EP3384094A2 - Einheit zum anschluss eines strukturellen elements einer offshore-plattform an eine aufnahmestruktur und zugehörige verwendungen - Google Patents
Einheit zum anschluss eines strukturellen elements einer offshore-plattform an eine aufnahmestruktur und zugehörige verwendungenInfo
- Publication number
- EP3384094A2 EP3384094A2 EP15813089.8A EP15813089A EP3384094A2 EP 3384094 A2 EP3384094 A2 EP 3384094A2 EP 15813089 A EP15813089 A EP 15813089A EP 3384094 A2 EP3384094 A2 EP 3384094A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- connection unit
- connection
- unit
- leg
- longitudinal axis
- 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- Withdrawn
Links
- 239000012530 fluid Substances 0.000 claims description 6
- 238000004873 anchoring Methods 0.000 claims description 4
- 238000009434 installation Methods 0.000 description 6
- 238000003466 welding Methods 0.000 description 5
- 230000010354 integration Effects 0.000 description 3
- 238000004519 manufacturing process Methods 0.000 description 3
- 239000007787 solid Substances 0.000 description 3
- 230000000295 complement effect Effects 0.000 description 2
- 238000006073 displacement reaction Methods 0.000 description 2
- 229920001971 elastomer Polymers 0.000 description 2
- 239000000806 elastomer Substances 0.000 description 2
- 230000013011 mating Effects 0.000 description 2
- 239000002184 metal Substances 0.000 description 2
- 238000000034 method Methods 0.000 description 2
- 241000446313 Lamella Species 0.000 description 1
- 241000920340 Pion Species 0.000 description 1
- 230000015572 biosynthetic process Effects 0.000 description 1
- 230000007423 decrease Effects 0.000 description 1
- 230000003111 delayed effect Effects 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 230000005484 gravity Effects 0.000 description 1
- 230000001788 irregular Effects 0.000 description 1
- 230000014759 maintenance of location Effects 0.000 description 1
- 238000011084 recovery Methods 0.000 description 1
- 230000000284 resting effect Effects 0.000 description 1
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 1
Classifications
-
- E—FIXED CONSTRUCTIONS
- E02—HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
- E02B—HYDRAULIC ENGINEERING
- E02B17/00—Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor
- E02B17/02—Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor placed by lowering the supporting construction to the bottom, e.g. with subsequent fixing thereto
- E02B17/021—Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor placed by lowering the supporting construction to the bottom, e.g. with subsequent fixing thereto with relative movement between supporting construction and platform
- E02B17/024—Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor placed by lowering the supporting construction to the bottom, e.g. with subsequent fixing thereto with relative movement between supporting construction and platform shock absorbing means for the supporting construction
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16B—DEVICES FOR FASTENING OR SECURING CONSTRUCTIONAL ELEMENTS OR MACHINE PARTS TOGETHER, e.g. NAILS, BOLTS, CIRCLIPS, CLAMPS, CLIPS OR WEDGES; JOINTS OR JOINTING
- F16B21/00—Means for preventing relative axial movement of a pin, spigot, shaft or the like and a member surrounding it; Stud-and-socket releasable fastenings
- F16B21/06—Releasable fastening devices with snap-action
- F16B21/065—Releasable fastening devices with snap-action with an additional locking element
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16B—DEVICES FOR FASTENING OR SECURING CONSTRUCTIONAL ELEMENTS OR MACHINE PARTS TOGETHER, e.g. NAILS, BOLTS, CIRCLIPS, CLAMPS, CLIPS OR WEDGES; JOINTS OR JOINTING
- F16B21/00—Means for preventing relative axial movement of a pin, spigot, shaft or the like and a member surrounding it; Stud-and-socket releasable fastenings
- F16B21/10—Means for preventing relative axial movement of a pin, spigot, shaft or the like and a member surrounding it; Stud-and-socket releasable fastenings by separate parts
- F16B21/12—Means for preventing relative axial movement of a pin, spigot, shaft or the like and a member surrounding it; Stud-and-socket releasable fastenings by separate parts with locking-pins or split-pins thrust into holes
- F16B21/125—Means for preventing relative axial movement of a pin, spigot, shaft or the like and a member surrounding it; Stud-and-socket releasable fastenings by separate parts with locking-pins or split-pins thrust into holes radially resilient or with a snap-action member, e.g. elastic tooth, pawl with spring, resilient coil or wire
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16B—DEVICES FOR FASTENING OR SECURING CONSTRUCTIONAL ELEMENTS OR MACHINE PARTS TOGETHER, e.g. NAILS, BOLTS, CIRCLIPS, CLAMPS, CLIPS OR WEDGES; JOINTS OR JOINTING
- F16B7/00—Connections of rods or tubes, e.g. of non-circular section, mutually, including resilient connections
- F16B7/04—Clamping or clipping connections
- F16B7/0406—Clamping or clipping connections for rods or tubes being coaxial
- F16B7/0413—Clamping or clipping connections for rods or tubes being coaxial for tubes using the innerside thereof
Definitions
- the invention relates to a unit for connecting a structural element of a marine platform to a reception structure.
