Quick-mounting large-area soil piling and greening structure

CN224791251UActive Publication Date: 2026-09-25HUNAN SHANGJIA GREEN ENVIRONMENT CO LTD
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Patent Information

Application Number
CN202521862740.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-31
Publication Date
2026-09-25
Estimated Expiration
2035-08-31

AI Technical Summary

Technical Problem

[0003]专利号为ZL202321837333.0公开了一种牢固的垒土装配式绿化结构,其通过限位环与安装板的配合结构设计,可以实现容纳壳体的快速组装操作,从而有效提高垒土绿化结构的施工效率;然而,该垒土绿化结构并未对承载于容纳壳体内的垒土块进行任何位置限定操作,在垒土绿化结构使用过程中,经过长期的风吹雨淋,经常出现垒土块脱离容纳壳体的状况,严重影响了垒土绿化结构的使用效果,有必要对其进行改进

Benefits of technology

[0013]与现有技术相比,本实用新型具有的优点和积极效果是:

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Abstract

The utility model discloses a quick -wearing type large -area earth -up structure, including the earth -up block and the accommodating earth -up block's shaping casing, be provided with a plurality of accommodating cavities in the shaping casing and are through the accommodating cavities and insert and connect the earth -up block, a plurality of accommodating cavities are arranged in matrix and a plurality of accommodating cavities are divided into a plurality of rows from top to bottom, and the accommodating cavities of two adjacent rows of up and down and the bottom end of the accommodating cavity of the last row of bottom are all provided with the positioning mechanism and through the positioning mechanism, the earth -up block in the last row of accommodating cavity or the earth -up block in the last row of accommodating cavity in the position fixed operation of the earth -up block in the upper row of accommodating cavity, the positioning mechanism is connected with the shaping casing, the bottom of the shaping casing is provided with the limiting mechanism, and the limiting mechanism is slidably connected with the bottom of the shaping casing and through the limiting mechanism, and the positioning mechanism at the bottom end of the last row of accommodating cavity is turned over and is limited to the operation, so that the positioning mechanism carries out the position fixed operation to the earth -up block in the last row of accommodating cavity.
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Description

Technical Field

[0001] This utility model relates to the field of environmental greening, and in particular to a quick-installation, large-area earth-walled greening structure. Background Technology

[0002] Molded soil, also known as plastic fiber culture soil, is mainly composed of agricultural waste such as straw and cotton stalks. Molded soil is characterized by its ability to solidify and mold, lightweight nature, air permeability, moisture retention, and drainage. Resembling a sponge-like planting brick in appearance, it can be applied to various complex environments. During production, monolithic molded soil is typically cut into blocks to meet the needs of different environmental scenarios.

[0003] Patent No. ZL202321837333.0 discloses a robust prefabricated earth-built greening structure. Through the cooperative design of a limiting ring and an mounting plate, it enables rapid assembly of the housing, effectively improving the construction efficiency of the earth-built greening structure. However, this earth-built greening structure does not provide any positional constraints on the earth blocks supported within the housing. During use, after prolonged exposure to wind and rain, the earth blocks frequently detach from the housing, severely affecting the structure's performance. Therefore, improvement is necessary. Summary of the Invention

[0004] The purpose of this utility model is to address the above-mentioned problems by providing a quick-installation, large-area earth-block greening structure that is simple in structure, significantly improves the assembly efficiency of earth blocks, and enhances the strength of the installation structure.

[0005] To achieve the above objectives, the technical solution of this utility model is as follows: A quick-assembly, large-area earth-building greening structure includes earth blocks and a fixed shell for accommodating the earth blocks. The fixed shell contains several cavities into which the earth blocks are embedded. These cavities are arranged in a matrix and divided into several rows from top to bottom. Positioning mechanisms are provided between adjacent rows of cavities and at the bottom of the bottom row of cavities. These positioning mechanisms fix the position of the earth blocks located in the upper or lower row of cavities. The positioning mechanisms are connected to the fixed shell. A limiting mechanism is provided at the bottom of the fixed shell. This limiting mechanism is slidably connected to the bottom of the fixed shell and flips and limits the positioning mechanism at the bottom of the bottom row of cavities, thereby fixing the position of the earth blocks in the bottom row of cavities.

