Composite insulation board for assembly type ultralow-energy-consumption warehouse and warehouse
The assembled design of vacuum insulation panels with magnets and nylon end caps solves the problems of high thermal conductivity, cold bridges and complex construction of warehouse insulation panels, achieving ultra-low energy consumption, space saving and efficient construction.
Patent Information
- Application Number
- CN202521705662.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-12
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2035-08-12
AI Technical Summary
The insulation board materials of existing warehouses have high thermal conductivity and poor fire resistance. The construction is complicated and prone to forming cold bridges, resulting in high energy consumption, space waste and increased structural load.
The assembled design combines vacuum insulation panels with magnets and nylon end caps. Magnet attraction and bolt fixation enable quick splicing, reduce cold bridges, enhance stability and anti-deformation capabilities, and use low thermal conductivity materials as panels to improve mechanical strength.
It achieves ultra-low energy consumption, saves space and structural load, simplifies construction process, improves thermal insulation performance and construction efficiency, and extends service life.
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Figure CN223446412U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of insulation board, specifically relates to an assembled super -low energy consumption warehouse storehouse is with the insulation board and warehouse storehouse. BACKGROUND
[0002] At present, the warehouse storehouse plays a vital role in the process of needing to store refrigerated or frozen materials. The insulation board of the existing most warehouse storehouses adopts some common insulation materials such as polyurethane, rock wool. But polyurethane material has the defects of high thermal conductivity coefficient and poor fireproof grade, and rock wool has the problems of high thermal conductivity coefficient, large volume and weight, and inconvenient construction. At the same time, the traditional insulation board installation process is complex, the construction period is generally long, and is easily influenced by environmental factors, and the joint is easy to form a cold bridge. In addition, in order to realize the super -low energy consumption standard, the thickness of the insulation layer is often excessively increased in the process of making the insulation board, resulting in that the overall wall thickness of the warehouse storehouse reaches more than 300mm, which greatly occupies the warehouse space and increases the main structure load. Therefore, it is urgent to develop an assembled super -low energy consumption composite insulation board structure and warehouse storehouse to meet the actual needs of the warehouse storehouse for energy saving, economy and construction efficiency. SUMMARY
[0003] In order to solve the above problems, the utility model aims at providing an assembled super -low energy consumption warehouse storehouse insulation board and warehouse storehouse.
[0004] In order to realize the above-mentioned purpose, the utility model adopts the technical scheme of an assembled super -low energy consumption warehouse storehouse composite insulation board, which comprises a plurality of insulation board bodies, the insulation board body comprises a vacuum insulation board, a first panel, a second panel, a first nylon end, a second nylon end, a first magnet and a second magnet;
[0005] The left end face of the vacuum insulation board is provided with a protruding part along the length direction, and the right end face is a plane along the length direction, the first nylon end is covered outside the protruding part, the right side of the vacuum insulation board is attached with the second nylon end, and the second nylon end is a U-shaped opening towards the right side;
[0006] The first panel and the second panel are respectively arranged on the upper side and the lower side of the vacuum insulation board, the left ends of the first panel and the second panel are respectively bent along the left side end face of the vacuum insulation board and clamped with the upper and lower ends of the first nylon end, and the right ends of the first panel and the second panel are respectively surrounded and fixed on the upper and lower ends of the second nylon end; the first magnet is arranged in the first nylon end, and the second magnet is arranged in the second nylon end, the magnetic poles of the first magnet and the second magnet are opposite; the first nylon end of the adjacent two insulation board bodies is arranged in the opening of the second nylon end, and the left and right splicing is realized by the mutual attraction of the first magnet and the second magnet;
[0007] The front and rear ends of two adjacent thermal insulation board bodies are respectively provided with matched first and second cutting surfaces, and the first and second cutting surfaces are mutually buckled to realize front and rear splicing.
[0008] Further, the upper side and the lower side of the outer end surface of the first nylon end head are respectively provided with a first clamping groove and a second clamping groove, the first panel comprises a first fitting part, a first bending part is arranged at the left end of the first fitting part, and a first flat part and a second bending part are arranged at the right end; wherein the first bending part surrounds and fixes the upper end of the first nylon end head and the upper end of the left end surface of the vacuum heat insulation board, and a first clamping part is arranged at the end of the first bending part and is inwardly bent; the first flat part and the second bending part together surround and fix the upper end of the second nylon end head.
