BUILDING ENVELOPE AND METHOD FOR ADJUSTING THE TEMPERATURE IN A BUILDING
20220235951 · 2022-07-28
Assignee
Inventors
Cpc classification
F24D3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S10/95
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24F2110/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/44
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24D19/1009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S20/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D2220/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04B1/74
FIXED CONSTRUCTIONS
F24F5/0003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04F13/074
FIXED CONSTRUCTIONS
F28D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F5/0089
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B30/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24D3/147
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F2110/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24F5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04B1/74
FIXED CONSTRUCTIONS
E04F13/074
FIXED CONSTRUCTIONS
F24D19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S10/95
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24S20/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A building envelope for a building wall, floor, or roof of a building, includes at least two shells spaced some distance apart from one another, which encloses an intermediate space therebetween, the shells including an exterior-facing shell configured to face an exterior of the building, and an interior-facing shell configured to face an interior of the building. The shells spaced apart from one another are filled with a building material and optionally include structural reinforcement and supply-engineering elements.
Claims
1. A building envelope for a building wall, floor, or roof of a building, the building envelope comprising: at least two shells spaced apart from one another and which enclose an intermediate space therebetween, the at least two shells including an exterior-facing shell configured to face an exterior of the building, and an interior-facing shell configured to face an interior of the building, wherein the at least two shells spaced apart from one another are filled with a building material and optionally include structural reinforcement and supply-engineering elements; the intermediate space being sealed against the interior and exterior of the building and being empty with the exception of structural weight-bearing elements and supply-engineering elements and optionally being filled at least in sections with a porous, open-celled material; each of the at least two shells including a panel adjacent to the building material and located between the building material and the intermediate space; the structural weight-bearing elements including a plurality of spacers which are anchored in the panel of at least one of the at least two shells and which extend into the intermediate space, wherein the spacers include solid rods; and wherein the exterior-facing shell includes a form panel arranged on an exterior-facing side of the exterior facing shell, and the interior-facing shell includes a form panel arranged on an interior-facing side of the interior facing shell.
2. The building envelope according to claim 1, comprising: pipe conduits configured for controlled supply and removal of a fluid into or out of at least one of the at least two shells for at least one of increasing, holding or decreasing heat transition through the building envelope or affecting heat transport into or out of the building envelope, wherein at least one of the at least two shells is divided into building-envelope sections with which are associated separately controllable pipe conduits of the pipe conduits, for section-selective management of a respective heat transition, wherein the separately controllable pipe conduits are configured for section-selective control of heat transport into or out of each of the building-envelope sections, wherein the pipe conduits are configured to at least one of increase, hold or decrease heat transition through the building envelope, or to affect heat transport into or out of the building envelope by section-selective evaporation and liquefaction of a fluid, to provide temperature control for the interior of the building, and wherein the fluid is a refrigerant.
3. The building envelope according to claim 2, wherein sensor and/or input apparatus for acquisition and/or inputting of section-specific values of a thermal state variable, including at least one of a measured or estimated outdoor temperature, sunlight intensity, a moisture content, or desired indoor temperature in each respective building-envelope section, are associated with separate building-envelope sections which are connected on the input side with a control apparatus of the pipe conduits.
4. The building envelope according to claim 2, wherein the pipe conduits include refrigerant compressors for generation of refrigerant-cooling and/or heat-pump transport of the fluid, and are configured to optionally include a refrigerant reservoir.
5. The building envelope according to claim 2, comprising: a conduit system of pipe conduits in the intermediate space and/or in at least one of the at least two shells configured to pass the fluid for at least one of increasing, holding or decreasing heat transition or affecting heat transport, which is sized to be section-specific and/or includes section-specific valves for flow control of the fluid for at least one of increasing, holding or decreasing heat transition or affecting heat transport.
6. The building envelope according to claim 5, wherein the conduit system comprises: a first heat-collector element located on the exterior-facing side of the exterior-facing shell or a first heat-collector element embodied by the exterior-facing shell; and a second heat-collector element located on the interior-facing side of the interior-facing shell or a second heat-collector element embodied by the interior-facing shell.
7. The building envelope according to claim 6, wherein at least one part of the at least one of the heat-collector elements includes one or more heat-conducting plates, ribs, or a corrugated structure.