[0006] Furthermore, the shaped shell is composed of a base plate, seven transverse baffles, and eleven longitudinal baffles. The base plate is rectangular. The seven transverse baffles and eleven longitudinal baffles are all fixedly connected to one end face of the base plate. The seven transverse baffles are all rectangular and are equally spaced along the width direction of the base plate. The eleven longitudinal baffles are all rectangular and are equally spaced along the length direction of the base plate. The seven transverse baffles and eleven longitudinal baffles are perpendicularly connected to each other to form a rectangular frame structure for supporting the piled soil blocks. After the rectangular frame structure is combined with the end face of the base plate, it forms several accommodating cavities with external openings.

[0007] Furthermore, the seven transverse baffles are arranged in parallel with the length direction of the transverse baffles being consistent with the length direction of the base plate, and the eleven longitudinal baffles are arranged in parallel with the length direction of the longitudinal baffles being consistent with the width direction of the base plate, so that the several accommodating cavities formed by the combination of the transverse baffles, longitudinal baffles, and base plate are rectangular column cavity structures with one side opening, and the volumes of the several accommodating cavities are consistent.

[0008] Furthermore, the positioning mechanism is connected to the transverse baffle between the two adjacent rows of receiving cavities and the transverse baffle at the bottom of the lowest row of receiving cavities. The positioning mechanism includes a mounting shaft, a rotating sleeve, a positioning rod, and a pressure plate. The transverse baffle is provided with a mounting hole that penetrates the transverse baffle. The mounting hole is located on the bottom side of the receiving cavity. The mounting shaft is fixedly connected to the inner wall of the mounting hole. The length direction of the mounting shaft is consistent with the length direction of the transverse baffle. A rotating sleeve is sleeved on the outside of the mounting shaft and is rotatably connected to the mounting shaft. The positioning rod and the pressure plate are fixedly connected to the outer peripheral side wall of the rotating sleeve. The positioning rod is located near the upper row of receiving cavities in the two adjacent rows, and the pressure plate is located near the lower row of receiving cavities in the two adjacent rows.

[0009] Furthermore, the length direction of the positioning rod is perpendicular to the axial direction of the rotating sleeve, and there are several positioning rods that are fixed at equal intervals along the length direction of the rotating sleeve on the outer peripheral sidewall of the rotating sleeve. The end of the positioning rod away from the rotating sleeve is sharp.

[0010] Furthermore, the pressure plate is rectangular, the plane of the pressure plate is parallel to the axis of the rotating sleeve, and the angle between the plane of the pressure plate and the axis of the positioning rod is 30°~90°.

[0011] Furthermore, the limiting mechanism includes a limiting plate, which is disposed at the bottom end of the lowest transverse baffle and slidably connected to the transverse baffle. The length direction of the limiting plate is consistent with the length direction of the transverse baffle. A guide slide is provided on the bottom end face of the lowest transverse baffle, and the length direction of the guide slide is consistent with the width direction of the transverse baffle. A guide protrusion corresponding to the guide slide is provided on the limiting plate. The guide protrusion is embedded in the guide slide and can slide along the length direction of the guide slide. When the guide protrusion slides to one end of the guide slide, the limiting plate is located on one side of the mounting hole provided on the lowest transverse baffle. When the guide protrusion slides to the other end of the guide slide, the limiting plate slides into the range of the mounting hole provided on the lowest transverse baffle and squeezes and limits the pressure plate installed in the range of the mounting hole, so that the positioning rod installed in the range of the mounting hole fixes the position of the piled soil blocks in the lowest row of receiving cavities.

[0012] Furthermore, both ends of the limiting plate in the length direction are fixedly connected with connecting ears, and the connecting ears are provided with limiting holes and fastening bolts are connected through the limiting holes; the outer walls of the longitudinal baffles at both ends of the base plate in the length direction are provided with positioning screw holes; when the limiting plate squeezes and limits the pressure plate, the fastening bolts pass through the limiting holes and are screwed into the positioning screw holes.

[0013] Compared with the prior art, the advantages and positive effects of this utility model are: This invention employs a design with several rows of receiving cavities within a fixed shell, and positioning mechanisms between adjacent cavities. During the construction of the earthen greening structure, firstly, appropriately sized earthen blocks are embedded into the top row of receiving cavities. Then, earthen blocks are embedded into the second row of receiving cavities. As the earthen blocks in the second row are embedded, they compress the pressure plate in the positioning mechanism, causing it to rotate and ultimately align parallel to the transverse baffle. During this rotation, the positioning rod in the positioning mechanism presses into the earthen blocks of the top row, eventually inserting itself inside. This design simultaneously defines the position of the earthen blocks in the first row of receiving cavities while completing the embedding of the earthen blocks in the second row. Then, the earthen block embedding operation is performed sequentially on each subsequent row of receiving cavities, simultaneously achieving… The upper cavity contains soil blocks whose positions are defined. Finally, a limiting mechanism squeezes and rotates the pressure plate in the bottom positioning mechanism, thus defining the position of the soil blocks in the bottom row of cavities. This achieves the installation and shaping of all soil blocks in the entire housing. Its simple structure and quick operation effectively improve the assembly efficiency of soil blocks in earthen greening structures. Furthermore, the positioning mechanism design defines the position of all soil blocks during assembly, improving the stability of the connection between the soil blocks and the housing. This prevents the soil blocks from detaching from the housing during long-term use, further enhancing the effectiveness of the earthen greening structure and facilitating its construction. Attached Figure Description

