DZ950N36KHPSA1 Allicdata Electronics
Allicdata Part #:

DZ950N36KHPSA1-ND

Manufacturer Part#:

DZ950N36KHPSA1

Price: $ 387.65
Product Category:

Discrete Semiconductor Products

Manufacturer: Infineon Technologies
Short Description: DIODE GEN PURP 3.6KV 950A MODULE
More Detail: Diode Standard 3600V 950A Chassis Mount Module
DataSheet: DZ950N36KHPSA1 datasheetDZ950N36KHPSA1 Datasheet/PDF
Quantity: 1000
1 +: $ 348.88800
Stock 1000Can Ship Immediately
$ 387.65
Specifications
Diode Type: Standard
Voltage - DC Reverse (Vr) (Max): 3600V
Current - Average Rectified (Io): 950A
Voltage - Forward (Vf) (Max) @ If: 1.78V @ 3000A
Speed: Standard Recovery >500ns, > 200mA (Io)
Current - Reverse Leakage @ Vr: 100mA @ 3600V
Capacitance @ Vr, F: --
Mounting Type: Chassis Mount
Package / Case: Module
Supplier Device Package: Module
Operating Temperature - Junction: -40°C ~ 150°C
Series: --
Packaging: Bulk 
Part Status: Active
Description

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Diodes, rectifiers, and single devices play a major role in controlling the amount of direct current (DC) available in a system. The DZ950N36KHPSA1 application field and working principle are one example of how a diode can be used for supply regulation. This diode is a Schottky rectifier offering a low forward voltage of 0.45V, a maximum repetitive peak reverse voltage of 36V and a maximum average rectified current of 9A. In this article, we will examine the working principles of the DZ950N36KHPSA1, as well as its typical applications.

The DZ950N36KHPSA1 is a Schottky diode, which is a particular type of rectifier diode. Schottky diodes are characterized by their low forward voltage and low stored charge — which helps to reduce electrical power losses. A Schottky diode is a semiconductor device composed of two electrodes, the anode and cathode, connected by a rectifying junction. Schottky diodes are built using different types of metal-semiconductor junctions, depending on the application. In the case of the DZ950N36KHPSA1, the metal-semiconductor junction is based on gold–silicon. When forward biased, the gold–silicon junction behaves like a normal PN junction diode - the anode and cathode of current flow in one direction only.

The DZ950N36KHPSA1 rectifier is predominantly used for supply regulation and overvoltage protection. When the diode is forward biased, it will conduct current, allowing the output voltage to remain constant during rapid changes in current. When the diode is reverse biased, it will not conduct current, protecting the circuit from over voltage transients. The DZ950N36KHPSA1 rectifier can also be used for current limiting, as it can help to reduce the voltage to the load on a protection circuit, while avoiding current surges.

The DZ950N36KHPSA1 rectifier can be used in various applications, including high-frequency DC–DC converters; active inrush current limiters; AC–DC rectifiers; and overvoltage protection for AC–DC circuits. Its low forward voltage and low stored charge make it an efficient and reliable solution for these applications. The DZ950N36KHPSA1 is also used in automotive electronics, professional audio, fluorescent lighting ballasts, LED lighting, battery management systems, and many more.

When selecting a Schottky diode, it is important to consider the voltage, current, and power ratings of the device. Other factors to consider are the diode’s operating temperature, reverse recovery time, leakage current, and maximum surge current. The DZ950N36KHPSA1 rectifier diode features a maximum average rectified current of 9A, a maximum repetitive peak reverse voltage of 36V, and a maximum surge current of 15A at 25°C. Additionally, its operating temperature range is -40°C to +150°C.

In conclusion, the DZ950N36KHPSA1 application field and working principle demonstrate how a diode can be used for supply regulation, current limiting, and other applications. This Schottky diode offers an impressive forward voltage of 0.45V and a maximum average rectified current of 9A, making it a suitable choice for a wide range of projects. By properly selecting a diode for the job at hand and understanding the working principles behind it, one can implement diodes in many useful and innovative ways.

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

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