Prefabricated splicing thermal insulation wall body of assembly type sunlight greenhouse

By using prefabricated insulated walls for modular solar greenhouses, and utilizing components such as light steel keel frames and outer partitions, the problems of slow construction and unstable insulation performance of traditional solar greenhouse walls are solved, enabling rapid installation and firm connection, and facilitating greenhouse structure adjustments.

CN223497386UActive Publication Date: 2025-10-31CHENGDE JIANYUAN TECH CO LTD
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Patent Information

Application Number
CN202422998366.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2025-10-31
Estimated Expiration
2034-12-05

AI Technical Summary

Technical Problem

Traditional solar greenhouses have long construction cycles, unstable insulation performance, and complex installation, making them difficult to disassemble and reassemble, thus failing to meet the requirements of modern agriculture for precise greenhouse environmental control and facility flexibility.

Method used

The prefabricated insulated walls of the prefabricated greenhouse include straight exterior wall panels, curved exterior wall panels, light steel keel frame, insulation layer, diaphragm, insulation board and outer partition layer, etc. The light steel keel frame supports and the outer partition layer is connected. The combination of butt joint components and filling and bonding components achieves rapid installation and firm connection.

Benefits of technology

It enables rapid installation and disassembly, facilitating greenhouse structure adjustments and upgrades, while also providing excellent insulation performance and robust connections, thus reducing labor costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of thermal insulation wall bodies, and provides an assembly type solar greenhouse prefabricated splicing thermal insulation wall body which comprises a straight plate outer wall plate and a straight plate inner wall plate, the straight plate inner wall plate is arranged in the straight plate outer wall plate, and an arc-shaped inner wall plate is arranged in the arc-shaped outer wall plate. The wall body assemblies are arranged between the straight outer wall board and the straight inner wall board and between the arc-shaped outer wall boards and the arc-shaped inner wall boards, the base is arranged at the bottom of the straight outer wall board, the fixing assembly is arranged between the base and the straight outer wall board, the butt joint assembly is arranged on the surfaces of the straight inner wall board and the arc-shaped inner wall boards, and a diaphragm is attached to the heat insulation layer. The thermal insulation wall body is used for the gable wall and the north wall of the greenhouse to form an enclosure wall body and is effectively connected with the front roof. By means of the technical scheme, the problems that an all-steel-frame sunlight greenhouse in the related technology is formed by assembling independent components on site, the installation mode is complex, and the installation speed is low are solved.
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Description

Technical Field

[0001] This utility model relates to the field of thermal insulation wall technology, specifically to a prefabricated spliced ​​thermal insulation wall for assembled solar greenhouses. Background Technology

[0002] Traditional greenhouses typically use brick or adobe walls, which suffer from long construction periods, unstable insulation performance, and difficulty in disassembly and reconstruction. With the increasing demands for precision in greenhouse environmental control and flexibility in modern agriculture, all-steel frame greenhouses, using a floor-standing steel frame as the load-bearing structure and insulation materials such as rubber and plastic, insulation boards, and insulation blankets as wall materials, have seen rapid adoption in recent years.

[0003] However, all-steel frame greenhouses are assembled on-site from individual components, making the installation process complex and slow. Therefore, a new type of wall structure is needed that can ensure good insulation performance while enabling rapid installation and disassembly, facilitating the adjustment and upgrading of the greenhouse structure. Utility Model Content

[0004] This utility model proposes a prefabricated splicing insulated wall for assembled solar greenhouses, which solves the problems of related technologies where all-steel frame solar greenhouses are assembled on-site as individual components, resulting in complex installation methods and slow installation speeds.

[0005] The technical solution of this utility model is as follows: including...

[0006] Straight-panel exterior wall panel and straight-panel interior wall panel, wherein the straight-panel interior wall panel is disposed within the straight-panel exterior wall panel;

[0007] An arc-shaped outer wall panel and an arc-shaped inner wall panel, wherein the arc-shaped inner wall panel is disposed within the arc-shaped outer wall panel;

[0008] A wall assembly disposed between the straight outer wall panel and the straight inner wall panel, and between the curved outer wall panel and the curved inner wall panel;

[0009] The base and fixing components are provided, wherein the base is disposed at the bottom of the straight outer wall panel and the fixing components are disposed between the base and the straight outer wall panel;

[0010] A docking assembly is disposed on the surfaces of the straight inner wall panel and the curved inner wall panel;

[0011] A filling and bonding assembly is disposed on the outside of the straight exterior wall panel and the curved exterior wall panel;

[0012] The wall assembly includes a light steel keel frame, which is disposed within the straight exterior wall panel and the curved exterior wall panel. The light steel keel frame is filled with a thermal insulation layer, and a diaphragm is attached to the thermal insulation layer.