8. The building envelope according to claim 2, comprising: controllable seals configured for controlled sealing of at least one of: the intermediate space from both the interior and the exterior of the building or discrete building-envelope sections of the building; wherein the controllable seals are configured for controlled sealing between separated building-envelope sections, and/or for controlled sealing of the separated building-envelope sections from both the interior and the exterior of the building.
9. The building envelope according to claim 8, wherein the controllable seals are configured to change their volumes and/or their shape under an effect of heat, electromagnetic radiation, or chemicals or mechanical forces in a controlled manner.
10. A structure having a fixed foundation and comprising: the building envelope according to claim 1.
11. A structure having a mobile foundation and comprising: the building envelope according to claim 1.
12. A structure comprising: the building envelope according to claim 1, wherein the structure is at least one selected from a mobile system, a machinery housing and a ship hull.
13. The building envelope according to claim 1, wherein at least one of the form panels is embodied by the panel of one of the at least two shells.
14. A process of controlling indoor temperature in a building with a building envelope for a building wall, floor, or roof of a building, the building envelope including: at least two shells spaced apart from one another and which enclose an intermediate space therebetween, the at least two shells including an exterior-facing shell configured to face an exterior of the building, and an interior-facing shell configured to face an interior of the building, wherein the at least two shells spaced apart from one another are filled with a building material and optionally include structural reinforcement and supply-engineering elements; the intermediate space being sealed against the interior and exterior of the building and being empty with the exception of structural weight-bearing elements and supply-engineering elements and optionally being filled at least in sections with a porous, open-celled material; each of the at least two shells including a panel adjacent to the building material and located between the building material and the intermediate space; the structural weight-bearing elements including a plurality of spacers which are anchored in the panel of at least one of the at least two shells and which extend into the intermediate space, wherein the spacers include solid rods; and wherein the exterior-facing shell includes a form panel arranged on an exterior-facing side of the exterior facing shell, and the interior-facing shell includes a form panel arranged on an interior-facing side of the interior facing shell; and pipe conduits configured for controlled supply and removal of a fluid into or out of at least one of the at least two shells for at least one of increasing, holding or decreasing heat transition through the building envelope or affecting heat transport into or out of the building envelope, wherein at least one of the at least two shells is divided into building-envelope sections with which are associated separately controllable pipe conduits of the pipe conduits, for section-selective management of a respective heat transition, wherein the separately controllable pipe conduits are configured for section-selective control of heat transport into or out of each of the building-envelope sections, wherein the pipe conduits are configured to at least one of increase, hold or decrease heat transition through the building envelope, or to affect heat transport into or out of the building envelope by section-selective evaporation and liquefaction of a fluid, to provide temperature control for the interior of the building, and wherein the fluid is a refrigerant; wherein the process comprises: controlling heat transition through the building envelope and/or controlling heat transport into or out of the building envelope by controlled evaporation and liquefaction of the fluid.
15. The process according to claim 14, comprising: controlling evaporation and liquefaction of the fluid based on acquired and/or input section-specific values of a thermal state variable including at least one of a measured or estimated outdoor temperature, sunlight intensity, a moisture content, or a desired preset indoor temperature in each respective building-envelope section.
16. A method of constructing, at a construction site, a building envelope including a building wall, floor, or roof of a building, the building envelope including: at least two shells spaced apart from one another and which enclose an intermediate space therebetween, the at least two shells including an exterior-facing shell configured to face an exterior of the building, and an interior-facing shell configured to face an interior of the building, wherein the at least two shells spaced apart from one another are filled with a building material and optionally include structural reinforcement and supply engineering elements; the intermediate space being sealed against the interior and exterior of the building and being empty with the exception of structural weight-bearing elements and supply-engineering elements and optionally being filled at least in sections with a porous, open-celled material; each of the at least two shells including a panel adjacent to the building material and located between the building material and the intermediate space; the structural weight-bearing elements including a plurality of spacers which are anchored in the panel of at least one of the at least two shells and which extend into the intermediate space, wherein the spacers include solid rods; wherein the exterior-facing shell includes a form panel arranged on an exterior-facing side of the exterior facing shell, and the interior-facing shell includes a form panel arranged on an interior-facing side of the interior facing shell; and wherein the method comprises: joining together prefabricated form elements, at the construction site, the prefabricated form elements being sealed against one another, wherein each of the prefabricated form elements includes part of the panel of the at least two shells, part of the plurality of spacers, part of the form panels, and optionally part of the structural reinforcement and supply-engineering elements; and after the joining, inserting the building material into the prefabricated form elements to fill the at least two shells spaced apart from one another, wherein, prior to the inserting, the building material is loose, flowable or a fluid, and wherein the building material sets after the inserting.
