Heat insulation wall, method for manufacturing the same, and method for installing the same
The innovative heat-insulating and heat-preserving wall structure addresses performance and safety issues by using layered panels and bottom plates connected by partitions, ensuring durability, insulation, and fire protection, with aesthetic appeal and equivalent building lifespan.
Patent Information
- Application Number
- JP2022512328
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-11-01
- Filing Date
- 2021-12-23
- Publication Date
- 2025-07-09
- Estimated Expiration
- 2041-12-23
AI Technical Summary
Conventional heat-insulating and heat-preserving walls suffer from high density, poor performance, material loss, hygroscopicity, poor seismic resistance, environmental impact, and safety risks, including peeling and fire hazards, which limit their application and development.
A heat-insulating and heat-preserving wall structure comprising multiple layers, including panels and bottom plates connected by partitions with specific materials and connection methods, such as welding and hook engagement, to ensure durability and aesthetic appeal while providing effective insulation and fire protection.
The solution achieves equivalent building lifespan with improved insulation, fire resistance, and decorative aesthetics, while preventing wind, rain, and acid rain, ensuring structural integrity and safety.
Smart Images

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Abstract
Description
Technical Field
[0001] [Cross - reference to Related Applications] This application claims the priority of a Chinese patent application with application number 202111281479.7 and filing date November 1, 2021, the content of which is incorporated herein by reference.
[0002] [Technical Field] This disclosure relates to the technical field of heat insulation and heat preservation, specifically to heat - insulating and heat - preserving walls, their manufacturing methods, and installation methods.
Background Art
[0003] Currently, there are various heat - insulating and heat - preserving walls in the market. Conventional heat - insulating materials have a high density, poor heat - insulating and heat - preserving performance, a thick laying, a large material loss, high hygroscopicity, poor seismic resistance and environmental protection performance, and cannot meet the energy - saving standards. Furthermore, some of the heat - insulating materials are harmful to the human body.
[0004] In the prior art, the heat - insulating and heat - preserving wall is likely to peel off and fall after being laid as a wall surface heat - insulating layer, and its heat - insulating, heat - preserving and fire - proof performance is not preferable, so there is a risk of damage to safety. The above problems greatly limit the application and development of heat - insulating and heat - preserving walls.
Summary of the Invention
Means for Solving the Problems
[0005] This disclosure is made to solve the above problems, and aims to provide a heat - insulating and heat - preserving wall, its manufacturing method, and installation method that can effectively achieve heat - insulating, heat - preserving and fire - proof functions, ensure decorative aesthetics, and achieve a service life equivalent to that of a building.
[0006] In the present disclosure, the content of the invention is provided to introduce the idea of the present invention in a simple form. The idea of the present invention will be described in detail in the following specific embodiments. The content of the present invention is not intended to identify the important features or essential features of the claimed technical solution, nor is it intended to limit the scope of the claimed technical solution.
[0007] To solve the above technical problems, an embodiment of the present disclosure provides a heat-insulating and heat-preserving wall, which is characterized in that it includes at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel, the panel and the bottom plate are connected by at least one partition, and the heat-insulating and heat-preserving panel is installed between the panel and the bottom plate and held by the partition, the partition includes a partition head for connecting to the panel, and a partition tail that is connected to the partition head and the bottom plate respectively in a partitioning manner.
[0008] To solve the above technical problems, an embodiment of the present disclosure further provides a method for manufacturing a heat-insulating and heat-preserving wall, which is characterized in that joining the partition to the panel, joining the at least one layer of heat-insulating and heat-preserving panel to the partition and holding it by the partition, and joining the at least one layer of bottom plate to the partition.
[0009] To solve the above technical problems, an embodiment of the present disclosure further provides a method for installing the heat-insulating and heat-preserving wall as described above, which is characterized in that hanging and engaging the hook provided on the bottom plate with an external hanger to connect a plurality of heat-insulating and heat-preserving walls, a slit is provided between the plurality of heat-insulating and heat-preserving walls, a seal strip is fitted into the slit, and a sealant is provided on the seal strip on the panel side.
[0010] To solve the above technical problems, embodiments of the present disclosure further provide a method for installing the heat-insulating and heat-preserving wall as described above, and its features include: The wall connection structure joined to the side of the joining bolt that is not connected to the tail of the shielding body is cast in the wall. A slit is provided between the plurality of heat-insulating and heat-preserving walls, a sealing strip is fitted into the slit, and a sealant is provided on the sealing strip on the panel side.
[0011] According to the technical solution of the present disclosure, compared with the prior art, it has a unique structure, can effectively achieve heat insulation, heat preservation, and fire prevention, can achieve a lifespan equivalent to that of a building, and can effectively prevent wind, rain, and acid rain when installed on the outer wall of a building. In addition, its panel can be used as an outer surface that can ensure a decorative aesthetic whether it is attached to an interior wall or an exterior wall.
Brief Description of the Drawings
[0012]
Figure 1
Figure 2
Figure 3
[0013] In conjunction with the accompanying drawings, the above and other features, advantages, and aspects of each embodiment of the present invention will become more apparent by referring to the following specific embodiments. Throughout the accompanying drawings, the same or similar reference numerals indicate the same or similar elements. It should be understood that the accompanying drawings are schematic diagrams, and the originals and elements are not necessarily drawn to scale.
Modes for Carrying Out the Invention
[0014] Unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art. The terms used in the specification of this application are for the purpose of describing particular embodiments only and are not intended to limit the invention. The terms "comprising" and "having" and variations thereof in the description of the specification, claims, and drawings of the present invention are intended to cover non-exclusive inclusion. The terms such as "first" and "second" in the description of the specification, claims, or drawings of the present invention are used to distinguish different objects and are not used to describe a specific order.
[0015] References to "embodiments" in this specification mean that a particular feature, structure, or characteristic described in conjunction with the embodiments can be included in at least one embodiment of the present invention. The phrases that appear at various positions in this specification do not necessarily all refer to the same embodiment, nor do they refer to independent or alternative embodiments that are mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described in this specification may be combined with other embodiments.
[0016] To enable those skilled in the art to better understand the technical solutions of the present invention, the technical solutions in the embodiments of the present invention will be further described in combination with the accompanying drawings.
[0017] Also, it should be noted that the up, down, left, and right directions in each drawing are merely illustrative of a particular embodiment. Those skilled in the art can change and apply the directions of some or all of the components shown in the drawings according to actual needs, without affecting the overall realization of the functions of the components or the system. The technical solutions with such changed directions still fall within the protection scope of this specification.
