Building energy-saving and heat-insulating structure integrated plate and processing method thereof
Through the screw-connected structure of the connecting part and the decorative load-bearing part, the inconvenience of existing building exterior wall insulation boards during transportation and assembly is solved, rapid assembly and convenient replacement are achieved, and the stability and safety of the decorative part are improved.
Patent Information
- Application Number
- CN202510825810.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-19
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2045-06-19
AI Technical Summary
The existing building exterior wall insulation panel structure is inconvenient during transportation and assembly, and the stability and safety of the decorative panels are low, making it difficult to achieve rapid assembly and convenient replacement.
The screw-connected structure of the connecting part and the decorative load-bearing part is adopted, and the heat-insulating unit is quickly assembled through plug-in and fixing the decorative part through clamping, instead of the traditional bonding method.
It realizes rapid assembly of the insulation unit, facilitates transportation and assembly, improves the stability and safety of the decoration part, and facilitates subsequent disassembly and assembly and replacement of the decoration part.
Smart Images

Figure CN120367357A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building exterior wall insulation, and more specifically, it relates to a building energy-saving insulation structural integrated board and a processing method thereof. Background Art
[0002] During the process of the exterior wall of a building coming into contact with the outdoor atmosphere, the indoor heat will be transferred to the outdoor, resulting in the loss of indoor heat. In order to enable the building wall to have good energy-saving and heat-insulating performance, heat-insulating measures should be taken for the building exterior wall to reduce its heat transfer coefficient so that its heat transfer coefficient is within the heat transfer coefficient limit.
[0003] The existing heat-insulating measure is to lay a heat-insulating layer outside the wall. Specifically, a heat-insulating material such as polystyrene foam plastic is connected to the outside of the wall through bonding or anchoring, and the heat-insulating performance of the heat-insulating material is used to improve the heat-insulating property of the wall.
[0004] After retrieval, a building energy-saving insulation structural integrated board and a processing method thereof with the publication number of CN108571082B, the key points of its technical solution include a rigid outer layer, a bonding layer, a wire mesh a, a heat-insulating layer, and several anchor bolts penetrating the rigid outer layer and the heat-insulating layer. The present invention solves the problems that after the secondary construction of the exterior wall external insulation of existing newly-built buildings, the heat-insulating board is prone to falling off, cracking, and water seepage from the wall.
[0005] However, for the above heat-insulating structural integrated board, the rigid outer layer and the heat-insulating layer both belong to integral structures, which are not convenient for transportation and assembly. At the same time, the decorative board is directly pasted on the side of the rigid outer layer, with low stability and safety, and it is not convenient for subsequent disassembly and replacement of the decorative board. Summary of the Invention
[0006] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide a building energy-saving insulation structural integrated board and a processing method thereof. Through the screwing connection of the connecting part and the decorative bearing part, the clamping and fixing of the first heat-insulating board and the second heat-insulating board are realized, so as to complete the rapid assembly of the heat-insulating unit, and then assemble each group of heat-insulating units together to form a building energy-saving insulation structural integrated board, replacing the traditional integral heat-insulating board structure, which is convenient for transportation and assembly.
[0007] To achieve the above purpose, the present invention provides the following technical solutions:
[0008] An integrated building energy-saving and heat-insulating structure board, comprising heat-insulating units that are inserted and matched with each other; the heat-insulating units include two groups of first heat-insulating boards arranged oppositely and two groups of second heat-insulating boards arranged oppositely; the first heat-insulating board is inserted and matched with two adjacent second heat-insulating boards; arc-shaped grooves are formed on the side surfaces of the first heat-insulating board and the second heat-insulating board, and positioning grooves are formed on their side surfaces; a connecting part that is inserted and matched with each positioning groove is inserted inside the arc-shaped groove; a decorative bearing part that is screwed to the connecting part is rotatably arranged between the arc-shaped grooves; a decorative part is clamped inside the decorative bearing part; the decorative bearing part includes a bearing frame; insertion holes are formed on the inner walls of the bearing frame; guide tubes coaxial with the corresponding insertion holes are fixed on two adjacent inner walls of the bearing frame; a slider is slidably arranged in the guide tube; a plug rod is fixed to the bottom surface of the slider; a return spring sleeved on the plug rod is fixed between the slider and the inner wall of the bearing frame; the plug rod on the bearing frame is inserted and matched with the corresponding insertion hole on the adjacent bearing frame.
