A roof tile anti-falling structure of a mid-high-rise round building wooden structure

CN224755284UActive Publication Date: 2026-09-15SHANGRAO JIUNIU GRAND CANYON TOURIST ATTRACTIONS COMPREHENSIVE DEVELOPMENT CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202522010001.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-18
Publication Date
2026-09-15
Estimated Expiration
2035-09-18

AI Technical Summary

Technical Problem

但传统的木结构建筑物的屋顶盖瓦铺设方式安全性不足,缺少对瓦片加固加强手段,一般都只是将盖瓦直接放置在屋顶,依靠相互间的摩擦力固定,为了防止掉落,有的也只是在屋顶周围设置档条阻挡

Benefits of technology

[0014] Through the above technical solution, this utility model pre-drills holes along the edges of the lower roof tiles, partially nails into the rafters for fixation, and repeatedly wraps copper wire around the tops of the nails through the tile holes for fixation. During roof tile installation, cement mortar is filled into the gaps between the tiles to strengthen the connection and stability. After the roof tile installation is completed, the edges of the roof are reinforced with cement mortar using blue bricks, further enhancing stability. This optimizes the structural nodes of the building roof, ensuring a firm and stable connection between the roof tiles and the wooden structure. It preserves the original traditional residential facade while meeting the functional requirements of modern high-rise buildings. It solves the technical problems of insufficient safety in traditional wooden roof tile installation processes, the risk of tile falling, and the lack of tile reinforcement methods. Thus, it achieves a novel design, a reasonable structure, and good application results.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224755284U_ABST
    Figure CN224755284U_ABST
Patent Text Reader

Abstract

The present high-rise round building roof tile anti-falling structure comprises a roof, upper layer roof tiles, lower layer roof tiles, copper wires, nails and cement mortar, the upper layer roof tiles and the lower layer roof tiles are sequentially laid on the roof, the lower layer roof tiles are provided with through holes near the edges of the two sides, the concave surfaces of the lower layer roof tiles are sequentially arranged from top to bottom on the roof, and the roof rafters are exposed between the adjacent two rows of lower layer roof tiles; the lower part of the nail is nailed on the rafters between the adjacent two rows of lower layer roof tiles, one end of the copper wire is wound and fixed on the nail, the other end of the copper wire passes through the through hole of the lower layer roof tile and is fixed on the lower layer roof tile; the concave surfaces of the upper layer roof tiles are sequentially arranged from top to bottom on the two rows of lower layer roof tiles to expose the upper part of the roof rafters, the two sides of the upper layer roof tiles are arranged in the concave surfaces of the two lower layer roof tiles, and the connection part of the upper layer roof tiles and the lower layer roof tiles is coated with cement mortar for fixation. The building roof structure node can be optimized, and the roof tile and the wood structure are firmly and stably connected.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the technical field of roof tile laying for wooden structures, specifically to a fall prevention structure for roof tiles of mid- to high-rise round wooden buildings. Background Technology

[0002] In recent years, with the continuous improvement of people's living standards, tourism has become an integral part of daily life. To cater to tourists' preferences, tourist attractions often construct mid- to high-rise round wooden structures with roof tiles. However, traditional methods of laying roof tiles on wooden structures lack safety and reinforcement. Tiles are typically simply placed directly on the roof, relying on friction to hold them in place. To prevent them from falling, some only have baffles around the perimeter. Clearly, this method is not sturdy enough, especially after years of neglect or during strong winds and rainstorms, posing a risk of tiles falling. This not only affects the roof's waterproofing and aesthetics but can also, in severe cases, injure passersby.

[0003] In view of this, the inventor of this utility model conducted in-depth research on the aforementioned defects in the prior art, which led to the creation of this case. Utility Model Content

[0004] To address the aforementioned technical challenges, we propose a roof tile anti-fall structure for mid- to high-rise round wooden buildings. This structure optimizes the building's roof construction details, ensuring a firm and stable connection between the roof tiles and the wooden structure. It preserves the original traditional residential facade while meeting the functional requirements of modern mid- to high-rise buildings.

