Allicdata Part #: | 298-16191-ND |
Manufacturer Part#: |
FAP3WBUDSC |
Price: | $ 55.87 |
Product Category: | Uncategorized |
Manufacturer: | Panduit Corp |
Short Description: | FAP W/3 SC DUPL SINGLEMODE ADAPT |
More Detail: | N/A |
DataSheet: | FAP3WBUDSC Datasheet/PDF |
Quantity: | 5 |
1 +: | $ 50.79060 |
10 +: | $ 49.46260 |
25 +: | $ 48.57930 |
50 +: | $ 47.25440 |
100 +: | $ 46.37120 |
500 +: | $ 45.48790 |
1000 +: | $ 44.60460 |
Series: | * |
Part Status: | Active |
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FAP3WBUDSC stands for a Fluorescent Array Pulsed Phasor 3-Wavelength Multi-Directional Scattering. It is an application field of high-end laser technology, specifically used in laboratories for researching and testing light particles used in various kinds of equipment and apparatus. The FAP3WBUDSC works by controlling or modifying the properties of light particles as they move through various materials and components.
FAP3WBUDSC technology utilizes phase shifting and scatter from a pulsed laser beam to generate measurements of the effective scattering angle of the detected light particles.The illumination comes from a converged two-dimensional array of laser diodes, either in single- or three-wavelength configurations. The laser pulse is timed to achieve the desired pulse width and repetition rate, depending on the experiment.
The principal principle of FAP3WBUDSC is the pulsed phasor array. This technology uses an electronic optical system to detect and measure the scattering angles of light particles at different times and in different directions. The laser beam passes through a transparent material which scatters its light in multiple directions. The rays scattered are then detected by an array of photo-catalytic cells that measure them over a certain period of time.
The measured angle is then analyzed to determine the degree of misalignment. Depending on the experiment, the misalignment can be a measure of the effective angle of scatter or the angle of incidence of the light. For example, if the angle of scattering is too large, then the material used to scatter the light particles is causing too much scatter. This in turn can be used to determine the appropriate material for particular applications.
The measurements of the angle of scatter taken using FAP3WBUDSC help researchers and engineers determine the appropriate material for a particular application. For example, if a material scatters light too widely, an application may require a different material. Conversely, if a material scatters light too narrowly, an application may require a different material. In this manner, FAP3WBUDSC technology can be used to determine the best suitable materials for different applications.
FAP3WBUDSC technology is also used in medical devices such as lasers for treating diseases. The technology can be used to detect differences in particle size in tissues. This information is critical for medical applications such as radiation therapy and chemotherapy. The technology can also help to diagnose and treat ocular diseases, including glaucoma, retinal detachment, and age-related macular degeneration.
FAP3WBUDSC technology is also used in designing optical communication systems. For example, the technology can be used to detect and measure the scattering angles of light through various materials and components. This information is vital to design optical communication systems based on certain requirements. This includes the design of optical fibers, optical lenses, and optical sensors.
FAP3WBUDSC technology is used in many other applications, from laboratory experiments to medical treatments. With the increasing demand for laser technology, the advantages of FAP3WBUDSC are becoming more apparent. This technology allows researchers and engineers to study and test light particles in different ways, with reliable and accurate results. With the wide range of applications that FAP3WBUDSC offers, it is likely to remain an important part of research and development for a long time.
The specific data is subject to PDF, and the above content is for reference
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