A secure roof structure

CN224799786UActive Publication Date: 2026-09-25ANHUI HUIZHOU CLASSICAL GARDEN CONSTR CO LTD
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Patent Information

Application Number
CN202522295382.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-30
Publication Date
2026-09-25
Estimated Expiration
2035-10-30

AI Technical Summary

Technical Problem

[0004]然而,现有技术中,顺水条以及挂瓦条大多通过膨胀螺丝或钢钉进行固定,长期暴露在屋面的雨水以及潮湿空气中,容易发生锈蚀;锈蚀后,连接件的强度会显著下降,从而导致屋面结构整体稳固性下降;而无论是沿屋面倾斜方向放置的相邻瓦片之间,还是沿挂瓦条长度方向放置的相邻瓦片之间均无连接,瓦片之间瓦片叠压产生的摩擦力初步固定;单个瓦片与挂瓦条的连接,多为单点简单固定;瓦片独立支撑,并且瓦片之间没有关联;当遭遇强风时,风会对单块瓦片产生向上的抬升力;由于瓦片之间无连接,单块瓦片的受力无法传递给周边瓦片,只能依靠自身与挂瓦条的单点固定力抵抗抬升力,因此单块瓦片很容易就会被直接掀飞,瓦片脱落不仅降低了屋面结构整体稳固性,还直接破坏了屋面防水完整性,减少了瓦屋面使用寿命,增加了维修成本

Benefits of technology

安装时先将多个底座沿屋面倾斜方向预埋固定,再将顺水条插入底座凹槽,通过驱动组件带动定位块插入顺水条定位槽固定顺水条;随后将挂瓦条的连接杆一插入顺水条连接槽一内,通过第一连接组件实现挂瓦条与顺水条的连接;最后用瓦片的第二连接组件将瓦片连在挂瓦条上,并通过第三连接组件使相邻瓦片互锁,降低了单独瓦片在遇到强风时发生单独脱落的可能性,大幅提升屋面抗风稳固性和防水完整性;

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Abstract

The application discloses a stable tile roof structure and belongs to the technical field of tile roofs. The stable tile roof structure comprises tiles, water following strips and batten, a plurality of bases are sequentially embedded on a roof along the inclined direction of the roof, grooves are formed in the bases, positioning blocks are slidably arranged in the side walls of the bases, positioning grooves are formed in the side walls of the water following strips, driving assemblies for driving the positioning blocks to move are arranged on the bases, connecting rods one are fixedly arranged on the side walls of the batten, connecting grooves one are formed in the side walls of the water following strips, first connecting assemblies for connecting the water following strips are arranged in the connecting rods one, second connecting assemblies for connecting the batten are arranged on the single tiles, and a plurality of third connecting assemblies for connecting adjacent tiles are arranged on the single tiles. The stable tile roof structure can reduce the possibility that the single tiles are blown off by strong winds, thereby improving the stability and waterproof integrity of the whole tile roof.
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Description

Technical Field

[0001] This application relates to the field of tiled roofing technology, and in particular to a stable tiled roofing structure. Background Technology

[0002] Tiled roofs are a widely used type of roofing in the construction industry, commonly used in residential buildings, rural buildings, and some industrial plants. The tiles provide waterproofing and protection from rain, while also protecting the internal structure of the roof. In practical use, tiled roofs not only need to meet basic waterproofing requirements but also need to withstand external loads such as strong winds and short-term gusts, especially in windy or typhoon-prone areas. Therefore, the wind resistance and stability of the tiles have become a crucial prerequisite for ensuring the normal use of tiled roofs.

[0003] In existing technology, when laying roof tiles, the first step is to build and level the roof base layer. Then, a waterproof layer is laid on the base layer surface. Next, water-guiding strips are laid along the roof's slope direction, i.e., the direction of rainwater flow, and expansion bolts or steel nails are used to penetrate the waterproof layer to fix the water-guiding strips to the purlins of the roof base layer. The spacing between adjacent water-guiding strips is determined according to the roof span and tile size. Then, along a direction perpendicular to the water-guiding strips, nails or bolts are used to rigidly fix the battens to the top surface of the water-guiding strips, with the spacing between adjacent battens matching the tile width. Finally, the tiles are laid. During laying, a single tile is placed on the battens along the roof's slope, with the shorter side of the upper tile overlapping the shorter side of the lower tile. Simultaneously, nails are used to pass through the tile edges to fix the tiles to the battens at a single point. The long sides of adjacent tiles are aligned and fitted only at the edges until the entire roof area except the ridge is covered.

