Optical sensing cable with acoustic lensing or reflecting features
US-2018348017-A1 · Dec 6, 2018 · US
US10753774B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10753774-B2 |
| Application number | US-201615778767-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 25, 2016 |
| Priority date | Nov 25, 2015 |
| Publication date | Aug 25, 2020 |
| Grant date | Aug 25, 2020 |
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A fiber optic sensor device comprising an optical fiber with a multilayer coating on the optical fiber at least in a fiber section of the optical fiber. The multilayer coating comprises a chrome layer on the optical fiber, a metal layer such as a copper layer on the chrome layer and an indium or lead layer on the metal layer. The indium or lead layer having a thickness larger than thicknesses of the chrome and metal layers, preferably with a thickness about equal to the radius of the optical fiber.
Opening claim text (preview).
The invention claimed is: 1. A cryogenic system for cooling an interior of a container to a cryogenic temperature, the cryogenic system comprising a fiber optic sensor system and the container, the fiber optic sensor system comprising a fiber optic sensor device comprising an optical fiber, comprising a multilayer coating on the optical fiber at least in a fiber section of the optical fiber, the multilayer coating comprising a bonding layer on the optical fiber, a metal layer on the bonding layer and an indium or lead layer on the metal layer, the indium or lead layer having a thickness larger than thicknesses of the bonding and metal layers, wherein the fiber optic sensor system comprises an interrogation system configured to measure an optical length change of the fiber section, and wherein the fiber section is located in the interior of the container. 2. The cryogenic system of claim 1 , wherein the indium or lead layer has a thickness of at least a quarter and more preferably half the radius of the optical fiber. 3. The cryogenic system of claim 1 , wherein the metal layer is a copper layer, silver layer, gold layer, platinum layer or palladium layer. 4. The cryogenic system of claim 3 , wherein the metal layer has a thickness in a range of ten to five hundred nanometer. 5. The cryogenic system of claim 1 , wherein the bonding layer is a chrome layer. 6. The cryogenic system of claim 5 , wherein the chrome layer has a thickness in a range of one to ten nanometer. 7. The cryogenic system of claim 1 , wherein the fiber section comprises a fiber Bragg grating. 8. The cryogenic system of claim 1 , comprising an interferometer, wherein the fiber section is part of the interferometer. 9. The cryogenic system of claim 1 , wherein the optical fiber is a silica fiber. 10. A method for operating the cryogenic system of claim 1 , the method comprising using the fiber optic sensor system to measure the cryogenic temperature in the interior of the container.
for cryogenic purposes · CPC title
at discrete locations in the fibre, e.g. using Bragg scattering · CPC title
using a Fabry Perot · CPC title
Refractive index modulation gratings, e.g. Bragg gratings · CPC title
Means for amplifying or modifying the measured quantity · CPC title
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