Tile connecting structure

The tile connection structure addresses compatibility issues by enabling adjustable alignment and secure fastening of photovoltaic tiles to traditional tiles, simplifying installation and reducing costs while ensuring a level surface and enhanced stability.

CN223109933UActive Publication Date: 2025-07-15CSG PVTECH +1
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Patent Information

Application Number
CN202422188472.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-05
Publication Date
2025-07-15
Estimated Expiration
2034-09-05

AI Technical Summary

Technical Problem

The coordination problem between existing photovoltaic tiles and traditional tiles has limited installation diversity and speed. The traditional tiles produced by different manufacturers vary in height, requiring cumbersome height matching work, which increases installation cost and engineering volume.

Method used

A tile connection structure is designed, including a first connector and a second connector. The first connector has a clamping part and a load-bearing part. The second connector is detachably connected. By adjusting the height of the first abutment part and the load-bearing part, the upper surfaces of the photovoltaic tiles and the conventional tiles are flush, which is convenient to use and low cost.

Benefits of technology

It realizes stable connection between photovoltaic tiles and traditional tiles, simplifies the installation process, reduces costs, improves adaptability and installation efficiency, and is suitable for tiles of various specifications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a tile connecting structure which comprises a first connecting piece and a second connecting piece. The first connecting piece comprises a clamping part, an opening of the clamping part is suitable for containing a photovoltaic tile, the first connecting piece further comprises a bearing part, the depth direction of the opening is the first direction, and the bearing part protrudes out of the clamping part in the first direction. The second connecting piece is connected with the tile and the first connecting piece, the second abutting portion of the second connecting piece is suitable for being connected with the original tile, the first abutting portion of the second connecting piece is attached to the clamping portion in the first direction, and the first abutting portion of the second connecting piece abuts against the bearing portion in the direction perpendicular to the first direction. The tile connecting structure can be matched with a traditional tile and a metal tile at the same time, so that the transformation work amount is reduced, and the transformation efficiency is improved; moreover, the tile connecting structure is convenient to adjust the upper surfaces of the connected original tile and photovoltaic tile to be flush, and is convenient to use, good in effect and low in cost.
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Description

Technical Field

[0001] The utility model relates to the field of photovoltaic products, and particularly to a tile connection structure. Background Art

[0002] In the existing photovoltaic tile technology, there are many deficiencies. Among them, the cooperation problem between photovoltaic tiles and traditional tiles is particularly prominent. Photovoltaic tiles often need to be used in combination with traditional tiles to ensure effective waterproofing and edge finishing at key positions such as eaves and ridges where there are no traditional tiles. However, this dependence greatly limits the installation diversity and speed of photovoltaic tiles.

[0003] In addition, since the heights of traditional tiles produced by different manufacturers vary, in order to achieve a flat fit between the two tiles, cumbersome height matching work often needs to be carried out. This not only reduces the adaptability of photovoltaic tiles but also significantly increases the installation cost. Moreover, at some positions where traditional tiles need to be installed, the installation of photovoltaic tiles becomes particularly difficult. Sometimes, the existing traditional tiles even have to be removed, which is both time-consuming and laborious, greatly increasing the workload of complete renovation or partial renovation. Summary of the Utility Model

[0004] The main purpose of the utility model is to propose a tile connection structure that can be matched with traditional tiles and metal tiles simultaneously, thereby reducing the renovation workload and improving the renovation efficiency. Moreover, the tile connection structure of the present application facilitates the adjustment of the upper surfaces of the original tiles and photovoltaic tiles to be flush after connection, is convenient to use, has good effects, and has low costs.

[0005] To achieve the above object, some embodiments of the utility model propose a tile connection structure, including:

[0006] A first connecting member, including a clamping portion. The clamping portion has an opening adapted to accommodate a photovoltaic tile. The first connecting member further includes a bearing portion connecting the clamping portion. The depth direction of the opening is a first direction, and the bearing portion protrudes from the clamping portion in the first direction;

[0007] A second connecting member detachably connected to the first connecting member. The side of the second connecting member facing away from the first connecting member is adapted to connect an original tile. The second connecting member includes a first abutting portion and a second abutting portion distributed relatively along the first direction. The second abutting portion is adapted to connect the original tile. Along the first direction, the first abutting portion abuts against the clamping portion. Along the direction perpendicular to the first direction, the first abutting portion abuts against the bearing portion.