[0004] However, in existing technologies, battens and tile strips are mostly fixed with expansion bolts or steel nails. Long-term exposure to rainwater and humid air on the roof makes them prone to corrosion. After corrosion, the strength of the connectors decreases significantly, leading to a decline in the overall stability of the roof structure. Furthermore, there is no connection between adjacent tiles placed along the roof's slope or along the length of the battens; the friction generated by the overlapping tiles provides only a preliminary fixation. The connection between a single tile and the battens is often a simple, single-point fixation. Tiles are independently supported and not connected to each other. In strong winds, the wind exerts an upward lifting force on individual tiles. Because there is no connection between tiles, the force on a single tile cannot be transferred to surrounding tiles; it can only rely on its own single-point fixation to the battens to resist the lifting force. Therefore, a single tile can easily be blown off. Tile detachment not only reduces the overall stability of the roof structure but also directly damages the roof's waterproofing integrity, reduces the lifespan of the tiled roof, and increases maintenance costs. Utility Model Content

[0005] In order to reduce the possibility of individual tiles falling off due to strong winds, thereby improving the stability and waterproof integrity of the entire tiled roof, this application provides a stable tiled roof structure.

[0006] The stable tiled roof structure provided in this application adopts the following technical solution: A stable tiled roof structure includes tiles, strips for drainage, and battens. It includes multiple bases embedded sequentially in the roof along its slope. Each base has a groove for inserting the strip. A positioning block slides within the side wall of each base. The side wall of each strip has a positioning groove for inserting the positioning block. The base has a drive assembly for moving the positioning block. A connecting rod is fixedly mounted on the side wall of each batten. A connecting groove is provided in the side wall of each strip for inserting the connecting rod. The connecting rod contains a first connecting assembly for connecting the strip. Each tile has a second connecting assembly for connecting the battens. Each tile also has multiple sets of third connecting assemblies for connecting adjacent tiles.

[0007] By adopting the above technical solution, during installation, multiple bases are first pre-embedded and fixed along the roof's slope direction. Then, the water-guiding strip is inserted into the base groove, and the positioning block is inserted into the water-guiding strip positioning groove by the drive component to fix the water-guiding strip. Subsequently, the connecting rod of the tile strip is inserted into the connecting groove of the water-guiding strip, and the connection between the tile strip and the water-guiding strip is realized through the first connecting component. Finally, the tile is connected to the tile strip by the second connecting component, and the adjacent tiles are interlocked by the third connecting component, which reduces the possibility of individual tiles falling off when encountering strong winds and greatly improves the roof's wind resistance stability and waterproof integrity.

[0008] Preferably, the drive assembly includes a lead screw and a slide rod. The lead screw is rotatably mounted on the side wall of the base, and the slide rod slides within the side wall of the base. The slide rod is threaded into the lead screw, and one end of the positioning block is fixedly mounted on the slide rod.

[0009] By adopting the above technical solution, when the staff positions the water-retaining strip, they first rotate the lead screw on the side wall of the base. Because the sliding rod is threaded with the lead screw and cannot rotate due to the limitation of the base, the sliding rod will move along the axis of the lead screw, thereby driving the positioning block fixed on the sliding rod to slide and finally insert into the positioning groove of the water-retaining strip. This reduces the difficulty of moving the positioning block and reduces the possibility of the water-retaining strip shifting under strong winds or vibrations, providing a stable foundation for subsequent structural installation.

[0010] Preferably, the first connecting assembly includes a connecting block and a spring. The connecting block slides on the side wall of the connecting rod. A connecting groove for the connecting block to be inserted is provided in the side wall of the water-following strip. One side of the connecting block has an inclined surface. The connecting block slides and engages with the side wall of the water-following strip through its inclined surface. The two ends of the spring abut against the side walls of the connecting block and the connecting rod, respectively.

[0011] By adopting the above technical solution, when connecting the roof tile strip and the runner strip, the connecting rod is inserted into the connecting groove. The inclined surface of the connecting block contacts and is pressed against the side wall of the runner strip, sliding inward and compressing the spring. When the connecting block 1 aligns with the connecting groove, the spring restores its deformation, pushing the connecting block 1 into the connecting groove. This allows for quick and easy connection without additional tools. The spring force maintains a tight fit between the connecting block 1 and the connecting groove, preventing loosening due to strong winds. The inclined surface design also reduces insertion resistance and improves installation efficiency.

