This disclosure is related to insulated jackets, which encompasses many forms of coverings, that are shaped to substantially enclose a junction permitting fluid communication between two or more pipes and thereby facilitate the freezing or substantial freezing of the contents of the junction.
One embodiment of the invention relates to a method of freezing or substantially freezing a pipe junction. An insulated jacket is used to substantially enclose the pipe junction, and then a cooling substance, e.g., liquefied carbon dioxide, is injected into the jacket through injection valves. The cooling substance reduces the temperature of the pipe junction and thereby freezes the contents of the pipe junction. Because different pipe junctions may have irregular shapes or varying dimensions, a flexible jacket material is preferable.
As shown in the accompanying drawings, an embodiment of the invention is a insulated jacket 100. In
The insulated jacket 100, when in the closed position (see, e.g.,
The insulated jacket 100 comprises an insulated jacket body 110. The jacket body 110 preferably comprises any waterproof synthetic cloth or fabric, e.g., Rayon, Nylon, Kevlar, or Mylar. A preferable insulation is at least ¾ inch closed cell foam. However, other insulating materials that achieve at least an R-value of 25 may be a suitable insulation substitute, however embodiments could employ an R-value of above 15, above 30, above 40, above 50, or higher. The insulated jacket 100 may be moved from an open position to a closed position by wrapping the jacket around the pipe junction 200 and engaging fasteners 120. Fasteners 120 may include one or more of two-piece metal snaps, opposing Velcro sections, button/button loop arrangements, and/or drawstring/sleeve arrangements. In
Turning to
The number of fluid injections valves 130 may vary depending on the size of the pipe junction 200 to be frozen. Preferably, one injection valve 130 is used for every thirty-six square inches of jacket. However, more or less injection valves 130 may be used depending on the size and shape of the pipe junction 200 and the target temperature to be achieved. As a non-limiting example, a 2 and 1/16 inch manual gate valve at 80 degrees Fahrenheit may be frozen in approximately 1 hour. Once frozen, the flow of the cooling substance may be reduced to maintain the frozen state of the fluid within the junction. There are several signs that may indicate whether the fluid within the junction is frozen, including: an ice ball forming inside the jacket and expanding in shape and firmness; information from one or more temperature sensors inside the jacket, on the junction itself, and/or on one or more bore connections; and information from a pressure gauge, if present. Another way to determine whether a given junction is frozen includes using negative/positive pressure tests against the junction.
Turning to
The embodiments shown in the drawings and described above are exemplary of numerous embodiments that may be made within the scope of the appended claims. It is contemplated that numerous other configurations may be used, and the material of each component may be selected from numerous materials other than those specifically disclosed. In short, it is the applicant's intention that the scope of the patent issuing herefrom will be limited only by the scope of the appended claims.
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Entry |
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PCT Application No. US2012/067184; International Search Report and Written Opinion of the International Searching Authority for Applicant Blowout Tools, Inc. dated Feb. 7, 2013. |
PCT Application No. US2012/067184; International Preliminary Report on Patentability for Applicant Blowout Tools, Inc. dated Jun. 3, 2014. |
Number | Date | Country | |
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20130140008 A1 | Jun 2013 | US |