An integrated filter point type hexagonal die pocket

CN224769396UActive Publication Date: 2026-09-18WUXI SHENHU TEXTILE MFG CO LTD
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Patent Information

Application Number
CN202522220889.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-21
Publication Date
2026-09-18
Estimated Expiration
2035-10-21

AI Technical Summary

Technical Problem

[0003]现有的滤点型土工模袋其通常都是四边直角型,在使用时,由于周围受力点较少,在灌注过程中,当内部受到加大的压力时,其四边型连接点容易发生崩坏,致使影响成型效果的问题

Benefits of technology

1、本实用新型通过连接绳的设置,由于连接绳呈六角型阵列分布,可均匀分散连接处受到的压力,从而在内部受到较大压力时,避免发生崩断的状况,与此同时在灌注过程中,预拉绳可对防滑袋的端部进行限位,且在模袋主体膨胀后位置确定时,随着内部压强增大,会将强度较低的预拉绳崩断,使防滑袋向下凸出,插入边坡表面内,从而增强模袋主体与边坡之间的摩擦力,提高铺设后的稳定性;

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Abstract

This utility model discloses an integrated filter-point hexagonal molded bag, relating to the field of molded bag technology. It includes a molded bag body and connecting ropes. An injection pipe is located on one side of the middle of the molded bag body, and an end cap is fitted to the end of the injection pipe. The connecting rope is located inside the molded bag body, and a stabilizing component is connected inside the molded bag body. The stabilizing component includes a pre-tension rope and an anti-slip bag. This integrated filter-point hexagonal molded bag, through the arrangement of the connecting ropes, which are distributed in a hexagonal array, can evenly distribute the pressure at the connection points, thus preventing breakage under high internal pressure. Simultaneously, during the injection process, the pre-tension rope can limit the end of the anti-slip bag. Furthermore, when the molded bag body expands and its position is determined, as the internal pressure increases, the weaker pre-tension rope will break, causing the anti-slip bag to bulge downwards and insert into the slope surface, thereby increasing the friction between the molded bag body and the slope.
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Description

Technical Field

[0001] This utility model relates to the field of molded bag technology, specifically to an integrated filter point type hexagonal molded bag. Background Technology

[0002] Geotextile bags are large, continuous bag-shaped materials made of two layers of geotextile fabric. They are filled with concrete or cement mortar and solidify to form a monolithic concrete slab, making them suitable for slope protection.

[0003] Existing filter point type geotextile bags are usually four-sided right angles. When in use, due to the limited number of stress points around them, the four-sided connection points are prone to collapse when the internal pressure increases during the grouting process, which affects the molding effect. Utility Model Content

[0004] The purpose of this invention is to provide an integrated filter point type hexagonal mold bag to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an integrated filter point type hexagonal molded bag, comprising a molded bag body and a connecting rope, wherein an injection tube is provided on one side of the middle part of the molded bag body, and an end cap is provided at the end of the injection tube; the connecting rope is disposed inside the molded bag body, and a stabilizing component is connected inside the molded bag body; the stabilizing component includes a pre-tension rope and an anti-slip bag; a pre-tension rope is fixed to the upper inner side of the molded bag body; and an anti-slip bag is connected to the bottom of the pre-tension rope, and the anti-slip bag is conical.

[0006] Furthermore, the connecting ropes are arranged in a hexagonal array along the interior of the molded bag body, and the anti-slip bag and the molded bag body are integrated into one structure.

[0007] Furthermore, connecting components are provided on both sides of the main body of the molded bag, and the connecting components include a first side plate and a connecting block. The first side plate is placed on one side of the main body of the molded bag, and a connecting block is provided on one side of the first side plate.

[0008] Furthermore, the connecting assembly also includes a second side plate and a connecting groove, wherein the second side plate is fixed to the other side of the first side plate, and a connecting groove is provided on one side of the second side plate.

[0009] Furthermore, the connecting assembly also includes a limiting block and a compression spring. The limiting block is slidably connected inside the second side plate, and a compression spring is fixed on one side of the limiting block, and the compression spring abuts against the second side plate.

[0010] Furthermore, the connecting blocks correspond one-to-one with the connecting grooves, and the width of the groove on the top surface of the connecting block matches the width of the limiting block.

[0011] Furthermore, the connecting assembly also includes a protective plate and a rotating plate. The protective plate is fixed to the top of the limiting block, and one end of the protective plate is rotatably connected to the rotating plate.

[0012] Furthermore, the connecting assembly also includes a locking block and a clearance groove. The end of the rotating plate is provided with a locking block, and the top of the second side plate is provided with a clearance groove, the width of which is greater than the width of the locking block.

