A low-carbon grass and stone dividing strip for landscaping
The combined structure of the partition frame and the bendable support rod solves the installation problem of the grass and stone partition strips, achieving a simple shaping and environmentally friendly partition effect.
Patent Information
- Application Number
- CN202410205621.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-02-26
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2044-02-26
AI Technical Summary
Grass and stone dividing strips are difficult to shape during installation, which makes installation difficult.
A partition frame structure is adopted, including a flexible bottom plate and side plates, combined with a bendable support rod and a connecting component. The partition frame is shaped by the bending of the support rod, and the degradation of the partition frame is accelerated by using degradable materials.
The grass and stone dividing strips can be easily shaped and quickly installed, and after construction is completed, the decomposition of the dividing frame can be accelerated by using degradable materials to reduce environmental impact.
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Figure CN117981611B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of garden construction, and in particular to a low-carbon grass-stone dividing strip for garden greening. Background Art
[0002] Landscaping is the use of engineering technology and artistic means in a certain area to create a highly ornamental natural environment and recreational area by transforming the terrain, planting trees and flowers, constructing buildings and arranging garden paths. When it is necessary to create a landscape with a combination of flower mirrors, grass and gravel in the process of creating parks and residential areas, grass and stone dividing strips are usually used to separate the soil layer and the gravel layer. The grass and stone dividing strips are set at the junction of the stone and soil layers to separate the stone and soil layers into different patterns and shapes.
[0003] The grass and stone dividing strips usually have a certain elasticity so that they can be set into different shapes. During installation, they need to be fixed in the soil layer by multiple ground nails to keep them in the set shape. However, due to the elasticity of the grass and stone dividing strips, it is not easy to shape the grass and stone dividing strips during installation. Summary of the Invention
[0004] Based on the above description, the present invention provides a low-carbon grass and stone dividing strip for landscaping to solve the problem in the related art that the grass and stone dividing strip is difficult to shape during installation.
[0005] The technical solution of the present invention to solve the above technical problems is as follows:
[0006] This application provides a low-carbon grass-stone dividing strip for landscaping, and the technical solution adopted is as follows:
[0007] A low-carbon grass-stone dividing strip for landscaping, comprising:
[0008] A partition frame includes a flexible bottom plate and two flexible side plates, the side plates extending along the length of the bottom plate, the two side plates being parallel to each other and spaced apart along the width of the bottom plate, the two side plates being connected to one side of the bottom plate and enclosing the bottom plate to form an installation space, an anchor rod for inserting into the ground being provided on a side of the bottom plate away from the side plates, suitable for separating the soil layer and the gravel through the partition frame;
[0009] A shaping component includes a support rod and a connecting component. The support rod is bendable and is used to be arranged in the installation space and along the length direction of the base plate. Both ends of the support rod are detachably connected to the partition frame through the connecting component, and are suitable for driving the partition frame to bend by bending the support rod.
[0010] On the basis of the above technical solution, the present invention can also be improved as follows.
[0011] Preferably, the connection assembly includes:
[0012] a first mounting block, which is arranged in the mounting space and is detachably connected to the partition frame via a first connecting structure; a first T-shaped slot is formed on the first mounting block; when the first mounting block is connected to the partition frame, the length direction of the first T-shaped slot is perpendicular to the bottom plate, and both ends of the first T-shaped slot are connected;
[0013] The second mounting block is fixed to the end of the support rod, and the second mounting block is adapted to the first T-shaped slot. The second mounting block can be embedded in the first T-shaped slot along the length direction of the first T-shaped slot.
[0014] Preferably, the first connection structure includes:
[0015] A first sleeve, which is fixed to the base plate and located in the installation space, wherein the axis of the first sleeve is perpendicular to the plane of the base plate;
[0016] a connecting hole formed on the first mounting block, wherein the first mounting block is movable in a direction perpendicular to the base plate until the first sleeve is inserted into the connecting hole;
[0017] The first locking structure is provided between the first mounting block and the first sleeve, and is used for limiting the relative movement of the first mounting block and the first sleeve along the axial direction of the first sleeve.
