THERMAL BRIDGE-FREE ASSEMBLY
20190137036 · 2019-05-09
Assignee
Inventors
- Fabrice Chopard (Saint-Martin-d'Hères, FR)
- Boris Chauvet (Ferrières, FR)
- Cédric HUILLET (MONTARGIS, FR)
Cpc classification
F17C2223/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C3/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0107
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/0157
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C3/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0391
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/0161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0358
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2260/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
This concerns a thermal insulation system interposed between a first volume and a second volume to be thermally managed relative to the first volume, the system comprising a series of parts providing thermal bridges between them and which are: arranged on several layers along a thickness and direction passing through the first and second volumes; and/or, transversely to these directions and thicknesses, offset two by two transversely from one said layer to the adjacent layer; and/or engaged at least two by two, transversely to the direction and thickness to force a heat flow generally provided in the direction, along the thermal bridges, to change direction towards an isotherm.
Claims
1. A thermal insulation system comprising a series of thermal insulation parts providing, at least for some of them, thermal bridges between them and which are: arranged in several layers according to a thickness that each part has and which varies according to a length: that said part has transversely to said thickness, and along which each said part thus includes at least one protrusion externally adjacent to a depression, offset and interlocked two by two transversely, from one said layer to an adjacent layer of said layers, so that one said part protrusion of one said layer is engaged in one said part depression of the adjacent layer, thereby forcing a heat flow, generally provided according to the thickness, along the thermal bridges, to change direction towards an isotherm and then to be blocked by a local orientation substantially in an opposite direction, wherein: said system is to be interposed between a first volume and a second volume to be thermally managed relative to the first volume, said layers are arranged in a direction passing through the first and second volumes, with the thicknesses and length(s) being defined respectively in said direction and transversely thereto, on at least a first of said layers, at longitudinal ends of two of said adjacent and longitudinally successive parts of said first layer where said two parts each have one said protrusion, said thermal bridges between said two parts of said first layer are provided: throughout the thickness of the protrusions, and, facing, on a second, adjacent, layer, in the thickness wise direction, of an intermediate longitudinal portion of one said depression of one said part which is offset transversely with respect to said two longitudinally, adjacent and successive parts of the first layer.
2. A system according to claim 1, wherein one said protrusion of one said part of a layer is engaged in one said depression of a single said part of the adjacent layer,
3. A system according to claim 1, wherein the thermal insulation parts are individually internally under controlled atmosphere.
4. A system according to claim 1, wherein at least some of the thermal insulation parts comprise an envelope and at least one thermal insulation element which the envelope surrounds at least locally, with the envelope and said element each having at least one bend on the outside and according to said thickness and direction, said bends define on each part at least one said protrusion relative to one said depression.
5. A system according to claim 1: wherein said series of parts defines a panel having a section which has, on at least two sides, protrusions or depressions of some of said parts, and which comprises an end block comprising at least one thermal insulation element and grooved or protruding parts engaged, in matching male-female shapes, with said protrusions or depressions of said parts.
6. A system according to claim 5 which is presented as a housing having side walls and a bottom, each comprising at least one said panel engaged, on its edge, with said end blocks, some of which are common to the side walls and the bottom.
7. A system according to claim 5, where the or each panel is pressed between two side plates attached to the end blocks.
8. A system according to claim 1, wherein, in said changed direction of the flow, a part transversely covers an adjacent part on a distance of 500 mm or less, and/or the elementary surface area of each said part is 2.5 m.sup.2 or less.
9. A system according to claim 1, wherein said parts individually comprise an envelope and at least one thermal insulation element that the envelope surrounds at least locally, with the envelope and the thermal insulation element each having externally several bends defining said protrusions adjacent to said depressions.
10. A system according to claim 9, the envelope and said at least one thermal insulation element of which have a T-, or - or H- or I-shaped section or, in a direction, a combination of several of these sections or a repetition of at least one of them.
11. A double system, each according to claim 1, with each system being arranged transversely one to the other, said systems being, adjacent to each other in at least one corner, with, in that corner, the two systems which are connected by an insulating corner pillar.
12. A double system according to claim 11, wherein the insulating corner pillar is formed by one said end block.
13. A wall for limiting a tank containing a chemical product to be maintained at a certain temperature and/or pressure, with the wall being provided with a system according to claim 1.
