BYV255V-200 Allicdata Electronics
Allicdata Part #:

497-2694-5-ND

Manufacturer Part#:

BYV255V-200

Price: $ 19.89
Product Category:

Discrete Semiconductor Products

Manufacturer: STMicroelectronics
Short Description: DIODE MODULE 200V 100A ISOTOP
More Detail: Diode Array 2 Independent Standard 200V 100A Chass...
DataSheet: BYV255V-200 datasheetBYV255V-200 Datasheet/PDF
Quantity: 1000
100 +: $ 17.90710
Stock 1000Can Ship Immediately
$ 19.89
Specifications
Series: --
Packaging: Tube 
Part Status: Obsolete
Diode Configuration: 2 Independent
Diode Type: Standard
Voltage - DC Reverse (Vr) (Max): 200V
Current - Average Rectified (Io) (per Diode): 100A
Voltage - Forward (Vf) (Max) @ If: 850mV @ 100A
Speed: Fast Recovery = 200mA (Io)
Reverse Recovery Time (trr): 80ns
Current - Reverse Leakage @ Vr: 100µA @ 200V
Operating Temperature - Junction: 150°C (Max)
Mounting Type: Chassis Mount
Package / Case: ISOTOP
Supplier Device Package: ISOTOP®
Description

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BYV255V-200 Application Field and Working Principle

BYV255V-200 Diodes are a type of rectifier array which is utilized in different applications as a way to control voltage and current. By providing rectification, diodes can be used to convert AC currents into DC currents, which is essential for properly regulating or managing the flow of power. As a regulated form of rectifier diode, BYV255V-200 rectifier arrays are useful for their high efficiency and are commonly used in electronics and in power applications.

Application Fields

BYV255V-200 diodes are typically used in applications where they are exposed to low currents and direct current applications. Some of the common applications of BYV255V-200 diodes are in voltage converters, solar charge controller circuits, power supplies, inverters and motor control systems. Additionally, these rectifier arrays can be used in automotive audio systems and electronic alarm systems.

BYV255V-200 diodes can also be utilized in high voltage applications, such as in high power switch-mode power supplies. In certain industrial and military applications, the BYV255V-200 diode can be used in high power motor drives, in charge balancing and in motor steering operations. Furthermore, the BYV255V-200 diode has been used in various defense and aerospace applications.

Working Principle

A BYV255V-200 diode is a forward-biased semiconductor rectifier array, meaning it allows current to flow in one direction with the application of a voltage. When the voltage across the diode is increased, more electrons are allowed to flow from one side of the diode to the other side. The movement of these electrons is known as conduction.

These rectifier arrays usually consist of two electrodes: one lead and one base. The material that the BYV255V-200 is made of determines the rate at which it conducts current and the degree of control it exerts over the current flow. The current is typically restricted by the built-in resistance of the material.

The voltage applied to the diode determines its conduction rate, meaning the voltage will determine the rate at which it can transfer charge across the diode. In order to achieve a higher conduction rate, the applied voltage will have to be appropriately chosen, as a voltage that is too low will not result in as fast conduction.

A BYV255V-200 diode presents a very low forward voltage drop, meaning it allows for the efficient transfer of current with minimal resistive losses. These rectifier arrays are also designed in such a way that they can sustain high currents without deteriorating, which is critical for electrical discharge applications.

Conclusion

BYV255V-200 diodes are a type of rectifier array which is used in a variety of applications in order to control voltage and current. These rectifiers are typically used in low current, direct current applications, and they are also used in high voltage applications such as in high power switch-mode power supplies and motor drives. They operate by providing forward bias conduction and have a low forward voltage drop, allowing them to efficiently transfer current with minimal resistive losses.

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

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