Super waterproof tile structure
By introducing a hydrophobic coating and a water channel design into the tile structure, the problem of water seepage between tiles is solved, achieving efficient rainwater drainage and improving the waterproofing effect of the building roof.
Patent Information
- Application Number
- CN202423176174.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-12-23
AI Technical Summary
Existing tile structures are prone to rainwater seepage into gaps after long-term use, leading to water leakage problems and affecting the waterproofing effect of building roofs.
It adopts an ultra-waterproof tile structure, including flat tiles, raised tiles and water-repellent plates. Through the water-repellent coating and water channel design, it changes the flow path of rainwater and guides rainwater to drain quickly.
It significantly improves the waterproofing performance of the roof, reduces the risk of leakage, extends the service life of the roof, and reduces maintenance costs and safety hazards.
Smart Images

Figure CN223562423U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to building material technical field especially relates to a super waterproof tile structure. BACKGROUND
[0002] Tile is a kind of sheet material for building roof covering, in terms of function, tile is mainly used for roof waterproof, prevent rainwater from penetrating into the house damage building structure;It can also insulate heat, reduce the heat of outside into the house, maintain the comfort of indoor temperature to a certain extent;Tile also plays a protective role to roof, resist the sun exposure, snow erosion and other natural factors, thereby prolong the service life of building roof, and the diverse color and shape of tile can also play the role of decorating building, make the appearance of building more aesthetic.
[0003] Such as Chinese patent publication No. CN221941769U discloses a tile structure, including the fastening portion, tile middle part main part and protruding portion connected in turn;The fastening portion of one tile structure and the protruding portion of another adjacent tile structure are mutually fastened.
[0004] When encountering long time rainfall weather, rainwater will penetrate into the tiny gap between tiles by gravity and wind drive, due to the limitation of tile laying process or displacement and deformation after long-term use, so that the gap can not completely prevent the intrusion of rainwater, once rainwater penetrates into the gap between tiles, under the combined influence of gravity and capillary action, it will continue to spread to the inside of roof, and then cause the water content of roof structure layer to increase, cause seepage problem, cause water stain, mildew and other conditions on indoor ceiling, affect the appearance and sanitary environment of building interior. UTILITY MODEL CONTENT
[0005] The utility model aims at solving the problem that rainwater can penetrate into the gap of tile in prior art, and the phenomenon of seepage occurs, thereby affecting the waterproof effect of building roof, and provides a super waterproof tile structure.
[0006] In order to achieve the above object, the utility model adopts the following technical scheme: a super waterproof tile structure, including two flat tiles, a convex tile and a convex tile No. 2, the two ends of a flat tile are fixedly connected with convex tile No. 1 and convex tile No. 2 respectively, the other end of convex tile No. 2 is fixedly connected with another flat tile, one end of the side of convex tile No. 1 is fixedly connected with a hydrophobic plate No. 1, one side of the hydrophobic plate No. 1 is coated with a hydrophobic coating, and convex tile No. 1 is overlapped above convex tile No. 2 in adjacent super waterproof tile structure.
[0007] Preferably, one end of the hydrophobic plate No. 1 is fixedly connected with a positioning convex strip.
[0008] Preferably, the middle part of one side of the second convex tile is provided with a positioning clamping groove, and the positioning convex strip is movably clamped in the positioning clamping groove.
[0009] Preferably, a plurality of water guide grooves are arranged in a linear manner on one side of the two flat tiles.
[0010] Preferably, the inside of the water guide groove is coated with a hydrophobic coating.
[0011] Preferably, a water guide decoration strip is fixedly connected to the middle part of one end of the two flat tiles, the first convex tile and the second convex tile.
[0012] Preferably, one side of the water guide decoration strip is a water guide inclined surface, and one side of the water guide inclined surface is coated with a hydrophobic coating.
[0013] Compared with the prior art, the advantages and positive effects of the utility model are that:
[0014] 1、In the utility model, the first hydrophobic plate of the first convex tile is arranged at the gap of the structure of the two super waterproof tiles, when the rainwater seeps into the gap, the rainwater cannot continue to flow and seep inwards due to the influence of the hydrophobic coating on the outer side of the first hydrophobic plate, so that the super waterproof tile structure has excellent waterproof effect.
[0015] 2、In the utility model, the water guide groove in the flat tile and the hydrophobic coating coated inside can effectively change the flow path of the rainwater, guide the rainwater to flow stably and orderly towards the edge direction of the super waterproof tile structure, the synergistic effect successfully avoids the situation that the rainwater forms water accumulation on the surface of the flat tile, greatly enhances the waterproof performance of the roof in the process of precipitation, reduces the risk of leakage caused by water accumulation, and significantly improves the overall waterproof effect of the roof. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 A first three-dimensional structure schematic view of the super waterproof tile structure is provided for the utility model;
[0017] Figure 2 A second three-dimensional structure schematic view of the super waterproof tile structure is provided for the utility model;
[0018] Figure 3 A schematic view of the lap joint relationship of the super waterproof tile structure is provided for the utility model;
[0019] Figure 4 A schematic view of the connection relationship between the first convex tile and the second convex tile in the super waterproof tile structure is provided for the utility model.