14. A boat comprising a hull provided with the tank limitation wall according to claim 11.
15. A thermal insulation housing comprising said parts of several said assembled systems, each according to claim 1.
16. A vehicle in which the system is arranged according to claim 1.
Description
BACKGROUND OF THE INVENTION
[0033] If necessary, the invention will be better understood and other characteristics, details and advantages thereof will become apparent upon reading the following description as a non-exhaustive example with reference to the appended drawings in which:
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[0044]
[0045] It is specified at this stage that, in this application: [0046] Part refers to a part, an element or an elementary brick, whether plane or not (three-dimensional), of any shape. [0047] transverse and transversely mean oriented transversely, not necessarily perpendicular, to a reference axis or direction, here thickness e and direction D; however, a perpendicularity or angle of less than 30 to this perpendicular is recommended; [0048] negative pressure means a pressure that is lower than the ambient pressure (thus <10.sup.5 Pa).
[0049] An objective of this invention is thus to create a part 1 comprising an envelope 3 having at least bends 5 on the outside. Once a succession of such parts have been interposed, as shown in
[0050] Such an isotherm will typically be provided between two stages of parts 1 (e. g.
[0051] Thus, as in the examples of
[0052] The first volume 7 could be the external environment and the second volume 9, an internal volume, in a vehicle.
[0053] The layout of parts 1 may be staggered, or half staggered, if there are only two layers, such as 13a,13b in
[0054] An alternative or complementary solution shown in the example in
[0055] Hence the preferred examples of the above-mentioned illustrated sections of the envelopes 3 and the insulators 25: T-shaped (parts 1a,
[0056] Thus, for example, the H-shaped section (perpendicular to the thickness) of the parts of the embodiment of
[0057] If two-by-two offsets between parts 1, transversely to said thickness e and direction D, from one said layer to the adjacent layer are relevant as in the embodiment and the assembling method of
[0058] In this respect, it should be noted that in the invention: [0059] on at least one of the layers, at the longitudinal ends of two adjacent and successive parts of the layer where these two parts each have one said protrusion 21, such that in 15a,15b in
[0062] It may even be more preferable that one said protrusion of one said part of a layer should be engaged in a depression of a single said part of the adjacent layer, as is for example the protrusion 21a in the depression 23a defined by the thinner longitudinally intermediate part 23b (thickness e2<e1) of the single-piece part 1b.
[0063] And it may be even more preferable that, still at the longitudinal ends of two adjacent and successive parts 1 of a layer, said adjacent protrusions, such as 15b1,15b2 in
[0064] Thus, for example, the local heat flow F in the direction D through the thermal bridge 16c (
[0065] In order to clearly indicate what is here a bent shape 5 of the part 1, such bend have been identified in 50 in different figures. On the envelopes 3, each bend 5 will a priori be defined by a fold of a plate or a sheet, such as a metal sheet. The expression metal covers alloys.
[0066] It is recommended, depending on said thickness e and direction D: [0067] that the 5, 50 bends should define on each part at least said first zone 21 externally protruding from an externally recessed second zone 23, [0068] and that the parts 1 should be so arranged that at least some of the first zones 21 should be directed towards the second volume 9.
[0069] As can be seen in particular in
[0070] In fact, the
[0071] To form the or each bend, attaching together, in 45, typically at the location of welds (including brazing), two folded edges 39 of two elementary plates arranged substantially in extension with each other (see in particular
[0072] The first and second walls 31a, 31b will be attached together, as marked 37 for example in
[0073] The part 1 (the envelope+the core material 25) will preferably have a thermal conductivity of less than 100 mW/m.K at 20 C. and in an environment under atmospheric pressure.
[0074] The first and second walls 31a, 31b can be made from several elementary plates, such as those 43a-43d in
[0075] To thermally manage the second volume 9 relative to the first volume 7, according to the thickness (e) of the parts 1 and therefore a direction D passing through these first and second volumes, a thermal insulation system 10 including a series of parts 1 will thus be interposed between these volumes 7 and 9.
[0076] This may be better visible in
[0077] Thus, for example, to build a parallelepipedic housing 50 completely surrounding the central volume 7, one or more layers (here three 13a, 13b, 13c) of parts 1 will be arranged on four successive sides, which are in the example interlocked on each of these sides into one system 10. At an angle 51, two adjacent systems 10 are connected by a thermally insulating corner pillar 53 which may also be of the VIP type, such as a metal sheet folded around a thermal insulation element 25 standing as a block and which such an envelope will surround in a watertight manner.
[0078] The modularity of the elementary parts 1 will make it possible to easily produce such corner areas d, for example as shown. The two remaining faces, above and below, will be able to receive two, also thermally insulating covers, which could each be formed as one of the above-mentioned faces. Thus, on all sides, on each side, the effect forcing any thermal flow F (globally provided in said local D direction) to at least change direction towards the isotherm 11, between parts 1, will be obtained.
