IP Library Granted Patent US 10,133,017
Granted Patent B2
US 10,133,017 · App. 15/169,131 · Granted Nov 20, 2018

Vented optical tube

Inventors: Matthew Segsworth (Austin, TX); Jeremy Smith (Austin, TX); Robert Alexis Peregrin Fernihough (Austin, TX); Jeff Bowlus (Austin, TX)
Assignee: PGS Geophysical AS
G02B6/4427B32B1/08B32B3/266G01V1/226G02B6/443G02B6/4413G02B6/4434B32B2311/30B32B2323/10B32B2327/12B32B2597/00E21B47/0001E21B47/102G01V1/201G01V1/3843G01V1/52G02B6/2558G02B6/4429G02B6/506H04B10/801Y10T428/139Y10T428/1352Y10T428/1355Y10T428/1393Y10T428/1397Y10T428/24273Y10T428/24322
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Quick Facts
Patent No.
US 10,133,017
App. No.
15/169,131
Granted
Nov 20, 2018
Kind
B2
Abstract

Vented optical tube. At least some illustrative embodiments are conduits comprising a tube having a wall defining an interior volume of the tube. One or more optical fibers are disposed within the interior volume. The wall includes a plurality of vents passing from an outer surface of the wall to the interior volume, the plurality of vents disposed along a length of the tube, and wherein the vents are configured to convey a fluid in contact with the outer surface into the interior volume of the tube.

Claims (49)

1. An apparatus comprising:

a conduit including:

a tube having a water defining an interior volume of the tube;

one or more optical fibers disposed within the interior volume of the tube, wherein:

the wall of the tube includes a plurality of vents, each vent passing between an outer surface of the wall of the tube and the interior volume, the plurality of vents disposed along a length of the tube and having a distance therebetween;

wherein the vents are configured to establish fluid communication between the interior volume of the outer jacket and the interior volume of the tube;

wherein the vents have a population and size configured to provide a flow rate into the interior volume of the tube equal to or greater than 1000 cubic millimeters/sec; and

wherein the distance between adjacent vents along the length of the tube is in a range of 25 meters to 250 meters.

2. The apparatus of claim 1 wherein the vents have a diameter equal to or greater than about 20 micrometers.

3. The apparatus of claim 2 wherein the diameter of the vents is greater than or equal to about 1 millimeter.

4. The apparatus of claim 1 wherein the tube comprises a plastic selected from the group consisting of:

polypropylene; and

polyvinylidene fluoride (PVDF).

5. The apparatus of claim 1 wherein the tube comprises a metal.

6. The apparatus of claim 5 wherein the metal comprises stainless steel.

7. The apparatus of claim 1 wherein the one or more optical fibers comprise a buffer layer disposed on an outer surface of a primary polymer coating of the optical fiber.

8. The apparatus of claim 1 wherein the conduit is a sensor cable defining a central axis: and

wherein the tube is helicoidally disposed about the central axis of the sensor cable.

9. The apparatus of claim 1 wherein the tube includes an end defining an opening to convey fluid into the interior volume of the tube surrounding the one or more optical fibers.

10. The apparatus of claim 9 further including a sensor module having an outer shell defining an interior volume; and

wherein the end of the tube is disposed within the interior volume of the sensor module providing fluid communication between the interior volume of the tube and the interior volume of the sensor module.

11. The apparatus a claim 10 wherein the outer shell defines a plurality of ports providing fluid communication between the interior body of the sensor module and a body of water with the sensor module submerged in the body of water.

12. A cable comprising:

an outer jacket having an outer surface and an inner surface and defining an interior volume bounded by the inner surface, the interior volume configured to be in fluid communication with a water body;

a tube having a wall defining an interior volume of the tube and disposed within the interior volume of the outer jacket; and

one or more optical fibers disposed within the interior volume of the tube, wherein:

the wall of the tube includes a plurality of vents, each vent passing between an outer surface of the wall of the tube and the interior volume of the tube, the plurality of vents disposed along a length of the tube and having a distance therebetween;

wherein each vent is configured to provide fluid communication between the interior volume of the outer jacket and the interior volume of the tube;

wherein the vents have a population and size configured to provide a flow rate into the interior volume of the tube equal to or greater than 1000 cubic millimeters/sec; and

wherein the distance between adjacent vents along the length of the tube is in a range of 25 meters to 250 meters.

13. The cable of claim 12 wherein the vents have a cross-sectional area equivalent to an area of a circle having a diameter equal to or greater than about 20 micrometers.

14. The cable of claim 13 wherein the vents have a cross-sectional area equivalent to an area of a circle having a diameter greater than about 1 millimeter.

15. The cable of claim 12 further comprising:

at least one strength member defining a central axis of the cable and wherein the tube comprises a helicoid disposed about the strength member.

16. The cable of claim 12 wherein the optical fibers comprise a buffer layer disposed on an outer surface of a primary polymer coating of the optical fiber.

17. The cable of claim 12 wherein the outer jacket comprises a plurality of vents between the outer surface of the outer jacket and the interior volume of the outer jacket, the vents configured to provide fluid communication between the interior volume of the outer jacket and a water body in fluid communication with the outer surface of the outer jacket.

18. The cable of claim 12 wherein the outer jacket includes an end defining an opening to convey fluid into the interior volume of the outer jacket surrounding the tube.

19. A method comprising:

providing a fiber optic cable having seismic sensors connected to optical fibers, the fiber optic cable comprising:

an outer jacket having an outer surface and an inner surface and defining an interior volume bounded by the inner surface, the interior volume configured to be in fluid communication with a water body;

a tube having a wall defining an interior volume of the tube and disposed within the interior volume of the outer jacket;

one or more optical fibers disposed within the interior volume of the tube, wherein:

the wall of the tube includes a plurality of vents, each vent passing between an outer surface of the wall of the tube and the interior volume of the tube, the plurality of vents disposed along the length of the tube and having a distance therebetween;

wherein each vent is configured to provide fluid communication between the interior volume of the outer jacket and the interior volume of the tube;

wherein the vents have a population and size configured to provide a flow rate into the interior volume of the tube is equal to or greater than 1000 cubic millimeters/sec; and

wherein the distance between adjacent vents along the length of the tube is in a range of 25 meters to 250 meters;

submerging the fiber optic cable in the water body;

flooding an interior volume of the tube with water; and

communicating a signal generated by seismic sensors in response to a seismic event through one or more of the optical fibers.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 12, 2019
From: PGS AMERICAS, INC
To: GEOSPACE TECHNOLOGIES CORPORATION
Reel/Frame 048305/0771 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 9, 2018
From: PGS GEOPHYSICAL AS
To: PGS AMERICAS, INC.
Reel/Frame 047467/0183 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 14, 2016
From: SEGSWORTH, MATTHEW; FERNIHOUGH, ROBERT ALEXIS PEREGRIN; SMITH, JEREMY; BOWLUS, JEFF
To: PGS GEOPHYSICAL AS
Reel/Frame 038911/0958 →
Continuity (2)
Provisional Application 62202198 · Aug 7, 2015
Related Publication 20170038545A1 · Feb 9, 2017