Road slope reinforcing structure

By designing splicing grooves and reinforcement components, the problems of inconvenient assembly and difficult disassembly of existing reinforcement structures are solved, enabling convenient disassembly and replacement. The stability and practicality of the reinforcement structure are improved, and soil erosion is reduced.

CN224148740UActive Publication Date: 2026-04-21ZHEJIANG HAOAN CONSTR CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHEJIANG HAOAN CONSTR CO LTD
Filing Date
2025-05-07
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing road slope reinforcement structures are inconvenient to assemble, disassemble, and replace, resulting in insufficient practicality and inability to meet diverse usage needs.

Method used

The design incorporates splicing grooves and reinforcement components, enabling the reinforcement plates to be securely installed. Water pipes and filters are used to reduce soil loss, and the reinforcement plates can be individually removed and replaced.

Benefits of technology

It enables convenient assembly of the reinforced structure and quick disassembly and replacement in case of local damage, improving the practicality and stability of the structure and reducing soil erosion.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224148740U_ABST
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Abstract

The utility model belongs to the technical field of slope reinforcing, and particularly relates to a road slope reinforcing structure which comprises a slope body, a retaining wall is arranged on the left side of the slope body, first reinforcing plates are arranged in front of and behind the upper portion of the left side of the slope body, and a second reinforcing plate is arranged in the center of the left side of the slope body. The opposite sides of the first reinforcing plate and the second reinforcing plate are each provided with a plurality of evenly-distributed splicing grooves, splicing blocks are inserted into the splicing grooves, and a third reinforcing plate is fixedly connected between every two opposite splicing blocks; the third reinforcing plate, the first reinforcing plate and the second reinforcing plate can be spliced by inserting the splicing blocks into the splicing grooves, and are stably mounted through the reinforcing assemblies after being spliced, so that when the single first reinforcing plate or the single second reinforcing plate or the single third reinforcing plate on the slope body is damaged, the single first reinforcing plate or the single second reinforcing plate or the single third reinforcing plate can be conveniently detached and replaced; therefore, the reinforcing structure can meet more use requirements and is high in practicability.
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Description

Technical Field

[0001] This utility model relates to the field of slope reinforcement technology, specifically a road slope reinforcement structure. Background Technology

[0002] A road slope refers to the sloping section between the ground and the road surface during road construction. It typically occurs in mountainous, hilly areas, or any sloping region. The stability of the slope directly affects road safety, especially in the event of natural disasters such as heavy rain, landslides, and collapses. To ensure safe passage, effective measures must be taken to reinforce and manage the slope. Therefore, reinforcement structures are needed to strengthen road slopes.

[0003] Patent application CN210104769U discloses a road slope reinforcement structure, including a reinforcement frame installed on the slope body and a retaining wall. The retaining wall is installed on the slope surface near the toe of the slope body, and the reinforcement frame is located on the slope body above the retaining wall. The reinforcement frame includes multiple first reinforcement sections vertically parallel to the slope surface of the slope body, and multiple rows of second reinforcement sections are arranged between two adjacent first reinforcement sections. The first reinforcement sections are provided with first water diversion channels, and the second reinforcement sections are provided with second water diversion channels. The first water diversion channels and the second water diversion channels are connected. This utility model strengthens the protection of the slope toe and reduces soil erosion caused by rainwater erosion at the slope toe.

[0004] However, existing road slope reinforcement structures are inconvenient to assemble and splice during use, and it is also inconvenient to disassemble and replace parts when they are damaged. As a result, the reinforcement structure cannot meet more usage needs and is not practical enough. Therefore, a new road slope reinforcement structure is proposed to address the above problems. Utility Model Content

[0005] To overcome the shortcomings of existing technologies and solve the problems of inconvenient assembly and splicing of the reinforcement frame during use, and inconvenience in disassembling and replacing parts when damaged, thus making the reinforcement structure unable to meet more usage needs and not practical enough, this utility model proposes a road slope reinforcement structure.

