An intelligent water-saving landscaping irrigation system

By designing an intelligent water-saving gardening irrigation system, the motor drives the nozzle storage and rotary nozzle to expand the range, the problems of sprinkler heads being easily damaged and the sprinkler irrigation range are solved, and the effect of sprinkler head protection and scope expansion is achieved.

CN116849103BActive Publication Date: 2025-07-18SUZHOU WULIN FLOWER & TREE CO LTD
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Patent Information

Application Number
CN202310931718.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-27
Publication Date
2025-07-18
Estimated Expiration
2043-07-27

AI Technical Summary

Technical Problem

In the existing irrigation system, the sprinkler heads are easily damaged or blocked when exposed, the maintenance frequency is high, and the sprinkler irrigation range is limited.

Method used

An intelligent water-saving landscaping irrigation system is designed, including a cylinder, filter plate, lifting mechanism, sprinkler irrigation mechanism and anti-blocking mechanism, and the sprinkler irrigation range is expanded by motor driving the sprinkler head and rotating the sprinkler head.

Benefits of technology

Effectively prevent damage and blockage of the nozzle, reduce maintenance frequency, increase the sprinkler irrigation range, and improve the sprinkler irrigation effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the field of landscaping irrigation, and in particular, to an intelligent water-saving landscaping irrigation system. In view of the problems that in the existing irrigation system during use, it is not convenient to store and protect the nozzles, which leads to the nozzles being exposed for a long time and being easily damaged or blocked, increasing the maintenance frequency, and during the sprinkler irrigation process, the sprinkler irrigation range is relatively limited, the following solution is now proposed. It includes a cylinder body, a first filter plate is installed at the top of the cylinder body, a second filter plate is slidably installed in the cylinder body, mounting holes are formed in the second filter plate, and connecting rods are fixedly installed in the mounting holes by welding. The present invention can, during use, facilitate the storage and protection of the nozzles, thereby avoiding damage or blockage of the nozzles due to long-term exposure, reducing the maintenance frequency, and during the sprinkler irrigation process, effectively increasing the sprinkler irrigation range, thus effectively ensuring the sprinkler irrigation effect. The structure is simple and the use is convenient.
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Description

Technical Field

[0001] The present invention relates to the technical field of landscaping irrigation, and particularly to an intelligent water-saving landscaping irrigation system. Background Art

[0002] Landscaping irrigation is to supplement the soil moisture of landscaping green spaces by artificial or mechanical methods in different irrigation forms to meet the water requirements of plants. Among them, sprinkler irrigation is an irrigation method that sprays pressurized water into the air through professional equipment and evenly sprinkles it on the soil surface for plants to absorb. It is suitable for most plants, with dense and uniform spraying, and is suitable for irrigation of various complex terrains and large-area green spaces.

[0003] A patent document with publication number CN113229112A discloses an intelligent water-saving landscaping irrigation system, which includes: an irrigation pile. A water inlet is opened at the top of the irrigation pile. A spraying unit is arranged circumferentially on the side of the irrigation pile. A water receiving plate is transversely arranged in the irrigation pile. A number of water seepage holes are evenly spaced on the water receiving plate. At the same time, an induction unit is arranged at the bottom end in the irrigation pile. And because the spraying range of the spraying unit covers adjacent irrigation piles, during the previous sprinkler irrigation or in case of rainfall, water is received through the water inlet, so as to press down the water receiving plate and compress the elastic member. The water then slowly seeps and leaks through the water seepage holes until it completely seeps away, so that when the elastic member pushes the water receiving plate to move up and reset, the induction unit is triggered again to trigger the spraying unit to spray again, thereby realizing the adaptive self-regulation of the irrigation amount intelligently. In addition, the received water is discharged through a drain pipe for easy collection and recycling.