[0008] In some embodiments, the second abutting portion is provided with a first mounting hole. The axis of the first mounting hole is parallel to the first direction, and the first mounting hole is adapted to be penetrated by a threaded fastener to connect the original tile.

[0009] In some embodiments, the second connecting member includes a first connecting portion, and along the first direction, two ends of the first connecting portion are respectively connected to a first abutting portion and a second abutting portion, and the upper surfaces of the first connecting portion, the photovoltaic tile and the original tile are all located in the same plane.

[0010] In some embodiments, the first connecting member includes a first mounting portion, the extending direction of the mounting portion is parallel to the first direction, and along the vertical direction, the mounting portion and the bearing portion are spaced apart.

[0011] In some embodiments, the tile connection structure includes a baffle, one end of the baffle is connected to the mounting portion, the baffle is disposed between the first abutting portion and the second abutting portion, and a thickness direction of the baffle is parallel to the first direction.

[0012] In some embodiments, the first connecting member further includes a first reinforcing portion, and along the vertical direction, two ends of the first reinforcing portion are respectively connected to the clamping portion and the mounting portion.

[0013] In some embodiments, the first mounting portion is suitable for connecting to a wall, and the first mounting portion is provided with a second mounting hole, and the second mounting hole is suitable for passing a threaded fastener to connect the first mounting portion to the wall.

[0014] In some embodiments, a surface of the first abutting portion for adhering to the clamping portion is parallel to a surface of the second abutting portion for adhering to the original tile.

[0015] In some embodiments, the opening has a side wall and a bottom wall, the bottom wall is suitable for abutting against the end surface of the photovoltaic tile, and the side wall is a plane, and the side wall is suitable for abutting against the side surface of the photovoltaic tile.

[0016] In some embodiments, a sealing strip is provided in the opening.

[0017] According to the above embodiments, the beneficial effects of the utility model are:

[0018] The tile connection result of the utility model includes a first connector and a second connector. The first connector includes a clamping portion, and the clamping portion has an opening, and the opening is used to accommodate the photovoltaic tile clamped by the clamping portion. The first connector also includes a bearing portion, the bearing portion is connected to the clamping portion, and the bearing portion protrudes along the depth direction of the opening of the clamping portion toward the side of the bearing portion away from the clamped photovoltaic tile. The second connector and the first connector are detachably connected, and the side of the second connector away from the first connector is connected to the original tile. Specifically, the second connector includes a first abutment portion and a second abutment portion, the first abutment portion and the second abutment portion are relatively distributed along the first direction, and the second abutment portion is connected to the original tile.

[0019] Among them, the first abutting portion fits against the wall surface of the clamping portion along the first direction, and the end of the first abutting portion is supported by the bearing portion in the vertical direction. Therefore, the first abutting portion can stably cooperate with the first connecting member, that is, the second connecting member can stably cooperate with the first connecting member. Since the first connecting member and the second connecting member are respectively connected to the photovoltaic tile and the original tile, the photovoltaic tile and the original tile can be connected together through the tile connecting structure of the present application. In addition, since the first connecting member and the second connecting member are separately arranged, the first abutting portion is supported by the bearing portion in the vertical direction, and the height of the second connecting member in the vertical direction is affected by the height of the bearing portion and the first connecting member in the vertical direction. Therefore, by adjusting the second connecting member with a first abutting portion of different heights or changing the first connecting member of the bearing portion with different heights, the upper surfaces of the photovoltaic tile and the original tile can be made flush. With such a design, the tile connecting structure of the present application can adapt to original tiles and photovoltaic tiles with more parameters at a lower cost, and not only has a simple structure and low cost, but also has a better use effect.

[0020] Additional aspects and advantages of the present utility model will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present utility model. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.

[0022] Figure 1 is a schematic structural diagram of the tile connecting structure in the first embodiment of the present utility model;

[0023] Figure 2 is Figure 1 the enlarged view at A in

[0024] Figure 3 is a schematic structural diagram of the tile connecting structure in the second embodiment of the present utility model;

[0025] Figure 4 is Figure 3 the enlarged view at B in

[0026] Figure 5 is a schematic structural diagram of the tile connecting structure in the third embodiment of the present utility model;

[0027] Figure 6 is Figure 5 the enlarged view at C in

[0028] Figure 7 Structural schematic diagram of the tile connection structure in the fourth embodiment of the present utility model;

[0029] Figure 8 It is Figure 7 The enlarged view at position D in

[0030] Figure 9 It is Figure 7 The enlarged view at position E in

[0031] Figure 10 Structural schematic diagram of the tile connection structure in the fifth embodiment of the present utility model.

