EP3198180A1 - Coupling device for rotatable coupling of cryogenic fluid conduits - Google Patents

Coupling device for rotatable coupling of cryogenic fluid conduits

Info

Publication number
EP3198180A1
EP3198180A1 EP15794328.3A EP15794328A EP3198180A1 EP 3198180 A1 EP3198180 A1 EP 3198180A1 EP 15794328 A EP15794328 A EP 15794328A EP 3198180 A1 EP3198180 A1 EP 3198180A1
Authority
EP
European Patent Office
Prior art keywords
sealing means
ring
coupling device
flange
inner body
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP15794328.3A
Other languages
German (de)
French (fr)
Inventor
Albert Janssen
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
KANON LOADING EQUIPMENT BV
Original Assignee
KANON LOADING EQUIPMENT BV
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by KANON LOADING EQUIPMENT BV filed Critical KANON LOADING EQUIPMENT BV
Publication of EP3198180A1 publication Critical patent/EP3198180A1/en
Withdrawn legal-status Critical Current

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L27/00Adjustable joints, Joints allowing movement
    • F16L27/08Adjustable joints, Joints allowing movement allowing adjustment or movement only about the axis of one pipe
    • F16L27/0804Adjustable joints, Joints allowing movement allowing adjustment or movement only about the axis of one pipe the fluid passing axially from one joint element to another
    • F16L27/0808Adjustable joints, Joints allowing movement allowing adjustment or movement only about the axis of one pipe the fluid passing axially from one joint element to another the joint elements extending coaxially for some distance from their point of separation
    • F16L27/0824Adjustable joints, Joints allowing movement allowing adjustment or movement only about the axis of one pipe the fluid passing axially from one joint element to another the joint elements extending coaxially for some distance from their point of separation with ball or roller bearings
    • F16L27/0828Adjustable joints, Joints allowing movement allowing adjustment or movement only about the axis of one pipe the fluid passing axially from one joint element to another the joint elements extending coaxially for some distance from their point of separation with ball or roller bearings having radial bearings

