Water conservancy project slope protection supporting structure
By combining a soil stabilization frame, a blunt triangular insert, and a pressing disc, and using a threaded pin to screw into the soil layer, the problem of poor grounding pin fixing effect in existing technologies is solved, thereby improving the stability of the slope protection and construction efficiency.
Patent Information
- Application Number
- CN202520187313.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-06
AI Technical Summary
The existing grounding pin structure of hydraulic slope protection devices can only be inserted into the shallow soil layer, resulting in limited fixing effect and insufficient slope stability.
The system employs a combination structure of a soil-stabilizing frame, a blunt triangular insert, a pressing disc, and a threaded pin. The threaded pin is screwed into the soil layer, causing the pressing disc to squeeze and limit the blunt triangular insert, thus enhancing the stability of the connection with the soil layer. The combination of locking strips and locking grooves further improves the aesthetics and stability of the installation.
It enhances the connection stability between the soil stabilization frame and the soil layer, improving the overall stability and construction efficiency of the slope protection.
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Figure CN223893315U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of water conservancy slope protection technology, and more specifically, to a slope protection support structure for water conservancy projects. Background Technology
[0002] Water conservancy slopes are often eroded by water flow or rainwater, making their soil susceptible to erosion and landslides. In particular, slopes with a large degree of inclination are prone to embankment failure. For slopes with a large degree of inclination, concrete slope protection and lime-soil slope protection are often used. These methods are expensive, have a long construction period, and require a lot of manpower and resources.
[0003] The prior art publication (announcement) number CN218894029U provides a slope protection support structure for water conservancy projects. In the related technology of this device, the installation work can be carried out conveniently and quickly through the cooperation of structures such as fixing frame, grounding pin, fixing hole, grounding post, spiral strip, cross pressure plate, and through hole. Furthermore, the surface of the grounding post is provided with spiral strip, which allows the grounding post to be stably inserted into the ground with high friction, making it less likely to loosen under the action of external force.
[0004] Although the existing technical solutions described above can achieve the relevant beneficial effects through the existing technical structure, they still have the following drawbacks: the multiple grounding pin structure used in this slope protection device can only be inserted into the shallow soil layer, and the fixing effect is limited.
[0005] In view of this, we propose a slope protection support structure for water conservancy projects. Utility Model Content
[0006] To address the problems mentioned in the background art, this application provides a slope protection support structure for hydraulic engineering.
[0007] The slope protection support structure for water conservancy projects provided in this application adopts the following technical solution:
[0008] A slope protection support structure for hydraulic engineering, comprising:
[0009] Soil stabilization frame;
[0010] The blunt triangular bracket is hinged and installed at each corner of the soil stabilization frame, and can be snapped into the soil stabilization frame.
[0011] The pressing plate is slidably connected to one end of multiple blunt triangular sockets;
[0012] Threaded pins penetrate the pressing plate and the soil stabilization frame.
[0013] By adopting the above technical solution, when the threaded pin that penetrates the pressing plate and the soil stabilization frame is screwed into the soil layer, the blunt triangular insert is squeezed and rotated by the pressing plate pressed by the threaded pin. This causes the blunt triangular insert inserted into the soil layer to rotate and squeeze the soil layer, increasing the connection between the triangular insert and the soil layer and enhancing the stability of the connection between the soil stabilization frame and the soil layer.
[0014] As an optional solution to the technical solution of this application, the soil stabilization frame has two locking grooves on its outside in a staggered and symmetrical structure. One end of each locking groove is fixedly connected to a locking strip, which is set in a semi-column shape and can engage with the locking groove.
[0015] By adopting the above technical solution, and using the interlocking of the clips and the interlocking grooves, it is possible to ensure that two adjacent soil stabilization frames can be installed together, thereby improving the aesthetics and stability of the soil stabilization frame installation.
[0016] As an optional solution to the technical solution of this application, the blunt triangular insert has a triangular prism structure, and a plurality of ball bearings are embedded in the sliding groove at one end of the blunt triangular insert.
[0017] By adopting the above technical solution, the triangular prism structure can reduce the resistance to soil breaking when the blunt triangular insert is subjected to force and flips, making the flipping of the blunt triangular insert smoother.
[0018] As an optional solution to the technical solution of this application, the pressing plate includes a plate body, and a plurality of clamping plates are fixedly connected to one side of the plate body in an annular, equally spaced structure. The clamping plates are slidably engaged with the soil stabilization frame and the blunt triangular insert, and one end of the clamping plate is rotatably connected to a sliding column that can slide and limit the blunt triangular insert.
