Flow conditioner having integral pressure tap
09625293 ยท 2017-04-18
Inventors
Cpc classification
F15D1/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G01F1/37
PHYSICS
G01F15/00
PHYSICS
Abstract
A flow conditioner includes a plate having a hole pattern and a flange surrounding the plate; and at least one pressure tap that is integral with the flow conditioner. The at least one pressure tap is on at least one of a first face of the flow conditioner, a second face of the flow conditioner, within a hole, or any combination thereof.
Claims
1. A flow conditioner, comprising: a plate having a hole pattern and a flange surrounding the plate; and at least one pressure tap that is integral with the flow conditioner, wherein the at least one pressure tap is on at least one of a first face of the flow conditioner, a second face of the flow conditioner, within a hole, or any combination thereof.
2. A flow conditioner according to claim 1, comprising an integral pressure tap on a first face of the flow conditioner, an integral pressure tap on a second face of the flow conditioner, and an integral pressure tap within at least one hole.
3. A flow conditioner according to claim 1, wherein the at least one integral pressure tap extends through the flange to at least one hole.
4. A flow conditioner according to claim 1, comprising two integral pressure taps, each integral pressure tap being located on a corner of the flow conditioner plate immediately before or after a hole.
5. A flow conditioner according to claim 1, wherein the at least one integral pressure tap comprises an inner cylindrical section joining an outer threaded connection.
6. A flow conditioner according to claim 5, further comprising a gauge line connection removably connected to an outer threaded connection.
7. A flow conditioner according to claim 1, wherein the hole pattern comprises an inner ring of holes and at least one outer ring of holes.
8. A flow conditioner according to claim 1, wherein the flow conditioner has a stepped configuration.
9. A flow conditioner according to claim 1, wherein the at least one integral pressure tap extends between holes and is bent at an angle to tap a surface of the flow conditioner.
10. A flow conditioner according to claim 1, wherein the flow conditioner has no tube bundle.
11. A flow conditioner having an integral pressure tap, comprising: a plate having a plurality of holes and a flange surrounding the plate; and at least one pressure tap that is integral with the flow conditioner, wherein the at least one pressure tap is configured on a surface selected from the group consisting of a first face of the flow conditioner, a second face of the flow conditioner, a hole throat, and any combination thereof.
12. A pipe assembly for flow measurement, comprising: a fluid flow pipe; a flow conditioner according to claim 1 disposed in said fluid flow pipe in an orientation substantially perpendicular to an axis of said fluid flow pipe.
13. A pipe assembly according to claim 12, wherein there the fluid flow pipe contains no orifice plate fitting or orifice flange union for the flow conditioner.
14. A method of measuring a pressure drop across a flow conditioner comprising measuring fluid pressure with the least one integral pressure tap of a flow conditioner according to claim 1.
15. A method according to claim 14, further comprising transferring the measurements via a gauge line connection on the flange and removably connected to the at least one integral pressure tap.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(9) Given the following enabling description of the drawings, the methods and systems should become evident to a person of ordinary skill in the art.
DETAILED DESCRIPTION OF THE INVENTION
(10) The flow conditioner according to the present invention may be utilized for flow metering and diagnosis of flow, for example, in oil, gas, and water pipelines. The flow conditioner comprises at least one pressure tap that is integral with the flow conditioner itself. Thus, the at least one pressure tap may be machined out of the same material as the flow conditioner and is physically part of the flow conditioner. The at least one pressure tap is not separately attached or connected to the flow conditioner, for example, via a weld or adhesive connection, and the flow conditioner does not comprise any tube bundle. The at least one pressure tap allows pressure drop measurements, which are used to observe the operational performance of the flow conditioner.
(11) As shown in
(12) Suitable flow conditioners that may have at least one integral pressure tap include, but are not limited to, CPA TBR, CPA 50E, and 55E/65E flow conditioners available from Canada Pipeline Accessories, Inc. of Calgary, Canada. Suitable flow conditioners may have integral vanes or a stepped configuration, as disclosed in U.S. Pat. Nos. 9,334,886; 9,297,489; D697,581; D713,492; or D721,417, the entireties of which are incorporated herein by reference. See also WO 2014/04191 A1; WO 2014/110673 A1; and WO 2014/186883 A1.
(13) According to the present invention, the flow conditioner comprises at least one integral pressure tap. In specific embodiments, there may be (1) an integral pressure tap on a first (e.g., upstream) face of the flow conditioner; (2) an integral pressure tap on a second (e.g., downstream) face of the flow conditioner; (3) an integral pressure tap within a hole (e.g., a hole throat), or; (4) any combination of such integral pressure taps. A pressure tap within a hole throat means a point within a hole (e.g., a point within a fluid length defined by the hole). The at least one integral pressure tap may be used to measure a pressure drop before, during, and after a fluid measurement process.
(14) In specific embodiments of the present invention, the at least one integral pressure tap 115 may extend through (e.g., be drilled through) a flow conditioner flange 120, as illustrated in
(15) As shown in
(16) The at least one pressure tap allows fluid pressure to be measured at various points on the flow conditioner surface (e.g., upstream face, downstream face) and/or within one or more holes. The fluid pressure measurements or readings may be transferred from the flow conditioner using connections on the flow conditioner flange. The connections on the flange may be made to comply with National Pipe Thread (NPT) or other industry standard connections. In a specific embodiment, gauge line connections may be made on a flow conditioner flange, for example, a gauge line connection 135 may be removably connectable to a threaded connection 130 of the at least one pressure tap 115, as shown in
(17) As shown in
(18) As shown in
(19) In use, as shown in
(20) The flow conditioner creates a fluid pressure drop that is measured using the at least one integral pressure tap. In a specific embodiment, pressures on at least one of an upstream face, a downstream face, or a hole throat may be collected and transmitted via the flow conditioner flange and connections to a flow computer. The pressures are then compared to calculate the flow across the flow conditioner.
(21) The flow conditioner with integral pressure tap of the present invention allows a pressure drop to be easily measured without expensive third party equipment (such as an orifice plate fittings or orifice flange unions (OFU), for example, those available from DANIEL) and without having to pressure tap a pipe wall itself. Thus, no additional modifications have to be made to the piping. A customer does not have to buy equipment and modify it for other uses (e.g., an orifice fitting containing a flow conditioner).
(22) Currently, the location of pressure taps are not uniform with respect to a flow conditioner. Accordingly, pressure data must be measured and subjected to a correction factor. In contrast, the flow conditioner of the present invention allows for a standardized pressure tap layout (size and location of the pressure taps), which provide consistent readings that can be verified with baseline test data at a test lab using the same correction factor.
(23) Although the present invention has been described in terms of particular exemplary and alternative embodiments, it is not limited to those embodiments. Alternative embodiments, examples, and modifications which would still be encompassed by the invention may be made by those skilled in the art, particularly in light of the foregoing teachings.
(24) Those skilled in the art will appreciate that various adaptations and modifications of the exemplary and alternative embodiments described above can be configured without departing from the scope and spirit of the invention. Therefore, it is to be understood that, within the scope of the appended claims, the invention may be practiced other than as specifically described herein.