SINGLE OUTER TUBULAR FLOW SCOOP FOR OIL AND GAS PIPELINES WITH INTERNAL BIDRECTIONAL FLOW
20200232887 ยท 2020-07-23
Inventors
Cpc classification
G01N1/2035
PHYSICS
G01N9/00
PHYSICS
International classification
Abstract
The present invention describes a tubular scoop that may be utilized with various assemblies for sampling fluid in a pipeline. The scoop includes a bend with a bend radius that is from two to four times the diameter of the scoop. The scoop defines a scoop face that is parallel to an axis of the tubular of the scoop. The scoop is mounted with a threaded connection that seals around the tubular. An additional seal comprises a compression nut that allows orientation of the scoop within the pipeline whereupon the scoop orientation is fixed by tightening the compression nut. In one embodiment, the scoop is a single outer tubular with internal bi-directional flow.
Claims
1. A bidirectional flow scoop mountable on and into a pipeline for receiving and returning a flowing sample of a fluid from a fluid flow in said pipeline, said pipeline being operable for transporting said fluid that comprises at least one of oil, gas, or petroleum products, said pipeline comprising a pipeline wall defining a pipeline opening, said bidirectional flow scoop comprising: an outer tubular comprising a scoop end, a mounting for connection on and into said pipeline opening operable to support said outer tubular when said outer tubular extends into said pipeline to receive said flowing sample of said at least one of oil, gas, or petroleum products, said scoop end comprising a bend that ends with a first opening that extends into said fluid flow, said bend comprises a bend radius in an axis through said outer tubular greater than a diameter of said outer tubular, said outer tubular comprising a first outlet distal said first opening, said first outlet being positioned outside of said pipeline when said bidirectional flow scoop is mounted to said pipeline; and an internal tubular mounted within said outer tubular, said internal tubular comprising a second opening positioned along said bend, said internal tubular comprising a second outlet distal said second opening, said second outlet being positioned outside of said pipeline when said bidirectional flow scoop is mounted to said pipeline, said outer tubular and said internal tubular of said bidirectional flow scoop being operable to provide fluid flow in two directions internal to said outer tubular when mounted to said pipeline.
2. The bidirectional flow scoop of claim 1, comprising a sampling chamber, a valve connected to said sampling chamber, said outer tubular is configured to receive said fluid from said pipeline, said bidirectional flow scoop is configured so said fluid enters said sampling chamber through said outer tubular, said internal tubular is configured to return said fluid to said pipeline without going through said valve so that when said valve is closed then said fluid in said sampling chamber is continuously refreshed to be representative of said fluid in said pipeline, when said valve is open then said fluid in said sampling chamber flows through said valve.
3. The bidirectional flow scoop of claim 1, wherein an axis of said internal tubular within said outer tubular is straight at least from said second opening to a shoulder on said outer tubular and said second opening is flush with said bend.
4. The bidirectional flow scoop of claim 1, wherein said outer tubular comprises a wall opening in a wall of said outer tubular at a position external to said pipeline when said outer tubular is mounted to said pipeline, said internal tubular extends through said wall opening of said outer tubular, and a metallic seal where said internal tubular extends through said wall opening in said wall of said outer tubular.
5. The bidirectional flow scoop of claim 1 further comprising said first opening is elliptical.
6. The bidirectional flow scoop of claim 1, further comprising a compression nut mounted to said outer tubular wherein said compression nut compresses a ferrule which seals between a fitting and an outer surface of said outer tubular, said compression nut being rotatable to compress said ferrule that engages a wall of said outer tubular and when compressed produces an initial seal which allows rotation of said outer tubular to orient said outer tubular in said pipeline.
7. The bidirectional flow scoop of claim 6, further comprising a flow loop comprising at least one of a densitometer or a prover, said first outlet and said second outlet being connected to said flow loop.
8. A method for providing a bidirectional flow scoop mountable on and into a pipeline to enable sampling and returning a fluid from a fluid flow in said pipeline, said pipeline being operable for transporting said fluid that comprises at least one of oil, gas, or petroleum products, said pipeline comprising a pipeline connection for said bidirectional flow scoop, comprising the following steps: providing an outer tubular that comprises a scoop end which is operable to be mounted on and into said pipeline connection so that said outer tubular extends into said pipeline to receive a flowing sample of said at least one of oil, gas, or petroleum products from said pipeline; providing that said outer tubular comprises a bend that leads to a face, said face defining a first opening for said fluid flow; providing that said outer tubular comprises a first outlet distal said first opening, said first outlet being positioned outside of said pipeline when said bidirectional flow scoop is mounted to said pipeline; providing an internal tubular mounted within said outer tubular with a second opening that extends through said bend; providing that said internal tubular comprises a second outlet distal said second opening; providing that said internal tubular has a length so that said second outlet is positioned outside of said pipeline when said bidirectional flow scoop is mounted to said pipeline; and providing that said outer tubular and said internal tubular of said bidirectional flow scoop are operable to provide fluid flow in two directions internal to said outer tubular when mounted to said pipeline.
