Hydraulic drain for oilfield service
09784069 · 2017-10-10
Assignee
Inventors
- Michael Bair (Los Angeles, CA, US)
- Scott Sakakura (Los Angeles, CA, US)
- Simon Shin (Los Angeles, CA, US)
Cpc classification
E21B34/063
FIXED CONSTRUCTIONS
International classification
Abstract
A hydraulically actuated tubing drain for service with oil wells, water wells, gas wells and/or thermal wells has a configuration of structural features which, upon hydraulically opening the drain, prevent any debris from the rupture disk from entering either the tubing or the tubing-casing annulus. The disk housing and flow diffuser of the present invention mate directly together, capturing between the disk housing and flow diffuser a shoulder of the mandrel. This design eliminates the need for a threaded aperture through the side wall of the mandrel and the need for elastomeric seals.
Claims
1. A hydraulically actuated drain for draining a tubing string in a well, the hydraulically actuated drain comprising: a mandrel having an upper end, a lower end, with an axially-aligned opening defined within a mandrel wall, the mandrel wall having an inside and an outside, the axially-aligned opening extending between the upper end and the lower end, wherein a central axis is defined between the upper end and the lower end; the mandrel comprising an aperture which extends radially through the mandrel wall, the aperture defining a second axis perpendicular to the central axis, wherein the aperture comprises, in relative position between the inside of the mandrel wall and the outside of the mandrel wall, a first section having a first diameter and a second section having a second diameter, wherein a first shoulder is defined between the first diameter and the second diameter, the first shoulder comprising an outward face, the first shoulder further comprising an inward face, the inward face comprising a first sloping sealing surface; a flow diffuser disposed in the aperture, the flow diffuser comprising an inside end generally facing the inside of the mandrel wall and an outside end generally flush with the outside of the mandrel wall, the flow diffuser comprising one or more flow passages extending from the inside end to the outside end, the flow diffuser comprising a peripheral shoulder adapted to abut the outer face of the first shoulder of the mandrel, the flow diffuser further comprising a first set of threads adjacent to the inside end; a disk housing having an exterior end in facing relationship with the flow diffuser and an interior end facing the interior portion of the mandrel, the exterior end having a second set of threads adapted to mate up to the first set of threads of the flow diffuser, the exterior end further comprising a peripheral shoulder comprising a second sloping sealing surface adapted to seal against the first sloping sealing surface when the first set of threads of the flow diffuser are made up to the second set of threads of the disk housing; and a rupture disk disposed between the exterior end and the interior end of the disk housing.
2. The hydraulically actuated drain of claim 1 wherein the interior end of the disk housing has an opening having a diameter and the rupture disk has a rupture disk diameter greater than the diameter of the opening of the interior end.
3. The hydraulically actuated drain of claim 2 wherein the rupture disk is attached to the inside of the disk housing by a peripheral attachment ring where upon application of a hydraulic pressure, the rupture disk detaches from the disk housing along the peripheral attachment ring and the rupture disk becomes trapped between the disk housing and the flow diffuser.
4. The hydraulically actuated drain of claim 1 wherein a metal to metal seal is formed between the first sloping sealing surface and the second sloping sealing surface, the metal to metal seal sufficient, without an o-ring seal, to prevent a flow of a fluid through the aperture until the rupture disk detaches from the disk housing.
5. The hydraulically actuated drain of claim 1 wherein the inside of the mandrel wall is scalloped adjacent to the aperture.
