The present invention relates generally to riser assemblies suitable for offshore drilling and more particularly, but not by way of limitation, to splittable components of a riser assembly.
Offshore drilling operations have been undertaken for many years. Traditionally, pressure within a drill string and riser pipe have been governed by the density of drilling mud alone. More recently, attempts have been made to control the pressure within a drill string and riser pipe using methods and characteristics in addition to the density of drilling mud. Such attempts may be referred to in the art as managed pressure drilling (MPD). See, e.g., Frink, Managed pressure drilling-what's in a name?, Drilling Contractor, March/April 2006, pp. 36-39.
MPD techniques generally require additional or different riser components relative to risers used in conventional drilling techniques. These new or different components may be larger than those used in conventional techniques. For example, riser segments used for MPD techniques may utilize large components that force auxiliary lines to be routed around those components, which can increase the overall diameter or transverse dimensions of riser segments relative to riser segments used in conventional drilling techniques. However, numerous drilling rigs are already in existence, and it is generally not economical to retrofit those existing drilling rigs to fit larger-diameter riser segments. One solution to this problem is found in related U.S. patent application Ser. No. 14/888,894, which is incorporated by reference in its entirety, where auxiliary lines are routed through passages in the periphery of the riser components. While this solution permits these riser components to be used on already existing or conventional drilling rigs, it can create another problem; namely, restricting access to internal features of the riser components unless the auxiliary lines around the riser components are removed. At least some of the presently described embodiments can address this issue for various riser components by allowing the riser components and their associated auxiliary lines to be split in separate pieces.
Some embodiments of the present riser-component assemblies comprise: a housing having a first housing member defining a first opening and having a first mating face, and a second housing member defining a second opening and having a second mating face, the second housing member configured to be releasably coupled to the first housing member to define a chamber in fluid communication with the first and second openings, the chamber configured to receive an annular seal around a primary axis extending through the first and second openings, the first housing member further having a peripheral portion defining a first passage that is distinct from the chamber and configured to receive a pin connector; and a first pin connector extending through the first passage and coupled to the first housing member; where a first end of the first pin connector extends beyond the first mating face such that the first end of the first pin connector can be inserted into a box connector coupled to the second housing member as the first mating face is moved toward the second mating face. Some embodiments further comprise a plurality of auxiliary lines. In some embodiments, the plurality of auxiliary lines comprise a choke line or a kill line. In some embodiments, the first housing member includes a first flange portion through which the first passage extends. In some embodiments, the second housing member includes a peripheral portion defining a second passage that is distinct from the chamber and configured to receive the first pin connector, and the first pin connector extends through the first passage and the second passage. In some embodiments, the first housing member includes a first flange portion through which the first passage extends. In some embodiments, the second housing member includes a second flange portion through which the second passage extends.
Some embodiments of the present riser-component assemblies further comprise: a first auxiliary line coupled to the first housing member and having a first end coupled to the first pin connector. Some embodiments further comprise: a second auxiliary line configured to be coupled to the second housing member; and a box connector on a first end of the second auxiliary line, the box connector configured to receive the first end of the first pin connector as the second mating face is moved toward the first mating face. Some embodiments further comprise: the annular seal, where the annular seal is configured to receive an annular seal designed to seal around a drill string extending through the first and second openings coaxial with the primary axis.
Some embodiments of the present riser-component assemblies further comprise: a first main tube segment having central lumen in fluid communication with the first opening, a first end coupled to the first housing member on a side opposite the first mating face, and a second end spaced apart from the first housing member; and a second main tube segment having a central lumen in fluid communication with the second opening, a first end coupled to the second housing member on a side opposite the second mating face, and a second end spaced apart from the second housing member. Some embodiments further comprise: a first flange coupled to the second end of the first main tube segment, the first flange comprising an auxiliary hole configured to receive a first auxiliary line. In some embodiments, the first auxiliary line has a first end including a box connector configured to receive a portion of the first pin connector, and a second end configured to be coupled to the first flange. Some embodiments further comprise: a second flange coupled to the second end of the second main tube segment, the second flange comprising an auxiliary hole configured to receive an auxiliary line connector having a flange pin connector extending from the second flange toward the first end of the second main tube segment. In some embodiments, the second auxiliary line further comprises a second box connector on a second end of the second auxiliary line, the second box connector configured to receive a portion of the flange pin connector.
Some embodiments of the present riser-component assemblies further comprise: a bracket configured to secure the first pin connector to the first housing member.
In some embodiments of the present riser-component assemblies, the pin connector comprises a flange having a transverse dimension that is larger than a corresponding transverse dimension of the first passage.
In some embodiments of the present methods of assembling a riser-component, the method comprises: positioning an annular seal between a first housing member and a second housing member, the first housing member defining a first opening and having a first mating face, the second housing member defining a second opening and having a second mating face, the second housing member configured to be releasably coupled to the first housing member to define a chamber in fluid communication with the first and second openings, the chamber configured to receive an annular seal around a primary axis extending through the first and second openings, the first housing member further having a peripheral portion defining a first passage that is distinct from the chamber and configured to receive a pin connector (where: a first pin connector extends through the first passage and is coupled to the first housing member with a first end of the first pin connector extending beyond the mating face of the first housing member; and a first auxiliary line having a first end with a first box connector is coupled to the second housing member); aligning the first opening, annular seal, and second opening with the first mating face of the first housing member facing the second mating face of the second housing member; aligning the first box connector of the first auxiliary line with the first end of the pin connector; and moving the second housing member and first housing member together such that the first end of the first pin connector extends into the first box connector.
