Earthwork standard room device based on skeleton line body
By employing strip and snap-fit design in the geocell device, a continuously distributed skeleton line is achieved, solving the problem of reduced tensile strength of polyethylene or polypropylene materials and improving the performance of the geocell.
Patent Information
- Application Number
- CN202422803732.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-18
AI Technical Summary
Existing geocell devices, due to the use of polyethylene or polypropylene materials, experience a decrease in tensile strength and a reduction in protective and supporting capabilities over long-term use, thus affecting their effectiveness.
It adopts a design that includes strips and buckles. The strips are set with a belt section and a line section, and the buckles are composed of multiple parts. They are connected by heat fusion to achieve a coherent skeleton line, which enhances the support and connection strength.
It improves the support and connection strength of geocell devices, enhances protection and support capabilities, optimizes the operation of assembling geocells, and improves density and connection stability.
Smart Images

Figure CN223510228U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a geocell device, forming device and method, and in particular a geocell device based on a skeleton line. Background Technology
[0002] Geocells play a significant role in road paving, and many road construction projects require their use. Geocells can strengthen the roadbed, prevent subsidence during paving, form slope protection structures, and be used to construct retaining structures. Therefore, geocell devices are important geotechnical products. Currently, existing geocell devices are made from polyethylene or polypropylene and other additives through extrusion into strips. However, prolonged exposure to sunlight, oxygen, and external forces causes significant deformation and reduced tensile strength in these strips, leading to decreased protective and retaining capabilities and ultimately affecting the effectiveness of the geocell device.
[0003] This invention, through its technical feature of placing continuously distributed skeleton lines within the components of geocells, effectively explores and studies the technical problem of using polyethylene or polypropylene and other additives as raw materials through extrusion strips.
[0004] The statements herein provide only background information related to this utility model and do not necessarily constitute prior art. Based on the technical disclosure provided by the applicant on November 8, 2024, which addresses practical technical problems encountered during the work process, and the existing technical problems, technical features, and technical effects in similar patent documents and background information obtained through retrieval, the technical solution for this utility model application is proposed. Summary of the Invention
[0005] The subject of this utility model is a geocell device based on a skeleton line.
[0006] In order to overcome the above-mentioned technical shortcomings, the purpose of this utility model is to provide a geocell device based on a skeleton line, thereby improving the performance of the geocell device.
[0007] To achieve the above objectives, the technical solution adopted by this utility model is: a strip with a line portion I and a buckle for connecting adjacent strips to each other.
[0008] By incorporating strips and clips, geocells are assembled, and a continuous skeleton line is placed within the geocell components. This solves the technical problem of using polyethylene or polypropylene and other additives as raw materials through extrusion strips, thus improving the performance of the geocell device.
[0009] This utility model designs a method in which strips and buckles are connected to each other by placing a continuous skeleton line in the components of a geocell.
[0010] The technical effect of the above solution is that it enables the strip to be firmly supported by an internal skeleton line.
[0011] This utility model is designed with a buckle at the connection point of adjacent strips, and the buckle is configured to connect with the corner of the diamond-shaped hole body formed by the adjacent strips.
[0012] The technical effect of the above technical solution is that the strip and buckle form the basic technical solution of this utility model, and solve the technical problem of this utility model.
[0013] This utility model is designed such that the strip includes a strip portion and a line portion I, and the strip portion is configured to be accommodatingly connected to the line portion I, and one section of the strip portion is configured to be connected to a buckle.
[0014] This utility model is designed such that the belt part is made of polyethylene or polypropylene strips and the yarn part I is made of yarn rope-like body. The yarn rope-like body of the yarn part I is made of twisted glass fiber filaments, polyester fiber filaments, basalt fiber filaments, carbon fiber filaments or aramid fiber filaments and the yarn part I is arranged to be distributed in a divergent state in the belt part.
[0015] The technical effect of the above two solutions is that they enable the placement of yarn ropes in the strip.
[0016] This utility model designs a buckle comprising a strip I, a strip II, a hook, a piece I, and a piece II. The front and rear sides of strip I are connected to one end of the inner side of piece II. The end of strip II is connected to the straight end of the hook, and the inner end face of strip II is connected to the inner end face of piece I. The hook body end of the hook is connected to the end of strip I. Piece I and piece II are respectively connected to the strip.