[0018] [Heat-insulating and heat-preserving wall] According to the heat-insulating and heat-preserving wall according to one or more embodiments of the present disclosure, it includes at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel. In one or more embodiments, the panel and the bottom plate are both installed, for example, in one layer, and both are connected by, for example, a plurality of partitions. The heat-insulating and heat-preserving panel is provided between the panel and the bottom plate and is held by the partitions.
[0019] In one or more embodiments, the area of the panel is larger than the area of the bottom plate. The bottom plate is, for example, rectangular, with an area of, for example, 60 cm * 90 cm, or 20 cm * 30 cm. The area of the panel is slightly larger than the area of the bottom plate. For example, the area of the panel is, for example, 60.5 cm * 90.5 cm, or 20.5 cm * 30.5 cm. Of course, the length of one side of the panel can be, respectively, 0.1 to 1 cm longer than the length of one side of the bottom plate as required, and it is not limited thereto.
[0020] In one or more embodiments, the material of the panel and / or the bottom plate includes, for example, at least any one of a metal plate, a ceramic plate, a stone plate, an adhesive mortar, a cement plate, a calcium silicate plate, a gypsum board, a sound-absorbing material, and a sound-insulating material. In one or more embodiments, in order to enable various decorative treatments such as painting and wire drawing, the panel is preferably made of a material with a smooth and flat outer surface, such as a metal plate, a ceramic plate, or a stone veneer surface. The material of the panel and / or the bottom plate is preferably made of a metal plate.
[0021] In one or more embodiments, the thickness of the panel and / or the bottom plate is, for example, 3 mm to 20 mm, preferably 10 mm, and can be adjusted based on requirements such as corrosion resistance, requirements for partition welding, the weight of the entire heat-insulating and heat-preserving wall, the materials used, and cost requirements, and it is not limited.
[0022] In one or more embodiments, the bottom plate may have, for example, a glossy composite core material on one side and, after applying, for example, an adhesive cement or the like on the other side, be subjected to raising and wire drawing processes to facilitate attachment to a wall or the like. Of course, the bottom plate may be made of a material such as a high-strength gypsum board or a lightweight calcium silicate board, and it is preferable to perform raising and wire drawing processes, for example, to enhance the adhesive strength and flatness when attached to a wall.
[0023] In one or more embodiments, the panel and the bottom plate are formed of an aluminum alloy or stainless steel, and the edge of the panel is bent to the bottom plate such that the projected area of the front of the bent panel coincides with the area of the bottom plate, that is, the panel is bent where the length of each side of the panel exceeds the side length of the bottom plate so as to position the heat-insulating and heat-preserving panel between the panel and the bottom plate. At the location of the edge of the panel, for example, a groove for bending is provided in advance so that deformation does not occur during bending. In one or more embodiments, the bottom plate is provided with a hook that engages with an external hanger during installation and is used by means of a method such as steel hanger construction that adheres to a wall body.
[0024] In one or more embodiments, the connection method between the panel and the bottom plate by the barrier includes physical and chemical methods and includes at least any one of stitching, stapling, riveting, bolt joining, engaging, micro-hook attachment, adhesion, and welding, with welding being preferred, and may be various fusion welding, pressure welding, and brazing methods such as arc welding, argon arc welding, CO2 shielded welding, oxyacetylene welding, laser welding, and electro-slag pressure welding.
[0025] FIG. 1 shows a schematic cross-sectional view of an embodiment of the barrier of the heat-insulating and heat-preserving wall of the present disclosure. The barrier includes a barrier head 101 connected to the panel, and a barrier tail 102 that connects the barrier head 101 and the bottom plate in a blocking manner so as not to be connected between the panel and the bottom plate.
[0026] In one or more embodiments, the contact area between the barrier head 101 and the panel, for example, accounts for 1% or less of the total area of the panel.
[0027] In one or more embodiments, the barrier is, for example, a cylinder with a diameter of 1 to 10 cm as a whole, and may be installed at a pitch of, for example, 10 cm to 80 cm, preferably at a pitch of 25 cm to 60 cm. For example, a barrier with a diameter of 3 cm may be installed at a vertical and horizontal pitch of 15 cm. By setting the diameter, height, density, etc. of the barrier to be different according to specific situations, it can not only play the role of the support interval, but also ensure the flatness of the panel, reduce the total weight of the heat insulation and heat preservation wall, reduce the amount of materials used, and reduce the cost.
[0028] In one or more embodiments, the barrier head 101 is made of a metal material, such as an aluminum alloy or a stainless steel material, and the barrier tail 102 is made of a polytetrafluoroethylene (PTFE) material with acid and alkali resistance, corrosion resistance, and high temperature resistance. Polytetrafluoroethylene (PTFE) has a unique molecular structure (PTFE molecules wrap the carbon chain with F atoms, and the C-F bond has a large short and long bond energy), so the molecular structure of PTFE cannot be destroyed by acids and alkalis. Since polytetrafluoroethylene (PTFE) has very high acid and alkali resistance, it can be used in most fume situations. When used under temperature conditions of 230 °C to 320 °C, due to the disorientation effect of polytetrafluoroethylene (PTFE) caused by high temperature, the strength and elongation at break decrease and increase respectively with the increase of the heat treatment temperature. It can be used for a long time within the temperature range of 230 °C, is also suitable for the flue gas removal of garbage incinerators and coal-fired boilers, can effectively achieve heat insulation, heat preservation and fire prevention of the heat insulation and heat preservation wall, can achieve the same service life as a building, and can effectively prevent wind, rain and acid rain when installed on the outer wall of a building.
[0029] In one or more embodiments, the barrier head 101 is, for example, a nut structure, the barrier tail 102 is, for example, a hollow bolt structure, and the barrier head 101 is fixedly connected to the panel.
[0030] In one or more embodiments, the shutter head 101 is joined to the panel by a welding method such as laser welding. After instantly reaching a high temperature, the welding power is adjusted to 200 W or more. Of course, it can be adjusted to 1000 W to 2000 W, preferably 1500 W as required. According to experiments, when the welding power is adjusted to 1500 W after instantly reaching a high temperature, phenomena such as blackening and distortion do not appear when the outer side of the panel (i.e., the other side opposite to the bottom plate) welds the shutter, and the welding strength and aesthetics can be guaranteed. To prevent distortion of the panel, the shutter head 101 and the panel are welded by a diagonal welding method in which first two shutters at diagonal positions are welded according to the required layout, and then the remaining shutters at diagonal positions are welded. It has been clarified by experimental verification that the influence on the shape of the panel can be significantly reduced.
[0031] In one or more embodiments, the shutter tail 102 is connected to the bottom plate by a joining bolt, and the joining bolt penetrates the bottom plate and is screwed into the hollow portion of the shutter tail 102. In one or more embodiments, holes for the joining bolts to penetrate are pre-drilled in the bottom plate according to the position of the shutter.
