Modularized heat preservation and insulation wall
The modular design of the multi-layer thermal insulation wall system solves the shortcomings of the tea room wall in terms of thermal insulation and modularity, achieving high thermal insulation performance and structural stability. It is easy to install and suitable for use in outdoor prefabricated tea rooms.
Patent Information
- Application Number
- CN202520533729.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-03-25
AI Technical Summary
The existing tea room walls are inadequate in terms of thermal insulation and modular design, which limits their use. Furthermore, cold air can easily seep in at the joints, increasing energy consumption. Installation and maintenance are also inconvenient, and the adaptability is poor.
The modularly designed thermal insulation wall system includes aluminum panels, calcium silicate reinforcement layers, polyurethane insulation layers, nylon thermal break strips, foam insulation layers, and aluminum alloy honeycomb wall panels. Through multi-layer structure and cavity design, it forms a multi-layer thermal insulation structure that is firmly connected to the base wall.
It achieves high-efficiency thermal insulation performance, reduces thermal bridging, improves waterproof performance and structural stability, is easy to install, reduces production and construction costs, and is suitable for use in outdoor prefabricated tea rooms.
Smart Images

Figure CN223952019U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of fabricated building, specifically relates to a modular heat preservation and insulation wall. BACKGROUND
[0002] With the improvement of people's living quality and the richness of outdoor leisure way, the courtyard tea room as an outdoor space for people to drink tea and rest is gradually favored. However, the existing tea room wall structure is mostly traditional, mainly adopts the mode of supporting the top dome by a plurality of columns to build, the overall structure is relatively simple, and there are many deficiencies in the aspects of protection performance, comfort and environmental adaptability, most of the designs still stay in the basic function demand of enclosure, and the demand of modern outdoor space for heat preservation and insulation cannot be fully met. Especially in the aspects of heat preservation and insulation and modular design, there is lack of effective optimization scheme, which limits the use. Although some tea rooms add single-layer heat preservation materials such as foam board or rock wool in the wall structure, the heat insulation effect of these materials is limited due to the lack of systematic heat preservation design, and it is difficult to form a stable indoor temperature environment. At the same time, the tea room wall usually adopts the mode of direct splicing, and the connection lacks sealing measures, and cold wind permeation is easy to occur in low temperature environment, which further reduces the internal temperature and increases the energy consumption. Secondly, the existing tea room wall is mostly fixed structure, lacks modular design, and is inconvenient to install and maintain, and has poor adaptability.
[0003] Therefore, it is urgent to develop a wall structure which is simple in structure and suitable for tea room. CONTENT OF THE UTILITY MODEL
[0004] In order to solve the technical problems existing in the prior art, the purpose of the utility model is to provide a modular heat preservation and insulation wall, which is fixedly connected with the lower beam after forming the overall structure. The utility model is simple in structure, firm in connection with the base body, convenient and efficient in installation, good in waterproof performance, realizes good use experience in outdoor, and is suitable for use in outdoor fabricated tea room.
[0005] The purpose of the utility model is realized by the following technical scheme:
[0006] A modular heat preservation and insulation wall comprises, from outdoor to indoor, aluminum veneer, calcium silicate reinforcing layer, polyurethane heat insulation layer, nylon broken bridge heat insulation adhesive tape, foam heat preservation layer and aluminum alloy honeycomb cladding.
[0007] Further, a cavity is arranged between the calcium silicate reinforcing layer and the aluminum alloy honeycomb cladding, and is used for mounting the polyurethane heat insulation layer, the nylon broken bridge heat insulation adhesive tape and the foam heat preservation layer.
[0008] Specifically, the aluminum veneer serves as an outer protective layer, and the thickness range is 1.5-3.0 millimeters.
[0009] Specifically, the thickness of the calcium silicate reinforced layer ranges from 10 to 20 millimeters.
[0010] Specifically, the thickness of the polyurethane thermal insulation layer ranges from 30 to 50 millimeters.
[0011] Specifically, the thickness of the nylon broken bridge thermal insulation adhesive strip ranges from 5 to 10 millimeters.
[0012] Specifically, the thickness of the foam thermal insulation layer ranges from 40 to 60 millimeters.
[0013] Specifically, the thickness of the aluminum alloy honeycomb cladding ranges from 20 to 30 millimeters.
[0014] Compared with the prior art, the utility model has at least the following beneficial effects:
[0015] 1. The tea room wall body of the utility model adopts modular design, simple structure, convenient assembly, no need for complex process and equipment, and can greatly reduce production and construction cost.
[0016] 2. The utility model adopts reliable connection mode such as anchoring piece, adhesive and the like with the base wall body, and ensures firm and reliable connection.
