Carbon fiber rainwater module structure
The carbon fiber rainwater module structure addresses installation instability and long-term stress issues with a dual-disk system and support mechanisms, ensuring stable and durable performance.
Patent Information
- Application Number
- CN202422148252.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-03
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-09-03
AI Technical Summary
The foundation pits of existing carbon fiber rainwater modules are not flat enough when laid, resulting in unstable laying. The soil changes during long-term use lead to increased pressure, affecting the use effect.
The porous carbon fiber module body is equipped with a lower buckle plate and an upper buckle plate. The module is stabilized and fixed by supporting parts and fixing parts. The elastic gasket and trapezoidal blocks are used to ensure the module is tightly connected. The screw and L-shaped block adjust the module position to adapt to the flatness of the foundation pit and ensure stability.
It improves the laying stability and service life of the carbon fiber module, avoids the intimate connection between the module and the influence of soil pressure, and ensures the uniformity of rainwater release and the long-term stability of the system.
Smart Images

Figure CN223103754U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of carbon fiber rainwater modules, and particularly relates to a carbon fiber rainwater module structure. Background Art
[0002] The carbon fiber rainwater module structure is a system integrating the high strength and lightweight characteristics of carbon fiber for effective rainwater management and collection. The outer shell of the module is made of carbon fiber material, with excellent corrosion resistance and durability. The internal design includes a porous structure, similar to a sponge, which can absorb and store rainwater and release water when needed. The module is also equipped with drainage channels to ensure uniform inflow and distribution of rainwater. The connection system is used to connect multiple modules to form a stable overall structure. Through this structure, the carbon fiber rainwater module can provide an efficient rainwater management solution, suitable for rainwater collection and utilization in building and environmental engineering;
[0003] Since its module structure generally needs to be buried in the soil for use, when installing it, it is necessary to first dig a foundation pit, and then lay the carbon fiber modules one by one into the foundation pit. Because the foundation pit is composed of soil, it may be very difficult to dig it very flat. Therefore, when laying the carbon fiber modules, there may be situations such as uneven laying, too large gaps between adjacent carbon fiber modules, and the connecting pipe fittings at the joints are not tightly fitted, which may affect the later use effect. And during the long-term use process, due to the change of the soil layer, the pressure on the carbon fiber module will also change. For example, when the soil settles, etc., it may increase the pressure on the carbon fiber module, which may also affect its later use effect;
[0004] In view of this, we propose a carbon fiber rainwater module structure. Content of the Utility Model
[0005] Technical Problems to be Solved
[0006] Aiming at the above-mentioned shortcomings of the existing technology, the utility model provides a carbon fiber rainwater module structure, which can effectively solve the problems that the foundation pit may not be flat when laying the carbon fiber module in the existing technology, resulting in unstable laying, large gaps, and during the long-term use process, the pressure of the soil on it increases, affecting the later use effect.
[0007] Technical Solutions
[0008] To achieve the above purposes, the utility model is realized through the following technical solutions:
[0009] The utility model provides a carbon fiber rainwater module structure, which includes two groups of porous carbon fiber module bodies, as well as a lower buckle plate and an upper buckle plate arranged at the bottom and top of the two groups of porous carbon fiber module bodies. The two groups of porous carbon fiber module bodies can be supported and fixed by the lower buckle plate and the upper buckle plate, and a number of circular holes are provided on both the lower buckle plate and the upper buckle plate. The normal water release of the two groups of porous carbon fiber module bodies to the soil will not be affected by the number of circular holes;
[0010] Wherein, a support member for supporting the lower buckle plate is provided on the surface of the lower buckle plate, and a fixing member for fixing the support member is further provided on the surface of the upper buckle plate;
[0011] Two groups of trapezoidal blocks distributed symmetrically are respectively fixed on both sides of the porous carbon fiber module body, and two groups of elastic gaskets are adhesively fixed on the inner cavity side walls of the porous carbon fiber module body. Connecting pipes are fixedly installed at one ends of the two groups of elastic gaskets away from the porous carbon fiber module body;
[0012] When the upper buckle plate on the top of the porous carbon fiber module body is buckled towards the porous carbon fiber module body, the trapezoidal blocks on the porous carbon fiber module body can be extruded by the fixing member on the surface of the upper buckle plate, so that the porous carbon fiber module bodies approach each other. By the elastic action of the elastic gasket, pressure can be applied to the other end of the connecting pipe at the docking part of the porous carbon fiber module body, so that the two connecting pipes at the docking part are in closer contact.
[0013] Further, the support member includes two fixing blocks fixedly installed on the surface of the lower buckle plate. Second threaded holes are provided on the surfaces of the two fixing blocks, and screw rods are threadedly connected to the inner cavity side walls of the second threaded holes.