[0032] Explanation of the reference numerals in the drawings:

[0033] The first connecting member 100; the clamping portion 110; the bearing portion 120; the first mounting portion 130; the first strengthening portion 140;

[0034] The second connecting member 200; the first abutting portion 210; the second abutting portion 220; the first connecting portion 230;

[0035] The baffle 300;

[0036] The photovoltaic tile 400;

[0037] The original tile 500;

[0038] The downspout purlin 600;

[0039] The transverse purlin 700;

[0040] The thick ridge aluminum plate member 800;

[0041] The thick eaves aluminum plate member 900;

[0042] The first direction X.

[0043] The realization of the object, functional features and advantages of the present utility model will be further described with reference to the embodiments and the accompanying drawings. Specific embodiments

[0044] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0045] It should be noted that if there are directional indications (such as up, down, left, right, front, back...) involved in the embodiments of the present utility model, the directional indications are only used to explain the relative positional relationship, movement conditions, etc. between components in a specific posture. If the specific posture changes, the directional indications will also change accordingly.

[0046] In addition, if there are descriptions such as "first", "second", etc. involved in the embodiments of the present utility model, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first", "second" may explicitly or implicitly include at least one such feature. In addition, if "and / or", "or / and", or "and / or" appear throughout the text, their meanings include three parallel scenarios. Taking "A and / or B" as an example, it includes Scenario A, or Scenario B, or the scenario where both A and B are satisfied simultaneously. In addition, the technical solutions between various embodiments can be combined with each other, but it must be based on the fact that those of ordinary skill in the art can implement them. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present utility model.

[0047] In the related art, since the heights of traditional tiles produced by different manufacturers vary, in order to achieve a flat fit between two tiles, cumbersome height matching work often needs to be carried out, which not only reduces the adaptability of photovoltaic tiles but also significantly increases the installation cost. Moreover, in some positions where traditional tiles need to be installed, the installation of photovoltaic tiles becomes particularly difficult, and sometimes the existing traditional tiles have to be removed, which is both time-consuming and laborious, greatly increasing the workload of complete renovation or partial renovation.

[0048] Next, refer to Figures 1 to 10 to describe the tile connection structure according to the embodiments of the present utility model.

[0049] Refer to Figure 1 and Figure 2 , in some embodiments, the tile connection structure includes a first connector 100 and a second connector 200. The first connector 100 includes a clamping portion 110. The clamping portion 110 has an opening which is adapted to receive a photovoltaic tile 400. The depth direction of the opening is defined as the first direction X. The side wall of the opening is a plane, and the side wall is adapted to abut against the side surface of the photovoltaic tile 400, and the bottom wall is adapted to abut against the end surface of the photovoltaic tile 400. The first connector 100 further includes a bearing portion 120. The bearing portion 120 is connected to the clamping portion 110, and the bearing portion 120 protrudes from the clamping portion 110 in the first direction X. Such a design enables the photovoltaic tile 400 to be stably placed in the clamping portion 110, and the bearing portion 120 can support the second connector 200, thereby ensuring the stability of the entire structure.

[0050] The second connecting member 200 is detachably connected to the first connecting member 100. The side of the second connecting member 200 facing away from the first connecting member 100 is adapted to connect to the original tile 500. The second connecting member 200 includes a first abutting portion 210 and a second abutting portion 220 that are oppositely distributed along the first direction X. The second abutting portion 220 is adapted to connect to the original tile 500, while the first abutting portion 210 abuts against and clamps the wall surface of the clamping portion 110 along the first direction X, and the end of the first abutting portion 210 is supported by the bearing portion 120 in the vertical direction. Therefore, the first abutting portion 210 can stably cooperate with the first connecting member 100, that is, the second connecting member 200 can stably cooperate with the first connecting member 100. The cooperation between the first abutting portion 210 and the clamping portion 110 enables the first connecting member 100 and the second connecting member 200 to be tightly combined, ensuring the connection stability and reliability between the photovoltaic tile 400 and the original tile 500.