[0032] In one or more embodiments, the screw length by which the shutter tail 102 is screwed into the shutter head 101 is less than or equal to the length of the shutter head 101 (that is, the vertical height of the shutter head 101), and the screw length by which the joining bolt is screwed into the shutter tail 102 is such that the connection between the panel and the bottom plate is not made is less than or equal to the length of the shutter tail 102 (that is, the vertical height of the shutter head 102).
[0033] In one or more embodiments, the joining bolts are bolts with different specifications such as expansion bolts and open bolts. The inside of the hollow portion of the shutter tail 102 gradually decreases from the bottom plate side to the panel side. By screwing in expansion bolts, open bolts, etc., the joining bolts can be closely attached to the shutter tail 102, so that the bottom plate and the panel can be closely attached.
[0034] In one or more embodiments, a building wall connection structure is joined to the side of the blocking body tail 102 in the joining bolt that is not connected. The connection structure is, for example, a metal panel or other member. Since the force receiving area with the building wall is increased, the heat insulation wall and the building wall can be firmly joined.
[0035] In one or more embodiments, the size, height (length), quantity, size, and layout of the cross-sectional area of the blocking body are not particularly limited and can be selected according to the required holding effect and the like. Although the blocking body shown in FIG. 1 is cylindrical, it is not limited thereto, and the shape of the blocking body may be other shapes, such as a cuboid, a cube, an ellipsoid, or other polygons.
[0036] In addition, although a plurality of blocking bodies are arranged at equal intervals in a matrix shape, it is not limited thereto, and a plurality of blocking bodies may be arranged in other pitches, layouts, and patterns, such as a concentric circular pattern or an irregular distribution pattern, and it is not limited to arranging a plurality of blocking bodies at equal intervals.
[0037] Also, according to factors such as the required holding effect, cost, and weight, the size, height (length), quantity, size, and layout pattern of the cross-sectional area of the blocking body can be selected. Specifically, when a better holding effect is required, the cross-sectional area of the blocking body can be set large or the number of blocking bodies can be set large, and conversely, the cross-sectional area of the blocking body can be set small or the number of blocking bodies can be set small.
[0038] FIG. 2 is a perspective view of an embodiment of the heat insulation panel of the heat insulation wall of the present disclosure.
[0039] The heat insulation panel has, from top to bottom, an inner outer layer 201, an intervening layer 202, a heat insulation layer 203, an intervening layer 202, an outer outer layer 204, and holes 205. Of course, the heat insulation panel of the present disclosure may have only the inner outer layer 201 or the outer outer layer 204, or may have only one intervening layer 202. The number of each layer is not limited. For example, the heat insulation layer 203 may be provided in two or more layers according to the actual situation. The thickness of each layer of the heat insulation panel is not limited. For example, each layer may have a thickness of 1 cm, or may have a thickness of 2 cm or more. Different thicknesses can be set according to the actual situation and are not limited. However, considering the use as a wall insulation layer, it is preferable that the thickness of the aerogel felt is 1 cm for each of the two layers.
[0040] In one or more embodiments, the heat insulation panel includes holes 205 corresponding to the size, quantity, position, outline, shape, layout pattern, etc. of the barrier. So that the heat insulation panel is in close contact with the barrier, the front projected area of the holes 205 is slightly smaller than the front projected area of the barrier. The front projected area refers to the orthographic projected area on the panel. The pitch of the holes is, for example, 10 to 80 cm, which is substantially consistent with the installation of the barrier. The thickness of the heat insulation panel is, for example, 30 to 80 mm, the fire resistance rating is, for example, A1, and the thermal conductivity is, for example, 0.010 to 0.050.
[0041] In one or more embodiments, the heat insulation layer 203 includes, for example, aerogel felt, and may also include aerogel products such as aerogel cloth, aerogel paper, aerogel board, fiber-reinforced aerogel felt, and other aerogel shaped members, and is not limited.
[0042] In one or more embodiments, the aerogel may be any one of, for example, silica aerogel, carbon aerogel, alumina aerogel, zirconium oxide aerogel, titanium oxide aerogel, iron oxide aerogel, cobalt oxide aerogel, nickel oxide aerogel, copper oxide aerogel, yttrium oxide aerogel, cerium oxide aerogel, vanadium oxide aerogel, bismuth oxide aerogel, tin oxide aerogel, hydroquinone formaldehyde aerogel, graphene aerogel.
[0043] In one or more embodiments, the fibers in the fiber-reinforced aerogel felt may be any one of glass fiber, carbon fiber, quartz fiber, high-silica fiber, aluminum silicate, mullite fiber, silicon carbide fiber, silicon nitride fiber, alumina fiber, boron nitride fiber, basalt fiber, brucite fiber, attapulgite fiber, boron fiber, carbon nanotube, aramid fiber, polyimide fiber, ultra-high molecular weight polyethylene fiber.
[0044] In one or more embodiments, the intervening layer 202 may include any one of, for example, polyester fiber metal-coated cloth, non-woven fabric, glass fiber felt, fiberglass mesh.
[0045] Of course, the material of the intervening layer 202 of the heat-insulating and heat-preserving panel is hard paper, soft paper, non-woven fabric, offset paper, coated paper, glass card paper, laser paper, kraft paper, fluorescent paper, gold-plated paper, aluminum foil paper, fragile (anti-counterfeiting) paper, silver-plated paper, crepe paper, cloth label (Tyvek / Nylon) paper, pearl paper, sandwich-coated paper, variable information paper, low-density polyethylene, linear low-density polyethylene, high-density polyethylene, biaxially stretched polypropylene, cast polypropylene, polyphenylene sulfide, polystyrene, polyester, polyamide, polyvinylidene chloride, polycarbonate, polyvinyl alcohol, polylactic acid, aluminum foil, contact rubber, transparent polyester (PET), semi-transparent polyester (PET), transparent oriented polypropylene (OPP), semi-transparent oriented polypropylene (OPP), transparent vinyl chloride (PVC), shiny white vinyl chloride (PVC), white matte polyvinyl chloride (PVC), synthetic paper, shiny gold (silver) polyester, gold (silver) matte polyester, etc., and is a material that is easily joined to the outer layer by a chemical method.
[0046] In one or more embodiments, the inner outer layer 201 and / or the outer outer layer 204 may include, for example, any one of a metal plate, a ceramic plate, a stone plate, an adhesive mortar, a cement plate, a calcium silicate plate, a gypsum board, a sound-absorbing material, and a sound-insulating material.
[0047] Note that in FIG. 2, in order to form the hole 205, the material of the inner outer layer 201 and / or the outer outer layer 204 was completely removed to form a through hole.