6. A hydraulically actuated drain for draining a tubing string in a well, the hydraulically actuated drain comprising: a mandrel having an upper end, a lower end, with a axially-aligned opening defined within a mandrel wall, the mandrel wall having an inside and an outside, the axially-aligned opening extending between the upper end and the lower end, wherein a central axis is defined between the upper end and the lower end; the mandrel comprising an aperture which extends radially outward from the inside of the mandrel wall to the outside of the mandrel wall, the aperture defining a second axis perpendicular to the central axis, wherein the aperture comprises a first shoulder defined between an outer portion of the aperture and an inner portion of the aperture, the first shoulder having an outwardly facing surface and an inwardly facing surface; a flow diffuser disposed in the aperture, the flow diffuser comprising an inside end generally facing the inside of the mandrel wall and an outside end surface generally adjacent with the outside of the mandrel wall, the flow diffuser comprising a first peripheral shoulder which abuts the outwardly facing surface, the inside end comprising a first set of threads; a disk housing having an exterior end in facing relationship with the flow diffuser and an interior end facing the inside wall of the mandrel, the exterior end having a second set of threads adapted to mate up to the first set of threads of the flow diffuser, the exterior end further comprising a second peripheral shoulder which abuts the inwardly facing surface when the first set of threads of the flow diffuser are mated up to the second set of threads of the disk housing; and a rupture disk disposed between the exterior end and the interior end of the disk housing.
7. The hydraulically actuated drain of claim 6 wherein the interior end of the disk housing has an opening having a diameter and the rupture disk has a rupture disk diameter greater than the diameter of the opening of the interior end.
8. The hydraulically actuated drain of claim 7 wherein the rupture disk is attached to the inside of the disk housing by a peripheral attachment ring where upon application of a hydraulic pressure, the rupture disk detaches from the disk housing along the peripheral attachment ring and the rupture disk becomes trapped between the disk housing and the flow diffuser.
9. The hydraulically actuated drain of claim 6 wherein a metal to metal seal is formed between the second peripheral shoulder and the inwardly facing surface, the metal to metal seal sufficient, without an o-ring seal, to prevent a flow of a fluid through the aperture until the rupture disk detaches from the disk housing.
10. The hydraulically actuated drain of claim 6 wherein the inside of the mandrel wall is scalloped adjacent to the aperture.
11. A hydraulically actuated drain comprising: a mandrel having an upper end, a lower end, with an axially-aligned opening defined within a mandrel wall, the mandrel wall having an inside and an outside, the axially-aligned opening extending between the upper end and the lower end, wherein a central axis is defined between the upper end and the lower end; an aperture which extends radially into the mandrel wall, the aperture defining a radial axis, the aperture comprising a circumferential shoulder; a flow diffuser disposed in the aperture, the flow diffuser having an inside end; a disk housing having an exterior end engaged with the inside end of the flow diffuser, and the disk housing further comprises an interior end and a rupture disk is disposed between the exterior end and the interior end and the interior end has an opening having a diameter and the rupture disk has a rupture disk diameter greater than the diameter of the opening of the interior end wherein the circumferential shoulder is captured between the flow diffuser and the disk housing effecting a metal-to-metal seal between the disk housing, the flow diffuser, and the circumferential shoulder.
12. The hydraulically actuated drain of claim 11 wherein the rupture disk is attached to the inside of the disk housing by a peripheral attachment ring where upon application of a hydraulic pressure, the rupture disk detaches from the disk housing along the peripheral attachment ring and the rupture disk becomes trapped between the disk housing and the flow diffuser.
13. The hydraulically actuated drain of claim 11 wherein the inside of the mandrel wall is scalloped adjacent to the aperture.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(11) Referring specifically to the figures,
(12)
(13) The mandrel 12 has an axially-aligned opening 20 which extends between the upper end 22 and the lower end 24 of the mandrel 12 where a central axis L.sub.1 is defined between the upper end and the lower end. It is to be noted that the terms “upper end” and “lower end” are made with respect to the orientation of the drawing figures only, and that the hydraulic drain 10 may be installed with either end facing upward or downward in a well. Axially-aligned opening 20 will typically have an inside diameter which is at least as large as the inside diameter of the tubing. The largest outside diameter of the hydraulic drain 10 is at the lower end 24. This diameter may be the same diameter as a tubing coupling, which ensures a slim profile for the tool and which mitigates against erosional wear to the hydraulic drain 10 and the inside of the casing as the tubing string and drain are installed in a well. The slim profile also provides more clearance for recovery of the hydraulic drain 10 by a fishing tool, such as an overshot, in the event the apparatus becomes part of a downhole fish.
