The utility model discloses an ecological environment-friendly soil retaining plate mold and ecological environment-friendly soil retaining plate
Patent Information
- Application Number
- CN202522064978.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-09-25
AI Technical Summary
[0021]1.本实用新型所述的生态环保型挡土板模具,通过底模两端设置的翻转机构与端模的连接结构,实现端模的快速开合与定位,提高拆模效率和操作便捷性,同时保证合模精度。
Smart Images

Figure CN224780886U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of retaining wall technology, and in particular to an eco-friendly retaining plate mold and an eco-friendly retaining plate. Background Technology
[0002] With the acceleration of urbanization and the increasing demand for ecological construction, retaining structures are being used more and more widely in projects such as slope stabilization, landscaping, and river protection. Traditional retaining structures are mostly made of poured concrete or assembled from blocks, with limited functionality and poor ecological compatibility. In recent years, to meet ecological and environmental protection requirements, ecological retaining boards that combine soil retention and greening functions have emerged. These typically have planting troughs for vegetation growth, which can both stabilize the soil and improve the ecological environment.
[0003] However, the molding of these ecological retaining walls relies on specialized molds, and existing mold structures still have many shortcomings. Traditional molds mostly use integral welding or bolt-fixed structures, which are difficult to dismantle, inefficient, and prone to deformation during repeated use, leading to poor sealing, concrete slurry leakage, and affecting the surface quality and dimensional accuracy of the retaining wall. Existing molds cannot simultaneously achieve the functional zoning and complex structural molding of the retaining wall, such as the height difference between the retaining surface and the water-facing surface, the precise positioning of the planting trough, and the fixing of the pre-embedded drainage pipes. This often requires multiple separate pouring or subsequent machining, resulting in low production efficiency, high cost, and poor structural integrity.
[0004] Furthermore, existing molds are prone to bulging or deformation during the pouring process due to the lateral pressure of concrete, affecting the consistency of the retaining walls; the positioning of embedded parts relies on manual operation, resulting in significant errors; and decorative surfaces require post-treatment, increasing the number of processes and resource consumption. These problems severely restrict the large-scale standardized production and application of ecological retaining walls.
[0005] While some improvement solutions have proposed detachable molds or combined internal mold structures to address the aforementioned issues, they have not yet solved the core problems of multi-functional integrated molding, precise positioning, deformation resistance, and efficient production.
[0006] Therefore, there is an urgent need for a mold device that is structurally reasonable, easy to operate, has high molding precision, and is suitable for the large-scale production of ecological retaining walls, so as to achieve the unity of retaining wall structure functionality, production efficiency and ecological aesthetics. Summary of the Invention
[0007] To address the shortcomings of existing technologies, this utility model provides an eco-friendly retaining wall mold and an eco-friendly retaining wall, which has a reasonable structure, is easy to operate, has high molding precision, and is suitable for large-scale production of eco-friendly retaining walls.
[0008] This utility model achieves the above-mentioned technical objectives through the following technical means.
[0009] An eco-friendly retaining wall mold includes a bottom mold, an inner mold, and end molds. The bottom mold has end molds installed at both ends via a flipping mechanism. The bottom mold and the end molds on both sides form an inner cavity. The bottom mold has a stepped surface that divides the inner cavity into a first chamber and a second chamber with different heights, which are used to shape the shape of the retaining wall. The inner mold is suspended in the first chamber, and the bottom surface of the inner mold passes through the second chamber, which is used to shape the planting groove of the retaining wall.
[0010] Furthermore, the bottom mold includes a bottom mold body and a bottom mold sealing mechanism; the bottom mold body has a first chamber and a second chamber that extend longitudinally and are stepped; the bottom mold body has positioning structures on both sides for positioning with the end mold; the bottom mold body has bottom mold sealing mechanisms on both sides for sealing with the end mold.
