Method for mounting a tank corner

The temporary positioning device facilitates precise alignment and faster assembly of insulating panels in tank corners, addressing the inefficiencies and misalignments of existing methods, resulting in improved tank performance and longevity.

FR3159424B1Active Publication Date: 2026-01-02GAZTRANSPORT & TECHNIGAZ SA
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Patent Information

Application Number
FR2024001565
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-02-16
Publication Date
2026-01-02
Estimated Expiration
2044-02-16

AI Technical Summary

Technical Problem

The existing method for manufacturing thermally insulated tank corners is time-consuming and prone to misalignments, leading to potential damage and reduced performance due to individual installation of secondary insulating panels.

Method used

A method involving the use of a temporary positioning device to secure and pre-position multiple insulating panels at a predetermined angle, ensuring precise alignment and spacing, followed by fixation to load-bearing walls, thereby reducing misalignments and accelerating the assembly process.

Benefits of technology

The method enhances assembly reliability and speed by minimizing misalignments and ensuring precise panel placement, thus improving the integrity and lifespan of the thermally insulated tank.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a method for mounting a tank corner, comprising: - providing a first row (1) of first insulating panels and a second row (2) of second insulating panels, the insulating panels comprising an inner plate (17, 27) and an anchoring device (4) fixed to the inner plate, providing a temporary positioning device (3) which comprises a first portion (31) and a second portion (34), in which the first portion and the second portion of the temporary positioning device are fixed to each other and form a predetermined fixed angle, fixing the first portion to each anchoring device of the first insulating panels and fixing the second portion to each anchoring device of the second insulating panels, fixing the first insulating panels to the first load-bearing wall (5) and the second insulating panels to the second load-bearing wall (6),Detach the first and second insulating panels from the temporary positioning device. Figure for the summary: 1,
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Description

Title of the invention: Method for mounting a tank corner technical field

[0001] The invention relates to the field of leak-proof and thermally insulated membrane tanks for the storage and / or transport of liquefied gases such as Liquefied Natural Gas (LNG) at approximately -163°C at atmospheric pressure. These tanks can be installed on land or on a floating structure. In particular, the invention relates to a method for manufacturing a corner of such a tank. Technological background

[0002] A method for manufacturing a sealed and thermally insulating tank corner is known in the prior art. Such a manufacturing method comprises, at a corner formed by two load-bearing walls, a step of installing secondary thermally insulating panels against the load-bearing walls in order to form part of the tank corner.

[0003] However, these secondary thermally insulating panels are installed individually, one after the other, by one or more operators during assembly. Consequently, such an assembly process is time-consuming and requires a very large number of operators. Furthermore, the individual installation of each panel can lead to misalignments in the positioning of the secondary thermally insulating panels relative to one another, both along the longitudinal and transverse directions of the tank. Such misalignments are likely to lead to premature damage to the tank and a reduction in its final properties. Summary of the invention

[0004] One idea underlying the invention is to provide a method for manufacturing a tank angle that is fast and reliable.

[0005] According to one embodiment, the invention provides a method for mounting a sealed and thermally insulating tank corner, the method comprising the following steps - provide a first row comprising first insulating panels and a second row comprising second insulating panels, the first and second insulating panels each comprising an inner plate and an anchoring device fixed to the inner plate, - provide a temporary positioning device comprising a first portion for fixing and supporting the first row of first insulating panels and a second portion for fixing and supporting the second row of second insulating panels, in which the first portion and the second portion of the temporary positioning device are fixed to each other and form a predetermined fixed angle with respect to each other, - attach the first portion to each anchoring device of the first insulating panels and attach the second portion to each anchoring device of the second insulating panels, then - Position the first and second rows at the angle formed by a first load-bearing wall and a second load-bearing wall, - fix the first insulating panels to the first load-bearing wall and the second insulating panels to the second load-bearing wall, - detach the first and second insulating panels from the temporary positioning device, then - remove the temporary positioning device.

[0006] Thanks to these features, several insulating panels are moved and installed together at a corner of the tank, notably via the temporary positioning device. Securing the insulating panels to the temporary positioning device allows them to be pre-positioned relative to each other at an angle corresponding to the angle formed by the two load-bearing walls.

