1. Paraffin and Wax Control.
Most produced oil has a certain number of heavy ends which consist of wax and paraffins. As the well is produced the temperature drops to a point when the wax and/or paraffins precipitate out (depending on the cloud point temperature) which can form on the tubing and plug and or stop the production.
2. Steam Transfer from Surface to the Reservoir.
There is provided a tubular for downhole use, including a pipe, an insulation layer surrounding the pipe, and a protective layer around the insulation layer, the protective layer comprising a polymer. The protective layer may also comprise a compression layer adjacent to the insulation layer. The compression layer may comprise 2-way tape. The elastomer may be applied to the compression layer to bind to the compression layer. There may be a reinforcement material within the protective layer. The reinforcement material may be at least in part in contact with the compression layer. The elastomer may be applied over the reinforcement material to encapsulate the reinforcement material. The reinforcement material may include a wire, rope, cord or strip. The wire, rope, cord or strip may comprise one or more of metallic wire, carbon fibre, kevlar, fibreglass, or thermoform monofilaments.
The insulation layer may comprise aerogel or any other suitable insulation, for example, fibre glass, rock wool, cellulose, vermiculite, perlite, polystyrene, Polyisocyanurate, polyethylene, or phenolic resin. The polymer may comprise an elastomer.
There is also provided a sleeve for wrapping around and insulating a joint of a downhole tubing string, the sleeve comprising an insulation layer; and a protective layer comprising a polymer, the protective layer surrounding the insulation layer when the sleeve is wrapped around the joint. The protective layer may also include an interfacing layer adjacent to the insulation layer. The interfacing layer may comprise 2-way tape. The polymer may be applied onto the interfacing layer to bind to the interfacing layer. There may be reinforcement material within the protective layer. The reinforcement material may be at least in part in contact with the interfacing layer. The polymer may be applied over the reinforcement material to encapsulate the reinforcement material. The reinforcement material may include a wire, rope, cord or strip. The wire, rope, cord or strip may comprise one or more of metallic wire, carbon fibre, kevlar, fibreglass, or thermoform monofilament. The insulation layer may comprise aerogel or any other suitable insulation. The polymer may comprise an elastomer. The sleeve may include a base layer adjacent to the tubing string when the sleeve is wrapped around the joint, the polymer being applied onto at least an end of the sleeve to bind to the base layer at the at least an end of the sleeve.
There is also provided a downhole tubing string having a joint insulated by a sleeve as described above. The sleeve may be secured to the tubing string using steel straps. Sealant may be applied to edges of the sleeve. The sealant may be an additional amount of the polymer. The downhole tubing string may comprise tubulars as described above.
There is also provided a method of forming an insulated tubular for downhole use, the method including the steps of providing a pipe, applying insulation around the pipe, winding a compression material around the insulation, and applying a polymer onto the compression material to bind to the compression material. The compression material may comprise 2-way tape. The compression material may comprise a reinforcement material or the method may include winding a reinforcement material over the compression material.
The polymer may be applied over the reinforcement material to encapsulate the reinforcement material. The reinforcement material may comprise a wire, rope, cord or strip.
The wire, rope, cord or strip may comprise one or more of metallic wire, carbon fibre, kevlar, fibreglass, or thermoform monofilament. The insulation layer may comprise aerogel or any other suitable insulation. The polymer may comprise an elastomer.
There is also provided a method for forming a sleeve for wrapping around and insulating a joint of a downhole tubing string, the method including providing a mold, applying insulation around the mold, winding an interfacing material around the insulation, and applying a polymer onto the interfacing material to bind to the interfacing material to form the sleeve. The method may also include the step of, after the sleeve is formed, cutting the sleeve longitudinally to separate the sleeve from the mold. The interfacing layer may comprise 2-way tape. Reinforcement material may be wound over the interfacing material.
The polymer may be applied over the reinforcement material to encapsulate the reinforcement material. The reinforcement material may comprise a wire, rope, cord or strip. The wire, rope, cord or strip may comprise one or more of metallic wire, carbon fibre, kevlar, fibreglass, or thermoform monofilament. The insulation layer may comprise aerogel or any other suitable insulation. The polymer may comprise an elastomer. The method may also include the step of, before applying the insulation around the mold, applying a base layer around the mold. Applying a polymer onto the interfacing material to bind to the interfacing material to form the sleeve may comprises applying the polymer to at least an end of the sleeve to bind to the base layer at the at least the end of the sleeve.