[0014] Further, a pointed end part is fixedly installed at the bottom of the screw rod, and a knob is also fixedly installed at the top of the screw rod;
[0015] Wherein, a jack is also provided on the surface of the knob.
[0016] Further, the support member includes two fixing frames fixedly installed on the surface of the upper buckle plate. A number of first threaded holes are provided on the surfaces of the two fixing frames, and a threaded head is threadedly connected to the inner cavity side wall of one of the first threaded holes. A plug rod is fixedly installed at one end of the threaded head.
[0017] Further, the surface of the plug rod is sleeved on the inner cavity side wall of the jack, and a stop block is also fixedly installed at one end of the plug rod away from the threaded head;
[0018] And a second threaded hole is also provided on the surface of the plug rod.
[0019] Furthermore, L-shaped blocks are fixedly installed on both sides of the two groups of fixing frames. When the upper buckling plate on the top of the porous carbon fiber module body is buckled towards the porous carbon fiber module body, the two groups of L-shaped blocks can be used to extrude the trapezoidal blocks on the surfaces of adjacent porous carbon fiber module bodies, so that the connection between the two adjacent porous carbon fiber module bodies is more fitting. Moreover, grooves are provided on the inner cavity side walls of the two groups of L-shaped blocks, and the grooves can be used to make the bottoms of the L-shaped blocks be clamped with the bottoms of the trapezoidal blocks.
[0020] Beneficial effects
[0021] The technical solution provided by the present utility model, compared with the known public technology, has the following
[0022] Beneficial effects:
[0023] By providing an upper buckling plate and a lower buckling plate on the carbon fiber module body, the present utility model can, without affecting its water release, play an additional supporting role, be able to evenly distribute the pressure of the upper soil or other loads, reduce local pressure concentration, protect the module from damage, and at the same time, by using supporting members such as screws, the heights of the four corners of its lower buckling plate can be adjusted, so that it can be adjusted according to the actual situation of the foundation pit and the laying requirements, thereby avoiding tilting during laying, resulting in too large gaps between adjacent modules. Moreover, by using fixing members, the supporting members, the upper buckling plate and the lower buckling plate can be fixed. At the same time, when installing the upper buckling plate, the connection between adjacent modules can be made more closely fitting, so that it can also maintain corresponding stability during the later use process, and further improve its use effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained according to these drawings.
[0025] Figure 1 It is a schematic structural diagram of the first perspective of the present utility model;
[0026] Figure 2 It is a schematic partial structural diagram of the fixing block, the fixing frame and related components of the present utility model;
[0027] Figure 3 It is a schematic partial structural diagram of the disassembly of the screw, the plug rod and the fixing block of the present utility model
[0028] Figure 4 It is a schematic plan view of the clamping of the trapezoidal block and the L-shaped block of the present utility model.
[0029] The reference numerals in the figure respectively represent: 1. Two groups of porous carbon fiber module bodies; 2. Lower buckle plate; 3. Upper buckle plate; 4. Circular holes; 5. Fixed blocks; 6. Screw rods; 7. Fixed frames; 8. First threaded holes; 9. Tip ends; 10. Knobs; 11. Plug rods; 12. Stopper blocks; 13. Second threaded holes; 14. Jacks; 15. Threaded heads; 16. Connecting pipes; 17. Elastic gaskets; 18. L-shaped blocks; 19. Trapezoidal blocks; 20. Grooves. Specific implementation manners
[0030] In order to make the objectives, technical solutions and advantages of the embodiments of the present utility model clearer, the technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are some, but not all, of the embodiments of the present utility model. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts shall fall within the protection scope of the present utility model.
[0031] The present utility model will be further described below with reference to the embodiments.