[0007] This method is more reliable and faster than installing the insulating panels individually.

[0008] According to embodiments, such a process may include one or more of the following characteristics.

[0009] According to one embodiment, each anchoring device includes a first tapped bore.

[0010] According to one embodiment, the first portion and the second portion are respectively fixed via a first threaded rod to the first tapped bores of the anchoring devices of the first and second insulating panels.

[0011] According to one embodiment, each anchoring device comprises a second tapped bore spaced from the first tapped bore.

[0012] According to one embodiment, the first portion and the second portion are respectively fixed via a second threaded rod to the second tapped bores of the anchoring devices of the first and second insulating panels.

[0013] According to one embodiment, the first threaded rod and / or the second threaded rod includes a stop device enabling a temporary mechanical connection between the insulating panels and the first or second portion.

[0014] According to one embodiment, the stop device comprises a nut, for example a wing nut, a screw head or a metal piece welded to one end of the threaded rod.

[0015] According to one embodiment, the anchoring device is located in the center of the inner plate.

[0016] According to one embodiment, an internal face of the anchoring device is flush with the internal surface of the internal plate.

[0017] According to one embodiment, the anchoring device has a portion positioned in the inner plate.

[0018] According to one embodiment, the anchoring device is an anchoring plate.

[0019] According to one embodiment, the anchor plate is metallic.

[0020] According to one embodiment, the anchor plate has an oblong shape.

[0021] According to one embodiment, the predetermined fixed angle is between 80° and 145°, preferably the predetermined fixed angle is 90° or 135°.

[0022] According to one embodiment, the temporary positioning device is metallic.

[0023] According to one embodiment, the temporary positioning device has the form of a frame.

[0024] According to one embodiment, the temporary positioning device comprises a plurality of tubes.

[0025] According to one embodiment, the temporary positioning device is metallic.

[0026] According to one embodiment, the plurality of tubes is metallic.

[0027] According to one embodiment, the plurality of metal tubes are welded together in order to form the temporary positioning device.

[0028] According to one embodiment, the first portion and the second portion of the temporary positioning device are fixed to each other via a metal plate bent and welded to the first and second portions.

[0029] According to one embodiment, the temporary positioning device includes through holes intended to be located opposite the tapped bores of the anchoring devices of the first and second insulating panels.

[0030] In one embodiment, the first portion comprises a plurality of parallel tubes. In another embodiment, each tube in the plurality of parallel tubes has an orifice. In another embodiment, each tube in the plurality of parallel tubes is fixed to the anchoring device of one of the first insulating panels of the first row by means of a threaded rod that passes through the orifice of said tube and is screwed into the tapped bore of said anchoring device.

[0031] According to one embodiment, the threaded rod stop device ensures a temporary mechanical connection between the insulating panels and the plurality of tubes.

[0032] In one embodiment, the second portion comprises a plurality of parallel tubes. In one embodiment, each tube of the plurality of parallel tubes has an orifice. In one embodiment, each tube of the plurality of parallel tubes is fixed to the anchoring device of one of the second insulating panels of the second row by means of a threaded rod that passes through the orifice of said tube and is screwed into the tapped bore of said anchoring device.

[0033] In one embodiment, the first portion is fixed to the first insulating panels such that the spacing between the first adjacent insulating panels is constant. In another embodiment, the adjacent tubes of the plurality of parallel tubes of the first portion are spaced from each other by a fixed distance.

[0034] In one embodiment, the second portion is fixed to the second insulating panels such that the spacing between adjacent second insulating panels is constant. In another embodiment, the adjacent tubes of the plurality of parallel tubes in the second portion are spaced a fixed distance apart.

[0035] Thus, any potential misalignments in the assembly are greatly reduced compared to placing the panels individually. The process therefore allows for precise panel placement with controlled spacing.

[0036] According to one embodiment, the spacing between the first and / or second adjacent insulating panels is between 10 mm and 30 mm, preferably between 10 mm and 20 mm.