[0011] Furthermore, the upper surface of the bottom mold body is a reference plane, and the interior of the bottom mold body has a second plane that runs longitudinally through it, the second plane being located below the reference plane; the bottom mold body has a transverse end plate inside, and the interior of the bottom mold body has a first plane that runs longitudinally to the end plate, the first plane being located below the second plane; the first plane, the surface of the end plate, and the second plane form a stepped surface; within the bottom mold body, the space between the first plane and the reference plane is a second chamber for forming the retaining surface of the retaining plate; within the bottom mold body, the space between the surface of the first plane, the second plane, and the end plate is a first chamber for forming the water-facing surface of the retaining plate.
[0012] Furthermore, the bottom plane of the second chamber is provided with longitudinally extending tongue-and-groove strips for forming the sealing groove or positioning groove of the retaining plate.
[0013] Furthermore, the bottom surface of the bottom mold body is provided with a protruding positioning post, and the positioning post is located in the first cavity; the positioning post is used to position the drainage component pre-embedded in the retaining plate.
[0014] Furthermore, a second linkage mechanism is provided between the reference planes on both sides of the second chamber to prevent deformation of the bottom mold body during the casting process.
[0015] Furthermore, the inner mold includes an inner mold body, connecting beams, and pre-embedded positioning seats; the inner mold body is provided with several connecting beams, which are supported on the surface of the bottom mold, and the inner mold body is suspended from the bottom mold through the connecting beams; one end of the inner mold body is provided with an inner mold sealing structure for sealing with the end mold; an embedded module is installed at the other end of the inner mold body, and the embedded module is connected to the end plate of the bottom mold; a pre-embedded positioning seat is provided inside the inner mold body, and a pre-embedded part inserted into the first cavity is installed in the pre-embedded positioning seat.
[0016] Furthermore, the inner mold body and the bottom mold surface are provided with a first linkage mechanism to prevent the inner mold body from deforming during the casting process.
[0017] Furthermore, the bottom surface of the first chamber of the bottom mold is a shaped surface, and the shaped surface is provided with decorative patterns.
[0018] Furthermore, the end mold includes an end mold body, a hinge connecting plate, and positioning pins; the end mold body has a hinge connecting plate at its bottom, and the hinge connecting plate and the hinge seat on the bottom mold form a flipping mechanism; positioning pins are provided on both sides of the end mold body, and the positioning pins cooperate with the positioning structure on the bottom mold.
[0019] An eco-friendly retaining wall, a retaining wall produced using the aforementioned eco-friendly retaining wall mold.
[0020] The beneficial effects of this utility model are as follows:
[0021] 1. The eco-friendly retaining wall mold of this utility model achieves rapid opening and closing and positioning of the end mold through the flipping mechanism set at both ends of the bottom mold and the connection structure of the end mold, thereby improving the demolding efficiency and ease of operation, while ensuring the mold closing accuracy.
[0022] 2. The eco-friendly retaining wall mold of this utility model divides the inner cavity into a first chamber and a second chamber of different heights by setting a stepped surface in the bottom mold, so as to realize the integral molding of a composite structure retaining wall with a retaining surface and a water-facing surface, thereby improving the structural functionality and production efficiency.
[0023] 3. The eco-friendly retaining wall mold of this utility model achieves precise forming of the planting trough by suspending the inner mold in the first chamber and penetrating the second chamber through the first linkage mechanism, while avoiding displacement of the inner mold and ensuring forming quality.
[0024] 4. The eco-friendly retaining wall mold of this utility model achieves sealing and leakage prevention during the pouring process through the cooperation structure of the bottom mold sealing mechanism and the end mold, thereby reducing concrete waste and improving the surface quality of the finished product.
[0025] 5. The eco-friendly retaining wall mold of this utility model directly forms the sealing groove or positioning groove of the retaining wall by setting longitudinal tongue and groove mold strips on the bottom plane of the second chamber, reducing subsequent processing steps and improving construction efficiency.
[0026] 6. The eco-friendly retaining wall mold of this utility model accurately positions the pre-embedded drainage components through the positioning column structure protruding on the bottom surface of the bottom mold, avoiding displacement during the pouring process and ensuring the reliability of the drainage function.