[0004] However, during the use of the above patent document, it is not convenient to store and protect the nozzles. As a result, the nozzles are easily damaged or blocked when exposed for a long time, increasing the maintenance frequency. And during the sprinkler irrigation process, the sprinkler irrigation range is relatively limited. For this reason, we propose an intelligent water-saving landscaping irrigation system to solve the above problems. Summary of the Invention

[0005] The purpose of the present invention is to solve the disadvantages in the prior art that during the use of the irrigation system, it is not convenient to store and protect the nozzles, resulting in the nozzles being easily damaged or blocked when exposed for a long time, increasing the maintenance frequency, and during the sprinkler irrigation process, the sprinkler irrigation range is relatively limited, and to propose an intelligent water-saving landscaping irrigation system.

[0006] In order to achieve the above purpose, the present invention adopts the following technical solutions:

[0007] An intelligent water-saving landscaping irrigation system, comprising a cylinder body, a first filter plate is installed at the top of the cylinder body, a second filter plate is slidably installed in the cylinder body, mounting holes are formed in the second filter plate, connecting rods are fixedly installed in the mounting holes by welding, one end of the connecting rod is fixedly connected to the bottom of the first filter plate by bolts, a first empty slot is formed in the cylinder body, a lifting mechanism is arranged in the first empty slot, a mounting plate is fixedly installed on the outer side of the connecting rod by welding, two symmetric chutes are formed in the top of the mounting plate, L-shaped support plates are slidably installed in the two chutes respectively, a sprinkler irrigation mechanism is arranged on the two L-shaped support plates, an anti-blocking mechanism is arranged on the second filter plate, a connecting cylinder is fixedly installed on the outer side of the connecting rod by welding, a support column is fixedly installed in the connecting cylinder by welding, a second empty slot and a third empty slot are formed in the connecting rod, a fourth empty slot is formed in the support column, a storage mechanism is arranged in the second empty slot, two symmetric guide slots are formed in the inner wall of the cylinder body, guide blocks are slidably installed in the two guide slots respectively, the outer sides of the two guide blocks are fixedly connected to the outer side of the second filter plate by welding, a water inlet is formed in the outer side of the cylinder body, a second through hole is formed in the bottom inner wall of the second empty slot, the second through hole communicates with the threaded groove, a first rectangular rod is rotatably installed in the second through hole, a first bevel gear is fixedly installed at one end of the first rectangular rod by welding, the outer side of the first rectangular rod is slidably connected to the inner wall of the first rectangular slot, the sprinkler irrigation mechanism comprises two first water pipes, one ends of the two first water pipes are fixedly communicated with the outer side of the connecting cylinder by welding respectively, sleeves are slidably installed on the outer sides of the two first water pipes respectively, elbows are fixedly communicated with one ends of the two sleeves by welding respectively, fourth through holes are formed in the two L-shaped support plates respectively, second water pipes are rotatably installed in the two fourth through holes respectively, nozzles are fixedly communicated with one ends of the two second water pipes by welding respectively, the two second water pipes are rotatably installed in the two elbows respectively, eighth bevel gears are fixedly sleeved on the outer sides of the two second water pipes respectively, sixth through holes are formed in the support column, the bottom of the connecting cylinder and the mounting plate respectively, the sixth through holes communicate with the fourth empty slot, the same first rotating rod is rotatably installed in the three sixth through holes, a turbine and a third bevel gear are fixedly sleeved on the outer side of the first rotating rod by welding, eighth through holes are formed in the inner walls of both sides of the third empty slot, second rectangular rods are rotatably installed in the two eighth through holes respectively, sixth bevel gears are fixedly installed at one ends of the two second rectangular rods respectively, ninth through holes are formed in the two L-shaped support plates respectively, third rotating rods are rotatably installed in the two ninth through holes respectively, second rectangular slots are formed at one ends of the two third rotating rods respectively, the two second rectangular rods are slidably installed in the two second rectangular slots respectively, seventh bevel gears are fixedly installed at one ends of the two third rotating rods respectively, the two seventh bevel gears are meshed with the two eighth bevel gears respectively, a seventh through hole is formed in the inner wall of one side of the fourth empty slot, a second rotating rod is rotatably installed in the seventh through hole, a fourth bevel gear and a fifth bevel gear are fixedly installed at both ends of the second rotating rod by welding respectively, the fourth bevel gear is meshed with the third bevel gear, the fifth bevel gear is meshed with the two sixth bevel gears, the anti-blocking mechanism comprises a bearing,A bearing is fixedly sleeved outside a connecting rod through welding. A second sprocket is fixedly sleeved outside the bearing through welding. One end of a first rotating rod is fixedly installed with a first sprocket through welding. The same chain is meshed on the first sprocket and the second sprocket. Two symmetrical scrapers are fixedly connected to the bottom of the second sprocket through welding. Both scrapers cooperate with a second filter plate. A booster pump is fixedly installed on the inner wall of the bottom of the cylinder body. The output port of the booster pump is fixedly communicated with a hose. Fifth through holes are respectively opened at the top of the second filter plate and the connecting cylinder. The same third water pipe is rotatably installed in the two fifth through holes. One end of the third water pipe is fixedly communicated with the other end of the hose. The receiving mechanism includes a bidirectional lead screw. Third through holes are respectively opened on both inner walls of the second empty groove. The two third through holes are respectively communicated with the two chutes. Thread holes are respectively opened on the two L-shaped support plates. The bidirectional lead screw is threadedly installed in the two thread holes. A second bevel gear is fixedly sleeved outside the bidirectional lead screw through welding. The second bevel gear is meshed with the first bevel gear. The lifting mechanism includes a motor. The motor is fixedly installed on the inner wall of the bottom of the first empty groove. A first through hole is opened on the inner wall of the top of the first empty groove. A threaded groove is opened at the bottom of the connecting rod. A screw rod is threadedly installed in the threaded groove. One end of the screw rod is fixedly connected with the output shaft of the motor. A first rectangular groove is opened at the other end of the screw rod.