[0037] According to one embodiment, the spacing distance between adjacent tubes is between 300 mm and 700 mm, preferably between 300 mm and 500 mm, for example 340 mm or 480 mm.

[0038] According to one embodiment, the first insulating panels each comprise an insulating foam sandwiched between the inner plate and an outer plate.

[0039] According to one embodiment, the second insulating panels each comprise an insulating foam sandwiched between the inner plate and an outer plate.

[0040] According to one embodiment, the first insulating panels and the second insulating panels each comprise a layer of insulating foam sandwiched between the inner plate and an outer plate.

[0041] According to one embodiment, the insulating foam comprises polyurethane (PU) and / or polyisocyanurate (PIR).

[0042] According to one embodiment, the insulating foam has a density between 110 kg / m3 and 150 kg / m3.

[0043] According to one embodiment, the inner plate has a recess located in the center of the inner plate intended to retain the anchoring device between the insulating foam and the inner plate.

[0044] According to one embodiment, the anchoring device has a retained portion located between the insulating foam and the inner plate.

[0045] According to one embodiment, the first insulating panels and the second insulating panels have the following dimensions: - a first dimension between 250 and 480 mm, - a second dimension between 300 and 500 mm, and - a height between 200 and 380 mm, for example 300 mm high, The first dimension corresponds to a dimension of the insulating panel which is intended to extend along the direction of the edge formed by the first and second load-bearing walls. the second dimension corresponds to the dimension of the insulating panel which is perpendicular to the first dimension.

[0046] The dimensions of the first and second insulating panels must be considered with a tolerance of ± 10 mm.

[0047] Thus, the installation of these small insulating panels is accelerated and facilitated by the present manufacturing process which allows a plurality of them to be affixed at the level of a corner of walls.

[0048] According to one embodiment, the first insulating panels and the second insulating panels have at least one through-well along the thickness direction of the insulating panel, the method including the insertion of a fixing element in said well in order to fix the insulating panel against the load-bearing wall.

[0049] According to one embodiment, the through-well is filled with a thermally insulating lining such as polyurethane foam, polystyrene or glass wool.

[0050] According to one embodiment, at least one insulating element is positioned so as to fill a space located between the first and second rows at the angle formed by the first and second load-bearing walls.

[0051] In one embodiment, the insulating element is made from a compressible thermally insulating material such as glass wool or low-density synthetic foam. In one embodiment, the low-density synthetic foam has a density of less than 50 kg / m³.

[0052] According to one embodiment, the insulating element comprises a core made of PU foam and an outer part made of compressible thermally insulating material.

[0053] According to one embodiment, the insulating element has a general shape of a triangular prism.

[0054] According to one embodiment, the first row of first insulating panels comprises n first insulating panels and the second row of second insulating panels comprises n second insulating panels, n being between 2 and 8 and preferably between 3 and 5 and even more preferably n is equal to 4.

[0055] According to one embodiment, the process further comprises a step of positioning sealant cords, the sealant cords are intended to be located between the first insulating panels and the first load-bearing wall and are intended to be located between the second insulating panels and the second load-bearing wall.

[0056] Thus, the flatness deviations of the first and second load-bearing walls are corrected. Indeed, the sealant beads serve to compensate for the deviations of each load-bearing wall relative to a flat reference surface. Consequently, the first and second insulating panels can be positioned without any height differences between adjacent insulating panels, which avoids creating additional mechanical stresses in the sealing membranes and increases the lifespan of the resulting watertight and thermally insulated tank.

[0057] According to one embodiment, the sealant cords are positioned against an external surface of the outer plate of the first insulating panels and are positioned against an external surface of the second insulating panels.

[0058] According to one embodiment, the sealant cords are positioned against the first and second load-bearing walls.

[0059] According to one embodiment, the sealant cords are positioned before the positioning step of the first row and the second row at the angle formed by the two load-bearing walls.

[0060] According to one embodiment, the sealant cords are positioned after the step of fixing the first portion on each anchoring device of the first insulating panels and fixing the second portion on each anchoring device of the second insulating panels.

[0061] According to embodiments, the sealant cords may include cords positioned along a longitudinal direction or cords positioned along a transverse direction.

