Water-saving apparatus for high-rise green building

By using the design of the pipe guide mechanism and the pool storage mechanism in the water-saving device of high-rise buildings, the problem of water accumulation when there is too much rainwater is solved, automatic diversion and reasonable discharge of excess water are achieved, and water saving efficiency is improved.

WO2025112084A1PCT designated stage expired Publication Date: 2025-06-05CECEP (HUZHOU) SCI & TECH CITY INVESTMENT & CONSTR CO LTD

Patent Information

Application Number
PCT/CN2023/136333
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-11-28
Filing Date
2023-12-05
Publication Date
2025-06-05

AI Technical Summary

Technical Problem

When there is a lot of rainwater in existing high-rise buildings, due to the limited capacity of water storage equipment, rainwater floods out of the water collection tank and causes water accumulation around it, and personnel need to intervene to assist in drainage, which is more troublesome and difficult.

Method used

The pipe guide mechanism and the pool storage mechanism are adopted. Through the diverting design of the water collection sub-pipe and branch pipe, the valve plate and gear system driven by the motor are used to realize the automatic diverting of rainwater and the reasonable discharge of excess water to avoid water accumulation.

Benefits of technology

Efficient rainwater collection and storage is achieved, manual interference is avoided, water conservation efficiency is improved, and water waste is reduced.

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Abstract

A water-saving apparatus for a high-rise green building, comprising a water collecting frame (1), wherein the bottom end of the middle of the water collecting frame (1) is connected to a water collecting main pipe (2); an assembly frame (3) penetrates through the middle of the water collecting main pipe (2); the tail end of the water collecting main pipe (2) is connected to a filtering frame (4); the lower portion of the filtering frame (4) is communicated with a connecting pipe (6); the tail end of the connecting pipe (6) is communicated with a water storage tank (7). During normal raining, water enters the water collecting main pipe (2) along the slope of the water collecting frame (1) and is filtered by a filter screen plug, the filtered water directly enters the filtering frame (4) along the water collecting main pipe (2) for secondary filtering and is finally guided into the water storage tank (7), and when the water in the water storage tank (7) is stored to a proper height, the water is diverted, so that water does not continue to flow to the water storage tank (7), but flows to pools (10).
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Description

A water-saving device for high-rise green buildings Technical Field

[0001] The utility model relates to the technical field of water saving for high-rise green buildings, in particular to a water saving device for high-rise green buildings. Background Art

[0002] Green building refers to a building that maximizes resource conservation throughout its entire life cycle, including energy conservation, land conservation, water conservation, and material conservation, protects the environment and reduces pollution, provides people with healthy, comfortable, and efficient use space, and coexists harmoniously with nature. In addition to saving and utilizing indoor water resources, high-rise green buildings also collect, filter, and reuse rainwater as part of their water-saving capabilities, and water-saving devices are required in this process.

[0003] Existing water-saving devices for high-rise buildings often use a water collection tank set up on the roof to collect rainwater. When there is a lot of rain, due to the limitation of the capacity of the water storage equipment, when the water storage equipment is full, the rainwater has no other discharge path and overflows the water collection tank, causing water accumulation in the surrounding area, which requires human intervention to assist in drainage. This process is relatively troublesome and difficult. Utility Model Content

[0004] The purpose of the present invention is to address the deficiencies of the existing technology and provide a water-saving device for high-rise green buildings. The device realizes efficient water-saving function through the cooperation of the branch guide mechanism and the sub-tank storage mechanism, and solves the problem that the existing water-saving devices for high-rise buildings often use a water collection tank set on the roof to collect rainwater. When there is a lot of rain, due to the limitation of the capacity of the water storage equipment, when the water storage equipment is full, the rainwater has no other discharge path and overflows the water collection tank, causing water accumulation in the surrounding area, thereby requiring personnel intervention to assist in drainage, which is a relatively troublesome and difficult process.