[0013] This utility model provides an integrated filter point type hexagonal molded bag, which has the following beneficial effects: 1. This utility model, through the setting of connecting ropes, can evenly distribute the pressure on the connection point due to the hexagonal array distribution of the connecting ropes, thereby preventing breakage when subjected to greater internal pressure. At the same time, during the grouting process, the pre-tension rope can limit the end of the anti-slip bag, and when the position is determined after the main body of the mold bag expands, as the internal pressure increases, it will break the weaker pre-tension rope, causing the anti-slip bag to bulge downward and insert into the slope surface, thereby enhancing the friction between the main body of the mold bag and the slope and improving the stability after laying. 2. By setting up a connecting component, this utility model allows for the quick positioning of the limiting block when splicing multiple molded bags. First, rotating and pulling the rotating plate will move the limiting block out of the connecting groove. Then, by attaching the locking block to the clearance groove, the position of the limiting block can be quickly limited. Subsequently, simply attach the first side plate of another molded bag to the second side plate of the molded bag, insert the connecting block into the connecting groove, and then push the rotating plate upward. The compression spring will push the limiting block into the groove on the connecting block, which can quickly lock it in place. This improves the convenience of assembling multiple molded bags. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall three-dimensional structure of an integrated filter point type hexagonal mold bag according to the present invention; Figure 2 This is a schematic cross-sectional view of a stabilizing component for an integrated filter-point hexagonal molded bag according to the present invention. Figure 3 This is a three-dimensional structural diagram of the second side plate of an integrated filter point type hexagonal molded bag according to the present invention; Figure 4 This is a three-dimensional structural diagram of a limiting block for an integrated filter point type hexagonal molded bag according to the present invention.

[0015] In the diagram: 1. Main body of the molded bag; 2. Injection pipe; 3. End cap; 4. Connecting rope; 5. Stabilizing component; 501. Pre-tension rope; 502. Anti-slip bag; 6. Connecting component; 601. First side plate; 602. Connecting block; 603. Second side plate; 604. Connecting groove; 605. Limiting block; 606. Compression spring; 607. Protective plate; 608. Rotating plate; 609. Locking block; 610. Clearance groove. Detailed Implementation

[0016] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0017] like Figure 1 and Figure 2 As shown, an integrated filter-point hexagonal molded bag includes a molded bag body 1 and a connecting rope 4. An injection pipe 2 is provided on one side of the middle portion of the molded bag body 1, and an end cap 3 is installed at the end of the injection pipe 2. The connecting rope 4 is disposed inside the molded bag body 1, and a stabilizing component 5 is connected inside the molded bag body 1. The stabilizing component 5 includes a pre-tension rope 501 and an anti-slip bag 502. The pre-tension rope 501 is fixed to the upper inner side of the molded bag body 1, and the bottom of the pre-tension rope 501 is connected to the anti-slip bag 502, which is tapered. The pre-tension rope 501 can limit the end of the anti-slip bag 502 to prevent it from rigidly... During the initial pouring process, the bottom of the formwork bag body 1 protrudes, affecting the movement and adjustment of the formwork bag body 1. The connecting ropes 4 are distributed in a hexagonal array along the inside of the formwork bag body 1, and the anti-slip bag 502 is an integral structure with the formwork bag body 1. The connecting ropes 4 can evenly distribute the pressure at the connection point, thus preventing breakage when subjected to greater internal pressure. At the same time, as the internal pressure increases, the lower strength pre-tension rope 501 will break. When concrete is poured at this time, the anti-slip bag 502 can bulge downward and insert into the slope surface, thereby enhancing the friction between the formwork bag body 1 and the slope.

[0018] like Figure 1 , Figure 3 and Figure 4As shown, connecting components 6 are provided on both sides of the main body 1 of the molded bag. Each connecting component 6 includes a first side plate 601 and a connecting block 602. The first side plate 601 is placed on one side of the main body 1, and a connecting block 602 is provided on one side of the first side plate 601. The connecting component 6 also includes a second side plate 603 and a connecting groove 604. The second side plate 603 is fixed to the other side of the first side plate 601, and a connecting groove 604 is provided on one side of the second side plate 603. The connecting component 6 also includes a limiting block 605 and a compression spring 606. The limiting block 605 is slidably connected inside the second side plate 603, and a compression spring 606 is fixed to one side of the limiting block 605, abutting against the second side plate 603. The connecting block 602 corresponds one-to-one with the connecting groove 604, and the width of the groove on the top surface of the connecting block 602 matches the width of the limiting block 605. A connecting block 602 on a molded bag is inserted into a connecting groove 604 on the molded bag. A compression spring 606 then pushes a limiting block 605 to insert into a groove on the connecting block 602, thus quickly locking it in place. The connecting assembly 6 also includes a protective plate 607 and a rotating plate 608. The protective plate 607 is fixed to the top of the limiting block 605, and one end of the protective plate 607 is rotatably connected to the rotating plate 608. Pulling the rotating plate 608 can control the position of the limiting block 605. The protective plate 607 can prevent soil from entering. The connecting assembly 6 also includes a locking block 609 and a clearance groove 610. The locking block 609 is installed at the end of the rotating plate 608. The clearance groove 610 is opened on the top of the second side plate 603, and the width of the clearance groove 610 is greater than the width of the locking block 609. By fitting the locking block 609 and the clearance groove 610 together, the position of the limiting block 605 can be quickly limited.