[0048] In one or more embodiments, for example, punches and / or slots may be provided in the inner outer layer 201 and / or the outer outer layer 204, and through the punches and / or slots, they are integrally joined to other layers by a physical method such as sewing or stapling. Thereby, the position of the thread during sewing and / or stapling can be easily controlled, the product form is neat and beautiful, the thread and / or staple for sewing and / or stapling do not protrude from the surface, and the thread and / or staple can be protected from damage during use.
[0049] In one or more embodiments, the row pitch and / or column pitch of the slots is, for example, 30 mm to 60 mm, and the distance between punches is, for example, 10 mm to 15 mm. Preferably, the row pitch and / or column pitch of the slots is 50 mm, and the distance between punches is 15 mm.
[0050] In one or more embodiments, the heat insulation layer 203 is integrally joined to the intervening layer 202 in a physical manner. Of course, between each of the other layers, for example, the heat insulation layer 203 and the inner outer layer 201 and / or the outer outer layer 204 can also be joined in a physical manner, but it is not limited thereto.
[0051] In one or more embodiments, the physical manner may include, for example, at least any one of sewing, stapling, riveting, bolting, engaging, micro-hook attachment (such as hook-and-loop fasteners).
[0052] In one or more embodiments, when using the physical manner of sewing, for example, sew with acid- and alkali-resistant, corrosion-resistant, high-temperature-resistant PTFE sewing thread (polytetrafluoroethylene sewing thread). When using the physical manner of stapling, for example, use a rod-shaped locking type metal aluminum alloy or high-strength carbon steel fittings for stapling.
[0053] The PTFE sewing thread has a strong energy retention rate of around 80% after acid-alkali treatment. Of course, when using the physical manner of sewing or stapling, for example, acid- and alkali-resistant, corrosion-resistant, high-temperature-resistant polymer nylon thread or other material wires can be used as the sewing thread or stapling wire for sewing or stapling, and it is not particularly limited.
[0054] In one or more embodiments, the row pitch and / or column pitch of the sewing thread or stapling wire is, for example, 30 mm to 60 mm, and the stitch distance is, for example, 10 mm to 15 mm. It is preferable that the row pitch and / or column pitch is 50 mm, and the stitch distance is 15 mm.
[0055] In one or more embodiments, the intervening layer 202 can cover or wrap the heat insulation layer 203 to prevent dust falling due to vibration of machinery and equipment, environmental pollution in the workplace due to dust generation of glass fibers, and lung damage to the human body when the material of the heat insulation layer 203 enters manufacturing equipment such as a quilting and sewing device and is sewn.
[0056] In one or more embodiments, the inner outer layer 201 and / or the outer outer layer 204 are integrally joined to the intervening layer 202 in a chemical manner. The chemical manner may include, for example, a method of joining including at least any one of an adhesive, a double-sided tape, a vegetable adhesive, a polyurethane composite adhesive, an epoxy resin, a curing agent, an accelerator, an aqueous elastic paint, an aqueous resin, an aqueous environmental protection composite adhesive, a flame retardant, and a dispersant.
[0057] In one or more embodiments, each layer of the heat insulation wall can be adhered, for example, using an adhesive. Examples of the adhesive material include, but are not limited to, a general-purpose super-adhesive type, a general-purpose strong-adhesive type, a refrigerated food strong-adhesive type, a general-purpose re-peelable type, a fiber re-peelable type, etc. It is preferable to use a material with low thermal conductivity.
[0058] The heat insulation panel of the present invention preferably has a total thickness of 25 to 80 mm. Considering its use as a heat insulation layer on the wall surface, it is more preferable that the thickness of the aerogel felt is 2 layers of 10 mm each and the overall thickness is about 30 mm. Thereby, the heat insulation effect can be ensured, no extra space is occupied, and excellent rigidity and tensile strength can be achieved by the above physical joining. The heat insulation panel of the present invention preferably uses a material with a high fire resistance rating, the overall fire resistance rating is A1 grade, the thermal conductivity is 0.01 to 0.05, and it is preferable that the overall thermal conductivity is about 0.020. The heat insulation wall may be in various shapes as a whole, for example, rectangular plate-shaped, square plate-shaped, circular plate-shaped, hexagonal plate-shaped, etc.
[0059] In addition, Fig. 2 shows a combined structure composed of an inner outer surface layer 201, an intervening layer 202, a heat insulation and heat preservation layer 203, an intervening layer 202, and an outer outer surface layer 204. However, it is not limited to this, and each heat insulation and heat preservation panel may be a multi-layer combined structure. For example, each layer may have a structure of two or more layers.
[0060] Between each layer, at least one method including physical methods such as sewing, stapling, riveting, bolt joining, engaging, and micro-hook attachment can be adopted. Of course, chemical methods such as using at least one of adhesives, double-sided tapes, vegetable adhesives, polyurethane composite adhesives, epoxy resins, curing agents, accelerators, water-based elastic paints, water-based resins, water-based environmental protection composite adhesives, flame retardants, and dispersants can also be used for joining.
[0061] [Manufacturing Method] According to one or more embodiments of the present disclosure, a manufacturing method of a heat insulation and heat preservation wall is provided. As shown in Fig. 3, the manufacturing method of this embodiment includes the following content:
[0062] S31: Join the barrier to the panel In one or more embodiments, the barrier head 101 is joined to the panel by a welding method such as laser welding. After instantly reaching a high temperature, adjust the welding power to 200W or more. Of course, it can be adjusted to 1000W - 2000W, preferably 1500W as needed. Experiments show that when the welding power is adjusted to 1500W after instantly reaching a high temperature, phenomena such as blackening and distortion do not occur on the outer side of the panel (i.e., the other side opposite to the bottom plate) when welding the barrier, and the welding strength and aesthetics can be guaranteed. To prevent the distortion of the panel, the barrier head 101 and the panel are welded by a diagonal welding method, that is, first weld two barriers at diagonal positions according to the required layout, and then weld the barriers at the diagonal positions. It has been clarified by experimental verification that the influence on the shape of the panel can be significantly reduced.
[0063] In one or more embodiments, the number, position, and layout of the barriers per unit area on the panel can be determined as needed.