[0017] This utility model is designed such that strip I and strip II are respectively set as rigid plastic straight strips and hook is set as rigid plastic L-shaped strips, and sheet I and sheet II are respectively set as hot melt plastic plates.
[0018] The technical effect of the above two solutions is that they achieve thermal fusion bonding between the sheet and the strip.
[0019] This utility model is designed such that the strip and the buckle are distributed in a way that they are connected to each other in the middle part, the buckle is arranged at intervals along the strip, and the plate part I and plate part II are respectively connected to the strip part.
[0020] This utility model is designed with a receiving groove I on the edge surface of the belt portion, and the receiving groove I is configured to be connected to the buckle.
[0021] This utility model is designed such that the receiving tank I is configured as a C-shaped opening and the receiving tank I is arranged at intervals along the transverse centerline of the belt.
[0022] The technical effect of the above two solutions is that they enable connection of external openings.
[0023] This utility model designs a buckle comprising a strip I, a strip II, a rod, a platform I, a platform II, and a line II. One end face of the rod is connected to the upper part of the inner end face of the strip I, and the other end face of the rod is connected to the upper part of the inner end face of the strip II. The lower part of the inner end face of the strip I is connected to the inner end face of the platform I, the lower part of the inner end face of the strip II is connected to the inner end face of the platform II, and the middle of the inner end face of the strip I and the middle of the inner end face of the strip II are respectively connected to the inner end face of the line II. The outer end face of the platform I is connected to the outer end face of the platform II, and the rod, platform I, platform II, and line II are respectively connected to the strip.
[0024] This utility model is designed such that the rod part, platform part I and platform part II are respectively set as hot melt plastic rods and the wire part II is set as a hot melt plastic rope.
[0025] The technical effect of the above two solutions is that they achieve a thermoplastic composite connection between the rod and the wire and the strip.
[0026] This utility model is designed such that the rod part, platform part I and platform part II are respectively configured to be connected to the receiving tank I, and the wire part II is configured to be connected to the belt part.
[0027] In this technical solution, the skeleton lines that are continuously distributed in the components of the geocell are achieved by strips.
[0028] In this technical solution, the key technical feature is the continuous distribution of the skeleton line strips and buckles in the components of the geocell. In the technical field of geocell devices based on skeleton lines, this solution is novel, inventive and practical. The terms used in this technical solution can be explained and understood using patent literature in this technical field. Attached Figure Description
[0029] 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.
[0030] Figure 1 This is a schematic diagram of one of the first embodiments of a geocell device based on a skeleton line according to this utility model.
[0031] Figure 2 This is a schematic diagram showing the connection relationship between the strip 90 and the buckle 80 in one of the first embodiments of a geocell device based on a skeleton line according to this utility model.
[0032] Figure 3 This is a schematic diagram of the snap-fit structure 80 in one of the first embodiments of a geocell device based on a skeleton line according to this utility model.
[0033] Figure 4 This is a schematic diagram of the strip 90 structure in the second embodiment of the geocell device based on the skeleton line of this utility model.
[0034] Figure 5 This is a schematic diagram of the snap-fit structure 80 in the second embodiment of the geocell device based on the skeleton line of this utility model.
[0035] Strip-90, buckle-80, belt section-901, line section I-902, receiving tank I-903, strip section I-801, strip section II-802, hook section-803, plate section I-804, plate section II-805, rod section-24, platform section I-25, platform section II-26 and line section II-27. Detailed Implementation
[0036] According to the examination guidelines, terms such as “having,” “comprising,” and “including” used in this invention should be understood as not dispensing the presence or addition of one or more other elements or combinations thereof.
[0037] 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, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0038] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship 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," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0039] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" 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 based on the specific circumstances.
[0040] Furthermore, the technical features involved in the different embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other. In addition, unless otherwise specified, the equipment and materials used in the following embodiments are all commercially available. If the processing conditions are not explicitly stated, please refer to the product manual or follow the conventional methods in the field.
[0041] Figure 1 As one of the first embodiments of this utility model, this embodiment is described in detail with reference to the accompanying drawings. It includes a strip 90 and a buckle 80, and the buckle 80 is provided at the connection part of adjacent strips 90. The buckle 80 is configured to connect with the corner of the diamond-shaped hole body formed by adjacent strips 90.
