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CDSOD323-T24C-DSLQ

CDSOD323-T24C-DSLQ

Product Overview

Category

The CDSOD323-T24C-DSLQ belongs to the category of transient voltage suppressor diodes.

Use

It is used for protecting sensitive electronics from voltage transients induced by lightning, inductive load switching, and electrostatic discharge (ESD).

Characteristics

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

Package

The CDSOD323-T24C-DSLQ is available in a surface mount package.

Essence

The essence of this product lies in its ability to provide robust protection against voltage transients, ensuring the reliability of electronic systems.

Packaging/Quantity

The CDSOD323-T24C-DSLQ is typically packaged in reels with a quantity varying based on customer requirements.

Specifications

  • Peak Pulse Power: 400W
  • Breakdown Voltage Range: 24V
  • Operating Temperature Range: -55°C to +150°C
  • Reverse Standoff Voltage: 20.5V
  • Maximum Clamping Voltage: 35V

Detailed Pin Configuration

The CDSOD323-T24C-DSLQ has three pins: 1. Anode 2. Cathode 3. No Connection (NC)

Functional Features

  • Bi-directional protection
  • Low leakage current
  • High reliability

Advantages and Disadvantages

Advantages

  • Fast response time protects sensitive components
  • High surge current capability ensures robust protection
  • RoHS compliance aligns with environmental regulations

Disadvantages

  • Limited breakdown voltage range compared to some alternative models
  • May require additional circuitry for overvoltage protection in high-energy environments

Working Principles

The CDSOD323-T24C-DSLQ operates by diverting excessive current away from sensitive components when a voltage transient occurs. This is achieved through the rapid conduction of the diode, which effectively clamps the voltage to a safe level.

Detailed Application Field Plans

The CDSOD323-T24C-DSLQ is widely used in various applications, including: - Consumer electronics - Telecommunication equipment - Industrial automation systems - Automotive electronics

Detailed and Complete Alternative Models

Some alternative models to the CDSOD323-T24C-DSLQ include: - CDSOD323-T12C-DSLQ - CDSOD323-T36C-DSLQ - CDSOD323-T48C-DSLQ

In summary, the CDSOD323-T24C-DSLQ transient voltage suppressor diode offers reliable protection against voltage transients, making it an essential component in safeguarding sensitive electronics across diverse industries.

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Seznam 10 běžných otázek a odpovědí souvisejících s aplikací CDSOD323-T24C-DSLQ v technických řešeních

  1. What is the operating temperature range of CDSOD323-T24C-DSLQ?

    • The operating temperature range of CDSOD323-T24C-DSLQ is -55°C to +125°C.
  2. What is the maximum clamping voltage of CDSOD323-T24C-DSLQ?

    • The maximum clamping voltage of CDSOD323-T24C-DSLQ is 38V.
  3. What is the peak pulse current capability of CDSOD323-T24C-DSLQ?

    • The peak pulse current capability of CDSOD323-T24C-DSLQ is 10A.
  4. What is the breakdown voltage of CDSOD323-T24C-DSLQ?

    • The breakdown voltage of CDSOD323-T24C-DSLQ is 24V.
  5. What are the typical applications for CDSOD323-T24C-DSLQ?

    • CDSOD323-T24C-DSLQ is commonly used in surge protection for data lines, telecommunications equipment, and industrial control systems.
  6. What is the package type of CDSOD323-T24C-DSLQ?

    • CDSOD323-T24C-DSLQ comes in a SOD-323 package.
  7. Is CDSOD323-T24C-DSLQ RoHS compliant?

    • Yes, CDSOD323-T24C-DSLQ is RoHS compliant.
  8. What is the capacitance of CDSOD323-T24C-DSLQ?

    • The capacitance of CDSOD323-T24C-DSLQ is typically 30pF.
  9. Does CDSOD323-T24C-DSLQ require any external components for proper operation?

    • No, CDSOD323-T24C-DSLQ does not require any external components for proper operation.
  10. What are the recommended layout and placement guidelines for CDSOD323-T24C-DSLQ?

    • It is recommended to place CDSOD323-T24C-DSLQ as close as possible to the protected I/O port and to minimize the length of the traces connecting it to the circuitry. Additionally, a ground plane should be used for optimal performance.