A new type of building material insulation board splicing and locking structure

CN224741794UActive Publication Date: 2026-09-11JIANGSU LVJIAN NEW MATERIAL TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202521880554.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-02
Publication Date
2026-09-11
Estimated Expiration
2035-09-02

AI Technical Summary

Technical Problem

[0003]目前,传统保温板拼接技术普遍存在以下缺陷,首先,现有连接结构多依赖简单的卡扣或胶粘方式,缺乏有效的限位与调节,导致拼接后易因外力作用(如风压、温度变化)产生松动或变形,影响保温性能和使用寿命,其次,部分技术虽采用螺栓固定,但安装过程繁琐,且导致施工效率低下

Benefits of technology

[0015](1)、通过设置连接组件,解决了传统保温板拼接中因外力作用(如风压、温度变化)导致的松动或变形问题,具体而言,转动块通过限位凸起与限位槽的嵌合实现保温板的精准定位,双向螺杆配合调节弹簧可动态调节限位凸起的嵌入深度,既适应保温板,又通过弹簧预紧力持续提供稳定支撑,避免拼接结构因外力松动,此外,双向螺杆的调节功能简化了安装流程,无需额外工具即可完成快速锁紧,显著提升了施工效率和结构耐久性。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224741794U_ABST
    Figure CN224741794U_ABST
Patent Text Reader

Abstract

The utility model discloses a novel building material is with heat preservation board splicing locking structure, including a plurality of heat preservation boards, is provided with connecting assembly between heat preservation boards, and connecting assembly includes connecting part and spacing part, and connecting part sets up between heat preservation boards, and through setting connecting assembly, has solved the problem of the loosening or deformation of traditional heat preservation board splicing because of the external force (such as wind pressure, temperature change), in particular, the accurate positioning of heat preservation board is realized through the embedding of limit projection and limit groove of rotating block, and the embedding depth of limit projection can be dynamically adjusted by two -way screw rod cooperation adjusting spring, both adapt to heat preservation board, and also provide stable support through spring pre -tightening force continuously, avoid splicing structure and loosen because of external force, in addition, the adjustment function of two -way screw rod has simplified the installation process, and quick locking can be completed without additional tools, has improved construction efficiency and structural durability significantly, through setting auxiliary assembly, the contact area and shear resistance between heat preservation boards are enhanced.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of building materials technology, specifically to a novel insulation board splicing and locking structure for building materials. Background Technology

[0002] The insulation board splicing and locking structure is a modular connection device used for building exterior wall or roof insulation, designed to achieve rapid and stable splicing between insulation boards through mechanical structure.

[0003] Currently, traditional insulation board splicing technology generally suffers from the following defects. First, existing connection structures mostly rely on simple snap-fit ​​or adhesive methods, lacking effective limiting and adjustment, which makes it easy for the spliced ​​boards to loosen or deform due to external forces (such as wind pressure and temperature changes), affecting insulation performance and service life. Second, although some technologies use bolt fixing, the installation process is cumbersome and results in low construction efficiency.

[0004] No effective solutions have yet been proposed to address the problems in the relevant technologies. Utility Model Content

[0005] In view of the problems in the related technologies, this utility model proposes a new type of splicing and locking structure for insulation boards used in building materials, so as to overcome the above-mentioned technical problems existing in the existing related technologies.

[0006] Therefore, the specific technical solution adopted by this utility model is as follows:

[0007] A novel building material insulation board splicing and locking structure includes multiple insulation boards, with connecting components arranged between the insulation boards. The connecting components include connecting parts and limiting parts. The connecting parts are arranged between the insulation boards, and the limiting parts are arranged on the connecting parts.

[0008] Furthermore, the connecting component includes a connecting groove 1, which is opened on both sides of the insulation board. A limit groove is opened on the inner wall of the connecting groove 1, and a rotating block is provided inside the connecting groove 1. The insulation boards are connected together through the rotating block.

[0009] Furthermore, the rotating block is configured in two sections, with symmetrical limit protrusions on the outer wall of the rotating block. The limit protrusions are located inside the limit grooves and are adapted to the limit grooves.

[0010] Furthermore, the limiting component includes an adjustment groove, which is equally spaced on one side of the rotating block. An adjustment spring is installed inside the adjustment groove, and a bidirectional screw is threaded between the rotating blocks, with the rotating blocks and the bidirectional screw being compatible.

[0011] Furthermore, one adjustment port is provided on one side of the rotating block, and two adjustment ports are provided at both ends of the bidirectional screw.

[0012] Furthermore, auxiliary components are provided on both sides of the insulation board. The auxiliary components include connecting protrusions, which are fixedly arranged at equal intervals on one side of the insulation board.

