Carbon reduction type intelligent rainwater collection and utilization device
Patent Information
- Application Number
- CN202411322283.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2044-09-23
AI Technical Summary
[0002]集蓄雨水是重要的非常规水源,有效地收集和利用雨水,可以有效缓解水资源问题;然而,现有的雨水收集装置在使用时,杂质容易堵住收集孔,并且不便清理,影响收集效果
1、一号过滤网框通过支撑套与排水管的卡紧配合,安装在排水管内,一号过滤网框内的过滤网对雨水中的杂质进行阻拦,并通过旋转滤架转动对雨水二次过滤,来提高雨水的质量;
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Figure CN119041523B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of rainwater harvesting technology, specifically to a carbon-reducing intelligent rainwater harvesting and utilization device. Background Technology
[0002] Rainwater harvesting is an important unconventional water source, and effectively collecting and utilizing rainwater can effectively alleviate water resource problems. However, existing rainwater harvesting devices are prone to clogging the collection holes with impurities during use, and are inconvenient to clean, thus affecting the collection effect. Summary of the Invention
[0003] The purpose of this invention is to address the shortcomings and deficiencies of existing technologies by providing a carbon-reducing intelligent rainwater harvesting and utilization device that is simple in structure, reasonable in design, and easy to use. This device can drive the impurities on the rainwater collection filter screen to concentrate the impurities, making it easier for rainwater to flow downwards and be collected.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: it includes a collection frame, a water collection tank, a drain pipe, and a guide tube. The collection frame is located on the upper side of the water collection tank, and a connecting block is fixedly installed between the collection frame and the water collection tank. Water channels are opened at the four corners inside the collection frame, and drain pipes are inserted and fixed in the water channels. The drain pipes on the left and right sides are symmetrically arranged. A guide tube is symmetrically embedded and fixed on the upper side of the water collection tank. The two drain pipes on the same side are respectively inserted and fixed in the guide tube. Also includes: There are four filter screen frames, which are respectively inserted into the water inlet of the drain pipe; a central platform is inserted and fixed in the middle of the filter screen of the filter screen frame. The fixed support blocks are four in number, and are respectively fixedly installed inside one side of the corresponding No. 1 filter screen frame. The fixed support blocks are in contact with the upper side of the filter screen of the No. 1 filter screen frame, and the other side of the fixed support blocks is in contact with the outer wall of the central platform. The support and actuation components consist of four components, each disposed within a corresponding filter frame number one. The second filter screen frame consists of two frames, which are respectively inserted into the corresponding guide tubes and are located on the lower side of the drain end of the drain pipe. The tapping components are two in number, each disposed on the upper side of the guide tube; Through the above technical solution design, rainwater flows downward from the drain pipes around the collection frame into the guide tube, and then flows from the guide tube into the water collection tank. During the above process, when the rainwater flows into the drain pipe, it is filtered by the filter screen in the first filter screen frame to block impurities. After a period of use, the impurities are pushed by the support and pushing components, and the impurities are concentrated and clamped on one side of the fixed support block. The water flowing from the drain pipe into the guide tube is filtered again by the filter screen in the second filter screen frame, and the water flow is accelerated by tapping the filter screen in the second filter screen frame by the tapping component.
[0005] As a further improvement of the present invention, a guide slope is fixedly provided inside the collection frame, and the guide slope is configured with a triangular structure. The front and rear sides of the guide slope are respectively in contact with the inner walls of the front and rear sides of the collection frame, and the left and right sides of the guide slope are respectively in contact with one side of the water trough. The above technical solution is designed to guide rainwater, allowing it to flow downwards from the inclined slope of the guide slope into the drainage channel.
