Integrated intelligent green water-saving carbon fiber module synthesizer
Through the integrated intelligent green water-saving carbon fiber module synthesis device, the operation and maintenance problems of traditional sponge urban facilities and the problem of rainwater storage not meeting standards are solved, efficient rainwater collection and storage are achieved, and municipal drainage pressure and maintenance costs are reduced.
Patent Information
- Application Number
- CN202510474238.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2045-04-16
AI Technical Summary
Traditional sponge urban facilities are difficult to achieve later operation and maintenance, and long-term operation and maintenance costs are high, resulting in the phenomenon of "pipe abandonment", rainwater storage does not meet standards, water quality deteriorates, and the underground space is occupied with easy collapse safety hazards.
An integrated intelligent green water-saving carbon fiber module synthesis device is designed, including a rainwater filter layer and a carbon fiber rainwater collection module in the hard polyvinyl chloride tube. The purified rainwater is transported to the cured fiber core material through the diversion pipe and the diversion hole, so as to achieve reverse penetration to the soil, and efficient collection and discharge of rainwater through the water storage and drainage mold box and overflow port.
The amount of rainwater collection is increased, the municipal drainage pressure is reduced, and the excess rainwater is used to replenish green plants, the rainwater collection and storage capacity is improved, the underground space occupation is reduced, and maintenance costs are reduced.
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Figure CN120083274A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of municipal drainage, and specifically provides an integrated intelligent green water-saving carbon fiber module synthesis device. Background Art
[0002] Traditional sponge city facilities are usually pp module reservoirs or concrete. These facilities are mainly used to store rainwater, and canvas or non-woven fabric can be used for water storage and drainage. Moreover, water supply ports, water outlet ports, centrifugal pump parts, and sewage wells must be set within the structure.
[0003] Currently, it is very difficult to achieve the later operation and maintenance of these facilities. Even if the operation is started, the long-term operation and maintenance cost is dozens of times the construction cost; the phenomenon of "abandoning management" is widespread, resulting in the construction of "false sponge cities", etc.; the rainwater stored in the pp module reservoir deteriorates due to lack of timely application, resulting in non-compliant water quality; it can only have the ability to store water once during continuous rainy weather. At the same time, when setting up this system, it requires a relatively deep underground space and is prone to collapse in the later stage, becoming a safety hazard. Summary of the Invention
[0004] In view of the deficiencies of the prior art, the present invention provides an integrated intelligent green water-saving carbon fiber module synthesis device, which solves the problems raised in the above background art.
[0005] The present invention provides the following technical solution: An integrated intelligent green water-saving carbon fiber module synthesis device, including a rigid polyvinyl chloride pipe. The interior of the rigid polyvinyl chloride pipe is filled with a rainwater solid suspension removal layer and a phosphorus and nitrogen carbonization removal layer. One end of the rigid polyvinyl chloride pipe is fixed with a diversion pipe. A diversion hole is opened at the end of the diversion pipe away from the rigid polyvinyl chloride pipe. A carbon fiber rainwater collection module for collecting purified rainwater is provided at the end of the diversion pipe away from the rigid polyvinyl chloride pipe. The carbon fiber rainwater collection module includes a cured fiber core material. The cured fiber core material is coated on the surface of the end of the diversion pipe away from the rigid polyvinyl chloride pipe. An acid and alkali resistant filter and permeable wrapping cloth is coated on the outside of the cured fiber core material. A water storage and drainage module for rainwater collection and discharge is provided at the bottom of the acid and alkali resistant filter and permeable wrapping cloth. The water storage and drainage module includes a water storage and drainage mold box. The water storage and drainage mold box is clamped at the bottom of the acid and alkali resistant filter and permeable wrapping cloth. An overflow port is fixed at the end of the water storage and drainage mold box away from the rigid polyvinyl chloride pipe. A data transmission device for transmitting data is provided on the side of the acid and alkali resistant filter and permeable wrapping cloth away from the rigid polyvinyl chloride pipe.