[0051] Since the first connecting member 100 and the second connecting member 200 are respectively connected to the photovoltaic tile 400 and the original tile 500, the photovoltaic tile 400 and the original tile 500 can be connected together through the tile connection structure of the present application. In addition, the first connecting member 100 and the second connecting member 200 are separately provided. In the vertical direction, the first abutting portion 210 is supported by the bearing portion 120, and the vertical height of the second connecting member 200 is affected by the vertical heights of the bearing portion 120 and the first connecting member 100. Therefore, by adjusting the second connecting member 200 with the first abutting portion 210 of different heights or changing the first connecting member 100 with the bearing portion 120 of different heights, the upper surfaces of the photovoltaic tile 400 and the original tile 500 can be made flush. Such a design allows for adapting more specifications of the original tile 500 and the photovoltaic tile 400 at a lower cost, not only simplifying the structure and reducing the cost, but also improving the use effect.

[0052] It can be understood that in some embodiments, the clamping portion 110 of the first connecting member 100 is designed in an open form. The side wall and the flat bottom wall of the opening can effectively support and fix the photovoltaic tile 400, preventing it from sliding or falling off under the action of wind or other external forces. The side wall inside the opening is a plane, which is convenient for closely contacting the side surface of the photovoltaic tile 400, reducing the gap caused by shape mismatch, thereby enhancing the stability between the photovoltaic tile 400 and the first connecting member 100. The flat bottom wall design at the bottom of the opening can provide a larger contact area, making the photovoltaic tile 400 more stable when placed and not prone to displacement. In addition, a sealing strip can be added inside the opening to further increase the waterproof performance and protect the photovoltaic tile 400 from the external environment.

[0053] It can be understood that the original tile 500 of the present utility model can be an aluminum plate tile or a traditional tile; the tile connection structure can be a frame structure or a combination of multiple panels.

[0054] Referring Figure 1 and Figure 2 , in some embodiments, the second abutting portion 220 is provided with a first mounting hole, the axis of the first mounting hole is parallel to the first direction X, and the first mounting hole is adapted to be penetrated by a threaded fastener to facilitate the connection of the original tile 500. By providing the first mounting hole on the second abutting portion 220, it is convenient to use a threaded fastener such as a screw to fix the second connecting member 200 on the original tile 500, thereby realizing a firm connection between the photovoltaic tile 400 and the original tile 500. The design of the first mounting hole ensures the simplicity and reliability of the connection operation.

[0055] It can be understood that, in some embodiments, the design of the first mounting hole is not limited to the use of threaded fasteners, but can also be applicable to other types of fixing devices, such as rivets, buckles, etc. The axis of the first mounting hole is parallel to the first direction X, which helps to ensure that the fastener will not be skewed during installation and maintain the overall stability of the connection structure. In addition, the position and size of the first mounting hole can be adjusted according to different specifications of the original tile 500 to adapt to various application scenarios, thereby improving the applicability and flexibility of the connection structure.

[0056] Referring Figures 1 to 4 , in some embodiments, the second connecting member 200 includes a first connecting portion 230. Along the first direction X, the two ends of the first connecting portion 230 are respectively connected to the first abutting portion 210 and the second abutting portion 220, and the upper surfaces of the first connecting portion 230, the photovoltaic tile 400, and the original tile 500 are all located in the same plane. Such a design enables the second connecting member 200 to ensure that the upper surfaces of the photovoltaic tile 400 and the original tile 500 are on the same horizontal plane while maintaining a compact structure, thereby achieving an aesthetic effect and avoiding problems such as rainwater accumulation caused by unevenness.

[0057] It can be understood that, in some embodiments, the design of the first connecting portion 230 enables the second connecting member 200 to better disperse the pressure from the photovoltaic tile 400 and the original tile 500, preventing the connection part from being damaged due to excessive long-term stress. The design of the first connecting portion 230 being coplanar with the upper surfaces of the photovoltaic tile 400 and the original tile 500 can not only enhance the visual continuity but also effectively prevent water stain accumulation and extend the service life of the tile. The first connecting portion 230 can also be designed into different shapes according to actual needs, such as arc-shaped, trapezoidal, etc., to adapt to different installation requirements and improve the versatility of the connection structure.

