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30KPA150E3/TR13

30KPA150E3/TR13

Product Overview

  • Category: Electronic Component
  • Use: Surge Protection
  • Characteristics: High surge capability, low clamping voltage, compact size
  • Package: SOD-123FL
  • Packaging/Quantity: Tape & Reel, 3000 units per reel

Specifications

  • Peak Pulse Power: 30kW
  • Standoff Voltage: 150V
  • Breakdown Voltage: 167V to 185V
  • Clamping Voltage: 243V at 50A
  • Operating Temperature Range: -55°C to +175°C

Detailed Pin Configuration

The 30KPA150E3/TR13 is a unidirectional TVS diode with the following pin configuration: - Pin 1: Anode - Pin 2: Cathode

Functional Features

  • Provides protection against transient voltage events
  • Fast response time
  • Low leakage current
  • RoHS compliant

Advantages and Disadvantages

Advantages: - High surge capability - Low clamping voltage - Compact size

Disadvantages: - Limited breakdown voltage options - Sensitive to overvoltage conditions

Working Principles

The 30KPA150E3/TR13 operates by diverting excess voltage away from sensitive electronic components during transient voltage events. When the voltage exceeds the breakdown voltage, the diode conducts and clamps the voltage to a safe level, protecting downstream circuitry.

Detailed Application Field Plans

This product is commonly used in various applications such as: - Power supplies - Telecommunication equipment - Industrial control systems - Automotive electronics

Detailed and Complete Alternative Models

Some alternative models to consider are: - 30KPA Series (e.g., 30KPA150CA) - P6KE Series (e.g., P6KE150A) - SMBJ Series (e.g., SMBJ150CA)

In conclusion, the 30KPA150E3/TR13 is a reliable surge protection component with high surge capability and low clamping voltage, making it suitable for a wide range of electronic applications.

Word Count: 298

기술 솔루션에 30KPA150E3/TR13 적용과 관련된 10가지 일반적인 질문과 답변을 나열하세요.

  1. What is the application of 30KPA150E3/TR13?

    • The 30KPA150E3/TR13 is commonly used for transient voltage suppression in various electronic circuits to protect sensitive components from voltage spikes.
  2. How does the 30KPA150E3/TR13 work in technical solutions?

    • This component works by diverting excessive voltage away from sensitive equipment, preventing damage due to transient voltage events.
  3. What are the typical operating parameters for 30KPA150E3/TR13?

    • The 30KPA150E3/TR13 typically operates at a maximum peak pulse power of 30000W and has a clamping voltage of 243V at 100A.
  4. In what type of technical solutions is 30KPA150E3/TR13 commonly used?

    • It is commonly used in power supplies, industrial equipment, automotive electronics, and telecommunications systems to protect against voltage transients.
  5. What are the key features of 30KPA150E3/TR13 that make it suitable for technical solutions?

    • Its high surge capability, low clamping voltage, and fast response time make it ideal for protecting sensitive electronic components.
  6. Are there any specific design considerations when using 30KPA150E3/TR13 in technical solutions?

    • Designers should consider the PCB layout, thermal management, and proper selection of mounting techniques to ensure optimal performance.
  7. What are the environmental considerations for 30KPA150E3/TR13 in technical solutions?

    • This component is designed to meet environmental standards and can withstand a wide range of operating temperatures, making it suitable for various applications.
  8. Can 30KPA150E3/TR13 be used in conjunction with other protective devices?

    • Yes, it can be used in combination with other protective devices such as fuses, varistors, or gas discharge tubes to provide comprehensive protection.
  9. What are the potential failure modes of 30KPA150E3/TR13 in technical solutions?

    • Common failure modes include thermal runaway, degradation of clamping voltage, and mechanical damage due to excessive stress.
  10. How can the performance of 30KPA150E3/TR13 be tested in technical solutions?

    • Performance can be evaluated using surge testing, transient voltage suppression testing, and monitoring its response to voltage spikes in the application circuit.