[0062] According to one embodiment, the first and second insulating panels are secondary insulating panels; the method further comprises, after the step of removing the temporary positioning device, the following steps: - provide a first primary insulating panel and a second primary insulating panel, - fix the first primary insulating panel to the anchoring device of a first secondary insulating panel of the first row and fix the second primary insulating panel to the anchoring device of a second secondary insulating panel of the second row.

[0063] Thus, the anchoring device provides a dual function, namely securing the temporary positioning device and subsequently securing a primary insulating panel. This arrangement further simplifies assembly, as it eliminates the need to add specific fasteners for the temporary positioning device to the insulating panel.

[0064] According to one embodiment, the method further comprises fixing a secondary waterproof membrane on the anchoring device before the step of fixing the first primary insulating panel on the anchoring device.

[0065] Thus, the anchoring device provides a triple functionality, namely fixing the temporary positioning device, fixing the secondary waterproof membrane and fixing a primary insulating panel.

[0066] The anchoring device within the meaning of the invention is therefore used to fix: - the temporary positioning device, or - the temporary positioning device and the overlying primary insulating panel, or - the temporary positioning device, the waterproof membrane and the overlying primary insulating panel. Brief description of the figures

[0067] The invention will be better understood, and other objects, details, features and advantages thereof will become more apparent from the following description of several particular embodiments of the invention, given solely by way of illustration and not limitation, with reference to the accompanying drawings.

[0068] Fig. 1 represents a perspective view of insulating panels fixed to a temporary positioning device according to one embodiment of the process.

[0069] Fig. 2 represents a cross-sectional view of the positioning and fixing stage of the insulating panels of the insulating panels to two load-bearing walls, according to one embodiment of the process.

[0070] Fig. 3 represents a tank wall obtained by one embodiment of the process.

[0071] Fig. 4 represents a schematic cutaway perspective view of a load-bearing structure intended to support a sealed and thermally insulated tank for storing a liquefied gas. Description of the implementation methods

[0072] By convention, the terms "external" and "internal" are used to define the relative position of one element with respect to another, by reference to the inside and outside of the tank.

[0073] In relation to [Fig. 1], a first row 1 of first panels is observed. insulating panels 11, 12, 13, 14 and a second row 2 of second insulating panels 21, 22, 23, 24 which are fixed to a temporary positioning device 3.

[0074] Each of the first insulating panels 11, 12, 13, 14 of the first row 1 has a sandwich structure comprising an insulating foam layer 16 located between an outer plate 15 and an inner plate 17.

[0075] Similarly, each of the insulating panels 21, 22, 23, 24 of the second row 2, has a sandwich structure comprising a layer of insulating foam 26 located between an outer plate 25, and an inner plate 27.

[0076] The insulating foam layer 16, 26 is for example made of fiber-reinforced polyurethane.

[0077] The inner plate 17, 27 and the outer plate 15, 25 are rigid and made, for example, of plywood or of composite material composed of resin and fibers.

[0078] Fig. 1 also illustrates that insulating elements 18, 28 are positioned to fill a space located between the insulating panels 11, 12, 13, 14 of the first row 1 and the insulating panels 21, 22, 23, 24 of the second row 2. Thus, the insulating elements 18 are positioned against the lateral faces of the first insulating panels 11, 12, 13, 14 while the insulating elements 28 are positioned against the lateral faces of the second insulating panels 21, 22, 23 and against the insulating elements 18. The insulating elements 18 and 28 contribute to the continuity of thermal insulation between the first and second insulating panels 11, 12, 13, 14, 21, 22, 23, 24.

[0079] The insulating elements 18, 28 are, for example, made of a compressible material selected from glass wool, rock wool, polyester wadding, and synthetic foam. In an alternative embodiment not shown, the insulating elements 18, 28 further comprise a core of PU or PIR foam and a layer of compressible material positioned against the lateral faces of the PU foam. For example, when the insulating element has a PU foam core of generally triangular shape, the layers of compressible material, such as glass wool, are positioned against the lateral faces intended to be in contact with the first insulating panels, the second insulating panels, and / or the adjacent insulating element.