(14) As shown in
(15) A flow diffuser 42 is disposed within the aperture 30, where the flow diffuser comprises a generally plug-shaped body which is sized to be received within the aperture 30. The flow diffuser has an inside end 44 which is generally facing the interior section 26 of the mandrel 12. Flow diffuser 42 has a peripheral shoulder 48 which, when installed within aperture 30, abuts outwardly facing peripheral surface 38 of first shoulder 36. The flow diffuser 42 has a first set of threads 50 which mate with threads 60 of disk housing 58 as discussed below. Outside end 49 of flow diffuser 42 is generally flush with the exterior of the mandrel wall 28, or slightly recessed within the exterior of the mandrel wall, such that outside end 49 of the flow diffuser 42 does not increase the effective diameter of the drain 10. The flow diffuser 42 has one or more apertures 46 which extend through the flow diffuser 42, forming a flow passage there through.
(16) Disk housing 58 has an exterior end 52 which is in facing relationship with the inside end 44 of the flow diffuser 42 and an interior end 56 which faces the interior of the mandrel 12. The exterior end 52 has second set of threads 60 which mate with threads 50 of the flow diffuser 42. Peripheral shoulder 54 has a sealing surface 66 which, when disk housing 58 has been made up to flow diffuser 42, forms a metal-to-metal seal with face 40 of first shoulder 36. Sealing surface 66 may be angled to compliment the angle of face 40 which, as discuss above, may have an angle ranging from 30 to 60 degrees, with 45 degrees being the approximate angle indicated in the figures.
(17) A rupture disk 62 is disposed between the exterior end 52 and the interior end 56 of the disk housing 58. Rupture disk 62 is attached to the approximate center of disk housing 58 by a peripheral ring 64 having a reduced wall thickness. When sufficient hydraulic pressure is applied to the rupture disk 62, the rupture disk will sever from the disk housing 58 along the boundary of peripheral ring 64. Peripheral ring 64 has diameter D.sub.p which defines the diameter of the severed rupture disk 62. Diameter D.sub.p is larger than the diameter of the apertures 46 in flow diffuser 42 and the diameter of opening D.sub.3 at interior end 56 of disk housing 58. Thus, once separated, the rupture disk 62 will be trapped between the flow diffuser 42 on the outside and the interior end 56 of disk housing 58. This design prevents the rupture disk from moving inwardly and falling down the tubing string or escaping outwardly into the tubing-casing annulus. It is to be appreciated that embodiments of the present invention do not require that aperture 30 have any threads. Instead, the flow diffuser 42 and disk housing 58 are made up to one another, where a shoulder within aperture 30 is sandwiched or captured between the flow diffuser and disk housing. This method of installing the flow diffuser and disk housing reduces the possibility of damage to the mandrel 12.
(18) The mandrel 12 will be manufactured from materials having the mechanical properties and material composition suitable for high tensile loads in a potentially corrosive environment. For example, the mandrel may be manufactured from 3.5 inch round bar complying with AISI 1018 ASTM A108. The flow diffuser 42 and disk housing 58 may be manufactured from 2.0 inch round bar of 17-4 PH (precipitation hardened) H925 to H1025 condition (heat treat condition). The disk housing 58 may be manufactured from 1.75 inch stock round bar of 316 stainless steel, where the rupture disk is rated to shear at a variety of burst pressures, including 3,000 to 7,000 psi.
(19) While the above is a description of various embodiments of the present invention, further modifications may be employed without departing from the spirit and scope of the present invention. Thus the scope of the invention should not be limited according to these factors, but according to the following appended claims.