[0006] As a further improvement of the present invention, the supporting and pushing components include: The support sleeve is fixedly installed on the upper side of the first filter screen frame, and the upper side of the support sleeve is clamped to the upper end of the drain pipe. A support cover is provided on the upper side of the support sleeve, and several connecting rods are fixedly provided at equal angles around the bottom circumference of the support cover, with the bottom ends of the connecting rods fixedly provided on the support sleeve. The support ring is screwed onto the upper end of the central platform via a bearing. A connecting frame is fixedly installed on the outer ring wall of the support ring, and the connecting frame is an inverted L-shaped structure. A pushing block is fixedly installed at the bottom of the vertical end of the connecting frame, and the bottom of the pushing block contacts the filter screen of the first filter screen frame. A rotating gear is fixedly mounted on the upper side of the support ring, and a drive gear is meshed on one side of the rotating gear. The drive motor is fixedly mounted on the upper side of the support cover and is connected to a power source; the output shaft of the drive motor passes through the support cover and is inserted into and fixed inside the drive gear. Through the above technical solution design, the drive motor drives the drive gear to rotate, which in turn meshes with the rotating gear, causing the support ring to rotate around the center of its connection with the central platform, thereby driving the push block to rotate and drive the impurities.
[0007] As a further improvement of the present invention, a support shaft is provided inside the central platform, and a rotating filter frame is fixedly provided at the bottom end of the support shaft; a central motor is fixedly provided in the middle of the upper side of the support cover, the central motor is connected to the power supply, and the output shaft of the central motor passes through the support cover and is connected and fixed to the support shaft. The above technical solution design drives the rotating filter frame to rotate, performing secondary filtration on the filtered water.
[0008] As a further improvement of the present invention, the striking component includes: The cylinder is located on the upper side of the guide tube and is fixedly located at the bottom of the collection frame; a bracket is fixedly installed at the bottom pushing end of the cylinder, and the bracket is an inverted U-shaped structure. The striking motor is fixedly mounted on the outer wall of the vertical end of one side of the bracket and is connected to a power source. After the output shaft of the striking motor passes through the vertical end of the bracket, a drive shaft is provided. A driven shaft is provided on one side of the drive shaft, and the front and rear ends of the driven shaft are screwed onto the inner wall of the vertical end of the bracket through bearings. The striking gears are two in number, respectively sleeved and fixed on the drive shaft and the driven shaft; and the left and right striking gears are meshed together. The striking frame consists of two pieces, which are respectively sleeved and fixed on the drive shaft and the driven shaft, and the two striking frames on the left and right are symmetrically arranged. Through the above technical solution design, the cylinder drives the bracket downward into the guide tube and starts the striking motor, so that the two striking gears mesh and rotate, driving the striking frame to rotate and strike the filter screen in the second filter screen frame, thereby increasing the flow rate.
[0009] As a further improvement of the present invention, a support frame is bolted to one side of the second filter screen frame, and the support frame is an inverted L-shaped structure. The vertical end of the support frame contacts the inner ring wall of the guide tube, and the horizontal end of the support frame is located on the upper side of the guide tube and contacts the connecting block. A moving motor is provided on one side of the cylinder and is fixedly installed at the bottom of the collection frame. The moving motor is connected to a power source. A threaded rod is fixedly installed on the bottom output shaft of the moving motor. A threaded tube is screwed onto the threaded rod, and the bottom end of the threaded tube is screwed into the horizontal end of the support frame through a bearing. Through the above technical solution design, the thread drive drives the support frame to move, thereby moving the second filter screen frame.
[0010] As a further improvement of the present invention, a fixing ring is fixedly provided on the inner ring wall of the guide tube, and the second filter screen frame is contacted and disposed on the fixing ring. The above technical solution is used to support the No. 2 filter frame.
