This invention relates to a rotating control device, more specifically to a new rotating control device assembly clamping mechanism.
In the oil and gas industry, managed pressure drilling (MPD) is important in order to help in minimizing drilling hazards with pressure control. MPD involves actively controlling well pressure. By using a closed-loop system the operators using MPD can determine a well's downhole pressure limits and can also manage the annular pressure profile.
Rotating control devices (RCDs) create a pressure-tight barrier in the wellbore annulus that enables safe fluid containment and diversion, a vital defense against drilling hazards. As a critical element of managed pressure drilling (MPD) systems, RCDs provide an additional line of defense to protect oil rig personnel and equipment.
RCD devices provide an annular pressure seal in various diameter wells under standard temperature conditions. RCD devices enable drilling operations in managed pressure drilling to continue while isolating rig personnel from potentially harmful wellbore fluids and gases.
The flowline hub and clamp is the connection for attaching pipe work to the RCD for fluid to flow through. Previously this was done with either hammer unions or flanges. Flanges increase the overall high and/or width with additional machining required on the unit. Hammer unions will increase overall width and can be damaged easily and cause leaks. Flanges are difficult to install in the tight areas or some rigs as installing the studs is much more precise then the connections of a hammer union and hub and clamp. The main reasons therefore of this are to decrease overall height and width in a fashion that does not decrease the durability of the unit. The main point of the connection is relevant to the overall height of the entire assembly of the body and bearing assembly as well the overall outer diameter—these are two key factors which need to be taken into account when considering new designs.
Despite the available technologies to use with RCDs, there still exists a need for a clamping mechanism which facilitates the operational use of the RCD and can preferably increase the safety profile in installing RCDs.
The inventors have designed and developed a novel clamping mechanism (also referred to as a closure arrangement) for rotating control devices (RCDs) along with a novel hub attachment which greatly facilitates operations involving RCDs.
According to a first aspect of the present invention, there is provided a novel rotating control device (RCD) for use managed pressure devices used in drilling oil (and gas) wells. One of the advantages of the present invention is that it provides a quicker system allowing for the various pieces of a clamping and closure assembly to be attached much faster.
According to an aspect of the present invention, there is provided a closure arrangement for use on a rotating control device used during managed pressure drilling, said closure arrangement adapted for the installation of a bearing assembly adapted for insertion into a body, said body defining an upper circular opening and comprising an outer circumferential edge, said closure arrangement comprising:
Preferably, the inwardly protruding shoulder of the closure collet is adapted to fit a complementary cavity located on said bearing assembly.
Preferably also, the closure collet comprises a single piece comprising an upper section itself comprising a solid upper ring, and a lower section comprising a plurality of flexible fingers integral with the upper section adapted to allow the expansion of the lower part over the outer circumferential edge of the body when inserting or removing the closure arrangement therefrom.
According to a preferred embodiment of the present invention, the lock ring comprises a solid piece comprising two or more ears adapted to attach lifting means. Preferably, the lifting means comprise commercially available eye bolts intended for lifting.
According to a preferred embodiment of the present invention, wherein the inwardly protruding shoulder of the collet is adapted to be inserted between a first piece and a second piece on the bearing assembly wherein the first piece is adjacent to the second piece and wherein the collet does not create a rotational lock to said bearing assembly.
According to a preferred embodiment of the present invention, upon installation, the bearing assembly is maintained in alignment with the body with anti-rotation pins.
According to a preferred embodiment of the present invention, the closure collet fingers further comprise a shallow inward facing taper adapted to engage with a shallow outward facing taper positioned on an upper outside circumferential edge of the body.
According to a preferred embodiment of the present invention, the closure collet is also adapted to expand over a lip located on the upper edge of the body.
Preferably, the closure collet and the body each comprise complimentary tapers adapted to mutually engage one another to guide and center the bearing assembly during the process of lowering the bearing assembly within the circular opening of the body.
Preferably, when the bearing assembly is fully seated in the body, the closure collet is secured to the body by fitting engagement of the upward facing tapered face on the bottom of the collet with the downward facing lower tapered face on the body.
According to a preferred embodiment of the present invention, the collet lock ring is adapted to freely move when located around the middle section of the closure collet and can slide downward to the bottom section of the closure collet until a downward facing taper on the inside of the lock ring is in engagement with an upward facing taper on the closure collet.
According to another aspect of the present invention, there is provided a method of securing a bearing assembly into a body during managed pressure drilling operations, said body having an upper circumferential opening defining a circular aperture, wherein said method comprises:
Additional features and advantages of the invention will be set forth in the detailed description which follows, and in part will be readily apparent to the person skilled in the art from that description or recognized by practicing the invention as described herein, including the detailed description which follows, the claims, as well as the appended figures.
The invention may be more completely understood in consideration of the following description of various embodiments of the invention in connection with the accompanying figures, in which:
The clamping mechanism is preferably a collet which is viewable in
According to a preferred embodiment of the present invention, the closure arrangement consists of 4 separate pieces: bearing assembly, body, closure collet, and collet lock ring.
Once everything is assembled, the lock ring cannot be removed from the closure collet due to an upward facing taper at the bottom and a shoulder at the top. Once installed inside the body as desired, the bearing assembly is rotationally locked to the body through the use of dowel pins which are press fit into the top face of the body. These pins engage in slots in the bottom face of the bearing assembly.
To install the closure arrangement according to a preferred embodiment of the present invention and illustrated in accompanying
The removal can be effected by following these steps:
According to a preferred embodiment of the present invention, each one of the fingers (32) is identical and comprises a top portion (32a) coinciding with the top portion of the collet (3), a middle section (32b) which is narrower and adapted to receive the collet ring and allow such to slide up and down in the installation process and a bottom section adapted to provide a tight fit around the body. More specifically, the bottom portion of the fingers has an enlarged tip having protrusions both inwardly and outwardly. The inward protrusions are meant to fit into a space on the body located beneath the top portion, while the outward protrusions on the bottom section of the fingers are meant to prevent the collet ring from slipping off when the latter is lowered in position to secure the closure arrangement. The overall barbell-like shape of each one of the fingers allows to act as a whole as a means to maintain the closure collet around the collet at all times. Upon securing the collet to the body or removing the collet from the body, the collet ring basically is located around the middle section (32b) allowing the fingers (32) to expand, as their shape allows to go over the circumferential edge of the body and be either installed around the body or removed from the body depending on the operation being carried out.
Preferably also, the bottom portions (32c) of the fingers and the outer circumference of the body have a complementary taper and lip to provide a secure tight and impermeable fit. This is best illustrated in
While the foregoing invention has been described in some detail for purposes of clarity and understanding, it will be appreciated by those skilled in the relevant arts, once they have been made familiar with this disclosure that various changes in form and detail can be made without departing from the true scope of the invention in the appended claims.
Number | Date | Country | |
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Parent | 16493554 | Sep 2019 | US |
Child | 18517974 | US |