There is also provided a method for insulating a downhole tubing string, the method including connecting tubulars to form a tubing string, wrapping an insulative sleeve around at least a joint of the tubing string, securing the insulative sleeve around the at least a joint of the tubing string, and inserting the tubing string downhole. The method steps may be repeated for successive lengths of the tubing string. The sleeve may be a sleeve as described above. The sleeve may be one of plural insulative sleeves that are wrapped around multiple connected tubulars with no substantial portions of the multiple tubulars being uncovered by the plural insulative sleeves. The tubulars may be tubulars as described above. The sleeve may be secured to the tubing string using steel straps. The method may also include applying sealant to edges of the sleeve. The sealant may be an additional amount of the polymer. These and other aspects of the device and method are set out in the claims.
Embodiments will now be described with reference to the figures, in which like reference characters denote like elements, by way of example, and in which:
Immaterial modifications may be made to the embodiments described here without departing from what is covered by the claims. In the claims, the word “comprising” is used in its inclusive sense and does not exclude other elements being present. The indefinite articles “a” and “an” before a claim feature do not exclude more than one of the feature being present. Each one of the individual features described here may be used in one or more embodiments and is not, by virtue only of being described here, to be construed as essential to all embodiments as defined by the claims.
There may be reinforcing material 18 within the protective layer, shown schematically as a single line though typically it would wind around the pipe.
Insulation layer may be any insulation, but is preferably an aerogel. An aerogel is a synthetic porous ultralight material derived from a gel, in which the liquid component for the gel has been replaced with a gas. The result is a solid with extremely low density and low thermal conductivity. Aerogels can be made from a variety of chemical compounds. The aerogel should be selected to withstand downhole temperatures such as temperatures up to ISOC or as much as 280 C.
In a tubular of approximately 9.6 m length there are usually 4 separate pieces of insulation blanket butt jointed and wrapped.
The insulation may also arrive on large rolls which can then be cut down to appropriate width prior to the manufacturing process.
The tape is applied tangentially to the tubular holding the insulation in place for transport to the next step, winding, as well as ensuring the butt joints in the insulation stay together.
An adhesive may be used to secure the insulation layer to the pipe, but this is not preferred as it negatively impacts the compaction process and can result in an unacceptably irregular product.
The initial insulation layer may be applied to the entire tubular except for the ends. For example, approximately 3 ft from the box end (threaded coupling) and 1.5 ft from the pin (threaded end) may be left bare, in order to allowing the elevators (lifting device on the rig) and the tongs (large capacity self-locking wrenches used to assemble downhole tubulars and apply torque) to grip the bare steel. This area that is not coated during the initial process may then be covered with the pre made sleeves, described below, if the thermal demands of the customer require full coverage, after the threaded connection is made on site.
The interfacing layer may be a compression layer, applied to the insulation to compress it against the pipe. In step 84 of
In optional step 86 of
The reinforcement material may include a high tensile strength filament and may also be spirally wound around the product further compressing the insulation. This filament may be a metallic wire, or other unidirectional continuous filament. Examples include carbon fibre, kevlar, fibreglass, or thermoform monofilaments.
Presently the reinforcement is wound as a single uniform layer, this makes it easier to avoid pinching due to unbalanced pressures. The pipe may be chucked up in a lathe and an employee may traverse the length with the filament spool resting on a cart, using a braking mechanism to control the tension and spacing. Other approaches include a tunnel wrapper approach or a braiding machine, either of which the insulation covered tubular will pass through as the spool or spools rotate around. The braiding machine may be used to provide the balanced pressure using multiple layers. The fabric tape or other compression material may be wound using the same winding station (e.g. lathe setup, tunnel wrapper or braiding machine).
The filament winding produces a rippled pattern that increases the available surface area for the outer coating to bond to. If the filament chosen for the application is not of a monofilament nature then the high strand count also increases the available surface area for the outer coating to bond to.
In step 88 of
The polymer may be spray applied. In the case that application of the polymer produces gases, to allow for gasses to escape during application of the polymer the spray pattern may be applied from either right to left or left to right. If using an exothermic thermoset polymer, normally this heat is absorbed by the substrate and isn't an issue, though by applying this to a highly insulated substrate the heat causes any trapped air to expand. If the coating is not applied in a linear pattern this expanding hot air cannot escape and bubbles up through the coating. With traditional coatings there is a long enough wet film time to allow the coating to re-level itself, but if the polymer has a rapid setup time, the coating cures while the hot gases escape resulting in tunnelling down to the compression layer. By moving in one direction the expanding gases can continue to travel through the insulation matrix to escape as opposed to travelling up through the coating. When the end of the tubular is reached a small amount of coating is applied to verify that the gases are still not rushing out, and once they have stopped the end is sealed with the polymer. This left to right or right to left pattern may be applied at the winding station.