[0019] By adopting the above technical solution, when the pressing plate limits the displacement, the clamping plate limited in the groove of the blunt triangular bracket is squeezed and rotated by the sliding column, so that it is stably connected and limited with the soil layer, ensuring the stability of the soil stabilization frame installation.
[0020] As an optional solution to the technical solution of this application, the disc body has a ring-shaped, equally spaced structure on one side with multiple guide rods fixedly connected to it. The guide rods, which have an annular groove on the outside, can be inserted and matched with the soil stabilization frame.
[0021] By adopting the above technical solution, the guide rod can not only limit the trajectory of the pressing plate and ensure the stability of the pressing action of the pressing plate, but also insert into the soil layer to improve the connection limit of the pressing plate to the soil stabilization frame, making the overall structure of the soil stabilization frame more firmly connected to the soil layer.
[0022] In summary, this application includes at least one of the following beneficial technical effects:
[0023] 1. This application utilizes a threaded pin that penetrates the pressing plate and the soil stabilization frame to screw into the soil layer. When the pressing plate is pressed by the threaded pin, the blunt triangular insert is squeezed and rotated, thereby causing the blunt triangular insert inserted into the soil layer to rotate and squeeze the soil layer, increasing the connection between the triangular insert and the soil layer, and enhancing the stability of the connection between the soil stabilization frame and the soil layer.
[0024] 2. This application utilizes guide rods to not only limit the trajectory of the pressing plate and ensure the stability of the pressing action of the pressing plate, but also to insert into the soil layer, thereby improving the connection limit of the pressing plate to the soil stabilization frame and making the overall structure of the soil stabilization frame more firmly connected to the soil layer. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the overall structure of the slope protection support structure for water conservancy projects disclosed in a preferred embodiment of this application, shown on the left side.
[0026] Figure 2 This is a top view of the overall structure of the slope protection support structure for water conservancy projects disclosed in a preferred embodiment of this application;
[0027] Figure 3 This is a schematic diagram of the overall structural compression state of a water conservancy engineering slope protection support structure disclosed in a preferred embodiment of this application;
[0028] Figure 4 This is a partial structural connection diagram of a water conservancy engineering slope protection support structure disclosed in a preferred embodiment of this application;
[0029] Figure 5 This is a schematic diagram of the soil stabilization frame structure of the slope protection support structure for water conservancy projects disclosed in a preferred embodiment of this application;
[0030] The following are the labels in the diagram: 1. Soil stabilization frame; 2. Blunt triangular insert; 3. Pressing disc; 4. Threaded pin; 11. Engaging groove; 12. Locking strip; 31. Disc body; 32. Locking plate; 33. Sliding column; 34. Guide rod. Detailed Implementation
[0031] The present application will be further described in detail below with reference to the accompanying drawings.
[0032] Reference Figure 1-4 The embodiments of this application describe a slope protection support structure for hydraulic engineering, comprising:
[0033] Soil stabilization frame 1;
[0034] The blunt triangular bracket 2 is hinged and installed at each corner of the soil stabilization frame 1, and can be snapped into the soil stabilization frame 1.
[0035] The pressing plate 3 is slidably connected to one end of multiple blunt triangular inserts 2;
[0036] Threaded pin 4 penetrates the pressing disc 3 and the soil stabilization frame 1.
[0037] The slope protection support structure of this water conservancy project, when the threaded pin 4 through the pressing plate 3 and the soil stabilization frame 1 is screwed into the soil layer, the pressing plate 3 pressed by the threaded pin 4 squeezes the blunt triangular bracket 2 to limit and flip, thereby causing the blunt triangular bracket 2 inserted into the soil layer to limit and flip, and squeeze the soil layer, increasing the connection between the triangular bracket 2 and the soil layer, and enhancing the stability of the connection between the soil stabilization frame 1 and the soil layer.
[0038] Reference Figure 5 and Figure 1 In the water conservancy engineering slope protection support structure described in this application embodiment, the soil stabilization frame 1 has a staggered symmetrical structure with two locking grooves 11. One end of the locking groove 11 is fixedly connected to a locking strip 12. The locking strip 12 is set in a semi-column structure and can be locked and engaged with the locking groove 11.
[0039] The slope protection support structure of this water conservancy project, by using the interlocking of the clip 12 and the interlocking groove 11, can ensure that the two adjacent soil stabilization frames 1 can be installed together, thereby improving the aesthetics and stability of the soil stabilization frame 1 installation.
