VI-B4V-CW Allicdata Electronics
Allicdata Part #:

VI-B4V-CW-ND

Manufacturer Part#:

VI-B4V-CW

Price: $ 0.00
Product Category:

Power Supplies - Board Mount

Manufacturer: Vicor Corporation
Short Description: DC DC CONVERTER 5.8V 100W
More Detail: Isolated Module DC DC Converter 1 Output 5.8V 1...
DataSheet: VI-B4V-CW datasheetVI-B4V-CW Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Current - Output (Max): 17.24A
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: -25°C ~ 85°C
Features: OCP, OTP, OVP, SCP
Applications: ITE (Commercial)
Voltage - Isolation: 3kV
Power (Watts): 100W
Series: VI-200™
Voltage - Output 3: --
Voltage - Output 2: --
Voltage - Output 1: 5.8V
Voltage - Input (Max): 100V
Voltage - Input (Min): 55V
Number of Outputs: 1
Type: Isolated Module
Part Status: Active
Packaging: Bulk 
Description

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DC-DC converters provide an efficient and cost-effective way of converting direct current (DC) from a higher voltage to a lower voltage, enabling a device to run on a different type of power. The VI-B4V-CW, also known as the Variable Isolated Buck and Boost converter, is a type of DC-DC converter that is used to provide a lower or higher voltage than the input voltage, while still providing the same amount of current.

The VI-B4V-CW is one of the most common types of DC-DC converters due to its versatility and high power density, making it well-suited for use in a broad range of application fields ranging from automotive, to industrial, to consumer electronics. It can be used to provide a regulated output voltage from an input voltage that may be higher or lower than the desired output voltage.

The VI-B4V-CW is a variable isolated buck and boost converter, meaning that it works by converting higher input voltages to lower output voltages, or lower input voltages to higher output voltages. This is accomplished through the use of high-frequency switching, which is dependent on the voltage difference between the input and output. In essence, the VI-B4V-CW works by rapidly switching the input voltage on and off while also regulating the output voltage. This switching process creates a magnetic field which carries the current and induces voltage in the output circuit.

The VI-B4V-CW operates at high switching frequencies, with a range between 2kHz and 20kHz, allowing for high power efficiency and low output ripple. Furthermore, this type of converter is also designed for use in highly isolated environments, due to its galvanically isolated topology, which limits noise, ripple and electromagnetic interference (EMI) from being transmitted to other circuits. This makes the VI-B4V-CW suitable for applications in sensitive circuitry, such as medical devices.

In order to ensure reliable operation and prevent damage to components, special attention must be paid to the maximum duty cycle of operation. In other words, the input voltage must not be greater than the output voltage by more than a specified percentage. If this requirement is not met, the converter will enter into DCM (Discontinuous Conduction Mode), which can cause a large voltage spike and lead to component damage.

The VI-B4V-CW is a highly efficient device, with efficiency in the realm of 80-90%. Furthermore, due to its ability to both boost and buck, it makes a great choice for powering systems with different voltage requirements, such as motor controllers, LED drivers and other power applications. Its small form factor and low cost also make it a good choice for mobile and portable applications.

In conclusion, the VI-B4V-CW is an efficient, cost-effective and versatile DC-DC converter that is suitable for a wide range of applications. Its high power density, small form factor and high efficiency make it an ideal choice for applications where size and power efficiency are important factors. Furthermore, its isolated topology reduces interference from other circuits, making it well-suited for powering sensitive circuitry.

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

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