[0006] Optionally, the data transmission device includes a sensor located inside the cured fiber core material. A transmission line is connected to the surface of the sensor. The transmission line passes through the acid and alkali resistant filter wrapping cloth. One end of the sensor away from the cured fiber core material is connected to a metal vertical rod. An installation bracket is fixed on the surface of the metal vertical rod, and a storage battery is fixed on the surface of the installation bracket. A solar panel is fixed above the storage battery on the surface of the metal vertical rod. A transmitter is fixed at the top of the metal vertical rod.
[0007] Optionally, the water storage and drainage module further includes a spare water storage and drainage mold box. An overflow pipe is fixed at one end of the spare water storage and drainage mold box away from the hard polyvinyl chloride pipe. The spare water storage and drainage mold box is clamped at the bottom of the acid and alkali resistant filter wrapping cloth. A water pump is fixed at the bottom of the inner cavity of the spare water storage and drainage mold box. A shunt pipe is fixed at the water outlet of the water pump. Converging pipes are fixed at both ends of the shunt pipe. Bellows are fixed at the tops of the converging pipes. Discharge pipes are fixed at one side of the converging pipes away from the water pump.
[0008] Optionally, an L-shaped pipe is fixed at the top of the bellows. The L-shaped pipe passes through the cured fiber core material and the acid and alkali resistant filter wrapping cloth.
[0009] Optionally, a limiting plate is fixed on the surface of the vertical part of the L-shaped pipe below the cured fiber core material.
[0010] Optionally, a fiber branch pipe is fixed at one end of the L-shaped pipe away from the limiting plate. The fiber branch pipe is made of the same material as the cured fiber core material. A sponge column is fixed inside the fiber branch pipe. One end of the sponge column is located inside the horizontal part of the L-shaped pipe.
[0011] Optionally, storage grooves are formed inside both sides of the spare water storage and drainage mold box. A limiting groove is formed on one side of the storage groove close to the outer wall of the spare water storage and drainage mold box. A floating plate is slidably connected inside the storage groove. One end of the floating plate close to the limiting groove is slidably connected with the limiting groove.
[0012] Optionally, a top rod is fixed at the top of the floating plate, and the top rod is slidably and hermetically connected with the storage groove. The top of the top rod is spherical.
[0013] Optionally, the discharge pipe is communicated with the storage groove and is also communicated with the converging pipe.
[0014] Compared with the prior art, the present invention has the following beneficial effects: 1. The integrated intelligent green water-saving carbon fiber module synthesis device filters the rainwater in the sewage well through the rainwater solid suspension removal layer and phosphorus-nitrogen carbonization removal layer in the rigid polyvinyl chloride pipe, and then transports it into the interior of the solidified fiber core material. The solidified fiber core material reversely permeates the rainwater to the surrounding soil. At the same time, when the water storage of the solidified fiber core material reaches the upper limit, the excess rainwater is collected into the interior of the water storage and drainage mold box. When the water storage in the interior of the water storage and drainage mold box reaches the upper limit, it is discharged through the overflow port. Thus, the amount of rainwater collected by the present invention during heavy rain is increased, the municipal drainage pressure is reduced, and the excess rainwater is used to supplement the green plants, further increasing the rainwater collection amount of the solidified fiber core material and the water storage and drainage mold box.
[0015] 2. The integrated intelligent green water-saving carbon fiber module synthesis device, by selecting a spare water storage and drainage mold box, on the basis of the solidified fiber core material and the acid and alkali resistant filter wrapping cloth, further supplements water to the soil around and above the solidified fiber core material through the L-shaped pipe, improving the water storage and regulation capacity of the present invention, as well as the range and efficiency of supplementing water to the green plants. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic structural diagram of the present invention; Figure 2 It is an internal view of the structure of the spare water storage and drainage mold box of the present invention; Figure 3 It is a cross-sectional view of the structure of the L-shaped pipe of the present invention; Figure 4 It is a cross-sectional view of the structure of the shunt pipe and the corrugated pipe of the present invention; Figure 5 It is a cross-sectional view of the structure of the spare water storage and drainage mold box of the present invention; Figure 6 It is a schematic structural diagram of the floating plate of the present invention; Figure 7 It is a cross-sectional view of the structure of the rigid polyvinyl chloride pipe, the diversion pipe and the solidified fiber core material of the present invention; Figure 8 It is a physical diagram of the water storage and drainage mold box of the present invention.