[0014] 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.

[0015] Figure 1 This is a top view of the structure of this utility model; Figure 2 A diagram showing the connection structure between the positioning mechanism and the fixed housing in the limited position state; Figure 3 for Figure 2 A magnified view of the local structure; Figure 4 for Figure 3 AA sectional view of the structure; Figure 5 This is the main view structure of the present utility model. Figure 1 ; Figure 6 This is the main view structure of the present utility model. Figure 2 ; Figure 7 Installation steps for building earthen blocks Figure 1 ; Figure 8 Installation steps for building earthen blocks Figure 2 ; Figure 9 Installation steps for building earthen blocks Figure 3 ; Figure 10 Installation steps for building earthen blocks Figure 4 . Detailed Implementation

[0016] 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, any modifications, equivalent substitutions, improvements, etc., made by those skilled in the art to all other embodiments obtained without creative effort should be included within the protection scope of the present utility model.

[0017] like Figures 1 to 10 As shown, this embodiment discloses a quick-installation, large-area earth-block greening structure, including earth blocks 2 and a fixed shell 1 for accommodating the earth blocks 2. The fixed shell 1 is provided with sixty receiving cavities 14, and the earth blocks 2 are embedded in the receiving cavities 14. Figure 1 As shown, the sixty accommodating cavities 14 are arranged in a matrix and divided into six rows from top to bottom, with ten accommodating cavities 14 in each row; like Figure 2 , Figure 3 As shown, the shaped shell 1 is composed of a base plate 13, seven transverse baffles 11, and eleven longitudinal baffles 12. The base plate 13 is rectangular. The seven transverse baffles 11 and eleven longitudinal baffles 12 are all fixedly connected to the upper end face of the base plate 13. The seven transverse baffles 11 are all rectangular and are equally spaced along the width direction of the base plate 13. The eleven longitudinal baffles 12 are all rectangular and are equally spaced along the length direction of the base plate 13. The seven transverse baffles 11 and eleven longitudinal baffles 12 are perpendicularly connected to each other to form a rectangular frame structure for supporting the piled soil blocks 2. After the rectangular frame structure is combined with the end face of the base plate 13, it forms a receiving cavity 14 with sixty outer openings.

[0018] The seven transverse baffles 11 are arranged in parallel, and the length direction of the transverse baffles 11 is consistent with the length direction of the base plate 13. The eleven longitudinal baffles 12 are arranged in parallel, and the length direction of the longitudinal baffles 12 is consistent with the width direction of the base plate 13. The planes to which the transverse baffles 11 and the longitudinal baffles 12 belong are perpendicular to the planes to which the base plate 13 belongs, so that the sixty accommodating cavities 14 formed by the combination of the transverse baffles 11, the longitudinal baffles 12 and the base plate 13 are rectangular columnar cavity structures with one side openings. The inner diameter and volume of the sixty accommodating cavities 14 are consistent.

[0019] By setting horizontal and vertical baffles at equal intervals, the internal dimensions of all accommodating cavities are kept consistent, making it easy to cut earth blocks of the appropriate size for interlocking and installation. When constructing large-area earth-building green structures, it is only necessary to cut different numbers of earth blocks according to the area requirements to meet the construction needs, thus improving the convenience of earth-building green structure construction operations.

