Novel canal with glass fiber composite structure
By setting up reinforcement poles and positioning structures on the canal module, the problem of positioning difficulties in the canal module during the splicing process is solved, and the stable connection and sealing reliability of the module are achieved.
Patent Information
- Application Number
- CN202422462336.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-12
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-10-12
AI Technical Summary
During the splicing process of existing canals with fiberglass composite structures, the initially put together canal modules cannot be effectively positioned, resulting in the modules being easily displaced under external loads, which increases the installation difficulty.
The reinforced strut and positioning structure are adopted, including butt strips, embedded blocks, docking grooves, positioning holes and support springs. By strengthening the overlap and coordination of the support rod, the movement of the channel module is restricted, and the elastic force of the support spring is used to achieve preliminary positioning.
It effectively limits the movement of the canal module, ensures the stable position of the module during splicing, facilitates surface treatment with adhesives, and improves the firmness and sealing of the connection.
Smart Images

Figure CN223151128U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water channels, in particular to a new type of water channel with a glass fiber composite structure. Background Technique
[0002] Glass fiber composite material is a new type of material with excellent performance, mainly composed of glass fiber and matrix material. Glass fiber is an inorganic non-metallic material with excellent performance, having characteristics such as high strength, high modulus, and corrosion resistance. The matrix material can be synthetic resin. By adding glass fiber, the composite material is strengthened, and the matrix material plays a role in bonding and transferring loads. The addition of glass fiber significantly improves the strength and stiffness of the material, enabling it to withstand larger loads, and having characteristics such as corrosion resistance, tensile resistance, good electrical properties, thermal properties, and plastic properties. Compared with traditional metal materials, the glass fiber composite material has a lower density and is lightweight, facilitating transportation and installation.
[0003] Due to the characteristics of glass fiber composite material such as corrosion resistance, tensile resistance, good electrical properties, thermal properties, and plastic properties, the water channel made of this material can withstand larger water pressure and soil pressure, and can resist the erosion of chemical substances in water, acid-base substances in soil, and microorganisms, and can manufacture water channels of various shapes, making the design of the water channel more flexible.
[0004] The existing water channels with a glass fiber composite structure are usually assembled by multiple modules. After assembly, specific adhesives need to be used and surface treatment is required. One is to connect two water channel modules, and the other is to make the connection part sealed and reliable. However, when using adhesives and performing surface treatment, it is impossible to position the initially assembled water channel modules. During the assembly process, the two water channel modules are prone to displacement under the action of external loads, causing trouble when using adhesives and performing surface treatment, and increasing the installation difficulty. Content of the Utility Model
[0005] The purpose of the utility model is to provide a new type of water channel with a glass fiber composite structure to solve the problem that it is impossible to position the initially assembled water channel modules.
[0006] To achieve the above purpose, the utility model provides the following technical solutions:
[0007] A water channel with a new type of fiberglass composite structure, comprising a water channel module and a reinforcing strut. A docking strip is fixedly connected to the left side of the water channel module. A docking groove for the docking strip to overlap is cooperatively opened on the right side of the water channel module. An embedding block is fixedly connected to the left side of the water channel module. An embedding groove for the embedding block to be embedded is cooperatively opened on the right side of the water channel module. A first docking opening for the reinforcing strut to overlap is cooperatively opened at the top of the docking strip. A second docking opening for the reinforcing strut to overlap is cooperatively opened on the wall of the docking groove. Telescopic docking blocks are provided at both the front and rear ends of the reinforcing strut. A first positioning hole for the docking block to pass through is opened between the second docking opening and the embedding groove. A second docking hole for the docking block to pass through is cooperatively opened on the surface of the embedding block.
[0008] Preferably, a third docking opening for the reinforcing strut to overlap is cooperatively opened at the middle position of the water channel module. A third docking hole for the docking block to be embedded is cooperatively opened on the wall of the third docking opening.
[0009] Preferably, the reinforcing strut includes a knob and a square rod. The number of the square rods is two, and they are respectively movably connected to the front and rear ends of the knob. The first docking opening, the second docking opening, and the third docking opening are all cooperatively provided for the square rod to overlap.