9. The method of claim 8, comprising metallically sealing said outer tubular at said second outlet that is formed through an opening in a wall of said outer tubular, said internal tubular extending through said opening in said wall of said outer tubular.
10. The method of claim 9, further comprising providing a sample chamber connected to said outer tubular and said internal tubular to continually refresh said fluid in said sample chamber from said pipeline and providing a valve connected to said sample chamber operable for releasing said flowing sample of said fluid when said valve is open, said valve being connected externally of fluid flow to and from said sample chamber so that when said valve is closed then said outer tubular and said internal tubular continue to refresh said fluid in said sample chamber.
11. The method of claim 8, further comprising providing a flow loop comprising at least one of a densitometer or a prover, said first outlet and said second outlet being connected to said flow loop.
12. The method of claim 8, further providing a compression nut mounted to tighten a metallic ferrule to producer an initial seal that allows said bidirectional flow scoop to be oriented within said pipeline.
13. The method of claim 8, further comprising providing a second rounded bend within an axis of said internal tubular.
14. The method of claim 8, further comprising that said pipeline connection is a threaded pipeline connection, and utilizing a pipeline wall for said threaded pipeline connection of said bidirectional flow scoop to said pipeline wherein said pipeline wall comprises a wall portion that is continuous without an inserted T-section from upstream of said threaded pipeline connection to downstream of said threaded pipeline connection.
15. The method of claim 8, further comprising that said outer tubular further comprises a tubular portion that remains just inside of said pipeline when said outer tubular is fully extended, said tubular portion comprises a tubular portion circular circumference, said scoop end comprising a scoop end circumference along an entire length of said scoop end less than or equal to said tubular portion circumference so that said scoop end is operable to fit through any opening that said tubular portion comprising said tubular portion circular circumference is sized to fit through.
16. The method of claim 8, further comprising providing that said first opening comprises a face that is parallel to an axis of said outer tubular.
17. The bidirectional flow scoop of claim 1, further comprising said first opening comprises a face that is parallel to an axis of said outer tubular.
18. The bidirectional flow scoop of claim 1, further comprising that said outer tubular further comprises a tubular portion that remains just inside of said pipeline when said outer tubular is fully extended, said tubular portion comprises a tubular portion circumference, said scoop end comprising a scoop end circumference along an entire length of said scoop end less than or equal to said tubular portion circumference so that said scoop end is operable to fit through any opening that said tubular portion comprising said tubular portion circumference is sized to fit through.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The drawings constitute a part of this specification and include exemplary embodiments to the invention, which may be embodied in various forms. It is to be understood that in some instances various aspects of the invention may be shown exaggerated or enlarged to facilitate an understanding of the invention.
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DETAILED DESCRIPTION OF THE INVENTION
[0038] Detailed descriptions of the preferred embodiment are provided herein. It is to be understood, however, that the present invention may be embodied in various forms. Therefore, specific details disclosed herein are not to be interpreted as limiting, but rather as a basis for the claims and as a representative basis for teaching one skilled in the art to employ the present invention in virtually any appropriately detailed system, structure or manner.
[0039]
[0040] One possible method of the present invention involves machining the single tubular pipe to reduce the original pipe stock diameter to outer diameter 30 of second tubular portion 28. Then further machining reduces the outer diameter of first tubular portion 12 to outer diameter 26. Shoulder 32 is formed between first tubular portion 12 and second tubular portion 28. The scoop end is then bent as shown to provide scoop face 16 that is oriented laterally and preferably perpendicular with respect to centerline 24 as indicated by line scoop face centerline 19.
[0041] Accordingly, the bending of first tubular portion 12 of scoop design 10 results in forming scoop face 16. In one embodiment, scoop face 16 provides opening 22 (See
[0042] First tubular portion 12 is bent to provide bend radius 18 as shown in
[0043] While the features of the scoop face 16 are defined herein in terms of geometrical features such as planes, ellipses, perpendicular, and so forth, it is understood that the features are not geometrically perfect and could have variations, e.g., with 2 and/or to 5 and/or to 10 and/or to 20 range degree variations and any range there between. However, the design may fall outside these ranges and may include corresponding non-linearities.
[0044] Scoop 10 provides mark 34 shown in
[0045] Scoop design 10 is preferably provided in three different sizes with outer diameter 30 ranging from one inch to one and one-half inches.
