VI-26J-IV Allicdata Electronics
Allicdata Part #:

VI-26J-IV-ND

Manufacturer Part#:

VI-26J-IV

Price: $ 257.17
Product Category:

Power Supplies - Board Mount

Manufacturer: Vicor Corporation
Short Description: DC DC CONVERTER 36V 150W
More Detail: Isolated Module DC DC Converter 1 Output 36V 4....
DataSheet: VI-26J-IV datasheetVI-26J-IV Datasheet/PDF
Quantity: 1000
1 +: $ 233.79300
Stock 1000Can Ship Immediately
$ 257.17
Specifications
Current - Output (Max): 4.17A
Size / Dimension: 4.60" L x 2.40" W x 0.50" H (116.8mm x 61.0mm x 12.7mm)
Package / Case: Full Brick
Mounting Type: Through Hole
Efficiency: 90%
Operating Temperature: -40°C ~ 85°C
Features: OCP, OTP, OVP, SCP
Applications: ITE (Commercial)
Voltage - Isolation: 3kV
Power (Watts): 150W
Series: VI-200™
Voltage - Output 3: --
Voltage - Output 2: --
Voltage - Output 1: 36V
Voltage - Input (Max): 400V
Voltage - Input (Min): 200V
Number of Outputs: 1
Type: Isolated Module
Part Status: Active
Packaging: Bulk 
Description

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DC to DC converters are a type of power converters that convert direct current (DC) from one voltage level to another. This is often done to convert voltage levels between different systems. In DC circuits, the voltage or current is steadily unidirectional. DC to DC converters are used in a wide variety of applications, from industrial and automotive to residential and consumer. The VI-26J-IV DC to DC converter is one such example.

The VI-26J-IV is a high-efficiency DC to DC converter. It is designed to provide reliable, smooth power conversion and reliable performance in a wide range of applications. Its efficiency rating is up to 90%.

The VI-26J-IV applications include automotive, industrial, consumer, home, lighting, and battery applications. The VI-26J-IV is suitable for switching and logic applications, such as controlling motors, powering low-voltage devices, and providing back-up power. The VI-26J-IV can also be used as an emergency power source, such as in the event of a power failure.

The VI-26J-IV can be used in a variety of ways, depending on the application. One of its most popular uses is in motor control. This is because the VI-26J-IV is capable of providing a programmable starting current which is critical for motor control applications. The VI-26J-IV also offers excellent overload and surge protection, making it a reliable choice for motor control applications.

Another important use of the VI-26J-IV is in powering low-voltage devices. The VI-26J-IV is capable of providing an adjustable DC voltage output, making it suitable for powering low-voltage devices, such as sensors, low-power LEDs, and other components that require a low DC voltage.

The VI-26J-IV also offers excellent overload and surge protection capabilities. This makes it suitable for emergency back-up power applications, where power failures occur frequently. The VI-26J-IV can also be used as a charger or power supply for battery applications.

The working principle of the VI-26J-IV converter is entirely based on DC-to-DC switching technology. It uses two circuits that are alternately switched on and off, with each circuit representing a voltage source. Theory of operation of the VI-26J-IV converter involves the use of two power MOSFET transistors, one for the high-side and one for the low-side. When the converter is in the ‘on’ state, the high side transistor supplies current to the load, while the low side tries to control the voltage output by switching the high side at zero-voltage. The two transistors are alternately switched on and off, which provides a continuous DC output voltage. Apart from controlling the output voltage, the VI-26J-IV converter also detects the input and output voltages and adjusts the switching frequency accordingly.

The VI-26J-IV is a reliable and efficient DC-to-DC converter which is suited for a variety of applications including motor control, low-voltage device power supply, and emergency back-up power. The VI-26J-IV working principle involves the use of two power MOSFET transistors, which provide a continuous DC output voltage by alternately switching the high side and low side at a zero-voltage state.

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

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