[0011] The working principle of this invention: Rainwater flows down the inclined slope of the guide dam into the water channel, and then flows down the drain pipe into the guide cylinder, finally flowing into the collection tank. When the rainwater flows into the drain pipe, it passes through the filter screen in the first filter frame to filter impurities. At the same time, the central motor is started, driving the rotating filter frame to rotate for secondary filtration of the rainwater. After a period of use, the drive motor is started to drive the drive gear to rotate, causing it to mesh and drive the rotating gear to rotate. This causes the support ring to rotate around its screw connection center with the central platform, driving the push block to rotate and drive the impurities to be clamped in the fixed support block. Between the support block and the drain pipe, water flowing into the guide tube from the drain pipe is filtered again through the filter screen in the second filter screen frame. The cylinder drives the support downward into the guide tube and starts the striking motor, causing the two striking gears to mesh and rotate, driving the striking frame to rotate and strike the filter screen in the second filter screen frame, accelerating the water flow. When not in use, the cylinder drives the striking frame upward to disengage from the guide tube, starts the moving motor, and drives the support frame to move through the screw drive, moving the second filter screen frame to facilitate subsequent disassembly of the second filter screen frame and removal of impurities.
[0012] Compared with the prior art, the beneficial effects of the present invention are: 1. The No. 1 filter screen is installed inside the drain pipe by clamping the support sleeve with the drain pipe. The filter screen inside the No. 1 filter screen blocks impurities in the rainwater and performs secondary filtration of the rainwater by rotating the filter frame to improve the quality of the rainwater. 2. Push the support block to rotate and push the impurities accumulated on the filter screen of the No. 1 filter screen, so that the impurities are clamped by the fixed support block; allow rainwater to flow through the filter screen without impurities; when too much impurities accumulate, simply pull up the support cover to drive the No. 1 filter screen upward for treatment. 3. The rotation of the tapping frame taps the filter screen of the No. 2 filter screen frame, accelerating the filtration of rainwater. By moving the support frame upward, the No. 2 filter screen frame can be removed upward. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the structure of the present invention.
[0014] Figure 2 This is a schematic diagram of the connection between the collection frame and the drain pipe in this invention.
[0015] Figure 3 yes Figure 2 Enlarged view of part A.
[0016] Figure 4 This is a schematic diagram of the connection between the drainage pipe and the guide tube in this invention.
[0017] Figure 5 This is a schematic diagram of the internal structure of the guide tube in this invention.
[0018] Explanation of reference numerals in the attached figures: 1. Collection frame; 2. Water collection tank; 3. Drain pipe; 4. Guide tube; 5. Connecting block; 6. No. 1 filter screen frame; 7. Center platform; 8. Fixed support block; 9. Support and pushing assembly; 9-1. Support sleeve; 9-2. Support cover; 9-3. Connecting rod; 9-4. Support ring; 9-5. Connecting frame; 9-6. Pushing support block; 9-7. Rotating gear; 9-8. Drive gear; 9-9. Drive motor; 9-10. Support shaft; 9-11. Rotating filter frame; 9-12. Center motor; 10. No. 2 filter screen frame; 11. Impact assembly; 11. Cylinder; 11-1. Bracket; 11-2. Impact motor; 11-3. Impact gear; 11-4. Impact frame; 11-5. Guide slope; 12. Support frame; 13. Moving motor; 14. Threaded rod; 15. Threaded pipe; 16. Fixed ring; 17. Detailed Implementation
[0019] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. The preferred embodiments described are only examples. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0020] Example 1: Please see Figures 1-5 This embodiment includes a collection frame 1, a water collection tank 2, a drain pipe 3, and a guide tube 4. The collection frame 1 is located on the upper side of the water collection tank 2, and a connecting block 5 is fixedly installed between the collection frame 1 and the water collection tank 2. Water channels are opened at the four corners inside the collection frame 1, and drain pipes 3 are inserted and fixed in the water channels. The drain pipes 3 on the left and right sides are symmetrically arranged. A guide slope 12 is fixedly installed inside the collection frame 1. The guide slope 12 is triangular in structure. The front and rear sides of the guide slope 12 are in contact with the inner walls of the front