[0005] To achieve the above objectives, the technical solution of this utility model is as follows:

[0006] A fall-prevention structure for the roof tiles of a mid-to-high-rise round wooden building includes a roof, upper tiles, and lower tiles. The upper and lower tiles are laid sequentially on the roof. The structure also includes copper wire, nails, and cement mortar. The lower tiles have through holes near their two edges, and are laid in rows from top to bottom with their concave surfaces facing upwards, exposing roof rafters between adjacent rows of lower tiles. The nails are driven into adjacent... On the rafters exposed between the two rows of lower roof tiles, one end of the copper wire is wrapped and fixed to a nail, and the other end passes through the through hole on the lower roof tile and is then fixed to the lower roof tile; the upper roof tiles are laid in rows from top to bottom between the two rows of lower roof tiles, with the concave surface facing down, and are respectively set in the concave surface of the lower roof tiles on both sides, and the cement mortar is applied to the connection between the upper and lower roof tiles for fixation.

[0007] Preferably, in each row of upper and lower cover tiles, the gaps between two contacting upper and lower cover tiles are filled and fixed with cement mortar.

[0008] Preferably, in each row of upper and lower cover tiles, the gaps between two contacting upper and lower cover tiles are filled and fixed with cement mortar.

[0009] Preferably, the roof has blue bricks for pressing the edges between two adjacent rows of upper roof tiles near the bottom, and the blue bricks are fixed to the lower upper roof tiles with cement mortar.

[0010] Preferably, the blue bricks are arranged in two rows, intersecting each other, on the adjacent rows of upper roof tiles, with each row of blue bricks spaced apart between the adjacent rows of upper roof tiles.

[0011] Preferably, the through holes at both edges of the lower cover tile are located on the inner side of the middle of both sides of the lower cover tile and are symmetrical with respect to the center line of the lower cover tile.

[0012] Preferably, the diameter of the through hole at the edge of the lower cover tile is 2-4 mm, and the diameter of the copper wire is consistent with the diameter of the through hole.

[0013] Preferably, the nail is a rust-proof metal nail.

[0014] Through the above technical solution, this utility model pre-drills holes along the edges of the lower roof tiles, partially nails into the rafters for fixation, and repeatedly wraps copper wire around the tops of the nails through the tile holes for fixation. During roof tile installation, cement mortar is filled into the gaps between the tiles to strengthen the connection and stability. After the roof tile installation is completed, the edges of the roof are reinforced with cement mortar using blue bricks, further enhancing stability. This optimizes the structural nodes of the building roof, ensuring a firm and stable connection between the roof tiles and the wooden structure. It preserves the original traditional residential facade while meeting the functional requirements of modern high-rise buildings. It solves the technical problems of insufficient safety in traditional wooden roof tile installation processes, the risk of tile falling, and the lack of tile reinforcement methods. Thus, it achieves a novel design, a reasonable structure, and good application results. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art 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.

[0016] Figure 1This is an overall cross-sectional view of a roof tile anti-fall structure for a mid-to-high-rise round wooden building according to the present invention;

[0017] Figure 2 for Figure 1 A partial sectional view;

[0018] Figure 3 This is a schematic diagram of the connection structure of the lower layer of roof tiles, copper wire, and nails in a roof tile anti-fall structure for a mid-to-high-rise round wooden building according to this utility model.

[0019] Figure 4 This is a schematic diagram of the lower layer of the roof tile structure of a mid-to-high-rise round wooden building, which is designed to prevent the roof tiles from falling.

[0020] Figure 5 This is a schematic diagram of the lower layer of the roof tiles in a mid-to-high-rise round wooden structure roof tile anti-fall structure according to the present invention.

[0021] The numbers in the diagram represent the names of the corresponding components:

[0022] 1. Roof 2. Upper layer of roof tiles 3. Lower layer of roof tiles 31. Through holes 4. Copper wire 5. Nails 6. Cement mortar 7. Rafters 8. Blue bricks Detailed Implementation

[0023] The technical solutions in the embodiments of this utility model will be clearly and completely described below. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0024] The present invention will be further described in detail below with reference to embodiments and specific implementation methods.