[0006] The technical solution adopted by this utility model to solve its technical problem is: a road slope reinforcement structure of this utility model, including a slope body, wherein a retaining wall is provided on the left side of the slope body.

[0007] Reinforcing plate one is provided at the front and rear of the upper left side of the slope, and reinforcing plate two is provided at the center of the left side of the slope. Multiple evenly distributed splicing slots are opened on the opposite side of reinforcing plate one and reinforcing plate two. Splicing blocks are inserted into the splicing slots. Reinforcing plate three is fixedly connected between every two opposite splicing blocks. Reinforcing components are provided inside the splicing blocks. Reinforcing plate one, reinforcing plate two, and reinforcing plate three are all fixedly installed to the slope through reinforcing components.

[0008] Preferably, the reinforcement component includes a reinforcement rod penetrating the splicing block. The bottom end of the reinforcement rod is inserted into the slope body. An inner groove is formed inside the reinforcement rod. Two through slots are formed on one side of the inner groove. A side insert rod slides through the through slot. A spring is fixedly connected between the outer surface of the side insert rod and the inner sidewall of the through slot. The spring is sleeved on the outer surface of the side insert rod. A slider is slidably connected inside the inner groove. A threaded rod passes through the upper surface of the inner groove. The threaded rod is threadedly connected to the reinforcement rod.

[0009] Preferably, a plurality of evenly distributed water guide pipes are fixedly installed inside the retaining wall, one end of each water guide pipe extends to the outside of the retaining wall, a fixing ring is fixedly connected inside the water guide pipe, and a filter screen is fixedly connected inside the fixing ring.

[0010] Preferably, both the first reinforcing plate and the second reinforcing plate are provided with through guide grooves at their tops, and the top of the retaining wall is provided with multiple evenly distributed water guide grooves, with the guide grooves corresponding to the water guide grooves.

[0011] Preferably, the top end of the side insert rod is arc-shaped, and the bottom end of the threaded rod and the top end of the side insert rod are both in contact with the outer surface of the slider.

[0012] Preferably, the top end of the threaded rod passes through the top end of the reinforcing rod, and a handle plate is fixedly connected to the top end of the threaded rod.

[0013] Preferably, the reinforcing plate three is configured in an arc shape, and the arc segment of the reinforcing plate three protrudes upward.

[0014] The advantages of this utility model are:

[0015] 1. The reinforcement plate three of this utility model can be spliced ​​with reinforcement plate one and reinforcement plate two by inserting splicing blocks into the splicing groove, and then installed securely by reinforcement components after splicing. Therefore, when a single reinforcement plate one, a single reinforcement plate two, or a single reinforcement plate three on the slope is damaged, it can be easily disassembled and replaced, so that the reinforcement structure can meet more usage needs and has strong practicality.

[0016] 2. In this utility model, after the reinforcing rod is inserted into the slope body through the splicing block, the threaded rod can be rotated to make the threaded rod rotate and move. The rotation and movement of the threaded rod compresses the slider, and after the slider is compressed, it slides inside the inner groove. Then, the sliding of the slider compresses the side insertion rod, and after the side insertion rod is compressed, it comes out from inside the reinforcing rod and is inserted into the slope body. This can strengthen the insertion of the reinforcing rod and make the connection between the reinforcing rod and the slope body more stable. Attached Figure Description

[0017] 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.

[0018] Figure 1 This is a schematic diagram of the three-dimensional structure in Example 1;

[0019] Figure 2 This is a schematic diagram of the left-side structure in Example 2;

[0020] Figure 3 As in Example 1 Figure 2 Enlarged structural diagram at point A in the middle;

[0021] Figure 4 This is a schematic diagram of a partial cross-section of the structure in Example 1;

[0022] Figure 5 As in Example 1 Figure 4 Enlarged structural diagram at point B.