[0032] Embodiment: A carbon fiber rainwater module structure includes a porous carbon fiber module body 1, and a lower buckle plate 2 and an upper buckle plate 3 arranged at the bottom and top of the porous carbon fiber module body 1. The porous carbon fiber module body 1 can be supported and fixed by the lower buckle plate 2 and the upper buckle plate 3, and a plurality of groups of circular holes 4 are formed in both the lower buckle plate 2 and the upper buckle plate 3. The normal water release of the porous carbon fiber module body 1 to the soil will not be affected by the plurality of groups of circular holes 4;
[0033] Specifically, by respectively arranging the upper buckle plate 3 and the lower buckle plate 2 at the top and bottom of the porous carbon fiber module body 1, corresponding support and protection effects can be achieved, and it is possible to avoid the change of the soil layer, resulting in the change of the pressure on the porous carbon fiber module body 1, affecting its use effect, and causing damage, etc. At the same time, by using the circular holes 4 formed in the upper buckle plate 3 and the lower buckle plate 2, the soil and the porous carbon fiber module body 1 can still be in direct contact, and the normal water release work of the porous carbon fiber module body 1 to the soil will not be affected;
[0034] Specifically, on both sides of the porous carbon fiber module body 1, two groups of trapezoidal blocks 19 are symmetrically fixed respectively. And on the inner cavity side walls of the porous carbon fiber module body 1, two groups of elastic gaskets 17 are adhesively fixed. At one end of the two groups of elastic gaskets 17 away from the porous carbon fiber module body 1, connecting pipes 16 are fixedly installed. When the upper buckling plate 3 on the top of the porous carbon fiber module body 1 is buckled towards the porous carbon fiber module body 1, the trapezoidal blocks 19 on the porous carbon fiber module body 1 can be extruded through the fixing parts on the surface of the upper buckling plate 3, so that the porous carbon fiber module bodies 1 approach each other. By using the elastic effect of the elastic gaskets 17, pressure can be applied to the other end of the connecting pipe 16 at the docking part of the porous carbon fiber module body 1, so that the two connecting pipes 16 at the docking part are in closer contact.
[0035] Further, on the surface of the lower buckling plate 2, there is a support part for supporting the lower buckling plate 2. The support part includes two groups of fixing blocks 5 fixedly installed on the surface of the lower buckling plate 2. Second threaded holes 13 are formed on the surfaces of the two groups of fixing blocks 5. The inner cavity side walls of the second threaded holes 13 are threadedly connected with screw rods 6. At the bottom of the screw rod 6, a pointed end part 9 is fixedly installed. And at the top of the screw rod 6, a knob 10 is also fixedly installed.
[0036] Specifically, when the foundation pit is uneven, by rotating the knob 10, the screw rod 6 in the second threaded hole 13 of the fixing block 5 can be driven to rotate, and synchronously descend. At this time, the pointed end part 9 at the bottom can be inserted into the ground to play a role of fixation and support. Thus, it can be adjusted and used according to the flatness of the foundation pit and the laying requirements, so that when laying the porous carbon fiber module body 1, it can be laid more flatly, avoiding situations such as too large gaps between adjacent ones.
[0037] Specifically, on the surface of the upper buckling plate 3, there is also a fixing part for fixing the support part. Among them, on the surface of the knob 10, a jack 14 is formed. The support part includes two groups of fixing frames 7 fixedly installed on the surface of the upper buckling plate 3. On the surfaces of the two groups of fixing frames 7, multiple groups of first threaded holes 8 are formed. And the inner cavity side wall of one group of the first threaded holes 8 is threadedly connected with a threaded head 15. At one end of the threaded head 15, a plug rod 11 is fixedly installed. The surface of the plug rod 11 is sleeved on the inner cavity side wall of the jack 14. And at the end of the plug rod 11 away from the threaded head 15, a stop block 12 is also fixedly installed. And on the surface of the plug rod 11, a second threaded hole 15 is formed.
[0038] Specifically, after the adjustment using the support member is completed, the plug rod 11 of the stop block 12 can be inserted into the jack 14 until one end of it is inserted into the first threaded hole 8 opened in the fixing frame 7. At this time, by rotating the stop block 12, the threaded head 15 at one end of the plug rod 11 can be threadedly connected and fixed to one set of the first threaded holes 8, thereby ensuring the stability of the screw rod 6 and the corresponding support member. At the same time, it can also connect and fix the upper buckle plate 3 and the lower buckle plate 2 thereon, thereby improving the overall stability thereof.
[0039] Furthermore, L-shaped blocks 18 are fixedly installed on both sides of the two fixing frames 7. When the upper buckle plate 3 on the top of the porous carbon fiber module body 1 is pressed towards the porous carbon fiber module body 1, the two L-shaped blocks 18 can be used to squeeze the trapezoidal blocks 19 on the surface of the adjacent porous carbon fiber module body 1, so that the two adjacent porous carbon fiber module bodies 1 are more closely connected. Moreover, grooves 20 are opened on the inner cavity side walls of the two L-shaped blocks 18, and the grooves 20 can be used to make the bottom of the L-shaped block 18 be snap-connected with the bottom of the trapezoidal block 19.
