VI-JNP-CW Allicdata Electronics
Allicdata Part #:

VI-JNP-CW-ND

Manufacturer Part#:

VI-JNP-CW

Price: $ 0.00
Product Category:

Power Supplies - Board Mount

Manufacturer: Vicor Corporation
Short Description: DC DC CONVERTER 13.8V 100W
More Detail: Isolated Module DC DC Converter 1 Output 13.8V ...
DataSheet: VI-JNP-CW datasheetVI-JNP-CW Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Current - Output (Max): 7.25A
Base Part Number: VI-JNP
Size / Dimension: 2.28" L x 2.40" W x 0.50" H (57.9mm x 70.0mm x 12.7mm)
Package / Case: Half Brick
Mounting Type: Through Hole
Efficiency: 90%
Operating Temperature: -25°C ~ 100°C
Features: OCP, SCP
Applications: ITE (Commercial)
Voltage - Isolation: 3kV
Power (Watts): 100W
Series: VI-J00™
Voltage - Output 3: --
Voltage - Output 2: --
Voltage - Output 1: 13.8V
Voltage - Input (Max): 76V
Voltage - Input (Min): 36V
Number of Outputs: 1
Type: Isolated Module
Part Status: Active
Packaging: Bulk 
Description

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DC-DC converters are a type of device used to convert a direct current source into an alternating current source. The VI-JNP-CW Application Field and Working Principle provide a comprehensive description of the use of the VI-JNP-CW converter in various types of applications and explain its working principles and techniques.The VI-JNP-CW (Voltage-Increasing-Junction-Non-Polar-Current-Walking) is a DC-DC converter that offers high efficiency and small size, making it suitable for use in many different types of applications. The device is based on the principle of the voltage-increasing junction, which is the use of an electric field to cause a current to walk around a circuit. By applying this principle, the VI-JNP-CW is able to convert low-voltage DC input into a high-voltage, low-current AC output.

The VI-JNP-CW application field is divided into two broad categories: direct control and magnetic field. In this case, direct control involves controlling the voltage and current of the converter directly with a digital controller, while the magnetic field uses magnetic field-enabled capacitors to control the voltage and current of the converter. This allows the user to fine-tune the input and output of the converter to meet their desired specifications.

In both control schemes, the VI-JNP-CW converter relies on the same core components and design: AC input source, the VI-JNP-CW circuit, and the output transformer. The AC input source, typically a wall outlet, provides the power needed to drive the converter. The VI-JNP-CW circuit is composed of a voltage-increasing junction, a switchable controller, and a rectifier, with the voltage-increasing junction being the most important component. The switchable controller controls the application of power pulses to the voltage-increasing junction to ensure that the input voltage and current are properly adjusted, while the rectifier further boosts the output voltage and current. Finally, the output transformer is used to isolate the input from the output, ensuring the output voltage and current remain clean and stable.

The working principle of the VI-JNP-CW converter relies on its unique voltage-increasing junction. The junction is composed of two insulated electrical wires that are configured in a loop. When a current is applied to the junction, an electric field is generated and causes the current to walk around the loop. As the current travels, it builds up a magnetic field, which is then used to boost the voltage and current of the converter.

The VI-JNP-CW converter is a reliable and efficient device for converting low-voltage DC signals into a high-voltage AC output. It is a cost-effective and compact solution for applications that require high efficiency while maintaining a low-cost and small form factor. Its direct control and magnetic field control options allow users to fine-tune the performance of the converter based on specific application requirements, making it a versatile and reliable power conversion solution.

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

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