R1D-3.33.3/P Allicdata Electronics
Allicdata Part #:

R1D-3.33.3/P-ND

Manufacturer Part#:

R1D-3.33.3/P

Price: $ 5.20
Product Category:

Power Supplies - Board Mount

Manufacturer: RECOM Power
Short Description: DC DC CONVERTER +/-3.3V 1W
More Detail: Isolated Module DC DC Converter 2 Output 3.3V -3.3...
DataSheet: R1D-3.33.3/P datasheetR1D-3.33.3/P Datasheet/PDF
Quantity: 1000
33 +: $ 4.72977
Stock 1000Can Ship Immediately
$ 5.2
Specifications
Current - Output (Max): 152mA, 152mA
Control Features: --
Size / Dimension: 0.60" L x 0.42" W x 0.28" H (15.2mm x 10.7mm x 7.0mm)
Package / Case: 10-SMD Module, 6 Leads
Mounting Type: Surface Mount
Efficiency: 75%
Operating Temperature: -40°C ~ 100°C
Features: SCP
Applications: ITE (Commercial)
Voltage - Isolation: 1kV
Power (Watts): 1W
Series: ECONOLINE R1D
Voltage - Output 3: --
Voltage - Output 2: -3.3V
Voltage - Output 1: 3.3V
Voltage - Input (Max): 3.6V
Voltage - Input (Min): 3V
Number of Outputs: 2
Type: Isolated Module
Part Status: Active
Packaging: Tube 
Description

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DCDC converters are widely used to convert a DC voltage level from one voltage to another. One of the most common types of DC converters is the R1D-3.33.3/P type, which can be used for various purposes.

Application field

R1D-3.33.3/P DC converters are most often used in power supplies, charge controllers, voltage inverters, and other electronic devices. They are particularly suited to applications that require a highly reliable power source with accurate voltage control or high-speed current control. This type of converter is often used in the aerospace industry, where reliability and accuracy are essential.

In addition, R1D-3.33.3/P converters are also used in renewable energy and automotive systems. They are used in renewable energy systems to regulate the output voltage from photovoltaic and wind power sources. In automotive systems, they are used to control the voltage output in electric vehicles.

Working Principle

R1D-3.33.3/P DC converter systems operate on a buck-boost principle, meaning that they can maintain a steady output voltage over a wide range of input voltages. The converters use a combination of inductors, capacitors, and switches to convert higher or lower voltage levels into a regulated output voltage.

When the voltage input is greater than the desired output voltage, an inductor is used to store energy during the input’s voltage cycle. This stored energy is then used to reduce the output voltage as the switch is opened, resulting in the output voltage being lower than the input voltage. In this process, the inductor is responsible for controlling the voltage output.

When the voltage input is lower than the desired output voltage, the inductor is used to store energy during the input’s voltage cycle, and a capacitor is used to control the output voltage when the switch is opened. In this process, the capacitor is responsible for controlling the voltage output.

The controller used in the R1D-3.33.3/P DC converter systems is a proportional–integral–derivative (PID) algorithm. This type of algorithm is used in process control to accurately control the output voltage and provide an evenly regulated output voltage.

Conclusion

R1D-3.33.3/P DC converter systems are widely used in a variety of applications, ranging from aerospace to automotive. These systems operate on a unique buck-boost principle that allows them to maintain a steady output voltage over a wide range of input voltages. The algorithm used in the control system ensures an accurate and even output voltage is maintained.

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

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