[0005] To achieve the above objectives, the present invention provides the following technical solutions:

[0006] The water-saving device for high-rise green buildings comprises a water collecting frame, wherein the middle bottom end of the water collecting frame is connected to a water collecting main pipe, and the middle of the water collecting main pipe is penetrated by an assembly frame, the end of the water collecting main pipe is connected to a filter frame, and the bottom of the filter frame is connected to a connecting pipe, the end of the connecting pipe is connected to a water storage tank, and a branch pipe guide mechanism is installed inside the filter frame and the water storage tank, the branch pipe guide mechanism comprises a water collecting sub-pipe, and the water collecting sub-pipe is connected to one side of the water collecting main pipe, and one side of the water collecting sub-pipe is connected to branch pipes on both sides, a sub-pool storage mechanism is installed at the connection between the water collecting sub-pipe and the branch pipes on both sides, and the water collecting sub-pipe is connected to the ends of the branch pipes on both sides in alignment with water pools, a water distribution component is installed inside the water collecting sub-pipe, the water collecting main pipe and the inner side of the assembly frame, the water distribution component comprises a motor 1, and one end of the motor 1 is electrically connected to a connecting harness 1, and the end of the connecting harness 1 is connected to a trigger component 1.

[0007] Furthermore, the water distribution assembly includes a rotating block, and the rotating blocks are respectively installed on the inner sides of the water collection main pipe and the water collection auxiliary pipe. A rotating rod is movable in the middle of the rotating block, and a valve plate is fixed at both ends of the rotating rod. A bevel gear is fixed on the periphery of one side of the rotating rod, and a bevel gear is meshed with a second bevel gear on one side of the bevel gear. A transmission rod is fixed in the middle of the bevel gear, and the output end of the transmission rod is connected to a motor. A fixing frame is fixed on the periphery of the motor, and the fixing frame is fixed to the inner bottom end of the assembly frame.

[0008] Furthermore, the valve plates 1 are distributed opposite to each other along the vertical center axis of the rotating rod 1, and the display angles of the two opposite valve plates 1 are different.

[0009] Furthermore, the trigger assembly includes a hollow guide frame, and the hollow guide frame is installed on one side of the interior of the water tank. A sliding float is sliding inside the hollow guide frame, and a connecting rod is connected above the sliding float. A connecting block frame is fixed to the top of the connecting rod, and the connecting block frame slides inside the sliding frame. A spring frame is fixed at the bottom ends of both sides of the connecting block frame, and a touch control block is installed above the interior of the sliding frame.

[0010] Furthermore, the sub-pool storage mechanism includes gears, and the gears are respectively installed above one side of the water collection auxiliary pipe and the two branch pipes. A rotating rod 2 is installed in the middle of the gear, and a valve plate 2 is fixed around the periphery of the rotating rod 2. One end of the rotating rod 2 is connected to a motor 2, one end of the motor 2 is electrically connected to a connecting harness 2, and the end of the connecting harness 2 is electrically connected to a trigger component 2.

[0011] Furthermore, the gears are respectively located above one side of the water collecting auxiliary pipe and the two branch pipes, and every two adjacent gears among the three gears are meshed and connected with each other.

[0012] Furthermore, the trigger component 2 includes a hollow guide frame 2, and the hollow guide frame 2 is installed inside one of the three water pools. A sliding float 2 slides inside the hollow guide frame 2, and a connecting rod 2 is fixed above the sliding float 2. A connecting block frame 2 is fixed to the other end of the connecting rod 2, and the connecting block frame 2 is inside the sliding frame 2. Spring frames 2 are fixed below both sides of the connecting block frame 2, and a touch control block 2 is installed above the inside of the sliding frame 2.

[0013] The beneficial effects of the present invention are:

[0014] (1) In the present invention, when it rains normally, the sewage on the roof will flow into the water collection pipe along the slope of the water collection frame. Since a filter plug is installed in the bottom middle collection groove of the water collection frame to reduce impurities in the water, the filtered water will flow directly into the filter frame along the water collection pipe for secondary filtration and finally be introduced into the water storage tank for subsequent personnel to wash hands, wash cars and other cleaning operations. When the water in the water storage tank is stored to a suitable height, the sliding float will rise due to the rise of water and guided by the hollow guide frame. When the water block is full, the connecting rod connected to the sliding float will rise synchronously. At this time, the connecting contact block frame connected to it will be charged with the spring frame until it is pressed on the touch control block. In this state, the touch control block will receive the pressure signal and transmit the start signal to the motor through the connecting harness.