[0012] Preferably, a push rod is slidably disposed within the side wall of the connecting rod, one end of the push rod being inserted through and sliding on the side wall of the tile strip, and a connecting rod is provided between the push rod and the connecting block, with both ends of the connecting rod being hinged to the push rod and the connecting block, respectively.

[0013] By adopting the above technical solution, when workers need to disassemble the batten strips, they can press the push rod one into the batten strip. The push rod one slides and drives the connecting rod one to rotate. The connecting rod one pulls the connecting block one into the connecting rod one, so that the connecting block one is disengaged from the connecting groove one, and the connecting rod one can be pulled out. This realizes the disassembly of the batten strips, avoids damage to components when disassembling rigid connections, reduces the difficulty of later maintenance or replacement of batten strips, and reduces maintenance costs.

[0014] Preferably, the second connecting assembly includes a second connecting rod and a second connecting block. One end of the second connecting rod is fixedly disposed on the side wall of the tile. A second connecting groove is provided on the tile strip for the second connecting rod to be inserted. The second connecting block slides on the side wall of the second connecting rod. A limiting groove is provided in the side wall of the tile strip for the second connecting block to be inserted. One side of the second connecting block has an inclined surface. The second connecting block slides and engages with the side wall of the tile strip through its inclined surface. A second spring is provided inside the second connecting rod. The two ends of the second spring abut against the second connecting block and the side wall of the second connecting rod, respectively.

[0015] By adopting the above technical solution, when installing the tiles, the connecting rod two is inserted into the connecting groove two of the batten strip. The inclined surface of the connecting block two is pressed into the connecting rod two by the side wall of the batten strip, compressing the spring two. When the connecting block two is aligned with the limiting groove, the spring two pushes the connecting block two into the limiting groove. This achieves a stable connection between the tile and the batten strip, protecting the integrity of the tile. The spring two can also compensate for the assembly gap, preventing the tile from loosening due to temperature changes or vibration, and preventing the tile from falling off.

[0016] Preferably, a push rod 2 slides inside the side wall of the connecting rod 2, one end of the push rod 2 passes through and slides on the side wall of the tile, and a connecting rod 2 is provided between the push rod 2 and the connecting block 2, with both ends of the connecting rod 2 hinged to the push rod 2 and the connecting block 2 respectively.

[0017] By adopting the above technical solution, when replacing the tile, press the push rod two into the tile. The push rod two slides and drives the connecting rod two to rotate. The connecting rod two pulls the connecting block two out of the limiting groove, and the connecting rod two can be pulled out to remove the tile. The whole process can quickly complete the individual replacement of the tile without damaging the surrounding tiles or the tile strips. The maintenance is convenient and the replacement cost is reduced.

[0018] Preferably, a baffle is fixedly provided on the side wall of the slide bar, the baffle is slidably disposed on the side wall of the base, and the baffle can abut against the top side wall of the water-repellent strip.

[0019] By adopting the above technical solution, when the slide bar moves with the lead screw, the baffle on the side wall slides synchronously; when the positioning block is inserted into the positioning groove of the water-cooling strip, the baffle just abuts against the top side wall of the water-cooling strip, reducing the possibility of the water-cooling strip being lifted upward by strong wind, further enhancing the connection stability between the water-cooling strip and the base, and avoiding overall structural instability.

[0020] Preferably, the tile strip is provided with a reinforcing mechanism, the reinforcing mechanism includes a reinforcing rod, one end of which is fixedly disposed on the side wall of the tile strip, the side wall of the base is provided with a reinforcing groove for inserting the reinforcing rod, and the reinforcing mechanism further includes a fourth connecting component for connecting the base.

[0021] By adopting the above technical solution, when workers hang the battens, they insert the reinforced end into the reinforcement groove of the base and lock the reinforcement rod to the base through the fourth connecting component. This can effectively disperse the vertical load borne by the battens when subjected to strong winds, reduce the possibility of the battens bending and deforming, and improve the overall wind resistance of the roof.