[0058] Referring Figure 1 andFigure 2 , in some embodiments, the first connecting member 100 of the tile connection structure includes a first mounting portion 130. The extending direction of the first mounting portion 130 is parallel to the first direction X, and along the vertical direction, the first mounting portion 130 and the bearing portion 120 are spaced apart. Such a design enables the first mounting portion 130 to provide additional functions, such as mounting or fixing the first connecting member 100 to a wall or other support structures, without affecting the support of the photovoltaic tile 400 by the bearing portion 120. By designing the extending direction of the first mounting portion 130 to be parallel to the first direction X, the direction consistency of the first connecting member 100 can be maintained during installation, facilitating installation and adjustment. The spaced design of the first mounting portion 130 can ensure that when the first mounting portion 130 is fixed to a wall or other support structures, it will not cause any adverse effects on the bearing portion 120, enabling the first connecting member 100 to be firmly fixed in a predetermined position, while the bearing portion 120 can effectively support the photovoltaic tile 400, ensuring the stability of the photovoltaic tile 400.

[0059] It can be understood that, in some embodiments, the design of the first mounting portion 130 is not limited to extending parallel to the first direction X and can be appropriately adjusted according to actual installation requirements. In addition, the spacing between the first mounting portion 130 and the bearing portion 120 can also be adjusted according to actual situations to meet the requirements under different installation conditions.

[0060] Referring to Figure 1 and Figure 2 , in some embodiments, the tile connection structure includes a baffle 300. One end of the baffle 300 is connected to the first mounting portion 130. The baffle 300 is disposed between the first abutting portion 210 and the second abutting portion 220, and the thickness direction of the baffle 300 is parallel to the first direction X. The setting of the baffle 300 between the first abutting portion 210 and the second abutting portion 220 can play an isolating role, preventing wear or damage that may be caused by direct contact between the two components, and also increasing the structural strength of the second connecting member 200. The thickness direction of the baffle 300 being parallel to the first direction X helps to ensure the perpendicularity of the baffle 300 to the first direction X, thereby ensuring the stability of the second connecting member 200. The setting of the baffle 300 can also enhance the rigidity of the entire tile connection structure, making it more durable.

[0061] It is understandable that, in some embodiments, the design of the baffle 300 can further enhance the structural stability of the second connecting member 200 and avoid the adverse effects caused by the direct contact between the first abutting portion 210 and the second abutting portion 220. The thickness direction of the baffle 300 is parallel to the first direction X, which can ensure that the baffle 300 maintains a good verticality during installation, thereby ensuring the stability of the second connecting member 200. In addition, the baffle 300 can also be adjusted in size according to actual needs to meet the needs of different application occasions and improve the applicability of the entire tile connection structure.

[0062] Reference Figures 1 to 4 In some embodiments, the first connector 100 further includes a first reinforcing portion 140, and along the vertical direction, the two ends of the first reinforcing portion 140 are respectively connected to the clamping portion 110 and the mounting portion. The design of the first reinforcing portion 140 improves the structural strength of the first connector 100, especially forms an effective support between the clamping portion 110 and the mounting portion. The provision of the first reinforcing portion 140 can effectively disperse the pressure from the photovoltaic tile 400, reduce the burden of the clamping portion 110, and at the same time increase the overall rigidity of the first connector 100, so that it can remain stable when subjected to a large load. In addition, the first reinforcing portion 140 can also prevent the deformation of the clamping portion 110, thereby ensuring the installation accuracy of the photovoltaic tile 400.

[0063] It is understandable that, in some embodiments, the design of the first reinforcing portion 140 can improve the overall strength of the first connector 100, making the connection between the clamping portion 110 and the mounting portion more stable. The presence of the first reinforcing portion 140 can effectively disperse the pressure from the photovoltaic tile 400, prevent the clamping portion 110 from deforming due to long-term load-bearing, thereby ensuring the accuracy of the installation of the photovoltaic tile 400. In addition, the first reinforcing portion 140 can also adjust its position and size according to actual needs to adapt to different installation requirements and improve the adaptability of the entire tile connection structure.