[0009] The second panel comprises a second fitting part, a third bending part is arranged at the left end of the second fitting part, and a second flat part and a fourth bending part are sequentially arranged at the right end; the third bending part surrounds and fixes the lower end of the first nylon end head and the lower end of the left end surface of the vacuum heat insulation board, and a second clamping part is arranged at the end of the third bending part and is inwardly bent; the second clamping part is clamped in the second clamping groove; the second flat part and the fourth bending part together surround and fix the lower end of the second nylon end head.
[0010] Further, the first fitting part and the second fitting part cover the upper surface and the lower surface of the vacuum heat insulation board respectively, and the first fitting part, the second fitting part and the vacuum heat insulation board are fixed by an adhesive.
[0011] Further, the first cutting surface and the second cutting surface are Z-shaped and have two continuous bending right angles.
[0012] Further, the first panel and the second panel are both metal materials, and the first fitting part and the second fitting part are both corrugated.
[0013] Further, the metal material is stainless steel, color steel or aluminum.
[0014] Further, the first panel and the second panel are both non-metal materials, and the first fitting part and the second fitting part are both flat.
[0015] Further, the non-metal material is polyethylene, carbon fiber or glass steel.
[0016] Further, the thermal conductivity of the vacuum heat insulation board is less than or equal to 0.008 W / (m·K), and the thickness is 30-150 mm.
[0017] Further, the utility model simultaneously provides a warehouse, comprising the composite thermal insulation board for the assembled ultra-low energy consumption warehouse.
[0018] Compared with the prior art, the composite insulation board has the following beneficial effects:
[0019] 1、The composite insulation board of the utility model adopts vacuum insulation board, the heat conductivity coefficient of the vacuum insulation board is ≤0.008 W / (m·K), far lower than traditional polyurethane and rock wool material, so as to realize ultra-low energy consumption.In addition, the vacuum insulation board has the advantages of excellent physical performance, low water absorption, no pulverization and good durability, so as to prolong the service life of the insulation board and the storage library.In the utility model, the thickness of the vacuum insulation board is 30mm-150mm, which reduces the thickness of the insulation layer of the storage library, significantly saves storage space and reduces structural load, and at the same time, the construction is convenient.
[0020] 2、The left and right ends of the insulation board body are provided with first nylon end heads and second nylon end heads, and the front and rear ends are provided with first cutting surfaces and second cutting surfaces to form dislocation splicing surfaces, so as to reduce the cold bridge at the joint when the insulation board body is spliced, ensure the stability of the thermal insulation performance, realize better energy-saving effect, and at the same time, the first nylon end head and the second nylon end head also have a low heat conduction coefficient.A first magnet and a second magnet with opposite magnetic poles are arranged in the first nylon end head and the second nylon end head respectively, the two insulation board bodies are fixed together by the attraction between the magnets, and the bolts are fixed on the keel of the main structure of the storage library, which simplifies the installation process, greatly shortens the construction period and reduces the labor cost.
