The present disclosure relates to an adjustable pipe spool and methods for coupling the adjustable pipe spool to other equipment.
Pipe spools are used in many different industries to form operational connections to other equipment. Pipe spools may be used to provide a temporary or permanent connection to a single piece of equipment, or between two pieces of equipment, and pipe spools are designed to withstand the operational conditions of the system. For example, a pipe spool may be designed for use within an oil and gas system to act as a flow conduit for fluids, gases, solids, or some combination thereof.
The present disclosure is directed to adjustable pipe spools and methods for coupling adjustable pipe spools to other equipment.
In an implementation, an adjustable pipe spool comprises an outer body; an inner body at least partially disposed within the outer body, the inner body having a slot defined by a length and a width; an adjustment ring rotationally coupled to the inner body; a lock ring rotationally coupled to the outer body and engaging the adjustment ring; and a rotation key maintained within the outer body by the lock ring, the rotation key extending into the slot. The inner body may be axially translatable with respect to the outer body between a retracted configuration and an extended configuration, and the inner body may be rotationally adjustable with respect to the outer body in the extended configuration.
In an implementation, the adjustable pipe spool further comprises an erosion ring coupled to a first end of the inner body. The erosion ring may move axially and rotationally with the inner body. The erosion ring may be disposed at least partially within the outer body. A first end of the erosion ring may engage the outer body when the inner body is in the retracted configuration. In an implementation, the erosion ring is formed of a different material than the inner body.
In an implementation, rotation of the adjustment ring with respect to the inner body causes the inner body to axially translate with respect to the outer body. The direction of rotation of the adjustment ring with respect to the inner body may cause the inner body to axially translate from the retracted configuration toward the extended configuration, or vice versa. The rotation key may engage a far end of the slot when the inner body is in the extended configuration. The rotational adjustability of the inner body with respect to the outer body may be limited by the width of the slot.
In another implementation, an adjustable pipe spool comprises an outer body, and an inner body at least partially disposed within the outer body. The inner body is axially translatable with respect to the outer body, and the inner body is rotationally adjustable with respect to the outer body. The adjustable pipe spool may further comprise an erosion ring coupled to a first end of the inner body, and the erosion ring may move axially and rotationally with the inner body. The erosion ring may be disposed at least partially within the outer body. In an implementation, the erosion ring is formed of a different material than the inner body. The adjustable pipe spool may further comprise an adjustment ring rotationally coupled to the inner body, wherein rotation of the adjustment ring with respect to the inner body may cause the inner body to axially translate with respect to the outer body. The adjustable pipe spool may further comprise a rotation key maintained within the outer body and extending into a slot in the inner body. The interaction between the rotation key and the slot may limit the axial translation of the inner body with respect to the outer body, and/or the interaction between the rotation key and the slot may limit the extent of rotational adjustability of the inner body with respect to the outer body.
In yet another implementation, an adjustable pipe spool comprises an outer body and an inner body, wherein at least one of the outer body and the inner body are axially translatable and rotationally adjustable. The adjustable pipe spool may further comprise an erosion ring coupled to the inner body. The inner body and the erosion ring may be at least partially disposed within the outer body. The inner body and the erosion ring may be axially translatable and rotationally adjustable with respect to the outer body.
The details of one or more implementations are set forth in the accompanying drawings and the description below. Other features, objects, and advantages of the implementations will be apparent from the description and drawings.
For a more complete understanding of this disclosure and its features, reference is now made to the following description, taken in conjunction with the accompanying drawings, in which:
Like reference symbols in the various drawings indicate like elements.
Pipe spools are used in many different industries to form operational connections to other equipment and to act as flow conduits for fluids, gasses, solids, and/or a combination thereof. For example, pipe spools may span between two pieces of operational equipment, thereby providing a flow conduit therebetween. Pipe spools have conventionally been constructed using a fixed length of pipe with flanges at each end. Due to this construction, each conventional pipe spool had to be custom fabricated to span the distance between two pieces of stationary equipment, and to properly orient the bolt holes of the pipe spool flanges with the bolt holes of the equipment flanges. Alternatively, a conventional pipe spool of a given length could be used with moveable equipment, such that at least one piece of equipment could be moved to adjust for any length differences (i.e. if the pipe spool was initially too short or too long to connect between the two pieces of equipment).
The present disclosure relates to adjustable pipe spools and methods for coupling adjustable pipe spools to other equipment. As described in more detail herein, the adjustable pipe spool may be extended or retracted as needed to adjust the length of the pipe spool for connection between two pieces of equipment. In addition, once the adjustable pipe spool has been extended to the desired length, the adjustable pipe spool may be rotationally adjusted to allow for bolt hole alignment when mating the adjustable pipe spool to equipment. Thus, the present disclosure is directed to an adjustable pipe spool that may be adjusted both axially and rotationally, and to methods of coupling the adjustable pipe spool to other equipment.
