PIPELINE REPAIR
20170122481 ยท 2017-05-04
Inventors
- Sarah K. Czaplewski (Rochester, MN, US)
- Joseph Kuczynski (North Port, FL)
- Melissa K. Miller (Research Triangle Park, NC, US)
- Jing Zhang (Poughkeepsie, NY, US)
Cpc classification
B29C65/00
PERFORMING OPERATIONS; TRANSPORTING
F16L55/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C09K3/12
CHEMISTRY; METALLURGY
International classification
F16L55/164
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C09K3/12
CHEMISTRY; METALLURGY
Abstract
In an example, a method of repairing a pipeline includes isolating a section of a pipeline that includes a leak site. The method includes flooding the section of the pipeline with a plug formulation that includes artificial platelets and an ultraviolet (UV) photoinitiator. The section may be pressurized to induce migration of the artificial platelets to the leak site. The method also includes draining excess plug formulation from the section of the pipeline. The method further includes exposing the UV photoinitiator to UV light to form a gas impermeable seal at the leak site.
Claims
1. A method of repairing a pipeline, the method comprising: isolating a section of a pipeline that includes a leak site; flooding the section of the pipeline with a plug formulation that includes artificial platelets, trimethylolpropane trimethacrylate (TMPTA) and/or dipentaerythritol pentacrylate, and an ultraviolet (UV) photoinitiator; pressurizing the section of the pipeline to induce migration of the artificial platelets to the leak site; draining excess plug formulation from the section of the pipeline; and exposing the UV photoinitiator to UV light to form a gas impermeable seal at the leak site.
2. The method of claim 1, further comprising deploying an autonomous robot into the isolated section of the pipeline, the autonomous robot including a UV light source that emits the UV light.
3. The method of claim 1, wherein the pipeline includes a gas pipeline.
4. The method of claim 1, wherein the pipeline includes a natural gas pipeline.
5. The method of claim 1, wherein the pipeline includes a buried natural gas pipeline.
6. The method of claim 1, wherein the artificial platelets have a characteristic dimension in a range of 0.3 millimeters to 50 millimeters.
7. The method of claim 1, wherein the artificial platelets include a first artificial platelet type having a first shape and a second artificial platelet type having a second shape that is different from the first shape.
8. The method of claim 1, wherein the artificial platelets include different platelet types having a elliptical shape, a disc shape, a cube shape, or a combination thereof.
9. The method of claim 1, wherein the plug formulation includes a mixture of an acrylate monomer solution, the artificial platelets, and the UV photoinitiator.
10. The method of claim 1, wherein the artificial platelets are formed from a polymeric material that expands upon exposure to the UV light.
11. The method of claim 1, wherein the artificial platelets are formed from a polymeric material that expands upon exposure to moisture, the method further comprising exposing the section of the pipeline to moisture after draining the excess plug formulation from the section of the pipeline.
12. The method of claim 11, wherein the polymeric material includes a shape memory polymer material.
13. The method of claim 11, wherein the polymeric material includes a super absorbent polymer material.
14. The method of claim 1, wherein the artificial platelets are formed from a polymeric shape memory material that expands upon exposure to heat, the method further comprising exposing the section of the pipeline to heat.
15-18. (canceled)
19. A method of repairing a gas pipeline, the method comprising: identifying a section of a gas pipeline that includes a leak site; isolating the section of the gas pipeline; flooding the section of the gas pipeline with a plug formulation that includes a mixture of trimethylolpropane trimethacrylate (TMPTA) and/or dipentaerythritol pentacrylate, artificial platelets, and an ultraviolet (UV) photoinitiator; pressurizing the section of the gas pipeline to induce migration of the artificial platelets to the leak site; draining excess plug formulation from the section of the gas pipeline; and exposing the UV photoinitiator to UV light to form a gas impermeable seal at the leak site.
20. The method of claim 19, wherein the gas pipeline includes a buried natural gas pipeline, and wherein the section is flooded with the plug formulation without identifying a location of the leak site within the buried natural gas pipeline.
21. A method of repairing a pipeline, the method comprising: isolating a section of a pipeline that includes a leak site; flooding the section of the pipeline with a plug formulation that includes artificial platelets and a first part of an epoxy system; draining excess plug formulation from the section of the pipeline; pumping a second part of the epoxy system through the pipeline; draining excess second part of the epoxy system from the section of the pipeline; and curing the epoxy system at the leak site.
22. The method of claim 21, wherein the artificial platelets are formed from a polymeric material that expands upon exposure to the UV light.
23. The method of claim 21, wherein the artificial platelets are formed from a polymeric material that expands upon exposure to moisture, the method further comprising exposing the section of the pipeline to moisture after draining the excess plug formulation from the section of the pipeline.
24. The method of claim 21, wherein the artificial platelets are formed from a polymeric shape memory material that expands upon exposure to heat, the method further comprising exposing the section of the pipeline to heat.