[0015] (2) In the present invention, after the motor 1 in the starting state drives the bevel gear 1, bevel gear 2, rotating rod 1 and other components to perform joint transmission, the rotating rod 1 will cause the valve plates 1 at both ends of it to rotate at the same angle. Since the initial angles of the two valve plates 1 are different, when the valve plate 1 in the water collection main pipe is in a closed state, the valve plate 1 inside the other water collection auxiliary pipe is in an open state, thereby achieving a diversion effect, so that water will not continue to flow into the water storage tank, but will flow into the pool through the water collection auxiliary pipe, thereby achieving the purpose of water saving and rational use.

[0016] (3) In the present invention, the excess water will flow into the middle water pool in the opposite position through the water collecting auxiliary pipe. When one water pool cannot hold the water, the sliding float block 2 inside the middle water pool will also be affected by the buoyancy of the water and will follow the hollow guide frame 2 with the connecting contact block frame 2 through the energized pressure of the spring frame 2 to touch the touch control block 2. At this time, the touch control block 2 will receive the signal and transmit the start signal to the motor 2. When the motor 2 rotates the rotating rod 2 in the water collecting auxiliary pipe to close its valve plate 2, the gear fixed above the rotating rod 2 is engaged with the gears above the branch pipes on both sides. Therefore, when the water collecting auxiliary pipe is closed, the branch pipes on both sides will be opened by it, thereby discharging the excess water to the other two groups of water pools, thereby improving water utilization, reducing waste and improving water conservation. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a schematic diagram of the three-dimensional structure of the utility model;

[0018] Figure 2 is a schematic diagram of the utility model's branch guide mechanism;

[0019] Figure 3 is a schematic diagram of point A in Figure 2 of the present invention;

[0020] Figure 4 is a partial perspective view of the present invention;

[0021] Figure 5 is a schematic diagram of point B in Figure 4 of the present invention;

[0022] Figure 6 is a partial schematic diagram of the utility model sub-pool storage mechanism;

[0023] FIG7 is a detailed schematic diagram of the second trigger component of the present invention.

[0024] 1. Water collecting frame; 2. Water collecting main pipe; 3. Assembly frame; 4. Filter frame; 5. Branch guide mechanism; 501. Water collecting auxiliary pipe; 502. Water distribution assembly; 50201. Rotating block; 50202. Rotating rod 1; 50203. Valve plate 1; 50204. Bevel gear 1; 50205. Bevel gear 2; 50206. Transmission rod; 50207. Motor 1; 50208. Fixed frame; 503. Trigger assembly 1; 50301. Hollow guide frame 1; 50302. Sliding float 1; 50303. Connecting rod 1; 50304. Connecting contact frame 1; 50305. Sliding assembly Frame one; 50306, spring frame one; 50307, ​​trigger control block one; 504, connecting harness one; 6, connecting pipe; 7, water tank; 8, branch pipe; 9, sub-tank storage mechanism; 901, gear; 902, rotating rod two; 903, valve plate two; 904, motor two; 905, connecting harness two; 906, trigger assembly two; 90601, hollow guide frame two; 90602, sliding float two; 90603, connecting rod two; 90604, connecting block frame two; 90605, sliding frame two; 90606, spring frame two; 90607, trigger control block two; 10, water tank. DETAILED DESCRIPTION

[0025] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0026] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise" and the like to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the present invention.

[0027] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature specified as "first" or "second" may explicitly or implicitly include one or more of such features. In the description of this utility model, "plurality" means two or more, unless otherwise specifically defined. Example 1