[0018] Preferably, the first locking structure includes:
[0019] a second sleeve disposed in the connecting hole and connected to the first mounting block, wherein when the first sleeve is inserted into the connecting hole, the second sleeve is inserted into the first sleeve and is coaxial with the first sleeve;
[0020] a first locking hole, which is formed on the inner wall of the first sleeve;
[0021] a first locking block, which is provided on the side wall of the second sleeve and is movable radially along the second sleeve, the first locking block being movable to partially protrude from the outer wall of the second sleeve and be embedded in the first locking hole, or being movable to no longer protrude from the outer wall of the second sleeve;
[0022] a first elastic member connecting the first locking block and the second sleeve, wherein when the first elastic member is not elastically deformed, the first locking block does not protrude from an outer wall of the second sleeve;
[0023] A drive rod is arranged in the second sleeve and is coaxial with the second sleeve. The drive rod can move axially along the second sleeve and is suitable for driving the first locking block to overcome the elastic force of the first elastic member and move toward the outside of the second sleeve through the drive rod until it partially protrudes from the outer wall of the second sleeve and is embedded in the first locking hole.
[0024] Preferably, a disassembly assembly is provided on the first mounting block, and the disassembly assembly is used to drive the side plate to deform in a direction away from the first mounting block when the first mounting block is mounted on the partition frame.
[0025] Preferably, the disassembly assembly includes an electric push rod, which is fixed on the first mounting block, and when the first mounting block is installed on the partition frame, the axis of the electric push rod is perpendicular to the side plate.
[0026] Preferably, a roller is connected to the push rod of the electric push rod, and the electric push rod contacts the side plate through the roller.
[0027] Preferably, the support rod is a bendable metal rod.
[0028] Preferably, the partition frame is made of a degradable material.
[0029] Compared with the prior art, the technical solution of this application has the following beneficial technical effects:
[0030] 1. The present application provides a partition frame, wherein anchor rods are provided at the bottom of the base plate to fix the partition frame to the ground, and the installation space on the partition frame is provided to accommodate the shaping component. The support rods in the shaping component can be bent to support the partition frame. The partition frame is bent by bending the support rods to shape the partition frame. The shaping of the partition strip is simple and convenient. After the shaping is completed, the support rods and the connecting assembly can be removed, and the partition frame can be filled with soil or gravel for support, so that the partition frame plays a role of separation.
[0031] 2. In this application, the partition frame is made of a degradable material. After the construction is completed, water or other substances that can promote degradation can be added to the partition frame to increase the contact area between the partition frame and other substances to accelerate its degradation. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 A schematic diagram of the structure of a low-carbon grass and stone dividing strip for landscaping provided by an embodiment of the present invention;
[0033] Figure 2 A schematic diagram of the structure of an anchor rod in a low-carbon grass-stone separator for landscaping provided by an embodiment of the present invention;
[0034] Figure 3A schematic diagram of the low-carbon grass and stone dividing strips for landscaping provided by an embodiment of the present invention when used in combination;
[0035] Figure 4 A schematic diagram of the structure of the second locking structure in the low-carbon grass and stone dividing strip for landscaping provided by an embodiment of the present invention;
[0036] Figure 5 A schematic diagram of the structure of the first connection structure in the low-carbon grass-stone dividing strip for landscaping provided by an embodiment of the present invention;
[0037] Figure 6 for Figure 5 A magnified schematic diagram of area A in the middle;
[0038] Figure 7 A schematic diagram of the structure of the disassembly components of the low-carbon grass and stone separator for landscaping provided by an embodiment of the present invention;
[0039] Figure 8 A schematic cross-sectional view of the side panels and reinforcement panels of a low-carbon grass-stone dividing strip for landscaping provided by an embodiment of the present invention.
[0040] In the accompanying drawings, the components represented by the reference numerals are as follows:
[0041] 1. Partition frame; 11. Bottom plate; 12. Side plate; 13. Reinforcement plate; 14. First connecting frame; 15. Second connecting frame; 16. Anchor rod; 17. First sleeve; 171. First locking hole; 18. Limit strip; 2. Shaping assembly; 21. Support rod; 22. First mounting block; 221. First T-slot; 222. Connecting hole; 223. Limit slot; 23. Second mounting block; 24. Second sleeve; 241. Guide slot; 25. First locking block; 26. First elastic member; 27. Drive rod; 271. Guide block; 28. Motor; 29. Screw; 3. Second locking structure; 31. Second locking hole; 32. Second locking block; 33. Second elastic member; 4. Electric push rod; 5. Roller. DETAILED DESCRIPTION
[0042] To facilitate understanding of the present application, the present application will be described more fully below with reference to the accompanying drawings. The accompanying drawings provide embodiments of the present application. However, the present application may be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of the present application more thorough and comprehensive.