Definitions

  • the invention relates to a coupling device for rotatable coupling of fluid conduits for cryogenic fluids, comprising an annular outer body and an annular inner body rotatable relative thereto, a first flange of a first fluid conduit coupled to the inner body and a second flange of a second fluid conduit coupled to the outer body, bearing rings with balls, provided between the outer body and the inner body, and sealing means for providing a fluid-tight seal between the outer body and the inner body.
  • a rotatable coupling for connecting a pair of pipes and for transferring fluid between the pipes at ambient
  • cryogenic temperatures is known from the American patent US 4 355 827.
  • a cryogenic seal between relatively rotatable inner and outer elements of the coupling prevents leakage at cryogenic temperatures, and an ambient temperature seal between the joint elements ensures a seal at ambient temperatures and prevents fluids coming into contact with the cryogenic seal.
  • the seal assembly comprises an elastomer O-ring retained in the outer element and an annular sealing ring fastened to the inner element and spring-biased toward the O-ring.
  • the sealing ring is held against the O-ring in a fluid-tight manner.
  • a number of rods or wires, or an annular sleeve having a high coefficient of linear expansion pulls the annular sealing ring away from the adjacent O-ring to prevent wear thereof, and other damage thereto, at low temperatures.
  • the relative rotatability of the inner and outer elements is provided by a bearing of a number of, in this case three, annular tracks with balls.
  • An axial bore provides fluids, which could possibly leak along the sealing means, with an escape to the outside world in order to prevent these fluids coming to lie in the ball space and there possibly contaminating the bearing.
  • the known rotatable coupling has a number of drawbacks.
  • the coupling has to have a relatively simple construction, be low- maintenance and thereby be relatively inexpensive to operate.
  • a ready- made single-row ball bearing is inserted between the outer body and the inner body and, other than in a prior art coupling device, no balls are inserted individually and in direct contact with the outer body and the inner body.
  • the invention thus provides a coupling device with reliable seals which can be arranged in simple manner, wherein lubricants for the bearing and an escape channel for leaked fluids can be dispensed with.
  • An embodiment of such a coupling device wherein the first flange is statically coupled to the inner gland, which is in turn statically coupled to the inner body, and the second flange is statically coupled to the outer body which is in turn dynamically coupled to the inner body, comprises first static sealing means between the first flange and the inner gland, second static sealing means between the inner gland and the inner body, first dynamic sealing means between the second flange and the inner body and second dynamic sealing means between the second flange and the inner body.
  • At least one of the first static sealing means, the second static sealing means, the first dynamic sealing means and the second dynamic sealing means comprises for instance a sealing ring manufactured from a polyethylene with ultra-high molecular weight (UHMW PE) .
  • UHMW PE ultra-high molecular weight
  • At least one of the first static sealing means, the second static sealing means, the first dynamic sealing means and the second dynamic sealing means comprises for instance a pressure ring manufactured from an austenitic superalloy on the basis of nickel-chromium.
  • At least one of the first static sealing means, the second static sealing means, the first dynamic sealing means and the second dynamic sealing means comprises for instance a spacer ring manufactured from a corrosion-resistant stainless steel .
  • At least one of the outer ring and the inner ring of the ball bearing is manufactured from a hardened martensitic steel.
  • the bearing ring of the outer ring and the bearing ring of the inner ring are preferably each provided with a friction-reducing coating which inhibits wear.
  • the balls are preferably manufactured from a ceramic material, for instance from silicon nitride (Si 3 N 4 ) .
  • the balls are preferably received in a four- point contact between the bearing ring of the outer ring and the bearing ring of the inner ring of the ball bearing.
  • Fig. la is a perspective view of an embodiment of a coupling device according to the invention, as seen on the front side, with a first flange,
  • Fig. lb is a cut-away perspective view of the coupling device shown in fig. la,
  • Fig. lc is a perspective view of the coupling device shown in fig. la, as seen on the rear side, with a second flange,
  • Fig. Id is the coupling device shown in fig. la in front view
  • Fig. le is the coupling device shown in fig. Id in a cross-section along the line E-E,
  • Fig. 2 is a cross-sectional view of a seal for a coupling device according to the invention.
  • Figures la-f show a coupling device 10 formed from an annular outer body 1 and an annular inner body 2 rotatable relative thereto.
  • a first flange 3 is fixedly coupled with bolts 5 to an annular gland innerbody 6, which is in turn fixedly coupled with bolts 7 to inner body 2.
  • a second flange 4 is fixedly coupled with bolts 8 to outer body 1.
  • Received between outer body 1 and inner body 2 is a ready-made ball bearing, with an outer ring 9 and an inner ring 11 between which balls 12 of silicon nitride (S13N 4 ) are enclosed in a brass bearing cage 13.
  • Ball bearing 9, 11, 12, 13 is further bounded by the gland innerbody 6 and an annular gland outerbody 14, which is fixedly coupled with bolts 15 to outer body 1.
  • the bearing ring of outer ring 9 and the bearing ring of inner ring 11 are each provided with a friction-reducing Xylan coating which inhibits wear.
  • An annular seal 16 is arranged between first flange 3 and gland innerbody 6 for a first fluid-tight static seal.
  • An annular seal 17 is arranged between gland innerbody 6 and inner body 2 for a second fluid-tight static seal.
  • An annular seal 18 is arranged between second flange 4 and inner body 2 for a first fluid- tight dynamic seal.
  • An annular seal 19 is arranged between second flange 4 and inner body 2 for a second fluid-tight dynamic seal.
  • the figure further also shows a seal 20 which provides access to a channel through which a purge gas, for instance nitrogen, can be guided through the ball bearing.
  • Fig. 2 shows in detail the annular seal 18 shown in fig. le, which is formed from a jacket 21 of UHMW PE which is U- shaped in cross-section, a spring 22 of an austenitic superalloy (Iconel) on the basis of nickel-chromium which is V-shaped in cross-section for exerting a force on jacket 21 in axial direction, and a spacer 23 of a corrosion-resistant stainless steel (AISI) which is rectangular in cross-section for exerting a force on jacket 21 in radial direction.
  • AISI corrosion-resistant stainless steel
  • the shown coupling device enables coupling of conduits for cryogenic liquids with a temperature below -160 °C and an internal pressure between 2.5 and 3.5 barg, wherein a number of at least 400,000 rotations through an angle of between 6 and 10 degrees can be performed without disturbance.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Joints Allowing Movement (AREA)

Abstract

Coupling device (10) for rotatable coupling of fluid conduits for cryogenic fluids, comprising an annular outer body (1) and an annular inner body (2) rotatable relative thereto, a first flange (3) of a first fluid conduit coupled to the inner body (2) and a second flange (4) of a second fluid conduit coupled to the outer body (1), bearing rings with balls (12), provided between the outer body (1) and the inner body (2), sealing means (16, 17, 18, 19) for providing a fluid-tight seal between the outer body (1) and the inner body (2), wherein the balls (12) are provided between an outer ring (9) and an inner ring (11) of a single- row ball bearing which is received between the outer body (1) and the inner body (2) and which is bounded by an annular outer gland (14) arranged against the outer body (1) and an annular inner gland (6) arranged against the inner body (2).