[0020] A positioning mechanism 4 is provided between the two adjacent rows of receiving cavities 14, and the positioning mechanism 4 fixes the position of the soil block 2 located in the upper row of receiving cavities 14; a positioning mechanism 4 is also provided at the bottom of the sixth row of receiving cavities, and fixes the position of the soil block 2 in the sixth row of receiving cavities; the positioning mechanism 4 is connected to the transverse baffle 11 between the two adjacent rows of receiving cavities 14 and the transverse baffle 11 at the bottom of the sixth row of receiving cavities. like Figure 3 , Figure 4 As shown, the positioning mechanism 4 includes a mounting shaft 44, a rotating sleeve 43, a positioning rod 41, and a pressure plate 42. Ten mounting holes 111 are provided on the transverse baffle 11, penetrating the transverse baffle 11. These ten mounting holes 111 are located on the bottom side of the receiving cavities 14 and correspond to the ten receiving cavities 14 in each row. A mounting shaft 44 is fixedly connected to the inner wall of each mounting hole 111. The length direction of the mounting shaft 44 is consistent with the length direction of the transverse baffle 11. A rotating sleeve 43 is sleeved on the outer side of the mounting shaft 44. 43 is rotatably connected to the mounting shaft 44. A positioning rod 41 and a pressure plate 42 are fixedly connected to the outer peripheral side wall of the rotating sleeve 43. The length direction of the positioning rod 41 is perpendicular to the axial direction of the rotating sleeve 43. There are several positioning rods 41, and the several positioning rods 41 are fixed at equal intervals along the length direction of the rotating sleeve 43 on the outer peripheral side wall of the rotating sleeve 43. The end of the positioning rod 41 away from the rotating sleeve 43 is sharp. The pressure plate 42 is rectangular and the plane of the pressure plate 42 is parallel to the axis of the rotating sleeve 43. The positioning rod 41 is positioned close to the upper row of the two adjacent rows of receiving cavities, and the pressure plate 42 is positioned close to the lower row of the two adjacent rows of receiving cavities. The angle between the plane of the pressure plate 42 and the axis of the positioning rod 41 is 30°~90°.

[0021] The bottom end of the fixed shell 1 is provided with a limiting mechanism. The limiting mechanism is slidably connected to the bottom end of the fixed shell 1 and performs a flipping limiting operation on the positioning mechanism 4 at the bottom end of the sixth row of receiving cavities 14, so that the positioning mechanism 4 fixes the position of the piled soil blocks 2 in the sixth row of receiving cavities 14.

[0022] like Figure 5 , Figure 6 As shown, the limiting mechanism includes a limiting plate 3, which is disposed at the bottom end of the lowest horizontal baffle 11 and slidably connected to the horizontal baffle 11. The length direction of the limiting plate 3 is consistent with the length direction of the horizontal baffle 11. A guide slide 112 is provided on the bottom end face of the lowest horizontal baffle 11. The length direction of the guide slide 112 is consistent with the width direction of the horizontal baffle 11, that is, the length direction of the guide slide 112 is perpendicular to the bottom plate 13. A guide protrusion 33 corresponding to the guide slide 112 is provided on the limiting plate 3. The guide protrusion 33 is embedded in the guide slide 112 and can slide along the length direction of the guide slide 112. When the guide protrusion 33 slides to the end of the guide slide 112 away from the base plate 13, the limiting plate 3 is located on the side of the mounting hole 111 provided on the lowest transverse baffle 11, and it does not contact the pressure plate 42 within the range of the mounting hole 111. Figure 5 As shown; when the guide protrusion 33 slides to one end of the guide slide 112 near the bottom plate 13, the limiting plate 3 slides to the range of the mounting hole 111 provided on the lowest transverse baffle 11 and squeezes and limits the pressure plate 42 installed in the range of the mounting hole 111, so that the positioning rod 41 installed in the range of the mounting hole 111 fixes the position of the piled soil block 2 in the lowest row of receiving cavities 14, as shown. Figure 6 As shown.

[0023] Both ends of the limiting plate 3 along its length are fixedly connected to connecting ears 31, and the connecting ears 31 are provided with limiting holes and fastening bolts 32 are connected through the limiting holes; the outer walls of the longitudinal baffles 12 at both ends of the base plate 13 along its length are provided with positioning screw holes; when the limiting plate 3 squeezes and limits the pressure plate 42, the fastening bolts 32 pass through the limiting holes and are screwed into the positioning screw holes.

[0024] When the bottom positioning mechanism is in the non-limited state, the limiting plate slides to the end away from the bottom plate, allowing the positioning mechanism to rotate freely without the limiting plate affecting it. When the soil block is embedded in the sixth row of receiving cavities, the pressure plate in the bottom positioning mechanism extends below the bottom horizontal baffle. At this time, the limiting plate slides towards the bottom plate, squeezing the pressure plate and causing it to rotate. Simultaneously, the positioning rod in the bottom positioning mechanism extends into the soil block in the sixth row of receiving cavities to position the soil block. When the limiting plate slides to the end close to the bottom plate, the fastening bolt is tightened. The fastening bolt limits the position of the limiting plate, preventing it from sliding on its own during the soil-building and greening process, which would affect the positioning effect of the bottom positioning mechanism on the soil block in the sixth row of receiving cavities. This further improves the effectiveness of this invention.

