Earthwork anti-landslide supporting device
By using support components and spring structures in the earthwork anti-slide support device, the problem of soil softening under rainwater erosion was solved, the stable connection between the baffle and the soil was enhanced, and the protective effect was improved.
Patent Information
- Application Number
- CN202520064591.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-13
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-01-13
AI Technical Summary
Existing earthwork landslide protection devices are weakened by rainwater erosion, causing the soil to become loose and the connection between the baffle and the soil to become unstable, thus reducing the protective effect.
The structure employs supporting components including baffles, support plates, springs, positioning pins, and anti-detachment grooves. The springs keep the bottom plate in contact with the soil in rainy weather, enhancing the stability of the baffles, while the pins and anti-detachment grooves improve the firmness of insertion into the soil.
Maintaining a stable connection between the baffle and the soil during rainy weather improves the overall stability and protective effect of the landslide protection device.
Smart Images

Figure CN223951803U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of fence protection devices, and more specifically, to an earthwork anti-slide support device. Background Technology
[0002] Earthwork refers to the amount of work involved in excavation, backfilling, and transportation during construction. It is usually measured in cubic meters and is sometimes simply referred to as earthwork. Excavated soil is often piled up to form small hills, and these hills are sometimes described as earthwork. Since the excavated soil is usually transported away, when backfilling is required, the excavated soil needs to be piled up nearby to facilitate subsequent backfilling operations. The existing method of piling up soil is usually to gradually increase its height. However, when the height of the earthwork reaches a certain level, it is easy to cause landslides, which poses a certain danger. Therefore, an earthwork anti-slide support device is needed.
[0003] However, the existing technology still has the following shortcomings in use: when the soil mound is protected by the baffle, the soil structure will tend to become loose and soft once it is subjected to continuous erosion by rainwater. This change directly weakens the original stable connection between the base plate and the soil, making it difficult to improve the stability of the baffle.
[0004] Therefore, there is an urgent need for an earthwork anti-slide support device to solve the above problems. Utility Model Content
[0005] To achieve the above-mentioned objectives, this utility model provides the following technical solution:
[0006] An earthwork landslide prevention support device to improve the above-mentioned problems.
[0007] The application is as follows:
[0008] An earthwork landslide prevention support device includes a baffle plate, on which support components are connected:
[0009] The supporting component includes a pressure block fixedly connected to the baffle, a support plate rotatably connected to the pressure block, a base plate rotatably connected to the end of the support plate away from the pressure block, a spring connecting the baffle and the support plate, a plurality of evenly distributed first pins detachably connected inside the baffle, and a positioning pin fixedly connected below the base plate.
[0010] As a preferred technical solution of this application, a first rotating block is rotatably connected to the baffle, a second rotating block is rotatably connected to the support plate, and the spring is fixedly connected between the first rotating block and the second rotating block.
[0011] As a preferred technical solution of this application, the first pin includes a pointed head and a cylindrical body, and the bottom end of the positioning pin is conical.
[0012] As the preferred technical scheme of the present application, the baffle is provided with a anti-falling groove, the first pin is fixedly connected with an anti-falling block, and the anti-falling block is clamped in the anti-falling groove by rotating the anti-falling block.
[0013] As the preferred technical scheme of the present application, the baffle is provided with a anti-falling groove, the first pin is fixedly connected with an anti-falling block, and the anti-falling block is clamped in the anti-falling groove by rotating the anti-falling block.
[0014] As the preferred technical scheme of the present application, the baffle is provided with a anti-falling groove, the first pin is fixedly connected with an anti-falling block, and the anti-falling block is clamped in the anti-falling groove by rotating the anti-falling block.
[0015] As the preferred technical scheme of the present application, the baffle is provided with a anti-falling groove, the first pin is fixedly connected with an anti-falling block, and the anti-falling block is clamped in the anti-falling groove by rotating the anti-falling block.
[0016] In the scheme of the present application:
[0017] After the bottom plate is fixed to the ground by the positioning pin, when the soil is soft in rainy days, the positioning pin on the bottom plate can be pulled by the spring to always contact with the soil, which is beneficial to improve the stability of the baffle. In the prior art, when the soil pile is protected by the baffle, once the continuous erosion of rainwater is encountered, the soil structure tends to be loose and soft, which directly weakens the stable connection effect between the bottom plate and the soil, and it is inconvenient to improve the stability of the baffle. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 It is an overall structural schematic view of the soil anti-landslide supporting device provided by the present application;
[0019] Figure 2 It is an overall structural schematic view of the soil anti-landslide supporting device provided by the present application;
[0020] Figure 3 It is an overall structural schematic view of the soil anti-landslide supporting device provided by the present application;
[0021] Figure 4 It is an overall structural schematic view of the soil anti-landslide supporting device provided by the present application; Figure 1 It is an enlarged view of structure A in the soil anti-landslide supporting device provided by the present application;
[0022] Figure 5 It is an enlarged view of structure B in the soil anti-landslide supporting device provided by the present application. Figure 3 It is an enlarged view of structure B in the soil anti-landslide supporting device provided by the present application.