[0028] As shown in Figures 1-3, this embodiment provides a water-saving device for high-rise green buildings, including a water collecting frame 1, the middle bottom end of the water collecting frame 1 is connected to a water collecting main pipe 2, and the middle of the water collecting main pipe 2 is penetrated by an assembly frame 3, the end of the water collecting main pipe 2 is connected to a filter frame 4, and the bottom of the filter frame 4 is connected to a connecting pipe 6, the end of the connecting pipe 6 is connected to a water storage tank 7, and the filter frame 4 and the water storage tank 7 are internally installed with a branch pipe guide mechanism 5, the branch pipe guide mechanism 5 includes a water collecting sub-pipe 501, and the water collecting sub-pipe 501 is connected to one side of the water collecting main pipe 2, and one side of the water collecting sub-pipe 501 is connected to branch pipes 8 on both sides, and a sub-pool storage mechanism 9 is installed at the connection between the water collecting sub-pipe 501 and the branch pipes 8 on both sides, and the ends of the water collecting sub-pipe 501 and the branch pipes 8 on both sides are aligned. The position is connected to a water pool 10, and a water distribution component 502 is installed inside the water collecting auxiliary pipe 501 and the water collecting main pipe 2 and the inner side of the assembly frame 3. The water distribution component 502 includes a rotating block 50201, and the rotating block 50201 is respectively installed on the inner side of the water collecting main pipe 2 and the water collecting auxiliary pipe 501. A rotating rod 1 50202 is movable in the middle of the rotating block 50201, and valve plates 1 50203 are fixed at both ends of the rotating rod 1 50202. A bevel gear 1 50204 is fixed on the periphery of one side of the rotating rod 1 50202, and a bevel gear 2 50205 is meshed with one side of the bevel gear 1 50204. A transmission rod 50206 is fixed in the middle of the bevel gear 2 50205, and the output end of the transmission rod 50206 is connected to the motor. 1, a fixing frame 50208 is fixed around the motor 1 50207, and the fixing frame 50208 is fixed to the inner bottom end of the assembly frame 3, the valve plates 1 50203 are oppositely distributed along the vertical center axis of the rotating rod 1 50202, and the display angles of the two opposite valve plates 1 50203 are different, the water distribution component 502 includes a motor 1 50207, and one end of the motor 1 50207 is electrically connected to a connecting harness 1 504, and the end of the connecting harness 1 504 is connected to a trigger component 1 503. When it rains normally, the sewage on the roof will follow the slope of the water collection frame 1 into the water collection main 2, and because a filter plug is installed in the bottom middle collection trough of the water collection frame 1 to reduce impurities in the water, the filtered water will follow the water collection main 2 directly enters the filter frame 4 for secondary filtration and is finally introduced into the water tank 7 to prepare for subsequent cleaning operations such as hand washing and car washing. When the water storage tank 7 has a suitable height, the sliding float 1 50302 thereof will rise due to the rising water through the guidance of the hollow guide frame 1 50301. When the water block is full, the connecting rod 1 50303 connected to the sliding float 1 50302 will rise synchronously. At this time, the connecting contact block frame 1 50304 connected thereto will charge the spring frame 1 50306 until it presses on the touch control block 1 50307. In this state, the touch control block 1 50307 receives the pressure touch signal and transmits the start signal to the motor 1 50207 through the connecting harness 1 504.

[0029] Among them, the trigger component 1 503 includes a hollow guide frame 1 50301, and the hollow guide frame 1 50301 is installed on one side of the interior of the water tank 7, a sliding float 1 50302 slides inside the hollow guide frame 1 50301, and the upper part of the sliding float 1 50302 is connected to a connecting rod 1 50303, the top of the connecting rod 1 50303 is fixed with a connecting block frame 1 50304, the connecting block frame 1 50304 slides inside the sliding mounting frame 1 50305, and spring frames 50306 are fixed to the bottom ends of both sides of the connecting block frame 1 50304, and a touch control block 1 50307 is installed on the upper part of the sliding mounting frame 1 50305 to start. After the motor 1 50207 in the dynamic state drives the bevel gear 1 50204, the bevel gear 2 50205, the rotating rod 1 50202 and other components to perform joint transmission, the rotating rod 1 50202 will cause the valve plates 1 50203 at both ends of it to rotate at the same angle. Since the initial angles of the two valve plates 50203 are different, when the valve plate 1 50203 in the water collection main pipe 2 is in a closed state, the valve plate 1 50203 inside the other side of the water collection auxiliary pipe 501 is in an open state, thereby achieving a diversion effect, so that the water will not continue to flow to the water storage tank 7, but will flow to the pool 10 through the water collection auxiliary pipe 501, thereby achieving the purpose of saving water and rational utilization. Example 2