[0025] Example

[0026] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, a roof tile anti-fall structure for a mid-to-high-rise round wooden building includes a roof 1, upper roof tiles 2, lower roof tiles 3, copper wire 4, nails 5, and cement mortar 6. The upper roof tiles 2 and lower roof tiles 3 are laid sequentially on the roof 1. The lower roof tiles 3 have through holes 31 near both sides of their edges, and the lower roof tiles 3 are laid in rows from top to bottom with their concave surfaces facing upwards, with roof rafters 7 protruding between adjacent rows of lower roof tiles 3. The lower part of the nails 5 is nailed to the adjacent... On the rafters 7 exposed on the roof 1 between the two rows of lower cover tiles 3, one end of the copper wire 4 is wrapped and fixed to the nail 5, and the other end passes through the through hole 31 on the lower cover tile 3 and is then fixed to the lower cover tile 3; the upper cover tiles 2 are laid in rows from top to bottom between the two rows of lower cover tiles 3 above the exposed roof rafters 7 with the concave surface facing down, and the two sides of the upper cover tiles 2 are respectively set in the concave surface of the lower cover tiles 3 on both sides, and the cement mortar 6 is applied to the connection between the upper cover tiles 2 and the lower cover tiles 3 for fixation.

[0027] The upper cover tile 2 and the lower cover tile 3 are small blue tiles, and when laid on the roof, they include multiple rows of upper and lower small blue tiles. The rafters 7 are set on the roof 1 from top to bottom, and a row of nails 5 is nailed from top to bottom on the rafters between two adjacent rows of lower small blue tiles. The middle part of the copper wire 4 is wrapped and fixed to the nails 5. The two ends of the copper wire 4 pass through the through holes 31 of the two lower small blue tiles closest to the nails 5 on both sides and are fixed to the lower small blue tiles.

[0028] In order to better fix the upper cover tile 2 and the lower cover tile 3, cement mortar 6 is used to fill and fix the gaps between two contacting upper cover tiles 2 and lower cover tiles 3 in each row.

[0029] The roof 1 has blue bricks 8 for edge pressing between two adjacent rows of upper roof tiles 2 near the bottom, and the blue bricks 8 are fixed to the lower upper roof tiles 3 with cement mortar 6. This further reinforces the entire row of upper roof tiles 3 on the roof 1.

[0030] To prevent rainwater from accumulating at the blue bricks 8 during heavy rain, the blue bricks 8 are arranged in two rows on adjacent rows of upper roof tiles 2, with each row of blue bricks 8 spaced apart between adjacent rows of upper roof tiles 2.

[0031] The through holes 31 at both edges of the lower cover tile 3 are located on the inner side of the middle of both sides of the lower cover tile 3 and are symmetrical with respect to the center line of the lower cover tile 3. With this structural design, the lower cover tile 3 can be symmetrically pulled from both sides by the copper wire 4, so that the force distribution on both sides is uniform and the fixation is more secure.

[0032] To prevent water from seeping through the through-holes 31 of the lower cover tile 3 during heavy rain, while also meeting the actual needs of threading the copper wire 4 through the through-holes 31 of the lower cover tile 3, the diameter of the through-holes 31 at the edge of the lower cover tile 3 is 2-4mm, and the diameter of the copper wire 4 is consistent with the diameter of the through-holes 31.

[0033] The nail 5 is a rust-proof metal nail to ensure its durability and prevent it from being damaged by rust, which would affect its performance.

[0034] In actual construction, the main frame is first built according to traditional wooden structure. Before the roof 1 is tiled, holes 2-4mm wide are pre-drilled along the edges of the lower layer of tiles 3, and nails 5 are partially driven into the rafters 7 for fixation. Copper wire 4 passes through the through holes 31 at the edges of the lower layer of tiles 3 and is repeatedly wrapped around the tops of the nails 5 for fixation. When the roof tiles are laid, cement mortar 6 is filled and fixed in the gaps between two adjacent upper layer tiles 2 to strengthen the connection and stability. After the tiles are laid, the blue bricks 8 at the edge of the roof are pressed against the cement mortar 6 for fixation, strengthening the stability. While ensuring that traditional building materials are used for the roof, cement mortar 6 and copper wire 4 are used to conceal and reinforce the roof 1, forming a partial integrated effect of concrete and wood structure. The construction nodes of the building roof are optimized, making the connection between the roof tiles and the wood structure firm and stable, preserving the original traditional residential facade style while meeting the functional requirements of modern high-rise buildings.

