Cryogenic pump flange
11655809 · 2023-05-23
Assignee
Inventors
- Robbi L. McDonald (Richmond, CA)
- Ankur H. Vayeda (Vancouver, CA)
- Gregory C. Harper (North Vancouver, CA)
- Kenneth W. Kratschmar (Vancouver, CA)
- Michael Ebbehoj (Vancouver, CA)
Cpc classification
Y10S417/901
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F04B39/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2250/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B37/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2250/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B39/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B37/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A flange for a pump comprises first and second faces and a passageway for cryogenic fluid flow extending from the first face to the second face and at least one of (1) the passageway is for a pipe and comprises a first portion of a first diameter and a second portion of a second diameter greater than the first diameter, wherein when the pipe has an outer diameter that is smaller than the second diameter a gap is formed between the pipe and the passageway where the pipe passes through the second portion; and (2) a first annular groove in one of the first face and the second face and extending around the passageway, wherein the first annular groove in cooperation with the passageway forms a bellows. The gap and bellows increase the thermal resistance between the passageway and the flange, and the bellows allows for flexure during thermal contractions of the flange reducing thermal stress on welded fluid seals.
Claims
1. A flange, comprising: a first face; a second face; a cryogenic fluid flow passageway extending from said first face to said second face, and one of: (a) a first annular groove in said second face, said cryogenic fluid flow passageway including a first portion with a first diameter extending from said second face and a second portion with a second diameter extending from said first face, said second diameter being greater than said first diameter, a first annular portion between said first annular groove and said cryogenic fluid flow passageway, and said first annular groove extends around said first portion and said second portion of the cryogenic fluid flow passageway; or (b) a first annular groove in one of said first face or said second face and around said cryogenic fluid flow passageway, a first annular portion between said first annular groove and said cryogenic fluid flow passageway, a second annular groove extending from the other of the first or second face as said first annular groove and around said first annular groove, a second annular portion between said second annular groove and said first annular groove.
2. The flange of claim 1, wherein said cryogenic fluid flow passageway includes an inner wall and said inner wall of said cryogenic fluid flow passageway, in use, is in contact with a pipe.
3. The flange of claim 2, wherein said pipe is welded to said second face such that when said first annular portion contracts due to a thermal gradient between said pipe and said flange along said first annular portion said pipe moves with said first annular portion or when said flange thermally contacts said first annular portion flexes.
4. The flange of claim 1, wherein said cryogenic fluid flow passageway, in use, is in fluid communication with a cryogenic fluid storage vessel in which a cryogenic fluid is stored and a pump is in fluid communication with said cryogenic fluid storage vessel, and said pump is configured to, in operation, pump said cryogenic fluid stored in said cryogenic fluid storage vessel to said cryogenic fluid flow passageway.
5. The flange of claim 1, wherein said second portion of said cryogenic fluid flow passageway is (i) at least partially filled with a low thermal conductivity material, (ii) sealed at the second face to reduce accumulation of moisture in said second portion of said cryogenic fluid flow passageway, or (iii) both (i) and (ii).
6. The flange of claim 1, wherein said cryogenic fluid flow passageway, in use, is sealed at the first face by a first pipe that extends around said cryogenic fluid flow passageway and is sealed at the second face by a second pipe that extends around said cryogenic fluid flow passageway.
7. The flange of claim 1, wherein said first annular groove extends more than half-way from the first face to the second face.
8. The flange of claim 1, wherein said second portion of said cryogenic fluid flow passageway extends more than half-way from said first face to said second face.
9. A flange assembly, comprising: a process fluid pipe; a flange comprising: a first face; a second face; a cryogenic fluid flow passageway extending from said first face to said second face, and one of: (a) said process fluid pipe passes through said cryogenic fluid flow passageway, a first annular groove in said second face, said cryogenic fluid flow passageway including a first portion with a first diameter extending from said second face and a second portion with a second diameter extending from said first face, said second diameter being greater than said first diameter, an annular space formed around said process fluid pipe, a first annular portion between said first annular groove and said annular space, and said first annular groove extends around said first portion and said second portion of the cryogenic fluid flow passageway; or (b) a first annular groove in one of said first face and said second face and extending around said cryogenic fluid flow passageway, a first annular portion between said first annular groove and said cryogenic fluid flow passageway, a second annular groove extending from the other of the first or second face as said first annular groove and around said first annular groove, a second annular portion between said second annular groove and said first annular groove.
10. The flange assembly of claim 9, wherein said flange comprises a bore extending from said first face to said second face, said flange assembly further comprises an insert and said cryogenic fluid flow passageway formed by inserting said insert into said bore.
