Vortex tube cooler
10151515 ยท 2018-12-11
Assignee
Inventors
Cpc classification
F25B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B36/00
FIXED CONSTRUCTIONS
Abstract
A vortex tube cooling system for cooling compressed gas in air drilling assemblies comprises a gas source, a compressor, a plurality of vortex tube coolers and a drilling pipe in fluid communication with the plurality of vortex tube coolers. Each vortex tube cooler has an inlet nozzle for receiving compressed gas from the gas source into a swirl chamber. The swirl chamber is in fluid connection with a vortex tube defining a hot outlet, and a cold outlet. An inlet of the drilling pipe receives a cold air stream leaving the cold outlet of the plurality of vortex tube coolers.
Claims
1. A vortex tube cooling system for cooling compressed gas in gas drilling assemblies comprising: a gas source; a compressor arranged to receive gas from the gas source and generate high pressure compressed gas at a vortex tube cooler inlet pressure P.sub.I; a plurality of vortex tube coolers, wherein each vortex tube cooler includes an inlet nozzle for receiving the high pressure compressed gas into a swirl chamber, a vortex tube wherein the vortex tube is in fluid communication with the swirl chamber and defines a vortex tube diameter (D), a vortex tube length (L), and a hot outlet arranged at an opposite end of the vortex tube from the swirl chamber, and a cold outlet arranged on an opposite end of the vortex tube cooler from the hot outlet and including a cold outlet aperture and a cold exit, and wherein the plurality of vortex tube coolers are located above ground-level; and a drilling pipe in fluid communication with the plurality of vortex tube coolers, wherein an inlet of the drilling pipe receives a cold compressed gas flow leaving the plurality of vortex tube coolers at a vortex tube cooler cold outlet pressure P.sub.C.
2. The vortex tube cooling system of claim 1, wherein the plurality of vortex tube coolers includes between approximately fifteen and twenty vortex tube coolers.
3. The vortex tube cooling system of claim 1, wherein the plurality of vortex tube coolers includes approximately sixteen vortex tube coolers.
4. The vortex tube cooling system of claim 1, wherein an expansion ratio of the vortex tube cooler inlet pressure to the vortex tube cooler cold outlet pressure (PI/PC) between approximately 3.0 and 3.4.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The invention will be better understood and features, aspects and advantages other than those set forth above will become apparent when consideration is given to the following detailed description thereof. Such detailed description makes reference to the following drawings.
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DETAILED DESCRIPTION OF THE INVENTION
(6) Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. The use of including, comprising, or having and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Unless specified or limited otherwise, the terms mounted, connected, supported, and coupled and variations thereof are used broadly and encompass both direct and indirect mountings, connections, supports, and couplings. Further, connected and coupled are not restricted to physical or mechanical connections or couplings.
(7) The following discussion is presented to enable a person skilled in the art to make and use embodiments of the invention. Various modifications to the illustrated embodiments will be readily apparent to those skilled in the art, and the generic principles herein can be applied to other embodiments and applications without departing from embodiments of the invention. Thus, embodiments of the invention are not intended to be limited to embodiments shown, but are to be accorded the widest scope consistent with the principles and features disclosed herein. The following detailed description is to be read with reference to the figures, in which like elements in different figures have like reference numerals. The figures, which are not necessarily to scale, depict selected embodiments and are not intended to limit the scope of embodiments of the invention. Skilled artisans will recognize the examples provided herein have many useful alternatives and fall within the scope of embodiments of the invention.
(8)
(9) As shown in
(10) With reference back to
(11) The hot outlet 116 is arranged at an opposite end of the vortex tube 112 from the swirl chamber 108 and includes a conical valve 120. The conical valve 120 is attached to a support structure (not shown) that threadingly engages the hot outlet 116 but does not seal the hot outlet 116 from the surroundings. The hot outlet 116 defines a hot outlet valve diameter D.sub.H which is less than the vortex tube diameter D; therefore, fluid is allowed to flow around the conical valve 120 and exit the hot outlet 116. In the illustrated embodiment, the hot outlet valve diameter D.sub.H is approximately 25 millimeters.