[0008] In the present invention, the beneficial effects of the intelligent water-saving landscaping irrigation system are as follows:

[0009] 1. In this solution, when the motor is started, the motor drives the screw rod to rotate. The screw rod drives the connecting rod to move vertically. At the same time, the screw rod drives the first rectangular rod to rotate. The first bevel gear drives the second bevel gear to rotate. The bidirectional lead screw drives the two L-shaped support plates to move horizontally towards each other, so as to store and protect the two nozzles, avoiding damage or blockage of the nozzles due to long-term exposure.

[0010] 2. In this solution, when the booster pump is started, the booster pump can transport the water in the cylinder body to the two nozzles through the hose, the third water pipe, the connecting cylinder, the two first water pipes, the two sleeves, the two elbows and the two second water pipes, so that the two nozzles can spray and irrigate the landscaping.

[0011] 3. In this solution, when the water flow passes through the connecting cylinder, the flowing water pressure drives the turbine to rotate. The first rotating rod drives the third bevel gear to rotate. The third bevel gear drives the fourth bevel gear to rotate. The fifth bevel gear drives the two sixth bevel gears to rotate. The two second rectangular rods respectively drive the two third rotating rods to rotate. The two seventh bevel gears respectively drive the two eighth bevel gears to rotate. The two second water pipes respectively drive the two nozzles to rotate, so as to effectively increase the irrigation range of the two nozzles and effectively ensure the irrigation effect.

[0012] During the use of the present invention, it is convenient to store and protect the nozzle, which can avoid damage or blockage of the nozzle caused by long-term exposure, reduce the maintenance frequency, and effectively increase the irrigation range during the sprinkler irrigation process, thus effectively ensuring the sprinkler irrigation effect. The structure is simple and easy to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 FIG. is a three-dimensional structural schematic diagram of an intelligent water-saving landscaping irrigation system proposed by the present invention;

[0014] Figure 2 FIG. is a front-view structural schematic diagram of an intelligent water-saving landscaping irrigation system proposed by the present invention;