[0017] In the figure: 1. Rigid polyvinyl chloride pipe; 11. Rainwater solid suspension removal layer; 12. Phosphorus-nitrogen carbonization removal layer; 2. Diversion pipe; 21. Diversion hole; 3. Solidified fiber core material; 31. Acid and alkali resistant filter wrapping cloth; 4. Water storage and drainage mold box; 401. Spare water storage and drainage mold box; 41. Overflow pipe; 5. Sensor; 51. Transmission line; 52. Metal vertical rod; 53. Storage battery; 54. Solar panel; 55. Transmitter; 6. Water pump; 61. Shunt pipe; 62. Confluence pipe; 63. Corrugated pipe; 64. Discharge pipe; 7. L-shaped pipe; 71. Limiting plate; 72. Fiber branch pipe; 73. Sponge column; 8. Storage groove; 81. Limiting groove; 82. Floating plate; 83. Thrust rod. Detailed implementation mode
[0018] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0019] Embodiment 1: Please refer to Figure 1-8 , an integrated intelligent green water-saving carbon fiber module synthesis device, including a rigid polyvinyl chloride pipe 1. The inside of the rigid polyvinyl chloride pipe 1 is filled with a rainwater solid suspended matter removal layer 11 and a phosphorus and nitrogen carbonization removal layer 12. One end of the rigid polyvinyl chloride pipe 1 is fixed with a diversion pipe 2. A diversion hole 21 is opened at one end of the diversion pipe 2 away from the rigid polyvinyl chloride pipe 1. A carbon fiber rainwater collection module for collecting purified rainwater is provided at one end of the diversion pipe 2 away from the rigid polyvinyl chloride pipe 1; The carbon fiber rainwater collection module includes a cured fiber core 3. The cured fiber core 3 is coated on the surface of one end of the diversion pipe 2 away from the rigid polyvinyl chloride pipe 1. The outside of the cured fiber core 3 is coated with an acid and alkali resistant filter wrap 31. A water storage and drainage module for rainwater collection and discharge is provided at the bottom of the acid and alkali resistant filter wrap 31. The water storage and drainage module includes a water storage and drainage mold box 4. The water storage and drainage mold box 4 is clamped at the bottom of the acid and alkali resistant filter wrap 31. An overflow port is fixed at one end of the water storage and drainage mold box 4 away from the rigid polyvinyl chloride pipe 1. A data transmission device for transmitting data is provided on one side of the acid and alkali resistant filter wrap 31 away from the rigid polyvinyl chloride pipe 1; The data transmission device includes a sensor 5. The sensor 5 is located inside the cured fiber core 3. A transmission line 51 is connected to the surface of the sensor 5. The transmission line 51 passes through the acid and alkali resistant filter wrap 31. One end of the sensor 5 away from the cured fiber core 3 is connected to a metal vertical rod 52. A mounting frame is fixed on the surface of the metal vertical rod 52, and a storage battery 53 is fixed on the surface of the mounting frame. A solar panel 54 is fixed above the storage battery 53 on the surface of the metal vertical rod 52. A transmitter 55 is fixed at the top of the metal vertical rod 52; In the specific operation process, first, the carbon fiber rainwater collection module and the water storage and drainage module of the present invention are buried in the soil under the greening facilities to be used. Then, the rigid polyvinyl chloride pipe 1 is connected to the municipal sewage well, so as to collect the rainwater gathered around the roads and greening facilities. When it rains, the rainwater on the roof, roads and around the greening facilities enters the sewage well, and the rainwater in the sewage well enters the inside of the rigid polyvinyl chloride pipe 1. After the rainwater enters the inside of the rigid polyvinyl chloride pipe 1, it first passes through the rainwater solid suspended matter removal layer 11 for filtering the solid suspended matter, and the preliminarily filtered rainwater flows through the phosphorus and nitrogen carbonization removal layer 12, and the phosphorus and nitrogen carbonization removal layer 12 conducts secondary filtration on the rainwater, and then filters chemical impurities such as phosphorus and nitrogen in the rainwater; The purified rainwater flows into the inside of the diversion pipe 2 and is discharged to the cured fiber core 3 through the diversion holes 21. Since the cured fiber core 3 is made of brown inorganic fibers manufactured by the composite cross-linking technology process, which are mainly fibers drawn after inorganic materials such as natural rocks are melted at high temperature and