[0064] Reference Figure 1 , Figure 3 , Figure 5 , Figure 7 and Figure 10, in some embodiments, the first mounting portion 130 is adapted to be connected to a wall. The first mounting portion 130 is provided with a second mounting hole, and the second mounting hole is adapted for a threaded fastener to pass through. The extending direction of the first mounting portion 130 is parallel to the first direction X, ensuring that the first mounting portion 130 can form a stable connection with the wall. The existence of the second mounting hole enables the first mounting portion 130 to be reliably fixed to the wall through a threaded fastener such as a screw. This not only ensures the stability of the first connector 100 but also provides convenience for installation. By fixing the first mounting portion 130 to the wall through a threaded fastener, the first connector 100 can bear the weight of the photovoltaic tile 400 and other external loads without displacement or loosening, enhancing the reliability of the entire tile connection structure.

[0065] It can be understood that, in some embodiments, the connection manner between the first mounting portion 130 and the wall can be diversified. In addition to using threaded fasteners, welding, bonding, etc. can also be adopted. The size and position of the second mounting hole can be adjusted according to different wall materials and installation requirements to ensure stability during the installation process. In addition, the design of the first mounting portion 130 can also consider the durability of the wall. By selecting appropriate materials and processing techniques, the corrosion resistance and weather resistance of the first mounting portion 130 can be improved, thereby extending the service life of the entire tile connection structure.

[0066] Referring to Figure 2 , Figure 4 and Figure 8 , in some embodiments, the first abutting portion 210 for fitting against the surface of the clamping portion 110 and the second abutting portion 220 for fitting against the surface of the original tile 500 are parallel. Such a design makes a tight contact surface formed between the first connector 100 and the second connector 200, thereby ensuring their stable connection. The parallel surfaces help reduce the stress concentration phenomenon caused by surface unevenness and improve the fatigue resistance of the connection. The parallel relationship between the first abutting portion 210 and the second abutting portion 220 also ensures that the photovoltaic tile 400 and the original tile 500 can be kept in the same plane after connection, making the entire roof surface flat and beautiful and reducing the possibility of rainwater accumulation.

[0067] It can be understood that, in some embodiments, the parallel relationship between the first abutting portion 210 and the second abutting portion 220 can improve the stability of the entire tile connection structure and reduce the connection instability problem caused by surface unevenness. By precisely machining the first abutting portion 210 and the second abutting portion 220 to make their surfaces reach sufficient parallelism, it can be ensured that there is no obvious height difference between the connected photovoltaic tile 400 and the original tile 500, thereby achieving good visual effects and rainproof performance. In addition, the parallel design also helps to simplify the installation process and reduce installation errors caused by inaccurate positioning.

[0068] Referring to Figure 2 、 Figure 4 and Figure 8 , in some embodiments, the opening has a side wall and a bottom wall. The bottom wall is adapted to abut against the end face of the photovoltaic tile 400, and the side wall is a plane and is adapted to abut against the side face of the photovoltaic tile 400. Such a design enables the photovoltaic tile 400 to be firmly clamped within the opening. The contact surfaces provided by the bottom wall and the side wall can ensure that the photovoltaic tile 400 will not easily slide or fall off after installation. As a plane, the side wall can better fit the side face of the photovoltaic tile 400, reduce the voids caused by shape mismatch, and enhance the connection stability between the photovoltaic tile 400 and the first connector 100. The design of the bottom wall can provide a sufficient support area, making the photovoltaic tile 400 more stable during installation and not easily displaced due to external loads.

[0069] In some embodiments, a sealing strip is provided within the opening. The provision of the sealing strip can improve the clamping ability of the opening on the photovoltaic tile 400 and reduce the risk of loosening caused by external factors such as wind and rain. The material of the sealing strip is usually selected to have good elasticity and waterproof performance, which can effectively fill the voids between the opening and the photovoltaic tile 400, prevent moisture from seeping in, and protect the photovoltaic tile 400 from erosion. At the same time, the sealing strip can also absorb vibrations, reduce the wear between the photovoltaic tile 400 and the first connector 100 caused by environmental changes, and extend the service life of the entire tile connection structure.

[0070] It can be understood that in some embodiments, the material and shape of the sealing strip can be adjusted according to actual needs to adapt to different environmental conditions. By reasonably designing the position and size of the sealing strip, it can be ensured that a good sealing effect can be formed between the photovoltaic tile 400 and the opening after installation, preventing moisture from invading and improving the waterproof performance of the photovoltaic tile 400. In addition, the sealing strip can also play a role in buffering and shock absorption, reducing the wear between the photovoltaic tile 400 and the first connector 100, thereby extending the service life of the entire tile connection structure.