[0040] Specifically, when the upper buckle plate 3 is pressed onto the porous carbon fiber module body 1, the L-shaped blocks 18 on both sides of the fixing frame 7 just can abut against the trapezoidal blocks 19 on the two adjacent porous carbon fiber module bodies 1. Thus, in the process of pressing the upper buckle plate 3 downwards, the two porous carbon fiber module bodies 1 can be squeezed towards the middle to make their connection more fitting. And by using the grooves 20 opened in the L-shaped blocks 18, the bottom of the L-shaped block 18 can be snap-connected with the low end of the trapezoidal block 19, which can not only make their connection more stable, but also play a corresponding installation and positioning role. At the same time, since one end of the connecting pipe 16 at the connection part is connected with the elastic sealing gasket 17, the elastic sealing gasket 17 can apply pressure to one end of the connecting pipe 16, so that the two connected connecting pipes 16 are more closely connected. And sealing gaskets are also provided at the connection ends of the two connecting pipes 16, thereby avoiding water seepage and other situations during their later connection and use.
[0041] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements will not make the essence of the corresponding technical solutions deviate from the protection scope of the technical solutions of the embodiments of the present invention.
Claims
1. A carbon fiber rainwater module structure, characterized in that, Including: Two groups of porous carbon fiber module bodies (1), and a lower buckle plate (2) and an upper buckle plate (3) respectively arranged at the bottom and top of the two groups of porous carbon fiber module bodies (1). The two groups of porous carbon fiber module bodies (1) can be supported and fixed by the lower buckle plate (2) and the upper buckle plate (3), and a number of circular holes (4) are opened in both the lower buckle plate (2) and the upper buckle plate (3). The normal water release of the two groups of porous carbon fiber module bodies (1) to the soil will not be affected by the number of circular holes (4). Among them, a support member for supporting the lower buckle plate (2) is provided on the surface of the lower buckle plate (2), and a fixing member for fixing the support member is also provided on the surface of the upper buckle plate (3). Two groups of trapezoidal blocks (19) distributed symmetrically are respectively fixed on both sides of the porous carbon fiber module body (1), and two groups of elastic gaskets (17) are adhesively fixed on the inner cavity side walls of the porous carbon fiber module body (1). Connecting pipes (16) are fixedly installed at one ends of the two groups of elastic gaskets (17) away from the porous carbon fiber module body (1). When the upper buckle plate (3) on the top of the porous carbon fiber module body (1) is buckled towards the porous carbon fiber module body (1), the trapezoidal blocks (19) on the porous carbon fiber module body (1) can be extruded by the fixing member on the surface of the upper buckle plate (3), so that the porous carbon fiber module bodies (1) approach each other. By the elastic action of the elastic gasket (17), pressure can be applied to the other end of the connecting pipe (16) at the docking part of the porous carbon fiber module body (1), so that the two connecting pipes (16) at the docking part are in closer contact.
2. The carbon fiber rainwater module structure according to claim 1, characterized in that, The support member includes two fixing blocks (5) fixedly installed on the surface of the lower buckle plate (2). Second threaded holes (13) are opened on the surfaces of the two fixing blocks (5), and a screw rod (6) is threadedly connected to the inner cavity side wall of the second threaded hole (13).
3. The carbon fiber rainwater module structure according to claim 2, characterized in that, A pointed end part (9) is fixedly installed at the bottom of the screw rod (6), and a knob (10) is also fixedly installed at the top of the screw rod (6). Among them, a jack (14) is also opened on the surface of the knob (10).
4. A carbon fiber rainwater module structure according to claim 3, characterized in that The support member includes two fixing frames (7) fixedly installed on the surface of the upper buckle plate (3). A number of first threaded holes (8) are opened on the surfaces of the two fixing frames (7), and a threaded head (15) is threadedly connected to the inner cavity side wall of one of the first threaded holes (8). A plug rod (11) is fixedly installed at one end of the threaded head (15).
5. A carbon fiber rainwater module structure according to claim 4, characterized in that, The surface of the plug rod (11) is sleeved on the inner cavity side wall of the jack (14), and a stop block (12) is fixedly installed at the end of the plug rod (11) away from the threaded head (15).
6. The carbon fiber rainwater module structure according to claim 5, characterized in that, L-shaped blocks (18) are fixedly installed on both sides of the two groups of fixing frames (7). When the upper buckling plate (3) on the top of the porous carbon fiber module body (1) is buckled towards the porous carbon fiber module body (1), the trapezoidal blocks (19) on the surfaces of adjacent porous carbon fiber module bodies (1) can be extruded by the two groups of L-shaped blocks (18), so that the connection between the two adjacent porous carbon fiber module bodies (1) is more fitting. Moreover, grooves (20) are formed on the inner cavity side walls of the two groups of L-shaped blocks (18), and the bottoms of the L-shaped blocks (18) can be clamped with the bottoms of the trapezoidal blocks (19) by using the grooves (20).