[0021] 3、The first panel and the second panel are respectively adhered and fixed on the upper side and the lower side of the vacuum insulation board, so as to enhance the stability and anti-deformation ability of the overall structure of the insulation board, and ensure that no falling or cracking phenomenon occurs during long-term use.In addition, when the first panel and the second panel are metal materials, the first fitting part and the second fitting part are corrugated, and the design of the corrugated structure improves the mechanical strength of the composite insulation board, so that it can effectively resist external impact during transportation and installation, and avoid damage to the vacuum insulation board. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 is the insulation board body structure schematic view of the assembled ultra-low energy consumption storage library insulation board of the utility model embodiment one;
[0023] Figure 2 is the connection structure schematic view when the left and right splicing of the adjacent two insulation board bodies of the utility model embodiment one;
[0024] Figure 3 is Figure 2 the enlarged structure schematic view of A in the above;
[0025] Figure 4 is the insulation board body structure schematic view of the assembled ultra-low energy consumption storage library insulation board of the utility model embodiment two;
[0026] Figure 5 is the connecting structure schematic view of the left and right splicing of the adjacent two blocks of the thermal insulation board body of the embodiment two of the utility model;
[0027] Figure 6 is the connecting structure section view schematic view of the front and back splicing of the adjacent two blocks of the thermal insulation board body of the embodiment one and the embodiment two of the utility model;
[0028] Figure 7 is the connecting three-dimensional structure schematic view of the front and back splicing of the adjacent two blocks of the thermal insulation board body of the embodiment two of the utility model;
[0029] In the drawing, 1, vacuum insulation board, 11, protruding part, 12, first cutting surface;13, second cutting surface;2, first panel, 21, first lamination part, 22, first bending part, 23, first straight part, 24, second bending part, 25, first clamping part, 3, second panel, 31, second lamination part, 32, third bending part, 33, second straight part, 34, fourth bending part, 35, second clamping part, 4, first nylon end, 41, first clamping groove, 42, second clamping groove, 5, second nylon end, 6, first magnet, 7, second magnet, 8, adhesive;9, bolt. DETAILED DESCRIPTION
[0030] The following embodiments are used to illustrate the utility model, but not to limit the range of the utility model.
[0031] Embodiment one
[0032] As Figure 1 , Figure 2 , Figure 3 and Figure 6 indicated, a composite thermal insulation board for assembled ultra-low energy consumption warehouse, comprising a plurality of thermal insulation board bodies, the thermal insulation board body includes vacuum insulation board 1, first panel 2, second panel 3, first nylon end 4, second nylon end 5, first magnet 6 and second magnet 7;
[0033] The left end surface of the vacuum insulation board 1 is provided with protruding part 11 along the length direction, the right end surface is plane along the length direction, the first nylon end 4 is covered outside the protruding part 11, the right end surface outside the vacuum insulation board 1 is lamination with the second nylon end 5, and the second nylon end 5 is U-shaped with the opening towards the right side;
[0034] A first panel 2 and a second panel 3 are respectively arranged on the upper side and the lower side of the vacuum insulation board 1, the left ends of the first panel 2 and the second panel 3 are respectively bent along the left end face of the vacuum insulation board 1 and are clamped with the upper and lower ends of the first nylon end head 4, the right ends of the first panel 2 and the second panel 3 respectively surround the upper and lower ends of the second nylon end head 5; a first magnet 6 is arranged in the first nylon end head 4, a second magnet 7 is arranged in the second nylon end head 5, the magnetic poles of the first magnet 6 and the second magnet 7 are opposite; the first nylon end head 4 of the adjacent two thermal insulation board bodies is arranged in the opening of the second nylon end head 5, and the left and right splicing is realized by the mutual attraction of the first magnet 6 and the second magnet 7.
[0035] The front and rear splicing positions of the adjacent two thermal insulation board bodies are respectively provided with matching first cutting surfaces 12 and second cutting surfaces 13, and the first cutting surfaces 12 and the second cutting surfaces 13 are mutually buckled to realize front and rear splicing.
[0036] The upper side and the lower side of the outer end face of the first nylon end head 4 are respectively provided with a first clamping groove 41 and a second clamping groove 42, the first panel 2 comprises a first bonding part 21, a first bending part 22 is arranged at the left end of the first bonding part 21, and a first flat part 23 and a second bending part 24 are arranged at the right end; wherein the first bending part 22 surrounds and fixes the upper end of the first nylon end head 4 and the upper end of the left end face of the vacuum insulation board 1, and the end of the first bending part 22 is inwardly bent to be provided with a first clamping part 25 clamped in the first clamping groove 41; the first flat part 23 and the second bending part 24 together surround and fix the upper end of the second nylon end head 5.