[0043] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art to which this application pertains. The terms used herein in the specification of this application are for the purpose of describing specific embodiments only and are not intended to limit this application.
[0044] It will be understood that spatial relational terms such as "under," "beneath," "below," "under," "above," "above," etc., may be used herein to describe the relationship of an element or feature shown in the figures to other elements or features. It will be understood that in addition to the orientations shown in the figures, spatial relational terms also include different orientations of the device in use and operation. For example, if the device in the drawings is turned over, the element or feature described as "under" or "beneath" or "beneath" the other elements will be oriented as "above" the other elements or features. Thus, the exemplary terms "under" and "under" may include both upper and lower orientations. In addition, the device may also include alternative orientations (e.g., rotated 90 degrees or other orientations), and the spatial descriptors used herein are interpreted accordingly.
[0045] It should be noted that when an element is considered to be "connected" to another element, it can be directly connected to the other element or connected to the other element through an intermediate element. In the following embodiments, "connection" should be understood as "electrical connection", "communication connection", etc., if the connected circuits, modules, units, etc. can transmit electrical signals or data to each other.
[0046] When used herein, the singular forms "a", "an", and "the" may also include the plural forms, unless the context clearly indicates otherwise. It should also be understood that the terms "include / comprise" or "have" and the like specify the presence of stated features, integers, steps, operations, components, parts, or combinations thereof, but do not preclude the possibility of the presence or addition of one or more other features, integers, steps, operations, components, parts, or combinations thereof.
[0047] Reference Figure 1-8 As shown, an embodiment of the present application provides a low-carbon grass and stone dividing strip for landscaping, which includes a dividing frame 1. The dividing frame 1 includes a flexible bottom plate 11 and two flexible side plates 12. The side plates 12 extend along the length direction of the bottom plate 11. The two side plates 12 are parallel to each other and spaced apart along the width direction of the bottom plate 11. The two side plates 12 are connected to one side of the bottom plate 11 and enclosed with the bottom plate 11 to form an installation space. An anchor rod 16 for inserting into the ground is provided on the side of the bottom plate 11 away from the side plates 12, which is suitable for separating the soil layer and the stone through the dividing frame 1.
[0048] Reference Figure 1-3As shown, specifically, the plane of the side panel 12 is perpendicular to the plane of the bottom panel 11, and a reinforcing plate 13 is provided on the side of the two side panels 12 facing away from each other to strengthen the strength of the side panel 12. The partition frame 1 is provided with a first connecting frame 14 and a second connecting frame 15 at both ends of the length direction of the bottom panel 11. The first connecting frame 14 is cylindrical and is fixed between the two side panels 12 by a connecting plate and protrudes out of the installation space. The second connecting frame 15 is also cylindrical but has a notch. The second connecting frame 15 is fixed between the two side panels 12 and is located in the installation space. The axes of the first connecting frame 14 and the second connecting frame 15 are both perpendicular to the bottom panel 11, and the first connecting frame 14 is adapted to the second connecting frame 15. When the two partition frames 1 are used in combination, the first connecting frame 14 on one partition frame 1 can be embedded in the second connecting frame 15 on the other partition bar, and the first connecting frame 14 and the second connecting frame 15 cooperate to limit the separation of the two partition bars. Multiple partition bars can be combined and used as needed.
[0049] During installation, the partition frame 1 is fixed to the ground through the anchor rods 16 at the bottom of the bottom plate 11. The soil layer and the gravel layer are on the two sides of the two side plates 12 that are away from each other, so that the soil layer and the gravel layer are separated by the partition frame 1. The partition frame 1 is made of degradable material, and the installation space can be set to increase its surface area. After the construction is completed, the installation space can be filled with soil, water, and other substances that can accelerate its degradation, so that the partition frame 1 can be quickly degraded. In addition, referring to Figure 8 As shown, holes are provided in both the side panels 12 and the bottom panel 11 to allow water to penetrate, further accelerating the degradation process. When reinforcing panels 13 are installed on the side panels 12, they cover the holes, enabling the partition frame 1 to separate the soil and rocks. In this embodiment, the partition frame 1 is formed by laminating multiple layers of water-degradable plastic film. The first and second connecting frames 14 and 15 can be made of degradable cardboard, and the reinforcing panels 13 can be made of PBAT resin.