[0015] Figure 3 FIG. is a side-view structural schematic diagram of an intelligent water-saving landscaping irrigation system proposed by the present invention;

[0016] Figure 4 An intelligent water-saving landscaping irrigation system proposed by the present invention Figure 2 is a magnified structural schematic diagram of part A in;

[0017] Figure 5 An intelligent water-saving landscaping irrigation system proposed by the present invention Figure 2 is a magnified structural schematic diagram of part B in;

[0018] Figure 6 An intelligent water-saving landscaping irrigation system proposed by the present invention Figure 2 is a magnified structural schematic diagram of part C in;

[0019] Figure 7 An intelligent water-saving landscaping irrigation system proposed by the present invention Figure 3 is a magnified structural schematic diagram of part D in;

[0020] Figure 8 An intelligent water-saving landscaping irrigation system proposed by the present invention Figure 3 is a magnified structural schematic diagram of part E in.

[0021] In the figure: 1, cylinder body; 2, first filter plate; 3, second filter plate; 4, connecting rod; 5, guiding groove; 6, guiding block; 7, mounting plate; 8, sliding groove; 9, first empty groove; 10, motor; 11, screw rod; 12, booster pump; 13, hose; 14, third water pipe; 15, connecting cylinder; 16, L-shaped support plate; 17, second water pipe; 18, nozzle; 19, elbow; 20, sleeve; 21, first water pipe; 22, first rectangular rod; 23, second empty groove; 24, first bevel gear; 25, second bevel gear; 26, bidirectional lead screw; 27, support column; 28, first rotating rod; 29, turbine; 30, fourth empty groove; 31, third bevel gear; 32, fourth bevel gear; 33, second rotating rod; 34, fifth bevel gear; 35, sixth bevel gear; 36, third empty groove; 37, second rectangular rod; 38, third rotating rod; 39, seventh bevel gear; 40, eighth bevel gear; 41, first sprocket; 42, chain; 43, second sprocket; 44, bearing. Embodiment

[0022] 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. Example

[0023] Refer to Figures 1-3, An intelligent water-saving landscaping irrigation system, including a cylinder body 1, a first filter plate 2 is installed at the top of the cylinder body 1, a second filter plate 3 is slidably installed in the cylinder body 1, mounting holes are formed in the second filter plate 3, a connecting rod 4 is fixedly installed in the mounting holes by welding, one end of the connecting rod 4 is fixedly connected to the bottom of the first filter plate 2 by bolts, a first empty slot 9 is formed in the cylinder body 1, a lifting mechanism is arranged in the first empty slot 9, a mounting plate 7 is fixedly installed on the outer side of the connecting rod 4 by welding, two symmetric chutes 8 are formed at the top of the mounting plate 7, two L-shaped support plates 16 are slidably installed in the two chutes 8 respectively, a sprinkler irrigation mechanism is arranged on the two L-shaped support plates 16, an anti-blocking mechanism is arranged on the second filter plate 3, a connecting cylinder 15 is fixedly installed on the outer side of the connecting rod 4 by welding, a support column 27 is fixedly installed in the connecting cylinder 15 by welding, a second empty slot 23 and a third empty slot 36 are formed in the connecting rod 4, a fourth empty slot 30 is formed in the support column 27, a storage mechanism is arranged in the second empty slot 23, two symmetric guide slots 5 are formed in the inner wall of the cylinder body 1, two guide blocks 6 are slidably installed in the two guide slots 5 respectively, the outer sides of the two guide blocks 6 are fixedly connected to the outer side of the second filter plate 3 by welding, a water inlet is formed in the outer side of the cylinder body 1, a booster pump 12 is fixedly installed on the bottom inner wall of the cylinder body 1, the output port of the booster pump 12 is fixedly communicated with a hose 13, fifth through holes are formed in the top of the second filter plate 3 and the connecting cylinder 15 respectively, the same third water pipe 14 is rotatably installed in the two fifth through holes, one end of the third water pipe 14 is fixedly communicated with the other end of the hose 13, the lifting mechanism includes a motor 10, the motor 10 is fixedly installed on the bottom inner wall of the first empty slot 9, a first through hole is formed in the top inner wall of the first empty slot 9, a threaded groove is formed in the bottom of the connecting rod 4, a screw rod 11 is threadedly installed in the threaded groove, one end of the screw rod 11 is fixedly connected to the output shaft of the motor 10, a first rectangular slot is formed in the other end of the screw rod 11, when the motor 10 is started, the screw rod 11 can drive the connecting rod 4 to move vertically.