Referring now to
Still referring to
Referring now to
The adjustment ring 240 is operable to axially translate the inner body 220 with respect to the outer body 210. In more detail, the adjustment ring 240 includes a plurality of axial holes 244 around its circumference, as best shown in
Referring now to
Referring again to
Then the adjustable pipe spool 200 may be transitioned to an extended position. When making that transition, the outer body 210 is stationary, but the inner body 220 is moveable axially outwardly from the retracted position shown in
To axially extend the inner body 220, a human operator may insert a bar (not shown) into one of the axial holes 244 of the adjustment ring 240, as best shown in
To couple the adjustable pipe spool 200 to the second piece of equipment 14, as shown in
As with adjustable pipe spool 200, the adjustable pipe spool 300 may be extended or retracted as needed to adjust its overall length for connection between two pieces of equipment. In addition, once the adjustable pipe spool 300 has been extended to the desired length, it may be rotationally adjusted to allow for bolt hole alignment when mating the adjustable pipe spool 300 to equipment. Thus, like adjustable pipe spool 200, the adjustable pipe spool 300 may be adjusted both axially and rotationally, and the components that allow for such adjustments are similar in both implementations.
The adjustable pipe spool 300 may further comprise an optional erosion ring 310 with a first end 312 and a second end 314 that couples to another implementation of inner body 320 with a modified first end 322. In more detail, the optional erosion ring 310 is coupled at its second end 314 to the first end 322 of inner body 320 via a threaded connection 316. The optional erosion ring 310 and the inner body 320 fit within the borehole 216 of the outer body 210. Seals 330 are provided for pressure containment between the outer body 210 and the coupled inner body 320 and optional erosion ring 310. The first end 312 of the optional erosion ring 310 engages the shoulder 217 of the outer body 210 when the adjustable pipe spool 300 is in the fully retracted position shown in
Because the optional erosion ring 310 interacts with the outer body 210, the first end 322 of inner body 320 experiences less wear and abrasion during operation as compared to the first end 212 of the inner body 220 of adjustable pipe spool 200. Due to its function, in some implementations the optional erosion ring 310 may be formed of erosion and/or abrasion resistant material, or a base material with an abrasion resistant coating. In some implementations, the optional erosion ring 310 does not meet the same material requirements based on industry codes as the other components of the adjustable pipe spool 300. In some implementations, the optional erosion ring 310 may be made from extremely hard materials not feasible for the other components of the adjustable pipe spool 300. The optional erosion ring 310 may also be removable such that it may be replaced when it has sustained significant damage.
In Step 410, the method 400 comprises coupling an adjustable pipe spool to a first piece of equipment. During Step 410, the adjustable pipe spool may be in a fully retracted configuration or the adjustable pipe spool may be in a partially or fully extended configuration. In Step 420, the method 400 comprises axially extending the adjustable pipe spool, if required, to span the distance between the first piece of equipment and a second piece of equipment. In Step 430, the method 400 comprises making rotational adjustments, if required, to align bolt holes on the adjustable pipe spool with bolt holes on the second piece of equipment. In Step 440, the method 400 comprises coupling the adjustable pipe spool to the second piece of equipment.
Thus, the systems and methods of the present disclosure allow for more flexibility when coupling equipment in the field. Rather than custom fabricating a pipe spool for each operational assembly, the adjustable pipe spool of the present disclosure may function in many different operational assemblies due to its axial and rotational adjustability. The adjustable pipe spool and methods of the present disclosure also eliminate the need to move other equipment in the operational assembly when making connections.
It is to be understood the implementations are not limited to particular systems or processes described which may, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular implementations only, and is not intended to be limiting. As used in this specification, the singular forms “a”, “an” and “the” include plural referents unless the content clearly indicates otherwise. As another example, “coupling” includes direct and/or indirect coupling of members.
Although the present disclosure has been described in detail, it should be understood that various changes, substitutions and alterations may be made herein without departing from the spirit and scope of the disclosure as defined by the appended claims. Moreover, the scope of the present application is not intended to be limited to the particular implementations of the process, machine, manufacture, composition of matter, means, methods and steps described in the specification. As one of ordinary skill in the art will readily appreciate from the disclosure, processes, machines, manufacture, compositions of matter, means, methods, or steps, presently existing or later to be developed that perform substantially the same function or achieve substantially the same result as the corresponding embodiments described herein may be utilized according to the present disclosure. Accordingly, the appended claims are intended to include within their scope such processes, machines, manufacture, compositions of matter, means, methods, or steps.