[0037] The second panel 3 comprises a second bonding part 31, a third bending part 32 is arranged at the left end of the second bonding part 31, and a second flat part 33 and a fourth bending part 34 are sequentially arranged at the right end, the third bending part 32 surrounds and fixes the lower end of the first nylon end head 4 and the lower end of the left end face of the vacuum insulation board 1, and the end of the third bending part 32 is inwardly bent to be provided with a second clamping part 35 clamped in the second clamping groove 42; the second flat part 33 and the fourth bending part 34 together surround and fix the lower end of the second nylon end head 5.
[0038] The first bonding part 21 and the second bonding part 31 respectively cover the upper surface and the lower surface of the vacuum insulation board 1, and the first bonding part 21, the second bonding part 31 and the vacuum insulation board 1 are respectively fixed by an adhesive 8.
[0039] The first cutting surface 12 and the second cutting surface 13 are Z-shaped and have two continuously bent right angles.
[0040] The first panel 2 and the second panel 3 are both metal materials, and the first bonding part 21 and the second bonding part 31 are both corrugated.
[0041] Specifically, the metal material is stainless steel, color steel or aluminum.
[0042] Specifically, in the embodiment, the thickness of the first panel 2 and the second panel 3 is 0.5mm-1.5mm; the wave distance L of the first bonding part 21 and the second bonding part 31 is 10mm, and the wave height H is 1mm.
[0043] Embodiment two
[0044] Referring to Figures 4-7 Different from the embodiment one, the first panel 2 and the second panel 3 are both non-metal materials, and the first bonding part 21 and the second bonding part 31 are both flat and smooth or have wire drawing treatment.
[0045] Specifically, the non-metal material is polyethylene, carbon fiber or glass steel.
[0046] Specifically, the thickness of the first panel 2 and the second panel 3 is 2.0mm-5.0mm;
[0047] In the embodiment one and the embodiment two, the thermal conductivity of the vacuum insulation board 1 is less than or equal to 0.008W / (m·K), which meets the requirement of ultra-low energy consumption, and the thickness is 30mm-150mm, which reduces the thickness of the heat preservation layer of the warehouse and significantly saves the storage space and reduces the structural load.
[0048] In the embodiment one and the embodiment two, the height of the convex part 11 is less than the height of the opening of the second nylon end 5, so that the first nylon end 4 can be inserted into the second nylon end 5.
[0049] When the heat preservation board body is spliced left and right during the construction of the warehouse, the first nylon end 4 is placed in the opening of the second nylon end 5, the magnetic poles of the first magnet 6 and the second magnet 7 are opposite, and they attract each other, so that the second bending part 24 of the adjacent two heat preservation board bodies contacts with the first bending part 22, and the fourth bending part 34 contacts with the third bending part 32, thereby realizing automatic adsorption splicing, the first cutting surface 12 and the second cutting surface 13 of the adjacent two heat preservation board bodies are matched and bonded, a staggered splicing surface is formed, front and rear splicing is realized, cold bridge formation of the front and rear splicing surfaces can be avoided, meanwhile, the use of the first nylon end 4 and the second nylon end 5 can avoid the cold bridge formation of the left and right splicing surfaces, and the heat preservation performance of the whole warehouse is improved.
[0050] The adjacent two heat preservation board bodies are quickly spliced in an assembly type, and the bottom end of the second nylon end 5 of each heat preservation board body is fixed to the main structure keel of the warehouse by a bolt 9, so that the heat preservation board body and the main structure of the warehouse are installed, the construction period is greatly shortened, and the construction efficiency is effectively improved.
[0051] The embodiment provides a storage library, which comprises the composite thermal insulation board for the assembled ultra-low-energy consumption storage library described in embodiment one or embodiment two.
[0052] The storage library can be a refrigeration library, a freezing library and a normal temperature constant temperature library.
[0053] Although the utility model has been described in detail above with general description and specific embodiments, some modifications or improvements can be made on the basis of the utility model, which is obvious to those skilled in the art. Therefore, these modifications or improvements made on the basis of not deviating from the spirit of the utility model all belong to the scope of protection required by the utility model.