[0022] In summary, this application includes at least one of the following beneficial technical effects: During installation, multiple bases are first pre-embedded and fixed along the roof's slope direction. Then, the water-guiding strip is inserted into the base groove, and the positioning block is inserted into the water-guiding strip positioning groove by the drive component to fix the water-guiding strip. Subsequently, the connecting rod of the batten is inserted into the connecting groove of the water-guiding strip, and the batten and the water-guiding strip are connected by the first connecting component. Finally, the tiles are connected to the batten by the second connecting component, and the adjacent tiles are interlocked by the third connecting component, which reduces the possibility of individual tiles falling off in strong winds and greatly improves the roof's wind resistance and waterproof integrity. When the staff positions the water-repellent strip, they first rotate the screw on the side wall of the base. Because the sliding rod is threaded with the screw and cannot rotate due to the limitation of the base, the sliding rod will move along the axis of the screw, which will then drive the positioning block fixed on the sliding rod to slide and finally insert into the positioning groove of the water-repellent strip. This reduces the difficulty of moving the positioning block and reduces the possibility of the water-repellent strip shifting under strong winds or vibrations, providing a stable foundation for subsequent structural installation. When connecting the batten strip and the runner strip, insert the connecting rod into the connecting groove. The beveled surface of the connecting block contacts and is pressed against the side wall of the runner strip, sliding inwards and compressing the spring. When the connecting block aligns with the connecting groove, the spring returns to its original shape, pushing the connecting block into the connecting groove. This quick and easy connection requires no additional tools. The spring force maintains a tight fit between the connecting block and the connecting groove, preventing loosening due to strong winds. The beveled design also reduces insertion resistance and improves installation efficiency. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.

[0024] Figure 2 This is a schematic diagram of the structure highlighting the base in the embodiments of this application.

[0025] Figure 3 This is a schematic diagram of the lead screw structure in an embodiment of this application.

[0026] Figure 4 yes Figure 3 Enlarged view of point A in the middle.

[0027] Figure 5 yes Figure 3 Enlarged view of point B in the middle.

[0028] Figure 6 This is a schematic diagram highlighting the structure of connecting rod three in the embodiments of this application.

[0029] Figure 7 yes Figure 6 A magnified view of point C in the middle.

[0030] Figure 8 yes Figure 3 Enlarged view of point D in the middle.

[0031] Explanation of reference numerals in the attached figures: 1. Tile; 2. Water-guiding strip; 3. Tile-hanging strip; 4. Base; 5. Positioning block; 6. Drive assembly; 61. Lead screw; 62. Slide rod; 7. Connecting rod one; 8. First connecting assembly; 81. Connecting block one; 82. Spring one; 83. Push rod one; 84. Connecting rod one; 9. Second connecting assembly; 91. Connecting rod two; 92. Connecting block two; 93. Spring two; 94. Push rod two; 95. Connecting rod two; 10. Third connecting assembly; 101. Connecting rod three; 102. Connecting block three; 103. Spring three; 104. Abutment block; 105. Push block one; 106. Push block two; 11. Baffle; 12. Reinforcing mechanism; 121. Reinforcing rod; 122. Fourth connecting assembly; 1221. Connecting block four; 1222. Spring four; 1223. Push rod three; 1224. Connecting rod three. Detailed Implementation

[0032] The following is in conjunction with the appendix Figure 1-8 This application will be described in further detail.

[0033] This application discloses a stable tiled roof structure, such as... Figure 1 and Figure 2 As shown, it includes tiles 1, water-guiding strips 2 and tile strips 3, and multiple bases 4. The multiple bases 4 are embedded in the roof in sequence along the slope direction of the roof. The top of the base 4 is provided with a groove for the water-guiding strips 2 to be inserted.

[0034] like Figure 2 , Figure 3 and Figure 4 As shown, positioning blocks 5 are horizontally slidable in the opposite side walls of the base 4, and positioning grooves for the positioning blocks 5 are opened in the side walls of the water-running strip 2. The base 4 is provided with a driving component 6 for driving the positioning blocks 5 to move; a connecting rod 7 is fixedly connected to the bottom of the hanging tile strip 3, and a connecting groove for the connecting rod 7 is opened in the top of the water-running strip 2. A first connecting component 8 for connecting the water-running strip 2 is provided in the side wall of the connecting rod 7.

[0035] like Figure 2 , Figure 3 and Figure 5 As shown, a second connecting component 9 for connecting the tile strip 3 is provided at the bottom of a single tile 1; a plurality of third connecting components 10 for connecting adjacent tiles 1 are also provided on a single tile 1.