and rear sides of the collection frame 1, respectively. The left and right sides of the guide slope 12 are in contact with one side of the water channel, respectively. A guide tube 4 is symmetrically embedded and fixed on the upper side of the water collection tank 2. The two drain pipes 3 on the same side are inserted and fixed in the guide tube 4, respectively. It also includes: There are four filter screen frames 6, which are respectively inserted into the water inlet of the drain pipe 3; a central platform 7 is inserted and fixed in the middle of the filter screen of the filter screen frame 6. Fixed support blocks 8, there are four fixed support blocks 8, which are respectively fixedly installed inside one side of the corresponding first filter screen frame 6, and the fixed support blocks 8 are in contact with the upper side of the filter screen of the first filter screen frame 6, and the other side of the fixed support blocks 8 is in contact with the outer wall of the center platform 7. Support and push components 9, there are four support and push components 9, which are respectively set in the corresponding first filter frame 6; The second filter frame 10 consists of two frames, which are respectively inserted into the corresponding guide tube 4 and are located on the lower side of the drain end of the drain pipe 3. A fixing ring 17 is fixedly installed on the inner ring wall of the guide tube 4, and the second filter frame 10 is installed on the fixing ring 17. Two striking components 11 are respectively disposed on the upper side of the guide tube 4. Using the above design, rainwater flows downward from the drain pipes 3 around the collection frame 1 into the guide tube 4, and then flows from the guide tube 4 into the water collection tank 2. During the above process, when the rainwater flows into the drain pipe 3, it is filtered by the filter screen in the first filter frame 6 to block impurities. After a period of use, the impurities are pushed by the support and pushing components 9 and concentrated and clamped on one side of the fixed support block 8. The water flowing from the drain pipe 3 into the guide tube 4 is filtered again by the filter screen in the second filter frame 10, and the water flow is accelerated by tapping the filter screen in the second filter frame 10 by the tapping component 11.
[0021] Example 2: Please see Figures 1-5 Based on Embodiment 1, a further improvement is made, wherein the supporting and pushing component 9 includes: Support sleeve 9-1 is fixedly installed on the upper side of the mesh frame of filter screen 6, and the upper side of support sleeve 9-1 is clamped to the upper end of drain pipe 3. A support cover 9-2 is located on the upper side of a support sleeve 9-1, and several connecting rods 9-3 are fixedly arranged at equal angles around the bottom circumference of the support cover 9-2. The bottom ends of the connecting rods 9-3 are fixedly mounted on the support sleeve 9-1. A support shaft 9-10 is inserted inside the center platform 7, and a rotating filter frame 9-11 is fixedly mounted at the bottom end of the support shaft 9-10. A central motor 9-12 is fixedly mounted in the middle of the upper side of the support cover 9-2. The central motor 9-12 is connected to a power supply. The specific model of the central motor 9-12 is purchased and installed directly from the market according to actual usage requirements. The output shaft of the central motor 9-12 passes through the support cover 9-2 and is then connected and fixed to the support shaft 9-10. The support ring 9-4 is screwed onto the upper end of the center platform 7 via a bearing. A connecting frame 9-5 is fixedly installed on the outer ring wall of the support ring 9-4. The connecting frame 9-5 is an inverted L-shaped structure. A pushing block 9-6 is fixedly installed at the bottom of the vertical end of the connecting frame 9-5. The bottom of the pushing block 9-6 contacts the filter screen of the first filter screen frame 6. Rotating gear 9-7 is fixedly mounted on the upper side of support ring 9-4, and a drive gear 9-8 is meshed on one side of rotating gear 9-7; The drive motor 9-9 is fixedly installed on the upper side of the support cover 9-2. The drive motor 9-9 is connected to the power supply. The specific model of the drive motor 9-9 is purchased and installed directly from the market according to the actual use requirements. The output shaft of the drive motor 9-9 passes through the support cover 9-2 and is inserted and fixed inside the drive gear 9-8. Using the above design scheme, the drive motor 9-9 drives the drive gear 9-8 to rotate, which in turn drives the rotating gear 9-7 to rotate, causing the support ring 9-4 to rotate around the center of its connection with the central platform 7, thereby driving the push block 9-6 to rotate and drive the impurities.