- the invention also relates to uses of this connection unit.
- the invention may in particular be applied for the connection of a marine platform leg to a reception structure for said unit, said reception structure being floating or disposed on the seabed, either by anchoring or by simply laying on the seabed.
- the marine platform can then be an oil platform or a wind turbine.
- the invention can also be applied for connecting an oil platform bridge to a riser.
- an offshore platform for example an oil, wind or other platform
- a method often used consists, with the help of a barge, to deposit the platform on a structure having been installed beforehand.
- This reception structure can be floating or arranged on the seabed.
- the host structure When placed on the seabed, the host structure is either anchored to the seabed or simply resting on the seabed.
- connection unit of this leg is used for each leg of the platform, a connection unit of this leg to the host structure.
- connection unit is generally called “Leg Mating Unit” (LMU) in the English terminology.
- LMU Leg Mating Unit
- DMR Receptor Deck Mating
- An LMU is integrated either inside a leg of the platform or inside its host structure.
- an LMU In the case where an LMU is intended to be mounted inside a leg of the platform, it should be brought by the underside of the leg concerned during the manufacture of the platform, for example before the installation of the platform on the barge intended to take this platform to sea.
- Figure 1 a first approach currently used to mount an LMU inside a platform leg. More specifically, Figure 1 (a) shows, in a sectional view, an assembly comprising a platform leg 1 (top) and a connection unit or LMU 2 (bottom), before mounting in the leg 1 and the FIG. 1 (b) shows, again in sectional view, the LMU 2 mounted inside said leg 1.
- the leg 1 is in the form of a regular hollow cylinder, whose inside diameter and thickness are given.
- the LMU 2 unit As for the LMU 2 unit, it comprises a base 20, a housing 21 and a pin 22 for connecting the base 20 to its housing 21.
- the pin 22 is in the form of a plate, intended to be fixed to the base 20 .
- the base 20 comprises an axis 20A, adapted to be fixed to the pin 22.
- the housing 21 comprises retaining means 21 R of the pin 22. This is why the pin 22 has larger dimensions than that of an orifice OC provided in the retaining means 21 R.
- the pin 22 is inserted from the top of the retaining means 21 R of the housing 21 until it comes into contact with the retaining means 21 R of the housing. Then, the base 20 is inserted through the bottom of the housing 21 and the axis 20A of the base 20 is made to cooperate with the pin 22. This cooperation is effected by screwing, the axis 20A and the pin 22 being designed for this purpose. effect. Screwing at the same time a fixing between the base 20 and the pin 22.
- the LMU 2 unit is then formed.
- the formation of the LMU unit is generally done in the factory, so before transport on site installation on the leg 1.
- the LMU 2 unit is placed inside the leg 1.
- the outer diameter of the housing 21 is slightly less than that of the inner diameter of the leg 1 so that the LMU unit can be mounted inside the leg 1.
- the attachment of the housing 21 to the leg 1 is then performed by welding.
- the housing 21 generally comprises a widening 21 E in its lower part to come into contact with the wall of the leg 1, once the LMU unit 2 mounted inside the leg 1.
- This enlargement area 21 E of the housing 21 is then advantageously used to ensure the welding of the housing 21 to the leg 1 and consequently, the attachment of the LMU unit 2 to the leg 1.
- the LMU 2 and more precisely its base 20 comprises, in its lower part, a zone 20Z (in this case of the female type, but it may be otherwise) intended to be connected with a zone complementary to the structure of the 'Home.
- This connection is generally limited to a corresponding engagement of male and female parts.
- the LMU 2 comprises a connection means, namely the zone 20Z, with the receiving structure of the leg 1 and a connection between the housing 21 and the leg 1 (welding).
- the housing or second connecting means 21 undergoes only an axial movement along the longitudinal axis AL of the LMU 2 (the axis longitudinal of the base 20, its housing 21 and the pin 22 is confused).
- the longitudinal axis AL merges with that of the leg 1.
- FIG. 2 (a) shows, in a sectional view, a platform leg V (top) and an LMU unit 2 ', before mounting in the leg and FIG. 2 (b) represents, always in a sectional view, the LMU unit 2 'mounted within said leg 1'.
- the LMU 2 'unit no longer has a dwelling.
- the LMU unit 2 'thus comprises only a base 20 and a pin 22, both of which conform to the description made previously for the first approach.
- leg has retaining means 11 R 'in accordance with those (21 R) housing 21 of the first approach.
- the entire assembly can be performed at the installation site of the LMU unit inside the leg.
- the pin 22 is inserted through the top of the leg 1 'until the pin 22 comes into contact with the retaining means 11 R' of the leg 1 '.