[0036] like Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, during installation, multiple bases 4 are first pre-embedded and fixed along the roof's tilt direction. Then, the water-guiding strip 2 is inserted into the groove of the base 4. The positioning block 5 is inserted into the positioning groove of the water-guiding strip 2 by the drive component 6 to fix the water-guiding strip 2. Subsequently, the connecting rod 7 of the tile strip 3 is inserted into the connecting groove of the water-guiding strip 2. The first connecting component 8 is used to connect the tile strip 3 and the water-guiding strip 2. Finally, the second connecting component 9 of the tile 1 is used to connect the tile 1 to the tile strip 3, and the third connecting component 10 is used to interlock adjacent tiles 1, reducing the possibility of individual tiles 1 falling off in strong winds and greatly improving the roof's wind resistance stability and waterproof integrity.

[0037] like Figure 3 As shown, the drive assembly 6 includes a lead screw 61 and a slide rod 62. The lead screw 61 is inserted through and rotatably connected to the side wall of the base 4 via a bearing. There are two slide rods 62, which slide horizontally in the opposite side walls of the base 4 respectively. The lead screw 61 is inserted through and threadedly connected to the slide rod 62. One end of the positioning block 5 is fixedly connected to the slide rod 62.

[0038] like Figure 2 and Figure 3 As shown, when the workers position the water-repellent strip 2, they first rotate the lead screw 61 on the side wall of the base 4. Because the slide rod 62 is threadedly engaged with the lead screw 61 and cannot rotate due to the limitation of the base 4, the slide rod 62 will move along the axis of the lead screw 61, thereby causing the positioning block 5 fixed on the slide rod 62 to slide and finally insert into the positioning groove of the water-repellent strip 2. This reduces the difficulty of moving the positioning block 5 and reduces the possibility of the water-repellent strip 2 shifting under strong winds or vibrations, providing a stable foundation for subsequent structural installation.

[0039] like Figure 3 and Figure 4 As shown, the first connecting component 8 includes a connecting block 81 and a spring 82. The connecting block 81 slides horizontally within the side wall of the connecting rod 7. A connecting groove is provided in the side wall of the water-following strip 2 for the connecting block 81 to be inserted. One side of the connecting block 81 has an inclined surface. The connecting block 81 slides and engages with the side wall of the water-following strip 2 through its inclined surface. The two ends of the spring 82 abut against the side wall of the connecting block 81 and the connecting rod 7, respectively.

[0040] like Figure 3 and Figure 4 As shown, when connecting the roof tile strip 3 and the water-following strip 2, the connecting rod 7 is inserted into the connecting groove 1. The inclined surface of the connecting block 81 contacts and is pressed against the side wall of the water-following strip 2, sliding inwards towards the connecting rod 7 and compressing the spring 82. When the connecting block 81 aligns with the connecting groove 1, the spring 82 returns to its original shape, pushing the connecting block 81 into the connecting groove 1. No additional tools are needed for quick and easy connection. The elasticity of the spring 82 ensures a tight fit between the connecting block 81 and the connecting groove 1, preventing loosening due to strong winds. The inclined surface design also reduces insertion resistance and improves installation efficiency.

[0041] like Figure 3 and Figure 4 As shown, a push rod 83 slides vertically inside the side wall of the connecting rod 7. The top end of the push rod 83 passes through and slides on the side wall of the tile strip 3. A connecting rod 84 is provided between the push rod 83 and the connecting block 81. The two ends of the connecting rod 84 are respectively hinged to the push rod 83 and the connecting block 81.

[0042] like Figure 3 and Figure 4 As shown, when the worker needs to disassemble the batten strip 3, the push rod 83 is pressed into the batten strip 3. The push rod 83 slides and drives the connecting rod 84 to rotate. The connecting rod 84 pulls the connecting block 81 into the connecting rod 7, so that the connecting block 81 is disengaged from the connecting groove. The connecting rod 7 can then be pulled out, thus realizing the disassembly of the batten strip 3. This avoids damage to the components when disassembling a rigid connection, reduces the difficulty of later maintenance or replacement of the batten strip 3, and reduces maintenance costs.