[0064] In one or more embodiments, the barrier is, for example, a cylinder with a diameter of 1 to 10 cm as a whole, and may be installed at a pitch of, for example, 10 cm to 80 cm, and a pitch of 25 cm to 60 cm is more preferable. For example, a barrier with a diameter of 3 cm may be installed at a vertical and horizontal pitch of 15 cm. Depending on the actual situation, by individually installing the diameter, height, density, etc. of the barrier, not only support isolation can be achieved, but also the flatness of the panel can be guaranteed, the weight of the entire heat-insulating and heat-preserving wall can be reduced, the materials used can be reduced, and the cost can be suppressed. The size of the cross-sectional area, height (length), quantity, size, and layout of the barrier are not limited, and they can be arranged at equal intervals in a matrix. Not limited to this, for example, a plurality of barriers may be arranged in other pitches, layouts, and patterns such as a concentric circular ring pattern or an irregular distribution pattern, and are not limited to arranging a plurality of barriers at equal intervals.
[0065] In one or more embodiments, for example, based on the determined quantity, position, and layout of the barriers, the barriers are joined to at least one layer of the panel.
[0066] The manufacturing method of the heat-insulating and heat-preserving wall further includes the following content: Position the building with a smart system, and smartly analyze the climate of the location with data such as temperature, humidity, wind speed, precipitation pH, and the load-bearing capacity of the building, perform identification of the corresponding database and big data analysis, and determine the material, thickness, number of barriers, arrangement, etc. of the panel or bottom plate based on the planned service life of each heat-insulating wall, and create design drawings based on the analysis data. While meeting the demand, the cost is saved to the maximum extent.
[0067] S32: Join at least one layer of heat-insulating and heat-preserving panels to the barriers and hold them with the barriers In one or more embodiments, it further includes installing holes 205 in at least one layer of heat-insulating and heat-preserving panels based on the number, position, layout, and shape of the barriers.
[0068] S33: Join at least one layer of bottom plates to the barriers In one or more embodiments, the shielding body head is welded to at least one layer of panel. The shielding body tail is screwed to the shielding body head. The joining bolt penetrates through the bottom plate and is screwed to the shielding body tail.
[0069] In one or more embodiments, the shielding body tail 102 communicates with the bottom plate by a joining bolt. The joining bolt penetrates through the bottom plate and is screwed into the hollow portion of the shielding body tail 102.
[0070] In one or more embodiments, on the bottom plate, based on the position of the shielding body, holes for the joining bolts to penetrate are pre-punched.
[0071] In one or more embodiments, so that the panel and the bottom plate are not communicated, the screw length screwed into the shielding body head 101 of the shielding body tail 102 is less than or equal to the length of the shielding body head 101 (i.e., the vertical height of the shielding body head 101), and the screw length screwed into the shielding body tail 102 of the joining bolt is less than or equal to the length of the shielding body tail 102 (i.e., the vertical height of the shielding body tail 102).
[0072] In one or more embodiments, the joining bolt is a bolt with different specifications such as an expansion bolt and an open bolt, and the inner diameter of the hollow portion of the shielding body tail 102 gradually decreases from the bottom plate side to the panel side. By screwing in expansion bolts, open bolts, etc., the joining bolt can be closely attached to the shielding body tail 102, so that the bottom plate and the panel can be closely attached.
[0073] In one or more embodiments, it further includes screwing the shielding body tail 102 into the shielding body head 101.
[0074] In one or more embodiments, the manufacturing method may further include the step of manufacturing a heat-insulating and heat-preserving panel: 1) Arrange the aerogel felts of the heat-insulating and heat-preserving layer 203 side by side, 2) Lay the glass fiber felt of the interlayer 202 in a bag shape to wrap the entire aerogel felt of the heat-insulating and heat-preserving layer 203, 3) Place the aerogel felt of the heat insulation layer 203 of the glass fiber felt wrapped by the intermediate layer 202 into, for example, a quilting sewing device and sew it with, for example, acid- and alkali-resistant, corrosion-resistant, and high-temperature-resistant PTFE sewing thread. 4) Apply, for example, an adhesive to both the upper and lower surfaces of the sewn intermediate layer 202. 5) It may include adhering one side of the glossy composite core material of the inner outer layer 201 and the outer outer layer 204 to both the upper and lower surfaces of the intermediate layer 202 respectively.
[0075] In one or more embodiments, a hot press forming process may be performed, for example, under the conditions of 100 °C and a pressure of 5 Mpa.
[0076] [Installation method] According to one or more embodiments of the present disclosure, a method for installing a heat insulation wall is provided. The installation method of this embodiment is Suspend and engage the hooks provided on the bottom plate with an external hanger to connect a plurality of heat insulation walls together. It includes that a slit is provided between a plurality of heat insulation walls, a seal strip is fitted into the slit, and a sealant is provided on the seal strip on the panel side.
[0077] In one or more embodiments, the installation method is that the wall body connection structure joined to the side of the joint bolt that is not connected to the tail of the cut-off body is cast in the wall body. To firmly join the heat insulation wall and the building wall body, by casting the metal plate of the joint bolt into the wall body of the building, the force receiving area with the wall body of the building becomes larger. A slit is provided between the plurality of heat insulation walls, a seal strip is fitted into the slit, and a sealant is provided on the seal strip on the panel side. This is included.
[0078] Each step of the flowchart in the drawings is shown in the order of the arrows, but it should be understood that these steps are not necessarily executed sequentially in the order of the arrows. Unless explicitly stated in this specification, there is no strict order restriction for the execution of these steps, and they may be executed in other orders. Furthermore, the steps of the flowchart in the drawings can include at least some that contain multiple sub-steps or multiple stages. These sub-steps or stages are not necessarily executed and completed at the same timing, and they may be executed at different timings. Their execution is not necessarily sequential, and they may be executed alternately or in alternation with at least some of other steps or sub-steps or stages of other steps.
[0079] One or more embodiments of the present disclosure provide a heat-insulating and heat-preserving wall, which is characterized in that it includes at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel, the panel and the bottom plate are connected by at least one partition, and the heat-insulating and heat-preserving panel is installed between the panel and the bottom plate and held by the partition, the partition includes a partition head for connecting to the panel, and a partition tail that is connected to the partition head and the bottom plate respectively in a partition manner.
[0080] One or more embodiments of the present disclosure provide a heat-insulating and heat-preserving wall, which is characterized in that the area of the panel is larger than the area of the bottom plate, the material of the panel and / or the bottom plate includes at least any one of a metal plate, a ceramic plate, a stone plate, an adhesive mortar, a cement plate, a calcium silicate plate, a gypsum board, a sound-absorbing material, and a sound-insulating material.
[0081] One or more embodiments of the present disclosure provide a heat-insulating and heat-preserving wall, which is characterized in that The panel and the bottom plate are made of aluminum alloy material, the head of the barrier is made of metal material, and the tail of the barrier is made of polytetrafluoroethylene material. The edge of the panel is bent to the bottom plate so that the projected area of the front of the bent panel matches the area of the bottom plate. A groove for bending is provided in advance at the bending location of the edge of the panel.