[0013] As a further technical solution, an insulation board is attached to the surface of the diaphragm, and the surfaces of the straight outer wall panel and the curved outer wall panel are provided with mating grooves. An outer partition is inserted into the mating groove, and the outer partition is fixedly connected to the mating groove by bolts.

[0014] As a further technical solution, the fixing component includes several fixing frames, which are installed on the surface of the base. The fixing frames are fixedly connected to the straight outer wall panel by screws. Several insert rods are provided at the bottom of the fixing frames, and the insert rods pass through the base.

[0015] As a further technical solution, the docking assembly includes several vertical sleeves, all of which are fixed to the surface of the straight inner wall panel, and several docking rods are provided on the surface of the arc-shaped inner wall panel.

[0016] As a further technical solution, the lower end of the connecting rod is inserted into the vertical sleeve, and horizontal sleeves are provided on both sides of the straight inner wall surface and both sides of the arc-shaped inner wall panel.

[0017] As a further technical solution, a connecting column is inserted into the horizontal sleeve frame, and both ends of the connecting column are provided with external thread layers, and a fixing nut is screwed onto the external thread layer.

[0018] As a further technical solution, the filling and bonding assembly includes a pair of sealing and bonding plates, which are installed on both sides of the straight exterior wall panel and the curved exterior wall panel.

[0019] As a further technical solution, the outer surface of the sealing and bonding plate is provided with a filling pipe, the outer surface of the filling pipe is provided with a filling hole, and the inner surface of the filling pipe is provided with a plurality of overflow holes, the overflow holes being located at the splicing point of the straight outer wall panel and the curved outer wall panel.

[0020] As a further technical solution, the external thread directions at both ends of the connecting column are positive spiral and negative spiral, respectively.

[0021] The working principle and beneficial effects of this utility model are as follows:

[0022] 1. The present invention includes a wall component. Through the interaction of the light steel keel frame, insulation layer, diaphragm, insulation board and outer partition, the overall structure is formed as one piece. It is supported by the light steel keel frame inside and has a good heat insulation effect when combined with the outer partition.

[0023] 2. This utility model is equipped with a docking assembly. Through the interaction of structures such as the vertical sleeve, docking rod, horizontal sleeve, connecting column, external thread layer and fixing nut, two formed walls can be quickly docked through the connecting column. The connection has a very good firmness, fast installation speed and saves labor costs. Attached Figure Description

[0024] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0025] Figure 1 This is a schematic diagram of the structure of this utility model;

[0026] Figure 2 This is an isometric drawing of the present invention;

[0027] Figure 3 This is an isometric sectional view of the present invention;

[0028] Figure 4 This is an isometric sectional view of the present invention from another perspective;

[0029] Figure 5 Appendix to this utility model Figure 4 Enlarged view of part A in the middle;

[0030] Figure 6 This is a schematic diagram of the assembly structure of the solar greenhouse of this utility model;

[0031] In the diagram: 1. Straight exterior wall panel; 2. Straight interior wall panel; 3. Curved exterior wall panel; 4. Curved interior wall panel; 5. Base; 6. Wall components; 6-1. Light steel keel frame; 6-2. Insulation layer; 6-3. Diaphragm; 6-4. Insulation board; 6-5. Butt joint groove; 6-6. Outer partition layer; 7. Fixing components; 7-1. Fixing bracket; 7-2. Insert rod; 8. Butt joint components; 8-1. Vertical sleeve; 8-2. Butt joint rod; 8-3. Horizontal sleeve; 8-4. Connecting column; 8-5. External threaded layer; 8-6. Fixing nut; 9. Filler bonding components; 9-1. Sealing bonding plate; 9-2. Filler pipe; 9-3. Filler hole; 9-4. Overflow hole. Detailed Implementation

[0032] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.

[0033] like Figures 1-6As shown, this embodiment proposes a prefabricated splicing insulated wall for a modular solar greenhouse, including...

[0034] Straight outer wall panel 1 and straight inner wall panel 2, with the straight inner wall panel 2 installed inside the straight outer wall panel 1;

[0035] The curved outer wall panel 3 and the curved inner wall panel 4 are arranged inside the curved outer wall panel 3;

[0036] Wall component 6 is disposed between straight outer wall panel 1 and straight inner wall panel 2, and between curved outer wall panel 3 and curved inner wall panel 4;

[0037] The base 5 and the fixing component 7 are provided. The base 5 is located at the bottom of the straight outer wall panel 1, and the fixing component 7 is located between the base 5 and the straight outer wall panel 1.

[0038] The docking component 8 is disposed on the surfaces of the straight inner wall panel 2 and the curved inner wall panel 4.

