Information processing device, information processing method, and storage medium
US-2024426649-A1 · Dec 26, 2024 · US
US9841315B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9841315-B2 |
| Application number | US-201514983994-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 30, 2015 |
| Priority date | Jun 17, 2010 |
| Publication date | Dec 12, 2017 |
| Grant date | Dec 12, 2017 |
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Methods and apparatus for performing Distributed Acoustic Sensing (DAS) using fiber optics with increased acoustic sensitivity are provided. Acoustic sensing of a wellbore, pipeline, or other conduit/tube based on DAS may have increased acoustic sensitivity through fiber optic cable design and/or increasing the Rayleigh backscatter property of a fiber's optical core. Some embodiments may utilize a resonant sensor mechanism with a high Q coupled to the DAS device for increased acoustic sensitivity.
Opening claim text (preview).
The invention claimed is: 1. A fiber optic cable suitable for use in distributed acoustic sensing (DAS), comprising: one or more optical fibers; a tube surrounding the one or more optical fibers; and a jacket surrounding the tube, wherein: a cross-section of the jacket has a non-circular shape for at least a portion of the length of the jacket; at least one of the one or more optical fibers has a smaller diameter compared to a standard optical fiber; and upon application of pressures created by acoustic waves, the smaller diameter provides for increased response of the at least one of the one or more optical fibers compared to the standard optical fiber. 2. The fiber optic cable of claim 1 , wherein the shape of the cross-section of the jacket comprises a square, parabolic, or elliptical shape. 3. The fiber optic cable of claim 1 , wherein: at least two different cross-sections of the jacket, taken at different points along the length of the jacket, are different; and the at least two different cross-sections along the length of the jacket have at least one of at least two different sizes or at least two different shapes. 4. The fiber optic cable of claim 1 , wherein the jacket comprises a polymer or a composite. 5. The fiber optic cable of claim 1 , further comprising: another tube surrounding the tube; a gap between the tube and the other tube; and a filler material disposed in the gap. 6. The fiber optic cable of claim 1 , further comprising: another tube surrounding the tube; and a polymer or a composite tubing disposed between the tube and the other tube. 7. The fiber optic cable of claim 1 , wherein at least one of the one or more optical fibers comprises: a core; and a cladding surrounding the core and comprising holes disposed lengthwise therein. 8. The fiber optic cable of claim 7 , wherein the holes are arranged such that pressures created by acoustic waves are focused on the core. 9. The fiber optic cable of claim 1 , wherein at least one of the one or more optical fibers comprises: a core; a cladding surrounding the core; and a fiber coating surrounding the cladding, wherein the fiber coating comprises graded layers with at least one of different materials or different thicknesses therebetween. 10. A method comprising: providing a fiber optic cable disposed along a length of a conduit, wherein the fiber optic cable comprises: one or more optical fibers; a tube surrounding the one or more optical fibers; and a jacket surrounding the tube, wherein: a cross-section of the jacket has a non-circular shape for at least a portion of the length of the jacket; at least one of the one or more optical fibers has a smaller diameter compared to a standard optical fiber; and upon application of pressures created by acoustic waves, the smaller diameter provides for increased response of the at least one of the one or more optical fibers compared to the standard optical fiber; and performing distributed acoustic sensing (DAS) along the length of the conduit by receiving acoustic signals using the fiber optic cable.
using light waves, e.g. infrared or ultraviolet waves · CPC title
Subsurface, e.g. in borehole or below weathering layer or mud line · CPC title
using fibre optic sensors (light guides per se G02B6/00, acousto-optical devices specially adapted for gating or modulating in optical wave guides G02F1/125) · CPC title
Double reinforcement laying in straight line with optical transmission element · CPC title
Glass optical fibre with a protective coating, e.g. two layer polymer coating deposited directly on a silica cladding surface during fibre manufacture (G02B6/02052, G02B6/02057, G02B6/024, G02B6/032, G02B6/105, G02B6/14 take precedence; coating on fibre gratings G02B6/02104; multilayer core or cladding G02B6/036; reinforcing splice joints G02B6/2558; optical cables, i.e. comprising protective structures external to the protective coating such as a jacket or plural coated optical fibres G02B6/44; coating of glass to obtain optical fibres C03C25/104) · CPC title
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