Integrated construction device for efficiently constructing hydraulic concrete slope protection
By designing an integrated mobile device that combines fabric laying, finishing, and finishing components, the problems of complex operation and high maintenance costs in existing technologies have been solved, enabling efficient concrete slope protection construction and improving construction efficiency and adaptability.
Patent Information
- Application Number
- CN202520381644.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-06
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2035-03-06
AI Technical Summary
Existing concrete slope protection construction equipment is complex to operate, has high maintenance costs, and lacks close coordination among its components, affecting the continuity and efficiency of the construction process.
An efficient integrated construction device for hydraulic concrete slope protection was designed, comprising a material placement component, a surface finishing component, and a finishing component. By moving the component along the ground rail, the material placement, surface finishing, and finishing processes are integrated, reducing waiting time and conversion costs in intermediate steps.
It improves construction efficiency, enhances the versatility and adaptability of the equipment, enabling it to adapt to different types of slopes and geological conditions, and reduces waiting time and conversion costs.
Smart Images

Figure CN223793547U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of concrete slope protection construction technology, specifically to an integrated construction device for high-efficiency construction of hydraulic concrete slope protection. Background Technology
[0002] Slope protection refers to all the paving and planting done on the slope surface to prevent erosion. In the river section where the bridge is located, the concave bank is subject to erosion by the water flow year after year, which can cause the riverbank to collapse continuously. To protect the safety of bridges and embankments, protective structures must be built on the concave bank. In addition, when the construction of a bridge causes changes in the river flow direction, eroding the riverbank and endangering farmland and villages, protective structures must also be built on the riverbank.
[0003] According to CN213061899U, a slope protection concrete pouring construction device is disclosed. This technology discloses "a slope protection concrete pouring construction device, including a first tracked load-bearing vehicle and a second tracked load-bearing vehicle. Both the first and second tracked load-bearing vehicles include a tracked chassis. A load-bearing plate is screwed to the top of the tracked chassis, and a bearing seat is screwed to the top of the load-bearing plate. A support column is clamped inside the bearing seat, and a pin seat is screwed to the top of the support column. The pin seat is connected to a pin shaft." The technical solution includes connecting pipes, with a concrete conveying pipe bolted between the connecting pipes on the first tracked load-bearing vehicle and the connecting pipes on the second tracked load-bearing vehicle via flanges. The top wall of the concrete conveying pipe has a concrete inlet, and the bottom wall of the concrete conveying pipe has a concrete pouring outlet. This solution has the following technical advantages: it is convenient to transport and move, can replace pump trucks for pouring when the slope is low and it is not possible to use a mixer truck for direct pouring, has low operating costs, and adopts tracked drive, which has strong terrain adaptability and passability.
[0004] In the aforementioned concrete slope protection construction device, tracked load-bearing vehicles are used as mobile carriers. However, in actual operation, this results in complex operation and high maintenance costs. In addition, after the concrete pouring and placement are completed, finishing and finishing work needs to be carried out quickly, which places extremely high demands on the continuity and efficiency of the construction process. However, the lack of close coordination between the various components of the current construction device leads to the construction process not proceeding smoothly, thus affecting the overall construction efficiency. These problems highlight the obvious shortcomings of the construction device in terms of integration. Utility Model Content
[0005] To address the shortcomings of existing technologies, this utility model provides an integrated construction device for high-efficiency hydraulic concrete slope protection. The device features a material placement component, a surface finishing component, and a finishing component, each controlled by a moving component to move along a ground track. This integrates material placement, surface finishing, and finishing, reducing waiting time and conversion costs in intermediate steps, thereby improving overall production efficiency.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a high-efficiency integrated construction device for hydraulic concrete slope protection, comprising a slope protection structure, on which a construction mechanism is installed for performing construction operations. The construction mechanism includes:
[0007] The main components include three main frames set above the slope protection. Connecting frames are fixed at both ends of the main frames. Mounting frames are pivotally connected to both ends of the connecting frames. A frame base is set inside the connecting frame. A positioning seat is fixed at both ends of the frame base. An arc-shaped slot is opened on the outer wall of both ends of the frame base with the positioning seat as the center. A waist-shaped slot is opened on the upper end of the outer wall of both ends of the frame base. A shaft head is fixed on the inner wall of both ends of the connecting frame and located inside the positioning seat. The connecting frame is fixed to the arc-shaped slot of the frame base by a first bolt and nut. The mounting frame is fixed to the waist-shaped slot of the frame base by a second bolt and nut. A moving component is set on the slope protection to control the horizontal movement of the main components.
