FLPV-UG Allicdata Electronics
Allicdata Part #:

FLPV-UG-ND

Manufacturer Part#:

FLPV-UG

Price: $ 0.48
Product Category:

Optoelectronics

Manufacturer: Bivar Inc.
Short Description: LIGHT PIPE ADAPTER 1MM ULT GRN
More Detail: Light Pipe Single Green Flexible 0.495" (12.573mm)...
DataSheet: FLPV-UG datasheetFLPV-UG Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
100 +: $ 0.43376
Stock 1000Can Ship Immediately
$ 0.48
Specifications
Series: FLPV
Part Status: Active
Lead Free Status / RoHS Status: --
Color: Green
Moisture Sensitivity Level (MSL): --
Configuration: Single
Type: Flexible 0.495" (12.573mm)
Mounting Type: Board/Panel Mount, Press Fit
Lens Style: Round
Lens Size: 3.30mm
Description

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Light pipes form one of the core technologies in optics, with numerous applications stretching from medical and aerospace engineering to communication and energy. Among these, fiber light pipes (FLPV) occupy a unique position in optical systems due to their ability to transmit large amounts of light over large distances without significant losses in intensity. Over the last several decades, there have been a number of advancements in the performance and utility of FLPV, most notably the development of ultra-high-performance FLPV (UG). Here, we discuss the applications and working principles of UG FLPV.

The most common application of UG FLPV is in high-resolution imaging systems, where they are used to send and receive images from one end of the pipe to another. These light pipes are also utilized in communication links, where they can be deployed to create a direct line-of-sight connection between two points. UG FLPV can be used for data transmission, video-telemetry, and other objectives. In addition to this, UG FLPV is also increasingly being used in medical applications, such as high-precision medical imaging, microscopy, and remote surgery. With its superior bandwidth capabilities, UG FLPV enables improved accuracy in diagnostics, monitoring, and treatment.

The published common theory of optical fibers posits that light is transported through the medium of a glass core surrounded by a higher-index cladding material. Depending on the nature of the material, a distinctive refractive index profile is created, which causes the light to propagates down the length of the fiber. This works by phase matching between the light waves within the core and those at the cladding boundary, which creates an evanescent field associated with the light. This evanescent field is what enables the transmission of the light signal along the length of the fiber.

Recent developments have enabled higher purity materials to be fabricated along with higher refractive index contrasts, which have led to considerable improvement in the performance of optical fibers. For instance, ultra-high-performance FLPV utilizes a highly uniform and doped glass core region for efficient transmission of light. This allows the fiber to transport light over larger distances with minimal losses and maximum signal fidelity.

The use of ultra-high-performance FLPV is predicated on several factors. First, the glass core material has to have a uniformly low absorption coefficient and homogeneous refractive index distribution. Second, the core must also have ultra-high optical purity levels, which reduce absorption and scattering losses. Third, the fiber must be able to retain its properties over time, so that the transmitted signal remains at the same intensity levels even after long periods of time. And lastly, the cladding region of the fiber should be designed and fabricated with high precision, which helps reduce Fresnel reflection losses.

In conclusion, UG FLPV is a powerful technology with wide-ranging applications in optical systems. Its ability to transmit large amounts of light over long distances without significant losses makes it a highly attractive option for applications that require high-resolution imaging, telecommunications, medical imaging, and more. With its superior performance and efficiency, UG FLPV has the potential to revolutionize the field of optics.

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

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