Scaffold pedal antiskid and drainage integrated structure

By setting anti-slip textures and longitudinal drainage grooves on the scaffolding boards, combined with water collection channels and guide holes, the problems of slipping on the boards and poor drainage in rainy weather are solved, improving safety and service life.

CN224078660UActive Publication Date: 2026-04-03GUANGDONG DACAI CONSTR ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing scaffolding planks are prone to slipping in rainy or damp environments and have poor drainage, posing safety hazards. Furthermore, prolonged soaking can lead to corrosion.

Method used

The pedal body is designed with anti-slip textures and longitudinal drainage grooves, combined with a water collection trough and a guide hole design to achieve rapid drainage of accumulated water, and the drainage efficiency is accelerated by the support grid.

Benefits of technology

It improves the anti-slip performance and drainage efficiency of the scaffolding, enhancing its safety and service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a scaffold pedal anti-skid and drainage integrated structure which comprises a pedal body arranged on a scaffold, anti-skid lines are arranged on the top surface of the pedal body, and the anti-skid lines protrude in the longitudinal direction of the pedal body. A plurality of drainage grooves are formed in the pedal body, the drainage grooves extend in the longitudinal direction of the pedal body, and the drainage grooves are communicated with gaps of the anti-skid lines; water collecting grooves are formed in the edges of the two sides of the pedal body, and a flow guide hole is formed in the bottom of each water collecting groove and is inclined. The utility model discloses.
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Description

Technical Field

[0001] This utility model relates to the field of building equipment technology, and in particular to an integrated structure for anti-slip and drainage of scaffolding pedals. Background Technology

[0002] The surfaces of existing scaffolding construction platforms are mostly flat or have simple embossed designs, which can easily become slippery in rainy or damp environments, posing a safety hazard. Furthermore, the platforms often use a closed structure, preventing rainwater from draining quickly enough, exacerbating the slipperiness of the surface, and prolonged soaking can lead to corrosion.

[0003] Therefore, it is urgent to research and develop an integrated anti-slip and drainage structure for scaffolding treads to solve the above-mentioned technical problems. Summary of the Invention

[0004] The purpose of this utility model is to provide an integrated anti-slip and drainage structure for scaffolding pedals. This integrated anti-slip and drainage structure can improve the anti-slip and drainage performance of scaffolding, thereby improving the safety and service life of scaffolding.

[0005] To achieve the above objectives, the present invention provides an integrated anti-slip and drainage structure for scaffolding steps, the specific implementation of which is as follows:

[0006] The scaffolding board anti-slip and drainage integrated structure includes a board body installed on the scaffolding, and anti-slip texture is provided on the top surface of the board body, the anti-slip texture being raised along the longitudinal direction of the board body;

[0007] A plurality of drainage grooves are provided on the pedal body, the drainage grooves extending along the longitudinal direction of the pedal body, and the drainage grooves connecting the gaps of the anti-slip texture.

[0008] Water collection grooves are provided on both sides of the pedal body, and a guide hole is provided at the bottom of each water collection groove. The guide hole is inclined.

[0009] This utility model presents an integrated anti-slip and drainage structure for scaffolding planks. Compared with existing technologies, it improves the anti-slip performance of scaffolding by creating anti-slip patterns on the plank body. These patterns protrude along the longitudinal direction of the plank body, increasing the friction coefficient of the plank surface. Simultaneously, the gaps between the anti-slip patterns serve as a primary drainage path, connecting with drainage grooves on the plank body to allow water accumulated on the plank body to enter the drainage grooves and be discharged. Combined with water collection troughs on both sides of the plank body to collect rainwater and discharge it through inclined guide holes at the bottom, the drainage efficiency is further improved. This achieves the goal of improving the anti-slip and drainage performance of scaffolding, thereby enhancing the safety and service life of scaffolding.

[0010] In some embodiments, a support grid is provided at the bottom of the pedal body, and the drainage groove is connected to the hollow area on the support grid.

[0011] By setting a support grid at the bottom of the pedal body, the hollow area of ​​the support grid and the drainage groove are connected, which can not only support the pedal body, but also accelerate the drainage speed of water accumulated on the pedal body.

[0012] In some embodiments, the open area of ​​the support mesh accounts for ≥40% of the support mesh.

[0013] By setting the proportion of the hollow area of ​​the support grid to ≥40% of the support grid, the weight of the support grid is reduced, making it easier to transport and install.

[0014] In some embodiments, the support grid is an aluminum alloy grid or a galvanized steel grid.

[0015] By setting the support grid to an aluminum alloy grid or a galvanized steel grid, the service life of the support grid can be improved by utilizing the salt spray corrosion resistance of aluminum alloy or galvanized steel materials in humid environments.

[0016] In some embodiments, the anti-slip texture is wavy or serrated, the protrusion height of the anti-slip texture is 1-3mm, and the gap spacing is 3-8mm.