[0008] Fabric assembly, set on the main assembly on the right and used for concrete slope protection fabric;
[0009] Finishing component, set on the main component in the middle and used for finishing concrete slope protection;
[0010] The finishing component is set on the main component on the left and is used for finishing concrete slope protection.
[0011] Preferably, the movable component includes a bearing fixed to the bottom of the frame, with a shaft rod rotatably mounted at both ends inside the bearing, guide wheels fixed at both ends of the outer wall of the shaft rod, a driven gear fixed on the rear guide wheel, a reduction motor mounted at the rear end of the bearing, a driving gear fixed at the output end of the reduction motor and meshing with the driven gear for transmission, and ground rails fixed at the top of the upper end and the top of the lower end of the slope protection and cooperating with the guide wheels.
[0012] Preferably, the main body component further includes a scale strip formed around the arc-shaped slot.
[0013] Preferably, the fabric assembly includes a fabric bin fixed to the top of the right main frame, and the fabric bin contains several fabric hoppers.
[0014] Preferably, the finishing assembly includes a frame fixed to the top of the central main frame, a slide block slidably installed inside the frame, a drive motor installed at the top of both ends of the slide block, and a smear fixed to the output end of the drive motor.
[0015] Preferably, the finishing component includes a climbing frame fixed to the top of the left main frame, and several footboards are fixed inside the climbing frame. Beneficial effects
[0016] This utility model provides an integrated construction device for high-efficiency hydraulic concrete slope protection. Compared with the prior art, it has the following advantages:
[0017] 1. The output of the geared motor drives the drive gear to rotate, and the drive gear drives the guide wheel to rotate through the driven gear, so that it can roll along the ground rail. This enables the moving component to drive the main component to move horizontally. The fabric assembly, the finishing assembly, and the finishing assembly can be controlled by the moving component to move along the ground rail, realizing the integration of fabric, finishing, and finishing. This reduces the waiting time and conversion costs in the intermediate links, thereby improving the overall production efficiency.
[0018] 2. The main frame can be angled and fixed with the upper and lower end supports, allowing the main components to be adapted to the slope surface of the slope protection, making it widely applicable to different types of slopes and geological conditions; in addition, the material laying component, surface finishing component and finishing component are all compatible with the main components, improving the versatility and adaptability of the device. Attached Figure Description
[0019] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0020] Figure 2 This is a schematic diagram of the main components in this utility model;
[0021] Figure 3 This utility model Figure 2 A schematic diagram of the structure of part A in the middle;
[0022] Figure 4 This is a schematic diagram of the structure of the mobile component in this utility model;
[0023] Figure 5 This is a schematic diagram of the main frame structure in this utility model.
[0024] In the diagram: 1. Slope protection; 2. Construction mechanism; 21. Main component; 211. Main frame; 212. Connecting frame; 213. Mounting frame; 214. Frame base; 215. Positioning seat; 216. Arc-shaped slot; 217. Waist-shaped slot; 218. Shaft head; 219. Scale strip; 22. Fabric placement assembly; 221. Fabric bin; 222. Fabric hopper; 23. Finishing assembly; 231. Frame body; 232. Slide seat; 233. Drive motor; 234. Smearing plate; 24. Finishing assembly; 241. Climbing frame; 242. Step; 25. Moving assembly; 251. Shaft seat; 252. Shaft rod; 253. Guide wheel; 254. Driven gear; 255. Gearbox; 256. Drive gear; 257. Ground rail; 26. First bolt and nut; 27. Second bolt and nut. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. 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.
[0026] Please see Figure 1 - Figure 5 This utility model provides a technical solution: an integrated construction device for high-efficiency hydraulic concrete slope protection, including a slope protection 1, on which a construction mechanism 2 is installed for construction operations. The construction mechanism 2 includes:
[0027] The main component 21 includes three main frames 211 set above the slope protection 1. Each main frame 211 has a connecting frame 212 fixed at both ends. Each end of the connecting frame 212 is pivotally connected to a mounting frame 213. A frame base 214 is set inside the connecting frame 212. Each end of the frame base 214 has a positioning seat 215 fixed at both ends. Each end of the outer wall of the frame base 214 has an arc-shaped slot 216 with the positioning seat 215 as the center. Each end of the outer wall of the frame base 214 has a waist-shaped slot 217. Each end of the inner wall of the connecting frame 212 has a shaft head 218 fixed inside the positioning seat 215. The connecting frame 212 is fixed to the arc-shaped slot 216 of the frame base 214 by a first bolt and nut 26. The mounting frame 213 is fixed to the waist-shaped slot 217 of the frame base 214 by a second bolt and nut 27. A moving component 25 is set on the slope protection 1 to control the horizontal movement of the main component 21.