[0009] The present invention is further arranged as follows: first insertion slots are formed on both side surfaces of the first heat-insulating board close to the arc-shaped groove, and first insertion plates are fixed on the other two side surfaces of the first heat-insulating board; second insertion plates are fixed on both side surfaces of the second heat-insulating board close to the arc-shaped groove, and second insertion slots are formed on the other two side surfaces of the second heat-insulating board; the first insertion plate is inserted and matched with the adjacent second insertion slot; the second insertion plate is inserted and matched with the adjacent first insertion slot.
[0010] The present invention is further arranged as follows: the connecting part includes a plug column inserted and matched with the arc-shaped groove; a plurality of positioning plates inserted and matched with the corresponding positioning grooves are uniformly fixed on the circumferential side surface of the plug column; an external threaded rod is fixed to one end of the plug column; a rotating ring is rotatably arranged through the inner wall of the bearing frame; an internal threaded ring screwed to the external threaded rod is fixed to one end of the rotating ring.
[0011] The present invention is further arranged as follows: storage boxes adapted to them are fixed on the side surfaces of the first heat-insulating board and the second heat-insulating board; an avoidance groove adapted to the outer circumferential side surface of the internal threaded ring is formed on the side surface of the storage box; an installation hole is formed inside the plug column; an avoidance cavity coaxially communicated with the installation hole is formed inside the external threaded rod; the plug column is fixed to the side surface of the wall through an expansion bolt.
[0012] The present invention is further arranged as follows: a plurality of convex rib strips are uniformly fixed to the other end of the plug column; a plurality of convex rib rings are fixed to the side surfaces of the first heat-insulating board and the second heat-insulating board.
[0013] The present invention is further arranged as follows: the storage box is used for storing flocculent heat-insulating materials, and one side surface of the storage box is open; an insertion interface is formed on the open surface of the storage box; a sealing plate is inserted into the insertion interface.
[0014] The present invention is further configured such that: a first pulling rope is connected between two adjacent sliders; a sealing groove is provided on the opening surface of the bearing frame; the decorative part includes a decorative plate; a sealing frame that is inserted and cooperates with the sealing groove is fixed on the side surface of the decorative plate; a first rubber ring is fixed at the other end of the rotating ring; a support ring is fixed on the side surface of the decorative plate; a second rubber ring is fixed at the end of the support ring; avoidance channels are provided on each side surface of the sealing frame.
[0015] The present invention is further configured such that: insertion holes are provided on the circumferential side surface of the guiding tube; a guiding sleeve is fixed on the circumferential side surface of the guiding tube; a guiding rod is slidably arranged inside the guiding sleeve; the guiding rod is slidably penetrated and cooperated with the guiding tube; a stop block is fixed at the end of the guiding rod; a connecting spring sleeved on the guiding sleeve is fixedly connected between the stop block and the guiding tube; an extension rod that is inserted and cooperates with the corresponding insertion hole is fixedly installed on the side surface of the decorative plate; a through hole that is inserted and cooperated with the corresponding guiding rod is provided on the circumferential side surface of the extension rod; a J-shaped conduit is fixedly installed inside the bearing frame; one end of the J-shaped conduit is communicated and fixed with a V-shaped conduit, and the other end is screwed with a nut; second pulling ropes are fixedly connected between the side surfaces of the two stop blocks and the nut; the second pulling ropes sequentially pass through the V-shaped conduit and the J-shaped conduit.