[0010] Preferably, symmetrically arranged threaded rods are coaxially fixedly connected to both the front and rear ends of the knob. The two threaded rods are respectively rotationally connected to the two square rods. The two square rods are both cooperatively provided with telescopic grooves for the docking block to telescopically move. The docking block is movably sleeved on the surface of the threaded rod, and the docking block is in threaded connection with the threaded rod.
[0011] Preferably, a receiving groove is cooperatively opened on the wall of the docking groove. A support spring is fixedly connected to the bottom wall of the receiving groove. A semi-sphere is fixedly connected to the top of the support spring. The receiving groove can cooperatively receive the semi-sphere in a contracted state. A semi-circular groove for the semi-sphere to be embedded is cooperatively opened on the surface of the docking strip.
[0012] Compared with the prior art, the beneficial effects of the present utility model are:
[0013] 1. During the splicing process of two water channel modules by providing the reinforcing strut, by overlapping the square rod on the first docking opening and the second docking opening at the connection of the two water channel modules, the bearing strength of the water channel module can be increased, and the separation of the two water channel modules can be restricted. Then, by extending the docking block through the first positioning hole and the second docking hole, it is beneficial to connect the two spliced water channel modules and the reinforcing strut together, so that the two water channel modules and the reinforcing strut are all restricted from moving relative to each other, which is beneficial for positioning the spliced water channel modules when using adhesives and performing surface treatment, and is beneficial for facilitating the use of adhesives and performing surface treatment at the joint.
[0014] 2. By setting the semi-sphere, when the docking strip on one water channel module is docked onto the docking groove on another water channel module, the semi-sphere on the other water channel module is embedded into the semi-circular groove on one water channel module under the elastic force of the support spring, which is beneficial to having a positionable point when the docking strip is docked onto the docking groove, facilitating the use of adhesives and surface treatment at the joint. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic structural diagram of the splicing of two water channel modules of the present utility model;
[0016] Figure 2 is a schematic structural diagram of the water channel module of the present utility model;
[0017] Figure 3 of the present utility model Figure 2 is an enlarged view of part A in;
[0018] Figure 4 of the present utility model Figure 2 is an enlarged view of part B in;
[0019] Figure 5 is a partial schematic structural diagram of the vertical section of the water channel module of the present utility model;
[0020] Figure 6 of the present utility model Figure 5 is an enlarged view of part C in;
[0021] Figure 7 is a schematic structural diagram of the vertical section of the strengthening strut of the present utility model.
[0022] In the figure: 1. Water channel module; 2. Docking strip; 3. Docking groove; 4. First docking port; 5. Second docking port; 6. First positioning hole; 7. Embedding block; 8. Embedding groove; 9. Second docking hole; 10. Knob; 11. Threaded rod; 12. Docking square block; 13. Third docking hole; 14. Third docking port; 15. Square rod; 16. Storage groove; 17. Support spring; 18. Semi-sphere; 19. Semi-circular groove. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0023] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments in the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0024] Please refer to Figures 1 to 7 , the present utility model provides a technical solution.
[0025] A water channel with a new type of fiberglass composite structure includes a water channel module 1 and a reinforcing strut. A docking strip 2 is fixedly connected to the left side of the water channel module 1. A docking groove 3 for the docking strip 2 to lap is cooperatively provided on the right side of the water channel module 1. An embedding block 7 is fixedly connected to the left side of the water channel module 1. An embedding groove 8 for the embedding block 7 to embed is cooperatively provided on the right side of the water channel module 1. The two water channel modules 1 are connected by lapping the docking strip 2 on one water channel module 1 onto the docking groove 3 on the other water channel module 1. At the same time, the embedding block 7 on one water channel module 1 is embedded into the embedding groove 8 on the other water channel module 1, which is beneficial for splicing between the two water channel modules 1. By analogy, multiple water channel modules 1 can be spliced together.