[0028] Fabric assembly 22 is mounted on the main assembly 21 on the right side and is used for concrete slope protection fabric placement;
[0029] Finishing component 23 is set on the main component 21 in the middle and is used for finishing the concrete slope protection;
[0030] The finishing component 24 is set on the main component 21 on the left and is used for finishing concrete slope protection.
[0031] In this embodiment, the angle between the main frame 211 and the upper and lower end brackets 214 can be adjusted and fixed, so that the main component 21 can be adapted and adjusted according to the slope surface of the slope protection 1, and can be widely used in different types of slopes and geological conditions; in addition, the fabric laying component 22, the finishing component 23 and the finishing component 24 are all adapted to the main component 21, which improves the versatility and adaptability of the device.
[0032] Specifically, the movable component 25 includes a bearing seat 251 fixed to the bottom of the frame 214. A shaft 252 is rotatably mounted on both ends inside the bearing seat 251. Guide wheels 253 are fixed on both the front and rear ends of the outer wall of the shaft 252. A driven gear 254 is fixed on the rear guide wheel 253. A geared motor 255 is installed at the rear end of the bearing seat 251. A drive gear 256 is fixed at the output end of the geared motor 255 and meshes with the driven gear 254 for transmission. Ground rails 257 are fixed on the top of the upper end and the top of the lower end of the slope 1 and cooperate with the guide wheels 253.
[0033] In this embodiment, the output end of the geared motor 255 drives the drive gear 256 to rotate. The drive gear 256 drives the guide wheel 253 to rotate through the driven gear 254, so that it can roll along the ground rail 257. This enables the moving component 25 to drive the main component 21 to move horizontally. The fabric assembly 22, the finishing assembly 23, and the finishing assembly 24 can be controlled by the moving component 25 to move along the ground rail 257, realizing the integration of fabric, finishing, and finishing. This reduces the waiting time and conversion cost in intermediate links, thereby improving the overall production efficiency.
[0034] Specifically, the main component 21 also includes a scale bar 219 formed around the arc-shaped slot 216.
[0035] In this embodiment, when adjusting the tilt angle of the main component 21 according to the slope of the slope 1, the scale bar 219 provides a clear reference point, making the adjustment process more precise.
[0036] Specifically, the fabric assembly 22 includes a fabric bin 221 fixed to the top of the right main frame 211, and the fabric bin 221 is provided with several fabric hoppers 222.
[0037] In this embodiment, concrete is fed into the concrete placement bin 221 by the feeding equipment, and then the concrete is placed onto the slope protection 1 by the concrete placement hopper 222.
[0038] Specifically, the finishing component 23 includes a frame 231 fixed to the top of the central main frame 211, a slide block 232 slidably installed inside the frame 231, a drive motor 233 installed at both ends of the slide block 232, and a smear 234 fixed at the output end of the drive motor 233.
[0039] In this embodiment, the slide block 232 slides along the inside of the frame 231, and the drive motor 233 drives the trowel 234 to rotate, thereby performing the finishing operation after the slope protection 1 is covered.
[0040] Specifically, the finishing component 24 includes a climbing frame 241 fixed to the top of the left main frame 211, and several footboards 242 are fixed inside the climbing frame 241.
[0041] In this embodiment, construction workers can stand or squat on the footboard 242 of the climbing frame 241 to carry out finishing work on the slope protection 1 after surface finishing.
[0042] The working principle and usage process of this utility model are as follows: First, the angle between the main frame 211 and the upper and lower end brackets 214 can be adjusted and fixed, so that the main component 21 can be adapted and adjusted according to the slope surface of the slope protection 1, and can be widely used in different types of slope surfaces and geological conditions; in addition, the fabric laying component 22, the surface finishing component 23 and the finishing component 24 are all adapted to the main component 21, which improves the versatility and adaptability of the device.