[0082] According to one or more embodiments of the present disclosure, a heat-insulating and heat-preserving wall is provided, and its features include: The connection method between the panel and the bottom plate by the barrier includes physical and chemical methods. The physical method includes at least one of stitching, stapling, riveting, bolting, engaging, microhook attachment, adhesion, and welding.
[0083] According to one or more embodiments of the present disclosure, a heat-insulating and heat-preserving wall is provided, and its features include: The head of the barrier has a nut structure, and the tail of the barrier has a hollow bolt structure. The head of the barrier is fixedly connected to the panel, and the tail of the barrier is connected to the bottom plate by a joining bolt. The joining bolt penetrates the bottom plate and is screwed into the hollow part of the tail of the barrier.
[0084] According to one or more embodiments of the present disclosure, a heat-insulating and heat-preserving wall is provided, and its features include: The screw length of the joining bolt screwed into the head of the tail of the barrier is not more than the length of the head of the barrier, and the screw length of the joining bolt screwed into the tail of the barrier is not more than the length of the tail of the barrier.
[0085] According to one or more embodiments of the present disclosure, a heat-insulating and heat-preserving wall is provided, and its features include: The joining bolt is an expansion bolt. The inner diameter of the hollow part of the tail of the barrier gradually decreases from the bottom plate side to the panel side.
[0086] According to one or more embodiments of the present disclosure, a heat-insulating and heat-preserving wall is provided, and its features include: The heat-insulating and heat-preserving panel has holes corresponding to the number, position, and outline of the barriers. The front projection area of the holes is smaller than the front projection area of the barriers. The pitch of the holes is 10 - 80 cm, the thickness of the heat-insulating and heat-preserving panel is 30 - 80 mm, the fire resistance rating is A1, and the thermal conductivity is 0.010 - 0.050.
[0087] According to one or more embodiments of the present disclosure, a heat-insulating and heat-preserving wall is provided, and its features include: The ratio of the total projected area of the at least one barrier on the panel to the total area of the panel is 1% or less.
[0088] According to one or more embodiments of the present disclosure, a heat-insulating and heat-preserving wall is provided, and its features include: The bottom plate is provided with hanging hooks for connection with the outside.
[0089] According to one or more embodiments of the present disclosure, a heat-insulating and heat-preserving wall is provided, and its features include: A wall connection structure is provided on the side of the joining bolt that is not connected to the tail of the barrier.
[0090] According to one or more embodiments of the present disclosure, a method for manufacturing the heat-insulating and heat-preserving wall is provided, and its features include: Joining the barriers to the panel, Joining at least one layer of heat-insulating and heat-preserving panels to the barriers and holding them with the barriers, Joining at least one layer of bottom plates to the barriers, including this.
[0091] According to one or more embodiments of the present disclosure, a method for manufacturing the heat-insulating and heat-preserving wall is provided, and its features include: Welding the heads of the barriers to at least one layer of panels, Threading the tails of the barriers with the heads of the barriers, Further including that the joining bolt penetrates through the bottom plate and is screwed with the tail of the blocking body.
[0092] According to one or more embodiments of the present disclosure, a method for manufacturing the heat-insulating and heat-preserving wall is provided, and its features include: Laser welding is used for the welding between the head of the blocking body and the panel. After instantly reaching a high temperature, the welding power is reduced to 200 W or more. The head of the blocking body is welded to the panel in a diagonal welding manner.
[0093] According to one or more embodiments of the present disclosure, a method for installing the heat-insulating and heat-preserving wall is provided, and its features include: The hooks provided on the bottom plate are hung and engaged with an external hanger to connect a plurality of heat-insulating and heat-preserving walls together. A slit is provided between the plurality of heat-insulating and heat-preserving walls, a sealing strip is fitted into the slit, and a sealant is provided on the sealing strip on the panel side.
[0094] According to one or more embodiments of the present disclosure, a method for installing the heat-insulating and heat-preserving wall is provided, and its features include: The wall connection structure joined to the side of the joining bolt that is not connected to the tail of the blocking body is cast on the wall. A slit is provided between the plurality of heat-insulating and heat-preserving walls, a sealing strip is fitted into the slit, and a sealant is provided on the sealing strip on the panel side.
[0095] The above description is only an explanation of the preferred embodiments of the present invention and the adopted technical principles. Those skilled in the art should understand that the scope of the disclosure related to the present invention is not limited to the technical solutions formed by the specific combinations of the above technical features, but also includes other technical solutions formed by any combination of the above technical features or their equivalent features without departing from the idea of the above disclosure. For example, the above features are mutually replaced with technical features having the same functions as the technical features (but not limited to this) disclosed in the present invention to form a technical solution.
[0096] Furthermore, although the operations are depicted in a particular order, this should not be construed as requiring that they be performed in the particular order shown or in sequential order of execution. Depending on the environment, multitasking or parallel processing may be advantageous. Similarly, although details of some specific embodiments are included in the above description, these should not be construed as limiting the scope of the invention. Specific features described in the context of individual examples may be implemented in combination within individual examples. Conversely, various features described in the context of a single example may be implemented alone or in any suitable combination of sub-assemblies in multiple examples.
[0097] The subject matter is described using language specific to structural features and / or logical operations of a method, but it should be understood that the subject matter defined by the appended claims is not necessarily limited to the specific features or acts described above. Conversely, the specific features and acts described above are merely exemplary forms for carrying out the claims.
[0098] (Appendix) (Appendix 1) Comprising at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel, The panel and the bottom plate are connected by at least one partition, and the heat-insulating and heat-preserving panel is installed between the panel and the bottom plate and held by the partition, The partition A partition head for connecting to the panel, And a partition tail connected to the partition head and the bottom plate respectively in a partition manner, A heat-insulating and heat-preserving wall, characterized in that.
[0099] (Appendix 2) In the heat-insulating and heat-preserving wall according to Appendix 1, The area of the panel is larger than the area of the bottom plate, As the material of the panel and / or the bottom plate, it includes at least one of a metal plate, a ceramic plate, a stone plate, an adhesive mortar, a cement plate, a calcium silicate plate, a gypsum board, a sound-absorbing material, and a sound-insulating material. The heat-insulating and heat-preserving wall is characterized by this.
[0100] (Appendix 3) In the heat-insulating and heat-preserving wall described in Appendix 2, The panel and the bottom plate are formed of an aluminum alloy material, the head of the barrier is formed of a metal material, and the tail of the barrier is formed of a polytetrafluoroethylene material. The edge of the panel is bent to the bottom plate so that the projected area of the front of the bent panel coincides with the area of the bottom plate. At the location of the edge of the panel, a groove for bending is provided in advance. The heat-insulating and heat-preserving wall is characterized by this.