Some embodiments of the present methods further comprise: coupling a plurality of auxiliary lines to the second housing member. In some embodiments, the plurality of auxiliary lines comprise a choke line or a kill line. In some embodiments, the second housing member includes a peripheral portion defining a second passage that is distinct from the chamber and configured to receive the first pin connector; and the method further comprises aligning the first pin connector with the second passage and moving the second housing member and first housing member together such that the first end of the first pin connector extends through the second passage. In some embodiments, the first housing member includes a first flange portion through which the first passage extends and the second housing member includes a second flange portion through which the second passage extends. In some embodiments, the first pin connector comprises a flange having a transverse dimension that is larger than a corresponding transverse dimension of the first passage; and the method further comprises extending the first pin connector through the first passage on the side of the first mating face until the flange contacts the first mating face. Some embodiments further comprise: coupling the first pin connector to the first housing member with a bracket.
Some embodiments of the present methods further comprise: coupling a first end of a first main tube segment to the first housing member on a side opposite the first mating face, the first main tube segment having a central lumen in fluid communication with the first opening, and coupling a second end of the first main tube segment to a first flange, where the second end of the first main tube segment is spaced apart from the first end of the first main tube segment; and coupling a first end of a second main tube segment to the second housing member on a side opposite the second mating face, the second main tube segment having central lumen in fluid communication with the second opening, and coupling a second end of the second main tube segment to a second flange, where the second end of the second main tube segment is spaced apart from the first end of the second main tube segment. Some embodiments further comprise: positioning a first end of a second auxiliary line in a first auxiliary hole defined on a peripheral portion of the first flange, the second auxiliary line having a second end with a box connector configured to receive a second end of the first pin connector. Some embodiments further comprise: receiving a first portion of a first flange pin connector in a second auxiliary hole defined on a peripheral portion of the second flange, and receiving a second portion of the first flange pin connector in a second box connector on a second end of the first auxiliary line.
In some embodiments of the presents methods of assembling a riser, the method comprises: positioning a first pin connector in a first passage of a first housing member defining a first opening and having a first mating face, the first housing member configured to be coupled to a second housing member defining a second opening and having a second mating face, the second housing member configured to be releasably coupled to the first housing member to define a chamber in fluid communication with the first and second openings, the chamber configured to receive an annular seal around a primary axis extending through the first and second openings, the first housing member further having a peripheral portion defining the first passage such that the first passage is distinct from the chamber; and coupling the first pin connector to the first housing member such that a first end of the first pin connector extends beyond the first mating face. Some embodiments further comprise: coupling a plurality of auxiliary lines to the second housing member. In some embodiments, the plurality of auxiliary lines comprise a choke line or a kill line. Some embodiments further comprise: coupling a first auxiliary line having a first end with a first box connector to the second housing member. Some embodiments further comprise: aligning the first opening, annular seal, and second opening with the first mating face of the first housing member facing the second mating face of the second housing member; aligning the first box connector of the first auxiliary line with the first end of the pin connector; and moving the second housing member and first housing member together such that the first end of the first pin connector extends into the first box connector.
In some embodiments of the present methods, the second housing member includes a peripheral portion defining a second passage that is distinct from the chamber and configured to receive the first pin connector; and the method further comprises aligning the first pin connector with the second passage and moving the second housing member and first housing member together such that the first end of the first pin connector extends through the second passage. In some embodiments, the first housing member includes a first flange portion through which the first passage extends and the second housing member includes a second flange portion through which the second passage extends.
In some embodiments of the present methods, the first pin connector comprises a flange having a transverse dimension that is larger than a corresponding transverse dimension of the first passage; and the method further comprises extending the first pin connector through the first passage on the side of the first mating face until the flange contacts the first mating face.
Some embodiments of the present methods further comprise: coupling the first pin connector to the first housing member with a bracket.
Some embodiments of the present methods further comprise: positioning an annular seal within the chamber.
Some embodiments of the present methods further comprise: coupling a first end of a first main tube segment to the first housing member on a side opposite the first mating face, the first main tube segment having central lumen in fluid communication with the first opening, and coupling a second end of the first main tube segment to a first flange, where the second end of the first main tube segment is spaced apart from the first end of the first main tube segment; and coupling a first end of a second main tube segment to the second housing member on a side opposite the second mating face, the second main tube segment having central lumen in fluid communication with the second opening, and coupling a second end of the second main tube segment to a second flange, where the second end of the second main tube segment is spaced apart from the first end of the second main tube segment. Some embodiments further comprise: positioning a first end of a second auxiliary line in a first auxiliary hole defined on a peripheral portion of the first flange, the second auxiliary line having a second end with a box connector configured to receive a second end of the first pin connector. Some embodiments further comprise: receiving a first portion of a first flange pin connector in a second auxiliary hole defined on a peripheral portion of the second flange, and receiving a second portion of the first flange pin connector in a second box connector on a second end of the first auxiliary line.