[0016] A processing method for an integrated board of a building energy-saving and heat-insulating structure includes the following steps:
[0017] T1. By inserting two groups of first heat-insulating boards and two groups of second heat-insulating boards together, and then inserting the insertion posts of the connecting part into the arc-shaped grooves, so that each group of positioning plates is inserted into the corresponding positioning grooves;
[0018] T2. Screw the internal thread ring on the decorative bearing part into the external threaded rod, and keep each side surface of the bearing frame parallel to the corresponding side surfaces of the assembled first heat-insulating board and the two groups of second heat-insulating boards until the decorative bearing part and the connecting part complete the fixed clamping of the assembled first heat-insulating board and the two groups of second heat-insulating boards;
[0019] T3. After completing the assembly of the heat-insulating units, insert each group of heat-insulating units together to complete the on-site assembly of the heat-insulating structure integrated board. Coat an adhesive layer on the building wall surface, bond the heat-insulating structure integrated board to the adhesive layer, and complete the fixed connection between the heat-insulating structure integrated board and the wall by driving each group of expansion bolts into the building wall body through the corresponding installation holes;
[0020] T4. Snap each group of decorative parts into the corresponding bearing frames in sequence.
[0021] The advantages of the present invention are:
[0022] 1. The present invention realizes the clamping and fixing of the first thermal insulation board and the second thermal insulation board through the screwing connection of the connecting part and the decorative bearing part, thereby completing the rapid assembly of the thermal insulation unit. Then, each group of thermal insulation units is assembled together to form an integrated building energy-saving thermal insulation structure board, replacing the traditional integral thermal insulation board structure, which is convenient for transportation and assembly.
[0023] 2. The present invention improves the stability and safety of the decorative part and facilitates the subsequent disassembly, replacement of the decorative part by clamping the decorative part into the corresponding decorative bearing part, instead of the traditional bonding method. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic structural view of an integrated building energy-saving thermal insulation structure board of the present invention.
[0025] Figure 2 For the present invention Figure 1 schematic structural view from the front perspective.
[0026] Figure 3 For the present invention Figure 1 schematic structural view from another angle.
[0027] Figure 4 It is a schematic structural view of the thermal insulation unit of the present invention.
[0028] Figure 5 It is a schematic structural view of the assembly of the first thermal insulation board and the second thermal insulation board of the present invention.
[0029] Figure 6 It is a schematic structural view of another angle (excluding the decorative part) of the thermal insulation unit of the present invention.
[0030] Figure 7 It is a schematic structural view of the first thermal insulation board of the present invention.
[0031] Figure 8 It is a schematic structural view of the second thermal insulation board of the present invention.
[0032] Figure 9 It is a schematic structural view of the connecting part of the present invention.
[0033] Figure 10 For the present invention Figure 9 schematic structural view from another angle.
[0034] Figure 11 It is a schematic structural view of the decorative bearing part of the present invention.
[0035] Figure 12 For the present invention Figure 11 schematic structural view from another angle.
[0036] Figure 13It is a schematic structural diagram of the decoration part of the present invention.
[0037] Figure 14 For the present invention Figure 3 Schematic structural diagram from another angle.
[0038] Figure 15 For the present invention Figure 1 Schematic structural diagram of the rear view angle (excluding the decoration part).
[0039] Figure 16 For the present invention Figure 15 Enlarged view of area A.
