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1.5SMC8.2AHE3/57T

1.5SMC8.2AHE3/57T Product Overview

Introduction

The 1.5SMC8.2AHE3/57T belongs to the category of TVS (Transient Voltage Suppressor) diodes and is designed for use in surge protection applications. This entry provides a comprehensive overview of the product, including its basic information, specifications, pin configuration, functional features, advantages and disadvantages, working principles, application field plans, and alternative models.

Basic Information Overview

  • Category: TVS Diode
  • Use: Surge Protection
  • Characteristics: High surge capability, low clamping voltage
  • Package: DO-214AB (SMC)
  • Essence: Provides transient voltage suppression for electronic circuits
  • Packaging/Quantity: Tape & Reel, 3000 units per reel

Specifications

  • Part Number: 1.5SMC8.2AHE3/57T
  • Voltage - Reverse Standoff (Typ): 7.37V
  • Voltage - Breakdown (Min): 8.2V
  • Voltage - Clamping (Max) @ Ipp: 14.4V
  • Current - Peak Pulse (10/1000µs): 45.5A
  • Power - Peak Pulse: 1500W
  • Operating Temperature: -55°C to 150°C

Detailed Pin Configuration

The 1.5SMC8.2AHE3/57T TVS diode has two pins: 1. Anode (A) 2. Cathode (K)

Functional Features

  • Provides protection against transient voltage events
  • Fast response time
  • Low clamping voltage
  • High surge current capability

Advantages and Disadvantages

Advantages

  • Effective surge protection
  • Fast reaction to transient voltage spikes
  • Compact SMC package
  • Wide operating temperature range

Disadvantages

  • May require additional circuitry for comprehensive overvoltage protection

Working Principles

The 1.5SMC8.2AHE3/57T operates by diverting excess current away from sensitive electronic components during transient voltage events. When a surge occurs, the diode rapidly conducts, clamping the voltage to a safe level and protecting downstream circuitry.

Detailed Application Field Plans

The 1.5SMC8.2AHE3/57T is commonly used in various applications, including: - Power supplies - Telecommunication equipment - Industrial control systems - Automotive electronics - Consumer electronics

Detailed and Complete Alternative Models

Some alternative models to the 1.5SMC8.2AHE3/57T include: - P6SMB8.2A - SMBJ8.2A - 1.5KE8.2A

In conclusion, the 1.5SMC8.2AHE3/57T TVS diode offers effective surge protection with its high surge capability and low clamping voltage. Its compact SMC package and wide operating temperature range make it suitable for various applications across different industries.

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技術ソリューションにおける 1.5SMC8.2AHE3/57T の適用に関連する 10 件の一般的な質問と回答をリストします。

  1. What is the maximum peak pulse current for 1.5SMC8.2AHE3/57T?

    • The maximum peak pulse current for 1.5SMC8.2AHE3/57T is typically 50A.
  2. What is the breakdown voltage of 1.5SMC8.2AHE3/57T?

    • The breakdown voltage of 1.5SMC8.2AHE3/57T is 9.2V.
  3. What are the typical applications for 1.5SMC8.2AHE3/57T?

    • 1.5SMC8.2AHE3/57T is commonly used in surge protection applications for electronic equipment, telecommunications, and automotive systems.
  4. What is the clamping voltage of 1.5SMC8.2AHE3/57T?

    • The clamping voltage of 1.5SMC8.2AHE3/57T is typically 14.4V.
  5. What is the operating temperature range for 1.5SMC8.2AHE3/57T?

    • The operating temperature range for 1.5SMC8.2AHE3/57T is -55°C to +150°C.
  6. Is 1.5SMC8.2AHE3/57T RoHS compliant?

    • Yes, 1.5SMC8.2AHE3/57T is RoHS compliant.
  7. What is the package type for 1.5SMC8.2AHE3/57T?

    • 1.5SMC8.2AHE3/57T is available in a DO-214AB (SMC) package.
  8. What are the key features of 1.5SMC8.2AHE3/57T?

    • Some key features of 1.5SMC8.2AHE3/57T include low incremental surge resistance, fast response time, and high reliability.
  9. What are the recommended soldering conditions for 1.5SMC8.2AHE3/57T?

    • The recommended soldering conditions for 1.5SMC8.2AHE3/57T include a peak temperature of 260°C for 10 seconds.
  10. What are the potential failure modes for 1.5SMC8.2AHE3/57T and how can they be mitigated?

    • Potential failure modes for 1.5SMC8.2AHE3/57T include excessive current causing thermal damage. This can be mitigated by ensuring proper current limiting and heat dissipation measures are in place.