The coating should be applied so as to fully wet out the compression layer as well as the reinforcing material as this then produces a composite matrix that gives the outer coating its strength. This composite that is produced reinforces the properties of the outer layer increasing its abrasion resistance as well as its tensile strength, ensuring the integrity of the insulation envelope during transport and down hole installation. The coating may harden with the reinforcement material already under tension.
Before insulation is applied, the pipe may be blasted to an 8-10 mil profile so that the polymer can adhere to the bare tubing. When the polymer layer is applied, it may also be applied to the ends of the insulated section so that it binds to the bare tubing and seals in the insulation and otherlayers.
The above description indicates how tubulars can be insulated. To obtain full insulated coverage, additional insulation of the tubing may be completed after makeup is completed on the rig floor. Pre-sprayed sleeves are made up before deployment at a predetermined length to cover the make-up distance. The sleeves can then be attached to the uninsulated connection and secured. The sleeve can then be sprayed with the polymer to result in a fully sealed joint that will not lose heat due to an uninsulated connection.
A sleeve may be produced using the same process as for the regular insulation as described above, albeit on a mold, which may be a pipe or another pipe-shaped mold, and then cut longitudinally (parallel to the mold) and removed as a “C” shaped tubular sleeve.
The sleeve can then be used to insulate joints and exposed ends of the tubulars. The Sleeve is produced to a given length dictated by customer demands. Being preformed to the diameter the tubular greatly increases the ease of installation.
Sleeves have been fabricated with and without a base layer on the underside. Because of the hydrophobic nature of the insulation fluid intrusion is usually not much of an issue. The main concern with using a base layer is to ensure cleanliness during transport and installation as well as to ensure no metallic contamination can occur which could result in a corrosion cell underneath the sleeve.
Using a base layer and sealing it to the polymer creates an air and water tight envelope. In some applications fluid does not travel through the space between the production string and the casing tubings, and as a result the insulation is not at risk of fluid entrapment in this area. In other production situations, where the insulated tubular is secured in place with cement, we need to fully isolate the insulation and steel substrates from the cement to inhibit corrosion. There are also further applications where fluid is pumped down this space between the casing and production tubing and again we would want to fully insulate and protect the steel and insulation from this liquid.
The base layer may be formed, for example of a sheet elastomer that is compatible with the polymer top coat. For our current polymer, we use flexible pvc sheeting which provides the required moisture resistance as well as being compatible with the system to provide an air and water tight bond.
In step 94 of
In this embodiment, a base layer 46 is shown as a single line bounding insulation layer 12 next to pipe 10. Pipes 10 are connected at joint 44 to form a tubing string 11. The base layer 46 would typically contact pipe 10 but is shown separated from pipe 10 for clarity. The base layer 46 has a portion 48 that extends out from insulation layer 12 and is contacted by protective layer 16. An interfacing layer 14 and reinforcing material 18 as shown in
While the sleeve 42 is shown covering the joint 44 and adjacent portions of the pipes only, plural sleeves could also be used to cover an entire tubing string.
During installation the tubulars are connected as normal on the rig floor.
Prior to insertion down hole but after the connection is made the sleeve is placed around the connection and then secured with stainless steel strapping 54 (e.g. stainless steel zip ties). An alternative method can incorporate collars that can be welded or set screwed to the bare pipe above or below the makeup area to hold the blanket in place. If additional isolation is required, the edges and seams can be coated on the rig floor by spraying an additional top coat. The top coat may be the same material that is used for the normal outer coat, which provides a monolithic envelope and ensures the entire tubular string is insulated. A different sealant could also be used.
The thickness of the insulation may be determined after a thermal conductivity simulation has calculated the starting and exiting temperature.
The distance that the insulation is from either the pin end and/or the upset end may be selected based on measurements of rig components, such as slips on the rig floor, makeup tongs being used (open faced) and slip type elevators used for pulling and holding the weight of the string after makeup.