[0040] In the figure: 1. Thermal insulation unit; 2. First thermal insulation board; 3. Second thermal insulation board; 4. Arc groove; 5. Positioning groove; 6. Connection part; 7. Decoration bearing part; 8. Decoration part; 9. Bearing frame; 10. Insertion hole; 11. Guide pipe; 12. Slide block; 13. Insertion rod; 14. Return spring; 15. First insertion slot; 16. First insertion plate; 17. Second insertion plate; 18. Second insertion slot; 19. Insertion column; 20. Positioning plate; 21. External threaded rod; 22. Rotating ring; 23. Internal threaded ring; 24. Storage box; 25. Avoidance groove; 26. Mounting hole; 27. Avoidance cavity; 28. Ribbed strip; 29. Ribbed ring; 30. Insertion interface; 31. Sealing plate; 32. First pull rope; 33. Sealing groove; 34. Decoration plate; 35. Sealing frame; 36. First rubber ring; 37. Support ring; 38. Second rubber ring; 39. Insertion hole; 40. Guide sleeve; 41. Guide rod; 42. Stopper; 43. Connection spring; 44. Extension rod; 45. Through hole; 46. J-shaped conduit; 47. V-shaped conduit; 48. Nut; 49. Second pull rope. Detailed implementation mode
[0041] It should be noted that, without conflict, the embodiments and features in the embodiments of the present application can be combined with each other. The present invention will be described in detail below with reference to the drawings and in combination with the embodiments.
[0042] It should be pointed out that, unless otherwise specified, all technical and scientific terms used in the present application have the same meaning as commonly understood by those of ordinary skill in the technical field to which the present application belongs.
[0043] In the present invention, unless otherwise stated, the orientations such as "upper, lower" are usually in the directions shown in the drawings, or in the vertical, perpendicular or gravitational directions; similarly, for the convenience of understanding and description, "left, right" are usually in the left and right shown in the drawings; "inside, outside" refer to the inside and outside relative to the contour of each component itself, but the above orientation terms are not used to limit the present invention.
[0044] Example 1, please refer to Figure 1-16, the present invention provides the following technical solutions:
[0045] An integrated building energy-saving insulation structure board. Specifically, it includes insulation units 1 that are inserted and matched with each other; the insulation unit 1 includes two groups of first insulation boards 2 arranged oppositely and two groups of second insulation boards 3 arranged oppositely; the first insulation board 2 is inserted and matched with the adjacent two second insulation boards 3; arc grooves 4 are opened on the sides of the first insulation board 2 and the second insulation board 3, and positioning grooves 5 are opened on their sides; a connecting part 6 that is inserted and matched with each positioning groove 5 is inserted inside the arc groove 4; a decorative bearing part 7 that is screwed to the connecting part 6 is rotatably arranged between the arc grooves 4; a decorative part 8 is clamped inside the decorative bearing part 7; the decorative bearing part 7 includes a bearing frame 9; insertion holes 10 are opened on the inner walls of the bearing frame 9; guide tubes 11 coaxial with the corresponding insertion holes 10 are fixed on the adjacent two inner walls of the bearing frame 9; a slider 12 is slidably arranged in the guide tube 11; a plug rod 13 is fixed to the bottom surface of the slider 12; a return spring 14 sleeved on the plug rod 13 is fixed between the slider 12 and the inner wall of the bearing frame 9; the plug rod 13 on the bearing frame 9 is inserted and matched with the corresponding insertion hole 10 on the adjacent bearing frame 9.
[0046] The working principle of Embodiment 1:
[0047] Through the screwing of the connecting part 6 and the decorative bearing part 7, the clamping and fixing of the first insulation board 2 and the second insulation board 3 are realized, so as to complete the rapid assembly of the insulation unit 1, and then each group of insulation units 1 is assembled together to form an integrated building energy-saving insulation structure board, replacing the traditional integral insulation board structure, which is convenient for transportation and assembly.
[0048] By clamping the decorative part 8 into the corresponding decorative bearing part 7, replacing the traditional bonding method, the stability and safety of the decorative part 8 are improved, and at the same time, it is convenient for subsequent disassembly, replacement of the decorative part 8.
[0049] Embodiment 2, please refer to Figure 1-16 , on the basis of Embodiment 1, the following improvements are made in Embodiment 2. Specifically, first slots 15 are opened on both side surfaces of the first insulation board 2 close to the arc groove 4, and first plug boards 16 are fixed on the other two side surfaces; second plug boards 17 are fixed on both side surfaces of the second insulation board 3 close to the arc groove 4, and second slots 18 are opened on the other two side surfaces; the first plug board 16 is inserted and matched with the adjacent second slot 18; the second plug board 17 is inserted and matched with the adjacent first slot 15.