Description

COUPLING DEVICE FOR ROTATABLE COUPLING OF CRYOGENIC FLUID CONDUITS
The invention relates to a coupling device for rotatable coupling of fluid conduits for cryogenic fluids, comprising an annular outer body and an annular inner body rotatable relative thereto, a first flange of a first fluid conduit coupled to the inner body and a second flange of a second fluid conduit coupled to the outer body, bearing rings with balls, provided between the outer body and the inner body, and sealing means for providing a fluid-tight seal between the outer body and the inner body.
A rotatable coupling for connecting a pair of pipes and for transferring fluid between the pipes at ambient
temperature and cryogenic temperatures is known from the American patent US 4 355 827. A cryogenic seal between relatively rotatable inner and outer elements of the coupling prevents leakage at cryogenic temperatures, and an ambient temperature seal between the joint elements ensures a seal at ambient temperatures and prevents fluids coming into contact with the cryogenic seal. At ambient temperature the seal assembly comprises an elastomer O-ring retained in the outer element and an annular sealing ring fastened to the inner element and spring-biased toward the O-ring. At ambient temperatures the sealing ring is held against the O-ring in a fluid-tight manner. As the temperature decreases, a number of rods or wires, or an annular sleeve having a high coefficient of linear expansion, pulls the annular sealing ring away from the adjacent O-ring to prevent wear thereof, and other damage thereto, at low temperatures. The relative rotatability of the inner and outer elements is provided by a bearing of a number of, in this case three, annular tracks with balls. An axial bore provides fluids, which could possibly leak along the sealing means, with an escape to the outside world in order to prevent these fluids coming to lie in the ball space and there possibly contaminating the bearing. The known rotatable coupling has a number of drawbacks. The different sealing systems for ambient temperature and cryogenic temperatures, and particularly an annular pipe or an assembly of rods or wires for retracting or pressing an annular sealing ring, result in a complex and thereby expensive construction. The extent to which this complex construction can meet demands in respect of reliability in the longer term and the amount of maintenance required by the construction are unknown. The presence of an axial bore as escape channel for leaked fluids to prevent contamination of lubricants for the bearing is likewise considered a drawback.
It is an object of the invention to provide a coupling device for cryogenic fluid conduits which is suitable for coupling conduits for cryogenic liquids with a temperature below -160°C, for instance liquid natural gas. The coupling has to have a relatively simple construction, be low- maintenance and thereby be relatively inexpensive to operate.
These objects are achieved, and other advantages gained, with a coupling device of the type stated in the preamble, wherein the balls are provided according to the invention between an outer ring and an inner ring of a single-row ball bearing which is received between the outer body and the inner body and which is bounded by an annular outer gland arranged against the outer body and an annular inner gland arranged against the inner body.
In the manufacture of such a coupling device a ready- made single-row ball bearing is inserted between the outer body and the inner body and, other than in a prior art coupling device, no balls are inserted individually and in direct contact with the outer body and the inner body. The invention thus provides a coupling device with reliable seals which can be arranged in simple manner, wherein lubricants for the bearing and an escape channel for leaked fluids can be dispensed with.
An embodiment of such a coupling device, wherein the first flange is statically coupled to the inner gland, which is in turn statically coupled to the inner body, and the second flange is statically coupled to the outer body which is in turn dynamically coupled to the inner body, comprises first static sealing means between the first flange and the inner gland, second static sealing means between the inner gland and the inner body, first dynamic sealing means between the second flange and the inner body and second dynamic sealing means between the second flange and the inner body.
At least one of the first static sealing means, the second static sealing means, the first dynamic sealing means and the second dynamic sealing means comprises for instance a sealing ring manufactured from a polyethylene with ultra-high molecular weight (UHMW PE) .