[0020] Legend: 1. Flat tile; 11. Water channel; 2. No. 1 convex tile; 21. No. 1 drainage board; 211. Positioning convex strip; 3. No. 2 convex tile; 31. Positioning slot; 4. Water-guiding decorative strip; 41. Water-guiding slope. Detailed Implementation
[0021] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described below with reference to the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0022] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed in the following specification.
[0023] Example 1: As Figure 1 - Figure 4 As shown, this utility model provides a super waterproof tile structure, including two flat tiles 1, a first convex tile 2, and a second convex tile 3. The two ends of one flat tile 1 are fixedly connected to the first convex tile 2 and the second convex tile 3, respectively. The other end of the second convex tile 3 is fixedly connected to another flat tile 1. One end of one side of the first convex tile 2 is fixedly connected to a first hydrophobic plate 21. One side of the first hydrophobic plate 21 is coated with a hydrophobic coating. The first convex tile 2 overlaps above the second convex tile 3 in the adjacent super waterproof tile structure. One end of the first hydrophobic plate 21 is fixedly connected to a positioning protrusion 211. A positioning groove 31 is opened in the middle of one side of the second convex tile 3, and the positioning protrusion 211 is movably engaged inside the positioning groove 31.
[0024] The specific setup and function of this embodiment are described below. When overlapping two ultra-waterproof tile structures, the groove of the first convex tile 2 in one ultra-waterproof tile structure needs to be aligned with the convex surface of the second convex tile 3 before placing the ultra-waterproof tile structure. This ensures that the first convex tile 2 in the ultra-waterproof tile structure overlaps the second convex tile 3 in the adjacent ultra-waterproof tile structure. At this time, the first drainage plate 21 of the first convex tile 2 is located in the gap at the overlap of the two ultra-waterproof tile structures. When rainwater seeps into this gap, it is affected by the drainage of the outer side of the first drainage plate 21. The water coating prevents further infiltration and penetration, thus giving the super waterproof tile structure excellent waterproof performance. The main component of the hydrophobic coating is fluorocarbon compound, which makes the surface energy of the coating very low, resulting in a large contact angle of rainwater on its surface, thereby achieving a hydrophobic effect. When two super waterproof tile structures are overlapped, the positioning protrusion 211 at one end of the first hydrophobic plate 21 will engage with the positioning groove 31 in the middle of one side of the second protruding tile 3, positioning the first protruding tile 2 and ensuring that the two super waterproof tile structures can be stably overlapped together.
[0025] Example 2: Figure 1 - Figure 4 As shown, a super waterproof tile structure includes two flat tiles 1, a first convex tile 2, and a second convex tile 3. The two ends of one flat tile 1 are fixedly connected to the first convex tile 2 and the second convex tile 3, respectively. The other end of the second convex tile 3 is fixedly connected to another flat tile 1. One end of one side of the first convex tile 2 is fixedly connected to a first hydrophobic plate 21. One side of the first hydrophobic plate 21 is coated with a hydrophobic coating. The first convex tile 2 overlaps above the second convex tile 3 in the adjacent super waterproof tile structure. Several water-guiding grooves 11 are opened on one side of the two flat tiles 1 in a linear arrangement. The inside of the water-guiding grooves 11 is coated with a hydrophobic coating. A water-guiding decorative strip 4 is fixedly connected to the middle of one end of the two flat tiles 1, the first convex tile 2, and the second convex tile 3. One side of the water-guiding decorative strip 4 is a water-guiding slope 41. One side of the water-guiding slope 41 is coated with a hydrophobic coating.