[0026] A first docking opening 4 for the reinforcing strut to lap is cooperatively provided at the top of the docking strip 2. A second docking opening 5 for the reinforcing strut to lap is cooperatively provided on the groove wall of the docking groove 3. When the docking strip 2 laps on the docking groove 3, the first docking opening 4 and the second docking opening 5 are interconnected and aligned. After the docking strip 2 laps on the docking groove 3, at this time, the first docking opening 4 and the second docking opening 5 are just in an aligned state, so that after the docking strip 2 laps on the docking groove 3, the reinforcing strut can lap on the first docking opening 4 and the second docking opening 5 at the same time, which can not only increase the bearing strength of the water channel module 1 but also limit the separation of the two water channel modules 1.
[0027] Retractable docking blocks 12 are provided at both the front and rear ends of the reinforcing strut. A first positioning hole 6 for the docking block 12 to pass through is provided between the second docking opening 5 and the embedding groove 8. A second docking hole 9 for the docking block 12 to pass through is cooperatively provided on the surface of the embedding block 7. When the embedding block 7 is embedded into the embedding groove 8, the first positioning hole 6 and the second docking hole 9 are interconnected and aligned. When the docking strip 2 laps on the docking groove 3, the embedding block 7 is also embedded into the embedding groove 8. At this time, the first positioning hole 6 and the second docking hole 9 are just in an aligned state, so that after the reinforcing strut laps on the first docking opening 4 and the second docking opening 5, the docking block 12 can be extended, so that the docking block 12 passes through the first positioning hole 6 and the second docking hole 9 in sequence, which is beneficial for connecting the two water channel modules 1 and the reinforcing strut together, so that the two water channel modules 1 and the reinforcing strut are restricted from moving relative to each other, which is beneficial for positioning the spliced water channel modules 1 when using adhesives and performing surface treatment, and is beneficial for conveniently using adhesives and performing surface treatment at the joint to ensure firm connection and reliable sealing between the two water channel modules 1.
[0028] Furthermore, a third docking interface 14 for the lap joint of the strengthening strut is formed at the middle position of the water channel module 1, and a third docking hole 13 for the embedding of the docking block 12 is formed on the groove wall of the third docking interface 14. By providing the third docking hole 13 and the third docking interface 14, the strengthening strut can be installed at the middle position of the water channel module 1, further increasing the bearing strength of the water channel module 1.
[0029] The strengthening strut includes a knob 10 and square rods 15. The number of the square rods 15 is two, and they are respectively movably connected to the front and rear ends of the knob 10. The first docking interface 4, the second docking interface 5, and the third docking interface 14 are all adapted for the lap joint of the square rods 15. Symmetrically arranged threaded rods 11 are coaxially and fixedly connected to the front and rear ends of the knob 10. The two threaded rods 11 are respectively rotationally connected to the two square rods 15. The two square rods 15 are both provided with telescopic grooves for the telescopic movement of the docking block 12. The docking block 12 is movably sleeved on the surface of the threaded rod 11, and the docking block 12 is threadedly connected to the threaded rod 11. By rotating the knob 10 to drive the rotation of the two threaded rods 11, the docking blocks 12 on the two threaded rods 11 can simultaneously extend outwards to both sides or contract inwards simultaneously.
[0030] A storage groove 16 is formed on the groove wall of the docking groove 3. A support spring 17 is fixedly connected to the bottom wall of the storage groove 16. The top end of the support spring 17 is fixedly connected to a semi-sphere 18. The storage groove 16 can cooperate with the semi-sphere 18 for contraction. A semi-circular groove 19 for the embedding of the semi-sphere 18 is formed on the surface of the docking strip 2. By providing the semi-sphere 18, when the docking strip 2 on one water channel module 1 is lapped on the docking groove 3 of another water channel module 1, the semi-sphere 18 on the other water channel module 1 is embedded into the semi-circular groove 19 on one water channel module 1 under the elastic force of the support spring 17, which is beneficial to having a positionable point when the docking strip 2 is lapped on the docking groove 3, facilitating the use of adhesives and surface treatment at the joint.