[0013] Furthermore, a second connecting groove is provided on one side of the insulation board, and the second connecting groove is adapted to the connecting protrusion.

[0014] The beneficial effects of this utility model are as follows:

[0015] (1) By setting up connecting components, the problem of loosening or deformation caused by external forces (such as wind pressure and temperature changes) in the splicing of traditional insulation boards is solved. Specifically, the rotating block achieves precise positioning of the insulation board by fitting the limiting protrusion and the limiting groove. The bidirectional screw, together with the adjusting spring, can dynamically adjust the embedding depth of the limiting protrusion, which not only adapts to the insulation board, but also provides stable support through the spring preload, preventing the splicing structure from loosening due to external forces. In addition, the adjustment function of the bidirectional screw simplifies the installation process, and quick locking can be completed without additional tools, which significantly improves construction efficiency and structural durability.

[0016] (2) By setting auxiliary components, the contact area and shear resistance between insulation boards are enhanced. The trapezoidal cross-section structure is fixed by friction or snap-fit, which can disperse the local stress under external force, prevent the joint from cracking due to stress concentration, and reduce the complexity and cost of construction. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the overall structure of a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model;

[0019] Figure 2 This is an exploded view of a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model;

[0020] Figure 3 This is a side sectional view of a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model;

[0021] Figure 4 This is a side sectional view of the connecting component structure of a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model;

[0022] Figure 5 This is a partial exploded view of the connecting components of a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model;

[0023] Figure 6 This is a schematic diagram of the auxiliary component structure of a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model. Figure 1 ;

[0024] Figure 7 This is a schematic diagram of the auxiliary component structure of a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model. Figure 2 .

[0025] In the picture:

[0026] 1. Insulation board; 2. Connecting component; 3. Limiting component; 4. Connecting groove one; 5. Limiting groove; 6. Rotating block; 7. Limiting protrusion; 8. Adjusting spring; 9. Two-way screw; 10. Adjusting port one; 11. Adjusting port two; 12. Connecting protrusion; 13. Connecting groove two. Detailed Implementation

[0027] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0028] Example 1:

[0029] like Figures 1-5 As shown, a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model includes multiple insulation boards 1. The insulation boards 1 are existing conventional building materials, so they will not be described in detail. A connecting component is provided between the insulation boards 1. The connecting component includes a connecting part 2 and a limiting part 3. The connecting part 2 is provided between the insulation boards 1, and the limiting part 3 is provided on the connecting part 2.

[0030] The connecting component 2 includes a connecting groove 4, which is opened on both sides of the insulation board 1. The inner wall of the connecting groove 4 is provided with a limiting groove 5. A rotating block 6 is provided inside the connecting groove 4. The rotating block 6 and the limiting protrusion 7 are made of polypropylene (PP) or aluminum alloy, which takes into account both strength and corrosion resistance. The insulation board 1 is connected together through the rotating block 6. The rotating block 6 is set in two sections. The outer wall of the rotating block 6 is symmetrically provided with limiting protrusions 7. The limiting protrusions 7 are located inside the limiting groove 5 and are adapted to the limiting groove 5.

[0031] The limiting component 3 includes an adjustment groove, which is equidistantly located on one side of the rotating block 6. An adjustment spring 8 is installed inside the adjustment groove and is embedded in the adjustment groove. In the initial state, the adjustment spring 8 provides preload to ensure that the limiting protrusion 7 and the limiting groove 5 fit tightly together. During adjustment, the spring is compressed or stretched to adapt to different splicing gaps. A bidirectional screw 9 is threaded between the rotating blocks 6. The two ends of the bidirectional screw 9 are screwed into the threaded holes of the rotating blocks 6. When the bidirectional screw 9 is rotated, the two rotating blocks 6 move towards each other or away from each other to adjust the embedding depth of the limiting protrusion 7. The rotating blocks 6 and the bidirectional screw 9 are matched. An adjustment port 10 is provided on one side of the rotating block 6. The adjustment port 10 is a hexagonal groove structure. The adjustment port 10 is used to drive the rotating block 6 to rotate, that is, to drive the rotating block 6 to rotate 90 degrees so that the limiting protrusion 7 enters the interior of the limiting groove 5. An adjustment port 21 is provided at both ends of the bidirectional screw 9. The adjustment port 211 is used to drive the bidirectional screw 9 to rotate, thereby causing the rotating blocks 6 to move towards each other or away from each other.