[0035] In this example, this invention pre-drills holes along the edges of the lower layer of roof tiles 3, partially nails nails 5 into the rafters 7 for fixation, and repeatedly wraps copper wire 4 around the top of the nails through the through holes 31 of the lower layer of roof tiles 3 for fixation. During roof tile installation, cement mortar 6 is filled into the gaps between two contacting upper layer roof tiles 2 to strengthen the connection and stability. After the roof tile installation is completed, the roof edges are further secured with blue bricks 8 and cement mortar 6 to enhance stability. This optimizes the structural nodes of the building roof, ensuring a firm and stable connection between the roof tiles and the wooden structure. It preserves the original traditional residential facade while meeting the functional requirements of modern high-rise buildings. It solves the technical problems of insufficient safety in traditional wooden roof tile installation processes, the risk of tile falling, and the lack of tile reinforcement methods. It achieves the goals of novel design, reasonable structure, and good application effect.

[0036] The above description is only a preferred embodiment of the anti-fall structure for roof tiles of a mid-to-high-rise round wooden building according to this utility model. It should be noted that for those skilled in the art, several modifications and improvements can be made without departing from the inventive concept of this utility model, and these all fall within the protection scope of this utility model.

Claims

1. A roof tile anti-fall structure for a mid-to-high-rise round wooden building, comprising a roof, an upper layer of tiles, and a lower layer of tiles, wherein the upper and lower layers of tiles are sequentially laid on the roof, characterized in that, It also includes copper wire, nails, and cement mortar. The lower layer of roof tiles has through holes near both sides of the edge, and the lower layer of roof tiles are laid in rows from top to bottom with the concave side facing up, with the roof rafters exposed between adjacent rows of lower layer roof tiles. The lower part of the nails is nailed to the exposed roof rafters between adjacent rows of lower layer roof tiles. One end of the copper wire is wrapped and fixed to the nail, and the other end passes through the through hole in the lower layer of roof tile and is then fixed to the lower layer of roof tile. The upper layer of roof tiles is laid in rows from top to bottom with the concave side facing down, above the exposed roof rafters between two rows of lower layer roof tiles, and the two sides of the upper layer of roof tiles are respectively set in the concave side of the lower layer of roof tiles on both sides. The cement mortar is applied to the connection between the upper layer of roof tiles and the lower layer of roof tiles for fixation.

2. The anti-fall structure for the roof tiles of a mid-to-high-rise round wooden building according to claim 1, characterized in that, The upper and lower roof tiles are small blue tiles, and when laid on the roof, they include multiple rows of upper and lower small blue tiles. The rafters are set on the roof from top to bottom, and a row of nails is nailed from top to bottom on the rafters between two adjacent rows of lower small blue tiles. The middle part of the copper wire is wrapped and fixed to the nails, and the two ends of the copper wire pass through the through holes of the two lower small blue tiles closest to the nails on both sides and are fixed to the lower small blue tiles.

3. The anti-fall structure for the roof tiles of a mid-to-high-rise round wooden building according to claim 2, characterized in that, In each row of upper and lower cover tiles, the gaps between two contacting upper and lower cover tiles are filled and fixed with cement mortar.

4. The anti-fall structure for the roof tiles of a mid-to-high-rise round wooden building according to claim 3, characterized in that, The roof has blue bricks for pressing the edges between two adjacent rows of upper roof tiles near the bottom, and the blue bricks are fixed to the lower upper roof tiles with cement mortar.

5. The anti-fall structure for the roof tiles of a mid-to-high-rise round wooden building according to claim 4, characterized in that, The blue bricks are arranged in two rows, intersecting each other, on the upper roof tiles of adjacent rows, with each row of blue bricks spaced apart between the upper roof tiles of adjacent rows.

6. The anti-fall structure for the roof tiles of a mid-to-high-rise round wooden building according to claim 5, characterized in that, The through holes on both sides of the lower cover tile are located on the inner side of the middle of both sides of the lower cover tile and are symmetrical with respect to the center line of the lower cover tile.

7. The anti-fall structure for the roof tiles of a mid-to-high-rise round wooden building according to claim 6, characterized in that, The diameter of the through hole at the edge of the lower cover tile is 2-4mm, and the diameter of the copper wire inserted in the through hole is consistent with the diameter of the hole.

8. The anti-fall structure for the roof tiles of a mid-to-high-rise round wooden building according to claim 7, characterized in that, The nails are rust-resistant metal nails.