Description
IV. BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
V. DETAILED DESCRIPTION
[0011] The present disclosure describes fluid formulations for use in repairing pipelines (e.g., gas pipelines, such as buried natural gas pipelines) and methods of repairing pipelines using such fluid formulations. In the present disclosure, particles (referred to herein as artificial platelets) that are designed to mimic natural platelets that heal a wound by clotting to form a scab at a wound site may be used to repair a leak in a pipeline in a similar manner. To illustrate, a section of pipeline that is identified as having one or more leaks may be isolated, and the section of pipeline may be flooded with a fluid formulation that includes the artificial platelets (also referred to herein as a plug formulation). Pressurizing the fluid may induce the artificial platelets in the plug formulation to migrate to a leak site (or multiple leak sites) in order to form a clot at the leak site. In some cases, the fluid formulation may include a resin that is curable using ultraviolet (UV) light to form a gas impermeable seal (also referred to herein as an artificial scab). After plugging the leak site(s) using the artificial platelets, excess plug formulation may be drained from the isolated section of pipeline, and an autonomous robot may be used to expose the UV curable resin to UV light in order to cure the resin. After formation of the artificial scab(s), the autonomous robot may be removed from the isolated section of pipeline, and the isolated section of pipeline may be reconnected. As an alternative example, rather than flooding the isolated section of pipeline with the plug formulation, the autonomous robot may be deployed to spray coat the interior of the pipeline, and the autonomous robot may be removed. The isolated section of pipeline may then be pressurized to force the plug formulation into the cracks, the pressure may be released, and the autonomous robot may be redeployed to UV cure the formulation.
[0012] While artificial platelets may represent a promising technology for repair of condensed fluid pipelines (e.g., oil or water), a seal that is formed using artificial platelets alone may be ineffective in the context of gas pipelines. To illustrate, the seal may allow natural gas to diffuse around the jammed platelets and eventually leak into the surrounding environment. In a particular embodiment of the present disclosure, a plug formulation may include artificial platelets incorporated into a multifunctional acrylate monomer solution containing a UV photoinitiator (or multiple initiators). After flooding an isolated section of a pipeline with pressurized plug formulation fluid to induce the artificial platelets to clot at the leak site(s), the remaining plug formulation may be drained from the isolated section of the pipeline. UV curing may then be initiated to form a tightly cross-linked network that is substantially impervious to gas diffusion. Thus, in the present disclosure, a liquid plug formulation including artificial platelets may allow for repair of a gas pipeline without expensive excavation costs (in the case of a buried pipeline) and without isolating individual leaks, as an entire section of pipeline is flooded with the liquid plug formulation to induce the artificial platelets to fill cracks at each leak site.
[0013] Referring to
[0014] In the particular embodiment illustrated in
[0015]
[0016] In the example of
[0017] In a particular embodiment, the plug formulation 118 may include the artificial platelets 120 and a multifunctional acrylate monomer solution containing a UV initiator. As an illustrative, non-limiting example, the plug formulation 118 may include about 50-70 weight percent trimethylolpropane trimethacrylate (TMPTA) and/or dipentaerythritol pentacrylate; a first photoinitiator for UV curing (e.g., about 2-5 weight percent); a second photoinitiator for radical polymerization of unsaturated resins upon UV light exposure (e.g., about 2-5 weight percent); and the artificial platelets 120 (e.g., about 20-46 weight percent).
[0018] In another embodiment, the artificial platelets 120 may be induced to swell after forming an initial artificial clot at the leak site(s) 130 in order to enhance seal strength. As an illustrative example, the artificial platelets 120 may be formed from a shape memory polymer (SMP) material that expands upon exposure to UV light, moisture, or heat. To illustrate, the artificial platelets 120 may be formed from a UV-activated shape memory polymer such that exposure to UV light (as illustrated and further described herein with respect to
[0019] In addition to UV curing, alternative approaches may be used to seal the artificial platelet clot that is formed at the leak site(s) 130. For example, the artificial platelets 120 may be cured in place through a chemical reaction. To illustrate, a two-part epoxy system may be utilized, where the artificial platelets 120 are carried through the first section 104 of the pipeline 102 in solution with one part of the epoxy system. In some cases, the first part of the epoxy system may also be covalently bonded to the artificial platelets 120. Subsequently, the second part of the epoxy system may be pumped through the first section 104 to initiate curing at the clot site. Yet another method may include the use of a plug formulation that may cure upon mixing but may require some time to set. In this case, the formulation may be removed from the pipe before curing is completed, leaving the formulation at the clot site to cure. As yet another example, a super absorbent polymer may be used to assist in plugging the leak. The super absorbent polymer material may expand upon exposure to moisture.
[0020] Thus,
[0021] Referring to
[0022] In the particular embodiment illustrated in
[0023] While not shown in
[0024] Thus,
[0025] Referring to
[0026] The method 300 includes identifying a section of a pipeline with a leak (or multiple leaks), at 302. For example, referring to
[0027] The method 300 includes isolating the section of the pipeline, at 304. For example, referring to
[0028] The method 300 includes flooding the section of the pipeline with a plug formulation, at 306. For example, referring to
[0029] The method 300 includes pressurizing the section of the pipeline, at 308. For example, referring to
[0030] The method 300 includes draining the plug formulation from the section, at 310. For example, referring to
[0031] In the particular embodiment illustrated in
[0032] In the particular embodiment illustrated in
[0033] The method 300 includes reattaching the isolated section to the pipeline, at 316. For example, referring to
[0034] Thus,
[0035] The previous description of the disclosed embodiments is provided to enable any person skilled in the art to make or use the disclosed embodiments. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other embodiments without departing from the scope of the disclosure. Thus, the present disclosure is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope possible consistent with the principles and features as defined by the following claims.