Module type structure water and soil conservation slope brick transfer device
The modular structure of the soil and water conservation slope brick transfer device solves the problem of inconvenient transfer of slope protection bricks on steep slopes, realizing fast, safe and efficient brick transportation, and improving construction progress and quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2026-03-24
AI Technical Summary
During the paving of slope protection bricks, the transportation of the bricks is inconvenient, especially on steep slopes where it is difficult to use vehicles or hoisting equipment, and manual handling is inefficient, resulting in slow construction progress.
The soil and water conservation slope brick transfer device adopts a modular structure. Through the combination design of transfer plate, transverse baffle, partition plate and baffle support, it can be quickly assembled and adjusted to adapt to different slopes and construction needs, reduce manpower limitations and improve transportation efficiency.
This technology enables the rapid and safe transport of large quantities of slope protection bricks on steep slopes, reducing brick damage rates, improving construction efficiency, and ensuring project quality.
Smart Images

Figure CN224029491U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of water and soil conservation slope protection, specifically relates to a module structure water and soil conservation slope brick transfer device. BACKGROUND
[0002] Water and soil conservation slope protection is a protective measure to prevent water and soil loss, mainly in the place where water and soil loss is easy to occur such as slope, through the construction of slope protection to reduce the soil of slope surface being washed away by rainwater. When constructing the slope protection, the slope protection bricks are usually laid to complete the laying, and the slope protection bricks are closely connected with each other after laying, which can effectively block the sliding of slope soil and rock and can withstand a large water flow impact.
[0003] Before laying the slope protection bricks, the slope surface needs to be cleaned to remove the sundries and loose soil and rock on the slope surface to ensure the flatness of the slope surface. After the above work is completed, the slope protection bricks can be laid. However, due to the topographic factors, the slope protection usually has a certain slope, and some slopes are relatively steep, which makes it difficult for vehicles to directly drive to the bottom of the slope protection. The ordinary transport vehicles are not safe on the slope, and accidents such as vehicle sliding are easy to occur. Moreover, if the slope is very steep, the vehicle cannot descend, and the space under the slope protection is usually limited, so the large lifting equipment (such as a crane) may not have enough space to operate, and it is difficult to lift the slope protection bricks from the top of the slope to the bottom of the slope. When the slope protection bricks are manually transported, the physical strength of the construction personnel is consumed, and the work efficiency is low. Especially in the case where the slope is long or a large number of slope protection bricks are needed, a large amount of time and manpower will be consumed, thereby slowing down the whole project progress. CONTENT OF THE UTILITY MODEL
[0004] The utility model discloses a module structure water and soil conservation slope brick transfer device to solve the problem of inconvenient transfer of slope protection bricks in the prior art.
[0005] The technical scheme of the utility model is as follows:
[0006] A module structure water and soil conservation slope brick transfer device comprises a group of transfer plates, a horizontal baffle, a spacer plate, a baffle support and a transfer plate positioning pin.
[0007] A group of the transfer plates are connected at the head and tail to form an inclined surface for transporting slope protection bricks on the bottom surface of the group of transfer plates. Two adjacent transfer plates are connected through the transfer plate positioning pin in a plug-in mode. After the two adjacent transfer plates are closed through the transfer plate positioning pin, the end portions of the adjacent transfer plates are fitted. The baffle support is inserted into any one of the transfer plates, and the baffle support is connected with the transfer plate in a vertical mode after being inserted.
[0008] The structure of each said transfer plate is the same, and a side slot for inserting a baffle support is symmetrically arranged on the bottom surface of the transfer plate in a longitudinal direction, the baffle support is inserted into the side slot, the baffle support is perpendicular to the bottom of the transfer plate, a middle slot for inserting a spacing plate is arranged between the two side slots, and the middle slot is arranged at the longitudinal center line of the transfer plate, the spacing plate is inserted into the middle slot, and the spacing plate is perpendicular to the bottom of the transfer plate.
[0009] The side plate surface of the transfer plate is provided with a clamping groove structure for inserting a baffle support, and the clamping groove structure is arranged above the side slot and the middle slot of the transfer plate.