[0101] (Appendix 4) In the heat-insulating and heat-preserving wall described in any one of Appendices 1 to 3, The connection method of the panel and the bottom plate by the barrier includes a physical method and a chemical method, and includes at least one of stitching, stapling, riveting, bolt joining, engagement, microhook attachment, adhesion, and welding. The heat-insulating and heat-preserving wall is characterized by this.
[0102] (Appendix 5) In the heat-insulating and heat-preserving wall described in Appendix 4, The head of the barrier has a nut structure, and the tail of the barrier has a hollow bolt structure. The head of the barrier is fixedly connected to the panel, and the tail of the barrier is connected to the bottom plate by a joining bolt. The joining bolt penetrates the bottom plate and is screwed into the hollow part of the tail of the barrier. The heat-insulating and heat-preserving wall is characterized by this.
[0103] (Appendix 6) In the heat-insulating and heat-preserving wall described in Appendix 5, The screw length screwed into the head of the shielding body at the tail of the shielding body is equal to or less than the length of the head of the shielding body, and the screw length screwed into the tail of the shielding body of the joining bolt is equal to or less than the length of the tail of the shielding body. A heat-insulating and heat-preserving wall characterized by this.
[0104] (Appendix 7) In the heat-insulating and heat-preserving wall according to Appendix 5, The joining bolt is an expansion bolt, The inner diameter of the hollow part of the tail of the shielding body gradually decreases from the bottom plate side to the panel side. A heat-insulating and heat-preserving wall characterized by this.
[0105] (Appendix 8) In the heat-insulating and heat-preserving wall according to any one of Appendices 1 to 3, The heat-insulating and heat-preserving panel has holes corresponding to the number, position, and outline of the shielding bodies, The front projection area of the holes is smaller than the front projection area of the shielding bodies, The pitch of the holes is 10 to 80 cm, the thickness of the heat-insulating and heat-preserving panel is 30 to 80 mm, the fire resistance rating is A1, and the thermal conductivity is 0.010 to 0.050. A heat-insulating and heat-preserving wall characterized by this.
[0106] (Appendix 9) In the heat-insulating and heat-preserving wall according to Appendix 1, The ratio of the total projected area of the at least one shielding body on the panel to the total area of the panel is 1% or less. A heat-insulating and heat-preserving wall characterized by this.
[0107] (Appendix 10) In the heat-insulating and heat-preserving wall according to Appendix 1, The bottom plate is provided with a hook for a hanging connection with the outside. A heat-insulating and heat-preserving wall characterized by this.
[0108] (Appendix 11) In the heat-insulating and heat-preserving wall according to Appendix 5, A wall body connection structure is provided on the side of the joining bolt that is not connected to the tail of the shielding body. A heat-insulating and heat-preserving wall characterized by this.
[0109] (Appendix 12) A method for manufacturing a heat-insulating and heat-preserving wall according to any one of Appendices 1 to 10, joining the partition to the panel, joining at least one layer of heat-insulating and heat-preserving panels to the partition and holding them with the partition, joining at least one layer of bottom plates to the partition, characterized in that the method for manufacturing a heat-insulating and heat-preserving wall includes the above steps.
[0110] (Appendix 13) In the method for manufacturing a heat-insulating and heat-preserving wall according to Appendix 12, welding the partition head to at least one layer of panels, threading the partition tail with the partition head, further including that the joining bolt penetrates the bottom plate and is threaded with the partition tail, characterized in that the method for manufacturing a heat-insulating and heat-preserving wall includes the above steps.
[0111] (Appendix 14) In the method for manufacturing a heat-insulating and heat-preserving wall according to Appendix 12 or 13, using laser welding for the welding of the partition head and the panel, and after instantly reaching a high temperature, reducing the welding power to 200 W or more, characterized in that the partition head is welded to the panel in a diagonal welding manner.
[0112] (Appendix 15) A method for installing a heat-insulating and heat-preserving wall according to any one of Appendices 1 to 11, hanging and engaging the hook provided on the bottom plate with an external hanger to connect a plurality of heat-insulating and heat-preserving walls, characterized in that a slit is provided between the plurality of heat-insulating and heat-preserving walls, a seal strip is fitted into the slit, and a sealant is provided on the seal strip on the panel side.
[0113] (Appendix 16) A method for installing a heat-insulating and heat-preserving wall according to any one of Appendices 1 to 11, The wall connection structure that joins to the side of the joining bolt that is not connected to the cut-off body tail portion is cast in the wall body, A slit is provided between the plurality of heat insulating and heat retaining walls, a seal strip is fitted into the slit, and a sealant is provided on the seal strip on the panel side. A method for installing a heat insulating and heat retaining wall, characterized by this.
Claims
1. Comprising at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel, the panel and the bottom plate are connected by at least one separator, the heat-insulating and heat-preserving panel is installed between the panel and the bottom plate, and is joined and held by the separator, the separator is a separator head for connecting with the panel, including a separator tail connected to the separator head and the bottom plate respectively in a separating manner, the area of the panel is larger than the area of the bottom plate, the edge of the panel is bent towards the bottom plate such that the projected area of the front surface of the bent panel is equal to the area of the bottom plate, a groove for bending is provided in advance at the edge portion of the panel, the heat-insulating and heat-preserving panel has holes corresponding to the number, position, and outer contour of the separator, the heat-insulating and heat-preserving panel is held by the separator when the separator is joined with the holes of the heat-insulating and heat-preserving panel, A heat-insulating and heat-preserving wall, characterized in that.
2. The material of the panel and / or the bottom plate includes at least one of a metal plate, a ceramic plate, a stone plate, an adhesive mortar, a cement plate, a calcium silicate plate, a gypsum board, a sound-absorbing material, and a sound-insulating material. The heat-insulating and heat-preserving wall according to claim 1, characterized in that.
3. The panel and the bottom plate are formed of an aluminum alloy material, the separator head is formed of a metal material, and the separator tail is formed of a polytetrafluoroethylene material. The heat-insulating and heat-preserving wall according to claim 2, characterized in that.
4. The connection method of the panel and the bottom plate by the separator includes at least one of a physical method and a chemical method, and includes at least one of stitching, stapling, riveting, bolt joining, engaging, micro-hook attachment, adhesion, and welding. The heat-insulating and heat-preserving wall according to any one of claims 1 to 3, characterized in that.