[0039] Filler bonding component 9 is disposed on the outside of the straight outer wall panel 1 and the curved outer wall panel 3;

[0040] The wall component 6 includes a light steel keel frame 6-1, which is installed inside the straight exterior wall panel 1 and the curved exterior wall panel 3. The light steel keel frame 6-1 is filled with a heat insulation layer 6-2, and a diaphragm 6-3 is attached to the heat insulation layer 6-2. An insulation board 6-4 is attached to the surface of the diaphragm 6-3. Both the straight exterior wall panel 1 and the curved exterior wall panel 3 have mating grooves 6-5. An outer partition layer 6-6 is inserted into the mating groove 6-5 and fixedly connected to the mating groove 6-5 by bolts.

[0041] In this embodiment, to achieve the effect of integrated wall molding, a wall component 6 is designed. A light steel keel frame 6-1 is provided between the straight outer wall panel 1 and the straight inner wall panel 2, and between the curved outer wall panel 3 and the curved inner wall panel 4. An insulation layer 6-2 is filled on the light steel keel frame 6-1, and a diaphragm 6-3 and an insulation board 6-4 are also provided. A butt joint groove 6-5 is opened on the surface of the straight outer wall panel 1 and the curved outer wall. An outer partition layer 6-6 is installed in the butt joint groove 6-5 and fixed with bolts. With the cooperation of the insulation layer 6-2, the diaphragm 6-3, the insulation layer and the outer partition layer 6-6, a good insulation effect can be achieved.

[0042] Furthermore, the fixing component 7 includes several fixing brackets 7-1, which are installed on the surface of the base 5. The fixing brackets 7-1 are fixedly connected to the straight outer wall panel 1 by screws. Several insert rods 7-2 are provided at the bottom of the fixing brackets 7-1, and the insert rods 7-2 pass through the base 5.

[0043] In this embodiment, in order to achieve the effect of firmly fixing the base 5 to the ground, a fixing component 7 is designed. A fixing frame 7-1 is installed on the base 5 and fixedly connected to the cardboard outer wall with screws. Multiple insertion rods 7-2 are provided at the bottom of the fixing frame 7-1. The insertion rods 7-2 pass through the base 5 and can be inserted into the ground, which can fix the base 5 to the ground.

[0044] Furthermore, the docking assembly 8 includes several vertical sleeves 8-1, all of which are fixed to the surface of the straight inner wall panel 2. Several docking rods 8-2 are provided on the surface of the curved inner wall panel 4. The lower ends of the docking rods 8-2 are inserted into the vertical sleeves 8-1. Horizontal sleeves 8-3 are provided on both sides of the straight inner wall panel and both sides of the curved inner wall panel 4. Connecting columns 8-4 are inserted into the horizontal sleeves 8-3. Both ends of the connecting columns 8-4 are provided with external thread layers 8-5. Fixing nuts 8-6 are screwed onto the external thread layers 8-5.

[0045] In this embodiment, in order to achieve the effect of rapid splicing between the walls, a docking component 8 is designed. Multiple vertical sleeves 8-1 are set on the surface of the straight inner wall, and multiple docking rods 8-2 are set on the surface of the curved inner wall panel 4 and inserted into the vertical sleeves 8-1. Horizontal sleeves 8-3 are set on both sides of the surface of the straight inner wall and the curved inner wall. Connecting columns 8-4 are inserted into the horizontal sleeves 8-3 and external thread layers 8-5 are opened at both ends. Fixing nuts 8-6 are screwed on the external thread layers 8-5 to tighten the two walls.

[0046] Furthermore, the filling and bonding component 9 includes a pair of sealing and bonding plates 9-1, which are installed on both sides of the straight outer wall panel 1 and the curved outer wall panel 3. The outer surface of the sealing and bonding plate 9-1 is provided with a filling pipe 9-2, and the outer surface of the filling pipe 9-2 is provided with a filling hole 9-3. The inner surface of the filling pipe 9-2 is provided with a plurality of overflow holes 9-4, which are located at the joint between the straight outer wall panel 1 and the curved outer wall panel 3.

[0047] In this embodiment, in order to achieve the filling effect at the joint, a filling and bonding component 9 is designed. A sealing and bonding plate 9-1 is provided on both sides of the wall for bonding between the two walls. A filling pipe 9-2 is provided on the outer side of the sealing and bonding plate 9-1 and is bonded to the outer partition 6-6. A filling hole 9-3 is opened on the outer surface and an overflow hole 9-4 is opened on the inner surface. The filling material can be injected into the filling hole 9-3 and then enter the joint gap through the overflow hole 9-4.

[0048] Furthermore, the external thread layers 8-5 at both ends of the connecting column 8-4 have positive and negative thread directions, respectively.

[0049] In this embodiment, by using the opposite thread directions at both ends, two fixing nuts 8-6 can be turned simultaneously without the connecting column 8-4 rotating during the process.