[0010] Further, the cross section of the transfer plate is in a U-shaped structure, and the end surface of the bottom plate of the transfer plate is provided with a positioning hole for inserting a transfer plate positioning pin, and the diameter of the positioning hole is greater than the diameter of the transfer plate positioning pin, so that the transfer plate positioning pin is inserted into the positioning hole.
[0011] The positioning holes on the adjacent two transfer plates are inserted into the transfer plate positioning pins, and the adjacent two transfer plates are positioned.
[0012] Further, the transverse baffle comprises an inner plate and an outer plate.
[0013] The two ends of the inner plate are respectively connected with the outer plate in a perpendicular manner, the inner plate is inserted into the clamping groove structure of the transfer plate near the end position, the outer plate is arranged on the outer side of the transfer plate, and the outer plate is arranged in parallel with the side plate of the transfer plate.
[0014] Further, the bottom plate surface of the inner plate of the transverse baffle is supported by the top end surface of the spacing plate and the baffle support.
[0015] Further, the distance between the two outer plates of the transverse baffle is greater than the width of the transfer plate, and the outer plate of the transverse baffle limits the inner plate inserted into the clamping groove structure.
[0016] Further, the spacing plate and the baffle support are rectangular plate structures with different areas, and the plate surfaces of the spacing plate and the baffle support are respectively provided with notches in the transverse direction.
[0017] Further, a group of said spacing plates are arranged in a linear structure, and the bottom plate of the transfer plate is divided into two symmetrical areas.
[0018] Further, the bottom of the transfer plate is connected with an anti-abrasion rubber pad.
[0019] Compared with the prior art, the utility model has the following effects:
[0020] The utility model discloses a module splicing mode has convenient transportation, simple structure, convenient operation and the like, through the structure can according to different revetment length and quickly assemble, in the process of assembling, two adjacent transfer plates are quickly assembled through transfer plate positioning pin, according to the different revetment construction height, the height of horizontal baffle can be spliced and adjusted at any time, and the construction of the different height area of revetment is facilitated, and simultaneously, according to the need of construction, removes the spacing plate in the transfer plate, increases the sliding length of transfer plate, and the larger hollow revetment brick can be transferred.
[0021] The utility model can realize continuous transport operation, compared with manual transport, it is not limited by human strength and speed, and a large number of revetment bricks can be transported from the top of the slope to the bottom of the slope quickly, thereby greatly speeding up the construction process.
[0022] The utility model reduces the situation that manual handling of brick blocks walks on the sloping surface, avoids that when the sloping surface can be steep or uneven, workers are easily slipped and injured when manually handling.
[0023] The utility model can reduce the damage rate of brick body, when the revetment brick is transferred, the revetment brick slides in the fixed channel on the transfer plate, can effectively reduce the collision, guarantees the integrity of brick body, and helps to ensure the quality of revetment engineering. DRAWINGS
[0024] Figure 1 It is the structure schematic diagram of the utility model;
[0025] Figure 2 It is the plan view of the utility model;
[0026] Figure 3 It is the structure schematic diagram of transfer plate;
[0027] Figure 4 It is the plan view of transfer plate;
[0028] Figure 5 It is the side view of transfer plate;
[0029] Figure 6 It is the structure schematic diagram when two adjacent transfer plates are connected;
[0030] Figure 7 It is the structure schematic diagram when the utility model is not installed spacing plate;
[0031] Figure 8 It is the structure schematic diagram of spacing plate;
[0032] Figure 9 It is the structure schematic diagram of horizontal baffle;
[0033] Fig. 1, transport plate, 2, transverse baffle, 3, spacer plate, 4, baffle support, 5, transport plate positioning pin, 6,
[0034] side slot, 7, middle slot, 8, card slot structure, 9, positioning hole, 10, wear-resistant rubber pad, 11, slope protection brick, 12, buffer tire, 13, hollow slope protection brick, 21, inner plate, 22, outer plate. DETAILED DESCRIPTION
[0035] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the technical scheme in the embodiments will be described clearly and completely below in combination with the drawings in the embodiments of the utility model. The following embodiments are used to illustrate the utility model, but not to limit the scope of the utility model.
[0036] DETAILED DESCRIPTION Figure 1 and Figure 2 The module type water and soil conservation slope brick transport device of the embodiment includes a group of transport plates 1, transverse baffles 2, spacer plates 3, baffle supports 4 and transport plate positioning pins 5.