[0022] Example 3: Please see Figures 1-5 Based on Embodiment 1, a further improvement is made, wherein the striking component 11 comprises: Cylinder 11-1 is located on the upper side of the guide tube 4 and is fixedly located at the bottom of the collection frame 1; a bracket 11-2 is fixedly located at the bottom pushing end of cylinder 11-1 and the bracket 11-2 is set in an inverted U-shaped structure. The striking motor 11-3 is fixedly mounted on the outer wall of the vertical end of one side of the bracket 11-2. The striking motor 11-3 is connected to a power supply. The specific model of the striking motor 11-3 is purchased and installed directly from the market according to actual usage requirements. After the output shaft of the striking motor 11-3 passes through the vertical end of the bracket 11-2, a drive shaft is provided. A driven shaft is provided on one side of the drive shaft, and the front and rear ends of the driven shaft are screwed onto the inner wall of the vertical end of the bracket 11-2 through bearings. Two striking gears 11-4 are respectively sleeved and fixed on the drive shaft and the driven shaft; and the left and right striking gears 11-4 are meshed together. The striking frame 11-5 consists of two pieces, which are respectively sleeved and fixed on the drive shaft and the driven shaft, and the left and right striking frames 11-5 are symmetrically arranged. A support frame 13 is bolted to one side of the second filter frame 10. The support frame 13 has an inverted L-shaped structure. The vertical end of the support frame 13 contacts the inner ring wall of the guide tube 4, and the horizontal end of the support frame 13 is located on the upper side of the guide tube 4. The horizontal end of the support frame 13 contacts the connecting block 5. A moving motor 14 is installed on one side of the cylinder 11-1 and is fixedly installed at the bottom of the collection frame 1. The moving motor 14 is connected to the power supply. The specific model of the moving motor 14 is purchased and installed directly from the market according to the actual use requirements. A threaded rod 15 is fixedly installed on the bottom output shaft of the moving motor 14. A threaded tube 16 is screwed onto the threaded rod 15, and the bottom end of the threaded tube 16 is screwed into the horizontal end of the support frame 13 through a bearing. Using the above design, cylinder 11-1 drives bracket 11-2 downward into guide tube 4 and starts striking motor 11-3, causing two striking gears 11-4 to mesh and rotate, driving striking frame 11-5 to rotate, striking the filter screen in filter screen frame 10, and accelerating water flow.
[0023] When using this invention, rainwater flows down the inclined slope of the guide wall into the water channel, and then flows down the drain pipe 3 into the guide cylinder 4, finally flowing into the collection tank 2. When the rainwater flows into the drain pipe 3, it passes through the filter screen in the first filter frame 6 to filter impurities. At the same time, the central motor 9-12 is started, driving the rotating filter frame 9-11 to rotate for secondary filtration of the rainwater. After a period of use, the drive motor 9-9 is started to drive the drive gear 9-8 to rotate, which in turn drives the rotating gear 9-7 to rotate, causing the support ring 9-4 to rotate around its screw connection center with the central platform 7. This drives the push block 9-6 to rotate, driving the impurities to be clamped between the fixed support block 8 and the push block 9-6. Water flowing from drain pipe 3 into guide tube 4 is filtered again through the filter screen in filter frame 10. Cylinder 11-1 drives bracket 11-2 downward into guide tube 4 and starts the striking motor 11-3, causing two striking gears 11-4 to mesh and rotate, driving striking frame 11-5 to rotate and strike the filter screen in filter frame 10, accelerating water flow. When not in use, cylinder 11-1 drives striking frame 11-5 upward, disengaging it from guide tube 4. Moving motor 14 is started, and the support frame 13 is moved through threaded drive, moving filter frame 10 to facilitate subsequent disassembly of filter frame 10 and removal of impurities.