[0079] To explain this in greater details,
[0082] It can thus be seen that the flow F circulating in the direction D, along a thermal bridge between two adjacent parts 1 has changed direction (F1/F2) at the transverse interface between such parts, in 10a, where the interface itself has changed direction. On the parts 1 between which the flow F has just seeped, some isotherms 11a, 11b, 11c have been schematized. These are deflected at the axial interface (direction D) such as in 110c for the one marked 11c, because the temperature is warmer there than on both sides, within the insulating parts 1. In 10a, where the flow F is divided into F1/F2, the isotherm 11 is generally transversal to the direction D, since it is located at this transversal interface.
[0083] As shown in
[0084] As regards shape, any shape can be made a priori, such as around a tube 59 as shown in
[0085] The tube 59 could be closed on one side by a bottom and on the other by a cover, each also provided with a thermal insulator, for example a system 1 made of elementary bricks 10 in the appropriate version, so as to constitute for example a tank which could be cylindrical.
[0086] In all the cases considered, the thermal insulation 25 may be a foam or a fibrous material (such as glass or rock wool).
[0087]
[0088] Thus, it is understood with these views that a series of parts 1 assembled in a puzzle as previously explained, those of
[0089] On the contrary, the relevant parts 1 of the panel 67 could form grooves and the matching shapes of the end blocks 75a, 75b, 75c could be protruding.
[0090] In this case, there is an end block 75a, 75b or 75c facing each side of the section of each panel 67. And at least some of the panels 67, and therefore the end blocks, may not be flat.
[0091] In the example of
[0092] As a matter of fact, in the example, the section of these two central side end parts 1 was truncated into a T.
[0093] Considering these various shapes, in the example, depending on the parts of the considered sections 69, two types of end blocks 75a,75b are required, with grooves 73.
[0094] The end blocks 75a, 75b, 75c, forming thermal insulation like the panels, are used to block the path of the thermal bridges. As a matter of fact, their construction as a unitary block, without any separation for the thermal bridge paths, with bottoms with blocking grooves 73 at which the paths of the panels thermal bridges end up, in the plane of the panels, will reinforce the expected thermal insulation.
[0095]
[0096] On each end block 75a (
[0097] On each end block 75c (
[0098] On each hybrid end block 75b (
[0099] Thus, the end blocks 75a, 75b, 75c form multi-part frames that frame the whole section of each panel 67, while connecting and maintaining them together in the corners of the housing 50, see in particular
[0100] With a parallelepipedic cross-section, these end blocks may each have, on the two other sides, solid walls suitable for supporting the side plates 55, 57 internally and externally. Each panel 67 can thus be pressed between these two side walls attached to the end blocks.
[0101] Fastening with a layer of glue 77 or screws, for example, is possible.
[0102] An application for all or part of the elementary brick 1 insulating systems 10 presented above may concern a limitation wall 80 of a tank 83 containing a chemical product 85 to be maintained at a certain temperature and/or pressure, for example LNG to be maintained at about 190 C. during transoceanic transport, or LPG (
[0103] The second volume 9 to be thermally managed is then that of the tank 83 and a first volume 7 can be water, such as sea water.
[0104] The wall 80 is provided with a system 10 according to at least one of the types conforming to the solution presented above and here, in other words, with a series of said parts 1 with insulation 25.
[0105] The system 10 includes in the example several layers of such parts, here a combination of interlocking parts (T-and -shaped) which, via bends, block the flow F by changing direction F1/F2, as already explained.
[0106] The wall 80 can integrate, contain or be lined by the system 10.
[0107] As in the example, the tank limitation wall 80 can define a bulkhead between two compartments, or define or belong to all or part of a hull 87 of a boat 89.
[0108] The boat 89 can be a ship and therefore intended for maritime navigation.
[0109] Using such a solution with elementary bricks 1 will make it possible to follow the arched shape of the hull.
[0110] Providing the base wall 91 of the boat 89, on the concave side, with one or more system(s) 10 will make it possible to follow the curved shape of the hull inside, while ensuring the expected thermal management performance.
[0111] Inside, these system(s) 10 can be lined with at least one wall compatible with the product 85 contained.
[0112] Another application could be the construction of an insulating box around a liquefied gas production chamber, with for example an internal volume 9 at 196 C. to be thermally managed and an external environment 7 at the atmospheric temperature of the place, therefore between 30 and 45 C.
[0113] It should also be noted that in connection with the targeted modular construction, yet another problem was taken into account, namely size and weight.
[0114] Thus, it is rather recommended that, in the redirected direction of the flows F1/F2 from the initial flow F (as in the direction of
[0115] The overall thickness e should preferably be less than 300 mm.
[0116] The elementary surface area of each room 1 should preferably be less than or equal to 2.5 m.sup.2.
[0117] The wall of the envelope 3 of each part 1 should preferably be made of stainless steel (or other lighter metal or alloy) less than 1.2 mm.