[0037] A group of the transport plates 1 are connected at the head and tail to make the bottom surface of the group of transport plates 1 form an inclined surface for transporting slope bricks. Two adjacent transport plates 1 are connected in an insertion mode through the transport plate positioning pins 5. After the two adjacent transport plates 1 are closed through the transport plate positioning pins 5, the end portions of the adjacent transport plates 1 are fitted. The baffle supports 4 are inserted into any one of the transport plates 1. After being inserted, the baffle supports 4 are connected perpendicularly to the transport plates 1.
[0038] Each of the transport plates 1 has the same structure. A side slot 6 for inserting the baffle supports 4 is symmetrically arranged in a longitudinal direction on the bottom surface of the transport plate 1. The baffle supports 4 are inserted into the side slots 6. The baffle supports 4 are perpendicular to the bottom of the transport plates 1. A middle slot 7 for inserting the spacer plates 3 is arranged between the two side slots 6. The middle slot 7 is arranged at the longitudinal center line of the transport plate 1. The spacer plates 3 are inserted into the middle slot 7. The spacer plates 3 are perpendicular to the bottom of the transport plates 1.
[0039] A card slot structure 8 for inserting the baffle supports 4 is arranged on the side surface of the transport plate 1. The card slot structure 8 is arranged above the side slot 6 and the middle slot 7 of the transport plate 1.
[0040] After the module type water and soil conservation slope brick transport device is formed by a group of the transport plates 1, the device is laid on the inclined surface of the slope protection. The slope protection bricks are freely slid along the top of the module type water and soil conservation slope brick transport device to the position of the transverse baffle 2 on the transport plate 1 below the module type water and soil conservation slope brick transport device.
[0041] Specific implementation method two: combined Figure 3 Figure 6 In this embodiment, the cross section of the transfer plate 1 is in a U-shaped structure, and the end faces of the two sides of the bottom plate of the transfer plate 1 are respectively provided with positioning holes 9 for inserting transfer plate positioning pins 5. The diameter of the positioning hole 9 is greater than the diameter of the transfer plate positioning pin 5, so that the transfer plate positioning pin 5 is inserted into the positioning hole 9.
[0042] The positioning holes 9 on the adjacent two transfer plates 1 are inserted into the transfer plate positioning pins 5 to position the adjacent two transfer plates 1.
[0043] The depth of each hole of the positioning hole 9 on the transfer plate 1 is the same, and by providing the positioning hole 9 at the end of the long side of the transfer plate 1, the adjacent two transfer plates 1 can be connected, so that the bottom surfaces of a group of transfer plates 1 are on the same inclined surface, facilitating the transfer of the slope protection bricks.
[0044] Specific implementation method three: combined Figure 1 Figure 2 Figure 9 In this embodiment, the module structure soil and water conservation slope brick transfer device comprises a horizontal baffle 2, and the horizontal baffle 2 comprises an inner plate 21 and an outer plate 22.
[0045] The two ends of the inner plate 21 are respectively connected with the outer plate 22 vertically, the inner plate 21 is inserted into the clamping groove structure 8 of the transfer plate 1 near the end position, the outer plate 22 is arranged on the outer side of the transfer plate 1, and the outer plate 22 and the side plate of the transfer plate 1 are in parallel structure.
[0046] The inner plate 21 and the outer plate 22 of the horizontal baffle 2 are integrally connected, one horizontal baffle 2 can be arranged in each module structure soil and water conservation slope brick transfer device, the horizontal baffle 2 can be inserted into the clamping groove structure 8 on the transfer plate 1 at will, so that according to different construction requirements, the horizontal baffle 2 can be inserted into the clamping groove structure 8 of the transfer plate 1 at the corresponding height, to prevent the slope protection bricks from sliding and to send the slope protection bricks into the construction area.
[0047] Specific implementation method four: combined Figure 1 Figure 2 Figure 9 In this embodiment, the module structure soil and water conservation slope brick transfer device comprises a horizontal baffle 2, and the horizontal baffle 2 comprises an inner plate 21 and an outer plate 22.
[0048] The inner plate 21 of the transverse baffle 2 is vertically supported by the spacing plate 3 and the baffle support 4, which can support the inner plate 21 of the transverse baffle 2 and prevent the deformation of the inner plate 21 when the slope protection brick hits the inner plate 21 of the transverse baffle.