[0026] The overall effect of this embodiment is that when rainfall occurs, rainwater gradually accumulates above the flat tile 1. Due to gravity, the rainwater tends to flow downwards. Simultaneously, the water-guiding channels 11 within the flat tile 1 and the hydrophobic coating applied to them begin to function. The structure of the water-guiding channels 11 and the properties of the hydrophobic coating work together to effectively change the flow path of the rainwater, guiding it to flow steadily and orderly towards the edge of the ultra-waterproof tile structure. This synergistic effect successfully prevents rainwater from accumulating on the surface of the flat tile 1, greatly enhancing the roof's waterproofness during rainfall. The waterproofing performance during the water diversion process reduces the risk of leakage caused by water accumulation, thus significantly improving the overall waterproofing effect of the roof. When rainwater flows to the edge of the flat tile 1 under the guidance of the water diversion channel 11, it falls smoothly onto the water diversion slope 41 above the water diversion decorative strip 4. The water diversion slope 41 is also coated with a hydrophobic coating, which allows the water droplets falling on its surface to overcome the resistance of surface tension and other factors under the action of hydrophobic properties, and continue to slide downwards. The flow of water droplets on the water diversion slope 41 is very smooth, and finally falls to the ground, successfully completing the entire water diversion operation process. Through such a rainwater diversion system from the flat tile 1 to the water diversion decorative strip 4, the rainwater on the roof can be quickly and effectively guided and discharged, which not only ensures the waterproofing performance of the roof, but also reduces the damage that water accumulation may cause to the roof structure and the interior of the building, providing more reliable waterproof protection for the building, extending the service life of the roof, and reducing the maintenance costs and safety hazards caused by rainwater erosion.
[0027] The method for using the device and the working principle are as follows: when two super waterproof tile structures are overlapped, the groove of the first convex tile 2 in one super waterproof tile structure is aligned with the convex surface of the second convex tile 3, and then the super waterproof tile structure is placed to ensure that the first convex tile 2 in the super waterproof tile structure is overlapped on the second convex tile 3 in the adjacent super waterproof tile structure, at this time, the first water-repellent plate 21 of the first convex tile 2 is located in the gap between the two super waterproof tile structures, when the rainwater seeps into the gap, it cannot continue to flow inward and seep in due to the influence of the water-repellent coating on the outer side of the first water-repellent plate 21, so that the super waterproof tile structure has excellent waterproof effect; the main component of the water-repellent coating is fluorocarbon compound, so that the surface energy of the coating is very low, so that the contact angle of the rainwater on the surface is very large, thereby realizing the water-repellent effect; when the precipitation occurs, the rainwater will gradually accumulate above the flat tile 1, at this time, due to the action of gravity, the rainwater has the tendency to flow downward, at the same time, the water guide groove 11 in the flat tile 1 and the water-repellent coating coated inside also begin to play a role, the structure of the water guide groove 11 and the characteristics of the water-repellent coating cooperate with each other, which can effectively change the flow path of the rainwater and guide the rainwater to flow stably and orderly towards the edge direction of the super waterproof tile structure; when the rainwater flows to the edge of the flat tile 1 under the guidance of the water guide groove 11, it will fall on the water guide inclined surface 41 above the water guide decorative strip 4, the water guide inclined surface 41 is also coated with a water-repellent coating, which makes the water droplets falling on the surface further overcome the resistance of surface tension and other factors under the action of the water-repellent characteristics, continuously slide downward, the flow process of the water droplets on the water guide inclined surface 41 is very smooth, and finally falls to the ground, successfully completing the whole water guide operation process.
[0028] The above is only a preferred embodiment of the present application, and is not intended to limit the present application in other forms. Any skilled person in the art can modify or change the above disclosed technical content to equivalent embodiments applied to other fields, but any simple modification, equivalent change and modification made on the basis of the technical essence of the present application to the above embodiments still falls within the protection scope of the present application.
Claims
1. A super waterproof tile structure, comprising two flat tiles (1), a first convex tile (2), and a second convex tile (3), wherein two ends of one of the flat tiles (1) are fixedly connected to the first convex tile (2) and the second convex tile (3) respectively, and the other end of the second convex tile (3) is fixedly connected to the other flat tile (1), characterized in that: One end of the first convex tile (2) is fixedly connected to a first hydrophobic plate (21), and one side of the first hydrophobic plate (21) is coated with a hydrophobic coating. The first convex tile (2) overlaps above the second convex tile (3) in the adjacent ultra-waterproof tile structure.
2. The ultra-waterproof tile structure according to claim 1, characterized in that: One end of the first hydrophobic plate (21) is fixedly connected to a positioning protrusion (211).
3. The ultra-waterproof tile structure according to claim 2, characterized in that: A positioning slot (31) is provided in the middle of one side of the second convex tile (3), and the positioning protrusion (211) is movably engaged in the inside of the positioning slot (31).
4. The ultra-waterproof tile structure according to claim 1, characterized in that: Several water channels (11) are provided on one side of the two flat tiles (1) in a linear arrangement.
5. The ultra-waterproof tile structure according to claim 4, characterized in that: The interior of the water inlet trough (11) is coated with a hydrophobic coating.
6. The ultra-waterproof tile structure according to claim 1, characterized in that: A water-guiding decorative strip (4) is fixedly connected to the middle of one end of the two flat tiles (1), the first convex tile (2), and the second convex tile (3).
7. The ultra-waterproof tile structure according to claim 6, characterized in that: One side of the water-guiding decorative strip (4) is a water-guiding slope (41), and one side of the water-guiding slope (41) is coated with a hydrophobic coating.