[0071] Next, referring to Figures 1 to 10 , the arrangement methods of the tile connection structure of this solution in different usage scenarios will be systematically described. Specifically, referring to Figure 1 and Figure 2, in this embodiment, the right side of the photovoltaic tile 400 is matched with the original tile 500 through the tile connection structure of the present application. Specifically, the original tile 500 is an aluminum plate tile with a thickness of 15 mm. Among them, the tile connection structure includes a first connecting member 100 and a second connecting member 200. The clamping portion 110 of the first connecting member 100 is provided with an opening facing left, and the aluminum plate tile is inserted into the opening. The side wall and the bottom wall of the opening are both in contact with the aluminum plate tile. A first strengthening portion 140 is provided below the clamping portion 110 to maintain the stability of the clamping portion 110. The first abutting portion 210 of the second connecting member 200 abuts against the side wall of the clamping portion 110, and this setting limits the position of the second connecting member 200 in the horizontal direction; and the end of the first abutting portion 210 of the second connecting member 200 is located above the bearing portion 120, and this setting limits the position of the second connecting member 200 in the vertical direction. Therefore, the first connecting member 100 and the second connecting member 200 of the tile connection structure of the present application can be easily combined together. The baffle 300 is arranged between the first abutting portion 210 and the second abutting portion 220. Even if the first abutting portion 210 slides off the bearing portion 120, the first abutting portion 210 will be restricted in the groove defined by the baffle 300 and the clamping portion 110. At this time, the baffle 300 will support the first connecting portion 230 of the second connecting member 200. Therefore, the second connecting member 200 will not completely fall or tip over, so the aluminum plate tile connected to the second connecting member 200 will not tip over in this case, and the other tiles affected by the aluminum plate tile will not be damaged. Therefore, the tile connection structure of the present application can also improve safety. The second connecting member 200 is connected to the aluminum plate tile through a bolt fastener, which is convenient for disassembly. By replacing the second connecting member 200 with a first abutting portion 210 of different heights according to aluminum plate tiles of different heights, the upper surfaces of the photovoltaic tile 400, the first connecting portion 230, and the aluminum plate tile can be made flush. The operation is simple, fast, and the cost is low.

[0072] Refer to Figure 3 and Figure 4 , in this embodiment, the original tile 500 is an aluminum plate tile. The aluminum plate tile is arranged on the left side, and the photovoltaic tile 400 is arranged on the right side. The first connecting portion 230 is used to abut against structures such as walls to ensure the stability of the connection among the aluminum plate tile, the tile connection structure, and the photovoltaic tile 400. The first abutting portion 210 of the second connecting member 200 abuts against the lower part of the bearing portion 120 of the first connecting member 100. At this time, the bearing portion 120 is supported by the first connecting member 100 and is stable. The principle has been described above and will not be repeated here. In this embodiment, the upper surfaces of the photovoltaic tile 400 and the aluminum plate tile can also be made flush by replacing structures such as the first abutting portion 210 and the first strengthening portion 140 with different heights.

[0073] Refer to Figure 5 and Figure 6, this embodiment is about the edge trimming of aluminum plate tiles. The original tile 500 is an aluminum plate tile with a thickness of 15 mm. By adding an L-shaped stopper, the second connector 200 can be stably attached, and then they are connected together by bolt fasteners to obtain a stable aluminum plate tile edge trimming structure.

[0074] Refer to Figures 7 to 9 , this embodiment reflects the situation where the lower end of the photovoltaic tile 400 matches the aluminum plate tile, or the upper end of the photovoltaic tile 400 matches the aluminum plate tile. The principle is similar to that described above. Similarly, the photovoltaic tile 400 is fixed by the clamping part 110, and the surface height relationship between the photovoltaic tile 400 and the original tile 500 is adjusted through the abutting characteristics between the bearing part 120 and the first abutting part 210 or other abutting structures. Among them, in order to consolidate the stability of the structure, the first installation part 130 is L-shaped to cover the water guiding purlin 600 connected to the transverse purlin 700 as much as possible. Specifically, the first installation part 130 has two mutually perpendicular panels, and both panels are provided with installation holes, and screws are used to connect the water guiding purlin 600 through the installation holes. It can be understood that the tile connection structure is fixed inside the aluminum plate tile by rivets to ensure the stability of the combination with the aluminum plate tile.