[0050] Reference Figure 1 and Figure 3-7 As shown, when installing the partition frame 1, in order to shape the partition frame 1 and keep it in the set shape, a shaping component 2 is set in the partition frame 1. The shaping component 2 includes a support rod 21. The support rod 21 is bendable. The support rod 21 is used to be set in the installation space and arranged along the length direction of the base plate 11. The two ends of the support rod 21 are detachably connected to the partition frame 1 through a connecting component, which is suitable for driving the partition frame 1 to bend by bending the support rod 21.
[0051] Specifically, the support rod 21 is made of a bendable metal rod or metal strip, etc., which needs to be bent by a certain force and can maintain its shape after bending. In this way, when the support rod 21 is arranged along the length direction of the bottom plate 11 of the partition frame 1, the partition frame 1 can be bent together and maintained in the set shape by bending the metal rod, thereby achieving the shaping of the partition frame 1.
[0052] Reference Figure 3-4 As shown, in order to realize the installation of the support rod 21 in the partition frame 1, the connecting assembly includes a first mounting block 22 and a second mounting block 23. The first mounting block 22 is used to be arranged in the installation space and is detachably connected to the partition frame 1 through a first connecting structure. A first T-slot 221 is provided on the first mounting block 22. When the first mounting block 22 is connected to the partition frame 1, the length direction of the first T-slot 221 is perpendicular to the base plate 11, and the two ends of the first T-slot 221 are through. The second mounting block 23 is fixed to the end of the support rod 21, and the second mounting block 23 is adapted to the first T-slot 221. The second mounting block 23 can be embedded in the first T-slot 221 along the length direction of the first T-slot 221.
[0053] Reference Figure 4-5 As shown, the first connecting structure includes a first sleeve 17, a connecting hole 222 and a first locking structure. The first sleeve 17 is fixed on the base plate 11 and is located in the installation space. The axis of the first sleeve 17 is perpendicular to the plane of the base plate 11. The connecting hole 222 is opened on the first mounting block 22. The first mounting block 22 can be moved in a direction perpendicular to the base plate 11 until the first sleeve 17 is embedded in the connecting hole 222. The first locking structure is provided between the first mounting block 22 and the first sleeve 17, and is used to limit the relative movement of the first mounting block 22 and the first sleeve 17 along the axial direction of the first sleeve 17.
[0054] Reference Figure 3 As shown, further, in order to limit the movement of the first mounting block 22 along the length and width directions of the base plate 11, the first mounting block 22 is embedded in the installation space and fits with the two side panels 12 on both sides. At the same time, limit strips 18 are provided on the sides of the two side panels 12 that are close to each other. The length of the limit strip 18 is perpendicular to the base plate 11, and a limit groove 223 is provided on the corresponding first mounting block 22 to adapt to the limit strip 18. When the first mounting block 22 is embedded in the installation space in a direction perpendicular to the base plate 11, the corresponding limit strip 18 is embedded in the limit groove 223. In this way, the first mounting block 22 is restricted from moving along the length and width directions of the base plate 11, and when the support rod 21 is connected to the first mounting block 22 through the second mounting block 23, it is restricted from moving along the length and width directions of the base plate 11.