[0027] 7. The eco-friendly retaining wall mold of this utility model enhances the deformation resistance of the bottom mold body by setting a second linkage mechanism between the reference planes, ensuring the stability of the mold cavity during the pouring process and improving the dimensional consistency of the retaining wall.
[0028] 8. The eco-friendly retaining wall mold of this utility model achieves stable suspension of the inner mold and precise positioning of the embedded parts through the connecting beam support structure and pre-embedded positioning seat design on the inner mold body, thereby improving the overall structure and functionality.
[0029] 9. The eco-friendly retaining wall mold of this utility model directly forms a decorative surface by setting a decorative patterned surface on the bottom surface of the first chamber, reducing post-processing steps, lowering costs, and meeting the requirements of ecological aesthetics.
[0030] 10. The eco-friendly retaining wall mold of this utility model achieves rapid flipping and fixing of the end mold through the cooperation of the flipping mechanism of the end mold hinge connecting plate and the bottom mold hinge seat, which simplifies the operation process and improves the applicability and reusability of the mold. Attached Figure Description
[0031] 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. The drawings described below are some embodiments of this utility model. For those skilled in the art, it is obvious that other drawings can be obtained from these drawings without creative effort.
[0032] Figure 1 This is the assembly drawing of the eco-friendly retaining wall mold described in this utility model.
[0033] Figure 2 This is a three-dimensional view of the bottom mold described in this utility model.
[0034] Figure 3 This is a schematic diagram showing the positions of the first and second chambers in the bottom mold of this utility model.
[0035] Figure 4 This is a three-dimensional view of the inner mold described in this utility model.
[0036] Figure 5 This is a three-dimensional view of the end mold described in this utility model.
[0037] Figure 6 This is a schematic diagram of the demolding process of the eco-friendly retaining wall mold described in this utility model.
[0038] Figure 7 This is a three-dimensional view of the retaining plate described in this utility model.
[0039] In the picture:
[0040] 1-Bottom mold; 2-Inner mold; 3-First end mold; 4-Second end mold; 5-First tie rod; 6-Second tie rod; 7-Positioning locking bolt; 8-Soil retaining plate; 8-1-Soil retaining surface; 8-2-Water-facing surface; 8-3-Planting trough; 1-1-Bottom mold body; 1-2-Positioning pin seat; 1-3-Hinge seat; 1-4-Bottom mold sealing mechanism; 1-5-Positioning column; 1-6-Tongue and groove mold strip; 1-7-First chamber; 1-8-Second chamber; 1-9-Reference plane; 1-10-End plate; 2-1-Inner mold body; 2-2-Connecting beam; 2-3-Inner mold sealing structure; 2-4-Embedded module; 2-5-Embedded part; 2-6-Embedded positioning seat; 3-1-First end mold body; 3-2-Hinge connecting plate; 3-3-Positioning pin; 4-1-Second end mold body. Detailed Implementation
[0041] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0042] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "transverse," "length," "width," "thickness," "upper," "lower," "axial," "radial," "vertical," "horizontal," "inner," and "outer," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined with "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0043] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0044] like Figure 1 As shown, the eco-friendly retaining wall mold of this invention includes a bottom mold 1, an inner mold 2, a first end mold 3, and a second end mold 4. The bottom mold 1 has the first end mold 3 and the second end mold 4 mounted at both ends via a flipping mechanism. The bottom mold 1, together with the first end molds 3 and 4 on both sides, forms an inner cavity. The bottom mold 1 has a stepped surface that divides the inner cavity into a first chamber 1-7 and a second chamber 1-8 of different heights, used to shape the outer shape of the retaining wall. The inner mold 2 is suspended within the first chamber 1-7, and its bottom surface passes through the second chamber 1-8, used to shape the planting trough 8-3 of the retaining wall. This invention, by dividing the inner cavity into the first chamber 1-7 and the second chamber 1-8 of different heights through the stepped surface within the bottom mold 1, achieves integrated molding of a composite retaining wall with both a retaining surface and a water-facing surface, improving structural functionality and production efficiency.
