVS diode provides robust protection against transient voltage events, ensuring the reliability and longevity of electronic circuits.

Packaging/Quantity

The 15KPA48ATR is typically packaged in reels with a quantity of 500 units per reel.

Specifications

  • Peak Pulse Power: 15,000 W
  • Standoff Voltage: 48 V
  • Breakdown Voltage: 53.3 V
  • Maximum Clamping Voltage: 77.4 V
  • Operating Temperature Range: -55°C to +175°C

Detailed Pin Configuration

The 15KPA48ATR TVS diode has a standard two-pin configuration, with anode and cathode terminals.

Functional Features

  • High power handling capability
  • Bi-directional protection
  • Low leakage current
  • Excellent clamping performance

Advantages

  • Provides effective protection against transient voltage events
  • High surge capability ensures durability
  • Wide operating temperature range for versatile applications

Disadvantages

  • Relatively large package size compared to some alternative models
  • Higher clamping voltage compared to some specialized TVS diodes

Working Principles

When a transient voltage event occurs, the 15KPA48ATR TVS diode rapidly conducts, diverting the excess energy away from the protected circuit. This action limits the voltage across the circuit, preventing damage to sensitive components.

Detailed Application Field Plans

The 15KPA48ATR is commonly used in: - Power supply units - Communication equipment - Industrial control systems - Automotive electronics - Consumer electronics

Detailed and Complete Alternative Models

Some alternative TVS diode models to consider include: - 5KP48A - P6KE48A - SMAJ48A - SMCJ48A

In summary, the 15KPA48ATR is a high-performance TVS diode that offers robust transient voltage protection for a wide range of electronic applications.

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Liste 10 almindelige spørgsmål og svar relateret til anvendelsen af 15KPA48ATR i tekniske løsninger

  1. What is 15KPA48ATR?

    • 15KPA48ATR is a transient voltage suppressor diode designed to protect sensitive electronics from voltage spikes and transients.
  2. What is the maximum clamping voltage of 15KPA48ATR?

    • The maximum clamping voltage of 15KPA48ATR is 77.4V at 10A.
  3. What are the typical applications of 15KPA48ATR?

    • 15KPA48ATR is commonly used in power supplies, automotive electronics, industrial equipment, and telecommunications equipment to protect against voltage surges.
  4. What is the peak pulse power of 15KPA48ATR?

    • The peak pulse power of 15KPA48ATR is 1500W for an 8/20μs waveform.
  5. What is the operating temperature range of 15KPA48ATR?

    • 15KPA48ATR has an operating temperature range of -55°C to +175°C.
  6. How does 15KPA48ATR provide protection against voltage transients?

    • 15KPA48ATR suppresses voltage transients by diverting excess current away from sensitive components and limiting the voltage across them.
  7. Is 15KPA48ATR RoHS compliant?

    • Yes, 15KPA48ATR is RoHS compliant, making it suitable for use in environmentally sensitive applications.
  8. Can 15KPA48ATR be used in high-speed data lines?

    • Yes, 15KPA48ATR can be used in high-speed data lines to protect against electrostatic discharge (ESD) and other transient events.
  9. What package type is 15KPA48ATR available in?

    • 15KPA48ATR is available in a DO-201AD (DO-27) package, which is a popular choice for transient voltage suppressor diodes.
  10. Are there any recommended layout considerations when using 15KPA48ATR in a circuit?

    • It is recommended to minimize the length of the traces between the protected component and the 15KPA48ATR to reduce the inductance and maximize its effectiveness in suppressing transients.