[0050] Each group of insulation units 1 can be first assembled and then fixed on the side of the building wall together, or a group of insulation units 1 can be first fixedly installed on the side of the building wall, and then the remaining insulation units 1 are sequentially inserted and fixed with the corresponding insulation units 1 on the side of the building wall.
[0051] The connecting part 6 includes a plug post 19 which is inserted and matched with the arc-shaped groove 4; a plurality of positioning plates 20 which are uniformly fixed on the peripheral side of the plug post 19 and are inserted and matched with the corresponding positioning grooves 5; an external threaded rod 21 is fixed at one end of the plug post 19; a rotating ring 22 is rotatably arranged through the inner wall of the bearing frame 9; an internal threaded ring 23 which is screwed with the external threaded rod 21 is fixed at one end of the rotating ring 22.
[0052] Receiving boxes 24 which are adapted to the first heat preservation board 2 and the second heat preservation board 3 are fixed on the sides of the first heat preservation board 2 and the second heat preservation board 3; an avoidance groove 25 which is adapted to the outer peripheral side of the internal threaded ring 23 is formed on the side of the receiving box 24; an installation hole 26 is formed inside the plug post 19; an avoidance cavity 27 which is coaxially communicated with the installation hole 26 is formed inside the external threaded rod 21; the plug post 19 is fixed on the side of the wall through an expansion bolt.
[0053] A plurality of convex rib strips 28 are uniformly fixed at the other end of the plug post 19; a plurality of convex rib rings 29 are fixed on the sides of the first heat preservation board 2 and the second heat preservation board 3.
[0054] Through the arrangement of the convex rib strips 28 and the convex rib rings 29, the contact area between the first heat preservation board 2, the second heat preservation board 3, the plug post 19 and the bonding layer is increased, and their bonding stability is improved.
[0055] The inside of the receiving box 24 is used for storing flocculent heat preservation materials, and one side of the receiving box 24 is open; an insertion port 30 is formed on the opening surface of the receiving box 24; a sealing plate 31 is inserted into the insertion port 30.
[0056] Through the flocculent heat preservation materials in the receiving box 24, the heat preservation effect of the building energy-saving heat preservation structure integrated board is further improved.
[0057] The working principle of the second embodiment:
[0058] By inserting two groups of the first heat preservation boards 2 and two groups of the second heat preservation boards 3 together, then inserting the plug post 19 of the connecting part 6 into the arc-shaped groove 4, so that each positioning plate 20 is inserted into the corresponding positioning groove 5, screwing the internal threaded ring 23 on the decorative bearing part 7 onto the external threaded rod 21, and keeping the side surfaces of the bearing frame 9 parallel to the corresponding side surfaces of the assembled first heat preservation board 2 and two groups of the second heat preservation boards 3, until the decorative bearing part 7 and the connecting part 6 fix and clamp the assembled first heat preservation board 2 and two groups of the second heat preservation boards 3.
[0059] After the assembly of the heat preservation unit 1 is completed, the groups of heat preservation units 1 are plugged together, and the corresponding insertion rods 13 are inserted into the corresponding jacks 10. The adjacent heat preservation units 1 are clamped with each other to complete the on-site assembly of the building energy-saving heat preservation structure integrated board. A bonding layer is coated on the building wall surface, and the building energy-saving heat preservation structure integrated board is bonded to the bonding layer. By driving each group of expansion bolts into the building wall body through the corresponding installation holes, the fixed connection between the building energy-saving heat preservation structure integrated board and the wall body is completed, replacing the traditional integral heat preservation board structure, which is convenient for transportation and assembly.