[0045] like Figure 2 and Figure 3 As shown, the bottom mold 1 includes a bottom mold body 1-1 and a bottom mold sealing mechanism 1-4. The upper surface of the bottom mold body 1-1 is a reference plane 1-9. The interior of the bottom mold body 1-1 has a second plane running longitudinally through it, which is located below the reference plane 1-9. A transverse end plate 1-10 is provided inside the bottom mold body 1-1, as can be seen in the figure. The end plate 1-10 is transversely intercepted within the bottom mold body 1-1. The interior of the bottom mold body 1-1 has a first plane running longitudinally to the end plate 1-10, which is located below the second plane. The first plane, the surface of the end plate 1-10, and the second plane form a stepped surface. Inside the bottom mold body 1-1, the space between the first plane and the reference plane 1-9 is a second chamber 1-8, used to form the retaining surface 8-1 of the retaining plate. Inside the bottom mold body 1-1, the space between the first plane, the second plane, and the surface of the end plate 1-10 is a first chamber 1-7, used to form the water-facing surface 8-2 of the retaining plate. Therefore, it can be concluded that the bottom mold body 1-1 has a first chamber 1-7 and a second chamber 1-8 extending longitudinally and forming a step; the bottom mold body 1-1 is provided with positioning structures on both sides for positioning with the end mold; in this embodiment, the positioning structure is a positioning pin seat 1-2 with positioning holes, which is located below the reference plane 1-9 at both ends of the bottom mold body 1-1. The bottom mold body 1-1 is provided with a bottom mold sealing mechanism 1-4 on both sides for sealing with the end mold, realizing sealing and leakage prevention during the pouring process, reducing concrete waste and improving the surface quality of the finished product.
[0046] like Figure 2 As shown, the bottom plane of the second chamber 1-8 is provided with longitudinally extending tongue-and-groove strips 1-6, which directly form the sealing groove or positioning groove of the retaining plate, reducing subsequent processing steps and improving construction efficiency. Generally, the tongue-and-groove strips 1-6 can be detachably installed on the bottom plane of the second chamber 1-8, and different styles of tongue-and-groove strips 1-6 can be replaced to meet different product needs.
[0047] like Figure 2 As shown, the bottom surface of the bottom formwork body 1-1 is provided with a protruding positioning post 1-5, and the positioning post 1-5 is located in the first chamber 1-7; the positioning post 1-5 can accurately position the water drainage component pre-embedded in the retaining plate, avoid deviation during the pouring process, and ensure the reliability of the drainage function.
[0048] To ensure the stability of the inner cavity of the bottom formwork 1-1 during the pouring process and to improve the dimensional consistency of the retaining plate, such as Figure 2 As shown, this utility model provides a second linkage mechanism between the reference planes 1-9 on both sides of the second chamber 1-8 to prevent deformation of the bottom mold body 1-1 during the casting process. The second linkage mechanism includes a second tie rod 6, a hinge support, and a connecting seat. The hinge support is located on one side of the reference plane 1-9, while the connecting seat is located on the other side of the reference plane 1-9. One end of the second tie rod 6 is hinged to the hinge support, and the other end of the second tie rod 6 is connected to the connecting seat by a nut. By tightening the second tie rod 6, the inner cavity of the bottom mold body 1-1 is prevented from deforming.
[0049] like Figure 3 As shown, the inner mold 2 includes an inner mold body 2-1, connecting beams 2-2, and pre-embedded positioning seats 2-6. The inner mold body 2-1 is provided with several connecting beams 2-2, which are supported on the surface of the bottom mold 1. The inner mold body 2-1 is suspended from the bottom mold 1 via the connecting beams 2-2, and one end of the inner mold body 2-1 contacts the first end mold 3 and is connected by positioning locking bolts 7. A first linkage mechanism is provided between the inner mold body 2-1 and the surface of the bottom mold 1 to prevent deformation of the inner mold body 2-1 during the casting process. The structure of the first linkage mechanism is similar to that of the second linkage mechanism, but the length of the first tie rod 5 in the first linkage mechanism is different from the length of the second tie rod 6 in the second linkage mechanism. One end of the inner mold body 2-1 is provided with an inner mold sealing structure 2-3 for sealing with the end mold; the other end of the inner mold body 2-1 is equipped with an embedded module 2-4, which is connected to the end plate 1-10 of the bottom mold 1; the inner mold body 2-1 is provided with a pre-embedded positioning seat 2-6, and a pre-embedded part 2-5 inserted into the first chamber 1-7 is installed in the pre-embedded positioning seat 2-6 for forming biological pores. The structures of the inner mold sealing structure 2-3 and the bottom mold sealing mechanism 1-4 can be the same or different, and are generally composed of a sealing groove and a sealing strip.
