THERMALLY INSULATED TRANSFER LINE
20230272874 · 2023-08-31
Assignee
Inventors
Cpc classification
F16L59/181
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/184
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L51/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L27/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L59/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A thermally insulated transfer line for a deep-cooled fluid. The thermally insulated transfer line includes a process line for conduction of the deep-cooled fluid, an insulation envelope lying radially outside the process line and extending in a longitudinal direction of the process line, and an insulation space between the process line and the insulation envelope. The process line and the insulation envelope, at least in portions along a length in a longitudinal direction of the thermally insulated transfer line, have a U-shape, or a V-shape, or meandering form, or a helical form.
Claims
1. A thermally insulated transfer line for a deep-cooled fluid, the thermally insulated transfer line comprising: a process line for conduction of the deep-cooled fluid; an insulation envelope lying radially outside the process line and extending in a longitudinal direction of the process line; and an insulation space between the process line and the insulation envelope; wherein the process line and the insulation envelope, at least in portions along a length in a longitudinal direction of the thermally insulated transfer line, have a U-shape, or a V-shape, or a meandering form, or a helical form.
2. The thermally insulated transfer line of claim 1, wherein: the process line, at least in portions thereof, comprises a corrugated tube, and/or the insulation envelope, at least in portions thereof, comprises is a corrugated tube.
3. The thermally insulated transfer line of claim 1, wherein the process line and the insulation envelope are arranged concentrically to one another.
4. The thermally insulated transfer line of claim 1, further comprising spacers arranged between the process line and the insulation envelope to maintain a distance between the process line and the insulation envelope.
5. The thermally insulated transfer line of claim 1, further comprising a vacuum arranged in the insulation space.
6. The thermally insulated transfer line of claim 1, further comprising an absorbent material arranged in portions of the insulation space.
7. The thermally insulated transfer line of claim 1, further comprising solid insulation arranged in the insulation space.
8. The thermally insulated transfer line of claim 1, further comprising an inert gas arranged in the insulation space.
9. The thermally insulated transfer line of claim 1, further comprising a thermally reflective layer arranged in the insulation space.
10. The thermally insulated transfer line of claim 1, further comprising a protective envelope, formed as a cylinder casing, extending radially outside along a length of the insulation envelope.
11. The thermally insulated transfer line of claim 10, further comprising a damping material and/or an elastic material arranged between the protective envelope and the insulation envelope.
12. The thermally insulated transfer line of claim 10, wherein the protective envelope comprises at least two protective envelope sections that are connected to each other in a manner that enables axially movable relative to one another, the at least two protective envelope sections being radially nested to enable one protective envelope section to slide radially inside or outside another protective envelope section in an overlap portion.
13. The thermally insulated transfer line of claim 1, further comprising a coupling element arranged at both ends of the thermally insulated transfer line to connect the thermally insulated transfer line to a cryogenic tank.
14. The thermally insulated transfer line of claim 13, wherein the coupling element comprises a union nut which is configured such that the process line is attached to a cryogenic tank process line to establish a fluid-conductive connection between the process line and the cryogenic tank process line.
15. The thermally insulated transfer line of claim 13, wherein: the coupling element comprises an end piece, and the insulation envelope of the transfer line transforms into the end piece.
16. The thermally insulated transfer line of claim 15, wherein the coupling element comprises a connecting sleeve arranged concentrically to and radially on an outside surface of the end piece for connection to the end piece.
17. The thermally insulated transfer line of claim 15, wherein: the coupling element comprises a sliding coupling sleeve arranged concentrically radially on an outside of the end piece, and/or the connecting sleeve and is axially movable relative to the end piece and/or the connecting sleeve, and a nut is arranged concentrically radially on the outside of the connecting sleeve to push the sliding coupling sleeve axially against a stop of the connecting sleeve and/or axially against a connecting flange of the cryogenic tank.
18. The thermally insulated transfer line of claim 15, wherein the end piece, in an axial portion in which the end piece is surrounded by the connecting sleeve, is at least partially formed by a bellows.
19. The thermally insulated transfer line of claim 15, wherein the end piece comprises a vacuum connector to establish a vacuum in the insulation space.
20. A thermally insulated transfer line for a deep-cooled fluid, the thermally insulated transfer line comprising: a process line for conduction of the deep-cooled fluid; an insulation envelope lying radially outside the process line and extending in a longitudinal direction of the process line; and an insulation space arranged between the process line and the insulation envelope, wherein the process line and the insulation envelope, at least 80% of an entire length in a longitudinal direction of the thermally insulated transfer line, have a meandering form or a helical form.
Description
DRAWINGS
[0028] Embodiments will be illustrated by way of example in the drawings and explained in the description hereinbelow.