[0046]
[0047] Alignable or orientable sampling assembly 200 preferably utilizes tubular to pipe connector 202, which is commercially available off the shelf, in a highly unique manner. Pipe connectors require threads. Tubular to pipe connector 202 comprises a tubular pipe connection with ferrule seals 218, 220 and threaded pipe connection with threads 208. Accordingly a tubular to threaded connection comprises a connection from a non-threaded cylinder to a threaded connection. Tubular to pipe connector 202 comprises compression nut 204, which is threadably securable to pipe connector 206 utilizing threads 222. Pipe connector 206 provides pipe connection with threads 208 to receptacle 210, which is provided on pipe 212. Receptacle 210 utilizes seal 214 with pipe 212, which can be one of three sanctioned connections 1) pipe threads & sealant; 2) socket weld or 3) butt-weld. Valve 216 may be secured to an upper end of scoop design 10 and may be utilized to provide samples of the pipe fluid as desired.
[0048]
[0049] In operation of one embodiment of alignment or orientation, scoop 10 is placed in tubular to pipe connector 202 until shoulder 32 of scoop 10 engages seat 232 in tubular to pipe connector 202. Scoop 10 can then be rotated to orient scoop face 16 within pipe 212 for receiving flow in pipe 212 as indicated by arrow 219. This is accomplished utilizing mark 34 shown in
[0050]
[0051] As discussed herein with other embodiments of the invention, two retractable pipeline scoops could be connected together to form a flow loop for to measure pipeline fluid with a densitometer, flow meter, prover, and/or takes samples as desired.
[0052] Unlike prior art scoops which may be time consuming to remove when a pig is sent down the pipeline, retractable pipeline scoop 300 can be easily retracted from the pipeline and inserted into the pipeline without requiring loss of the seal. Pipeline downtime is therefore greatly reduced.
[0053] In this embodiment, upper yoke 305 and lower yoke 304 are mounted on yoke screws 306 and 308. Yoke screws 306 and 308 extend through openings 310 and 312 in overall yoke design 302 shown in
[0054] Accordingly, one main difference between upper yoke 302 and lower yoke 304 is that openings 311 and 313 are threaded whereas openings 316 and 318 are not. As well, upper yoke 305 is secured to scoop 10 whereas lower yoke 304 allows scoop 10 to move therethrough and includes an O-ring seal when the tubular to pipe connector sealing is not yet connected (See
[0055] As yoke screws 306 and 308 are rotated, yoke 305 is urged to move. For manual operation, a few turns can be applied to one yoke screw and then applied to the other yoke screw. The operation could be automated.
[0056] The sealing of
[0057]
[0058]
[0059] In
[0060] In tandem scoop system 400, scoops 402 and 404 are positioned upstream and downstream of each other in line with the axis of the pipe and oriented in opposite directions. Scoops 402 and 404 are mounted into a single flange 405 and secured together at a lower end by mounting member 430. Bends 432 and 433 are provided to allow the various connections to be made to valves 426 and 424. Accordingly, an entire sampling system can extend through a single flange mounting.
[0061]
[0062] Referring now to
[0063]
[0064] In wafer mount system 900, it is not necessary to provide a bend in scoops 904 and 906. Flow loop 914 can comprise densitometer 916, sampling valves 918, 920, flow meter 926, and control valves 922, 924. Fluid flows through loop 914 in the direction indicated by arrows 928 and 930. As indicated in
[0065] Accordingly, the present invention provides three compact tandem scoop system 400, 500, and 900 that mount two scoops to a single flange.
[0066]
[0067] Bi-directional flow loop scoop 700 utilizes single pipe 702 with two separate internal flow paths 704 and 706. The external shape of single pipe 702 is similar or the same as described by scoop 10 discussed hereinbefore so tubular to pipe connector can be utilized for sealing and orientation. Flow proceeds from the pipeline into scoop face 708 as indicated by arrow 710. Fluid then flows as indicated by arrow 712. As indicated by arrow 714, flow goes through a measuring loop, which may be similar to that discussed hereinbefore including a densitometer, prover, sample connections, valves, and the like. Flow then returns as indicated by arrow 716 through tube 718 which enters pipe 702 and is sealed at seal 720. Flow then continues through flowline 706 as indicated by arrow 719 and exits back into the pipeline through opening 722 as indicated by arrow 721. The sealing can be the same as discussed hereinbefore with respect to
[0068]
[0069] Scoop 800 is comprised of single pipe 804. Scoop 800 may be sealed/oriented as discussed with respect to
[0070] Accordingly, the present invention provides a highly desirable scoop design 10 as indicated in
[0071] The foregoing description of the preferred embodiments of the invention has been presented for purposes of illustration and description only. It is not intended to be exhaustive or to limit the invention to the precise form disclosed; and obviously many modifications and variations are possible in light of the above teaching. Such modifications and variations that may be apparent to a person skilled in the art are intended to be included within the scope of this invention as defined by the accompanying claims.