[0023] As shown in the figure: 100, baffle; 101, the first rotating block; 102, the pressing block; 103, the support plate; 104, the bottom plate; 105, the spring; 106, the first pin; 107, the positioning pin; 108, the anti-off groove; 109, the anti-off block; 110, the stabilizing plate; 111, the anti-skid pin; 112, the mounting groove; 113, the mounting block; 114, the dismounting groove; 115, the communication groove; 116, the second pin; 117, the second rotating block. DETAILED DESCRIPTION
[0024] In order to make the purpose, technical scheme and advantages of the utility model embodiment more clear, the technical scheme in the utility model embodiment will be clearly and completely described below in combination with the drawings. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all the embodiments.
[0025] As shown in the figure: 100, baffle; 101, the first rotating block; 102, the pressing block; 103, the support plate; 104, the bottom plate; 105, the spring; 106, the first pin; 107, the positioning pin; 108, the anti-off groove; 109, the anti-off block; 110, the stabilizing plate; 111, the anti-skid pin; 112, the mounting groove; 113, the mounting block; 114, the dismounting groove; 115, the communication groove; 116, the second pin; 117, the second rotating block. Figures 1-4 The support component includes the pressing block 102 fixedly connected to the baffle 100, the support plate 103 rotatably connected to the pressing block 102, and the bottom plate 104 rotatably connected to one end of the support plate 103 away from the pressing block 102.
[0026] The baffle 100 and the support plate 103 are connected with the spring 105, the baffle 100 is detachably connected with a plurality of first pins 106 evenly distributed inside, the bottom plate 104 is fixedly connected with the positioning pin 107 below, and the stability of the baffle 100 is further improved under the action of the spring 105.
[0027] As shown in the figure: 100, baffle; 101, the first rotating block; 102, the pressing block; 103, the support plate; 104, the bottom plate; 105, the spring; 106, the first pin; 107, the positioning pin; 108, the anti-off groove; 109, the anti-off block; 110, the stabilizing plate; 111, the anti-skid pin; 112, the mounting groove; 113, the mounting block; 114, the dismounting groove; 115, the communication groove; 116, the second pin; 117, the second rotating block. Figures 1-4 As a preferred embodiment, on the basis of the above mode, the baffle 100 is further rotatably connected with the first rotating block 101, the support plate 103 is rotatably connected with the second rotating block 117, and the spring 105 is fixedly connected between the first rotating block 101 and the second rotating block 117.
[0028] As shown in the figure: 100, baffle; 101, the first rotating block; 102, the pressing block; 103, the support plate; 104, the bottom plate; 105, the spring; 106, the first pin; 107, the positioning pin; 108, the anti-off groove; 109, the anti-off block; 110, the stabilizing plate; 111, the anti-skid pin; 112, the mounting groove; 113, the mounting block; 114, the dismounting groove; 115, the communication groove; 116, the second pin; 117, the second rotating block. Figures 1-3 As a preferred embodiment, on the basis of the above mode, the first pin 106 includes a sharp head and a columnar portion, and the bottom end of the positioning pin 107 is conically arranged.
[0029] As shown in the figure: 100, baffle; 101, the first rotating block; 102, the pressing block; 103, the support plate; 104, the bottom plate; 105, the spring; 106, the first pin; 107, the positioning pin; 108, the anti-off groove; 109, the anti-off block; 110, the stabilizing plate; 111, the anti-skid pin; 112, the mounting groove; 113, the mounting block; 114, the dismounting groove; 115, the communication groove; 116, the second pin; 117, the second rotating block. Figures 1-5As shown, in a preferred embodiment, based on the above method, the baffle 100 is further provided with an anti-detachment groove 108, and an anti-detachment block 109 is fixedly connected to the first pin 106. After the anti-detachment block 109 passes through the anti-detachment groove 108, the anti-detachment block 109 is rotated so that the anti-detachment groove 108 and the anti-detachment block 109 are misaligned and engaged. The anti-detachment block 109 can improve the firmness of the first pin 106 inserted into the soil.
[0030] like Figures 1-2 As shown, in a preferred embodiment, based on the above method, a stabilizing plate 110 is fixedly connected below the baffle 100, and a plurality of evenly distributed anti-slip pins 111 are fixedly connected below the stabilizing plate 110. The bottom end of the anti-slip pins 111 is conical. Under the action of the stabilizing plate 110, the baffle 100 can be supported, making it more practical.
