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SA64CAHE3/73

SA64CAHE3/73

Product Overview

SA64CAHE3/73 belongs to the category of semiconductor devices and is specifically a transient voltage suppressor diode. It is commonly used for protecting sensitive electronics from voltage transients induced by lightning, inductive load switching, and electrostatic discharge. The characteristics of SA64CAHE3/73 include its low clamping voltage, fast response time, and high surge capability. It is typically packaged in a small surface-mount package and is available in various quantities.

Specifications

  • Voltage Rating: 64V
  • Peak Pulse Power: 400W
  • Package Type: DO-214AC (SMA)
  • Operating Temperature Range: -55°C to +150°C
  • Polarity: Unidirectional

Detailed Pin Configuration

SA64CAHE3/73 has two pins, with the anode connected to one pin and the cathode connected to the other. The pinout configuration follows the standard for the DO-214AC package.

Functional Features

  • Transient Voltage Suppression: Provides protection against voltage spikes and transients.
  • Fast Response Time: Quickly clamps the transient voltage to protect downstream components.
  • Low Clamping Voltage: Ensures minimal impact on the protected circuit during transient events.

Advantages and Disadvantages

Advantages

  • Effective protection against voltage transients
  • Fast response time
  • Small form factor

Disadvantages

  • Limited power dissipation capability
  • Unidirectional protection only

Working Principles

SA64CAHE3/73 operates by diverting excess current away from sensitive components when a voltage transient occurs. When the voltage exceeds the diode's breakdown voltage, it begins to conduct, effectively clamping the voltage to a safe level and protecting the downstream circuitry.

Detailed Application Field Plans

SA64CAHE3/73 is widely used in various electronic systems, including: - Telecommunication equipment - Automotive electronics - Industrial control systems - Consumer electronics

Detailed and Complete Alternative Models

Some alternative models to SA64CAHE3/73 include: - SA5.0A - SA6.0A - SA78A - SA100A

In conclusion, SA64CAHE3/73 is a crucial component in safeguarding electronic circuits from voltage transients, offering fast and reliable protection in a compact package.

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技術ソリューションにおける SA64CAHE3/73 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 SA64CAHE3/73?

    • SA64CAHE3/73 is a Schottky diode rectifier with a maximum repetitive reverse voltage of 40V and a forward current of 6A.
  2. What are the typical applications of SA64CAHE3/73?

    • SA64CAHE3/73 is commonly used in power supplies, converters, and other electronic circuits where low forward voltage drop and fast switching are required.
  3. What is the maximum forward voltage drop of SA64CAHE3/73?

    • The maximum forward voltage drop at 6A for SA64CAHE3/73 is typically around 0.55V.
  4. What is the reverse leakage current of SA64CAHE3/73?

    • The reverse leakage current at the maximum reverse voltage of 40V is typically less than 500µA for SA64CAHE3/73.
  5. Can SA64CAHE3/73 be used in high-frequency applications?

    • Yes, SA64CAHE3/73 is suitable for high-frequency applications due to its fast switching characteristics.
  6. What is the operating temperature range of SA64CAHE3/73?

    • SA64CAHE3/73 can operate within a temperature range of -65°C to +125°C.
  7. Does SA64CAHE3/73 require a heat sink for certain applications?

    • Depending on the application and power dissipation, a heat sink may be recommended to ensure optimal performance and reliability.
  8. Is SA64CAHE3/73 RoHS compliant?

    • Yes, SA64CAHE3/73 is compliant with the Restriction of Hazardous Substances (RoHS) directive.
  9. What package type is SA64CAHE3/73 available in?

    • SA64CAHE3/73 is available in a DO-214AC (SMA) package.
  10. Are there any specific layout considerations when using SA64CAHE3/73 in a circuit?

    • It is important to minimize the length of the traces between SA64CAHE3/73 and other components to reduce parasitic inductance and ensure proper performance. Additionally, proper thermal management should be considered for high-power applications.