- the base 20 is then inserted into the pin, by its axis 20A to the pin 22.
- the LMU unit 2 ' is thus formed at the same time as its mounting inside the leg.
- the LMU 2 ' and more precisely its base 20, comprises, in its lower part, a zone 20Z (in this case of the female type, but it may be otherwise) intended to be connected with a corresponding zone of the reception structure.
- a zone 20Z in this case of the female type, but it may be otherwise
- the LMU 2 here comprises a first connecting means, namely the zone 20Z, with the receiving structure of the leg 1' and a second connection means, namely the pin 22, with the leg 1 '.
- the base 20 is translated along the longitudinal axis AL 'of the LMU 2' (the longitudinal axis of the base 20 and that of the pion 22 merge) in or as the case, around the pin 22.
- the fixation is then carried out.
- An object of the invention is therefore to provide a connection unit which simplifies the connection operation, in particular between the connection unit and a structural element of the marine platform.
- the invention proposes a unit for connecting a structural element of a marine platform to a structure for accommodating said unit, the latter comprising means of connection with the host structure, called the first connection means, and at least one connection means with the platform leg, called the second connection means, and a longitudinal axis characterized in that said at least one second connection means is integrated at one end of said unit and adapted to move in a movement comprising at least one radial component between a retracted position ensuring the positioning of said unit inside the leg and an extended position ensuring the connection between the connection unit and the leg, this radial component being defined in a plane perpendicular to said longitudinal axis.
- the invention may also include at least one of the following features, taken alone or in combination:
- said at least one second connection means comprises at least one elastic zone
- said at least one elastic zone is formed of a set of lamellae separated by openings
- said at least one second connection means is an elastic ring having at least one opening;
- said at least one second connection means comprises a first element, rigid, this first element being one which is able to move in a movement comprising at least one radial component between said retracted position and said deployed position and at least one second element, in contact with the first element, this second element being able to exert a force on the first element to ensure said movement of the first element;
- said at least one of said at least one second element is an elastic means
- said at least one first element is rotatably mounted on an axis belonging to the plane perpendicular to said longitudinal axis;
- said at least one second element, elastic is a spring whose one end is fixed to the connection unit and whose other end is in free contact with the first element;
- the axis of rotation of the first element being situated at a distance, taken radially, from said longitudinal axis which is greater than the distance, also taken radially, from the spring to this longitudinal axis, this spring being arranged to exert a force generating a torque on the axis of rotation of the first element to ensure said movement of the first element;
- the first element is in the form of a hook
- the spring is arranged to exert a radial force on the first element; said at least one second element is a rigid means;
- said at least one second element is rotatably mounted on an axis belonging to the plane perpendicular to said longitudinal axis, this second element having for example a curved shape;
- said at least one second element in the form of a rigid rod displaceable within the connection unit, this rod being provided with a portion whose shape is able to ensure said movement of the first element when said stem is displaced;
- said connecting unit is arranged to allow either a rotation of said rod about said longitudinal axis, or a translation along said longitudinal axis so that the portion of said rod provides said movement of the first member;
- said at least one second element is a counterweight to said at least one first element and wherein said at least one first element is rotatably mounted on an axis belonging to the plane perpendicular to said longitudinal axis;
- said at least one second element is in the form of a chamber adapted to receive a fluid under pressure or a pyrotechnic component to ensure said movement of said at least first element.
- the invention also relates to the use of a connection unit according to the invention for connecting a marine platform leg to a reception structure for said unit, said reception structure being floating or disposed on the seabed, or by anchoring, or simply by laying on the seabed.
- the invention also relates to the use of a connection unit according to the invention for connecting an oil platform bridge to a riser forming a reception structure for said unit.
- FIG. 3 which comprises Figs. 3 (a) to 3 (e), shows a first embodiment of the invention
- Figure 4 shows an alternative embodiment in the first embodiment
- Fig. 5 which includes Figs. 5 (a) to 5 (d), shows another variant in the first embodiment
- FIG. 6, which comprises FIGS. 6 (a) to 6 (c), represents a second embodiment of the invention
- FIG. 7, which comprises FIGS. 7 (a) to 7 (c), shows an alternative to the second embodiment
- Figure 8 shows another variant in the second embodiment
- FIG. 10 which comprises FIGS. 10 (a) to 10 (d), shows an alternative to the third embodiment of the invention
- FIG. 12 shows another variant in the third embodiment
- Fig. 14 which includes Figs. 14 (a) to 14 (c), shows various possible states of a connection unit according to the invention, in use.
- FIG. 3 shows a first embodiment of the invention. Variations of this first embodiment are described in support of FIGS. 4 and 5.
- connection means between the connection unit and the leg, comprising at least one elastic zone.
- FIGS. 3 (a) and 3 (b) show a marine platform leg 100 and a connection unit 200 (LMU) before the latter is mounted inside the leg 100, according to a view of section and partial sectional view respectively.