[0032] Example 2:

[0033] like Figures 1-3 , Figure 6 , Figure 7 As shown in the figure, a novel building material insulation board splicing and locking structure according to an embodiment of the present utility model is provided with auxiliary components on both sides of the insulation board 1. The auxiliary components include connecting protrusions 12, which are fixedly arranged at equal intervals on one side of the insulation board 1. A second connecting groove 13 is opened on one side of the insulation board 1, and the second connecting groove 13 is adapted to the connecting protrusions 12. The connecting protrusions 12 have a trapezoidal cross section, and the second connecting groove 13 is a matching trapezoidal groove. After the two are fitted together, they are fixed by friction or a buckle structure, which enhances the vertical stability of the insulation board 1.

[0034] To facilitate understanding of the above-mentioned technical solutions of this utility model, the working principle or operation method of this utility model in actual process will be described in detail below.

[0035] In summary, with the help of the above-mentioned technical solution of this utility model, when it is necessary to splice insulation boards 1, firstly, the connecting groove 1 4 and connecting groove 2 13 of adjacent insulation boards 1 are aligned, so that the rotating block 6 is embedded in the connecting groove 1 4, thereby achieving vertical connection limitation. The connecting groove 2 13 is adapted to the connecting protrusion 12, which has a trapezoidal cross section. After being embedded in the connecting groove 2 13, it is fixed by friction or a snap-fit ​​structure, enhancing the vertical stability of the insulation board 1. Then, the rotating block 6 is placed into the connecting groove between the two insulation boards 1, and then the rotating block 6 is driven to rotate 90 degrees by a specific hexagonal tool. After the rotating block 6 rotates 90 degrees, the limitation is achieved. The protrusion 7 enters the limiting groove 5 to fix the splicing position of the insulation board 1. After the rotation adjustment is completed, the double screw 9 is driven to rotate by the hexagonal tool. Then, when the double screw 9 rotates, the two rotating blocks 6 on the double screw 9 move towards or away from each other. The adjusting spring 8 continuously provides pre-tightening force during the rotation of the double screw 9 to ensure that the limiting protrusion 7 and the limiting groove 5 are tightly fitted to avoid loosening due to external force. The embedding depth of the limiting protrusion 7 is adjusted. The final splicing structure forms a double locking effect through the fitting of the limiting protrusion 7 and the limiting groove 5, the adaptation of the connecting protrusion 12 and the connecting groove 13, and the pre-tightening force of the adjusting spring 8.

[0036] The above description is only a preferred embodiment of the present utility model and is 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 should be included within the protection scope of the present utility model.

Claims

1. A new type of thermal insulation board splicing and locking structure for building materials, comprising a plurality of thermal insulation boards (1), characterized in that, A connecting component is provided between the insulation boards (1). The connecting component includes a connecting part (2) and a limiting part (3). The connecting part (2) is provided between the insulation boards (1), and the limiting part (3) is provided on the connecting part (2).

2. A splicing and locking structure for the thermal insulation board of a novel building material according to claim 1, characterized in that, The connecting component (2) includes a connecting groove (4), which is opened on both sides of the insulation board (1). A limiting groove (5) is opened on the inner wall of the connecting groove (4). A rotating block (6) is provided inside the connecting groove (4), and the insulation board (1) is connected together through the rotating block (6).

3. The splicing and locking structure for the thermal insulation board of a novel building material according to claim 2, characterized in that, The rotating block (6) is set in two sections. The outer wall of the rotating block (6) is symmetrically provided with limiting protrusions (7). The limiting protrusions (7) are set inside the limiting groove (5) and the limiting protrusions (7) are adapted to the limiting groove (5).

4. The splicing and locking structure for the thermal insulation board of a novel building material according to claim 3, characterized in that, The limiting component (3) includes an adjustment groove, which is equally spaced on one side of the rotating block (6). An adjustment spring (8) is provided inside the adjustment groove. A double-acting screw (9) is threaded between the rotating blocks (6), and the rotating blocks (6) are adapted to the double-acting screw (9).

5. The novel building material insulation board splicing and locking structure according to claim 4, characterized in that, One adjustment port (10) is provided on one side of the rotating block (6), and two adjustment ports (11) are provided at both ends of the bidirectional screw (9).

6. The novel building material insulation board splicing and locking structure according to claim 1, characterized in that, Auxiliary components are provided on both sides of the insulation board (1). The auxiliary components include connecting protrusions (12), which are fixedly arranged at equal intervals on one side of the insulation board (1).

7. The splicing and locking structure for the thermal insulation board of a novel building material according to claim 6, characterized in that, A connecting groove (13) is provided on one side of the insulation board (1), and the connecting groove (13) is adapted to the connecting protrusion (12).