Number | Date | Country | Kind |
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CA 3028889 | Jan 2019 | CA | national |
This application is a continuation of U.S. patent application Ser. No. 16/244,993 filed on Jan. 10, 2019, which claims priority to U.S. Provisional Patent Application Ser. No. 62/754,580 filed on Nov. 1, 2018, the entire disclosures of which are incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
3015500 | Barnett | Jan 1962 | A |
3552445 | Andrews | Jan 1971 | A |
3616178 | Gurin | Oct 1971 | A |
3662446 | Walls | May 1972 | A |
3673785 | Cullen et al. | Jul 1972 | A |
3804346 | Norman | Apr 1974 | A |
3849941 | Barnes | Nov 1974 | A |
3981117 | Dehlen | Sep 1976 | A |
4146060 | Garrett | Mar 1979 | A |
4171560 | Garrett | Oct 1979 | A |
4182537 | Oster | Jan 1980 | A |
4193956 | Kalnins | Mar 1980 | A |
4488577 | Shilad | Dec 1984 | A |
4494607 | Ford | Jan 1985 | A |
4602807 | Bowers | Jul 1986 | A |
4693507 | Dresen | Sep 1987 | A |
4778700 | Pereira | Oct 1988 | A |
4780347 | Cohen | Oct 1988 | A |
4823456 | Gray | Apr 1989 | A |
4905760 | Gray | Mar 1990 | A |
5154867 | Edwards | Oct 1992 | A |
5511619 | Jackson | Apr 1996 | A |
5513954 | Bourgeois | May 1996 | A |
5614267 | Howlett | Mar 1997 | A |
5713392 | O'Rourke | Feb 1998 | A |
5839551 | Cesaraccio | Nov 1998 | A |
6010085 | Angeletakis | Jan 2000 | A |
6368700 | Venkataswamy | Apr 2002 | B1 |
6391438 | Ramesh | May 2002 | B1 |
6737134 | Friedrich | May 2004 | B2 |
7015265 | Resendes | Mar 2006 | B2 |
7328724 | Britton | Feb 2008 | B2 |
7503387 | Edwards | Mar 2009 | B2 |
7740077 | Davis | Jun 2010 | B2 |
7866391 | Wardley | Jan 2011 | B2 |
8113765 | Sullivan | Feb 2012 | B2 |
8192798 | Vogt | Jun 2012 | B2 |
9145999 | Carusiello | Sep 2015 | B2 |
9243727 | Conley | Jan 2016 | B2 |
9580971 | Mcnease | Feb 2017 | B2 |
9662823 | Moore | May 2017 | B2 |
9714677 | Williams | Jul 2017 | B2 |
9816169 | Xie | Nov 2017 | B2 |
10415739 | Le Pennec | Sep 2019 | B2 |
11028959 | Thomas | Jun 2021 | B2 |
11060386 | Porodo | Jul 2021 | B2 |
20020197132 | Cruz et al. | Dec 2002 | A1 |
20040161562 | Graeter | Aug 2004 | A1 |
20040202521 | Bostik | Oct 2004 | A1 |
20070065668 | Idei | Mar 2007 | A1 |
20080072988 | Elgendy | Mar 2008 | A1 |
20080174110 | Olson | Jul 2008 | A1 |
20080196235 | Gereluk | Aug 2008 | A1 |
20090136746 | Murai et al. | May 2009 | A1 |
20100051199 | Nooren | Mar 2010 | A1 |
20100154917 | Batallas | Jun 2010 | A1 |
20100218839 | Conley | Sep 2010 | A1 |
20120186818 | Wollmann | Jul 2012 | A1 |
20140116725 | Wollmann | May 2014 | A1 |
20140158295 | Badrak | Jun 2014 | A1 |
20140175789 | Arthur et al. | Jun 2014 | A1 |
20160060968 | Xie | Mar 2016 | A1 |
20160109040 | Ruby | Apr 2016 | A1 |
20160194916 | D'Silva et al. | Jul 2016 | A1 |
20160368199 | Moore | Dec 2016 | A1 |
20160369572 | Moore | Dec 2016 | A1 |
20170283958 | Fraser et al. | Oct 2017 | A1 |
20180031164 | Hoffmann | Feb 2018 | A1 |
20180080288 | Nommensen | Mar 2018 | A1 |
20180259115 | Parrella | Sep 2018 | A1 |
20190203361 | Tomoe | Jul 2019 | A1 |
20190203871 | Gawryla | Jul 2019 | A1 |
Number | Date | Country |
---|---|---|
2001239069 | Nov 2004 | AU |
2913712 | May 2016 | CA |
2915601 | Jun 2017 | CA |
9502353 | Jan 1995 | WO |
2010134847 | Nov 2010 | WO |
2011053186 | May 2011 | WO |
2017217867 | Dec 2017 | WO |
Entry |
---|
“Flexible Aerogel Insulation for Industrial Applications, Opitmal Thermal Performance in Service up to 650 Degrees Celsius,” Aspen Aerogels, Inc., 2017, 2 pages. |
Number | Date | Country | |
---|---|---|---|
20210340850 A1 | Nov 2021 | US |
Number | Date | Country | |
---|---|---|---|
62754580 | Nov 2018 | US |
Number | Date | Country | |
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Parent | 16244993 | Jan 2019 | US |
Child | 17373688 | US |