[0049] Specific embodiment five: in combination Figure 1 、 Figure 2 Figure 9 This embodiment is a modular structure soil and water conservation slope brick transfer device. The distance between the two outer plates 22 on the transverse baffle 2 is greater than the width of the transfer plate 1, and the outer plate 22 of the transverse baffle 2 limits the inner plate 21 inserted into the clamping groove structure 8.
[0050] The two outer plates 22 on the transverse baffle 2 are arranged in parallel with the side plates of the transfer plate 1. By arranging the outer plates 22 on both sides of the inner plate 21 of the transverse baffle 2, the inner plate 21 of the transverse baffle 2 is prevented from falling off from the clamping groove structure 8 when it is inserted into the clamping groove structure 8 on the transfer plate 1.
[0051] Specific embodiment six: in combination Figure 1 、 Figure 2 Figure 8 This embodiment is a modular structure soil and water conservation slope brick transfer device. The spacing plate 3 and the baffle support 4 are rectangular plates with different areas, and the spacing plate 3 and the baffle support 4 are respectively provided with openings in the transverse direction on the plate surface.
[0052] The openings on the spacing plate 3 and the baffle support 4 are strip hole structures, and the spacing plate 3 and the baffle support 4 are connected by insertion between the corresponding median insertion slot 7 and side insertion slot 6. By providing openings on the plate surface of the spacing plate 3 and the baffle support 4, the spacing plate 3 and the baffle support 4 can be easily taken out from the median insertion slot 7 and the side insertion slot 6.
[0053] Specific embodiment seven: in combination Figure 2 or Figure 7 This embodiment is a modular structure soil and water conservation slope brick transfer device. A group of spacing plates 3 are arranged in a linear structure, which divides the bottom plate of the transfer plate 1 into two symmetrical areas.
[0054] When the spacing plate 3 is inserted into each median insertion slot 7 of the transfer plate 1, the transfer plate 1 is divided into two equal transfer areas by a group of spacing plates 3, which can simultaneously send the slope protection brick 11 into two brick transfer areas, increasing the brick transfer efficiency of the slope protection brick 11.
[0055] When a set of spacing plates 3 in the transfer plate 1 is taken out, the length of the transfer plate 1 is increased, which can be used to transport larger volume of slope protection bricks, and can be replaced according to different needs.
[0056] Specific embodiment eight: combination Figure 1 — Figure 9 This embodiment is a modular structure soil and water conservation slope brick transfer device, the bottom of the transfer plate 1 is connected with the wear-resistant rubber pad 10.
[0057] When the transfer plate 1 is installed, it is inserted from the bottom of the slope to the top, the bottom transfer plate 1 is installed at the bottom of the slope, the positioning pin 5 is inserted into the positioning hole 9 on the bottom transfer plate 1, and the positioning hole 9 on the long edge of the bottom of the second transfer plate 1 is inserted into the transfer plate positioning pin 5, thereby completing the installation between the two adjacent transfer plates 1, through the above operation, a set of transfer plates 1 are quickly installed through the transfer plate positioning pin 5, the bottom surfaces of a set of transfer plates 1 form an inclined surface structure for transporting slope protection bricks, then the transverse baffle 2 is inserted into the clamping groove structure 8 on the bottom transfer plate 1, the baffle support 4 is inserted into the side slot 6 of the bottom transfer plate 1, the transverse baffle 2 is supported by the two baffle supports 4, and a set of spacing plates 3 divide the inclined surface of a set of transfer plates 1 into two symmetrical sliding areas, the slope protection bricks are sent from the top of the modular structure soil and water conservation slope brick transfer device to the sliding area, the slope protection bricks 11 fall along the inclined surface to the transverse baffle 2 on the bottom transfer plate 1, so that the construction personnel below take out the slope protection bricks, according to the different needs of the paving height, the transverse baffle 2 is adjusted to the corresponding height, and the transverse baffle 2 is inserted into the clamping groove structure 8 of the transfer plate 1 at the corresponding height; Figure 7 When a set of spacing plates 3 in the transfer plate 1 is taken out, the length of the transfer plate 1 is increased, which can be used to transport larger volume of slope protection bricks, and can be replaced according to different needs.