[0080] The inner plate 17 of the insulating panels 11, 12, 13, 14, 21, 22, 23, 24 has a recess 117 in which an anchoring plate 4 is housed, which is preferably metallic. Such an arrangement of anchoring plate 4 - recess 117 is notably visible in [Fig. 3].

[0081] The recess 117 is, for example, located at the center of the inner plate 17. It has an internal section with a first dimension and an external section with a second dimension larger than the first dimension so as to provide a shoulder. The anchoring plate 4 has a shape complementary to that of the hollowing 117.

[0082] Thus, the inner face of the anchor plate 4 is flush with the inner face of the inner plate 17 of the insulating panels 11, 12, 13, 14, 21, 22, 23, 24 so as to form a flat surface intended to support a waterproof membrane 7. Furthermore, the anchor plate 4 has an external cross-section larger than its internal cross-section, such that the external cross-section of said anchor plate 4 abuts against the shoulder of the recess. The anchor plate 4 can also be bonded to the insulating panel.

[0083] The metal plates 4 each have a generally oblong shape with a first threaded bore 41 which is spaced from a second threaded bore 42 (visible in [Fig. 3]). The first and second threaded bores will notably serve as anchor points for the temporary positioning device 3.

[0084] The temporary positioning device 3 is a metallic structure comprising a first portion 31 and a second portion 34.

[0085] The first portion 31 comprises a plurality of first transverse metal tubes 32 which are parallel to each other and a first longitudinal metal tube 33 welded against a first end of the first transverse metal tubes 32.

[0086] The second portion 34 comprises a plurality of second transverse metal tubes 35 which are parallel to each other and a second longitudinal metal tube 36 welded against a first end of the second transverse metal tubes 35.

[0087] Each transverse metal tube 32 and 35 has a first through orifice 51 which is spaced, along a longitudinal direction of the metal tube, from a second through orifice 52. The spacing between the first and second through orifices 51, 52 corresponds to the spacing between the first and second threaded bores 41, 42. The positioning of the transverse metal tubes 32, 35 and horizontal tubes 33, 36 does not cover the wells 70 so that the wells 70 are accessible for fixing the first and second insulating panels 11, 12, 13, 14, 21, 22, 23, 24.

[0088] The first transverse metal tubes 32 each have a second end which is in contact with a second end of the second transverse metal tubes 35.

[0089] The first portion 31 and the second portion 34 are fixed to each other via a metal plate 37 which includes a first part 38 which is positioned and welded onto an internal surface of each first transverse metal tube 32, at the second end. The bent metal plate 37 further includes a second part 39 which is positioned and welded onto an internal surface of each second transverse metal tube 35, at the second end.

[0090] The metal plate 37 is bent such that a fixed angle of 135° is formed between the first portion 38 and the second portion 39. Consequently, the first portion 31 and the second portion 32 also form a fixed angle of 135° with respect to each other. According to another embodiment, the angle may be different from 135°, and for example from 90°.

[0091] During the fixing step, the first portion 31 of the temporary positioning device 3 is positioned against the first row 1. Each transverse metal tube 32 is aligned with an anchor plate 4. The first and second through holes 51, 52 are each positioned opposite one of the first and second tapped bores 41, 42. Then, a first threaded rod 61 is inserted into each through hole 51 and a second threaded rod 62 is inserted into each through hole 52, in order to fix the first portion 31 to the first row 1. The first threaded rod 61 has a threaded end which is fixed in the corresponding tapped bore 41 and a screw head which is positioned against the temporary positioning device 3 at the hole 51.Similarly, the second threaded rod 62 has a threaded end that is fixed in the corresponding tapped bore 42 and a screw head that is positioned against the temporary positioning device 3 at the orifice 52. Such a threaded rod 61, 62 is, for example, a screw. The screw head could be replaced by a nut, such as a wing nut.