At least one of the first static sealing means, the second static sealing means, the first dynamic sealing means and the second dynamic sealing means comprises for instance a pressure ring manufactured from an austenitic superalloy on the basis of nickel-chromium.
At least one of the first static sealing means, the second static sealing means, the first dynamic sealing means and the second dynamic sealing means comprises for instance a spacer ring manufactured from a corrosion-resistant stainless steel .
In an advantageous embodiment of a coupling device according to the invention at least one of the outer ring and the inner ring of the ball bearing is manufactured from a hardened martensitic steel.
The bearing ring of the outer ring and the bearing ring of the inner ring are preferably each provided with a friction-reducing coating which inhibits wear.
In a coupling device according to the invention the balls are preferably manufactured from a ceramic material, for instance from silicon nitride (Si3N4) .
With a suitable choice of ceramic material, balls having a hardness greater than that of stainless steel balls are obtained, and it is possible to construct a lubrication-free bearing .
In order to minimize effects of an axial load on the coupling device the balls are preferably received in a four- point contact between the bearing ring of the outer ring and the bearing ring of the inner ring of the ball bearing.
The invention will be elucidated hereinbelow on the basis of an exemplary embodiment, with reference to the drawings .
In the drawings
Fig. la is a perspective view of an embodiment of a coupling device according to the invention, as seen on the front side, with a first flange,
Fig. lb is a cut-away perspective view of the coupling device shown in fig. la,
Fig. lc is a perspective view of the coupling device shown in fig. la, as seen on the rear side, with a second flange,
Fig. Id is the coupling device shown in fig. la in front view,
Fig. le is the coupling device shown in fig. Id in a cross-section along the line E-E,
Fig. If is the coupling device shown in fig. la in rear view, and
Fig. 2 is a cross-sectional view of a seal for a coupling device according to the invention.
Corresponding components are designated in the figures with the same reference numerals.
Figures la-f show a coupling device 10 formed from an annular outer body 1 and an annular inner body 2 rotatable relative thereto. A first flange 3 is fixedly coupled with bolts 5 to an annular gland innerbody 6, which is in turn fixedly coupled with bolts 7 to inner body 2. A second flange 4 is fixedly coupled with bolts 8 to outer body 1. Received between outer body 1 and inner body 2 is a ready-made ball bearing, with an outer ring 9 and an inner ring 11 between which balls 12 of silicon nitride (S13N4) are enclosed in a brass bearing cage 13. Ball bearing 9, 11, 12, 13 is further bounded by the gland innerbody 6 and an annular gland outerbody 14, which is fixedly coupled with bolts 15 to outer body 1. The bearing ring of outer ring 9 and the bearing ring of inner ring 11 are each provided with a friction-reducing Xylan coating which inhibits wear. An annular seal 16 is arranged between first flange 3 and gland innerbody 6 for a first fluid-tight static seal. An annular seal 17 is arranged between gland innerbody 6 and inner body 2 for a second fluid-tight static seal. An annular seal 18 is arranged between second flange 4 and inner body 2 for a first fluid- tight dynamic seal. An annular seal 19 is arranged between second flange 4 and inner body 2 for a second fluid-tight dynamic seal. The figure further also shows a seal 20 which provides access to a channel through which a purge gas, for instance nitrogen, can be guided through the ball bearing.
Fig. 2 shows in detail the annular seal 18 shown in fig. le, which is formed from a jacket 21 of UHMW PE which is U- shaped in cross-section, a spring 22 of an austenitic superalloy (Iconel) on the basis of nickel-chromium which is V-shaped in cross-section for exerting a force on jacket 21 in axial direction, and a spacer 23 of a corrosion-resistant stainless steel (AISI) which is rectangular in cross-section for exerting a force on jacket 21 in radial direction.
The shown coupling device enables coupling of conduits for cryogenic liquids with a temperature below -160 °C and an internal pressure between 2.5 and 3.5 barg, wherein a number of at least 400,000 rotations through an angle of between 6 and 10 degrees can be performed without disturbance.