[0023] In the diagram: 1. Slope; 2. Reinforcement plate one; 3. Reinforcement plate two; 4. Retaining wall; 5. Water channel; 6. Guide channel; 7. Reinforcement plate three; 8. Water pipe; 9. Fixing ring; 10. Filter screen; 11. Splicing groove; 12. Splicing block; 13. Reinforcement component; 131. Handle plate; 132. Reinforcement rod; 133. Threaded rod; 134. Inner groove; 135. Sliding block; 136. Side insertion rod; 137. Through groove; 138. Spring. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model. Example 1

[0025] Please see Figure 1-5 As shown, a road slope reinforcement structure includes a slope 1, and a retaining wall 4 is provided on the left side of the slope 1.

[0026] Reinforcing plates 1 and 2 are installed at the front and rear of the upper left side of the slope 1. A reinforcing plate 2 and 3 are installed at the center of the left side of the slope 1. Multiple evenly distributed splicing slots 11 are opened on the opposite side of reinforcing plates 1 and 2 and 3. Splicing blocks 12 are inserted into the splicing slots 11. A reinforcing plate 3 and 7 are fixedly connected between every two opposite splicing blocks 12. A reinforcing component 13 is installed inside the splicing block 12. Reinforcing plates 1 and 2, 3 and 7 are all fixedly installed to the slope 1 by the reinforcing component 13. During operation, the slope 1 is supported by a retaining wall 4. The structure prevents and reduces soil erosion on slope 1. It also reinforces the soil on slope 1 by using reinforcement plate 1, reinforcement plate 2, reinforcement plate 3, and reinforcement plate 3, and the reinforcement plate 3, together with reinforcement plate 1, 2, and 3, can be spliced ​​by inserting splicing block 12 into splicing groove 11. After splicing, it is firmly installed by reinforcement component 13. Therefore, when a single reinforcement plate 1, 2, 3, or 7 on slope 1 is damaged, it can be easily disassembled and replaced, so that the reinforcement structure can meet more usage needs and has strong practicality.

[0027] The reinforcement component 13 includes a reinforcement rod 132 penetrating the splicing block 12. The bottom end of the reinforcement rod 132 is inserted into the slope 1. An inner groove 134 is formed inside the reinforcement rod 132. Two through slots 137 are formed on one side of the inner groove 134. A side insert rod 136 slides through the through slot 137. A spring 138 is fixedly connected between the outer surface of the side insert rod 136 and the inner wall of the through slot 137. The spring 138 is sleeved on the outer surface of the side insert rod 136. A sliding connection is formed inside the inner groove 134. The slider 135 has a threaded rod 133 penetrating its upper surface inside the inner groove 134. The threaded rod 133 is threadedly connected to the reinforcing rod 132. During operation, the reinforcing rod 132, penetrating the splicing block 12 and the first reinforcing plate 2, connects the first reinforcing plate 2 and the third reinforcing plate 7 to the slope 1. Similarly, the reinforcing rod 132, penetrating the splicing block 12 and the second reinforcing plate 3, connects the second reinforcing plate 3 and the third reinforcing plate 7 to the slope 1. After the reinforcing rod 132 is inserted into the slope 1 through the splicing block 12, the threaded rod 133 is rotated. 33 causes the threaded rod 133 to move, and the rotational movement of the threaded rod 133 compresses the slider 135. After being compressed, the slider 135 slides inside the inner groove 134. Then, the sliding of the slider 135 compresses the side insertion rod 136. After being compressed, the side insertion rod 136 emerges from inside the reinforcing rod 132 and inserts into the slope 1 to reinforce the insertion of the reinforcing rod 132, making the connection between the reinforcing rod 132 and the slope 1 more stable. When the side insertion rod 136 moves, it compresses the spring 138, and the spring 138... The rebound force after being squeezed facilitates the reset of the side insertion rod 136. At the same time, when it is necessary to disassemble and replace the damaged reinforcement plate 12, reinforcement plate 23, or reinforcement plate 37, rotating the threaded rod 133 causes the side insertion rod 136 to retract inside the reinforcement rod 132 by the rebound force of the spring 138. Then, pulling out the reinforcement rod 132 will disengage the reinforcement plate 12, reinforcement plate 23, or reinforcement plate 37 from the connection between them and the slope 1. Then, the reinforcement plate 12, reinforcement plate 23, or reinforcement plate 37 can be disassembled and replaced.