[0017] By setting the anti-slip texture to a wave-like or serrated shape, the construction worker's foot forms multi-angle resistance when it contacts the surface of the pedal body, increasing the coefficient of friction and thus improving the anti-slip effect. Furthermore, the gap between the textures is set to 1-3mm, which can both prevent the accumulation of mud and sand and guide water flow to quickly flow into the drainage groove.

[0018] In some embodiments, the flow guide hole has an inclination angle of 10°-30°, and the inner wall of the flow guide hole is covered with a hydrophobic coating.

[0019] By setting the angle of the guide hole to 10°-30°, the tilt angle forms a natural drainage slope, and gravity is used to make the mud and sand slide down the hole wall. Combined with the effect of reducing scale adhesion by the hydrophobic coating, the drainage efficiency is improved.

[0020] In some embodiments, a filter screen is provided in the water collection tank, and the filter screen is located above the flow guide hole.

[0021] By installing a filter screen in the water collection tank, large particles of silt are intercepted, preventing blockage of the flow guide holes.

[0022] In some embodiments, the filter screen is placed inside the water collection tank.

[0023] By placing the filter screen directly in the water collection tank, the ease of installation and removal of the filter screen is improved, and the difficulty and labor cost of replacing the filter screen are reduced.

[0024] Based on the above technical solution, this utility model has the following beneficial effects compared with the prior art:

[0025] By setting anti-slip patterns on the tread plate body, the anti-slip patterns protrude along the longitudinal direction of the tread plate body to increase the friction coefficient of the tread plate body surface. At the same time, the gaps in the anti-slip patterns serve as a primary drainage path, which connects with the drainage grooves set on the tread plate body to allow water accumulated on the tread plate body to enter the drainage grooves through the gaps and be discharged from the tread plate body. Combined with the water collection troughs set on both sides of the tread plate body to collect rainwater and discharge it through the inclined guide holes at the bottom, the drainage efficiency is further improved. This achieves the goal of improving the anti-slip and drainage performance of the scaffolding, thereby improving the safety and service life of the scaffolding. Attached Figure Description

[0026] Figure 1 This is a top view of the present invention;

[0027] Figure 2 This is a side view of the present invention;

[0028] Figure 3 This is a cross-sectional view of the present invention.

[0029] Explanation of reference numerals in the attached figures:

[0030] 100. Pedal body; 110. Anti-slip texture; 120. Gap; 130. Drainage groove; 140. Water collection tank; 150. Drainage hole; 160. Filter screen; 200. Support grid; 210. Hollowed-out area. Detailed Implementation

[0031] To facilitate understanding of this utility model, the specific embodiments of this utility model will be described in more detail below with reference to the accompanying drawings.

[0032] Unless otherwise specified or defined, the terms "first," "second," etc., used in this document are for distinguishing names only and do not represent a specific number or order.

[0033] Unless otherwise specified or defined, the term “and / or” as used herein includes any and all combinations of one or more of the associated listed items.

[0034] It should be noted that in this article, "fixed to" or "connected to" can mean directly fixed to or connected to a component, or indirectly fixed to or connected to a component.

[0035] like Figure 1-3As shown, the scaffolding board anti-slip and drainage integrated structure provided in this embodiment includes a board body 100 set on the scaffolding, and anti-slip texture 110 is provided on the top surface of the board body 100. The anti-slip texture 110 protrudes along the longitudinal direction of the board body 100.

[0036] A plurality of drainage grooves 130 are provided on the pedal body 100. The drainage grooves 130 extend along the longitudinal direction of the pedal body 100 and the drainage grooves 130 connect the gaps 120 of the anti-slip texture 110.

[0037] Water collection grooves 140 are provided on both sides of the pedal body 100, and a guide hole 150 is provided at the bottom of each water collection groove 140. The guide hole 150 is inclined.

[0038] In some embodiments, a support grid 200 is provided at the bottom of the pedal body 100, and the drainage groove 130 is connected to the hollow area 210 on the support grid 200.

[0039] By setting a support grid 200 at the bottom of the pedal body 100, the hollow area 210 of the support grid 200 and the drainage groove 130 are connected, which can support the pedal body 100 and accelerate the drainage speed of the accumulated water on the pedal body 100.

[0040] In some embodiments, the proportion of the hollowed-out area 210 of the support mesh 200 is ≥ 40% of the support mesh 200.

[0041] By setting the proportion of the hollow area 210 of the support grid 200 to ≥ 40% of the support grid 200, the weight of the support grid 200 is reduced, making it easier to transport and install the support grid 200.

[0042] In some embodiments, the support grid 200 is an aluminum alloy grid or a galvanized steel grid.

[0043] By setting the support grid 200 to an aluminum alloy grid or a galvanized steel grid, the service life of the support grid 200 is improved by utilizing the salt spray corrosion resistance of aluminum alloy or galvanized steel materials in humid environments.

[0044] In some embodiments, the anti-slip texture 110 is wavy or serrated, the protrusion height of the anti-slip texture 110 is 1-3mm, and the spacing of the gap 120 is 3-8mm.