[0043] During construction, the output of the geared motor 255 drives the drive gear 256 to rotate. The drive gear 256 drives the guide wheel 253 to rotate through the driven gear 254, so that it can roll along the ground rail 257. This enables the moving component 25 to drive the main component 21 to move horizontally, so that the fabric component 22, the finishing component 23, and the finishing component 24 can be controlled by the moving component 25 to move horizontally along the ground rail 257.
[0044] Simultaneously, concrete is fed into the concrete placement bin 221 via the feeding equipment, and then the concrete is placed onto the slope protection 1 via the concrete placement hopper 222. Then, the concrete is slid along the inside of the frame 231 via the sliding seat 232, and the trowel 234 is rotated by the drive motor 233 to perform the finishing work on the slope protection 1 after the concrete is placed. Finally, the construction workers can stand or squat on the footboard 242 of the climbing frame 241 to perform the finishing work on the slope protection 1. This achieves the integration of concrete placement, finishing, and finishing, reducing the waiting time and conversion costs in the intermediate links, thereby improving the overall production efficiency.
[0045] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0046] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A high-efficiency integrated construction device for hydraulic concrete slope protection, comprising slope protection (1), characterized in that: The slope protection (1) is equipped with a construction mechanism (2) for carrying out construction work on the slope protection (1). The construction mechanism (2) includes: The main component (21) includes three main frames (211) set above the slope protection (1). The upper and lower ends of the main frames (211) are fixed with connecting frames (212). The ends of the connecting frames (212) are pivotally connected with mounting frames (213). The connecting frames (212) are provided with a frame base (214). The ends of the frame base (214) are fixed with positioning seats (215). The outer walls of the two ends of the frame base (214) are provided with arc-shaped slots (216) with the positioning seats (215) as the center. The outer walls of the two ends of the frame base (214) are provided with arc-shaped slots (216). The upper end of the wall is provided with a waist-shaped slot (217). The inner walls of both ends of the connecting frame (212) are fixed with shaft heads (218) and located inside the positioning seat (215). The connecting frame (212) is fixed to the arc-shaped slot (216) of the frame base (214) by the first bolt and nut (26). The mounting frame (213) is fixed to the waist-shaped slot (217) of the frame base (214) by the second bolt and nut (27). The slope protection (1) is provided with a moving component (25) and used to control the horizontal movement of the main component (21). Fabric assembly (22) is mounted on the main assembly (21) on the right side and is used for concrete slope protection fabric; Finishing component (23) is set on the main component (21) in the middle and used for finishing concrete slope protection; The finishing component (24) is set on the main component (21) on the left and is used for finishing concrete slope protection.
2. The integrated construction device for high-efficiency hydraulic concrete slope protection according to claim 1, characterized in that: The moving component (25) includes a bearing seat (251) fixed to the bottom of the frame (214). A shaft (252) is rotatably mounted on both ends of the bearing seat (251). Guide wheels (253) are fixed on both ends of the outer wall of the shaft (252). A driven gear (254) is fixed on the rear guide wheel (253). A geared motor (255) is installed at the rear end of the bearing seat (251). A drive gear (256) is fixed at the output end of the geared motor (255) and meshes with the driven gear (254) for transmission. Ground rails (257) are fixed on the top of the upper end and the top of the lower end of the slope protection (1) and cooperate with the guide wheel (253).
3. The integrated construction device for high-efficiency hydraulic concrete slope protection according to claim 1, characterized in that: The main body component (21) also includes a scale strip (219) formed around the arc-shaped slot (216).
4. The integrated construction device for high-efficiency hydraulic concrete slope protection according to claim 1, characterized in that: The fabric assembly (22) includes a fabric bin (221) fixed to the top of the right main frame (211), and the fabric bin (221) is provided with several fabric hoppers (222).
5. The integrated construction device for high-efficiency hydraulic concrete slope protection according to claim 1, characterized in that: The finishing component (23) includes a frame (231) fixed to the top of the intermediate main frame (211), a slide (232) is slidably installed inside the frame (231), a drive motor (233) is installed at the top of both ends of the slide (232), and a smear (234) is fixed at the output end of the drive motor (233).
6. The integrated construction device for high-efficiency hydraulic concrete slope protection according to claim 1, characterized in that: The finishing component (24) includes a climbing frame (241) fixed to the top of the left main frame (211), and several footboards (242) are fixed inside the climbing frame (241).
Citation Information
Patent Citations
Slope protection concrete pouring construction device
CN213061899U