17. The method according to claim 16, wherein at least one of the form panels is embodied by the panel of one of the at least two shells.
18. The process according to claim 14, wherein at least one of the form panels is embodied by the panel of one of the at least two shells.
19. A method of prefabricating a building envelope including a building wall, floor, or roof of a building, the building envelope including: at least two shells spaced apart from one another and which enclose an intermediate space therebetween, the at least two shells including an exterior-facing shell configured to face an exterior of the building, and an interior-facing shell configured to face an interior of the building, wherein the at least two shells spaced apart from one another are filled with a building material and optionally include structural reinforcement and supply engineering elements; the intermediate space being sealed against the interior and exterior of the building and being empty with the exception of structural weight-bearing elements and supply-engineering elements and optionally being filled at least in sections with a porous, open-celled material; each of the at least two shells including a panel adjacent to the building material and located between the building material and the intermediate space; the structural weight-bearing elements including a plurality of spacers which are anchored in the panel of at least one of the at least two shells and which extend into the intermediate space, wherein the spacers include solid rods; wherein the exterior-facing shell includes a form panel arranged on an exterior-facing side of the exterior facing shell, and the interior-facing shell includes a form panel arranged on an interior-facing side of the interior facing shell; and wherein the method comprises: forming form elements by assembling together part of the panel of the at least two shells, part of the plurality of spacers, part of the form panels, and optionally part of the structural reinforcement and supply-engineering elements.
20. The method according to claim 19, wherein at least one of the form panels is embodied by the panel of one of the at least two shells.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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MANNER OF EXECUTING THE INVENTION
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[0128] With building envelope 10 according to
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[0133] Function, technical execution possibilities, and advantages of the briefly described preceding building-wall construction are explained further and in more detail above and are the object of the dependent claims and for this reason are not once again described in detail here. As explained above in more detail, in the event of a weakening of, or due to relevant changes in state, of a no longer sufficient sealing action of sealing element 76b, this sealing effect can be newly returned to the required size through energy input from the outside.
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[0135] Each of the pipe sections 85a, 85b is respectively provided on the exterior wall side of shell 82 and 81 with a heat collector 85c or 85d. A flange 85e or 85f is attached for each of the pipe sections 85a, 85b on the inner side and each sealing and fastening flange is provided with a volume-increasing seal 85g or 85h of the type and function mentioned in the preceding section, against the adjoining inner wall coating of the respective wall shell. The seals (O-ring or volume-increasing seal) on the spacer already depicted in
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[0137] Pipe sections 85a, 85b are pipes arranged concentrically (at a pre-determined distance) and leading into one another. As one can gather from
[0138] The function of pipe sections 85a, 85b therefore depends on two levels of a thermal liquid in the intermediate space 83. If the level is below pipe sections 85a, 85b (or heat pipe 85), no increased heat conduction exists. If the level is above heat pipe 85, increased heat conduction occurs.
[0139] Spacer 84 can be embodied in conjunction with heat pipe 85.
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[0142] The embodiments according to
[0143] The embodiment according to
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[0145] The intermediate space of the construction has a specified configuration (porous, open-celled support material-cavity) and a specified geometry, which is given by the climate zone and use. It is divided into individual sectors. The “Initial state” stage equalizes the physical conditions in the intermediate space with either the outside environment or the interior. This can also be indicated as “Airing”. The initial state can also be fitted into the process sequence in order to prepare the intermediate space for the subsequent processes.
[0146] The step “Impose vacuum” reduces the pressure in the intermediate space to a pre-determined value by means of a vacuum pump or by pressure compensation with a storage- or pressure-controllable membrane storage tank. Depending on the moisture content of the air or gas contained therein, the liquid-gas-liquid phase transition can be induced by means of the step “Impose vacuum”. The step “Introduce heat-conducting medium” fills the intermediate space with the heat-conducting medium by means of pumps, by pressure compensation with a storage- or pressure-controllable membrane storage tank or by the “Suction” step using the vacuum. This can be air with a pre-determined moisture content, a gas, or a liquid.