[0024] Refer to Figure 4 , The sprinkler irrigation mechanism includes two first water pipes 21, one ends of the two first water pipes 21 are fixedly communicated with the outer side of the connecting cylinder 15 by welding respectively, sleeves 20 are slidably installed on the outer sides of the two first water pipes 21 respectively, elbows 19 are fixedly communicated with one ends of the two sleeves 20 by welding respectively, fourth through holes are formed in the two L-shaped support plates 16 respectively, second water pipes 17 are rotatably installed in the two fourth through holes respectively, nozzles 18 are fixedly communicated with one ends of the two second water pipes 17 by welding respectively, when the two L-shaped support plates 16 move horizontally, the two second water pipes 17 can drive the two nozzles 18 to move horizontally respectively, the two second water pipes 17 are rotatably installed in the two elbows 19 respectively, and eighth bevel gears 40 are fixedly sleeved on the outer sides of the two second water pipes 17 respectively.

[0025] Refer to Figure 5 and Figure 8, the storage mechanism includes a bidirectional lead screw 26. Third through holes are provided in the inner walls on both sides of the second empty slot 23, and the two third through holes communicate with the two sliding slots 8 respectively. Threaded holes are provided on both L-shaped support plates 16, and the bidirectional lead screw 26 is threadedly installed in the two threaded holes. A second bevel gear 25 is fixedly sleeved on the outer side of the bidirectional lead screw 26 by welding, and the second bevel gear 25 meshes with the first bevel gear 24. A second through hole is provided in the bottom inner wall of the second empty slot 23, and the second through hole communicates with the threaded groove. A first rectangular rod 22 is rotatably installed in the second through hole. One end of the first rectangular rod 22 is fixedly installed with a first bevel gear 24 by welding. The outer side of the first rectangular rod 22 is slidably connected to the inner wall of the first rectangular slot. The anti-blocking mechanism includes a bearing 44. The bearing 44 is fixedly sleeved on the outer side of the connecting rod 4 by welding. A second sprocket 43 is fixedly sleeved on the outer side of the bearing 44 by welding. One end of the first rotating rod 28 is fixedly installed with a first sprocket 41 by welding. The first sprocket 41 and the second sprocket 43 are meshed with the same chain 42. When the first rotating rod 28 rotates, the first sprocket 41 can drive the second sprocket 43 to rotate through the chain 42. Two symmetrically arranged scraping plates are fixedly connected to the bottom of the second sprocket 43 by welding, and both scraping plates cooperate with the second filter plate 3.

[0026] Referring to Figure 6 , eighth through holes are provided in the inner walls on both sides of the third empty slot 36. Second rectangular rods 37 are rotatably installed in the two eighth through holes. Sixth bevel gears 35 are fixedly installed at one ends of the two second rectangular rods 37. Ninth through holes are provided on both L-shaped support plates 16. Third rotating rods 38 are rotatably installed in the two ninth through holes. Second rectangular slots are provided at one ends of the two third rotating rods 38. The two second rectangular rods 37 are respectively slidably installed in the two second rectangular slots. Seventh bevel gears 39 are fixedly installed at one ends of the two third rotating rods 38 by welding. The two seventh bevel gears 39 respectively mesh with the two eighth bevel gears 40. When the two third rotating rods 38 rotate, the two seventh bevel gears 39 can respectively drive the two eighth bevel gears 40 to rotate.