[0024] Compared with the prior art, the advantages of the present invention are: 1. The No. 1 filter screen frame 6 is installed inside the drain pipe 3 through the clamping fit between the support sleeve 9-1 and the drain pipe 3. The filter screen inside the No. 1 filter screen frame 6 blocks impurities in the rainwater, and the rainwater is filtered a second time by rotating the filter frame 9-11 to improve the quality of rainwater collection and treatment. 2. Push the support block 9-6 to rotate and push the impurities accumulated on the filter screen of the first filter screen 6, so that the impurities are clamped by the fixed support block 8; so that rainwater can flow through the filter screen without impurities; when too much impurities accumulate, simply pull the support cover 9-2 upward to drive the first filter screen 6 upward for treatment. 3. The rotation of the tapping frame 11-5 taps the filter screen of the second filter screen frame 10, accelerating the filtration of rainwater, and by driving the support frame 13 to move upward, the second filter screen frame 10 can be taken out upward.
[0025] For those skilled in the art, modifications can be made to the technical solutions described in the foregoing embodiments, and equivalent substitutions can be made to some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this invention should be included within the protection scope of this invention.
Claims
1. A carbon-reducing intelligent rainwater harvesting and utilization device, comprising a collection frame (1), a water collection tank (2), a drain pipe (3), and a guide tube (4). The collection frame (1) is located on the upper side of the water collection tank (2), and a connecting block (5) is fixedly provided between the collection frame (1) and the water collection tank (2). Water channels are provided at the four corners inside the collection frame (1), and drain pipes (3) are inserted and fixed in the water channels. The drain pipes (3) on the left and right sides are symmetrically arranged. The guide tube (4) is embedded and fixed on the upper side of the water collection tank (2) in a symmetrical manner. The two drain pipes (3) on the left and right sides of the same side are respectively inserted and fixed in the guide tube (4). Its features are, It also includes: There are four filter screen frames (6), which are respectively inserted into the water inlet of the drain pipe (3); a central platform (7) is inserted and fixed in the middle of the filter screen of the filter screen frame (6). Fixed support blocks (8), there are four fixed support blocks (8), which are respectively fixedly installed inside one side of the corresponding No. 1 filter screen frame (6), and the fixed support blocks (8) are in contact with the upper side of the filter screen of the No. 1 filter screen frame (6), and the other side of the fixed support blocks (8) is in contact with the outer wall of the center platform (7). Support and actuation components (9), there are four support and actuation components (9), each set in a corresponding first filter frame (6); the support and actuation components (9) include: Support sleeve (9-1), the support sleeve (9-1) is fixedly set on the upper side of the mesh frame of the first filter screen (6), and the upper side of the support sleeve (9-1) is clamped on the upper end of the drain pipe (3); A support cover (9-2) is provided on the upper side of the support sleeve (9-1), and several connecting rods (9-3) are fixedly arranged at equal angles around the bottom circumference of the support cover (9-2). The bottom ends of the connecting rods (9-3) are fixedly arranged on the support sleeve (9-1). A support shaft (9-10) is provided inside the center platform (7), and a rotating filter frame (9-11) is fixedly arranged at the bottom end of the support shaft (9-10). A central motor (9-12) is fixedly arranged in the middle of the upper side of the support cover (9-2). The central motor (9-12) is connected to the power supply. The output shaft of the central motor (9-12) passes through the support cover (9-2) and is connected and fixedly arranged with the support shaft (9-10). The support ring (9-4) is screwed onto the upper end of the center platform (7) via a bearing. A connecting frame (9-5) is fixedly installed on the outer ring wall of the support ring (9-4). The connecting frame (9-5) is an inverted L-shaped structure. A pushing block (9-6) is fixedly installed at the bottom of the vertical end of the connecting frame (9-5). The bottom of the pushing block (9-6) contacts the filter screen of the first filter screen frame (6). Rotating gear (9-7), the rotating gear (9-7) is fixedly disposed on the upper side of the support ring (9-4), and a drive gear (9-8) is meshed on one side of the rotating gear (9-7). The drive motor (9-9) is fixedly installed on the upper side of the support cover (9-2) and connected to the power supply; and the output shaft of the drive motor (9-9) passes through the