[0050] like Figure 5As shown, the first end mold 3 includes a first end mold body 3-1, a hinge connecting plate 3-2, and a positioning pin 3-3. The first end mold body 3-1 has a hinge connecting plate 3-2 at its bottom, and the hinge connecting plate 3-2 and the hinge seat 1-3 on the bottom mold 1 form a flipping mechanism via a rotating shaft. Positioning pins 3-3 are provided on both sides of the first end mold body 3-1, and the positioning pins 3-3 cooperate with the positioning pin seats 1-2 on the bottom mold 1. The second end mold 4 has a similar structure to the first end mold 3, except that the size of the second end mold body 4-1 differs from that of the first end mold body 3-1.
[0051] The bottom surface of the first chamber 1-7 of the bottom mold 1 is a shaped surface, and the shaped surface is provided with decorative patterns, which directly forms a decorative surface, reduces post-processing steps, lowers costs, and meets the requirements of ecological aesthetics.
[0052] like Figure 6 As shown, the demolding method of the eco-friendly retaining wall mold of this utility model is as follows:
[0053] First, remove the positioning and locking bolts 7 that mate with the first end mold 3 and the second end mold 4, and with the bottom mold 1 and the inner mold 2.
[0054] Flip open the first mold 3 and the second mold 4;
[0055] Release the first lever 5 and the second lever 6;
[0056] Remove the connecting bolts between the inner mold 2 and the bottom mold 1, remove the connecting parts of the embedded parts 2-5, remove the connecting bolts between the embedded module 2-4 and the bottom mold 1 and the inner mold 2, and lift out the inner mold 2;
[0057] The retaining plate product is lifted out of the mold, and the embedded modules 2-4 and pre-embedded parts 2-5 on the product are removed to complete the demolding operation.
[0058] An eco-friendly retaining wall, comprising retaining wall 8 produced using the aforementioned eco-friendly retaining wall mold. For example... Figure 7 As shown, the retaining plate 8 includes a retaining surface 8-1, a water-facing surface 8-2, and a planting trough 8-3; the water-facing surface 8-2 is provided on the retaining surface 8-1, and the planting trough 8-3 is located between the retaining surface 8-1 and the water-facing surface 8-2, and the length of the retaining surface 8-1 is greater than that of the water-facing surface 8-2.
[0059] It should be understood that although this specification is described according to various embodiments, not every embodiment contains only one independent technical solution. This way of describing the specification is only for clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
[0060] The detailed descriptions listed above are merely specific descriptions of feasible embodiments of the present utility model, and are not intended to limit the scope of protection of the present utility model. All equivalent embodiments or modifications made without departing from the spirit of the present utility model should be included within the scope of protection of the present utility model.
Claims
1. An eco-friendly retaining wall mold, characterized in that, It includes a bottom mold (1), an inner mold (2) and an end mold; the bottom mold (1) has end molds installed at both ends by a flipping mechanism, the bottom mold (1) and the end molds on both sides form an inner cavity, the bottom mold (1) has a stepped surface, which divides the inner cavity into a first chamber (1-7) and a second chamber (1-8) of different heights, which are used to form the shape of the retaining plate; the inner mold (2) is suspended in the first chamber (1-7), and the bottom surface of the inner mold (2) passes through the second chamber (1-8), which is used to form the planting trough (8-3) of the retaining plate.