then processed by winding to form a module, the chaotic fibers are formed into an ultra-thin initial fiber felt, and after three-dimensional pleating treatment, it is heated and cured into shape. Therefore, the inside of the cured fiber core 3 has extremely large voids, and its effective porosity can reach 88-97%, and it can store a large amount of water; When the purified rainwater enters the inside of the cured fiber core 3 and is collected, the acid and alkali resistant filtering and wrapping cloth 31 is a fiber cloth woven by mixing high-strength chemical fibers and a certain proportion of carbon fibers, which can block the soil from entering the inside of the cured fiber core 3 while permeating rainwater outward, thereby improving the unidirectionality of the cured fiber core 3 for permeating rainwater outward, so that the rainwater collected in the sewage well is purified and then collected inside the cured fiber core 3, and then released from the cured fiber core 3 to the ground green plants, thereby increasing the water storage capacity of the cured fiber core 3; Under the application of the capillary effect, the rainwater in the cured fiber core 3 can be released outward to the surrounding soil, thereby alleviating the drainage pressure of the municipal sewage well during heavy rain. At the same time, the rainwater released by the cured fiber core 3 to the surrounding soil can improve the water supplement of the surrounding greening facilities. During the regulation process, the rainwater regulation can be monitored through the data transmission module to improve the accuracy of rainwater regulation; When the cured fiber core 3 is saturated, the excess rainwater can be discharged into the inside of the water storage and drainage mold box 4 for collection. When the internal space of the water storage and drainage mold box 4 is saturated, it is then discharged outward through the overflow port.
[0020] It should be noted that the water storage and drainage mold box is made of PP engineering raw materials, with a wall thickness of 2.5 mm, a specification of 1216.61 mm in length, 266.61 mm in width, and 130.5 mm in height. Compared with the water storage capacity and speed of the water storage facilities in traditional sponge cities, it is difficult to drain the rainwater within 12 hours after rain in a timely manner, resulting in excessive drainage pressure inside the city. However, the water storage capacity and speed of the present invention can reach a water storage capacity of >2300 L / in 6 hours and a water release capacity of >1400 L / in 6 hours; Compared with the water storage facilities of traditional sponges, they need to be built underground and require a large amount of underground space. During the actual installation process of the present invention, the present invention adopts an assembled structure and can be quickly installed. The present invention can be buried 400 mm below the green ground surface, without occupying a large amount of underground space and being convenient for maintenance. Another difference between the present invention and the water storage facilities of traditional sponge cities is that the main materials used in traditional water storage facilities are organic plastics or concrete, while the main material of the carbon fiber rainwater collection module of the present invention is 100% mineral fiber, with a full life cycle: the same as the soil composition and can be directly used as a soil improvement product; In actual application, the water storage facilities of traditional sponge cities adopt a centralized collection method, which is quite effective for collecting rainwater on the roof. When it comes to collecting rainwater from roads and green spaces, the effect is slight. When facing heavy rain, the rainwater on the entire site will form a long-distance flow, resulting in the convergence of rainwater. However, the present invention can collect rainwater corresponding to roofs, roads, and green spaces, and release the collected rainwater to the soil that needs to be irrigated, without forming rainwater convergence; The removal rate of solid suspended matter by the rainwater solid suspended matter removal layer 11 can reach ≥80%, and the removal rate of phosphorus, nitrogen, and carbon by the phosphorus, nitrogen, and carbon removal layer 12 can reach ≥70%. Moreover, compared with the traditional water storage facilities, where overflow relies on the front rainwater well or the sunken overflow well for overflow, the present invention adopts an overflow port to improve its own overflow system, increasing the drainage performance.