[0027] Referring to Figure 7 , sixth through holes are provided on the pillar 27, the bottom of the connecting cylinder 15 and the mounting plate 7, and the sixth through holes communicate with the fourth empty slot 30. The same first rotating rod 28 is rotatably installed in the three sixth through holes. A turbine 29 and a third bevel gear 31 are fixedly sleeved on the outer side of the first rotating rod 28 by welding. A seventh through hole is provided in the inner wall on one side of the fourth empty slot 30. A second rotating rod 33 is rotatably installed in the seventh through hole. A fourth bevel gear 32 and a fifth bevel gear 34 are fixedly installed at both ends of the second rotating rod 33 by welding. The fourth bevel gear 32 meshes with the third bevel gear 31. When the first rotating rod 28 rotates, the third bevel gear 31 can drive the fourth bevel gear 32 to rotate. The fifth bevel gear 34 meshes with the two sixth bevel gears 35.

[0028] In this embodiment, during use, the cylinder body 1 is embedded in the ground of the landscaping. Through the arrangement of the first filter plate 2 and the second filter plate 3, when the cylinder body 1 collects rainwater, the first filter plate 2 and the second filter plate 3 can intercept impurities in the rainwater. When it is necessary to irrigate the landscaping, the motor 10 is started. The motor 10 drives the screw rod 11 to rotate, and the screw rod 11 drives the connecting rod 4 to move vertically upward. The connecting rod 4 drives the second filter plate 3, the first filter plate 2 and the mounting plate 7 to move vertically upward. At the same time, through the cooperation of the first rectangular rod 22 and the first rectangular groove, the screw rod 11 can drive the first rectangular rod 22 to rotate. The first rectangular rod 22 drives the first bevel gear 24 to rotate, the first bevel gear 24 drives the second bevel gear 25 to rotate, the second bevel gear 25 drives the bidirectional screw rod 26 to rotate, and the bidirectional screw rod 26 drives the two L-shaped support plates 16 to move away from each other. The two L-shaped support plates 16 respectively drive the two second water pipes 17 and the two spray heads 18 to move away from each other, so that the two spray heads 18 can be unfolded. Then the booster pump 12 is started, and the booster pump 12 can transport the water in the cylinder body 1 to the two spray heads 18 through the hose 13, the third water pipe 14, the connecting cylinder 15, the two first water pipes 21, the two sleeves 20, the two elbows 19 and the two second water pipes 17. Thus, the two spray heads 18 can irrigate the landscaping. At the same time, when the water flow passes through the connecting cylinder 15, the water flow pressure drives the turbine 29 to rotate. The turbine 29 drives the first rotating rod 28 to rotate, the first rotating rod 28 drives the third bevel gear 31 to rotate, the third bevel gear 31 drives the fourth bevel gear 32 to rotate, the fourth bevel gear 32 drives the second rotating rod 33 to rotate, the second rotating rod 33 drives the fifth bevel gear 34 to rotate, the fifth bevel gear 34 drives the two sixth bevel gears 35 to rotate, and the two sixth bevel gears 35 respectively drive the two second rectangular rods 37 to rotate. Through the cooperation of the two second rectangular rods 37 and the two second rectangular grooves respectively, the two second rectangular rods 37 respectively drive the two third rotating rods 38 to rotate, the two third rotating rods 38 respectively drive the two seventh bevel gears 39 to rotate, the two seventh bevel gears 39 respectively drive the two eighth bevel gears 40 to rotate, the two eighth bevel gears 40 respectively drive the two second water pipes 17 to rotate, and the two second water pipes 17 respectively drive the two spray heads 18 to rotate. The centrifugal force generated by the rotation of the two spray heads 18 can effectively increase the spraying range, thus effectively improving the irrigation effect. At the same time, the first rotating rod 28 drives the first sprocket 41 to rotate, the first sprocket 41 drives the second sprocket 43 to rotate through the chain 42, and the second sprocket 43 drives the two scraping plates to rotate. Thus, the two scraping plates can clean the impurities intercepted by the second filter plate 3, preventing the second filter plate 3 from being blocked. When the irrigation is over, the motor 10 is reversed. The motor 10 drives the screw rod 11 to rotate, and the screw rod 11 drives the connecting rod 4 to move vertically downward. The connecting rod 4 drives the second filter plate 3, the first filter plate 2 and the mounting plate 7 to move vertically downward. At the same time, through the cooperation of the first rectangular rod 22 and the first rectangular groove, the screw rod 11 can drive the first rectangular rod 22 to rotate.The first rectangular rod 22 drives the first bevel gear 24 to rotate. The first bevel gear 24 drives the second bevel gear 25 to rotate. The second bevel gear 25 drives the bidirectional lead screw 26 to rotate. The bidirectional lead screw 26 drives the two L-shaped support plates 16 to approach each other. The two L-shaped support plates 16 respectively drive the two second water pipes 17 and the two spray heads 18 to approach each other, so as to store the two spray heads 18. The spray heads 18 are damaged or blocked due to long-term exposure, effectively reducing the maintenance frequency. Embodiment