- Figure 3 (c) shows the connection unit 200 connected to the inside of the leg 100.
- the leg 100 comprises a retaining means comprising a plate P extending in the radial plane and fixed to the inner wall of the leg.
- the plate P also has a central orifice OC intended to receive an end of the connection unit 200.
- This plate P is advantageously, as shown in the accompanying figures, reinforced by a plurality of fins ALT, belonging to the retaining means, attached to both the plate P and the inner wall of the leg 100.
- the leg 100 is generally in the form of a hollow cylinder.
- connection unit (LMU) 200 of the marine platform leg 100 to a reception structure comprises two connection means 201, 202.
- the first connection means 201 is a connection means between the connection unit (LMU) 200 and the host structure.
- This first connection means 201 is generally in the form of a hole forming a female part for a complementary means provided in the host structure.
- the second connection means 202 is a connection means with the platform leg.
- This second connection means 202 is integrated at one end (E) of said unit.
- This end E is the opposite end to that which comprises the first connecting means 201 intended to be connected to the receiving structure of the leg.
- this second connection means 202 is able to move in a movement comprising at least one radial component between a retracted position, ensuring the positioning of the connection unit (LMU) 200 inside the leg 100 and , an extended position, providing the connection between the connection unit (LMU) 200 and the leg 100, this radial component being defined in a plane perpendicular to the longitudinal axis AL of the connection unit (LMU) 200.
- longitudinal axis AL merges with that of the leg 100 (see Figure 3 (c) for example).
- the second connection means 202 is in the form of at least one elastic element.
- This elastic element 202 is integrated at the end E of the connection unit (LMU) 200 by one of its ends E1.
- This integration secures the elastic member 202 to the connection unit.
- this integration can be done by housing the end E1 in a housing 203 of the end of the connection unit (LMU) 200, for example by welding.
- the other end E2 of the elastic element 202 is free.
- the desired elasticity can in particular be obtained by providing an elastic element provided with LM lamellae.
- the elastic element has a taper.
- the elastic element 202 In the state of rest (no radial stresses), the elastic element 202 is in an extended position (this is what is shown in all of Figures 3 (a) to 3 (e)). The dimensions of the elastic element 202, at its end E2, are then greater than those of the orifice OC of the retaining means MR provided in the leg 100.
- connection unit (LMU) 200 When it is desired to mount the connection unit (LMU) 200 inside the leg 100, the end E of the connection unit passes through the orifice OC of the retention means MR provided for in FIG. inside the leg, which deforms the elastic element, due to the stress applied by the plate P on this elastic element 202. The deformation of the elastic member 202 then allows its passage through the orifice OC. Once this orifice OC crossed, the elastic member 202 returns to its natural position (rest) and then ensures the connection between the connection unit (LMU) 200) and the leg 100.
- FIG. 4 represents, in a truncated perspective view, another possible form for the elastic element 202 shown in FIG.
- the elastic element is in the form of a ring having an opening O.
- an elastic element 202 having a taper is advantageous.
- the elastic element 202 When the elastic element 202 comes into contact with the plate P from below, the latter forces the elastic element 203 to contract, radially.
- the opening O decreases or even closes completely (retracted position).
- the elastic element 203 then enters more deeply into a housing 203 provided in the end E of the base 20 to receive the elastic element 203. This then allows the elastic element to pass through the opening OC provided in the plate P and he is helped in this, if necessary by its taper.
- the elastic member 202 Once the elastic member 202 has passed the plate, it resumes its natural shape and expands radially to an extended position.
- the deployed position of the elastic element 202 is that shown in Figure 4, after passage of the orifice OC of the plate. In this deployed position, the connection between the LMU 2 'and the leg is ensured.
- Figure 5 shows another variant of the second embodiment.
- the first connection means is a connection means between the connection unit (LMU) 200 and the host structure, in accordance with that of the first embodiment, and is therefore not shown and described again.
- the second connection means 202 is a connection means with the platform leg.
- This second connection means 202 is integrated at an end E of said unit.
- This end E is the opposite end to that which comprises the first connecting means 201 intended to be connected to the receiving structure of the leg.
- this second connection means 202 is able to move in a movement comprising at least one radial component between a retracted position, ensuring the positioning of the connection unit (LMU) 200 inside the leg 100 and , an extended position, providing the connection between the connection unit (LMU) 200 and the leg 100, this radial component being defined in a plane perpendicular to the longitudinal axis AL of the connection unit (LMU) 200.
- This longitudinal axis AL merges with that of the leg 100.
- the second connection means 202 comprises an end E11 integrated in a housing 203 provided in the connection unit. This integration is performed so that the end E11 can translate along the housing 203 of the connection unit, in the direction given by the longitudinal axis AL of the connection unit.
- the housing 203 thus also extends along this longitudinal axis AL.
