Well production stream solid debris separator apparatus
10780380 ยท 2020-09-22
Assignee
Inventors
Cpc classification
B04C5/085
PERFORMING OPERATIONS; TRANSPORTING
B01D2221/04
PERFORMING OPERATIONS; TRANSPORTING
E21B43/34
FIXED CONSTRUCTIONS
B04C5/13
PERFORMING OPERATIONS; TRANSPORTING
B04C5/103
PERFORMING OPERATIONS; TRANSPORTING
International classification
B04C5/13
PERFORMING OPERATIONS; TRANSPORTING
B04C5/103
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A well production stream solid debris separator apparatus. The apparatus includes a spherical vessel. A cylindrical sump extends below and radially from the spherical vessel. A centrifugal cylinder is positioned within the spherical vessel, the centrifugal cylinder having an axis concentric with a diameter of the spherical vessel and having an open bottom. An outlet port passes through the cylindrical vessel and through the spherical vessel with the outlet port opposed to the cylindrical sump. An inlet port passes through the spherical vessel and passes into the centrifugal cylinder substantially tangential to an inner surface of the centrifugal cylinder.
Claims
1. A well production stream solid debris separator apparatus, which comprises: a spherical containment vessel; a cylindrical sump extending below and radially from said spherical containment vessel; a centrifugal cylinder within said spherical vessel, said centrifugal cylinder having an axis concentric with a diameter of said spherical vessel and having an open bottom, wherein said centrifugal cylinder has a substantially closed top and an opening passage in said top, and wherein said centrifugal cylinder is mounted within an upper hemisphere of the spherical containment vessel; an outlet port passing through said centrifugal cylinder and through said spherical containment vessel, said outlet port opposed to said sump, wherein said centrifugal cylinder axis is concentric with an axis of said outlet port; and an inlet port passing through said spherical containment vessel and passing into said centrifugal cylinder substantially tangential to an inner surface of said centrifugal cylinder.
2. The well production stream solid debris separator apparatus as set forth in claim 1 with at least one interception baffle within said spherical vessel.
3. The well production stream solid debris separator apparatus as set forth in claim 2 wherein said at least one interception baffle has an attachment leg and an interception leg and wherein said baffle has an L-shaped cross-section.
4. The well production stream solid debris separator apparatus as set forth in claim 2 wherein said at least one interception baffle is at an angle of between 40 to 50 from a plane perpendicular to said centrifugal cylinder.
5. The well production stream solid debris separator apparatus as set forth in claim 4 wherein said at least one interception baffle is at an angle of approximately 45.
6. The well production stream solid debris separator apparatus as set forth in claim 1 wherein said outlet port extends to said open bottom of said centrifugal cylinder.
7. The well production stream solid debris separator apparatus as set forth in claim 1 wherein said cylindrical sump has at least one cleanout access port.
8. The well production stream solid debris separator apparatus as set forth in claim 1 wherein said spherical vessel has the upper hemisphere joined with a lower hemisphere and wherein said centrifugal cylinder is within said upper hemisphere.
9. The well production stream solid debris separator apparatus as set forth in claim 1 wherein said centrifugal cylinder has an abrasion-resistant inner lining.
10. The well production stream solid debris separator apparatus as set forth in claim 1 wherein a terminal end of said inlet port is mitered to match an inside diameter of said centrifugal cylinder.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(7) The embodiments discussed herein are merely illustrative of specific manners in which to make and use the invention and are not to be interpreted as limiting the scope.
(8) While the invention has been described with a certain degree of particularity, it is to be noted that many modifications may be made in the details of the invention's construction and the arrangement of its components without departing from the scope of this disclosure. It is understood that the invention is not limited to the embodiments set forth herein for purposes of exemplification.
(9) Referring to the drawings in detail,
(10) As seen in
(11) As seen in
(12) The apparatus is generally oriented vertically to ground 36 so that the weld seam is substantially parallel to ground.
(13) A sump 12 is attached to the bottom of the spherical pressure-containment vessel 11 to provide for storage of accumulated solid debris. The sump 12 is cylindrical, disposed vertically to ground 36, and is capped on the bottom end. One or more optional cleanout parts 38 may be provided. Alternately, the bottom end of the sump 12 may terminate into a second pressure vessel (not shown), having an interior surface defining a spherical interior space, to increase solid debris capacity.
(14) The well production stream is under high pressure either from well pressure or blowback from hydraulic fracturing or both. The well production stream is introduced into the interior of the spherical pressure-containment vessel 11 via a well production stream inlet port 13. The well production stream, less the captured solid debris, exits the spherical pressure-containment vessel via a well production stream outlet port 14. The stream from the outlet port may be directed to other separators and other processing equipment. A liquid drain/solid debris outlet port 15, located at the bottom of the sump 12, allows removal of solid debris by utilizing either a manual valve, an automatic timed valve, or by other means (not shown).
(15) As best seen in
(16) The centrifugal cylinder 21 may include an internal, abrasion-resistant lining 18.
(17) The high-pressure well production stream is introduced into the interior of the spherical pressure-containment vessel 11 via the well production stream inlet port 13 and then tangentially into the interior of the cylinder 21. Arrow 40 in
(18) An open bottom of the well production stream outlet port 14 that is interior to the cylinder 21 is positioned to generally match the level bottom of the cylinder 21. The well production stream outlet port 14 and the centrifugal cylinder 21 share the same axis and vertical center line.
(19) Furthermore,
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(21) In summary, the present invention provides an apparatus for capturing solid debrisgenerally sand and rockfrom a well production or completion stream comprised of water, hydrocarbon liquid, and hydrocarbon gas. A well production stream solid debris separator apparatus includes an upper pressure-containment vessel having an interior surface defining a spherical interior space. A centrifugal cylinder, disposed vertically, is mounted in the upper half of the spherical pressure-containment vessel. The pressurized well production stream is introduced into the spherical interior space and then tangentially into the cylinder. The centrifugal cylinder protects the spherical pressure-containment vessel from structural damage due to abrasion and is sized to produce sufficient stream retention to allow the resulting centrifugal force to move the heavier solid debris outward to the cylinder inner wall, where it falls, exiting the cylinder and entering the lower interior spherical space. The resulting velocity drop is sufficient to prevent the solid debris from abrading the interior wall of the spherical vessel. The separator apparatus also comprises a plurality of solid debris interception baffles attached to the lower half of the interior spherical surface to direct the solid debris into a sump, which is attached to the lower portion of the spherical vessel. The sump is provided to increase solid debris capacity. The separator also includes a well production stream outlet port at the top of the vessel and a liquid drain/solid debris outlet port at the lower end of the sump.
(22) The present invention may be utilized at the surface of a well at the wellhead and may be used with other separators and processing equipment.
(23) In order to assess the performance of the present invention, a series of computational fluid dynamics (CFD) calculations were conducted. It was determined that a 200 m diameter particulate approaches the lower bound of most sand size distributions that would likely be experienced. Based on a simulation generated, most distributions of sand particles entering the apparatus will likely be separated from the major inflow stream with very high efficiency, upwards of 85% or higher.
(24) Whereas, the invention has been described in relation to the drawings attached hereto, it should be understood that other and further modifications, apart from those shown or suggested herein, may be made within the scope of this invention.