[0058] The above merely describes preferred embodiments of the present application and is not intended to limit the present application in any form. Although the present application has been described above with reference to preferred embodiments, it is not intended to limit the present application. Any person skilled in the art can make minor changes or modifications to the disclosed technical content without departing from the technical solution of the present application. Any simple modification, equivalent replacement and improvement of the above embodiments, which does not depart from the technical solution of the present application and is within the spirit and principles of the present application, shall fall within the protection scope of the technical solution of the present application.
Claims
1. A modular structure for transporting soil and water conservation slope bricks, characterized in that, The modular structure soil and water conservation slope brick transfer device includes a set of transfer plates (1), transverse baffles (2), spacers (3), baffle supports (4) and transfer plate positioning pins (5). A set of transfer plates (1) are connected end to end so that the bottom surface of the set of transfer plates (1) forms an inclined surface for transporting slope bricks. Two adjacent transfer plates (1) are connected by the insertion of the transfer plate positioning pin (5). After the two adjacent transfer plates (1) are aligned by the transfer plate positioning pin (5), the ends of the adjacent transfer plates (1) are fitted together. The baffle support (4) is inserted into any one of the transfer plates (1). After insertion, the baffle support (4) is perpendicularly connected to the transfer plate (1). Each of the transfer plates (1) has the same structure, and the bottom surface of the transfer plate (1) is symmetrically provided with side slots (6) for inserting baffle supports (4) in the longitudinal direction. The baffle supports (4) are inserted into the side slots (6) and are perpendicular to the bottom of the transfer plate (1). A middle slot (7) for inserting a spacer plate (3) is provided between the two side slots (6), and the middle slot (7) is located at the longitudinal center line of the transfer plate (1). The spacer plate (3) is inserted into the middle slot (7) and is perpendicular to the bottom of the transfer plate (1). The side plate of the transfer plate (1) is provided with a slot structure (8) for inserting the baffle support (4). The slot structure (8) is located above the side slot (6) and the middle slot (7) of the transfer plate (1).
2. The modular structure soil and water conservation slope brick transfer device according to claim 1, characterized in that, The cross section of the transfer plate (1) is U-shaped. The bottom plates of the transfer plate (1) are respectively provided with positioning holes (9) for inserting the positioning pin (5) of the transfer plate. The diameter of the positioning hole (9) is larger than the diameter of the positioning pin (5) of the transfer plate, so that the positioning pin (5) of the transfer plate is inserted into the positioning hole (9). Insert the positioning pin (5) into the positioning hole (9) on the two adjacent transfer plates (1) to position the two adjacent transfer plates (1).
3. The modular structure soil and water conservation slope brick transfer device according to claim 1, characterized in that, The transverse baffle (2) includes an inner plate (21) and an outer plate (22); The inner plate (21) is perpendicularly connected to the outer plate (22) at both ends. The inner plate (21) is inserted into the slot structure (8) of the transfer plate (1) near the end. The outer plate (22) is set on the outside of the transfer plate (1) and the outer plate (22) and the side plate of the transfer plate (1) are parallel.
4. The modular structure soil and water conservation slope brick transfer device according to claim 3, characterized in that, The bottom surface of the inner plate (21) on the transverse baffle (2) is supported by the spacer plate (3) and the top surface of the baffle support (4).
5. The modular structure soil and water conservation slope brick transfer device according to claim 4, characterized in that, The distance between the two outer plates (22) on the transverse baffle (2) is greater than the width of the transfer plate (1), and the outer plates (22) on the transverse baffle (2) limit the inner plate (21) inserted into the slot structure (8).
6. The modular structure soil and water conservation slope brick transfer device according to claim 1, characterized in that, The partition plate (3) and the baffle support (4) are rectangular plate structures with different areas, and the partition plate (3) and the baffle support (4) have openings in the horizontal direction respectively.
7. The modular structure soil and water conservation slope brick transfer device according to claim 1, characterized in that, A set of the aforementioned partition plates (3) are arranged in a linear structure, dividing the bottom plate of the transfer plate (1) into two symmetrical regions on the left and right.
8. The modular structure soil and water conservation slope brick transfer device according to claim 1, characterized in that, The bottom of the transfer plate (1) is connected to an anti-wear pad (10).