[0055] Reference Figure 5-6As shown, further, the first locking structure includes a second sleeve 24, a first locking hole 171, a first locking block 25, a first elastic member 26 and a driving rod 27. The second sleeve 24 is arranged in the connecting hole 222 and is connected to the first mounting block 22. When the first sleeve 17 is embedded in the connecting hole 222, the second sleeve 24 is embedded in the first sleeve 17 and is coaxial with the first sleeve 17; the first locking hole 171 is opened on the inner wall of the first sleeve 17, the first locking block 25 is provided on the side wall of the second sleeve 24 and can move radially along the second sleeve 24, and the first locking block 25 can be moved to partially protrude from the outside of the second sleeve 24. The first locking block 25 is embedded in the first locking hole 171, or moves to a position that does not protrude from the outer wall of the second sleeve 24; the first elastic member 26 connects the first locking block 25 and the second sleeve 24, and when the first elastic member 26 is not elastically deformed, the first locking block 25 does not protrude from the outer wall of the second sleeve 24; the driving rod 27 is arranged in the second sleeve 24 and is coaxial with the second sleeve 24. The driving rod 27 can move axially along the second sleeve 24, and is suitable for driving the first locking block 25 to overcome the elastic force of the first elastic member 26 and move toward the outside of the second sleeve 24 through the driving rod 27, until it partially protrudes from the outer wall of the second sleeve 24 and is embedded in the first locking hole 171.
[0056] Reference Figure 5-6 As shown, specifically, the outer diameter of the second sleeve 24 is consistent with the inner diameter of the first sleeve 17, and a hole for installing the first locking block 25 is opened on the side wall of the second sleeve 24. The first elastic member 26 is a spring, and its axis is perpendicular to the axis of the second sleeve 24. The spring is sleeved outside the first locking block 25 and its two ends are fixed to the second sleeve 24 and the first locking block 25 respectively; when the spring is in an undeformed state, the end of the first locking block 25 close to the second sleeve 24 protrudes into the second sleeve 24, and the end is set to a conical shape. Correspondingly, the drive The diameter of the driving rod 27 is consistent with the inner diameter of the second sleeve 24, and the end portion is configured as a cone. Thus, when the driving rod 27 moves axially along the second sleeve 24, the conical end can cooperate with the conical end of the first locking block 25 to drive the first locking block 25 to move outward from the second sleeve 24 until it protrudes from the outer wall of the second sleeve 24 and is embedded in the first locking hole 171. The first locking block 25 and the first locking hole 171 cooperate to fix the second sleeve 24 and the first sleeve 17, and the first mounting block 22 and the base plate 11. When it is necessary to remove the first mounting block 22, the driving rod 27 is moved until it is no longer in contact with the first locking block 25. Under the action of the spring force, the first locking block 25 is reset to a state where it no longer protrudes from the outer wall of the second sleeve 24. At this time, the first mounting block 22 can be separated from the first sleeve 17.
[0057] Reference Figure 5-6As shown, in order to drive the first driving rod 27 to move, the driving rod 27 can be set to pass through an end face of the first mounting block 22 away from the first sleeve 17, and the driving rod 27 can be driven to move manually; or, a cavity is set in the first mounting block 22, and a motor 28 is installed in the cavity. The axis of the motor 28 and the driving rod 27 are coaxial, and the output shaft of the motor 28 is connected to the screw 29, and the screw 29 is threadedly connected to the driving rod 27. At the same time, the outer wall of the driving rod 27 is connected to the guide block 271, and the inner wall of the second sleeve 24 is provided with an axial guide groove 241, and the guide block 271 is embedded in the guide groove 241. In this way, when the motor 28 is started, the screw 29 is driven to rotate, and the screw 29 is assembled with the thread of the driving rod 27. Under the limit of the guide block 271 and the guide rod, the screw 29 drives the driving rod 27 to move axially when it rotates, thereby realizing the detachable connection between the first mounting block 22 and the first sleeve 17.
[0058] Reference Figure 4-5 As shown, further, when the support rod 21 is connected to the first mounting block 22 through the second mounting block 23, in order to fix the support rod 21, a second locking structure 3 is provided between the second mounting block 23 and the first mounting block 22. The second locking structure 3 includes a second locking hole 31, a second locking block 32 and a second elastic member 33. The second locking hole 31 is provided on the inner wall of the first T-slot 221, and a mounting hole is provided on the side wall of the second mounting block 23. The second locking block 32 is provided in the mounting hole. The second locking block 32 can be moved to protrude or not protrude from the outer wall of the second mounting block 23. When the second mounting block 23 is embedded in the first T-shaped slot 221, the second locking block 32 can protrude from the outer wall of the second mounting block 23 and be embedded in the second locking hole 31 to fix the first mounting block 22 and the second mounting block 23; the second elastic member 33 connects the second locking block 32 and the second mounting block 23. In the undeformed state, the second elastic member 33 keeps the second locking block 32 protruding from the outer wall of the second mounting block 23. Specifically, the second locking block 32 has an inclined surface at one end protruding from the outer wall of the second mounting block 23. When the second mounting block 23 moves into the first T-shaped slot 221, the inclined surface of the second locking block 32 cooperates with the first mounting block 22 to drive the second locking block 32 into the mounting hole, so that the second mounting block 23 is smoothly inserted into the first T-shaped slot 221. When the second locking block 32 moves to a position corresponding to the second locking hole 31, the second elastic member 33 causes the second locking block 32 to be inserted into the second locking hole 31 under the elastic force of the second elastic member 33. The second elastic member 33 is a spring, and its two ends are respectively fixed to the second locking block 32 and the second mounting block 23.