[0075] Refer to Figure 10 , a foam rod silicone weatherproof sealant can be installed between the thick eaves aluminum plate member 900 and the transverse purlin 700. The tile connection structure is fixed inside the 1.5-mm thick thick ridge aluminum plate member 800 by rivets.

[0076] In summary, the present utility model can be matched with traditional tiles or metal tiles at the same time, so as to reduce the renovation workload and improve the renovation efficiency, and is applicable to the photovoltaic tile 400 for traditional tiles and metal tiles. Moreover, by adjusting the size and function of the aluminum alloy frame of the existing aluminum alloy profile to match the size of the existing traditional ceramic tile, perfect lap matching in the left-right and up-down directions can be achieved. At the same time, without affecting the matching of traditional tiles, the shape and size of the aluminum alloy frame are further adjusted to match the metal aluminum plate eaves and ridges, making it convenient for installation and not leaking. The metal aluminum plate can be specially customized in appearance shape and color according to customer requirements, achieving the diversity and practicality of the building appearance.

[0077] The above is only the preferred embodiment of the present utility model, and it does not limit the patent scope of the present utility model. Any equivalent structural transformation made under the inventive concept of the present utility model by using the content of the specification and drawings of the present utility model, or directly / indirectly applied in other related technical fields, is included in the patent protection scope of the present utility model.

Claims

1. A tile connection structure, characterized in that, Comprising: A first connecting member, including a clamping portion having an opening adapted to receive a photovoltaic tile. The first connecting member further includes a bearing portion connecting the clamping portion. The depth direction of the opening is a first direction, and the bearing portion protrudes from the clamping portion in the first direction. A second connecting member detachably connected to the first connecting member. The side of the second connecting member facing away from the first connecting member is adapted to connect to an original tile. The second connecting member includes a first abutting portion and a second abutting portion distributed oppositely along the first direction. The second abutting portion is adapted to connect to the original tile. Along the first direction, the first abutting portion abuts against the clamping portion, and along a direction perpendicular to the first direction, the first abutting portion abuts against the bearing portion.

2. The tile connection structure according to claim 1, wherein, The second abutting portion is provided with a first mounting hole, the axis of the first mounting hole is parallel to the first direction, and the first mounting hole is adapted to be penetrated by a threaded fastener to connect the original tile.

3. The tile connection structure according to claim 1, characterized in that The second connecting member includes a first connecting portion. Along the first direction, the two ends of the first connecting portion are respectively connected to the first abutting portion and the second abutting portion. The upper surfaces of the first connecting portion, the photovoltaic tile, and the original tile are all in the same plane.

4. The tile connection structure according to claim 1, characterized in that, The first connecting member includes a first mounting portion, the extending direction of the mounting portion is parallel to the first direction, and along the vertical direction, the mounting portion and the bearing portion are spaced apart.

5. The tile connection structure according to claim 4, characterized in that, The tile connection structure includes a baffle, one end of the baffle is connected to the mounting portion, the baffle is disposed between the first abutting portion and the second abutting portion, and the thickness direction of the baffle is parallel to the first direction.

6. The tile connection structure according to claim 4, characterized in that, The first connecting member further includes a first strengthening portion. Along the vertical direction, the two ends of the first strengthening portion are respectively connected to the clamping portion and the mounting portion.

7. The tile connection structure according to claim 4, characterized in that, The first mounting portion is adapted to connect to a wall. The first mounting portion is provided with a second mounting hole, and the second mounting hole is adapted to be penetrated by a threaded fastener to connect the first mounting portion to the wall.

8. The tile connection structure according to claim 1, characterized in that The surface of the first abutting portion for abutting against the clamping portion and the surface of the second abutting portion for abutting against the original tile are parallel.

9. The tile connection structure according to claim 1, wherein The opening has a side wall and a bottom wall. The bottom wall is adapted to abut against the end face of the photovoltaic tile, the side wall is a plane, and the side wall is adapted to abut against the side face of the photovoltaic tile.

10. The tile connection structure according to claim 1, characterized in that, A sealing strip is provided in the opening.