[0042] The second embodiment of the present invention will be described in detail with reference to the accompanying drawings.
[0043] In this embodiment, the strip 90 is configured to include a strip portion 901 and a thread portion I 902, and the strip portion 901 is configured to be accommodatingly connected to the thread portion I 902, and one section of the strip portion 901 is configured to be connected to the buckle 80.
[0044] The strip 90 forms a support connection point for the buckle 80. The strip 901 connects the strip 90 to the buckle 80, and the line 902 provides internal support for the strip 90. Its technical purpose is to serve as a support component for geocells.
[0045] In this embodiment, the belt portion 901 is configured as a polyethylene or polypropylene strip and the thread portion I 902 is configured as a rope-like body. The rope-like body of the thread portion I 902 is configured as a twisted body of glass fiber filaments, polyester fiber filaments, basalt fiber filaments, carbon fiber filaments or aramid fiber filaments, and the thread portion I 902 is configured to be distributed in a divergent state in the belt portion 901.
[0046] The technical objective is to achieve a strength enhancement treatment for strip 90.
[0047] In this embodiment, the buckle 80 is configured to include strip I 801, strip II 802, hook 803, plate I 804, and plate II 805. The front and rear sides of strip I 801 are configured to be connected to one end of the inner side of plate II 805. The end of strip II 802 is configured to be connected to the straight end of hook 803, and the inner end face of strip II 802 is configured to be connected to the inner end face of plate I 804. The hook end of hook 803 is configured to be connected to the end of strip I 801. Plate I 804 and plate II 805 are respectively configured to be connected to strip 90.
[0048] The buckle 80 forms a support connection point for the strip 90. The connection with the strip 90 is achieved by the plate part I 804 and the plate part II 805. The strip part I 801 and the strip part II 802 provide support for the plate part I 804 and the plate part II 805. The hook part 803 connects the strip part I 801 and the strip part II 802. Its technical purpose is to serve as an intermediate connecting component for geocells.
[0049] In this embodiment, strip I 801 and strip II 802 are respectively set as rigid plastic straight strips and hook 803 is set as rigid plastic L-shaped strips, and sheet I 804 and sheet II 805 are respectively set as hot melt plastic plates.
[0050] Its technical objective is to achieve heat fusion bonding between strips 90.
[0051] In this embodiment, the strip 90 and the buckle 80 are arranged to be connected to each other in the middle, the buckle 80 is arranged at intervals along the strip 90, and the sheet I 804 and the sheet II 805 are respectively connected to the strip 901.
[0052] Figure 4 , 5 This is the third embodiment of the first utility model. The embodiment is described in detail with reference to the accompanying drawings. A receiving groove I 903 is provided on the edge surface of the belt portion 901 and the receiving groove I 903 is configured to be connected to the buckle 80.
[0053] In this embodiment, the receiving tank I 903 is configured as a C-shaped opening and the receiving tank I 903 is arranged at intervals along the transverse centerline of the belt 901.
[0054] Its technical purpose is to achieve slotted connection of the buckle 80.
[0055] In this embodiment, the buckle 80 is configured to include strip I 801, strip II 802, rod 24, platform I 25, platform II 26, and line II 27. One end face of the rod 24 is connected to the upper part of the inner end face of strip I 801, and the other end face of the rod 24 is connected to the upper part of the inner end face of strip II 802. The lower part of the inner end face of strip I 801 is connected to the inner end face of platform I 25. The lower part of the inner end face of strip II 802 is connected to the inner end face of platform II 26. The middle of the inner end face of strip I 801 and the middle of the inner end face of strip II 802 are respectively connected to the inner end face of line II 27. The outer end face of platform I 25 is connected to the outer end face of platform II 26. The rod 24, platform I 25, platform II 26, and line II 27 are respectively connected to the strip 90.
[0056] In this embodiment, rod 24, platform I 25 and platform II 26 are respectively configured as hot melt plastic rods and wire II 27 is configured as a hot melt plastic rope.
[0057] Its technical purpose is to achieve embedded connection of strip 90.