- the other end E12 of the first element 202 ! is in the form of a tab extending radially outwards, ie away from the longitudinal axis AL of the connection unit. In this way this tab E12 is able to come into contact with the plate P (from below) belonging to the retaining means of the leg 100.
- the first element 202 ⁇ comprises at least one elastic zone LM.
- This elastic zone is for example in the form of a plurality of elastic lamellae LM separated from one another in pairs by an opening O. A common opening is then provided between each elastic lamella LM and the tab E12.
- the connection unit advantageously has a portion 210 of indented shape, for example conical or pyramidal, to interact with the elastic lamellae LM.
- connection unit ZE of the connection means 202 is constrained by the presence of the wall P in the retracted position and no relative movement between the end E11 of the first element 202i and the connection unit 200 does not happen.
- any subsequent movement of the connection unit 200 relative to the leg 100 involves the application of an elastic force which tends to deploy, by a movement comprising a radial component, the connecting means 202. This movement is advantageously aided by the notched portion 210 of the connection unit. The connection between the connection unit (LMU) 200 and its leg is thus performed.
- Figure 6 shows a second embodiment.
- Figures 7 and 8 show variants in this second embodiment.
- connection unit comprises two elements, one of which is rigid and the other elastic.
- FIGS. 6 (a) and 6 (b) represent the assembly formed by the leg 100, and more particularly its plate P provided with an orifice, and by the connection unit (LMU) 200 with two steps different from the connection between this leg 100 and the connection unit.
- Figure 6 (c) is a view from above.
- the connection unit (LMU) 200 of the marine platform leg 100 to a reception structure (not shown) comprises two connection means.
- the first connection means is a connection means between the connection unit (LMU) 200 and the host structure, in accordance with that of the first embodiment, and is therefore not shown and described again.
- the second connection means 202 is a connection means with the platform leg.
- This second connection means 202 is integrated at one end (E) of said unit.
- This end E is the opposite end to that which comprises the first connecting means 201 intended to be connected to the receiving structure of the leg.
- this second connection means 202 is able to move in a movement comprising at least one radial component between a retracted position, ensuring the positioning of the connection unit (LMU) 200 inside the leg 100 and , an extended position, providing the connection between the connection unit (LMU) 200 and the leg 100, this radial component being defined in a plane perpendicular to the longitudinal axis AL of the connection unit (LMU) 200.
- longitudinal axis AL merges with that of the leg 100.
- the second connection means 202 here comprises a first rigid element 202, mounted on an axis AX belonging to the radial plane, therefore perpendicular to the longitudinal axis AL of the connection unit (LMU) 200. present in the form of a shaft fixed in the connection unit. This assembly allows a pivoting of the first element 2Q2-I around said axis AX. This axis AX is located in the upper part of the end E of the connection unit (LMU) 200.
- the second connection means 202 also comprises a second element 202 2 , elastic, for example a spring, one end of which is fixed to the connection unit and whose other end cooperates with the first element 202 ⁇ .
- the attachment between the second element 202 2 and the connection unit (LMU) 200 is provided in the lower part of the end E of the connection unit, so that the force exerted by the elasticity of this second element 202 2 on the first element 202 ⁇ maximizes the rotational torque of the first element 202 ! around its AX axis.
- an axial offset DA is therefore used between the end of the second element 202 2 which is fixed to the connection unit and the axis of rotation AX of the first element 202i to maximize this torque.
- this torque is also possible because the second element 202 2 is oriented to exert an axial force, a radial offset DR must exist between the position of the axis AX and the fixing position of the second element 202 2 on the connection unit (LMU) 200 (the axis AX is radially further from the longitudinal axis AL than is the position of attachment of the second element 202 2 to the connection unit). Without this radial offset, the second element 202 2 could not print a movement, comprising a radial component, to the first element 202 ⁇ to move it from its retracted position to its deployed position, in the absence of stress exerted by the plate P .
- the spring could be oriented otherwise, that is to say in a radial direction and this question of radial shift DR would no longer be of interest.
- the first element 202 which is caused to undergo a movement comprising at least one radial component.
- the second element 202 2 in particular when it is a spring, is caused to have an axial movement, along the longitudinal axis AL of the connection unit (LMU) 200.
- connection means 202 may be, at least in part, housed in a housing 203 of the connection unit (LMU) 200, provided for this purpose.
- LMU connection unit
- the first element 202 ! is constrained by the plate P of the leg retaining means in a retracted position, against the force exerted by the second element 202 2 , elastic (spring, for example) on the first element 202T.
- the first element 202 ⁇ is then held by the wall P in its housing 203.
- the second elastic element 202 2 is forced into a retracted position by the first element 202 ! .
- the plate P no longer constrains the first element 202-, which, pushed by the force exerted by the second element 202 2 , elastic, rotates around its AX axis.