[0092] The same operations are performed to fix the temporary positioning device 3 to the second row 2. Thus, the second portion 32 of the temporary positioning device 3 is positioned against the second row 2. Each transverse metal tube 35 is aligned with an anchor plate 4. The first and second through holes 51, 52 are each positioned opposite one of the first and second tapped bores 41, 42. Then, a first threaded rod 61 is inserted into each through hole 51 and fixed in the corresponding tapped bore 41 and a second threaded rod 62 is inserted into each through hole 52 and fixed in the corresponding tapped bore 42, in order to fix the second portion 34 to the second row 2.

[0093] The process includes a step of positioning beads of sealant 40 (illustrated in [Fig.2]) against the external surfaces of the external plates 15 of the first and second insulating panels 11, 12, 13, 14, 21, 22, 23, 24, to which the beads of sealant 40 adhere.

[0094] The positioning step is illustrated in [Fig. 2]. It can be seen that the first row 1 and the second row 2 are positioned at an angle formed by a first load-bearing wall 5 and a second load-bearing wall 6, which, in the embodiment shown, has a value of approximately 135°. The device of temporary positioning may include handles or handling anchors not shown allowing the first and second rows 1, 2 which are attached to the temporary positioning device 3 to be positioned by human or mechanized means.

[0095] The first and second walls 5, 6 are for example formed by the double hull of a ship.

[0096] The first row 1 is positioned against the first load-bearing wall 5 and the second row 2 is positioned against the second load-bearing wall 6, by means of the sealant beads 40 in order to compensate for the deviations of the first and second load-bearing walls 5, 6 with respect to a flat reference surface and to ensure sufficiently uniform support of the first and second insulating panels 11, 12, 13, 14, 21, 22, 23, 24. The insulating elements 18 and 28 are located at the angle formed by the first and second walls 5, 6 and fill the space formed between the first insulating panels 11, 12, 13, 14 and the second insulating panels 21, 22, 23, 24.

[0097] Each insulating panel 11, 12, 13, 14, 21, 22, 23, 24 has two wells 70, visible in [Fig. 1], in each of which is inserted a fastening device, only partially illustrated in Figures 2 and 3, for fixing the insulating panel to the corresponding load-bearing wall 5, 6. The fastening device includes, in particular, a threaded stud 71 which is welded to the load-bearing wall 5, 6 and a support plate through which the threaded stud 71 passes and which is positioned against an inner surface of the outer plate by means of a bolt screwed onto the threaded stud in order to fix the insulating panel to the load-bearing wall. Such wells 70 and fastening devices are illustrated, for example, in [Fig. 1] of document FR2724623.

[0098] Following the fixing of the insulating panels 11, 12, 13, 14, 21, 22, 23, 24 to the corresponding load-bearing wall 5, 6, the first and second threaded rods 61, 62 are removed and the temporary positioning device 3 is removed.

[0099] The wells 70 can be sealed using a thermally insulating lining, for example with polyurethane foam, polystyrene or glass wool.

[0100] According to an alternative embodiment illustrated with [Fig.3], the process further comprises additional steps.

[0101] In this embodiment, the insulating panels 11, 12, 13, 14, 21, 22, 23, 24 are secondary insulating panels to which a secondary waterproof membrane is attached. The secondary waterproof membrane includes a metal angle bracket 7 which is welded to the inner face of the anchor plates 4. The metal angle bracket 7 can further be attached to the inner plate 17, 27 by screws or rivets.

[0102] The metal angle bracket 7 is, for example, made of stainless steel or alloy with low coefficient of thermal expansion, especially in Invar ®: that is to say an iron and nickel alloy whose coefficient of expansion is typically between 1.106 and 2.106 K1 or in an iron and manganese alloy whose coefficient of expansion is typically between 7.106 and 9.106 K1.

[0103] The method further comprises the fixing of primary insulating panels.

[0104] Similar to secondary insulating panels 11, 12, 13, 14, 21, 22, 23, 24, the primary insulating panels comprise an insulating foam 83, 87 sandwiched between an inner plate 82, 86 and an outer plate 84, 88.

[0105] In addition, the outer plate 84, 88 has two orifices spaced apart from each other by a distance corresponding to the spacing between the first and second tapped bores 41, 42.