[0058] In this embodiment, the rod portion 24, platform portion I 25, and platform portion II 26 are respectively configured to be connected to the receiving tank I 903, and the wire portion II 27 is configured to be connected to the belt portion 901.
[0059] The method of use in this embodiment is as follows: When it is necessary to form a geocell, the raw material having the strip portion 901 and the thread portion I 902 are mixed, and the strip 90 is obtained by extrusion. The connection parts of the geocell are marked on the strip 90.
[0060] Place the buckle 80 on the connecting part of the adjacent strip 90, so that the plate part I 804 and the plate part II 805 are in contact with the strip 90 respectively. Connect the hook end of the hook part 803 to the end of the strip part I 801. Heat the plate part I 804 and the plate part II 805 so that the plate part I 804 and the plate part II 805 are connected together with the strip 90 respectively. Alternatively, stamp the receiving groove I 903 on the edge surface of the strip part 901. Place the rod part 24 into the receiving groove I 903 located on one of the edge surfaces of the strip part 901. 25 and platform II 26 are placed into receiving groove I 903 located on another edge surface of strip 901, so that line II 27 contacts strip 90. Rod 24, platform I 25, platform II 26 and line II 27 are heated, so that rod 24, platform I 25, platform II 26 and line II 27 are connected to strip 90 respectively, and platform I 25 and platform II 26 are connected together. Thus, the connection of adjacent strips 90 by buckle 80 is realized, and geocell is made on strip butt template 1.
[0061] In verifying this utility model, the inventors abandoned the existing technical features of using polyethylene or polypropylene and other additives as raw materials to extrude strips. Instead, they first proposed a technical feature of placing continuously distributed skeleton lines in the geocell components, resulting in the first unexpected technical effect: it achieved support for the strip 901 by the line part I 902, improving the support strength of the strip 90, enhancing the performance of the geocell, and optimizing the assembly of the geocell. This resulted in the second unexpected technical effect: it achieved support for the strip part I 901 by the line part I 902, improving the support strength of the strip 90, enhancing the performance of the geocell, and optimizing the assembly process. The bonding effect of 02 eliminates the defects of aggregation by polyethylene or polypropylene, improves the density of strip 90, and achieves the third unexpected technical effect: it realizes the surface-to-surface heat fusion connection between sheet I 804 and sheet II 805 and strip 901, improves the connection strength between buckle 80 and strip 90, and achieves the fourth unexpected technical effect: it realizes the multi-part heat fusion connection between rod 24, platform I 25, platform II 26 and line II 27 and strip 901, and increases the number of connection points between buckle 80 and strip 90.
[0062] In the second embodiment of this utility model, the strip 90 and the buckle 80 are connected to each other by placing the skeleton lines in a continuous distribution in the components of the geocell.
[0063] The second embodiment of this utility model is based on the first embodiment.
[0064] This utility model has the following features:
[0065] 1. Due to the design of strips 90 and buckles 80, geocells are assembled through strips 90 and buckles 80, and the skeleton lines are placed in a continuous distribution in the components of the geocells. This solves the technical problem of using polyethylene or polypropylene and other additives as raw materials to extrude strips, thus improving the performance of the geocell device.
[0066] 2. Due to the design of sheet I 804 and sheet II 805, thermal fusion connection between the surfaces of strip 90 is achieved.
[0067] 3. Due to the design of rod 24, platform I 25, platform II 26 and line II 27, the upper, middle and lower parts of strip 90 are thermally fused together.
[0068] 4. Because the design limits the numerical range of the structural shape, the numerical range is a technical feature in the technical solution of this utility model, and is not a technical feature obtained by formula calculation or a limited number of experiments. The experiment shows that the technical feature of the numerical range has achieved very good technical effect.
[0069] 5. Due to the design of the technical features of this utility model, and the combined effect of the individual and collective technical features, experiments have shown that the performance indicators of this utility model are at least 1.7 times that of existing performance indicators, and it has been evaluated that it has great market value.
[0070] Other technical features that connect the strips 90 and buckles 80 of the skeleton line bodies placed in a continuous distribution in the components of the geocell are also embodiments of this utility model. Furthermore, the technical features of the above embodiments can be combined in any way. In order to meet the requirements of the Patent Law, the Patent Implementation Regulations and the Examination Guidelines, all possible combinations of the technical features in the above embodiments will not be described.