[0059] Reference Figure 7As shown, to facilitate the removal of the first mounting block 22 from the partition frame 1, a disassembly assembly is provided on the first mounting block 22. The disassembly assembly is used to drive the side panels 12 to deform away from the first mounting block 22 when the first mounting block 22 is installed on the partition frame 1. Specifically, the disassembly assembly includes an electric push rod 4, which is fixed to the first mounting block 22. When the first mounting block 22 is installed on the partition frame 1, the axis of the electric push rod 4 is perpendicular to the side panels 12, and a roller 5 is connected to the push rod of the electric push rod 4. The electric push rod 4 contacts the side panels 12 through the roller 5 to reduce the frictional resistance between the first mounting block 22 and the side panels 12, thereby quickly removing the first mounting block 22. Correspondingly, two disassembly assemblies are provided on the first mounting block 22, and the two disassembly assemblies are respectively located between the first mounting block 22 and the two side panels 12.
[0060] Furthermore, in this embodiment, the shaping component 2 in a partition frame 1 includes three first mounting blocks 22, and the three first mounting blocks 22 are spaced apart along the length direction of the base plate 11. Each first mounting block 22 is provided with a first T-shaped slot 221 on both sides along the length direction of the base plate 11 to facilitate the connection between the support rod 21 and the first mounting block 22. Two support rods 21 are arranged between two adjacent first mounting blocks 22, and the shaping component 2 in a partition frame 1 includes four support rods 21.
[0061] The implementation principle of this embodiment is as follows: when installing the partition frame 1, the first mounting block 22 is installed in the mounting frame, the first sleeve 17 is embedded in the mounting hole and the second sleeve 24 is inserted into the first sleeve 17, the driving rod 27 is driven to move by the motor 28, and the driving rod 27 causes the first locking block 25 to protrude from the outer wall of the second sleeve 24 and embed into the first locking hole 171, thereby fixing the first mounting block 22 and the partition frame 1; then the support rod 21 is installed, the second mounting block 23 is embedded in the first T-shaped slot 221, and the second locking block 32 is embedded in the second locking hole 31, thereby completing the installation of the support rod 21 ; Bend the support rod 21 according to the boundary shape of the soil layer and the stone to bend the partition frame 1 into the boundary shape, and fix the partition frame 1 between the soil layer and the stone through the anchor rod 16 to complete the installation of the partition frame 1; drive the drive rod 27 through the motor 28 to move it until it is no longer in contact with the first locking block 25, and under the action of the first elastic member 26, the first locking block 25 moves to a point where it does not protrude from the outer wall of the second sleeve 24, and the first installation block 22 is removed from the partition frame 1, and the support rod 21 is removed at the same time; then add soil, stone and water into the partition frame 1, support the partition frame 1 through the soil, stone and water, and accelerate the degradation of the partition frame 1.
[0062] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A low-carbon grass and stone dividing strip for landscaping, characterized in that: include: A partition frame (1) comprises a flexible bottom plate (11) and two flexible side plates (12), wherein the side plates (12) extend along the length direction of the bottom plate (11), the two side plates (12) are parallel to each other and spaced apart along the width direction of the bottom plate (11), the two side plates (12) are connected to one side of the bottom plate (11) and enclosed with the bottom plate (11) to form an installation space, and an anchor rod (16) for inserting into the ground is provided on the side of the bottom plate (11) away from the side plates (12), which is suitable for separating soil layers and stones through the partition frame (1); A shaping assembly (2) comprises a support rod (21) and a connecting assembly, wherein the support rod (21) is bendable and is arranged in an installation space and along the length direction of the base plate (11). Both ends of the support rod (21) are detachably connected to the partition frame (1) via the connecting assembly, and are adapted to drive the partition frame (1) to bend by bending the support rod (21).