The term “coupled” is defined as connected, although not necessarily directly, and not necessarily mechanically; two items that are “coupled” may be unitary with each other. The terms “a” and “an” are defined as one or more unless this disclosure explicitly requires otherwise. The term “substantially” is defined as largely but not necessarily wholly what is specified (and includes what is specified; e.g., substantially 90 degrees includes 90 degrees and substantially parallel includes parallel), as understood by a person of ordinary skill in the art. In any disclosed embodiment, the term “substantially” may be substituted with “within [a percentage] of” what is specified, where the percentage includes 0.1, 1, 5, and 10 percent.
Further, a device or system that is configured in a certain way is configured in at least that way, but it can also be configured in other ways than those specifically described.
The terms “comprise” (and any form of comprise, such as “comprises” and “comprising”), “have” (and any form of have, such as “has” and “having”), and “include” (and any form of include, such as “includes” and “including”) are open-ended linking verbs. As a result, an apparatus that “comprises,” “has,” or “includes” one or more elements possesses those one or more elements, but is not limited to possessing only those elements. Likewise, a method that “comprises,” “has,” or “includes” one or more steps possesses those one or more steps, but is not limited to possessing only those one or more steps.
Any embodiment of any of the apparatuses, systems, and methods can consist of or consist essentially of—rather than comprise/include/have—any of the described steps, elements, and/or features. Thus, in any of the claims, the term “consisting of” or “consisting essentially of” can be substituted for any of the open-ended linking verbs recited above, in order to change the scope of a given claim from what it would otherwise be using the open-ended linking verb.
The feature or features of one embodiment may be applied to other embodiments, even though not described or illustrated, unless expressly prohibited by this disclosure or the nature of the embodiments.
Some details associated with the embodiments are described above and others are described below.
The following drawings illustrate by way of example and not limitation. For the sake of brevity and clarity, every feature of a given structure is not always labeled in every figure in which that structure appears. Identical reference numbers do not necessarily indicate an identical structure. Rather, the same reference number may be used to indicate a similar feature or a feature with similar functionality, as may non-identical reference numbers. The figures are drawn to scale for at the least the embodiments shown.
Referring now to the drawings, and more particularly to
c show the depicted embodiment of isolation unit component assembly 18 in more detail. In this embodiment, assembly 18 includes a housing 100 coupled to upper and lower main tube segments 104, 108. Main tube segments 104, 108 can have central openings or lumens 112 that are in fluid communication with openings 144, 148 of housing 100 (as shown in
Housing 100 can comprise an upper housing member 132 and a lower housing member 136 joined at least in part by pin connectors 124. As shown in
As shown in
As further shown in
In the embodiment shown, each upper auxiliary line 116 includes a second box connector 174 that can be sized to accept pin end 178b of upper flange pin connector 178. Box connector 174 can be sized to be the same as or different than box connector 170, depending on the configuration, and can include similar features, including a recess 174a and grooves 238, as shown in
In the configuration shown in
As shown in
As shown in
Once configured in the manner described, isolation unit component assembly 18 will resemble split configuration 1000 shown in
The above specification and examples provide a complete description of the structure and use of illustrative embodiments. Although certain embodiments have been described above with a certain degree of particularity, or with reference to one or more individual embodiments, those skilled in the art could make numerous alterations to the disclosed embodiments without departing from the scope of this invention. As such, the various illustrative embodiments of the methods and systems are not intended to be limited to the particular forms disclosed. Rather, they include all modifications and alternatives falling within the scope of the claims, and embodiments other than the one shown may include some or all of the features of the depicted embodiment. For example, elements may be omitted or combined as a unitary structure, and/or connections may be substituted. Further, where appropriate, aspects of any of the examples described above may be combined with aspects of any of the other examples described to form further examples having comparable or different properties and/or functions, and addressing the same or different problems. Similarly, it will be understood that the benefits and advantages described above may relate to one embodiment or may relate to several embodiments.
While the above specification refers to the embodiment of isolation unit component assembly 18, the invention is not to be so limited. Pin connectors 124 or variations thereof may be used to allow splitting of other types of isolation unit component assemblies or other riser-components including rotating control device (RCD) body components (e.g., RCD body component 14) and flow spool components (e.g., flow spool component 22).
The claims are not intended to include, and should not be interpreted to include, means-plus- or step-plus-function limitations, unless such a limitation is explicitly recited in a given claim using the phrase(s) “means for” or “step for,” respectively.
This application is a continuation of U.S. application Ser. No. 15/947,244, filed on Apr. 6, 2018, which claims priority to U.S. Provisional Application No. 62/482,551, filed Apr. 6, 2017, the entire contents of each application are specifically incorporated by reference herein without disclaimer.
Number | Date | Country | |
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62482551 | Apr 2017 | US |
Number | Date | Country | |
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Parent | 15947244 | Apr 2018 | US |
Child | 16863672 | US |