(12) With continued reference to
(13) The expansion zone defines a cold zone expansion ratio D.sub.E/D.sub.C. The cold zone expansion ratio D.sub.E/D.sub.C may be defined as the ratio of a cold exit diameter D.sub.E to the cold outlet diameter D.sub.C. In the illustrated embodiment, the cold zone expansion ratio D.sub.E/D.sub.C is greater than about one.
(14) In operation, a compressed gas stream (not shown) enters the inlet nozzle 104 of the vortex tube cooler 100 at an inlet pressure P.sub.I where the flow is accelerated and directed towards the swirl chamber 108. The compressed gas stream enters the swirl chamber 108 with a high tangential velocity and travels toward the hot outlet 116 of the vortex tube 112. When flowing towards the hot outlet 116, the compressed gas stream separates into an outer hot gas stream (not shown) and an inner cold gas stream (not shown) surrounded by the hot gas stream.
(15) The conical valve 120 in the hot outlet 116 of the vortex tube 112 directs the cold gas stream backwards towards the cold outlet 110, while the hot gas stream is allowed to flow around the conical valve 120 and exit the hot outlet 116. The cold gas stream travels through the cold outlet aperture 124 of the cold outlet 110 and is then expanded through the expansion section 132. Finally, the cold gas stream exits the vortex tube cooler 100 through the cold exit 128 at a cold outlet pressure P.sub.C. An expansion ratio P.sub.I/P.sub.C may be defined as the ratio of the inlet pressure P.sub.I to the cold outlet pressure P.sub.C. In the illustrated embodiment, the expansion ratio is approximately 3.2. In other embodiments, the expansion ratio may be between approximately 3.0 and 3.4.
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(18) The vortex tube cooling system 300 is used to cool a drilling location 316 including a surface 320, typically at ground level, and a wellbore 324 extending through an underground layer 328. A drilling pipe 332 extends through the wellbore 324 and defines an inlet 336 near the surface 320 and a drilling head 340 arranged on the opposite side of the wellbore 324 from the inlet 336. The drilling head 340 may include a drilling bit or other means for cutting through the underground layer 328.
(19) In operation, the gas source 304 provides gas to the compressor 308 where high pressure compressed gas at a vortex tube cooler inlet pressure P.sub.I is generated. The compressed gas then flows through the bundle of vortex tube coolers 312 where the compressed gas is cooled and exits at a vortex tube cooler cold outlet pressure P.sub.C. An expansion ratio P.sub.I/P.sub.C may be defined as the ratio of the vortex tube cooler inlet pressure P.sub.I to the vortex tube cooler cold outlet pressure P.sub.C. In the illustrated embodiment, the expansion ratio is approximately 3.2. In other embodiments, the expansion ratio may be between approximately 3.0 and 3.4.
(20) The cooled compressed gas enters the drilling location 316 at the inlet 336 of the drilling pipe 332 and is guided underground through the drilling pipe 332. The cooled compressed gas flows through the drilling head 340 where heat is transferred from the drilling head 340 to the cooled compressed gas, warming the gas and cooling the drilling head 340. The warmed compressed gas travels upwardly toward the surface 320 in a channel 344 surrounding the drilling pipe 332, where is eventually exits the wellbore 324 at a surface outlet 348 arranged on the surface 320 surrounding the drilling pipe 332.
(21) It will be appreciated by those skilled in the art that while the invention has been described above in connection with particular embodiments and examples, the invention is not necessarily so limited, and that numerous other embodiments, examples, uses, modifications and departures from the embodiments, examples and uses are intended to be encompassed by the claims attached hereto. The entire disclosure of each patent and publication cited herein is incorporated by reference, as if each such patent or publication were individually incorporated by reference herein.