[0028] Multiple evenly distributed water pipes 8 are fixedly installed inside the retaining wall 4. One end of each water pipe 8 extends to the outside of the retaining wall 4. A fixing ring 9 is fixedly connected inside the water pipe 8, and a filter screen 10 is fixedly connected inside the fixing ring 9. During operation, rainwater inside the retaining wall 4 can flow out through the water pipes 8, and the water pipes 8 are connected to the inside of the slope 1. Therefore, the soil loss can be reduced through the fixing ring 9 and the filter screen 10.

[0029] Both the first reinforcing plate 2 and the second reinforcing plate 3 have through-type guide grooves 6 on their tops, and the top of the retaining wall 4 has multiple evenly distributed water guide grooves 5. The guide grooves 6 and the water guide grooves 5 correspond to each other. During operation, rainwater can be guided through the guide grooves 6 and the water guide grooves 5, which can reduce the impact on the soil when rainwater flows down the slope 1 and reduce the loss of soil on the slope 1 under the impact of rainwater.

[0030] The top end of the side insert rod 136 is set in an arc shape, and the bottom end of the threaded rod 133 and the top end of the side insert rod 136 are both in contact with the outer surface of the slider 135. During operation, it is convenient for the threaded rod 133 to rotate and squeeze the slider 135, and it is convenient for the side insert rod 136 to be squeezed by the movement of the slider 135.

[0031] The top end of the threaded rod 133 passes through the top end of the reinforcing rod 132, and a handle plate 131 is fixedly connected to the top end of the threaded rod 133; during operation, the handle plate 131 facilitates the rotation of the threaded rod 133. Example 2

[0032] Please see Figure 2 As shown in the first embodiment, as another implementation of this utility model, the reinforcing plate 3 7 is configured in an arc shape, and the arc segment of the reinforcing plate 3 7 protrudes upward; during operation, it is convenient for the top of the reinforcing plate 3 7 to retain soil on the slope 1 and reduce soil loss, thereby making the reinforcing plate 3 7 more effective.

[0033] Working principle: The retaining wall 4 blocks and reduces soil loss on the slope 1. Rainwater from inside the retaining wall 4 flows out through the water pipe 8, which is connected to the interior of the slope 1. The fixing ring 9 and filter screen 10 further reduce soil loss. Simultaneously, the soil on the slope 1 is reinforced by reinforcement plates 1-2, 2-3, and 3-7. Reinforcement plate 3-7 is connected to reinforcement plates 1-2 and 2-3 via splicing blocks 12 inserted into splicing grooves 11. After splicing, the reinforcement components 13 are used for further reinforcement. The installation is stable, so when a single reinforcing plate 12, 2, 3, or 37 on slope 1 is damaged, it can be easily disassembled and replaced. This allows the reinforcement structure to meet more usage needs and is highly practical. When the reinforcement component 13 is in use, the reinforcing rod 132 passes through the splicing block 12 and the reinforcing plate 12 to connect the reinforcing plate 12, the reinforcing plate 37, and the slope 1. Similarly, the reinforcing rod 132 passes through the splicing block 12 and the reinforcing plate 23 to connect the reinforcing plate 23, the reinforcing plate 37, and the slope 1. After the splicing block 12 is inserted into the slope 1, the threaded rod 133 can be rotated, causing it to move. This rotation of the threaded rod 133 compresses the slider 135, which then slides within the inner groove 134. The sliding of the slider 135 then compresses the side insertion rod 136, causing it to emerge from the reinforcing rod 132 and insert into the slope 1, reinforcing the connection of the reinforcing rod 132 and making the connection between the reinforcing rod 132 and the slope 1 more stable. The side insertion rod 136, during its movement, also affects the spring... The spring 138 is compressed, and the spring 138 has a rebound force after being compressed, which facilitates the reset of the side insertion rod 136. At the same time, when it is necessary to disassemble and replace the damaged reinforcement plate 12, reinforcement plate 23, or reinforcement plate 37, the threaded rod 133 is rotated so that the side insertion rod 136 is retracted into the reinforcement rod 132 by the rebound force of the spring 138, and then the reinforcement rod 132 is pulled out so that the reinforcement plate 12, reinforcement plate 23, or reinforcement plate 37 is disconnected from the slope 1. Then the reinforcement plate 12, reinforcement plate 23, or reinforcement plate 37 can be disassembled and replaced.