[0017] 3. The utility model adopts optimized broken bridge aluminum design, effectively reduces cold and hot bridge phenomenon caused by internal and external temperature difference, and improves thermal insulation performance.
[0018] 4. The utility model adopts thermal insulation material with good durability, not easy to deform and high safety, and does not easily cause problems such as foundation subsidence, thermal insulation layer falling, roof water seepage and icing and condensation.
[0019] 5. The utility model has excellent thermal insulation performance, can effectively block indoor and outdoor heat transfer, maintains comfortable temperature environment indoors, provides good use experience for outdoor activities, and is suitable for use of outdoor assembly type tea room. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 It is a structural schematic view of the utility model.
[0021] In the drawing: 10-aluminum veneer; 20-calcium silicate reinforced layer; 30-polyurethane thermal insulation layer; 40-nylon broken bridge thermal insulation adhesive strip; 50-foam thermal insulation layer; 60-aluminum alloy honeycomb cladding. DETAILED DESCRIPTION
[0022] For the convenience of understanding the utility model, the following will be combined with the drawings and examples, the technical scheme and advantages of the utility model are further described in detail. The mechanisms or methods not described in the utility model can refer to the prior art. The specific structure and characteristics of the utility model are described in the following examples, which should not constitute any limitation on the utility model. At the same time, any one of the technical features mentioned below (including implied or disclosed) and any one of the technical features directly shown or implied in the drawings can be arbitrarily combined or deleted between these technical features, thereby forming more other embodiments that may not be directly or indirectly mentioned in the utility model. The preferred embodiments of the utility model are shown in the drawings. However, the utility model can be realized in many different forms and is not limited to the embodiments described herein. On the contrary, the purpose of providing these embodiments is to make the disclosure of the utility model more comprehensive and thorough.
[0023] As shown in Figure 1 The modular thermal insulation wall of the utility model comprises, from the outside to the inside, an aluminum single plate 10, a calcium silicate reinforcing layer 20, a polyurethane thermal insulation layer 30, a nylon broken bridge thermal insulation adhesive tape 40, a foam thermal insulation layer 50 and an aluminum alloy honeycomb wall protection plate 60. A cavity is arranged between the calcium silicate reinforcing layer 20 and the aluminum alloy honeycomb wall protection plate 60 for mounting the polyurethane thermal insulation layer 30, the nylon broken bridge thermal insulation adhesive tape 40 and the foam thermal insulation layer 50. The modular thermal insulation wall has excellent thermal insulation performance, high structural strength, good waterproof performance and convenient construction.
[0024] Specifically, the aluminum single plate 10 is used as the outer protective layer, and the thickness ranges from 1.5 to 3.0 millimeters. The aluminum single plate 10 has excellent decorative and weather-resistant properties, can resist natural erosion such as sun, rain and wind sand, and provides effective protection for the entire wall.
[0025] The calcium silicate reinforcing layer 20 is arranged on the inner side of the aluminum single plate 10, and the thickness of the calcium silicate reinforcing layer 20 ranges from 10 to 20 millimeters. Calcium silicate is an inorganic non-metallic material with high strength, high rigidity and corrosion resistance, which can significantly improve the strength and stability of the overall structure.
[0026] The polyurethane thermal insulation layer 30 is arranged on the inner side of the calcium silicate reinforcing layer 20, and the thickness of the polyurethane thermal insulation layer 30 ranges from 30 to 50 millimeters. Polyurethane is a widely used high polymer material with excellent thermal insulation performance and low thermal conductivity, which can effectively block heat transfer.
[0027] The nylon broken bridge thermal insulation adhesive tape 40 is arranged inside the polyurethane thermal insulation layer 30, and the thickness of the nylon broken bridge thermal insulation adhesive tape 40 ranges from 5 mm to 10 mm. The nylon is a thermoplastic engineering plastic, has good thermal insulation performance and mechanical properties, and can effectively break the bridge and reduce the occurrence of the cold and hot bridge phenomenon, thereby further improving the thermal insulation effect.
[0028] The foam thermal insulation layer 50 is arranged inside the nylon broken bridge thermal insulation adhesive tape 40, and the thickness of the foam thermal insulation layer 50 ranges from 40 mm to 60 mm. The foam material has the characteristics of low density and low thermal conductivity due to the porous structure, and can provide excellent thermal insulation performance.
[0029] The aluminum alloy honeycomb sheathing 60 is arranged inside the foam thermal insulation layer 50, and the thickness of the aluminum alloy honeycomb sheathing 60 ranges from 20 mm to 30 mm. The aluminum alloy honeycomb structure is light in weight and high in strength, can provide good support, and enhances the bearing capacity of the overall structure.