[0043] like Figure 3 and Figure 5 As shown, the second connecting component 9 includes a second connecting rod 91 and a second connecting block 92. One end of the second connecting rod 91 is fixedly connected to the bottom side wall of the tile 1. The top of the tile strip 3 is provided with a connecting groove for the second connecting rod 91 to be inserted. The second connecting block 92 slides horizontally on the side wall of the second connecting rod 91. The side wall of the tile strip 3 is provided with a limiting groove for the second connecting block 92 to be inserted. One side of the second connecting block 92 is provided with an inclined surface. The second connecting block 92 slides and cooperates with the side wall of the tile strip 3 through its inclined surface. The second connecting rod 91 is provided with a second spring 93. The two ends of the second spring 93 abut against the inner wall of the second connecting block 92 and the second connecting rod 91, respectively.

[0044] like Figure 3 and Figure 5 As shown, when installing tile 1, connecting rod 2 91 is inserted into connecting groove 2 of tile strip 3. The inclined surface of connecting block 2 92 is pressed into connecting rod 2 91 by the side wall of tile strip 3, compressing spring 2 93. When connecting block 2 92 is aligned with the limiting groove, spring 2 93 pushes connecting block 2 92 into the limiting groove. This achieves a stable connection between tile 1 and tile strip 3, protecting the integrity of tile 1. Spring 2 93 can also compensate for assembly gaps, preventing tile 1 from loosening due to temperature changes or vibrations, and preventing tile 1 from falling off.

[0045] like Figure 3 and Figure 5 As shown, a push rod 94 slides vertically inside the side wall of the connecting rod 91. One end of the push rod 94 passes through and slides on the side wall of the tile 1. A connecting rod 95 is provided between the push rod 94 and the connecting block 92. The two ends of the connecting rod 95 are respectively hinged to the push rod 94 and the connecting block 92.

[0046] like Figure 3 and Figure 5 As shown, when replacing tile 1, press push rod 2 94 into tile 1. Push rod 2 94 slides and drives connecting rod 2 95 to rotate. Connecting rod 2 95 pulls connecting block 2 92 out of the limiting groove, and connecting rod 2 91 can be pulled out to remove tile 1. The whole process can quickly complete the replacement of tile 1 without damaging the surrounding tiles 1 or tile strips 3. The maintenance is convenient and the replacement cost is reduced.

[0047] like Figure 3 As shown, a baffle 11 is fixedly provided on the side wall of the slide bar 62. The baffle 11 is horizontally slidably provided on the side wall of the base 4, and the baffle 11 can abut against the top side wall of the water flow bar 2.

[0048] like Figure 3 As shown, when the slide bar 62 moves with the lead screw 61, the baffle 11 on the side wall slides synchronously; when the positioning block 5 is inserted into the positioning groove of the water-following strip 2, the baffle 11 just abuts against the top side wall of the water-following strip 2, reducing the possibility of the water-following strip 2 being lifted upward by strong wind, further enhancing the connection stability between the water-following strip 2 and the base 4, and avoiding the overall structure from becoming unstable.

[0049] like Figure 6 and Figure 7 As shown, the third connecting assembly 10 includes a connecting rod 101, a connecting block 102, and a spring 103. The connecting rod 101 is fixedly connected to the side wall of a single tile 1. The top side wall of adjacent tiles 1 is provided with a connecting groove 3 for the connecting rod 101 to be inserted. There are two connecting blocks 102, which are slidably connected to the opposite side walls of the connecting rod 101. The top side wall of a single tile 1 is provided with a connecting groove 4 for the connecting block 102 to be inserted. There are two springs 103, which are respectively provided with two connecting blocks 102. The two ends of the springs 103 abut against the inner walls of the connecting blocks 102 and the connecting rod 101, respectively.

[0050] like Figure 6 and Figure 7 As shown, abutment block 104 is fixedly connected to the top side wall of connecting block 3 102. Abutment block 104 has an inclined surface on one side. Push block 105 is vertically slidably connected to the side wall of connecting rod 101. Abutment block 104 slides and engages with push block 105 through its inclined surface. Push block 2 106 is vertically slidably connected to the top side wall of connecting rod 3 101. The top end of push block 2 106 extends to the outside of the top of connecting rod 3 101. Push block 105 is fixedly set on the side wall of push block 2 106.