[0071] Therefore, in the field of geocell device technology based on skeleton line body, all technical contents that include strips 90 with line part I 902 and buckles 80 for connecting adjacent strips 90 to each other are within the protection scope of this utility model.
Claims
1. A geocell device based on a skeleton line, characterized in that: It includes a strip (90) having a line part I (902) and a buckle (80) for connecting adjacent strips (90) to each other.
2. The geocell device based on the skeleton line body according to claim 1, characterized in that: The strips (90) and clips (80) are connected to each other in a manner that places the skeleton lines in a continuous distribution within the components of the geocell.
3. The geocell device based on the skeleton line body according to claim 1, characterized in that: A buckle (80) is provided at the connection point of adjacent strips (90), and the buckle (80) is configured to connect with the corner of the diamond-shaped hole body formed by the adjacent strips (90).
4. The geocell device based on the skeleton line body according to claim 3, characterized in that: The strip (90) is configured to include a strip portion (901) and a thread portion I (902), and the strip portion (901) is configured to be accommodatingly connected to the thread portion I (902). One section of the strip portion (901) is configured to be connected to a buckle (80). Alternatively, the belt section (901) may be made of polyethylene or polypropylene strips and the yarn section I (902) may be made of rope-like material, wherein the rope-like material of the yarn section I (902) may be made of twisted glass fiber filaments, polyester fiber filaments, basalt fiber filaments, carbon fiber filaments or aramid fiber filaments and the yarn section I (902) may be distributed in a divergent manner in the belt section (901).
5. The geocell device based on the skeleton line body according to claim 3, characterized in that: The buckle (80) is configured to include strip I (801), strip II (802), hook (803), plate I (804), and plate II (805). The front and rear sides of strip I (801) are configured to be connected to one end of the inner side of plate II (805). The end of strip II (802) is configured to be connected to the straight end of hook (803), and the inner end face of strip II (802) is configured to be connected to the inner end face of plate I (804). The hook end of hook (803) is configured to be connected to the end of strip I (801). Plate I (804) and plate II (805) are respectively configured to be connected to the strip (90). Alternatively, strip I (801) and strip II (802) may be made of rigid plastic straight strips and hook (803) may be made of rigid plastic L-shaped strips, and sheet I (804) and sheet II (805) may be made of hot melt plastic plates.
6. The geocell device based on the skeleton line body according to claim 3, characterized in that: The strip (90) and the buckle (80) are arranged to be connected to each other in the middle, and the buckle (80) is arranged at intervals along the strip (90). The plate I (804) and plate II (805) are respectively connected to the strip (901). Alternatively, a receiving groove I (903) may be provided on the edge surface of the belt (901), and the receiving groove I (903) may be configured to be connected to the buckle (80).
7. The geocell device based on the skeleton line body according to claim 3, characterized in that: The receiving tank I (903) is configured as a C-shaped opening and the receiving tank I (903) is arranged at intervals along the transverse centerline of the belt (901).
8. The geocell device based on the skeleton line body according to claim 3, characterized in that: The buckle (80) is configured to include a strip I (801), a strip II (802), a rod (24), a platform I (25), a platform II (26), and a wire II (27). One end face of the rod (24) is configured to be connected to the upper part of the inner end face of the strip I (801), and the other end face of the rod (24) is configured to be connected to the upper part of the inner end face of the strip II (802). The lower part of the inner end face of the strip I (801) is configured to be connected to the inner end face of the platform I (25). The lower part of the inner end face of strip II (802) is configured to connect with the inner end face of platform II (26), and the middle of the inner end face of strip I (801) and the middle of the inner end face of strip II (802) are respectively configured to connect with the inner end face of line II (27). The outer end face of platform I (25) is configured to connect with the outer end face of platform II (26), and the rod (24), platform I (25), platform II (26) and line II (27) are respectively configured to connect with strip (90). Alternatively, the rod (24), platform I (25) and platform II (26) are respectively set as hot melt plastic rods and the line II (27) is set as a hot melt plastic rope.
9. The geocell device based on the skeleton line body according to claim 3, characterized in that: The rod (24), platform I (25) and platform II (26) are respectively configured to be connected to the receiving tank I (903) and the wire II (27) is configured to be connected to the belt (901).