[0031] The specific solution is as follows: Multiple water channel modules 1 are spliced in sequence. Take out the first water channel module 1, and place the docking strip 2 on the first water channel module 1 onto the docking groove 3 on the second water channel module 1. At the same time, the embedding block 7 on the first embedding block 7 is embedded into the embedding groove 8 on the second water channel module 1, and the semi-sphere 18 on the second water channel module 1 is embedded into the semi-circular groove 19 on the first water channel module 1 under the elastic force of the support spring 17 to complete the preliminary connection. Then, take out a reinforcing strut. First, place the square rod 15 onto the first docking interface 4 and the second docking interface 5 at the connection of the two water channel modules 1. Then, rotate the knob 10 to drive the rotation of the two threaded rods 11. Through the threaded action between the two threaded rods 11 and the docking squares 12 thereon, they extend outward respectively until the docking squares 12 pass through the first positioning hole 6 and the second docking hole 9 in sequence to complete the splicing and positioning of the two water channel modules 1. At this time, it is convenient to use adhesives and perform surface treatment at the joints. The adhesives and surface treatment can use the materials and operation techniques well-known to those skilled in the art, so no further elaboration will be made here. Then, splice the water channel modules 1 in sequence, and then the reinforcing strut can be operated in the same way to install the reinforcing strut at the positions of the third docking hole 13 and the third docking interface 14 on the water channel module 1.
[0032] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A water channel with a new type of glass fiber composite structure, comprising a water channel module (1) and a reinforcing strut, characterized in that: A docking strip (2) is fixedly connected to the left side of the water channel module (1). A docking groove (3) for the docking strip (2) to lap is cooperatively provided on the right side of the water channel module (1). An embedding block (7) is fixedly connected to the left side of the water channel module (1). An embedding groove (8) for the embedding block (7) to embed is cooperatively provided on the right side of the water channel module (1). A first lap joint (4) for the reinforcing strut to lap is cooperatively provided at the top of the docking strip (2). A second lap joint (5) for the reinforcing strut to lap is cooperatively provided on the groove wall of the docking groove (3). Telescopic docking blocks (12) are provided at both the front and rear ends of the reinforcing strut. A first positioning hole (6) for the docking block (12) to pass through is provided between the second lap joint (5) and the embedding groove (8). A second docking hole (9) for the docking block (12) to pass through is cooperatively provided on the surface of the embedding block (7).
2. The water channel with a novel glass fiber composite structure according to claim 1, characterized in that, A third lap joint (14) for the reinforcing strut to lap is cooperatively provided at the middle position of the water channel module (1). A third docking hole (13) for the docking block (12) to embed is cooperatively provided on the groove wall of the third lap joint (14).
3. The water channel with a novel glass fiber composite structure according to claim 2, characterized in that, The reinforcing strut includes a knob (10) and a square rod (15). The number of the square rods (15) is two, and they are respectively movably connected to the front and rear ends of the knob (10). The first lap joint (4), the second lap joint (5), and the third lap joint (14) are all cooperatively provided for the square rod (15) to lap.
4. The water channel with a novel glass fiber composite structure according to claim 3, characterized in that, Symmetrically arranged threaded rods (11) are coaxially fixedly connected to both the front and rear ends of the knob (10). The two threaded rods (11) are respectively rotationally connected to the two square rods (15). Telescopic grooves for the docking block (12) to expand and contract are cooperatively provided on the two square rods (15). The docking block (12) is movably sleeved on the surface of the threaded rod (11), and the docking block (12) is in threaded connection with the threaded rod (11).
5. The water channel with a novel glass fiber composite structure according to claim 1, characterized in that, A storage groove (16) is cooperatively provided on the groove wall of the docking groove (3). A support spring (17) is fixedly connected to the bottom wall of the storage groove (16). A semi-sphere (18) is fixedly connected to the top end of the support spring (17). The storage groove (16) can cooperatively provide for the semi-sphere (18) to contract. A semi-circular groove (19) for the semi-sphere (18) to embed is cooperatively provided on the surface of the docking strip (2).