MOLDED SWELLABLE PACKERS
Embodiments of the present invention provide a swellable packer and a process for manufacturing swellable packers that may be used for sealing off chambers within a well bore. Various embodiments of the present invention include a variety of in situ molding techniques, such as injection molding and compression molding. Furthermore, some embodiments of the present invention include centering end caps about a tube and securing the end caps to the tube. In these embodiments, the swellable packer can then be molded about the tube and the position of the end caps can be used to determine the position of the outer surface of the swellable polymer with respect to the tube.
In the oil and natural gas industry, wells are used to extract oil and natural gas from within the earth. A well is typically defined by a bore formed into the earth. Over time, the flow of oil or natural gas being withdrawn from a well can diminish, reducing the production of the well. Therefore, the industry has developed a variety of methods for increasing the oil or natural gas withdrawn from the well.
One such method is hydraulic fracturing, which typically begins with isolating a portion of the well located above the bottom of the well by sealing a section of the bore wall. The seal is generally made by placing one or more plugs along the depth of the bore, wherein the plugs seal against the bore wall. Between two of these plugs, or between a plug and the top or the bottom of the well, a chamber can be defined. These chambers can then be subjected to very high pressures of water or other fluids, causing the walls of the bore to fracture. This process can create additional flow of oil or natural gas into the chamber once the pressure is released.
Generally, the plugs are formed by swellable packers. In order to create a swellable packer, a tube is wrapped with a polymer which swells when exposed to oil and/or water. The swellable packer is designed to have an outer diameter slightly smaller than the bore diameter. Thus, the swellable packer can be placed down the bore in an unswelled state. Oil or water is then brought into contact with the packer, causing it to swell and seal against the wall of the bore. Once the seal is in place against the wall of the bore, the pressurized chambers can be defined for fracturing the bore wall.
A complication in wrapping the swellable polymer about a tube to create the swellable packer is that the tubes may be out-of-round or bent along the axis of the tube. The tube may be out of round by up to 0.045″ or bent along the axis up to 1″ and still be considered to be within the acceptable specification. However, if the outer diameter of the packer is out-of-round or bent by similar amounts, then the ability for the packer to properly seal against the bore wall is degraded. The current technique compensates for the tube being bent or out-of-round by mounting the tube and packer on a lathe after the packer has been formed, and then machining the outer diameter of the packer to make it perfectly round. This, of course, adds an extra step to the process of forming a swellable packer. Thus, it is desirable to find a more efficient way to form these packers.
BRIEF SUMMARY OF THE INVENTIONThese and other advantages are provided by the swellable downhole packers and improved processes of manufacturing provided by the present invention. Advantageously, embodiments of the present invention provide a method for manufacturing a swellable packer comprising the steps of: positioning one or more end caps on the support tube, the end caps defining a size and shape; positioning the end caps and support tube on one or more corresponding supports of an open mold cavity; closing the mold cavity; molding swellable polymer in molten form within the mold cavity and around the support tube; and opening the mold cavity. The molding step may be completed using a variety of molding techniques including injection molding, compression molding, or another molding technique.
In other embodiments, a swellable packer is provided wherein the location of the outer surface of the swellable packer in an unswollen state is determined by the position of the end caps on the tube. Additionally, some embodiments provide a swellable packer with steps along the length of the packer or other unique profiles.
Having thus described the invention in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
The present invention now will be described more fully hereinafter with reference to the accompanying drawings, in which some, but not all embodiments of the invention are shown. Indeed, this invention may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. Like numbers refer to like elements throughout.
One particularly advantageous swelling polymer 13 is available from Tendeka under model no. JSSEO-5. This proprietary formulation provides strong swelling and sealing characteristics. However, other swellable polymers from other manufacturers could be used in embodiments of the present invention.
In one embodiment of the present invention, as mentioned above, end caps 14 are fastened to the tube. The inner diameter of the end caps 14 may be slightly larger than the outer diameter of the tube 11. For example, there might be a 0.030″ difference between the inner diameter of the end caps 14 and the outer diameter of the tube 11. In this example, three or four shims of 0.015″ thickness might be used when securing the end cap 14 to the tube 11 to ensure the end caps 14 are centered on the tube 11. The end caps 14 may be held to tube 11 using screws; in one embodiment 8 to 12 screws may be used. In various embodiments it is important to ensure the end caps 14 are centered about the tube, as in these embodiments the position of the end caps 14 may determine the position of the outer surface of the swellable polymer 13 with respect to the tube 11, as discussed below.
The present invention provides methods for manufacturing swellable packers that include molding the packer onto the tube. Multiple types of molding are contemplated, including injection molding and compression molding. Some of the steps of molding a swellable packer are shown in
The tube 11 and the end caps 14 secured to tube 11 may then be placed in a bottom cavity 33 located in the bottom of a mold 32, as illustrated in
Once the mold is closed, as in
Once the molding process is complete, the mold can be opened, as in
Also shown by
Many modifications and other embodiments of the invention set forth herein will come to mind to one skilled in the art to which this invention pertain having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is to be understood that the invention is not to be limited to the specific embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
Claims
1. A method of manufacturing a swellable polymer packer on a support tube, the method comprising the steps of:
- positioning one or more end caps on the support tube, the end caps defining a size and shape;
- positioning the end caps and support tube on one or more corresponding supports of an open mold cavity;
- closing the mold cavity;
- molding swellable polymer in molten form within the mold cavity and around the support tube; and
- opening the mold cavity.
2. The method of claim 1, wherein a position of an outer surface of the packer relative to the support tube is determined by a position of the one or more end caps relative to the mold cavity.
3. The method of claim 2, wherein the support tube is out-of-round or bent so as to define a central axis that is not straight.
4. The method of claim 1, wherein the step of molding swellable polymer in molten form within the mold cavity and around the support tube comprises injecting molten polymer into the mold.
5. The method of claim 1, further comprising:
- before closing the mold cavity, layering at least one sheet of a swellable polymer in the open mold cavity.
6. The method of claim 1, wherein the step of molding swellable polymer in molten form within the mold cavity and around the support tube comprises compression molding.
7. The method of claim 1, wherein the supports have replaceable seats.
8. The method of claim 1, wherein the outer surfaces of the end caps are at least partially circular in cross section and the support surfaces of the supports are least partially circular in cross section, and wherein the support surfaces have the same diameter as the outer surfaces of the end caps.
9. The method of claim 1, wherein a cross-sectional dimension of the swellable packer changes along the length of the packer.
10. A swellable packer comprising:
- a support tube;
- one or more end caps secured to the support tube; and
- a swellable polymer molded around the tube such that a position of the outer surface of the swellable polymer relative to the tube is determined by a position of the end caps.
11. The swellable packer of claim 10, wherein a cross-sectional dimension of the swellable polymer molded around the tube has a cross-section that changes along a length of the packer.
12. The swellable packer of claim 10 wherein at least one end cap is secured to the support tube using set screws.
13. The swellable packer of claim 10 wherein at least one end cap defines an inner surface that is at least partially circular and having a diameter that is larger than a nominal outer diameter of a support tube.
14. The swellable packer of claim 13 wherein a portion of the swellable polymer is molded between the inner surface of the end cap and the outer diameter of the support tube.
15. The swellable packer of claim 10 wherein the support tube is out-of-round or bent so as to define a central axis that is not straight.
Type: Application
Filed: Mar 15, 2013
Publication Date: Sep 18, 2014
Applicant: Longwood Elastomers, Inc. (Greensboro, NC)
Inventor: Dennis Doweidt (Magnolia, TX)
Application Number: 13/840,289
International Classification: E21B 33/12 (20060101);