[0029] The difference between this embodiment and the first embodiment is that: two symmetric sealing baffles are fixedly installed on the outer side of the connecting rod 4. The two sealing baffles are respectively matched with the two spray heads 18. When the two spray heads 18 are stored in the cylinder body 1, the two sealing baffles respectively shield and protect the two spray heads 18, avoiding the small impurities in the rainwater from blocking the two spray heads 18 during the process of collecting rainwater.

[0030] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, makes an equivalent substitution or change, and should be covered by the protection scope of the present invention.

Claims

1. An intelligent water-saving landscaping irrigation system, including a cylinder body (1), characterized in that, A first filter plate (2) is installed at the top of the cylinder body (1). A second filter plate (3) is slidably installed in the cylinder body (1). Mounting holes are formed in the second filter plate (3), and a connecting rod (4) is fixedly installed in the mounting holes. One end of the connecting rod (4) is fixedly connected to the bottom of the first filter plate (2). A first empty slot (9) is formed in the cylinder body (1), and a lifting mechanism is arranged in the first empty slot (9). A mounting plate (7) is fixedly installed on the outer side of the connecting rod (4). Two symmetrical sliding slots (8) are formed in the top of the mounting plate (7). L-shaped support plates (16) are slidably installed in both of the two sliding slots (8). A sprinkler mechanism is arranged on the two L-shaped support plates (16). An anti-blocking mechanism is arranged on the second filter plate (3). A connecting cylinder (15) is fixedly installed on the outer side of the connecting rod (4). A support column (27) is fixedly installed in the connecting cylinder (15). A second empty slot (23) and a third empty slot (36) are formed in the connecting rod (4). A fourth empty slot (30) is formed in the support column (27). A storage mechanism is arranged in the second empty slot (23). Two symmetrical guiding slots (5) are formed in the inner wall of the cylinder body (1). Guiding blocks (6) are slidably installed in both of the two guiding slots (5). The outer sides of the two guiding blocks (6) are fixedly connected to the outer side of the second filter plate (3). A water inlet is formed in the outer side of the cylinder body (1). The lifting mechanism includes a motor (10). The motor (10) is fixedly installed on the bottom inner wall of the first empty slot (9). A first through hole is formed in the top inner wall of the first empty slot (9). A threaded groove is formed in the bottom of the connecting rod (4). A screw rod (11) is threadedly installed in the threaded groove. One end of the screw rod (11) is fixedly connected to the output shaft of the motor (10). A first rectangular slot is formed in the other end of the screw rod (11). A second through hole is formed in the bottom inner wall of the second empty slot (23). The second through hole communicates with the threaded groove. A first rectangular rod (22) is rotatably installed in the second through hole. A first bevel gear (24) is fixedly installed at one end of the first rectangular rod (22). The outer side of the first rectangular rod (22) is slidably connected to the inner wall of the first rectangular slot. The storage mechanism includes a bidirectional lead screw (26). Third through holes are formed in both side inner walls of the second empty slot (23). The two third through holes communicate with the two sliding slots (8) respectively. Threaded holes are formed in both of the two L-shaped support plates (16). The bidirectional lead screw (26) is threadedly installed in the two threaded holes. A second bevel gear (25) is fixedly sleeved on the outer side of the bidirectional lead screw (26). The second bevel gear (25) meshes with the first bevel gear (24). The sprinkler mechanism includes two first water pipes (21). One end of each of the two first water pipes (21) is fixedly communicated with the outer side of the connecting cylinder (15). Sleeves (20) are slidably installed on the outer sides of the two first water pipes (21). One end of each of the two sleeves (20) is fixedly communicated with an elbow (19). Fourth through holes are formed in both of the two L-shaped support plates (16). Second water pipes (17) are rotatably installed in the two fourth through holes. One end of each of the two second water pipes (17) is fixedly communicated with a spray head (18).Two second water pipes (17) are respectively rotatably installed in two elbows (19), and eighth bevel gears (40) are fixedly sleeved on the outer sides of the two second water pipes (17).