[0051] like Figure 6 and Figure 7As shown, after the worker fixes a single tile 1, the sides of adjacent tiles 1 are stacked on top of the side of the single tile 1, and the connecting rod 3 101 is inserted into the corresponding connecting groove 3. During this process, the connecting block 3 102 contacts the side wall of the single tile 1 through its inclined surface and compresses the spring 3 103 to move until the connecting block 3 102 corresponds to the connecting groove 4. The spring 3 103 pushes the connecting block 3 102 into the connecting groove 4, thereby realizing the connection between adjacent tiles 1. When it is necessary to disassemble the tile 1, the push block 2 106 can be pressed down. The push block 2 106 drives the push block 1 105 to move. The push block 1 105 can push the abutment block 104 and the connecting block 3 102 into the side wall of the connecting rod 3 101 through the inclined surface of the abutment block 104, thereby separating the adjacent tiles 1.

[0052] like Figure 3 and Figure 8 As shown, the batten strip 3 is provided with a reinforcing mechanism 12, which includes a reinforcing rod 121. One end of the reinforcing rod 121 is fixedly disposed on the side wall of the batten strip 3. The side wall of the base 4 is provided with a reinforcing groove for the reinforcing rod 121 to be inserted. The reinforcing mechanism 12 also includes a fourth connecting component 122 for connecting the base 4.

[0053] like Figure 3 and Figure 8 As shown, when the workers hang the battens 3, they insert the reinforced end into the reinforcement groove of the base 4, and lock the reinforcement rod 121 to the base 4 through the fourth connecting component 122. This can effectively disperse the vertical load borne by the battens 3 when subjected to strong winds, reduce the possibility of the battens 3 bending and deforming, and improve the overall wind resistance of the roof.

[0054] like Figure 3 and Figure 8 As shown, the fourth connecting component 122 includes a connecting block 1221 and a spring 1222. The connecting block 1221 is horizontally slidably connected to the side wall of the reinforcing rod 121, and the side of the connecting block 1221 near the base 4 is provided with an inclined surface. The side wall of the base 4 is provided with a connecting groove 5 for the connecting block 1221 to be inserted. The spring 1222 is horizontally disposed in the side wall of the reinforcing rod 121, and the two ends of the spring 1222 abut against the inner wall of the connecting block 1221 and the reinforcing rod 121, respectively. A push rod 1223 is vertically slidably connected in the side wall of the reinforcing rod 121. The top end of the push rod 1223 is fixedly disposed on the side wall of the push rod 1 83. A connecting rod 1224 is provided between the push rod 1223 and the connecting block 1221. The two ends of the connecting rod 1224 are respectively hinged to the opposite side walls of the push rod 1223 and the connecting block 1221.

[0055] like Figure 3 and Figure 8As shown, when the batten 3 moves the reinforcing rod 121 downwards, the reinforcing rod 121 moves the connecting block 1221. During this process, the connecting block 1221 contacts the side wall of the base 4 through its inclined surface and compresses the spring 1222, moving it into the side wall of the reinforcing rod 121. When the reinforcing rod 121 is in place, the connecting block 1221 corresponds to the connecting groove 5. The spring 1222 pushes the connecting block 1221 to move and insert it into the connecting groove 5, thereby realizing the connection between the reinforcing rod 121 and the base 4, further improving the batten 121's performance. The strength of the connection between the tile strip 3 and the base 4; when the staff needs to disassemble the tile strip 3, the push rod 83 can be pressed into the side wall of the tile strip 3. The push rod 83 drives the connecting block 102-81 to move into the side wall of the connecting rod 101-7, and at the same time drives the push rod 1223 to move. The push rod 1223 drives the connecting rod 1224 to rotate. The connecting rod 1224 drives the connecting block 1221 to move into the side wall of the reinforcing rod 121, so that the tile strip 3 can be separated from the water strip 2 and the base 4, making it convenient for the staff to disassemble the tile strip 3.

[0056] The implementation principle of this application embodiment is as follows: During installation, multiple bases 4 are first pre-embedded and fixed along the inclined direction of the roof. Then, the water-guiding strip 2 is inserted into the groove of the base 4. The positioning block 5 is driven by the driving component 6 to be inserted into the positioning groove of the water-guiding strip 2 to fix the water-guiding strip 2. Subsequently, the connecting rod 7 of the tile strip 3 is inserted into the connecting groove of the water-guiding strip 2. The connection between the tile strip 3 and the water-guiding strip 2 is realized by the first connecting component 8. Finally, the tile 1 is connected to the tile strip 3 by the second connecting component 9 of the tile 1, and the adjacent tiles 1 are interlocked by the third connecting component 10, which reduces the possibility of a single tile 1 falling off when encountering strong winds and greatly improves the wind resistance stability and waterproof integrity of the roof.