[0030] As shown in Figures 4-7, the components that are the same or corresponding to those in Example 1 are marked with the corresponding reference numerals. For the sake of simplicity, only the differences from Example 1 are described below. The difference between Example 2 and Example 1 is that the sub-tank storage mechanism 9 includes a gear 901, and the gear 901 is respectively installed on one side of the water collecting auxiliary pipe 501 and the two branch pipes 8. The gears 901 are respectively located on one side of the water collecting auxiliary pipe 501 and the two branch pipes 8, and each adjacent two of the three gears 901 are meshed with each other. A rotating rod 902 is installed in the middle of the gear 901, and a valve plate 903 is fixed around the rotating rod 902. One end of the rotating rod 902 is connected to a motor 904, and one end of the motor 904 The second trigger assembly 906 is electrically connected to the second connecting harness 905, and the end of the second connecting harness 905 is electrically connected to the second trigger assembly 906. The second trigger assembly 906 includes a second hollow guide frame 90601, and the second hollow guide frame 90601 is installed inside one of the three pools 10. A second sliding float 90602 slides inside the second hollow guide frame 90601, and a connecting rod 90603 is fixed above the second sliding float 90602. The other end of the connecting rod 90603 is fixed to a second connecting block frame 90604, and the connecting block frame 90604 is fixed to the other end of the connecting rod 90603. The spring frame 2 90606 is fixed on the lower sides of the two sides of the connecting block frame 2 90604 in the interior of the sliding frame 2 90605, and the touch control block 2 90607 is installed on the upper part of the sliding frame 2 90605. Normally, the excess water will flow into the middle water pool 10 in the opposite position through the water collecting auxiliary pipe 501. When one water pool 10 is full, the sliding float 2 90602 inside the middle water pool 10 will also be affected by the buoyancy of the water and will follow the hollow guide frame 2 90601 with the connecting block frame 2 90604 through the energized pressure of the spring frame 2 90606. Touch the control block 2 90607. At this time, the touch control block 2 90607 receives the signal and transmits the start signal to the motor 2 904. When the motor 2 904 rotates the rotating rod 2 902 in the water collection auxiliary pipe 501 to close its valve plate 2 903, the gear 901 fixed above the rotating rod 2 902 is engaged with the gear 901 above the branch pipes 8 on both sides. Therefore, when the water collection auxiliary pipe 501 pipeline is closed, the branch pipes 8 on both sides will be opened by it, so as to discharge the excess water to the other two groups of water pools 10, thereby improving water utilization, reducing waste and improving water saving. Working steps

[0031] Step 1: During normal rain, the sewage on the roof will flow into the water collecting pipe 2 along the slope of the water collecting frame 1. Since a filter plug is installed in the bottom middle collection groove of the water collecting frame 1 to reduce impurities in the water, the filtered water will flow directly into the filter frame 4 along the water collecting pipe 2 for secondary filtration and finally be introduced into the water storage tank 7 for subsequent cleaning operations such as hand washing and car washing. When the water in the water storage tank 7 is stored to a suitable height, its sliding float 50302 will rise due to the rise of water through the guidance of the hollow guide frame 50301. When the water block is full, the connecting rod 50303 connected to the sliding float 50302 will rise synchronously. At this time, the connecting contact block frame 50304 connected to it will be charged with the spring frame 50306 until it is pressed on the touch control block 50307. In the state, the touch control block 1 50307 receives the pressure touch signal and transmits the start signal to the motor 1 50207 through the connecting harness 1 504. After the motor 1 50207 in the start state drives the bevel gear 1 50204, the bevel gear 2 50205, the rotating rod 1 50202 and other components to perform joint transmission, the rotating rod 1 50202 will drive the valve plates 1 50203 at both ends to rotate at the same angle. Since the initial angles of the two valve plates 50203 are different, when the valve plate 1 50203 in the water collection main pipe 2 is in a closed state, the valve plate 1 50203 inside the water collection auxiliary pipe 501 on the other side is in an open state, thereby achieving a diversion effect, so that the water will not continue to flow to the water storage tank 7, but will flow to the pool 10 through the water collection auxiliary pipe 501, thereby achieving the purpose of saving water and rational utilization.

[0032] Step 2: Normally, excess water will flow into the middle water pool 10 through the water collecting auxiliary pipe 501. When one water pool 10 is full, the sliding float 90602 inside the middle water pool 10 will also be affected by the buoyancy of the water and will follow the hollow guide frame 90601 and the connected contact frame 90604 through the energized pressure of the spring frame 90606 to touch the touch control block 90607. At this time, the touch control block 90607 will receive the signal and start the signal. The signal is transmitted to the second motor 904. When the second motor 904 drives the rotating rod 902 in the water collecting auxiliary pipe 501 to rotate, the valve plate 903 is closed. Since the gear 901 fixed above the rotating rod 902 is engaged with the gears 901 above the branch pipes 8 on both sides, when the water collecting auxiliary pipe 501 is closed, the branch pipes 8 on both sides will be opened, thereby draining the excess water to the other two groups of water pools 10, thereby improving water utilization, reducing waste and improving water saving.