[0019] In summary, when using this integrated filter point type hexagonal molded bag, firstly according to... Figure 1 , Figure 2 and Figure 3The structure shown involves first placing the main body 1 of the formwork bag at the laying site, then opening the end cap 3 to connect the injection pipe 2 to the grouting equipment, and injecting concrete into it. At this time, the pre-tensioning rope 501 can limit the end of the anti-slip bag 502, preventing the bottom of the formwork bag main body 1 from bulging out and affecting the movement and adjustment of the formwork bag main body 1. Secondly, as the internal pressure of the formwork bag main body 1 increases, the pre-tensioning rope 501 with lower strength will break. At this time, when concrete is injected, the anti-slip bag 502 can bulge downward and insert into the slope surface, thereby increasing the friction between the formwork bag main body 1 and the slope. Finally, since the connecting ropes 4 are distributed in a hexagonal array, the pressure on the connection point can be evenly distributed. This prevents breakage when subjected to significant internal pressure. When splicing multiple molded bags, first rotate and pull the rotating plate 608 to move the limiting block 605 out of the connecting groove 604. Then, attach the locking block 609 to the clearance groove 610 to quickly limit the position of the limiting block 605. Finally, attach the first side plate 601 of another molded bag to the second side plate 603 of the molded bag, so that the connecting block 602 is inserted into the connecting groove 604. Then, push the rotating plate 608 upward, and the compression spring 606 will push the limiting block 605 to insert it into the groove on the connecting block 602, thus quickly locking it.

[0020] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.

Claims

1. An integrated filter point type hexagonal die pocket comprising a die pocket main body (1) and a connecting string (4), characterized in that, An injection pipe (2) is provided on one side of the middle part of the main body (1) of the molded bag, and an end cap (3) is provided at the end of the injection pipe (2). The connecting rope (4) is provided inside the main body (1) of the molded bag, and a stabilizing component (5) is connected inside the main body (1). The stabilizing component (5) includes a pre-tension rope (501) and an anti-slip bag (502). The pre-tension rope (501) is fixed at the upper inner side of the main body (1), and the anti-slip bag (502) is connected to the bottom of the pre-tension rope (501). The anti-slip bag (502) is conical.

2. The integrated filter point hexagonal die pocket of claim 1, wherein, The connecting rope (4) is arranged in a hexagonal array along the interior of the molded bag body (1), and the anti-slip bag (502) and the molded bag body (1) are integrated.

3. The integrated filter point hexagonal die pocket of claim 1, wherein, The main body (1) of the molded bag is provided with connecting components (6) on both sides, and the connecting components (6) include a first side plate (601) and a connecting block (602). The first side plate (601) is placed on one side of the main body (1), and the connecting block (602) is provided on one side of the first side plate (601).

4. The integrated filter point hexagonal die pocket of claim 3, wherein, The connecting assembly (6) further includes a second side plate (603) and a connecting groove (604). The second side plate (603) is fixed on the other side of the first side plate (601), and the connecting groove (604) is provided on one side of the second side plate (603).

5. The integrated filter and six-point die pocket of claim 4, wherein, The connecting assembly (6) further includes a limiting block (605) and a compression spring (606). The limiting block (605) is slidably connected inside the second side plate (603), and a compression spring (606) is fixed on one side of the limiting block (605), and the compression spring (606) abuts against the second side plate (603).

6. The integrated filter and six-point die pocket of claim 5, wherein, The connecting block (602) corresponds one-to-one with the connecting groove (604), and the width of the groove on the top surface of the connecting block (602) matches the width of the limiting block (605).

7. The integrated filter and six-point die pocket of claim 5, wherein, The connecting assembly (6) further includes a protective plate (607) and a rotating plate (608). The top of the limiting block (605) is fixed with the protective plate (607), and one end of the protective plate (607) is rotatably connected to the rotating plate (608).

8. The integrated filter and hexagonal die pocket of claim 7, wherein, The connecting component (6) further includes a locking block (609) and a clearance groove (610). The locking block (609) is disposed at the end of the rotating plate (608), and the clearance groove (610) is provided on the top of the second side plate (603), and the width of the clearance groove (610) is greater than the width of the locking block (609).