- the release of the second element 202 2 which for example takes its natural position (case of a spring for example) then allows to maintain the first element 202 ⁇ in an extended position.
- the connection between the connection unit (LMU) 200 and the leg is then ensured.
- first elements 202 are associated with a second element 202 2 , such as a spring.
- these first elements may be distributed at regular angular intervals around the longitudinal axis AL of the connection unit (LMU) 200.
- LMU connection unit
- Figure 7 provides an alternative to the second embodiment.
- the first element 202i has a hook shape C. Furthermore, the axis AX around which the hook C (202 ⁇ can pivot is located in the lower part of the end E of the connection unit (LMU) 200 And the fixing of the second element 202 2 , elastic (spring, for example) on the connection unit is provided in the upper part of the end E of the connection unit.
- FIG. 7 (a) shows the initial step of engaging hook C with plate P and Fig. 7 (b) an intermediate step. After the step shown in Fig. 7 (b), the hook continues its rotational movement to ensure that the bottom portion of the hook C is not or no longer in contact with the plate. Once the second element resumes its natural position, the hook C can no longer disengage from the plate P.
- the connection unit (LMU) 200 is then connected to the leg and the lower part of the hook does not prevent the normal operation of the connection unit (LMU), operation which will be explained later with the support of figure 14.
- Figure 8 shows another variant of the second embodiment.
- the first element 202i of the second connection means does not rotate about an axis.
- the second element 202 2 elastic is for example in the form of a spring whose one end is fixed to the connection unit and the other end is in contact with the first element 202 ⁇ so as to exert a force radial on this first element 202 ! .
- This radial force is translated by a radial movement of the first element 202
- Fig. 9 shows a third embodiment. Alternative embodiments are described in support of Figures 10 to 12.
- connection unit comprises two elements, both rigid.
- FIG. 9 (a) is a sectional view of an assembly comprising the leg, and more specifically the plate P, and a connection unit 200 before connection and FIG. 9 (b) represents the same thing, but after the connection between the connection unit and the leg.
- the first connection means is a connection means between the connection unit (LMU) 200 and the host structure, in accordance with that of the first embodiment, and is therefore not shown and described again.
- the second connection means 202 is a connection means with the platform leg.
- This second connection means 202 is integrated at an end E of said unit.
- This end E is the opposite end to that which comprises the first connecting means 201 intended to be connected to the structure home leg.
- this second connection means 202 is able to move in a movement comprising at least one radial component between a retracted position, ensuring the positioning of the connection unit (LMU) 200 inside the leg 100 and , an extended position, providing the connection between the connection unit (LMU) 200 and the leg 100, this radial component being defined in a plane perpendicular to the longitudinal axis AL of the connection unit (LMU) 200.
- longitudinal axis AL merges with that of the leg 100 (see Figure 3 (c) for example).
- the second connection means 202 comprises a first element 202 ⁇ rigid, able to translate in a radial direction, therefore perpendicular to the longitudinal axis AL of the connection unit (LMU) 200.
- the second connection means 202 also comprises a second element 202 2 , also rigid, which is mounted on an axis AX of pivoting.
- This axis AX may be in the form of a shaft attached to the connection unit (LMU) 200.
- This second element 202 2 has a non-linear shape from one end to the other, for example curved (cf. figures).
- This second member 202 2 is disposed below the first member 202 ⁇
- the end of this second member 202 2 which is furthest radially from the longitudinal axis AL of the connection unit is dimensioned to cooperate with the plate P of the leg, without being able to pass through the orifice OC of this plate P. Its other end, namely the radially closest end of the longitudinal axis AL of the connection unit is as for it in contact with the first element 202i.
- connection means 202 are preferably at least partly accommodated in a housing 203 of the connection unit (LMU) 200 in which they can move.
- LMU connection unit
- connection unit (LMU) 200 When one seeks to connect the connection unit (LMU) 200 inside the leg 100, the second element 202 2 of the connection means 202 comes into contact with the plate P.
- the plate P then prints throughout the subsequent raising of said unit 200 inside the leg 100, a rotation of the second element 202 2 about its axis AX (anti-clockwise here).
- the end of the second element 202 which is in contact with the first element 202i then prints a translation movement, in the radial direction, of the first element 202T.
- the first element then comes into contact with the wall P, from above (FIG. 9 (b)).
- connection unit (LMU) 200 As for the end of the second element 202 2 which is furthest from the longitudinal axis AL of the connection unit, it deviates sufficiently from the wall P so as not to interfere, in use, with the movement of the LMU .
- the connection between the connection unit (LMU) 200 and the leg 100 is established (not shown).
- Figure 10 shows a variant of the third embodiment.
- FIG. 10 (a) shows in sectional view an assembly formed by the leg 100, and more precisely the wall P of the retaining means of this leg, and a connection unit (LMU) 200, in which the second connection means is in the retracted position and Figure 10 (b), the same set but when the second connecting means is in the deployed position.