support cover (9-2) and is inserted and fixed inside the drive gear (9-8); The second filter screen (10) consists of two parts, which are respectively inserted into the corresponding guide tube (4) and the second filter screen (10) is located on the lower side of the drain end of the drain pipe (3). Two striking components (11) are respectively disposed on the upper side of the guide tube (4); each striking component (11) includes: The cylinder (11-1) is located on the upper side of the guide tube (4) and is fixedly located at the bottom of the collection frame (1); a bracket (11-2) is fixedly located at the bottom push end of the cylinder (11-1) and the bracket (11-2) is set in an inverted U-shaped structure. A striking motor (11-3) is fixedly mounted on the outer wall of the vertical end of one side of the bracket (11-2). The striking motor (11-3) is connected to a power source. The output shaft of the striking motor (11-3) passes through the vertical end of the bracket (11-2) and is provided with a drive shaft. A driven shaft is provided on one side of the drive shaft, and the front and rear ends of the driven shaft are screwed onto the inner wall of the vertical end of the bracket (11-2) through bearings. Two striking gears (11-4) are respectively sleeved and fixed on the drive shaft and the driven shaft; and the two striking gears (11-4) on the left and right are meshed together. The striking frame (11-5) consists of two pieces, which are respectively sleeved and fixed on the drive shaft and the driven shaft, and the two striking frames (11-5) are symmetrically arranged on the left and right sides. When rainwater flows into the drain pipe (3), it is filtered by the filter screen in the first filter frame (6) to block impurities, and the rainwater is filtered a second time by rotating the filter frame (9-11) to improve the quality of rainwater collection and treatment. After a period of use, the impurities are pushed by the support and push assembly (9) and concentrated and clamped on one side of the fixed support block (8). The drive motor (9-9) drives the drive gear (9-8) to rotate, so that it meshes and drives the rotating gear (9-7) to rotate, so that the support ring (9-4) rotates around the center of its connection with the central platform (7), which drives the push support block (9-6) to rotate and drive the impurities. Water flowing from the drain pipe (3) into the guide tube (4) is filtered again through the filter screen in the second filter screen frame (10), and the water flow is accelerated by the tapping component (11) tapping the filter screen in the second filter screen frame (10); wherein, the cylinder (11-1) drives the bracket (11-2) downward into the guide tube (4) and starts the tapping motor (11-3), so that the two tapping gears (11-4) mesh and rotate, driving the tapping frame (11-5) to rotate, tapping the filter screen in the second filter screen frame (10), and accelerating the water flow.
2. The carbon-reducing intelligent rainwater harvesting and utilization device according to claim 1, characterized in that: The collection frame (1) is fixedly provided with a guide slope (12), and the guide slope (12) is a triangular structure. The front and rear sides of the guide slope (12) are respectively in contact with the inner walls of the front and rear sides of the collection frame (1), and the left and right sides of the guide slope (12) are respectively in contact with one side of the water trough.
3. The carbon-reducing intelligent rainwater harvesting and utilization device according to claim 1, characterized in that: A support frame (13) is bolted to one side of the second filter screen frame (10), and the support frame (13) is an inverted L-shaped structure. The vertical end of the support frame (13) is in contact with the inner ring wall of the guide tube (4), and the horizontal end of the support frame (13) is located on the upper side of the guide tube (4). The horizontal end of the support frame (13) is in contact with the connecting block (5). A moving motor (14) is provided on one side of the cylinder (11-1), and the moving motor (14) is fixedly located at the bottom of the collection frame (1). The moving motor (14) is connected to the power supply. A threaded rod (15) is fixedly provided on the bottom output shaft of the moving motor (14). A threaded tube (16) is screwed onto the threaded rod (15) through a threaded connection, and the bottom end of the threaded tube (16) is screwed onto the horizontal end of the support frame (13) through a bearing.
4. The carbon-reducing intelligent rainwater harvesting and utilization device according to claim 1, characterized in that: A fixing ring (17) is fixedly installed on the inner ring wall of the guide tube (4), and the second filter screen frame (10) is in contact with the fixing ring (17).
Citation Information
Patent Citations
Automatic rainwater collecting system for roof of building
CN111335399A
Fire-fighting water storage tank
CN212427358U