Claims

1. Coupling device (10) for rotatable coupling of fluid conduits for cryogenic fluids, comprising
an annular outer body (1) and an annular inner body (2) rotatable relative thereto,
a first flange (3) of a first fluid conduit coupled to the inner body (2) and a second flange (4) of a second fluid conduit coupled to the outer body (1),
bearing rings with balls (12), provided between the outer body (1) and the inner body (2),
sealing means (16, 17, 18, 19) for providing a fluid- tight seal between the outer body (1) and the inner body (2), characterized in that
the balls (12) are provided between an outer ring (9) and an inner ring (11) of a single-row ball bearing which is received between the outer body (1) and the inner body (2) and which is bounded by an annular outer gland (14) arranged against the outer body (1) and an annular inner gland (6) arranged against the inner body (2).
2. Coupling device (10) as claimed in claim 1, wherein the first flange (3) is statically coupled to the inner gland (6), which is in turn statically coupled to the inner body
(2) , and the second flange (4) is statically coupled to the outer body (1) which is in turn dynamically coupled to the inner body (2), characterized by
first static sealing means (16) between the first flange
(3) and the inner gland (6),
second static sealing means (17) between the inner gland (6) and the inner body (2),
first dynamic sealing means (18) between the second flange (4) and the inner body (2), and
second dynamic sealing means (19) between the second flange (4) and the inner body (2).
3. Coupling device (10) as claimed in claim 2,
characterized in that at least one of the first static sealing means (16), the second static sealing means (17), the first dynamic sealing means (18) and the second dynamic sealing means (19) comprises a sealing ring (21) manufactured from a polyethylene with ultra-high molecular weight (UHMW PE) .
4. Coupling device (10) as claimed in any of the claims 2-3, characterized in that at least one of the first static sealing means (16), the second static sealing means (17), the first dynamic sealing means (18) and the second dynamic sealing means (19) comprises a pressure ring (22)
manufactured from an austenitic superalloy on the basis of nickel-chromium.
5. Coupling device (10) as claimed in any of the claims 2-4, characterized in that at least one of the first static sealing means (16), the second static sealing means (17), the first dynamic sealing means (18) and the second dynamic sealing means (19) comprises a spacer ring (23) manufactured from a corrosion-resistant stainless steel.
6. Coupling device (10) as claimed in any of the foregoing claims, characterized in that at least one of the outer ring (9) and the inner ring (11) of the ball bearing is manufactured from a hardened martensitic steel.
7. Coupling device (10) as claimed in any of the foregoing claims, characterized in that the bearing ring of the outer ring (9) and the bearing ring of the inner ring (11) are preferably each provided with a friction-reducing coating which inhibits wear.
8. Coupling device (10) as claimed in any of the foregoing claims, characterized in that the balls (12) are manufactured from a ceramic material.
9. Coupling device (10) as claimed in claim 8,
characterized in that the ceramic material is silicon nitride (Si3N4) .
10. Coupling device (10) as claimed in any of the foregoing claims, characterized in that the balls (12) are received in a four-point contact between the bearing ring of the outer ring (9) and the bearing ring of the inner ring (12) of the ball bearing.
EP15794328.3A 2014-09-25 2015-09-16 Coupling device for rotatable coupling of cryogenic fluid conduits Withdrawn EP3198180A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NL2013525A NL2013525B1 (en) 2014-09-25 2014-09-25 Coupling device for rotatably coupling cryogenic fluid lines.
PCT/NL2015/050639 WO2016048137A1 (en) 2014-09-25 2015-09-16 Coupling device for rotatable coupling of cryogenic fluid conduits

Publications (1)

Publication Number Publication Date
EP3198180A1 true EP3198180A1 (en) 2017-08-02

Family

ID=51947438

Family Applications (1)

Application Number Title Priority Date Filing Date
EP15794328.3A Withdrawn EP3198180A1 (en) 2014-09-25 2015-09-16 Coupling device for rotatable coupling of cryogenic fluid conduits

Country Status (4)

Country Link
EP (1) EP3198180A1 (en)
CN (1) CN106715991A (en)
NL (1) NL2013525B1 (en)
WO (1) WO2016048137A1 (en)

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2430445A (en) * 1945-06-15 1947-11-11 Bell Telephone Labor Inc Air pressure seal
FR1362034A (en) * 1963-04-17 1964-05-29 S E P Dispenser for liquids, in particular for supplying tools used for washing motor vehicles or for similar applications
US5169181A (en) * 1991-12-16 1992-12-08 The Johnson Corporation Impact resistant rotary joint with glide ring seals
DE19811136A1 (en) * 1997-02-19 1999-09-23 Fleissner Maschf Gmbh Co Fixing device holding rotatable hollow cylinder at its outer circumference for pulp and fiber processing
CN2589781Y (en) * 2002-12-25 2003-12-03 沈阳工业大学辽阳校区 Oil-feeding arm self-propelling swivel coupling
CN2716621Y (en) * 2004-08-10 2005-08-10 周洪 Rotating joint
CN203718230U (en) * 2014-02-08 2014-07-16 株洲开元自动焊接装备有限公司 Hydraulic rotating joint

Also Published As

Publication number Publication date
WO2016048137A1 (en) 2016-03-31
NL2013525B1 (en) 2016-09-29
CN106715991A (en) 2017-05-24

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