- Figure 10 (c) is a top view of Figure 10 (a)
- Figure 10 (d) is a top view of Figure 10 (b).
- the first connection means is a connection means between the connection unit (LMU) 200 and the host structure, in accordance with that of the first embodiment, and is therefore not shown and described again.
- the second connection means 202 is a connection means with the platform leg.
- This second connection means 202 is integrated at an end E of said unit.
- This end E is the opposite end to that which comprises the first connecting means 201 intended to be connected to the receiving structure of the leg.
- this second connection means 202 is able to move in a movement comprising at least one radial component between a retracted position, ensuring the positioning of the connection unit (LMU) 200 inside the leg 100 and , an extended position, providing the connection between the connection unit (LMU) 200 and the leg 100, this radial component being defined in a plane perpendicular to the longitudinal axis AL of the connection unit (LMU) 200.
- longitudinal axis AL merges with that of the leg 100.
- the second connection means 202 comprises at least a first element 202 ⁇ rigid, able to translate in a radial direction, therefore perpendicular to the longitudinal axis AL of the connection unit (LMU) 200.
- the second connection means 202 also comprises at least a second element 202 2 , also rigid, intended to cooperate with the first element 202
- This second element 2022 is in the form of a rod housed in the connection unit (LMU) 200 pivotable about the longitudinal axis AL of this unit and a portion PT has a suitable shape, during a rotational movement of the rod 202 2 about said axis AL to control the deployment of the first element 202 ! .
- LMU connection unit
- a housing 203 is advantageously provided in the connection unit for housing the two elements 202 ⁇ 202 2 of the second connection means 202.
- the PT portion of the second element 202 2 is in this case in the form of a solid whose section is rectangle.
- the first element 202 ! is in its retracted position, and is in this case in the housing 203 of the connection unit (LMU) 200.
- the connection unit can pass through the orifice OC of the plate P belonging to to the leg 100.
- the OC orifice exceeded, it actuates the rod 202 2 , that is to rotate the rod about its longitudinal axis corresponding to that AL of the connection unit.
- the portion PT of this rod 202 2 rectangular, also rotates and causes the output of the first element 202i out of its housing 203 to its deployed position.
- connection unit (LMU) 200 is then connected to the inside of the leg 100. No disconnection is then possible as long as a subsequent rotational movement is not printed on the second member rod 202 2 of the second connection means 202.
- the rectangular section for the part PT of the second element 202 2 is not the only one that can be envisaged and any solid that makes it possible to obtain a distance d 2 , taken radially between the longitudinal axis AL of the connection unit and the point of contact. between the second element 202i and the second element 202 2 greater than the distance di taken radially between the longitudinal axis AL of the connection unit and the point of contact between the second element 202i and the second element 202 2 , when the first element is retracted, may be suitable.
- a solid having a polygonal section for example square, or rhombus or an elliptical section of this portion PT may be suitable.
- Figure 1 1 proposes another variant to the third embodiment.
- FIG. 11 (a) shows in sectional view an assembly formed by the leg 100, and more specifically the wall P of the retaining means of this leg, and a connection unit (LMU) 200, in which the second means of connection is in the retracted position and Figure 1 1 (b), the same set but when the second connection means is in the deployed position.
- LMU connection unit
- the rod forming the second element 202 2 of the second connection means 202 does not rotate about its longitudinal axis, which merges with that of the connection unit, but can translate along this axis.
- the portion PT of the rod 202 2 has an indented shape, for example a pyramidal or conical shape which makes it possible, during the axial displacement of the rod 202 2 , to modify the distance between the longitudinal axis AL of the connection unit ( LMU) 200 and the point of contact with the first element 202 ! .
- LMU connection unit
- the rod 202 2 is held at the bottom of the housing 203 provided in the connection unit and said at least one first element 202i is located in 203.
- the rod 202 2 has been moved downwards until the portion PT of this rod is seated against the walls of the housing 203. During the descent of the 202 2 rod, causes the radial displacement of the first element 202- ! , which comes to ensure the connection between the connection unit 200 and the leg 100.
- Fig. 12 shows another variant in the third embodiment.
- the first element 202 ! has an axis of rotation AX which extends in a plane perpendicular to the longitudinal axis of the connection unit 200 (LMU).
- the second element 202 2 is a counterweight, of mass M.
- the counterweight 202 2 descends by gravity (only force then applied) and causes the rotation (clockwise here) of the first element 202 ! towards his deployed position.
- Figure 3 proposes a fourth embodiment.
- FIG. 13 (a) shows in sectional view an assembly formed by the leg 100, and more specifically the wall P of the retaining means of this leg, and a connection unit (LMU) 200, in which the second connection means is in the retracted position and Figure 13 (b), the same set but when the second connecting means is in the deployed position.
- LMU connection unit
- This rod is replaced by a chamber 202 2 which can be fed with a fluid under pressure, from a reservoir (not shown).