2. The eco-friendly retaining wall mold according to claim 1, characterized in that, The bottom mold (1) includes a bottom mold body (1-1) and a bottom mold sealing mechanism (1-4); the bottom mold body (1-1) has a first chamber (1-7) and a second chamber (1-8) that extend longitudinally and are stepped; the bottom mold body (1-1) is provided with positioning structures for positioning with the end mold on both sides; the bottom mold body (1-1) is provided with bottom mold sealing mechanisms (1-4) for sealing with the end mold on both sides.
3. The eco-friendly retaining wall mold according to claim 2, characterized in that, The upper surface of the bottom mold body (1-1) is a reference plane (1-9). The interior of the bottom mold body (1-1) has a second plane running longitudinally through it, which is located below the reference plane (1-9). The bottom mold body (1-1) has a transverse end plate (1-10) inside. The interior of the bottom mold body (1-1) has a first plane running longitudinally to the end plate (1-10), which is located below the second plane. The first plane, the surface of the end plate (1-10), and the second plane form a stepped surface. Inside the bottom mold body (1-1), the space between the first plane and the reference plane (1-9) is a second chamber (1-8) for forming the retaining surface (8-1) of the retaining plate. Inside the bottom mold body (1-1), the space between the first plane, the second plane, and the surface of the end plate (1-10) is a first chamber (1-7) for forming the water-facing surface (8-2) of the retaining plate.
4. The eco-friendly retaining wall mold according to claim 2, characterized in that, The bottom plane of the second chamber (1-8) is provided with a longitudinally extending tongue and groove strip (1-6) for forming the sealing groove or positioning groove of the retaining plate.
5. The eco-friendly retaining wall mold according to claim 2, characterized in that, The bottom surface of the bottom formwork body (1-1) is provided with a protruding positioning post (1-5), and the positioning post (1-5) is located in the first chamber (1-7); the positioning post (1-5) is used to position the drainage component pre-embedded in the retaining plate.
6. The eco-friendly retaining wall mold according to claim 2, characterized in that, A second linkage mechanism is provided between the reference planes (1-9) on both sides of the second chamber (1-8) to prevent the bottom mold body (1-1) from deforming during the casting process.
7. The eco-friendly retaining wall mold according to claim 1, characterized in that, The inner mold (2) includes an inner mold body (2-1), connecting beams (2-2), and a pre-embedded positioning seat (2-6); the inner mold body (2-1) is provided with several connecting beams (2-2), the connecting beams (2-2) are supported on the surface of the bottom mold (1), and the inner mold body (2-1) is suspended on the bottom mold (1) through the connecting beams (2-2); one end of the inner mold body (2-1) is provided with an inner mold sealing structure (2-3) for sealing with the end mold, and one end of the inner mold body (2-1) is connected to the end mold; the other end of the inner mold body (2-1) is equipped with an embedded module (2-4), the embedded module (2-4) is connected to the end plate (1-10) of the bottom mold (1); the inner mold body (2-1) is provided with a pre-embedded positioning seat (2-6), and a pre-embedded part (2-5) inserted into the first chamber (1-7) is installed in the pre-embedded positioning seat (2-6).
8. The eco-friendly retaining wall mold according to claim 7, characterized in that, The inner mold body (2-1) and the bottom mold (1) are provided with a first linkage mechanism to prevent the inner mold body (2-1) from deforming during the casting process.
9. The eco-friendly retaining wall mold according to claim 1, characterized in that, The end mold includes an end mold body, a hinge connecting plate and a positioning pin; the end mold body has a hinge connecting plate at the bottom, and the hinge connecting plate and the hinge seat (1-3) on the bottom mold (1) form a flipping mechanism; the end mold body has positioning pins on both sides, and the positioning pins cooperate with the positioning structure on the bottom mold (1).
10. The eco-friendly retaining wall mold according to claim 1, characterized in that, The bottom surface of the first chamber (1-7) of the bottom mold (1) is a shaped surface, and the shaped surface is provided with decorative patterns.
11. An eco-friendly retaining wall, characterized in that, Retaining plate (8) produced using the eco-friendly retaining plate mold as described in any one of claims 1-10.