[0025] During the construction of the earth-filled greening structure, the first step is to fix the prefabricated shell to the ground or building wall. The second step is to position the positioning mechanism on the transverse baffle between the first and second rows of receiving cavities in a non-limited state, i.e., the positioning rod in the positioning mechanism is downward and facing the bottom plate, and the pressure plate in the positioning mechanism extends into the second row of receiving cavities. The third step is to embed earth blocks (structurally similar to...) into the first row of receiving cavities. Figure 7 The structure is the same, but the specific location of the receiving cavities differs. Fourth, the positioning mechanism on the transverse baffle between the second and third rows of receiving cavities is placed in a non-limited state. A mound of earth is embedded in the second row of receiving cavities. During embedding, the mound of earth presses against the pressure plate extending into the second row of receiving cavities, causing the pressure plate to rotate downwards. Simultaneously, under the action of the rotating sleeve and the mounting shaft, the positioning rod rotates upwards and extends into the mound of earth in the first row of receiving cavities, thus achieving the positional limitation operation of the mound of earth in the first row of receiving cavities (structurally similar to...). Figure 8 (The internal structure is the same, but the specific locations of the receiving cavities differ). Fifth, following the above steps, embed the soil blocks sequentially into the receiving cavities of the third, fourth, fifth, and sixth rows, thereby enabling the positioning mechanism to define the positions of the soil blocks within the receiving cavities of the second, third, fourth, and fifth rows. Figure 7 , Figure 8 , Figure 9 As shown; in the sixth step, operate the limiting mechanism to make the limiting plate in the limiting mechanism slide towards the bottom plate. During the sliding process, it will squeeze and rotate the pressure plate in the bottom positioning mechanism, causing the positioning rod in the bottom positioning mechanism to extend into the soil blocks in the sixth row of receiving cavities, thereby limiting the position of the soil blocks in the sixth row of receiving cavities. Figure 10 As shown.

[0026] This invention employs a design with several rows of receiving cavities within a fixed shell, and positioning mechanisms between adjacent cavities. During the construction of the earthen greening structure, firstly, appropriately sized earthen blocks are embedded into the top row of receiving cavities. Then, earthen blocks are embedded into the second row of receiving cavities. As the earthen blocks in the second row are embedded, they compress the pressure plate in the positioning mechanism, causing it to rotate and ultimately align parallel to the transverse baffle. During this rotation, the positioning rod in the positioning mechanism presses into the earthen blocks of the top row, eventually inserting itself inside. This design simultaneously defines the position of the earthen blocks in the first row of receiving cavities while completing the embedding of the earthen blocks in the second row. Then, the earthen block embedding operation is performed sequentially on each subsequent row of receiving cavities, simultaneously achieving… The upper cavity contains soil blocks whose positions are defined. Finally, a limiting mechanism squeezes and rotates the pressure plate in the bottom positioning mechanism, thus defining the position of the soil blocks in the bottom row of cavities. This achieves the installation and shaping of all soil blocks in the entire housing. Its simple structure and quick operation effectively improve the assembly efficiency of soil blocks in earthen greening structures. Furthermore, the positioning mechanism design defines the position of all soil blocks during assembly, improving the stability of the connection between the soil blocks and the housing. This prevents the soil blocks from detaching from the housing during long-term use, further enhancing the effectiveness of the earthen greening structure and facilitating its construction.

Claims

1. A quick-installation, large-area earth-block greening structure, comprising earth blocks and a shaped shell for containing the earth blocks, characterized in that: The shaped shell contains several receiving cavities, through which soil blocks are embedded. The receiving cavities are arranged in a matrix and divided into several rows from top to bottom. Positioning mechanisms are provided between the receiving cavities of two adjacent rows and at the bottom of the receiving cavities of the bottom row. The positioning mechanisms are connected to the shaped shell. A limiting mechanism is provided at the bottom of the shaped shell. The limiting mechanism is slidably connected to the bottom of the shaped shell and performs a flipping limiting operation on the positioning mechanism at the bottom of the bottom row of receiving cavities, so that the positioning mechanism fixes the position of the soil blocks in the bottom row of receiving cavities.