[0147] The step “Drain heat-conducting medium” drains the intermediate space of the heat-conducting medium by means of pumps, by pressure compensation with a storage- or pressure-controllable membrane storage tank or by suction by means of a further “Impose vacuum” step. In the latter case, a step for airing the building envelope follows. Subsequently, there is a decision step “Repeat cycle?” during which it is decided whether and, where necessary, at which point in time the cycle should be repeated and is based upon, on the one hand, the heat exchange achieved with a condition of the building envelope being filled with a heat-conducting medium, and, on the other hand, the existing target values and for example, additional recorded parameters. If there is no necessity for the same, the run is concluded; otherwise one returns to the “Impose vacuum” step.
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[0149] The run begins with a step of determining the residual moisture in the intermediate space and comparison with a nominal value, as a result of which it is decided whether a flushing routine is to be performed. Were this to be the case, an “Impose vacuum” step follows (as described in the preceding process). The “Flush out” step exchanges the air, gas, or liquid volume in the intermediate space under pre-determined, constant-pressure conditions. This is performed, for example, with the aid of a previously evacuated membrane storage tank or one prepared at a specified pressure ratio, which exchanges the volume in the intermediate space once, twice, or several times under constant pressure. In so doing, a pressure difference is produced between the conditions of the surroundings, the membrane storage tank, and the intermediate space. A vacuum pump can additionally provide the required air or gas volumes. With this step, an initial state is reached, in which the measurement and comparison steps which were initially performed are performed once again. If required, the cycle is then run through once again.
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[0151] The representations in the flow diagrams are highly simplified and do not mirror the runs that in practice are considerably more complex, which can be produced under the influence of various measurement and comparison steps and which can be governed by intermediate decisions or due to partial pressure decreases or increases. Such elaborations do however lie within the purview of a person skilled in the art and need no more detailed description here.
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[0157] The execution of the invention is not limited to the examples and aspects explained above, instead a plurality of modifications are also possible, which are within the purview of matters known to a person skilled in the art.
REFERENCE LIST
[0158] 2 Non-woven material [0159] 5 Form or mold [0160] 6 Cured building material [0161] 7 mirror planes [0162] 8 Support liquid or granulate [0163] 9, 12 Liquid level [0164] 10, 10′, 10″, 20, 20′, 20″, 20A, 20A′, 20A″, 20B, 20C 30, 70, 80 Building envelope or alternatively wall [0165] 11a, 11b; 21a, 21b; 21a′, 21b′; 21a″, 21b″, 31a, 31b; 71, 72; 81, 82 Building-envelope shell or alternatively Wall shell [0166] 1, 13, 23, 33, 73, 83 Intermediate space [0167] 15 Porous, open-celled material [0168] 16 Plate joint [0169] 17 Air conduit [0170] 4; 21c, 21d; 71a, 72a, 81a, 82a Reinforcement [0171] 25, 74, 84 Spacer [0172] 27, 27′, 27″ Separation wall [0173] 28, 28′, 28″ Pipe conduit [0174] 29, 85 Heat pipe [0175] 29a; 85e, 85f Sealing and fastening flange [0176] 29b; 85c, 85d Heat collector element [0177] 35 Slotted or notched plates [0178] 3, 71b, 72b, 81b, 82b Building material [0179] 18, 71c, 72c, 81c, 82c Inside and separation coating [0180] 71d, 72d Mold [0181] 74a, 74b Anchoring body [0182] 75 Bolt [0183] 75a, 75b Adjusting nuts [0184] 76a, 76b; 84a, 84b, 85g, 85h O-ring, gasket [0185] 85a, 85a1, 85a2 Inside pipe (heat pipe) [0186] 85b, 85b1, 85b2 Outside pipe (heat pipe) [0187] 86 Separation wall (cylinder) [0188] 86a Gasket [0189] 87, 87′, 87″ Liquid reservoir [0190] 88, 88′, 88″ Liquid pump [0191] 89 Sensor and/or input means [0192] 90 Control unit (CU) [0193] 141, 142 Heat conducting plates [0194] 143 Electrical cable [0195] 144 Pipe (permeable)