[0060] Embodiment 3, please refer to Figure 1-16 , on the basis of Embodiment 2, the following improvements are made in this Embodiment 3. Specifically, a first pull rope 32 is connected between two adjacent sliders 12; a sealing groove 33 is formed on the opening surface of the bearing frame 9; the decorative part 8 includes a decorative board 34; a sealing frame 35 that is inserted and matched with the sealing groove 33 is fixed on the side surface of the decorative board 34; the other end of the rotating ring 22 is fixed with a first rubber ring 36; a support ring 37 is fixed on the side surface of the decorative board 34; a second rubber ring 38 is fixed at the end of the support ring 37; avoidance channels are formed on each side surface of the sealing frame 35 for avoiding the guide pipe 11 and the insertion rod 13.
[0061] Insertion holes 39 are formed on the circumferential side surface of the guide pipe 11; a guide sleeve 40 is fixed on the circumferential side surface of the guide pipe 11; a guide rod 41 is slidably arranged inside the guide sleeve 40; the guide rod 41 is slidably and penetratingly matched with the guide pipe 11; a stop block 42 is fixed at the end of the guide rod 41; a connecting spring 43 sleeved on the guide sleeve 40 is fixedly connected between the stop block 42 and the guide pipe 11; an extension rod 44 that is inserted and matched with the corresponding insertion hole 39 is fixedly installed on the side surface of the decorative board 34; through holes 45 that are inserted and matched with the corresponding guide rods 41 are formed on the circumferential side surface of the extension rod 44.
[0062] A J-shaped conduit 46 is fixedly installed inside the bearing frame 9; one end of the J-shaped conduit 46 is communicated and fixed with a V-shaped conduit 47, and the other end of the J-shaped conduit 46 is screwed with a nut 48; second pull ropes 49 are fixedly connected between the side surfaces of the two stop blocks 42 and the nut 48; the second pull ropes 49 sequentially pass through the V-shaped conduit 47 and the J-shaped conduit 46.
[0063] The working principle of this Embodiment 3:
[0064] After completing the fixed connection between the building energy-saving insulation structural integrated board and the wall, rotate and remove the nut 48, pull the nut 48 outwards, drive the second pull rope 49 to be pulled outwards, so that the two groups of guide rods 41 slide out from the inside of the corresponding guide pipes 11 and are received into the inside of the guide sleeves 40. The connecting spring 43 is stretched. Insert the sealing frame 35 on the decorative part 8 into the corresponding bearing frame 9 until the second rubber ring 38 is pressed against the first rubber ring 36 to prevent the rotating ring 22 from rotating. At this time, the extension rod 44 is inserted into the insertion hole 39 on the corresponding guide pipe 11, releasing the tension on the second pull rope 49. Under the elastic reset force of the connecting spring 43, drive the corresponding guide rod 41 to slide towards the inside of the guide pipe 11 until it is inserted into the through hole 45 on the corresponding extension rod 44, completing the clamping of the decorative part 8.
[0065] When the decorative part 8 needs to be replaced, rotate and remove the nut 48, pull the nut 48 outwards, drive the second pull rope 49 to be pulled outwards, so that the guide rod 41 is pulled out from the through hole 45, releasing the clamping of the decorative part 8, and then the decorative part 8 can be taken out.
[0066] A processing method for a building energy-saving insulation structural integrated board includes the following steps:
[0067] T1. By inserting the two groups of first insulation boards 2 and the two groups of second insulation boards 3 together, and then inserting the insertion posts 19 of the connecting part 6 into the arc-shaped grooves 4, so that each group of positioning plates 20 is inserted into the corresponding positioning grooves 5.
[0068] T2. Screw the internal thread ring 23 on the decorative bearing part 7 into the external threaded rod 21, and keep each side of the bearing frame 9 parallel to the corresponding sides of the assembled first insulation board 2 and the two groups of second insulation boards 3 until the decorative bearing part 7 and the connecting part 6 complete the fixed clamping of the assembled first insulation board 2 and the two groups of second insulation boards 3.
[0069] T3. After completing the assembly of the insulation unit 1, insert the insulation units 1 together to complete the on-site assembly of the insulation structural integrated board. Coat a bonding layer on the building wall surface, bond the insulation structural integrated board to the bonding layer, and drive each group of expansion bolts into the building wall body through the corresponding installation holes to complete the fixed connection between the insulation structural integrated board and the wall.
