The field of the invention relates to tubulars that are expanded and more particularly the use of an external device to increase the final reach of the expansion.
There are limits to the amount of expansion a tubular can withstand and still remain structurally sound. Some applications require more significant expansions for example where a hanger or a packer has to go through tubing and be expanded into larger casing below.
Rather than accepting limitations on the percentage expansion that a tubular can tolerate, the present invention seeks a way to affix a tubular to a surrounding tubular using an articulated device on the exterior of the tubular to enhance its reach to a surrounding tubular without exceeding its reasonable expansion capabilities. In some embodiments the extension into a supportive or sealing relation with a surrounding tubular can be accomplished even without internal expansion of the tubular itself and exclusively with an exterior articulated device that can be actuated by manipulation of the tubular within.
Of marginal relevance to the present invention are split washers that can be closed over a bolt or shaft without having to remove it. These designs are generally two pieces that snap over a shaft and some that lock upon being snapped. Examples of such designs are U.S. Pat. Nos. 1,558,364; 1,777,614; 2,358,606 and 6,488,461. However, none of these designs accommodate expansion of the structure within or a supporting or sealing engagement about their exterior. Those skilled in the art will appreciate the various aspects of the invention from the description of the preferred embodiment and the associated drawings while recognizing that the full scope of the invention is given by the associated claims.
Nested articulated split rings move relatively to each other to enlarge their outer dimension for a grip on a surrounding tubular or the wellbore. The rings can be articulated to enlarge their outside dimension with relative movement that can be initiated by dimensional expansion from within the tubular or manipulation of the tubular that creates the desired relative movement. The relative movement can be locked in after it is made to secure the grip. Different shape profiles that magnify the radial outer dimension in excess of the percentage dimensional change in the underlying tubular are contemplated.
While a saw tooth pattern is illustrated that is at a minimum outside diameter 36, as shown in
The operation of the device increases the circumference 36 as the tubular 10 is expanded in a known manner. Rather than simply increasing the outside diameter of a tubular such as 10 from expansion, the use of the present invention allows the expansion of the underlying tubular 10 to be amplified. This happens as radial expansion of component 18 with the tubular 10 allows teeth 30 to move relative to teeth 28 with the result being an opening of the gap 38 wider as circumference 36 increases. Using surface roughening as illustrated in
The nested components can have any shape including discrete projections on a predetermined pattern and elongated ridges that are sinusoidal in section to be nested when in phase and additionally extended when placed out of phase with a maximum occurring when they are 90 degrees out of phase, for example.
While the outer circumference 36 can be what comes in contact with the surrounding tubular, a seal 44 can overlay assembly 14 preferably at component 26. The seal 44 can take the form of a sleeve compatible with well conditions and resilient to form a seal. A material that swells with exposure to well fluids can also be used for seal 44. As an alternative actuation mode, a material 44 that is not necessarily a seal but that drags on the surrounding tubular at run in can be used. The intent is that by such dragging it resists rotation of assembly 14 as assembly 12 is rotated, rather than expanded to cause relative movement between teeth 28 and 30 to fixate the tubular 10.
While components 16 and 24 have been shown as complete tubes, they too can be split preferably 180 degrees opposed from their respective attachment points at 22 and 42. The inner component 12 can be loosely secured against longitudinal movement with respect to tubular 10 or it may be more permanently secured to it. The construction materials for the inner and outer components must be able to tolerate the compressive loading placed on them when actuated against the wellbore or the surrounding tubular and can be metallic, non-metallic, composites or other durable materials.
Optionally, components 12 and 14 may comprise only overlapping segments 18 and 26 with inner segment 18 secured or loosely mounted to tubular 10.
The above description is illustrative of the preferred embodiment and many modifications may be made by those skilled in the art without departing from the invention whose scope is to be determined from the literal and equivalent scope of the claims below.
Number | Name | Date | Kind |
---|---|---|---|
529831 | Peckham et al. | Nov 1894 | A |
760914 | Newberry | May 1904 | A |
1332626 | Henegar | Mar 1920 | A |
1558364 | Iverson | Oct 1925 | A |
1662411 | Bonat et al. | Mar 1928 | A |
1777614 | Hauger | Oct 1930 | A |
2225031 | Caldwell | Dec 1940 | A |
2358606 | Summers | Sep 1944 | A |
2450425 | Frisby | Oct 1948 | A |
2860540 | Karlsson | Nov 1958 | A |
3162084 | Wurzel | Dec 1964 | A |
3495496 | Keim | Feb 1970 | A |
4274323 | Resnicow | Jun 1981 | A |
5836367 | Calabrese | Nov 1998 | A |
6012523 | Campbell et al. | Jan 2000 | A |
6488461 | Zacharias et al. | Dec 2002 | B1 |
7011482 | Underwood et al. | Mar 2006 | B2 |
7017669 | Johnston et al. | Mar 2006 | B2 |
20020070503 | Zimmerman et al. | Jun 2002 | A1 |
20040090068 | Evans et al. | May 2004 | A1 |
20060266516 | Presslie et al. | Nov 2006 | A1 |
Number | Date | Country | |
---|---|---|---|
20080226425 A1 | Sep 2008 | US |