[0029]
[0030]
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DESCRIPTION
[0036]
[0037]
[0038]
[0039] In accordance with one or more embodiments, the innermost element of the thermally insulated transfer line is the process line 1, in particular, a corrugated pipe in which the deep-cooled fluid is transported. The process line 1 is surrounded by one or more concentric corrugated hoses, namely insulation envelopes 2, each of which is thermally insulated by an insulation space 3 and optional MLI from the respective next innermost corrugated hose. The distance between the process line 1 and the insulation envelope 2 is guaranteed by a suitable device, e.g. spacers, which may, for example, extend in the longitudinal direction of the thermally insulated transfer line. In addition, absorption means may be placed in the insulation space 3 to enhance the long-term stability of the vacuum. The ends of the transfer line are terminated with corresponding fittings or connections, in particular, the coupling elements 6.
[0040] For protection and guidance, the process line is conducted, for example, between two tanks inside an external envelope tube, namely the protective envelope 4, as shown in
[0041] The protective envelope 4 comprises at least two envelope sections 4.1, 4.2 which are axially movable relative to one another. The envelope sections 4.1, 4.2 are connected together by a bellows 5 and radially nested, so that one envelope section 4.1 can be axially moved radially inside or outside the other envelope section 4.2 in an overlap portion. At least at one end, in the embodiment shown in
[0042] A coupling element 6 comprises the following parts (see
[0043] A preferably thin-walled bellows 15 forms a portion of the end piece 9 and increases the thermal resistance by extension of the conduction path because of the corrugated form. A connecting sleeve 10 increases the thermal resistance by extending the conduction path because of the weld connection 19 to the end piece 9 which is offset in the direction of the vacuum connector 16.
[0044] The mounting of the coupling element and the compensation of mounting tolerances to guarantee the required contact forces of the seals is described below, see also
[0045] The process line 1 and insulation envelope 2 must be tightly connected to the tank/dewar comprising the tank process line 8 and connecting flange 14. Firstly, the two process lines 8, 1 are butt-connected via a union nut 7. By tightening the union nut 7, a process line seal 20 is compressed at the end between the pipe ends. Access for mounting the process line 1 is possible by sliding back a sliding coupling sleeve 11 which slides on the connecting sleeve 10. After connecting the process lines 1, 8, the sliding coupling sleeve 11 is fixed with a nut 12 against the sealing face 13 on the connecting sleeve 10, in particular, at a stop of the connecting sleeve 10. A flange of the sliding coupling sleeve 11 is pressed against the connecting flange 14 of the tank/dewar, and hence, the transfer line of the tank/dewar is pressed. The opposing forces are shown as arrows in
[0046] Thus, the connecting sleeve 10 serves to increase the thermal resistance despite the compact construction; the bellows 15 serves to increase the thermal resistance despite the compact construction, to compensate for mounting tolerances and to guarantee adequate contact force for the sealing effect; and the sliding coupling sleeve 11 allows access to the process lines 1, 8 and forms a connection, namely at a coupling space vacuum connector 23, for evacuating the coupling space or rendering this inert.
[0047]
[0048]
[0049] In
[0050]
[0051] The terms “coupled,” “attached,” or “connected” may be used herein to refer to any type of relationship, direct or indirect, between the components in question, and may apply to electrical, mechanical, fluid, optical, electromagnetic, electromechanical, or other connections. In addition, the terms “first,” “second,” etc. are used herein only to facilitate discussion, and carry no particular temporal or chronological significance unless otherwise indicated.
[0052] Those skilled in the art will appreciate from the foregoing description that the broad techniques of the embodiments can be implemented in a variety of forms. Therefore, while the embodiments have been described in connection with particular examples thereof, the true scope of the embodiments should not be so limited since other modifications will become apparent to the skilled practitioner upon a study of the drawings, specification, and following claims.
LIST OF REFERENCE SYMBOLS
[0053] 1 Process line [0054] 2 Insulation envelope [0055] 3 Insulation space [0056] 4 Protective envelope [0057] 4.1 Envelope section [0058] 4.2 Envelope section [0059] 5 Bellows [0060] 6 Coupling element [0061] 7 Union nut [0062] 8 Tank process line [0063] 9 End piece [0064] 10 Connecting sleeve [0065] 11 Sliding coupling sleeve [0066] 12 Nut [0067] 13 Stop of connecting sleeve, seal of connecting sleeve [0068] 14 Connection flange [0069] 15 Bellows [0070] 16 Vacuum connector [0071] 17 Absorbent material [0072] 18 End piece weld point [0073] 19 Connecting sleeve weld point [0074] 20 Process line seal [0075] 21 Connecting flange seal [0076] 22 Flange surface [0077] 23 Coupling space vacuum connector [0078] 24 End sleeve