Allicdata Part #: | 277-3076-ND |
Manufacturer Part#: |
5605943 |
Price: | $ 0.00 |
Product Category: | Sensors, Transducers |
Manufacturer: | Phoenix Contact |
Short Description: | SOLAR SYSTEM POWER SUPPLY |
More Detail: | SOLAR SYSTEM POWER SUPPLY |
DataSheet: | 5605943 Datasheet/PDF |
Quantity: | 1000 |
1 +: | 0.00000 |
Series: | -- |
Part Status: | Obsolete |
Power (Watts) - Max: | 50W |
Current @ Pmpp: | 2.75A |
Voltage @ Pmpp: | 18.1V |
Current - Short Circuit (Isc): | 2.95A |
Type: | Photovoltaic |
Operating Temperature: | -30°C ~ 60°C |
Package / Case: | Module |
Size / Dimension: | -- |
Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us: sales@allicdata.com
Solar cells are probably among the most fascinating and most widely discussed green energy technologies. Solar cells, also known as photovoltaics, are devices that convert light energy into electrical energy. The sun is a never-ending source of energy and is available to most parts of the world almost all of the time. To utilize solar energy, specialized solar cells are arranged in a variety of configurations to create photovoltaic modules. This module can then be connected to the main electricity supply to make use of solar energy for electrical power.
The big advantage that lies in utilizing solar cells for power is that it is renewable and practically unlimited. Solar energy is available in abundance throughout the world and has no finite limitations. Not only that, but it is also a very environmentally friendly way of producing power since it doesn’t require burning of fossil fuels and thereby doesn’t lead to emission of greenhouse gases.
In a solar cell, energy is received from the sun in the form of photons. The photon particles are absorbed by the semiconductor material of the cell. Upon absorption, the photon particles excite the electrons in the cell and force them into a higher energy state. This process of excitation enables the electrons to move freely through the material. In the solar cell, these electrons are directed along specific pathways that create an electrical current. Hence, solar cells generate electricity from sunlight.
To increase the efficiency of the solar cells, the researchers of the solar technology have developed 5605943 application fields such as crystalline silicon, thin-film silicon, perovskite, monocrystalline, amorphous, multi-junction solar cells. All of these application fields tend to have different working principles and are tailored to deliver a certain level of efficiency under unique circumstances.
The working principles of each application field varies but the most popular and widely used have crystalline silicon and thin-film silicon at the core of its operation. Crystalline silicon solar cells are composed of a single crystalline material, usually silicon. These cells absorb light and generate electricity, which is then transferred to an inverter to be used for powering a device or a building.
On the other hand, thin-film cells are composed of an ultra-thin film of semi-conductive material, typically amorphous silicon. Upon absorption, the photon energy excites the electrons in the material, allowing them to move through the cell and generate an electrical current. Similarly to crystalline silicon cells, the current generated in thin-film cells is then transferred to an inverter where it is used to power a device or a building.
Regardless of the application field or working principle, solar cells are becoming increasingly popular and cost effective green energy solutions. This is due to their ability to generate electrical energy without burning fossil fuels and without harming the environment. Furthermore, solar cells are renewable sources of energy that are readily available in different parts of the world and are expected to be widely adopted in the future.
The specific data is subject to PDF, and the above content is for reference
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