[0057] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A stable tiled roof structure, comprising tiles (1), water-guiding strips (2), and battens (3), characterized in that: The system includes multiple bases (4), which are embedded in the roof along the slope of the roof. Each base (4) has a groove for inserting the water-guiding strip (2). A positioning block (5) slides in the side wall of the base (4). The side wall of the water-guiding strip (2) has a positioning groove for inserting the positioning block (5). The base (4) is equipped with a driving component (6) for moving the positioning block (5). A connecting rod (7) is fixedly installed on the side wall of the tile strip (3). A connecting groove (7) is opened on the side wall of the water-guiding strip (2) for inserting the connecting rod (7). A first connecting component (8) for connecting the water-guiding strip (2) is provided in the connecting rod (7). A second connecting component (9) for connecting the tile strip (3) is provided on a single tile (1). A third connecting component (10) for connecting adjacent tiles (1) is also provided on a single tile (1).

2. The stable tile roof structure according to claim 1, characterized in that: The drive assembly (6) includes a lead screw (61) and a slide rod (62). The lead screw (61) is rotatably disposed on the side wall of the base (4), and the slide rod (62) slides within the side wall of the base (4). The slide rod (62) is threadedly engaged with the lead screw (61), and one end of the positioning block (5) is fixedly disposed on the slide rod (62).

3. The stable tile roof structure according to claim 1, characterized in that: The first connecting component (8) includes a connecting block (81) and a spring (82). The connecting block (81) slides on the side wall of the connecting rod (7). The side wall of the water-following strip (2) is provided with a connecting groove for the connecting block (81) to be inserted. One side of the connecting block (81) is provided with an inclined surface. The connecting block (81) slides and cooperates with the side wall of the water-following strip (2) through its inclined surface. The two ends of the spring (82) respectively abut against the side wall of the connecting block (81) and the connecting rod (7).

4. A stable tiled roof structure according to claim 3, characterized in that: A push rod (83) slides inside the side wall of the connecting rod (7). One end of the push rod (83) passes through and slides on the side wall of the tile strip (3). A connecting rod (84) is provided between the push rod (83) and the connecting block (81). The two ends of the connecting rod (84) are respectively hinged to the push rod (83) and the connecting block (81).

5. A stable tiled roof structure according to claim 1, characterized in that: The second connecting component (9) includes a second connecting rod (91) and a second connecting block (92). One end of the second connecting rod (91) is fixedly disposed on the side wall of the tile (1). The tile strip (3) is provided with a second connecting groove for the second connecting rod (91) to be inserted. The second connecting block (92) slides on the side wall of the second connecting rod (91). The side wall of the tile strip (3) is provided with a limiting groove for the second connecting block (92) to be inserted. One side of the second connecting block (92) is provided with an inclined surface. The second connecting block (92) slides and cooperates with the side wall of the tile strip (3) through its inclined surface. The second connecting rod (91) is provided with a second spring (93). The two ends of the second spring (93) respectively abut against the side wall of the second connecting block (92) and the second connecting rod (91).

6. A stable tiled roof structure according to claim 5, characterized in that: A push rod 2 (94) slides inside the side wall of the connecting rod 2 (91). One end of the push rod 2 (94) passes through and slides on the side wall of the tile (1). A connecting rod 2 (95) is provided between the push rod 2 (94) and the connecting block 2 (92). The two ends of the connecting rod 2 (95) are respectively hinged to the push rod 2 (94) and the connecting block 2 (92).

7. A stable tiled roof structure according to claim 2, characterized in that: A baffle (11) is fixedly provided on the side wall of the slide bar (62). The baffle (11) is slidably disposed on the side wall of the base (4), and the baffle (11) can abut against the top side wall of the water flow strip (2).

8. A stable tiled roof structure according to claim 1, characterized in that: The tile strip (3) is provided with a reinforcing mechanism (12), the reinforcing mechanism (12) includes a reinforcing rod (121), the side wall of the base (4) is provided with a reinforcing groove for the reinforcing rod (121) to be inserted, and the reinforcing mechanism (12) also includes a fourth connecting component (122) for connecting the base (4).