画像はイメージの場合もございます。
商品詳細は仕様をご覧ください。
1.5KE12CA-T Product Overview
Introduction
The 1.5KE12CA-T belongs to the category of transient voltage suppressor diodes (TVS diodes). These diodes are widely used in electronic circuits to protect sensitive components from voltage spikes and transients. The 1.5KE12CA-T is specifically designed to provide robust protection against transient overvoltage conditions.
Basic Information Overview
- Category: Transient Voltage Suppressor Diode
- Use: Protection against voltage spikes and transients
- Characteristics: High surge capability, fast response time, low clamping voltage
- Package: DO-201AD (DO-27)
- Essence: Safeguarding sensitive electronic components
- Packaging/Quantity: Available in reels or bulk packaging, quantity varies by supplier
Specifications
- Voltage - Reverse Standoff (Typ): 10.5V
- Voltage - Breakdown (Min): 11.7V
- Voltage - Clamping (Max) @ Ipp: 19.9V
- Current - Peak Pulse (10/1000µs): 64.5A
- Power - Peak Pulse: 1500W
- Operating Temperature: -55°C to 175°C
Detailed Pin Configuration
The 1.5KE12CA-T TVS diode typically features a two-pin configuration with anode and cathode terminals. The physical layout and pin assignment can be referenced from the datasheet provided by the manufacturer.
Functional Features
- Transient Voltage Suppression: Effectively clamps transient overvoltages to protect downstream components.
- Fast Response Time: Rapid reaction to voltage spikes ensures minimal impact on the protected circuitry.
- High Surge Capability: Capable of withstanding high surge currents without degradation.
Advantages and Disadvantages
Advantages
- Robust protection against voltage transients
- Fast response time
- Wide operating temperature range
Disadvantages
- May exhibit leakage current at lower voltages
- Requires careful consideration of placement within the circuit to ensure optimal performance
Working Principles
The 1.5KE12CA-T operates based on the principle of avalanche breakdown. When a transient voltage spike occurs, the diode rapidly conducts, diverting excess current away from the sensitive components. This action effectively limits the voltage across the protected circuit.
Detailed Application Field Plans
The 1.5KE12CA-T is commonly employed in various applications including:
- Power supply units
- Communication equipment
- Automotive electronics
- Industrial control systems
- Consumer electronics
Detailed and Complete Alternative Models
- 1.5KE6.8CA-T
- 1.5KE15CA-T
- 1.5KE18CA-T
- 1.5KE24CA-T
- 1.5KE33CA-T
In conclusion, the 1.5KE12CA-T transient voltage suppressor diode offers reliable protection against transient overvoltage events, making it an essential component in numerous electronic applications.
Word Count: 410
技術ソリューションにおける 1.5KE12CA-T 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。
What is the maximum peak pulse power of 1.5KE12CA-T?
- The maximum peak pulse power of 1.5KE12CA-T is 1500 watts for a 10/1000μs waveform.
What is the breakdown voltage of 1.5KE12CA-T?
- The breakdown voltage of 1.5KE12CA-T is 10.5 volts.
What are the typical applications of 1.5KE12CA-T?
- Typical applications of 1.5KE12CA-T include transient voltage suppression in electronic equipment, automotive systems, and industrial machinery.
What is the clamping voltage of 1.5KE12CA-T?
- The clamping voltage of 1.5KE12CA-T is 14.3 volts at 19.9A.
What is the operating temperature range of 1.5KE12CA-T?
- The operating temperature range of 1.5KE12CA-T is -55°C to +175°C.
What is the peak pulse current capability of 1.5KE12CA-T?
- The peak pulse current capability of 1.5KE12CA-T is 198.4A for an 8/20μs waveform.
Does 1.5KE12CA-T meet RoHS compliance?
- Yes, 1.5KE12CA-T is compliant with the Restriction of Hazardous Substances (RoHS) directive.
What is the package type of 1.5KE12CA-T?
- 1.5KE12CA-T is available in a DO-201 package.
Is 1.5KE12CA-T suitable for surge protection in power supplies?
- Yes, 1.5KE12CA-T is suitable for surge protection in power supplies and can effectively suppress transients.
What is the response time of 1.5KE12CA-T?
- The response time of 1.5KE12CA-T is typically less than 1.0 nanosecond.