[0070] T4. Sequentially snap each group of decorative parts 8 into the corresponding bearing frames 9.
[0071] Obviously, the above-described embodiments are only a part of the embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0072] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular forms are also intended to include the plural forms. In addition, it should also be understood that when the terms "comprise" and / or "include" are used in this specification, they specify the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0073] It should be noted that the terms "first", "second", etc. in the description, claims and above-mentioned drawings of the present application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein.
[0074] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
[0075] The above are only the preferred embodiments of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the concept of the present invention belong to the protection scope of the present invention. It should be pointed out that for those of ordinary skill in the art, several improvements and refinements made without departing from the principle of the present invention should also be regarded as within the protection scope of the present invention.
Claims
1. An integrated building energy-saving insulation structure board, comprising insulation units (1) that are inserted and matched with each other; characterized in that: The heat preservation unit (1) includes two sets of first heat preservation plates (2) arranged oppositely and two sets of second heat preservation plates (3) arranged oppositely; the first heat preservation plates (2) are inserted and matched with the adjacent two second heat preservation plates (3); Arc-shaped grooves (4) are formed on the side surfaces of the first heat preservation plates (2) and the second heat preservation plates (3), and positioning grooves (5) are formed on their side surfaces; a connecting part (6) inserted and matched with each positioning groove (5) is inserted inside the arc-shaped groove (4); A decorative bearing part (7) screwed to the connecting part (6) is rotatably arranged between the arc-shaped grooves (4); a decorative part (8) is clamped inside the decorative bearing part (7); The decorative bearing part (7) includes a bearing frame (9); jacks (10) are formed on the inner walls of the bearing frame (9); guide tubes (11) coaxial with the corresponding jacks (10) are fixed on the adjacent two inner walls of the bearing frame (9); a slider (12) is slidably arranged in the guide tube (11); a plug rod (13) is fixed on the bottom surface of the slider (12); a return spring (14) sleeved on the plug rod (13) is fixed between the slider (12) and the inner wall of the bearing frame (9); the plug rod (13) on the bearing frame (9) is inserted and matched with the corresponding jack (10) on the adjacent bearing frame (9).
2. The integrated panel for building energy-saving and heat-insulating structure according to claim 1, characterized in that: First slots (15) are formed on the two side surfaces of the first heat preservation plate (2) close to the arc-shaped groove (4), and first plug plates (16) are fixed on the other two side surfaces thereof; second plug plates (17) are fixed on the two side surfaces of the second heat preservation plate (3) close to the arc-shaped groove (4), and second slots (18) are formed on the other two side surfaces thereof; the first plug plate (16) is inserted and matched with the adjacent second slot (18); the second plug plate (17) is inserted and matched with the adjacent first slot (15).
3. The integrated panel for building energy-saving and heat-insulating structure according to claim 2, wherein: The connecting part (6) includes a plug column (19) inserted and matched with the arc-shaped groove (4); a plurality of positioning plates (20) inserted and matched with the corresponding positioning grooves (5) are uniformly fixed on the peripheral side surface of the plug column (19); an external threaded rod (21) is fixed at one end of the plug column (19); a rotating ring (22) is rotatably arranged through the inner wall of the bearing frame (9); an internal threaded ring (23) screwed to the external threaded rod (21) is fixed at one end of the rotating ring (22).
4. The integrated panel for building energy-saving and heat-insulating structure according to claim 3, characterized in that: Receiving boxes (24) adapted to them are fixed on the side surfaces of the first heat preservation plates (2) and the second heat preservation plates (3); an avoidance groove (25) adapted to the outer peripheral side surface of the internal threaded ring (23) is formed on the side surface of the receiving box (24); a mounting hole (26) is formed inside the plug column (19); an avoidance cavity (27) coaxially communicated with the mounting hole (26) is formed inside the external threaded rod (21); the plug column (19) is fixed on the side surface of the wall body through an expansion bolt.
