P1300ECLAP Allicdata Electronics
Allicdata Part #:

P1300ECLAP-ND

Manufacturer Part#:

P1300ECLAP

Price: $ 0.41
Product Category:

Circuit Protection

Manufacturer: Littelfuse Inc.
Short Description: SIDACTOR BI 120V 400A TO-92
More Detail: N/A
DataSheet: P1300ECLAP datasheetP1300ECLAP Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
2000 +: $ 0.37044
Stock 1000Can Ship Immediately
$ 0.41
Specifications
Series: SIDACtor®
Packaging: Tape & Box (TB) 
Lead Free Status / RoHS Status: --
Part Status: Active
Moisture Sensitivity Level (MSL): --
Voltage - Breakover: 160V
Voltage - Off State: 120V
Voltage - On State: 4V
Current - Peak Pulse (8/20µs): 400A
Current - Peak Pulse (10/1000µs): 100A
Current - Hold (Ih): 150mA
Number of Elements: 1
Capacitance: 105pF
Mounting Type: Through Hole
Package / Case: TO-226-2, TO-92-2 (TO-226AC) (Formed Leads)
Description

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TVS – Thyristors: P1300ECLAP Application Field and Working Principle

Thyristors are semiconductor devices that are used in various applications and industries. A thyristor, also known as a thyristor surge protector or a thyristor switch, is a type of solid-state switch that is typically used to switch large amounts of electricity with high efficiency and low losses. The P1300ECLAP is a type of thyristor and is a surge protection device that is designed to protect electronic equipment from overvoltages. In this article, we discuss the application field and working principle of the P1300ECLAP thyristor.

Application Field of the P1300ECLAP Thyristor

The P1300ECLAP thyristor is an ideal choice for high power applications such as industrial plants, vehicles, ships, and electric networks. It offers complete surge protection for high voltage systems up to 690V and helps prevent potential damage to sensitive electronic circuits caused by power surges. It can also be used in solar energy applications, where it acts as an overvoltage protection device to prevent power surges that can affect solar inverters and other solar panels.

The thyristor also has applications in telecommunication networks, where it is used to protect devices from power surges that can affect call quality, data transmission, and other functions. It is typically used in combination with a protection relay to ensure that the system is robust and reliable. Furthermore, this surge protection device is used in aerospace applications, where it prevents power surges caused by extreme operating conditions.

Working Principle of the P1300ECLAP

The P1300ECLAP thyristor consists of three terminals—anode, cathode, and gate. The anode is the input terminal and is connected to the system\'s power supply. The cathode is the output terminal and is connected to the device that needs to be protected. The gate terminal is used for controlling the flow of current between the anode and cathode terminals. The thyristor also has an integrated diode that helps protect the device from reverse-voltage damage.

When the anode receives an increase in voltage, it triggers the thyristor and an electric arc is established between the anode and the cathode. This current is then regulated by the gate terminal, which can be used to increase or decrease the thyristor\'s current. The P1300ECLAP thyristor also has a reverse-current protection feature, which protects it from reverse-voltage spikes.

Moreover, the thyristor\'s integrated diode helps protect the device from reverse-voltage damage. The diode is connected between the anode and cathode and prevents reverse-voltage spikes from affecting the device\'s operation. The diode can detect a reverse-voltage spike and will turn the device off, preventing any damage from occurring.

Conclusion

In conclusion, the P1300ECLAP thyristor is an ideal choice for high power applications due to its robustness and protection features. It can be used in various industries such as industrial plants, vehicles, ships, and electric networks. Furthermore, its integrated diode helps protect the device from reverse-voltage damage. Finally, the gate terminal can be used for controlling the current between the anode and cathode terminals, allowing for accurate and efficient operation.

The specific data is subject to PDF, and the above content is for reference

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