5. Comprising at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel, the panel and the bottom plate are connected by at least one separator, the heat-insulating and heat-preserving panel is installed between the panel and the bottom plate, and is joined and held by the separator, the separator is a separator head for connecting with the panel, including a separator tail connected to the separator head and the bottom plate respectively in a separating manner, The connection method between the panel and the bottom plate by the barrier includes at least one of a physical method and a chemical method, and includes at least one of sewing, stapling, riveting, bolting, engaging, micro-hook attachment, adhesion, welding, etc. The barrier head is a nut structure, and the barrier tail is a hollow bolt structure. The barrier head is fixedly connected to the panel, and the barrier tail is connected to the bottom plate by a joining bolt. The joining bolt penetrates through the bottom plate and is screwed into the hollow part of the barrier tail. The heat-insulating and heat-preserving panel has holes corresponding to the number, position, and outline of the barrier. The heat-insulating and heat-preserving panel is held by the barrier by the barrier being joined to the holes of the heat-insulating and heat-preserving panel. A heat-insulating and heat-preserving wall, characterized in that.
6. The screw length of the joining bolt screwed into the barrier tail is not more than the length of the barrier tail, and the screw length of the joining bolt screwed into the barrier tail is not more than the length of the barrier tail. The heat-insulating and heat-preserving wall according to claim 5, characterized in that.
7. The joining bolt is an expansion bolt. The inner diameter of the hollow part of the barrier tail gradually decreases from the bottom plate side to the panel side. The heat-insulating and heat-preserving wall according to claim 5, characterized in that.
8. Including at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel. The panel and the bottom plate are connected by at least one barrier, the heat-insulating and heat-preserving panel is installed between the panel and the bottom plate, and is joined and held by the barrier. The barrier is A barrier head for connecting to the panel. A barrier tail that is connected to the barrier head and the bottom plate respectively by a barrier method. The heat-insulating and heat-preserving panel has holes corresponding to the number, position, and outline of the barrier. The heat-insulating and heat-preserving panel is held by the barrier by the barrier being joined to the holes of the heat-insulating and heat-preserving panel. The front projection area of the hole is smaller than the front projection area of the barrier so that the heat-insulating and heat-preserving panel and the barrier are in close contact. The pitch of the holes is 10 to 80 cm, the thickness of the heat-insulating and heat-preserving panel is 30 to 80 mm, the fire resistance rating is A1, and the thermal conductivity is 0.010 to 0.
050. A heat-insulating and heat-preserving wall, characterized in that.
9. The heat-insulating and heat-preserving wall according to claim 1, wherein a hook for hanging connection with the outside is provided on the bottom plate.
10. The heat-insulating and heat-preserving wall according to claim 5, wherein a wall connection structure is provided on a side of the joining bolt that is not connected to the tail portion of the shielding body.
11. A method for manufacturing a heat-insulating and heat-preserving wall, comprising at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel, wherein the panel and the bottom plate are connected by at least one shielding body, the heat-insulating and heat-preserving panel is installed between the panel and the bottom plate, joined and held by the shielding body, and the shielding body includes a shielding body head for connecting to the panel and a shielding body tail for connecting to the shielding body head and the bottom plate respectively in a shielding manner, and the method includes: joining the shielding body to the panel; joining the at least one layer of heat-insulating and heat-preserving panel to the shielding body and holding it with the shielding body; joining the at least one layer of bottom plate to the shielding body, welding the shielding body head to the at least one layer of panel; threading the shielding body tail with the shielding body head; connecting the shielding body tail to the bottom plate by a joining bolt; further comprising that the joining bolt penetrates the bottom plate and threads with the shielding body tail; the heat-insulating and heat-preserving panel has holes corresponding to the number, position, and outer contour of the shielding body; The heat-insulating and heat-preserving panel is held by the shielding body when the shielding body is joined to the holes of the heat-insulating and heat-preserving panel. A method for manufacturing a heat-insulating and heat-preserving wall, characterized in that.
12. A method for manufacturing a heat-insulating and heat-preserving wall, comprising at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel, wherein the panel and the bottom plate are connected by at least one shielding body, the heat-insulating and heat-preserving panel is installed between the panel and the bottom plate, joined and held by the shielding body, and the shielding body includes a shielding body head for connecting to the panel and a shielding body tail for connecting to the shielding body head and the bottom plate respectively in a shielding manner, and the method includes: joining the shielding body to the panel; joining the at least one layer of heat-insulating and heat-preserving panel to the shielding body and holding it with the shielding body; joining the at least one layer of bottom plate to the shielding body, using laser welding for the welding of the shielding body head and the panel, and after instantly reaching a high temperature, reducing the welding power to 200 W to 2000 W. The shielding body head is welded to the panel by a diagonal welding method. The heat-insulating and heat-preserving panel has holes corresponding to the number, position, and outline of the shielding body. The heat-insulating and heat-preserving panel is held by the shielding body when the shielding body is joined to the holes of the heat-insulating and heat-preserving panel. A method for manufacturing a heat-insulating and heat-preserving wall, characterized by this.
13. Laser welding is used for the welding of the shielding body head and the panel. After instantly reaching a high temperature, the welding power is reduced to 200 W to 2000 W. The method for manufacturing a heat-insulating and heat-preserving wall according to claim 11, characterized in that the shielding body head is welded to the panel by a diagonal welding method.
14. Including at least one layer of panel, at least one layer of bottom plate, and at least one layer of heat-insulating and heat-preserving panel. The panel and the bottom plate are connected by at least one shielding body. The heat-insulating and heat-preserving panel is installed between the panel and the bottom plate and is joined and held by the shielding body. The shielding body includes a shielding body head for connecting to the panel and a shielding body tail for connecting to the shielding body head and the bottom plate respectively by a shielding method. An installation method for a heat-insulating and heat-preserving wall, The shielding body tail is connected to the bottom plate by a joining bolt. The wall connection structure joined to the side of the joining bolt that is not connected to the shielding body tail is fixed to the wall by casting. A slit is provided between a plurality of the heat-insulating and heat-preserving walls. A seal strip is fitted into the slit, and a sealant is provided on the seal strip on the panel side. The heat-insulating and heat-preserving panel has holes corresponding to the number, position, and outline of the shielding body. The heat-insulating and heat-preserving panel is held by the shielding body when the shielding body is joined to the holes of the heat-insulating and heat-preserving panel. A method for installing a heat-insulating and heat-preserving wall, characterized by this.
15. An installation method for a heat-insulating and heat-preserving wall according to any one of claims 1 to 10, The shielding body tail is connected to the bottom plate by a joining bolt. The wall connection structure joined to the side of the joining bolt that is not connected to the shielding body tail is fixed to the wall by casting. A slit is provided between a plurality of the heat-insulating and heat-preserving walls. A seal strip is fitted into the slit, and a sealant is provided on the seal strip on the panel side. A method for installing a heat-insulating and heat-preserving wall, characterized by this.
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