5. The integrated panel for building energy-saving and heat-insulating structure according to claim 4, characterized in that: A plurality of convex rib strips (28) are uniformly fixed at the other end of the plug column (19); a plurality of convex rib rings (29) are fixed on the side surfaces of the first heat preservation plate (2) and the second heat preservation plate (3).
6. The integrated panel for building energy-saving thermal insulation structure according to claim 5, characterized in that: The interior of the storage box (24) is used to store flocculent heat-insulating materials, and one side thereof is open; an insertion interface (30) is provided on the open surface of the storage box (24); a sealing plate (31) is inserted into the insertion interface (30).
7. The integrated panel for building energy-saving thermal insulation structure according to claim 6, characterized in that: A first pull rope (32) is connected between two adjacent sliders (12); a sealing groove (33) is provided on the open surface of the bearing frame (9); the decorative part (8) includes a decorative plate (34); a sealing frame (35) that is inserted and matched with the sealing groove (33) is fixed on the side surface of the decorative plate (34); a first rubber ring (36) is fixed at the other end of the rotating ring (22); a support ring (37) is fixed on the side surface of the decorative plate (34); a second rubber ring (38) is fixed at the end of the support ring (37); avoidance groove channels are provided on each side surface of the sealing frame (35).
8. The integrated panel for building energy-saving thermal insulation structure according to claim 7, characterized in that: Insertion holes (39) are provided on the circumferential side surface of the guide pipe (11); a guide sleeve (40) is fixed on the circumferential side surface of the guide pipe (11); a guide rod (41) is slidably arranged inside the guide sleeve (40); the guide rod (41) is slidably penetrated and matched with the guide pipe (11); a stop block (42) is fixed at the end of the guide rod (41); a connecting spring (43) sleeved on the guide sleeve (40) is fixedly connected between the stop block (42) and the guide pipe (11); an extension rod (44) that is inserted and matched with the corresponding insertion hole (39) is fixedly installed on the side surface of the decorative plate (34); a through hole (45) that is inserted and matched with the corresponding guide rod (41) is provided on the circumferential side surface of the extension rod (44); A J-shaped conduit (46) is fixedly installed inside the bearing frame (9); one end of the J-shaped conduit (46) is connected and fixed with a V-shaped conduit (47), and the other end thereof is screwed with a nut (48); second pull ropes (49) are fixedly connected between the side surfaces of the two stop blocks (42) and the nut (48); the second pull ropes (49) sequentially pass through the V-shaped conduit (47) and the J-shaped conduit (46).
9. The processing method of an integrated panel for building energy-saving thermal insulation according to claim 8, characterized in that, It includes the following steps: T1. By inserting two groups of first heat-insulating plates (2) and two groups of second heat-insulating plates (3) together, and then inserting the insertion posts (19) of the connecting part (6) into the arc-shaped grooves (4), so that each group of positioning plates (20) is inserted into the corresponding positioning grooves (5); T2. Thread the internal thread ring (23) on the decorative bearing part (7) onto the external threaded rod (21), and keep the side surfaces of the bearing frame (9) parallel to the corresponding side surfaces of the assembled first heat-insulating plate (2) and the two groups of second heat-insulating plates (3) until the decorative bearing part (7) and the connecting part (6) complete the fixed clamping of the assembled first heat-insulating plate (2) and the two groups of second heat-insulating plates (3); T3. After the assembly of the heat-insulating unit (1) is completed, insert each group of heat-insulating units (1) together to complete the on-site assembly of the heat-insulating structure integrated board. Coat an adhesive layer on the building wall surface, bond the heat-insulating structure integrated board to the adhesive layer, and complete the fixed connection between the heat-insulating structure integrated board and the wall by driving each group of expansion bolts into the interior of the building wall through the corresponding installation holes; T4. Successively snap each group of decorative parts (8) into the corresponding carrier frame (9).
Citation Information
Patent Citations
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