[0034] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0035] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model.

Claims

1. A road slope reinforcement structure, comprising a slope (1), wherein a retaining wall (4) is provided on the left side of the slope (1); characterized in that A first reinforcing plate (2) is provided on the front and rear sides of the upper left side of the slope (1). A second reinforcing plate (3) is provided at the center of the left side of the slope (1). Multiple evenly distributed splicing slots (11) are provided on the opposite side of the first reinforcing plate (2) and the second reinforcing plate (3). A splicing block (12) is inserted into the splicing slot (11). A third reinforcing plate (7) is fixedly connected between every two opposite splicing blocks (12). A reinforcing component (13) is provided inside the splicing block (12). The first reinforcing plate (2), the second reinforcing plate (3), and the third reinforcing plate (7) are all fixedly installed on the slope (1) through the reinforcing component (13).

2. The road slope reinforcing structure according to claim 1, characterized by: The reinforcement component (13) includes a reinforcement rod (132) that penetrates the splicing block (12). The bottom end of the reinforcement rod (132) is inserted into the slope (1). An inner groove (134) is provided inside the reinforcement rod (132). Two through slots (137) are provided on one side of the inner groove (134). A side insert rod (136) slides through the through slot (137). A spring (138) is fixedly connected between the outer surface of the side insert rod (136) and the inner side wall of the through slot (137). The spring (138) is sleeved on the outer surface of the side insert rod (136). A slider (135) is slidably connected inside the inner groove (134). A threaded rod (133) passes through the upper surface of the inner groove (134). The threaded rod (133) is threadedly connected to the reinforcement rod (132).

3. The road slope reinforcing structure according to claim 2, characterized by: Multiple evenly distributed water pipes (8) are fixed inside the retaining wall (4). One end of the water pipe (8) extends to the outside of the retaining wall (4). A fixing ring (9) is fixedly connected inside the water pipe (8). A filter screen (10) is fixedly connected inside the fixing ring (9).

4. The road slope reinforcing structure according to claim 3, characterized by: Both the first reinforcing plate (2) and the second reinforcing plate (3) have through guide grooves (6) on their tops, and the top of the retaining wall (4) has multiple evenly distributed water guide grooves (5), with the guide grooves (6) corresponding to the water guide grooves (5).

5. The road slope reinforcing structure according to claim 4, characterized by: The top end of the side insert rod (136) is set in an arc shape, and the bottom end of the threaded rod (133) and the top end of the side insert rod (136) are both in contact with the outer surface of the slider (135).

6. The road slope reinforcing structure according to claim 5, wherein: The top end of the threaded rod (133) passes through the top end of the reinforcing rod (132), and a handle plate (131) is fixedly connected to the top end of the threaded rod (133).

7. The road slope reinforcing structure according to claim 6, characterized by: The reinforcing plate three (7) is configured in an arc shape, and the arc segment of the reinforcing plate three (7) protrudes upward.

Citation Information

Patent Citations

  • Road slope reinforcing structure

    CN210104769U