- the remainder is identical to the third embodiment, in its variants using an actuating rod.
- the chamber is at a pressure that does not involve a pressure differential between this chamber 202 2 and the outside of the connection unit (LMU) 200.
- the connection unit 200 being intended to be mounted inside the leg 100 out of the water, the pressure in the chamber 202 2 is then the atmospheric pressure.
- the first element 202 ! is in its retracted position and is therefore in the housing 203.
- a pressurized fluid is injected into the chamber 202 2 , this causes the first element 202-1 to move out of the chamber 202 2 , thus its deployment in its connection position.
- connection position between the connection unit (LMU) 200 and the leg 100 is shown in Fig. 13 (b). This position does not evolve until the fluid under pressure is removed from the chamber 202 2 .
- the chamber 202 2 is not filled with a fluid under pressure, but with a pyrotechnic component.
- this pyrotechnic component When this pyrotechnic component is fired, it generates a force that forces the movement of the at least one first element 202 ⁇ in the radial direction.
- connection unit LMU
- the masses to be handled are therefore lower.
- the connection proposed in these embodiments is also much easier and poses less practical difficulties than inserting a housing in the leg.
- connection proposed in the context of the invention is fast.
- connection unit makes reliable the transport of all on the barge to the installation site of the offshore platform.
- FIG. 14 generically shows different possible positions of the connection unit 200 (LMU), with respect to the leg 100, in use, namely at rest (FIG. 14 (a)), partially compressed. by the receiving structure 300 (Fig. 14 (b)) and completely compressed by the receiving structure 300 (Fig. 14 (c)).
- An LMU indeed comprises, in a conventional manner, an elastomer / metal laminate which thus comprises elastomer layers CELA separated by CME metal layers.
- the invention therefore also relates to the use of an LMU connection unit, 200 according to one invention for connecting a leg of marine platform 100 to a reception structure for said unit, said host structure being floating or arranged on the seabed, either by anchoring or simply by laying on the seabed.
- connection unit may be envisaged, in which the connection unit will not comprise any laminate as shown in FIG. 1 and a first connection means with a different reception structure from that which is shown on FIG. Figures 1 to 14.
- connection unit can be used to connect an oil platform bridge to a riser, riser forming a host structure for said unit.
- connection unit the oil or gas extracted by the riser must be able to pass to the oil platform, hence the absence of laminate and a connection (first connection means) different between the connection unit and the riser.
- connection (second connection means) between the connection unit and the bridge of the platform remains however identical to what has been described.
Landscapes
- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Civil Engineering (AREA)
- Structural Engineering (AREA)
- Pivots And Pivotal Connections (AREA)
- Revetment (AREA)
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/FR2015/053338 WO2016051120A2 (fr) | 2015-12-04 | 2015-12-04 | Unite de connexion d'un element structurel de plateforme marine a une structure d'accueil et utilisations liees |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP3384094A2 true EP3384094A2 (de) | 2018-10-10 |
Family
ID=54884079
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP15813089.8A Withdrawn EP3384094A2 (de) | 2015-12-04 | 2015-12-04 | Einheit zum anschluss eines strukturellen elements einer offshore-plattform an eine aufnahmestruktur und zugehörige verwendungen |
Country Status (2)
| Country | Link |
|---|---|
| EP (1) | EP3384094A2 (de) |
| WO (1) | WO2016051120A2 (de) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11686362B2 (en) | 2020-09-30 | 2023-06-27 | Saudi Arabian Oil Company | Shock absorber stand |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR2409181A1 (fr) * | 1977-11-16 | 1979-06-15 | Jourdan Louis | Pontons echouables amphibies et moyens de deplacement a terre de lourdes charges |
| GB2033463B (en) * | 1978-10-07 | 1982-06-16 | Fmc Corp | Method and apparatus for releasably connecting together two objects |
| DK46186A (da) * | 1985-02-01 | 1986-08-02 | Conoco Uk Ltd | Fremgangsmaade og udstyr til samling af en offshoreplatforms daek og underdel |
| US5004272A (en) * | 1989-09-15 | 1991-04-02 | Shell Oil Company | Tendon bottom connector for a tension leg platform |
| GB2497953A (en) * | 2011-12-22 | 2013-07-03 | Subsea Riser Products Ltd | Preloaded Mooring Connector |
-
2015
- 2015-12-04 EP EP15813089.8A patent/EP3384094A2/de not_active Withdrawn
- 2015-12-04 WO PCT/FR2015/053338 patent/WO2016051120A2/fr not_active Ceased
Non-Patent Citations (2)
| Title |
|---|
| None * |
| See also references of WO2016051120A2 * |
Also Published As
| Publication number | Publication date |
|---|---|
| WO2016051120A3 (fr) | 2016-09-15 |
| WO2016051120A2 (fr) | 2016-04-07 |
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