[0040] Reference Figure 4 and Figure 1 In the water conservancy engineering slope protection support structure described in this application embodiment, the blunt triangular bracket 2 is set as a blunt triangular prism structure, and a plurality of ball bearings are embedded in the sliding groove opened at one end of the blunt triangular bracket 2.
[0041] The slope protection support structure of this water conservancy project utilizes a triangular prism structure, which reduces the resistance to soil breaking when the blunt triangular insert 2 is subjected to force and flips, making the flipping of the blunt triangular insert 2 smoother.
[0042] Reference Figure 4 and Figure 1 The hydraulic engineering slope protection support structure described in this application includes a pressure plate 31. On one side of the plate 31, a plurality of clamping plates 32 are fixedly connected in an annular, equally spaced structure. The clamping plates 32 are slidably engaged with the soil stabilization frame 1 and the blunt triangular insert 2. One end of the clamping plate 32 is rotatably connected to a sliding column 33 that can slide and limit the movement with the blunt triangular insert 2. On one side of the plate 31, a plurality of guide rods 34 are fixedly connected in an annular, equally spaced structure. The guide rods 34 with an annular groove on the outside can be inserted into the soil stabilization frame 1.
[0043] The slope protection support structure of this water conservancy project utilizes the limiting displacement of the pressing plate 3. When the pressing plate 3 is in the groove of the blunt triangular bracket 2, the clamping plate 32, under the action of the sliding column 33, squeezes the blunt triangular bracket 2 to limit its rotation, so that it is stably connected and limited with the soil layer, ensuring the stability of the soil stabilization frame 1 installation. The guide rod 34 can not only limit the trajectory of the pressing plate 3 to ensure the stability of the pressing action of the pressing plate 3, but also insert into the soil layer to improve the connection and limitation of the pressing plate 3 to the soil stabilization frame 1, making the overall structure of the soil stabilization frame 1 more firmly connected with the soil layer.
[0044] Working principle: After the soil stabilizing frame 1 with the blunt triangular bracket 2 installed is inserted into the soil layer, the operator inserts the threaded pin 4 into the slot between the pressing plate 3 and the soil stabilizing frame 1, and continuously rotates the threaded pin 4 to make a spiral connection with the soil layer.
[0045] As the threaded pin 4 continues to rotate into the soil layer, the pressing disc 3 squeezes and rotates the blunt triangular bracket 2 inserted into the soil layer, thereby enhancing the stability between the blunt triangular bracket 2 and the soil layer.
[0046] Finally, the soil stabilization frame 1 is installed by sequentially connecting and laying the locking strips 12 through the locking groove 11.
Claims
1. A slope protection support structure for hydraulic engineering, characterized in that, include: Soil stabilization frame (1); The blunt triangular bracket (2) is hinged to each corner of the soil stabilization frame (1) and can be snapped into the soil stabilization frame (1). The pressing plate (3) is slidably connected to one end of multiple blunt triangular inserts (2); Threaded pin (4) penetrates the pressing plate (3) and the soil stabilization frame (1).
2. The slope protection support structure for water conservancy projects according to claim 1, characterized in that: The soil stabilization frame (1) has two locking grooves (11) on its outside in a staggered symmetrical structure. One end of each locking groove (11) is fixedly connected to a locking strip (12). The locking strip (12) is set in a semi-column structure and can engage with the locking groove (11).
3. The slope protection support structure for water conservancy projects according to claim 1, characterized in that: The blunt triangular insert (2) has a blunt triangular prism structure, and a plurality of ball bearings are embedded in the sliding groove at one end of the blunt triangular insert (2).
4. The slope protection support structure for water conservancy projects according to claim 1, characterized in that: The pressing disc (3) includes a disc body (31). A plurality of clamping plates (32) are fixedly connected to one side of the disc body (31) in an annular, equally spaced structure. The clamping plates (32) are slidably engaged with the soil stabilization frame (1) and the blunt triangular insert (2). One end of the clamping plate (32) is rotatably connected to a sliding column (33) that can slide and limit the blunt triangular insert (2).
5. The slope protection support structure for water conservancy projects according to claim 4, characterized in that: The disc (31) has a ring-shaped, equally spaced structure on one side with multiple guide rods (34) fixedly connected. The guide rods (34) with an annular groove on the outside can be inserted into the soil stabilization frame (1).
Citation Information
Patent Citations
Water conservancy project slope protection supporting structure
CN218894029U