2. The intelligent water-saving landscaping irrigation system according to claim 1, characterized in that, A booster pump (12) is fixedly installed on the inner wall of the bottom of the cylinder body (1). The output port of the booster pump (12) is fixedly communicated with a hose (13). The second filter plate (3) and the top of the connecting cylinder (15) are both provided with fifth through holes. The same third water pipe (14) is rotatably installed in the two fifth through holes. One end of the third water pipe (14) is fixedly communicated with the other end of the hose (13).

3. An intelligent water-saving landscaping irrigation system according to claim 2, characterized in that, Sixth through holes are opened on the pillar (27), the bottom of the connecting cylinder (15) and the mounting plate (7). The sixth through holes communicate with the fourth empty groove (30). The same first rotating rod (28) is rotatably installed in the three sixth through holes. A turbine (29) and a third bevel gear (31) are fixedly sleeved on the outer side of the first rotating rod (28).

4. An intelligent water-saving landscaping irrigation system according to claim 3, characterized in that, The anti-blocking mechanism includes a bearing (44). The bearing (44) is fixedly sleeved on the outer side of the connecting rod (4). A second sprocket (43) is fixedly sleeved on the outer side of the bearing (44). A first sprocket (41) is fixedly installed at one end of the first rotating rod (28). The same chain (42) is meshed on the first sprocket (41) and the second sprocket (43). Two symmetrical scrapers are fixedly connected to the bottom of the second sprocket (43). The two scrapers are both matched with the second filter plate (3).

5. An intelligent water-saving landscaping irrigation system according to claim 4, characterized in that, Eighth through holes are opened on the inner walls of both sides of the third empty groove (36). The same second rectangular rod (37) is rotatably installed in the two eighth through holes. Sixth bevel gears (35) are fixedly installed at one ends of the two second rectangular rods (37). Ninth through holes are opened on two L-shaped support plates (16). The same third rotating rod (38) is rotatably installed in the two ninth through holes. Second rectangular grooves are opened at one ends of the two third rotating rods (38). The two second rectangular rods (37) are respectively slidably installed in the two second rectangular grooves. Seventh bevel gears (39) are fixedly installed at one ends of the two third rotating rods (38). The two seventh bevel gears (39) are respectively meshed with the two eighth bevel gears (40).

6. An intelligent water-saving landscaping irrigation system according to claim 5, characterized in that, A seventh through hole is opened on the inner wall of one side of the fourth empty groove (30). A second rotating rod (33) is rotatably installed in the seventh through hole. A fourth bevel gear (32) and a fifth bevel gear (34) are respectively fixedly installed at both ends of the second rotating rod (33). The fourth bevel gear (32) is meshed with the third bevel gear (31). The fifth bevel gear (34) is meshed with the two sixth bevel gears (35).

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