2. The quick-installation, large-area earth-walled greening structure as described in claim 1, characterized in that: The shaped shell is composed of a base plate, seven transverse baffles, and eleven longitudinal baffles. The base plate is rectangular. The seven transverse baffles and eleven longitudinal baffles are all fixedly connected to one end face of the base plate. The seven transverse baffles are all rectangular and are evenly spaced along the width direction of the base plate. The eleven longitudinal baffles are all rectangular and are evenly spaced along the length direction of the base plate. The seven transverse baffles and eleven longitudinal baffles are perpendicularly connected to each other to form a rectangular frame structure for supporting the piled soil. The rectangular frame structure and the end face of the base plate are combined to form several accommodating cavities with external openings.

3. The quick-installation large-area earth-walled greening structure as described in claim 2, characterized in that: The seven transverse baffles are arranged in parallel with the length direction of the transverse baffles being consistent with the length direction of the base plate, and the eleven longitudinal baffles are arranged in parallel with the length direction of the longitudinal baffles being consistent with the width direction of the base plate, so that the combination of the transverse baffles, longitudinal baffles, and base plate forms a number of accommodating cavities that are rectangular columnar cavity structures with one side opening, and the volume of the number of accommodating cavities is consistent.

4. The quick-installation large-area earth-walled greening structure as described in claim 2, characterized in that: The positioning mechanism is connected to the transverse baffle between the two adjacent rows of receiving cavities and the transverse baffle at the bottom of the lowest row of receiving cavities. The positioning mechanism includes a mounting shaft, a rotating sleeve, a positioning rod, and a pressure plate. The transverse baffle is provided with a mounting hole that penetrates the transverse baffle. The mounting hole is located on the bottom side of the receiving cavity. The mounting shaft is fixedly connected to the inner wall of the mounting hole. The length direction of the mounting shaft is consistent with the length direction of the transverse baffle. The rotating sleeve is sleeved on the outside of the mounting shaft and is rotatably connected to the mounting shaft. The positioning rod and the pressure plate are fixedly connected to the outer peripheral side wall of the rotating sleeve. The positioning rod is located near the upper row of receiving cavities in the two adjacent rows, and the pressure plate is located near the lower row of receiving cavities in the two adjacent rows.

5. The quick-installation large-area earth-walled greening structure as described in claim 4, characterized in that: The length direction of the positioning rod is perpendicular to the axis direction of the rotating sleeve. There are several positioning rods, and these positioning rods are fixed at equal intervals on the outer peripheral side wall of the rotating sleeve along the length direction of the rotating sleeve. The end of the positioning rod away from the rotating sleeve is sharp.

6. The quick-installation large-area earth-walled greening structure as described in claim 4, characterized in that: The pressure plate is rectangular in shape, and the plane of the pressure plate is parallel to the axis of the rotating sleeve. The angle between the plane of the pressure plate and the axis of the positioning rod is 30° to 90°.

7. The quick-installation large-area earth-walled greening structure as described in claim 4, characterized in that: The limiting mechanism includes a limiting plate, which is disposed at the bottom end of the lowest horizontal baffle and slidably connected to the horizontal baffle. The length direction of the limiting plate is consistent with the length direction of the horizontal baffle. A guide slide is provided on the bottom end face of the lowest horizontal baffle, and the length direction of the guide slide is consistent with the width direction of the horizontal baffle. A guide protrusion corresponding to the guide slide is provided on the limiting plate. The guide protrusion is embedded in the guide slide and can slide along the length direction of the guide slide. When the guide protrusion slides to one end of the guide slide, the limiting plate is located on one side of the mounting hole provided on the lowest horizontal baffle. When the guide protrusion slides to the other end of the guide slide, the limiting plate slides into the range of the mounting hole provided on the lowest horizontal baffle and squeezes and limits the pressure plate installed in the range of the mounting hole, so that the positioning rod installed in the range of the mounting hole fixes the position of the piled soil blocks in the lowest row of receiving cavities.

8. The quick-installation large-area earth-walled greening structure as described in claim 7, characterized in that: Both ends of the limiting plate along its length are fixedly connected to connecting ears, and limiting holes are provided on the connecting ears and fastening bolts are connected through the limiting holes; positioning screw holes are provided on the outer side walls of the longitudinal baffles at both ends of the base plate along its length; when the limiting plate squeezes and limits the pressure plate, the fastening bolts pass through the limiting holes and are screwed into the positioning screw holes.

Citation Information

Patent Citations

  • Firm soil-building assembly type greening structure

    CN220458023U