[0021] Embodiment 2: The water storage and drainage module further includes a spare water storage and drainage mold box 401. One end of the spare water storage and drainage mold box 401 away from the rigid polyvinyl chloride pipe 1 is fixed with an overflow pipe 41. The spare water storage and drainage mold box 401 is clamped at the bottom of the acid and alkali resistant filter wrapping cloth 31. A water pump 6 is fixed at the bottom of the inner cavity of the spare water storage and drainage mold box 401. The water outlet of the water pump 6 is fixed with a shunt pipe 61. The two ends of the shunt pipe 61 are fixed with a manifold pipe 62. Bellows 63 are fixed at the tops of the manifold pipes 62. Drain pipes 64 are fixed on one side of the manifold pipes 62 away from the water pump 6; The top of the corrugated pipe 63 is fixed with an L-shaped pipe 7. The L-shaped pipe 7 passes through the cured fiber core material 3 and the acid and alkali resistant filter wrapping cloth 31. The surface of the vertical part of the L-shaped pipe 7 is located below the cured fiber core material 3, and a limiting plate 71 is fixed. One end of the L-shaped pipe 7 away from the limiting plate 71 is fixed with a fiber branch pipe 72. The fiber branch pipe 72 is made of the same material as the cured fiber core material 3. A sponge column 73 is fixed inside the fiber branch pipe 72. One end of the sponge column 73 is located inside the horizontal part of the L-shaped pipe 7; Specifically, on the basis of Embodiment 1, the present invention can also use a spare water storage and drainage mold box 401 to replace the water storage and drainage mold box 4 and be clamped at the bottom of the acid and alkali resistant filter wrapping cloth 31. When the spare water storage and drainage mold box 401 is clamped at the bottom of the cured fiber core material 3, after the cured fiber core material 3 is saturated, the excess rainwater is collected inside the spare water storage and drainage mold box 401. At this time, a signal can be sent to the control terminal through the data transmission device, and the control terminal starts the water pump 6, so that the water pump 6 pumps the rainwater in the spare water storage and drainage mold box 401 into the inside of the flow collecting pipe 62 through the shunt pipe 61, so that the rainwater enters the inside of the corrugated pipe 63 through the flow collecting pipe 62, and then enters the inside of the L-shaped pipe 7 through the corrugated pipe 63, so that the rainwater soaks the sponge column 73 through the L-shaped pipe 7, and the soaked sponge column 73 transports the rainwater to the fiber branch pipe 72 again. Through the capillary effect of the fiber branch pipe 72, the rainwater is transported to the surrounding soil again; Since the cured fiber core material 3 and the acid and alkali resistant filter wrapping cloth 31 themselves use the capillary effect to release water, but as the water is released to the surrounding soil, the surrounding soil will gradually become viscous, and then the water release speed will decrease. Therefore, while the present invention uses the cured fiber core material 3 and the acid and alkali resistant filter wrapping cloth 31 to supplement water to the surrounding soil, the fiber branch pipe 72 supplements water to the soil farther away from the cured fiber core material 3, so that while the cured fiber core material 3 and the acid and alkali resistant filter wrapping cloth 31 slowly release water, the fiber branch pipe 72 is cooperated to further strengthen the speed of supplementing water to the surrounding soil, and at the same time improve the water storage and regulation ability of the present invention and the range of watering green plants; Furthermore, since the horizontal part of the L-shaped pipe 7 is buried in the soil and a plurality of them are symmetrically arranged, during the entire life cycle of the cured fiber core material 3, as the soil moisture gradually becomes rich and soft, the L-shaped pipe 7 plays a role in limiting the cured fiber core material 3, which can reduce the displacement offset of the cured fiber core material 3 in the soil. Furthermore, when the present invention waters the green plants in the same area subsequently, the water supplement is more balanced, the error caused by the offset of the cured fiber core material 3 in water supplement is reduced, and the accuracy of watering the green plants is improved.
[0022] It should be noted that the L-shaped pipe 7 is in an L shape. Its vertical part and horizontal part can adopt two separate pipes and be assembled into a whole with elbows. During the specific installation process, the vertical pipe of the L-shaped pipe 7 can be fixed to the corrugated pipe 63 first, and then the cured fiber core 3 can be snap-connected inside the spare water storage and drainage mold box 401, so that the cured fiber core 3 is sleeved outside the vertical pipe of the L-shaped pipe 7. Then, the horizontal pipe of the L-shaped pipe 7 can be connected to the vertical pipe of the L-shaped pipe 7 through an elbow. Then, the present invention can be buried in the predetermined soil space. The water pump 6 is the same as the spare water storage and drainage mold box 401, and both are optional equipment. According to the actual application situation, the water storage and drainage mold box 4, the spare water storage and drainage mold box 401 or the water pump 6 can be selected for installation.