[0050] When installation is required, insert the curved wall section and the straight wall section into the vertical sleeve 8-1 through the connecting rod 8-2. Then wrap the outer partition 6-6 and insert both ends into the connecting groove 6-5 and screw in the bolts to fix it. Then install the sealing and bonding plate 9-1. Then install the adjacent wall on one side. After docking, pass the connecting column 8-4 through the horizontal sleeve 8-3 of the two walls and screw the connecting fixing nuts 8-6 on both ends. Pass the fixing bracket 7-1 through the insertion rod 7-2 through the base 5 and insert it into the soil. Then fix the fixing bracket 7-1 to the wall with screws. Finally, inject the joint filling material into the filling hole 9-3. The material will enter the gap through the overflow hole 9-4.

[0051] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. A prefabricated, modular, insulated wall for a prefabricated greenhouse, characterized in that, include Straight outer wall panel (1) and straight inner wall panel (2), wherein the straight inner wall panel (2) is disposed inside the straight outer wall panel (1); An arc-shaped outer wall panel (3) and an arc-shaped inner wall panel (4), wherein the arc-shaped inner wall panel (4) is disposed within the arc-shaped outer wall panel (3); Wall assembly (6), the wall assembly (6) being disposed between the straight outer wall panel (1) and the straight inner wall panel (2) and the curved outer wall panel (3) and the curved inner wall panel (4); The base (5) and the fixing component (7) are provided at the bottom of the straight outer wall panel, and the fixing component (7) is provided between the base (5) and the straight outer wall panel (1). A docking component (8) is disposed on the surfaces of the straight inner wall panel (2) and the curved inner wall panel (4); A filling and bonding component (9) is disposed outside the straight outer wall panel (1) and the curved outer wall panel (3); The wall component (6) includes a light steel keel frame (6-1), which is disposed within the straight outer wall panel (1) and the curved outer wall panel (3). The light steel keel frame (6-1) is filled with a heat insulation layer (6-2), and a diaphragm (6-3) is attached to the heat insulation layer (6-2).

2. The prefabricated spliced ​​insulated wall of a prefabricated greenhouse according to claim 1, characterized in that, The diaphragm (6-3) is covered with an insulation board (6-4). Both the straight outer wall panel (1) and the curved outer wall panel (3) have mating grooves (6-5) on their surfaces. An outer partition layer (6-6) is inserted into the mating groove (6-5). The outer partition layer (6-6) and the mating groove (6-5) are fixedly connected by bolts.

3. The prefabricated spliced ​​insulated wall of a prefabricated greenhouse according to claim 1, characterized in that, The fixing component (7) includes several fixing brackets (7-1), which are installed on the surface of the base (5). The fixing brackets (7-1) are fixedly connected to the straight outer wall panel (1) by screws. Several insert rods (7-2) are provided at the bottom of the fixing brackets (7-1), and the insert rods (7-2) pass through the base (5).

4. The prefabricated spliced ​​insulated wall of a prefabricated greenhouse according to claim 1, characterized in that, The docking assembly (8) includes several vertical sleeves (8-1), all of which are fixed to the surface of the straight inner wall panel (2), and several docking rods (8-2) are provided on the surface of the arc-shaped inner wall panel (4).

5. A prefabricated, spliced, insulated wall for a prefabricated greenhouse according to claim 4, characterized in that, The lower end of the connecting rod (8-2) is inserted into the vertical sleeve (8-1), and horizontal sleeves (8-3) are provided on both sides of the surface of the straight inner wall panel (2) and both sides of the arc-shaped inner wall panel (4).

6. A prefabricated spliced ​​insulated wall for a prefabricated solar greenhouse according to claim 5, characterized in that, A connecting post (8-4) is inserted into the horizontal sleeve (8-3). Both ends of the connecting post (8-4) are provided with external thread layers (8-5). A fixing nut (8-6) is screwed onto the external thread layer (8-5).

7. A prefabricated, spliced, insulated wall for a prefabricated greenhouse according to claim 1, characterized in that, The filling and bonding assembly (9) includes a pair of sealing and bonding plates (9-1) which are installed on both sides of the straight outer wall panel (1) and the curved outer wall panel (3).

8. A prefabricated spliced ​​insulated wall for a prefabricated solar greenhouse according to claim 7, characterized in that, The outer surface of the sealing and bonding plate (9-1) is provided with a filling pipe (9-2), the outer surface of the filling pipe (9-2) is provided with a filling hole (9-3), and the inner surface of the filling pipe (9-2) is provided with a plurality of overflow holes (9-4). The overflow holes (9-4) are located at the splicing point of the straight outer wall panel (1) and the curved outer wall panel (3).

9. A prefabricated spliced ​​insulated wall for a prefabricated solar greenhouse according to claim 6, characterized in that, The external thread layers (8-5) at both ends of the connecting post (8-4) have positive and negative thread directions, respectively.