2. The low-carbon grass and stone dividing strip for landscaping according to claim 1, characterized in that: The connection component includes: a first mounting block (22) for being arranged in the mounting space and detachably connected to the partition frame (1) via a first connecting structure; a first T-shaped slot (221) being provided on the first mounting block (22); when the first mounting block (22) is connected to the partition frame (1), the length direction of the first T-shaped slot (221) is perpendicular to the bottom plate (11); and both ends of the first T-shaped slot (221) are connected; A second mounting block (23) is fixed to the end of the support rod (21), and the second mounting block (23) is adapted to the first T-shaped slot (221). The second mounting block (23) can be embedded in the first T-shaped slot (221) along the length direction of the first T-shaped slot (221).
3. The low-carbon grass and stone dividing strip for landscaping according to claim 2, characterized in that: The first connection structure includes: A first sleeve (17) is fixed on the base plate (11) and is located in the installation space, wherein the axis of the first sleeve (17) is perpendicular to the plane of the base plate (11); a connecting hole (222) formed on the first mounting block (22); the first mounting block (22) can be moved in a direction perpendicular to the base plate (11) until the first sleeve (17) is embedded in the connecting hole (222); A first locking structure is provided between the first mounting block (22) and the first sleeve (17) and is used to limit the relative movement of the first mounting block (22) and the first sleeve (17) along the axial direction of the first sleeve (17).
4. The low-carbon grass and stone dividing strip for landscaping according to claim 3, characterized in that: The first locking structure includes: a second sleeve (24) disposed in the connecting hole (222) and connected to the first mounting block (22); when the first sleeve (17) is embedded in the connecting hole (222), the second sleeve (24) is embedded in the first sleeve (17) and is coaxial with the first sleeve (17); a first locking hole (171) formed on the inner wall of the first sleeve (17); a first locking block (25) disposed on a side wall of the second sleeve (24) and movable radially along the second sleeve (24); the first locking block (25) being movable to a position where it partially protrudes from the outer wall of the second sleeve (24) and is embedded in the first locking hole (171); or being movable to a position where it no longer protrudes from the outer wall of the second sleeve (24); a first elastic member (26) connecting the first locking block (25) and the second sleeve (24), wherein when the first elastic member (26) is in an elastically non-deformed state, the first locking block (25) does not protrude from the outer wall of the second sleeve (24); A driving rod (27) is provided in the second sleeve (24) and is coaxial with the second sleeve (24). The driving rod (27) can move axially along the second sleeve (24) and is suitable for driving the first locking block (25) to overcome the elastic force of the first elastic member (26) and move outward from the second sleeve (24) through the driving rod (27) until the first locking block (25) partially protrudes from the outer wall of the second sleeve (24) and is embedded in the first locking hole (171).
5. The low-carbon grass and stone dividing strip for landscaping according to claim 2, characterized in that: A disassembly assembly is provided on the first mounting block (22), and the disassembly assembly is used to drive the side plate (12) to deform in a direction away from the first mounting block (22) when the first mounting block (22) is mounted on the partition frame (1).
6. The low-carbon grass and stone dividing strip for landscaping according to claim 5, characterized in that: The disassembly assembly includes an electric push rod (4) fixed on the first mounting block (22), and when the first mounting block (22) is mounted on the partition frame (1), the axis of the electric push rod (4) is perpendicular to the side plate (12).
7. The low-carbon grass and stone dividing strip for landscaping according to claim 6, characterized in that: A roller (5) is connected to the push rod of the electric push rod (4), and the electric push rod (4) contacts the side plate (12) through the roller (5).
8. The low-carbon grass and stone dividing strip for landscaping according to claim 1, characterized in that: The support rod (21) is a bendable metal rod.
9. The low-carbon grass and stone dividing strip for landscaping according to claim 1, characterized in that: The partition frame (1) is made of a degradable material.
Citation Information
Patent Citations
Grass and stone isolation plate
CN209660074U
Grass-stone boundary separation zone
CN219352544U