[0033] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A water-saving device for high-rise green buildings, including a water collection rack, characterized in that, a water collection main pipe is connected to the bottom end of the middle part of the water collection rack, and an assembly rack penetrates through the middle part of the water collection main pipe. The end of the water collection main pipe is connected to a filtration rack, and a connecting pipe is communicated below the filtration rack. The end of the connecting pipe is communicated with a water storage tank. A branch pipe guiding mechanism is installed inside the filtration rack and the water storage tank. The branch pipe guiding mechanism includes a water collection sub-pipe, and the water collection sub-pipe is connected to one side of the water collection main pipe. Two sides of one side of the water collection sub-pipe are communicated with branch pipes. A sub-pool storage mechanism is installed at the communication part of the water collection sub-pipe and the two branch pipes on both sides, and the ends of the water collection sub-pipe and the two branch pipes on both sides are connected to a water pool in an aligned manner. A water distribution component is installed inside the water collection sub-pipe, the water collection main pipe and the inner side of the assembly rack. The water distribution component includes a motor 1, and one end of the motor 1 is electrically connected to a connection wire harness 1. The end of the connection wire harness 1 is connected to a trigger component 1.

2. The water-saving device for high-rise green buildings according to claim 1, characterized in that, the water distribution component includes a rotating block, and the rotating blocks are respectively installed on the inner edges of one side of the water collection main pipe and the water collection sub-pipe. A rotating rod 1 is movably installed in the middle of the rotating block, and valve plates 1 are fixed at both ends of the rotating rod 1. A bevel gear 1 is fixed on the periphery of one side of the rotating rod 1, and a bevel gear 2 is meshed with one side of the bevel gear 1. A transmission rod is fixed in the middle of the bevel gear 2, and the output end of the transmission rod is connected to a motor 1. A fixing frame is fixed on the periphery of the motor 1, and the fixing frame is fixed at the bottom end inside the assembly rack.

3. The water-saving device for high-rise green buildings according to claim 2, characterized in that, the valve plates 1 are distributed oppositely along the vertical central axis of the rotating rod 1, and the display angles of the two oppositely arranged valve plates 1 are different.

4. The water-saving device for high-rise green buildings according to claim 1, characterized in that, the trigger component 1 includes a hollow guiding frame 1, and the hollow guiding frame 1 is installed on one side inside the water storage tank. A sliding floating block 1 slides inside the hollow guiding frame 1, and a connecting rod 1 is connected above the sliding floating block 1. A connecting contact block frame 1 is fixed at the top end of the connecting rod 1. The connecting contact block frame 1 slides inside a sliding mounting frame 1. Spring frames 1 are fixed at the bottom ends of both sides of the connecting contact block frame 1. A touch control block 1 is installed above the sliding mounting frame 1.

5. The water-saving device for high-rise green buildings according to claim 1, characterized in that, the sub-pool storage mechanism includes gears, and the gears are respectively installed above one side of the water collection sub-pipe and the two branch pipes. A rotating rod 2 is installed in the middle of the gear, and valve plates 2 are fixed on the periphery of the rotating rod 2. One end of the rotating rod 2 is connected to a motor 2. One end of the motor 2 is electrically connected to a connection wire harness 2, and the end of the connection wire harness 2 is electrically connected to a trigger component 2.

6. The water-saving device for high-rise green buildings according to claim 5, characterized in that, the gears are respectively located above one side of the water collection sub-pipe and the two branch pipes, and every two adjacent gears among the three gears are meshed with each other.

7. A water-saving device for high-rise green buildings according to claim 1, characterized in that, the second trigger component includes a hollow guide frame II, and the hollow guide frame II is installed inside one of the three pools. A sliding float II slides inside the hollow guide frame II, and a connecting rod II is fixed above the sliding float II. The other end of the connecting rod II is fixed with a connecting contact block frame II, and the connecting contact block frame II is inside the sliding mounting frame II. Spring frames II are fixed below both sides of the connecting contact block frame II. A touch control block II is installed above the inside of the sliding mounting frame II.

Citation Information

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