[0030] The cavity is arranged between the calcium silicate reinforcing layer 20 and the aluminum alloy honeycomb sheathing 60, and is used for mounting the polyurethane thermal insulation layer 30, the nylon broken bridge thermal insulation adhesive tape 40 and the foam thermal insulation layer 50, so as to form a multi-layer thermal insulation structure, and the materials in each layer can cooperate to achieve excellent thermal insulation effect.
[0031] After the overall structure is formed, the lower beam is firmly connected with the base wall body, the connection is reliable, and the stability and durability of the whole system are ensured.
[0032] The utility model discloses a multi-layer thermal insulation material, including polyurethane thermal insulation layer 30, nylon broken bridge thermal insulation adhesive tape 40 and foam thermal insulation layer 50, can realize excellent thermal insulation performance, effectively blocks heat transfer. Meanwhile, through setting up calcium silicate reinforcing layer 20 and aluminum alloy honeycomb sheathing 60, the overall structure is endowed with enough strength and stability, and the reliability of long-term use is ensured. In addition, the setting of the nylon broken bridge thermal insulation adhesive tape 40 can effectively reduce the occurrence of the cold and hot bridge phenomenon, and further optimize the thermal insulation effect. The modular structure is reasonable in design, low in production and construction cost, firmly and reliably connected with the base wall body, convenient and efficient to install, small in cold and hot bridge phenomenon, excellent in waterproof performance, and suitable for outdoor assembly type teahouse use.
[0033] Example 1
[0034] The modular thermal insulation wall of Example 1 comprises, from the outside to the inside, an aluminum veneer 10, a calcium silicate reinforcing layer 20, a polyurethane thermal insulation layer 30, a nylon broken bridge thermal insulation adhesive tape 40, a foam thermal insulation layer 50, and an aluminum alloy honeycomb wall protection plate 60. A cavity is provided between the calcium silicate reinforcing layer 20 and the aluminum alloy honeycomb wall protection plate 60 for mounting the polyurethane thermal insulation layer 30, the nylon broken bridge thermal insulation adhesive tape 40, and the foam thermal insulation layer 50, forming a multi-layer thermal insulation structure. After the overall structure is formed, it is fixedly connected with the base wall body through the lower beam, and the connection is firm.
[0035] Specifically, the aluminum veneer 10 serves as an outer protective layer and has good decorative and protective properties, with a thickness ranging from 1.5 mm. The calcium silicate reinforcing layer 20 is arranged on the inner side of the aluminum veneer 10, and the thickness of the calcium silicate reinforcing layer 20 ranges from 20 mm, improving the strength and stability of the overall structure. The polyurethane thermal insulation layer 30 is arranged on the inner side of the calcium silicate reinforcing layer 20, and the thickness of the polyurethane thermal insulation layer 30 ranges from 30 mm. Polyurethane has excellent thermal insulation performance. The nylon broken bridge thermal insulation adhesive tape 40 is arranged on the inner side of the polyurethane thermal insulation layer 30, and the thickness of the nylon broken bridge thermal insulation adhesive tape 40 ranges from 10 mm. Nylon has good thermal insulation performance and can effectively break the bridge, reducing the cold and hot bridge phenomenon. The foam thermal insulation layer 50 is arranged on the inner side of the nylon broken bridge thermal insulation adhesive tape 40, and the thickness of the foam thermal insulation layer 50 ranges from 40 mm. Foam material has good thermal insulation performance. The aluminum alloy honeycomb wall protection plate 60 is arranged on the inner side of the foam thermal insulation layer 50, and the thickness of the aluminum alloy honeycomb wall protection plate 60 ranges from 20 mm. The aluminum alloy honeycomb structure has the characteristics of light weight and high strength, and can provide good support.
[0036] Example 2
[0037] The modular thermal insulation wall of Example 2 comprises, from the outside to the inside, an aluminum veneer 10, a calcium silicate reinforcing layer 20, a polyurethane thermal insulation layer 30, a nylon broken bridge thermal insulation adhesive tape 40, a foam thermal insulation layer 50, and an aluminum alloy honeycomb wall protection plate 60. A cavity is provided between the calcium silicate reinforcing layer 20 and the aluminum alloy honeycomb wall protection plate 60 for mounting the polyurethane thermal insulation layer 30, the nylon broken bridge thermal insulation adhesive tape 40, and the foam thermal insulation layer 50, forming a multi-layer thermal insulation structure. After the overall structure is formed, it is fixedly connected with the base wall body through the lower beam, and the connection is firm.