[0023] Embodiment 3: Receiving grooves 8 are opened inside both sides of the spare water storage and drainage mold box 401. A limiting groove 81 is opened on one side of the receiving groove 8 close to the outer wall of the spare water storage and drainage mold box 401. A floating plate 82 is slidably connected inside the receiving groove 8. One end of the floating plate 82 close to the limiting groove 81 is slidably connected to the limiting groove 81. A top rod 83 is fixed on the top of the floating plate 82, and the top rod 83 is slidably and hermetically connected to the receiving groove 8. The top of the top rod 83 is spherical. The discharge pipe 64 communicates with the receiving groove 8, and the discharge pipe 64 communicates with the collecting pipe 62. Specifically, on the basis of Embodiment 2, when the water pump 6 is started, the rainwater in the spare water storage and drainage mold box 401 is also transported into the inside of the receiving groove 8 through the collecting pipe 62 and the discharge pipe 64, so that the floating plate 82 and the top rod 83 inside the receiving groove 8 are buoyed by the water and rise. During the rising process of the floating plate 82 and the top rod 83, the top rod 83 plays a role in loosening the soil around the acid and alkali resistant filter wrapping cloth 31, increasing the gaps in the soil, so that when the cured fiber core 3, the acid and alkali resistant filter wrapping cloth 31 and the fiber branch pipe 72 supply water to the surrounding soil, the speed of water diffusion is accelerated, thereby improving the water storage and regulation capacity of the present invention. At the same time, as the top rod 83 is pushed out, the top rod 83 gradually approaches the horizontal part of the L-shaped pipe 7 until the top rod 83 abuts against the L-shaped pipe 7. Then, the top rod 83 drives the L-shaped pipe 7 to displace along the vertical direction of the receiving groove 8. Under the flexible support of the corrugated pipe 63, the L-shaped pipe 7 undergoes an overall displacement. Then, during the displacement process of the L-shaped pipe 7, it also plays a role in loosening the soil above the acid and alkali resistant filter wrapping cloth 31, further increasing the gaps in the soil around and above the cured fiber core 3 and the acid and alkali resistant filter wrapping cloth 31, so that the speed of the present invention to supplement soil moisture upward is accelerated, thereby further improving the water storage and regulation capacity of the present invention. The limiting groove 81 plays a role in limiting the floating plate 82, enabling the maximum rising height of the floating plate 82 to be precisely controlled. At the same time, the limiting plate 71 plays a role in limiting the L-shaped pipe 7, enabling the maximum displacement space of the L-shaped pipe 7 to be controlled. Therefore, during the displacement process of the L-shaped pipe 7, it is prevented from having too large a displacement distance, which may affect the ground green plants.
[0024] It should be noted that the structure of the spare storage and drainage mold box 401 is an alternative optional structure. When the storage and drainage mold box 4 is used instead of the spare storage and drainage mold box 401, the regulation data has been shown in Embodiment 1. When the spare storage and drainage mold box 401 is used, although the driving equipment is increased, the regulation capacity is also increased. Therefore, during specific use, it can be selected and installed according to the user's needs.