[0106] A first primary insulating panel 81 is positioned on the secondary waterproof membrane 7, straddling a first and a second secondary insulating panels 11, 12, 13, 14.

[0107] The first primary insulating panel 81 is fixed to the first and second secondary insulating panels 11, 12, 13, 14 via a primary fixing device comprising two threaded studs (not shown) which are each fixed to a tapped bore 41, 42 of the anchor plate 4. The two threaded studs pass through the metal angle 7 of the secondary waterproofing membrane and the outer plate 82. The primary fixing device further comprises a primary support plate (not shown) through which the threaded studs pass and which is positioned against an inner surface of the outer plate 82 by means of a bolt screwed onto the threaded stud in order to fix the first primary insulating panel against the secondary waterproofing membrane 7.

[0108] A second primary insulating panel 85 is fixed to the second secondary insulating panel 21, 22, 23, 24 in a manner analogous to the first primary insulating panel 81.

[0109] The internal plates 84, 88 have metallic inserts (not shown) onto which a metallic angle 8 of a primary metallic sealing membrane is welded.

[0110] The primary metallic sealing membrane 8 is intended to be in contact with the liquefied gas contained in the tank. The primary metallic sealing membrane is, for example, made of stainless steel.

[0111] The primary waterproof membrane is, for example, a corrugated membrane (not shown) having two sets of corrugations along two directions perpendicular to each other. Further details of such a membrane are described in particular in document WO2010040922A1.

[0112] A load-bearing structure 1 intended to support a sealed and thermally insulated liquefied gas storage tank is shown in [Fig. 4]. The load-bearing structure 90 may, in particular, be formed of self-supporting metal sheets or, more Generally, any type of rigid bulkhead with suitable mechanical properties. The load-bearing structure 90 is, for example, formed by the double hull of a ship. In [Fig. 4], the load-bearing structure 90 has a generally polyhedral shape. It has two forward and aft load-bearing walls 91, here octagonal in shape, of which only the aft load-bearing wall 91 is shown. The forward and aft walls 91 are, for example, cofferdam walls of the ship that extend transversely to the longitudinal direction of the ship. The load-bearing structure 90 also includes an upper load-bearing wall 92, a lower load-bearing wall 93, and lateral load-bearing walls 94, 95, 96, 97, 98, 99.

[0113] For example, the load-bearing walls 5 and 6 illustrated in Figures 2 and 3 can be two adjacent load-bearing walls chosen from among the load-bearing walls 92, 93, 94, 95, 96, 97, 98 and 99. In this case, the insulating panels of the first and second rows 1, 2 as illustrated in Figures 1 to 3 can have the following dimensions: - a first dimension of 320 mm which is intended to extend along the direction of the edge formed by the two load-bearing walls, - a second dimension of 300 mm which is perpendicular to the first dimension, and - 300 mm in height.

[0114] According to one embodiment, when the first row and the second row are positioned at an angle of approximately 90° formed by one of the load-bearing walls 92, 93, 95 or 98, with the front or rear load-bearing wall 91, the insulating panels of the first and second rows may have the following dimensions: - a first dimension of 320 mm which is intended to extend along the direction of the edge formed by the two load-bearing walls, - a second dimension of 370 mm which is perpendicular to the first dimension, and - 300 mm in height.

[0115] According to one embodiment, when the first row and the second row are positioned at an angle of approximately 90° formed by one of the load-bearing walls 94, 96, 97, 99, with the front or rear load-bearing wall 91, the insulating panels of the first and second rows may have the following dimensions: - a first dimension of 460 mm which is intended to extend along the direction of the edge formed by the two load-bearing walls, - a second dimension of 490 mm which is perpendicular to the first dimension, and - 300 mm in height.

[0116] Although the invention has been described in connection with several particular embodiments, it is clearly evident that it is by no means limited to them and that it includes all technical equivalents of the means described as well as their combinations if these fall within the scope of the invention.

[0117] The use of the verb "comporter" or "comprendre" and its conjugated forms does not exclude the presence of other elements or other steps than those stated in a claim.

[0118] In the claims, any reference sign in parentheses shall not be interpreted as a limitation of the claim.