11. The flange assembly of claim 9, wherein said process fluid pipe is welded to said flange.
12. The flange of claim 9, wherein said annular space is (i) filled with a low thermal conductivity material, (ii) sealed at the second face to reduce accumulation of moisture in said annular space or (iii) both (i) and (ii).
13. The flange assembly of claim 9, wherein the process fluid pipe is a first process fluid pipe and further comprising a second process fluid pipe, wherein the first process fluid pipe is in fluid sealing contact with said first face around said cryogenic fluid flow passageway within said first annular groove and said second process fluid pipe is in fluid sealing contact with said second face around said cryogenic fluid flow passageway within said second annular groove.
14. The flange assembly of claim 9, wherein said process fluid pipe is welded to said second face such that when said first annular portion contracts due to a thermal gradient between said pipe and said flange along said first annular portion said pipe moves with said first annular portion or when said flange thermally contracts said first annular portion flexes.
15. The flange assembly of claim 9, wherein said first annular groove extends more than half-way through said flange.
16. The flange assembly of claim 9, wherein said second portion of said cryogenic fluid flow passageway extends more than half-way through said flange.
17. A cryogenic pump system, comprising: a storage vessel; a pipe to transport cryogenic fluid; and a flange coupled to said storage vessel and said pipe, said flange comprising: a first face; a second face; a cryogenic fluid flow passageway extending from said first face to said second face, and one of: (a) said pipe passing through said passageway, a first annular groove in said second face, said cryogenic fluid flow passageway including a first portion with a first diameter extending from said second face and a second portion with a second diameter extending from said first face, said second diameter being greater than said first diameter, an annular space formed around said pipe, and a first annular portion between said first annular groove and said annular space, and said first annular groove extends around the first portion and the second portion of the cryogenic fluid flow passageway, wherein said flange is configured with said pipe connected with said first annular portion at said second face such that when said first annular portion contracts due to a thermal gradient between said first pipe and said flange along said first annular portion said first pipe moves with said first annular portion; or (b) a first annular groove in one of said first face and said second face and extending around said cryogenic fluid flow passageway, a first annular portion between said first annular groove and said cryogenic fluid flow passageway, a second annular groove extending from the other of the first or second face as said first annular groove and around said first annular groove, a second annular portion between said second annular groove and said first annular groove, wherein said flange is configured with said pipe connected with said first annular portion such that when said first annular portion contracts due to a thermal gradient between said pipe and said flange along said first annular portion said pipe moves with said first annular portion.
18. The cryogenic pump system of claim 17, wherein said flange further comprises at least one hydraulic fluid passageway in fluid communication with a hydraulic drive unit.
19. The cryogenic pump system of claim 17, wherein element (a) of the flange further comprises a second annular groove that extends from the other of the first or second face as said first annular groove and around said first annular groove, said first and second annular grooves in cooperation with said cryogenic fluid flow passageway forms a bellows.
20. The cryogenic pump system of claim 17, wherein said annular space (i) filled with a low thermal conductivity material, (ii) sealed at the second face to reduce accumulation of moisture in said annular space, or (iii) both (i) and (ii).
21. The cryogenic pump system of claim 17, wherein the pipe is a first pipe and further comprising a second pipe, wherein the first pipe is in fluid sealing contact with said first face around said cryogenic fluid flow passageway and said second pipe is in fluid sealing contact with said second face around said cryogenic fluid flow passageway.
22. The cryogenic pump system of claim 17, wherein said second portion of said cryogenic fluid flow passageway extends more than half-way through said flange.
23. The cryogenic pump system of claim 17, wherein said first annular groove extends more than half-way through said flange.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENT(S)
(14) Referring to
(15) Referring now to
(16) The thermal resistance between process fluid pipe 40 and flange 50 is increased by gap 140 since the contact area between the pipe and the flange is reduced. Normally both pipe 40 and flange 50 are made from metal, which is a better conductor of heat than air occupying gap 140. The gap decreases cooling effect on flange 50 caused by the flow of cryogenic fluid through pipe 40, thereby reducing the likelihood of the hydraulic fluid freezing and reducing condensation of humidity and frost/ice build-up around warm end assembly 20.
(17) Passageway 110 is at an oblique angle to both faces 65 and 85, such that opening 125 is further from longitudinal axis 15 than opening 135. Referring now to
(18) Referring now to
(19) Referring now to
(20) Referring now to
(21) Referring now to
(22) While particular elements, embodiments and applications of the present invention have been shown and described, it will be understood, that the invention is not limited thereto since modifications can be made by those skilled in the art without departing from the scope of the present disclosure, particularly in light of the foregoing teachings.