[0031] like Figures 1-5 As shown, in a preferred embodiment, based on the above method, the stabilizing plate 110 is further provided with mounting grooves 112 on both sides, and mounting blocks 113 are detachably connected to the mounting grooves 112. The stabilizing plate 110 is provided with a plurality of evenly distributed disassembly grooves 114, and the mounting blocks 113 are provided with a plurality of evenly distributed connecting grooves 115. The positions of the disassembly grooves 114 and the connecting grooves 115 correspond to each other. By having the disassembly grooves 114 and the connecting grooves 115 correspond, it is beneficial to expand the protection range of the soil and improve the use effect.
[0032] like Figures 1-4 As shown, in a preferred embodiment, based on the above method, a second pin 116 is detachably connected to the stabilizing plate 110 via a disassembly groove 114 and a connecting groove 115. The second pin 116 includes a pointed head and a columnar part. Under the action of the second pin 116, it is convenient to connect the stabilizing plate 110 and the mounting block 113, and at the same time, it can further increase the stability of the connection between the stabilizing plate 110 and the ground.
[0033] Specifically, the soil anti-landslide supporting device is used as follows: first, place the stabilizing plate 110 on the ground, then press the stabilizing plate 110 downward to press the anti-skid pin 111 on the stabilizing plate 110 into the soil, thereby fixing the stabilizing plate 110, then pass the first pin 106 through the anti-escape groove 108 and press it into the soil pile, then rotate the first pin 106 to adjust the anti-escape block 109 to be perpendicular to the anti-escape groove 108, thereby connecting the baffle 100 and the soil, then rotate the supporting plate 103 to adjust the bottom plate 104 to be in contact with the ground, and fix the bottom plate 104 through the positioning pin 107, when the soil is loose due to rainfall, the spring 105 exerts a pushing force on the bottom plate 104 on the supporting plate 103, which is beneficial to keep the bottom plate 104 in contact with the soil, thereby improving the protection effect of the baffle 100 on the soil pile.
[0034] When it is necessary to improve the protection range of the baffle 100, first, place the mounting block 113 into the mounting groove 112, then press the second pin 116 through the dismounting groove 114 and the communication groove 115 into the soil through the stabilizing plate 110 and the mounting block 113, then connect another stabilizing plate 110 with the mounting block 113 through the mounting groove 112, and continue to press the second pin 116, thereby connecting two baffles 100, which is more practical.
[0035] The above embodiments are only used to illustrate the technical solutions described in the present application and do not limit the technical solutions described in the present application. Although the present application has been described in detail with reference to the above embodiments, the present application is not limited to the above specific embodiments, therefore any modification or equivalent replacement of the present application; all technical solutions and improvements without departing from the spirit and scope of the application are all covered in the scope of the claims of the present application.
Claims
1. An earthwork landslip support device comprising a baffle (100) characterised in that, The baffle (100) is connected with a supporting component: The supporting component comprises a pressing block (102) fixedly connected to the baffle (100), the pressing block (102) is rotationally connected with a supporting plate (103), and the supporting plate (103) is further rotationally connected with a bottom plate (104) at an end away from the pressing block (102); a spring (105) is connected between the baffle (100) and the supporting plate (103); a plurality of first pins (106) are detachably connected to the baffle (100); and a positioning pin (107) is fixedly connected below the bottom plate (104).
2. The soil anti-landslide support device according to claim 1, wherein The baffle (100) is rotationally connected with a first rotating block (101), and the supporting plate (103) is rotationally connected with a second rotating block (117); and the spring (105) is fixedly connected between the first rotating block (101) and the second rotating block (117).
3. The soil anti-landslide support device according to claim 1, wherein The first pin (106) comprises a sharp head and a columnar portion, and the bottom end of the positioning pin (107) is conically arranged.
4. The soil anti-landslide support device according to claim 1, wherein The baffle (100) is provided with an anti-disengagement groove (108), and the first pin (106) is fixedly connected with an anti-disengagement block (109); after the anti-disengagement block (109) passes through the anti-disengagement groove (108), the anti-disengagement groove (108) and the anti-disengagement block (109) are dislocated and clamped by rotating the anti-disengagement block (109).
5. The soil slope support apparatus according to claim 1, wherein A stabilizing plate (110) is fixedly connected below the baffle (100), and a plurality of anti-skid pins (111) are fixedly connected below the stabilizing plate (110); the bottom end of the anti-skid pin (111) is conically arranged.
6. The soil slope support apparatus according to claim 5, wherein A mounting groove (112) is formed on each side of the stabilizing plate (110), and a mounting block (113) is detachably connected to the mounting groove (112); a plurality of dismounting grooves (114) are formed on the stabilizing plate (110), and a plurality of communication grooves (115) are formed on the mounting block (113); the dismounting grooves (114) and the communication grooves (115) are correspondingly arranged.
7. The soil slope support apparatus according to claim 5, wherein A second pin (116) is detachably connected to the stabilizing plate (110) through the dismounting groove (114) and the communication groove (115), and the second pin (116) comprises a sharp head and a columnar portion.