Claims

Demands

1. A method for mounting a sealed and thermally insulating tank corner, the method comprising the following steps: - providing a first row (1) comprising first insulating panels (11, 12, 13, 14) and a second row (2) comprising second insulating panels (21, 22, 23, 24), the first and second insulating panels each comprising an inner plate (17, 27) and an anchoring device (4) fixed to the inner plate, - providing a temporary positioning device (3) comprising a first portion (31) for fixing and supporting the first row of first insulating panels and a second portion (34) for fixing and supporting the second row of second insulating panels, wherein the first and second portions of the temporary positioning device are fixed to each other and form a predetermined fixed angle with respect to each other,- fix the first portion onto each anchoring device of the first insulating panels and fix the second portion onto each anchoring device of the second insulating panels, then - position the first row and the second row at an angle formed by a first load-bearing wall (5) and a second load-bearing wall (6), - fix the first insulating panels to the first load-bearing wall and the second insulating panels to the second load-bearing wall, - detach the first and second insulating panels from the temporary positioning device, then - remove the temporary positioning device.

2. A method according to claim 1, wherein each anchoring device comprises a first threaded bore (41, 42), wherein the first portion and the second portion are respectively fixed via a first threaded rod (61, 62) to the first threaded bores (41, 42) of the anchoring devices of the first and second insulating panels.

3. A method according to claim 2, wherein each anchoring device comprises a second threaded bore (42) spaced from the first threaded bore (41), wherein the first portion and the second portion are respectively fixed via a second threaded rod (62) to the second threaded bores (42) of the devices anchoring (4) of the first and second insulating panels.

4. A method according to any one of claims 1 to 3, wherein the anchoring device is located in the center of the inner plate.

5. A method according to any one of claims 1 to 4, wherein the anchoring device is an anchoring plate (4).

6. A method according to any one of claims 1 to 5, wherein the predetermined fixed angle is between 80° and 145°, preferably the predetermined fixed angle is 90° or 135°.

7. A method according to any one of claims 1 to 6, wherein the first insulating panels and the second insulating panels each comprise a layer of insulating foam (16, 26) sandwiched between the inner plate and an outer plate (15, 25).

8. A method according to any one of claims 1 to 7, wherein at least one insulating element (18, 28) is positioned so as to fill a space located between the first and second rows at the angle formed by the first and second load-bearing walls.

9. A method according to any one of claims 1 to 8, wherein the first row of first insulating panels comprises n first insulating panels and the second row of second insulating panels comprises n second insulating panels, n being between 2 and 8.

10. A method according to claim 1 to 9, wherein the first portion is fixed to the first insulating panels so that the spacing between the first adjacent insulating panels is constant, and wherein the second portion is fixed to the second insulating panels so that the spacing between the second adjacent insulating panels is constant.

11. A method according to any one of claims 1 to 10, wherein the first and second insulating panels are secondary insulating panels (11, 12, 13, 14, 21, 22, 23, 24), the method further comprises, after the step of removing the temporary positioning device, the following steps: - providing a first primary insulating panel (81) and a second primary insulating panel (85), - fixing the first primary insulating panel to the anchoring device of a first secondary insulating panel of the first row and fixing the second primary insulating panel to the anchoring device of a second secondary insulating panel of the second row.

12. A method according to any one of claims 2 to 11, wherein the first portion comprises a plurality of parallel tubes (32), each tube of the plurality of parallel tubes comprising an orifice (51, 52) and in which each of the tubes of the plurality of parallel tubes is fixed to the anchoring device of one of the first insulating panels of the first row by means of a threaded rod which passes through the orifice of said tube and which is screwed into the tapped bore of said anchoring device.

13. A method according to any one of claims 2 to 12, wherein the second portion comprises a plurality of parallel tubes (35), each tube of the plurality of parallel tubes comprises an orifice (51, 52) and wherein each of the tubes of the plurality of parallel tubes is fixed to the anchoring device of one of the second insulating panels of the second row by means of a threaded rod which passes through the orifice of said tube and which is screwed into the tapped bore of said anchoring device.