[0025] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An integrated intelligent green water-saving carbon fiber module synthesis device, comprising a rigid polyvinyl chloride tube (1), the interior of the rigid polyvinyl chloride tube (1) being filled with a rainwater solid suspended matter removal layer (11) and a phosphorus and nitrogen carbonization removal layer (12), a guide tube (2) being fixed to one end of the rigid polyvinyl chloride tube (1), a guide hole (21) being provided at one end of the guide tube (2) away from the rigid polyvinyl chloride tube (1), and a carbon fiber rainwater collection module for collecting purified rainwater being provided at one end of the guide tube (2) away from the rigid polyvinyl chloride tube (1); The carbon fiber rainwater collection module comprises a solidified fiber core material (3), the solidified fiber core material (3) is coated on the surface of the end of the guide tube (2) away from the rigid polyvinyl chloride tube (1), the outside of the solidified fiber core material (3) is coated with an acid-base resistant filter wrapping cloth (31), the bottom of the acid-base resistant filter wrapping cloth (31) is provided with a water storage and drainage module for rainwater collection and discharge, the water storage and drainage module comprises a water storage and drainage mold box (4), the water storage and drainage mold box (4) is clamped on the bottom of the acid-base resistant filter wrapping cloth (31), an overflow port is fixed on the end of the water storage and drainage mold box (4) away from the rigid polyvinyl chloride tube (1), and a data transmission device for transmitting data is provided on the side of the acid-base resistant filter wrapping cloth (31) away from the rigid polyvinyl chloride tube (1).
2. According to the integrated intelligent green water-saving carbon fiber module synthesis device of claim 1, the data transmission device comprises a sensor (5), the sensor (5) is located inside the cured fiber core material (3), the surface of the sensor (5) is connected with a transmission line (51), the transmission line (51) passes through the acid-base resistant filter wrapping cloth (31), the end of the sensor (5) away from the cured fiber core material (3) is connected with a metal pole (52), the surface of the metal pole (52) is fixed with a mounting frame, and the surface of the mounting frame is fixed with a battery (53), the surface of the metal pole (52) is fixed with a solar panel (54) above the battery (53), and the top of the metal pole (52) is fixed with a transmitter (55).
3. According to the integrated intelligent green water-saving carbon fiber module synthesis device of claim 2, the water storage and drainage module also includes a spare water storage and drainage mold box (401), an overflow pipe (41) is fixed to one end of the spare water storage and drainage mold box (401) away from the rigid polyvinyl chloride pipe (1), the spare water storage and drainage mold box (401) is clamped on the bottom of the acid and alkali resistant filter wrapping cloth (31), a water pump (6) is fixed to the bottom of the inner cavity of the spare water storage and drainage mold box (401), a shunt pipe (61) is fixed to the water outlet of the water pump (6), a collecting pipe (62) is fixed at both ends of the shunt pipe (61), a bellows (63) is fixed to the top of the collecting pipe (62), and a discharge pipe (64) is fixed to the side of the collecting pipe (62) away from the water pump (6).
4. According to the integrated intelligent green water-saving carbon fiber module synthesis device of claim 3, an L-shaped tube (7) is fixed on the top of the corrugated tube (63), and the L-shaped tube (7) passes through the cured fiber core material (3) and the acid-base resistant filter wrapping cloth (31).
5. According to the integrated intelligent green water-saving carbon fiber module synthesis device of claim 4, the vertical surface of the L-shaped tube (7) is located below the cured fiber core material (3) and is fixed with a limiting plate (71).
6. According to the integrated intelligent green water-saving carbon fiber module synthesis device according to claim 5, a fiber branch tube (72) is fixed to one end of the L-shaped tube (7) away from the limiting plate (71), and the fiber branch tube (72) is made of the same material as the cured fiber core material (3). A sponge column (73) is fixed inside the fiber branch tube (72), and one end of the sponge column (73) is located inside the horizontal part of the L-shaped tube (7).
7. According to the integrated intelligent green water-saving carbon fiber module synthesis device according to claim 6, storage grooves (8) are provided inside on both sides of the spare water storage and drainage mold box (401), and a limiting groove (81) is provided on one side of the storage groove (8) close to the outer wall of the spare water storage and drainage mold box (401), and a floating plate (82) is slidably connected inside the storage groove (8), and one end of the floating plate (82) close to the limiting groove (81) is slidably connected to the limiting groove (81).
8. According to the integrated intelligent green water-saving carbon fiber module synthesis device of claim 7, a top rod (83) is fixed to the top of the floating plate (82), and the top rod (83) and the storage groove (8) are slidably sealed and connected, and the top of the top rod (83) is spherical.
9. According to the integrated intelligent green water-saving carbon fiber module synthesis device of claim 8, the discharge pipe (64) and the storage tank (8) are connected to each other, and the discharge pipe (64) is connected to the collecting pipe (62).
Citation Information
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