Claims
1. A composite insulation board for assembled ultra-low energy consumption warehouse, characterized in that: The heat preservation panel body comprises a plurality of heat preservation panel bodies, wherein the heat preservation panel body comprises a vacuum insulation panel, a first panel, a second panel, a first nylon end head, a second nylon end head, a first magnet and a second magnet; The left end surface of the vacuum insulation panel is provided with a raised portion along the length direction, and the right end surface is flat along the length direction. A first nylon end cap is coated on the outside of the raised portion. The outer side of the right end surface of the vacuum insulation panel is attached to a second nylon end cap, and the second nylon end cap is U-shaped with an opening facing rightward. A first panel and a second panel are provided on the upper and lower sides of the vacuum insulation panel, respectively. The left ends of the first panel and the second panel are bent along the left end surface of the vacuum insulation panel and clamped to the upper and lower ends of the first nylon end head, respectively. The right ends of the first panel and the second panel respectively surround and fix to the upper and lower ends of the second nylon end head. A first magnet is provided in the first nylon end head, and a second magnet is provided in the second nylon end head. The magnetic poles of the first magnet and the second magnet are opposite. The first nylon ends of the two adjacent insulation board bodies are placed in the openings of the second nylon end heads, and the left and right splicing is achieved by the mutual attraction between the first magnet and the second magnet. The front and rear ends of the two adjacent insulation board bodies are respectively provided with matching first cutting surfaces and second cutting surfaces, and the first cutting surfaces and the second cutting surfaces are buckled with each other to realize the front and rear splicing.
2. The composite insulation board for an assembled ultra-low energy consumption warehouse according to claim 1, characterized in that: The upper and lower sides of the outer end surface of the first nylon terminal are respectively provided with a first clamping groove and a second clamping groove. The first panel includes a first fitting portion, a first bent portion is provided at the left end of the first fitting portion, and a first straight portion and a second bent portion are provided at the right end. The first bent portion surrounds and fixes the upper end of the first nylon terminal and the upper end of the left end surface of the vacuum insulation panel. The first bent portion is bent inwardly at the end thereof to form a first clamping portion, which is clamped in the first clamping groove. The first straight portion and the second bent portion together surround and fix the upper end of the second nylon terminal. The second panel includes a second fitting portion, a third bent portion is provided at the left end of the second fitting portion, and a second straight portion and a fourth bent portion are provided in sequence at the right end. The third bent portion surrounds and fixes the lower end of the first nylon end head and the lower end of the left end surface of the vacuum insulation panel, and the end of the third bent portion is bent inward to form a second clamping portion, and the second clamping portion is clamped in the second clamping groove; the second straight portion and the fourth bent portion together surround and fix the lower end of the second nylon end head.
3. The composite insulation board for an assembled ultra-low energy consumption warehouse according to claim 2, characterized in that: The first bonding part and the second bonding part cover the upper surface and the lower surface of the vacuum insulation panel respectively, and the first bonding part, the second bonding part and the vacuum insulation panel are bonded and fixed by adhesive.
4. The composite insulation board for an assembled ultra-low energy consumption warehouse according to claim 1, characterized in that: The first cutting surface and the second cutting surface are Z-shaped and have two continuously bent right angles.
5. The composite insulation board for an assembled ultra-low energy consumption warehouse according to claim 2, characterized in that: The first panel and the second panel are both made of metal, and the first fitting portion and the second fitting portion are both corrugated.
6. The composite insulation board for an assembled ultra-low energy consumption warehouse according to claim 5, characterized in that: The metal material is stainless steel, color-coated steel or aluminum.
7. The composite insulation board for an assembled ultra-low energy consumption warehouse according to claim 2, characterized in that: The first panel and the second panel are both made of non-metallic material, and the first fitting portion and the second fitting portion are both planar.
8. The composite insulation board for an assembled ultra-low energy consumption warehouse according to claim 7, characterized in that: The non-metal material is polyethylene, carbon fiber or fiberglass.
9. The composite insulation board for an assembled ultra-low energy consumption warehouse according to claim 1, characterized in that: The thermal conductivity of the vacuum insulation panel is ≤0.008W / (m·K), and the thickness is 30mm-150mm.
10. A storage warehouse, characterized in that: It comprises the composite insulation board for assembled ultra-low energy consumption warehouses as described in any one of claims 1 to 9.