[0045] By setting the anti-slip texture 110 to a wave shape or a sawtooth shape, the construction worker's foot will form multi-angle resistance when it contacts the surface of the pedal body 100, which will increase the coefficient of friction and thus improve the anti-slip effect. In addition, the gap 120 of the texture is set to 1-3mm, which can not only prevent the accumulation of mud and sand, but also guide water flow to quickly flow into the drainage groove 130.

[0046] In some embodiments, the flow guide hole 150 has an inclination angle of 10°-30°, and the inner wall of the flow guide hole 150 is covered with a hydrophobic coating.

[0047] By setting the angle of the 150-degree guide hole to 10°-30°, the tilt angle forms a natural drainage slope, allowing gravity to cause mud and sand to slide down the hole wall. Combined with the hydrophobic coating, this reduces scale adhesion and improves drainage efficiency.

[0048] In some embodiments, a filter screen 160 is provided in the water collection tank 140, and the filter screen 160 is located above the flow guide hole 150.

[0049] By installing a filter screen 160 inside the water collection tank 140, large particles of silt are intercepted, preventing blockage of the guide hole 150.

[0050] In some embodiments, the filter screen 160 is placed inside the water collection tank 140.

[0051] By placing the filter screen 160 directly inside the water collection tank 140, the ease of disassembling and assembling the filter screen 160 is improved, and the difficulty and labor cost of replacing the filter screen 160 are reduced.

[0052] The integrated anti-slip and drainage structure for scaffolding treads provided in this embodiment, compared with the prior art, increases the friction coefficient of the scaffolding surface by providing anti-slip textures 110 on the tread body 100. The anti-slip textures 110 protrude along the longitudinal direction of the tread body 100. At the same time, the gaps 120 of the anti-slip textures 110 serve as a primary drainage path, communicating with the drainage grooves 130 provided on the tread body 100. This allows water accumulated on the tread body 100 to enter the drainage grooves 130 through the gaps 120 and be discharged from the tread body 100. In conjunction with the water collection troughs 140 provided on both sides of the tread body 100 to collect rainwater and discharge it through the inclined guide holes 150 at the bottom, the drainage efficiency is further improved. This achieves the goal of improving the anti-slip and drainage performance of the scaffolding, thereby improving the safety and service life of the scaffolding.

[0053] Based on the disclosure and teachings of the above specification, those skilled in the art can make changes and modifications to the above embodiments. Therefore, this utility model is not limited to the specific embodiments disclosed and described above, and some modifications and changes to this utility model should also fall within the protection scope of the claims of this utility model. Furthermore, although some specific terms are used in this specification, these terms are only for convenience of explanation and do not constitute any limitation on this utility model.

Claims

1. A scaffold board anti-skid and drainage integrated structure, characterized in that, The utility model provides a kind of scaffold footboard, including the footboard body (100) being arranged on scaffold, anti-skid line (110) is equipped on the top surface of the footboard body (100), the anti-skid line (110) is protruded along the longitudinal direction of footboard body (100); Several drainage grooves (130) are opened in the footboard body (100), the drainage grooves (130) extend along the longitudinal direction of the footboard body (100), and the drainage grooves (130) are communicated with the gap (120) of the anti-skid line (110); Water collecting tank (140) is equipped on both side edges of the footboard body (100), and flow guide hole (150) is equipped on the bottom of each water collecting tank (140), and the flow guide hole (150) is inclined.

2. The scaffold board slip prevention and drainage integrated structure according to claim 1, characterized in that, Support grid (200) is equipped on the bottom of the footboard body (100), and the drainage groove (130) is communicated with the hollow area (210) on the support grid (200).

3. The scaffold board slip-resistant and drainage integrated structure according to claim 2, characterized in that, The hollow area (210) of the support grid (200) accounts for more than 40% of the support grid (200).

4. The scaffold board slip-resistant and drainage integrated structure according to claim 3, characterized in that, The support grid (200) is aluminum alloy grid or galvanized steel grid.

5. The integrated antiskid and drainage structure of the scaffold board according to any one of claims 1-4, characterized in that, The anti-skid line (110) is wave-shaped or zigzag, the protruding height of anti-skid line (110) is 1-3mm, and the interval of gap (120) is 3-8mm.

6. The integrated antiskid and drainage structure of the scaffold board according to any one of claims 1-4, characterized in that, The inclination angle of the flow guide hole (150) is 10°-30°, and the inner wall of the flow guide hole (150) is covered with hydrophobic coating.

7. The integrated antiskid and drainage structure of the scaffold board according to any one of claims 1-4, characterized in that, Filter screen (160) is arranged in the water collecting tank (140), and the filter screen (160) is located above the flow guide hole (150).

8. The scaffold board slip-resistant and drainage integrated structure according to claim 7, wherein, The filter screen (160) is placed in the water collecting tank (140).