[0038] Specifically, the aluminum single plate 10 serves as an outer protective layer with a thickness of 2.0 mm. The calcium silicate reinforcing layer 20 is arranged inside the aluminum single plate 10, and the thickness of the calcium silicate reinforcing layer 20 is 15 mm. The polyurethane thermal insulation layer 30 is arranged inside the calcium silicate reinforcing layer 20, and the thickness of the polyurethane thermal insulation layer 30 is 40 mm. The nylon broken bridge thermal insulation adhesive strip 40 is arranged inside the polyurethane thermal insulation layer 30, and the thickness of the nylon broken bridge thermal insulation adhesive strip 40 is 8 mm. The foam insulation layer 50 is arranged inside the nylon broken bridge thermal insulation adhesive strip 40, and the thickness of the foam insulation layer 50 is 50 mm. The aluminum alloy honeycomb cladding 60 is arranged inside the foam insulation layer 50, and the thickness of the aluminum alloy honeycomb cladding 60 is 25 mm.
[0039] Embodiment 3
[0040] The modular thermal insulation wall of Embodiment 3 comprises, from the outside to the inside, the aluminum single plate 10, the calcium silicate reinforcing layer 20, the polyurethane thermal insulation layer 30, the nylon broken bridge thermal insulation adhesive strip 40, the foam insulation layer 50, and the aluminum alloy honeycomb cladding 60. A cavity is arranged between the calcium silicate reinforcing layer 20 and the aluminum alloy honeycomb cladding 60 for mounting the polyurethane thermal insulation layer 30, the nylon broken bridge thermal insulation adhesive strip 40, and the foam insulation layer 50, forming a multi-layer thermal insulation structure. After the overall structure is formed, the modular thermal insulation wall is fixedly connected to the base wall body through the lower beam, and the connection is firm.
[0041] Specifically, the aluminum single plate 10 serves as an outer protective layer with a thickness of 30 mm. The calcium silicate reinforcing layer 20 is arranged inside the aluminum single plate 10, and the thickness of the calcium silicate reinforcing layer 20 is 10 mm. The polyurethane thermal insulation layer 30 is arranged inside the calcium silicate reinforcing layer 20, and the thickness of the polyurethane thermal insulation layer 30 is 50 mm. The nylon broken bridge thermal insulation adhesive strip 40 is arranged inside the polyurethane thermal insulation layer 30, and the thickness of the nylon broken bridge thermal insulation adhesive strip 40 is 5 mm. The foam insulation layer 50 is arranged inside the nylon broken bridge thermal insulation adhesive strip 40, and the thickness of the foam insulation layer 50 is 60 mm. The aluminum alloy honeycomb cladding 60 is arranged inside the foam insulation layer 50, and the thickness of the aluminum alloy honeycomb cladding 60 is 30 mm.
[0042] The modular thermal insulation wall of Embodiments 1-3 adopts multi-layer thermal insulation materials, including the polyurethane thermal insulation layer 30, the nylon broken bridge thermal insulation adhesive strip 40, and the foam insulation layer 50, which can achieve excellent thermal insulation performance. At the same time, the calcium silicate reinforcing layer 20 and the aluminum alloy honeycomb cladding 60 are arranged to improve the strength and stability of the overall structure. In addition, the arrangement of the nylon broken bridge thermal insulation adhesive strip 40 can effectively reduce the cold-heat bridge phenomenon and improve the thermal insulation effect.
[0043] The above implementation is only the preferred implementation of the present application, and cannot be used to limit the scope of the present application. For those skilled in the art, it can be understood that the embodiments can be changed, modified, replaced and modified in various ways without departing from the principles and spirits of the present application, and the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A modular thermal insulation wall system, characterized in that, From the outside to the inside, the components are aluminum single-layer panels, calcium silicate reinforcement layer, polyurethane insulation layer, nylon thermal break insulation strip, foam insulation layer, and aluminum alloy honeycomb wall panel.
2. The modular thermal insulation wall as described in claim 1, characterized in that, A cavity is provided between the calcium silicate reinforcement layer and the aluminum alloy honeycomb wall panel for installing the polyurethane insulation layer, nylon thermal break insulation strip and foam insulation layer.
3. The modular thermal insulation wall as described in claim 2, characterized in that, The aluminum single-layer panel serves as the outer protective layer, with a thickness ranging from 1.5 to 3.0 millimeters.
4. The modular thermal insulation wall as described in claim 2, characterized in that, The thickness of the calcium silicate reinforcement layer ranges from 10 to 20 millimeters.
5. The modular thermal insulation wall as described in claim 2, characterized in that, The thickness of the polyurethane insulation layer ranges from 30 to 50 millimeters.
6. The modular thermal insulation wall as described in claim 2, characterized in that, The thickness of the nylon thermal break strip ranges from 5 to 10 millimeters.
7. The modular thermal insulation wall as described in claim 2, characterized in that, The thickness of the foam insulation layer ranges from 40 to 60 millimeters.
8. The modular thermal insulation wall as described in claim 2, characterized in that, The thickness of the aluminum alloy honeycomb wall panel ranges from 20 to 30 millimeters.