Intelligent water source management equipment

Through the design of smart water source management equipment, stepper motors and electric push rods are used to achieve water quality sampling and automated inspection of multi-point water levels, solving the problem that existing equipment needs to be operated multiple times and improving the efficiency and convenience of reservoir water source management.

CN223139086UActive Publication Date: 2025-07-22TIANJIN BAIZE TECH CO LTD
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Patent Information

Application Number
CN202422298309.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-07-22
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

The existing water quality sampling equipment can only collect one liquid level of water at a time, and it requires multiple operations, which is relatively inconvenient.

Method used

A smart water source management equipment is designed to drive the sliding column to drop to different water level lines through a stepper motor, achieving simultaneous sampling of multi-point water levels, and controlling the water inlet through an electric push rod and a sealing block, and combining with the detection mechanism to realize automated water quality detection.

Benefits of technology

It realizes simultaneous sampling of multi-point water levels, simplifies the operation process, improves the efficiency and convenience of reservoir water source management, and can monitor and deal with water quality problems in real time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of intelligent water sources, in particular to intelligent water source management equipment which comprises a mounting frame, a floating plate, a mounting box, a guide sleeve, a sliding column and the like, the floating plate is slidably connected in the mounting frame, the top of the floating plate is connected with the mounting box, the guide sleeve is connected to the mounting box, and the sliding column is slidably connected in the guide sleeve. The floating plate is provided with an opening for the sliding column to penetrate through, three collecting cavities are evenly formed in the sliding column at intervals, three water inlets are evenly formed in the sliding column at intervals, and the water inlets are communicated with the collecting cavities. The output shaft of the stepping motor can drive the sliding column to move downwards, the sliding column extends into water, the three water inlets extend to three water lines respectively, water at different water levels is sampled at the same time, operation is simpler, and water sources of a reservoir can be managed conveniently.
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Description

Technical Field

[0001] The utility model relates to the technical field of intelligent water sources, in particular to an intelligent water source management device. Background Art

[0002] Intelligent water source management refers to the use of modern information technology to achieve efficient management of water resources, helping water resource management departments to achieve real-time monitoring, automatic control, data analysis and intelligent decision-making of water sources. Reservoirs are important water sources and key management objects.

[0003] When managing water sources, it is often necessary to conduct water quality detection to judge the quality of water, so as to timely understand and treat polluted water. The water quality in the reservoir may vary at different liquid levels, so it is necessary to collect water at different liquid levels. However, the current sampling equipment collects water at one liquid level at a time and requires multiple operations, which is rather inconvenient. Summary of the Utility Model

[0004] In order to overcome the drawback that the previous sampling equipment collects water at one liquid level at a time and requires multiple operations, which is rather inconvenient, the utility model provides an intelligent water source management device.

[0005] The technical implementation scheme of the utility model is: an intelligent water source management device, which includes an installation frame, a floating plate, an installation box, a guide sleeve, a sliding column, a first electric push rod, a sliding plate, a blocking block, a lifting mechanism and a detection mechanism. A floating plate is slidably connected in the installation frame, an installation box is connected to the top of the floating plate, a guide sleeve is connected to the installation box, a sliding column is slidably connected in the guide sleeve, an opening for the sliding column to pass through is formed on the floating plate, three collecting cavities are evenly spaced in the sliding column, three water inlets are evenly spaced on the sliding column, the water inlets are communicated with the collecting cavities, a first electric push rod is installed on the sliding column, a sliding plate is slidably connected to the sliding column, the telescopic rod of the first electric push rod is connected to the sliding plate, three blocking blocks for blocking the water inlets are evenly spaced and connected to the sliding plate, a lifting mechanism for controlling the rising and falling of the sliding column is arranged on the installation box, and a detection mechanism for detecting water quality is arranged on the installation box.

[0006] Optionally, the lifting mechanism includes a rack, a stepping motor and a gear. A rack is connected to the sliding column, a notch for the rack to move is formed on the guide sleeve, a stepping motor is installed in the installation box, a gear is connected to the output shaft of the stepping motor, and the gear meshes with the rack.

[0007] Optionally, the detection mechanism includes a connecting frame, a second electric push rod, a moving plate, a collection box, a drain pipe, a solenoid valve, a water quality detector, and a controller. The top of the installation box is connected with a connecting frame, on which a second electric push rod is installed. The telescopic rod of the second electric push rod is connected with a moving plate, and three collection boxes are evenly spaced and connected to the moving plate. The bottom of each collection box is communicated with a drain pipe, and a solenoid valve is installed on each drain pipe. A water quality detector is installed in each collection box, and a controller is installed in the installation box. The water quality detector is electrically connected to the controller.

[0008] Optionally, it further includes guide rods. Three pairs of guide rods for guiding the collection boxes are evenly spaced and connected to the moving plate, and the three groups of guide rods are respectively slidably connected to the three collection boxes.

[0009] Optionally, it further includes scraping blocks. Two scraping blocks for scraping the garbage on the rack are connected to the bottom of the guide sleeve.

[0010] Optionally, a notch for the first electric push rod, the sliding plate, and the plugging block to pass through is provided on the right side inside the guide sleeve.

[0011] The present utility model has the following advantages: The output shaft of the stepping motor of the present utility model can drive the sliding column to move downward, insert the sliding column into the water, and the three water inlets respectively extend to three water level lines, sampling the water at different water levels at the same time, with simpler operation and more convenient management of the water source of the reservoir. Description of the Drawings

[0012] Figure 1 It is a three-dimensional structural schematic diagram of the present utility model.

[0013] Figure 2 It is a cross-sectional view of the installation box of the present utility model.

[0014] Figure 3 It is a cross-sectional view of the sliding column of the present utility model.

[0015] Figure 4 It is a three-dimensional structural schematic diagram of the first electric push rod, the sliding plate, the plugging block, and the notch of the present utility model.

[0016] Figure 5 It is a three-dimensional structural schematic diagram of the second electric push rod, the moving plate, the collection box, and the guide rod of the present utility model.

[0017] Figure 6 It is a three-dimensional structural schematic diagram of the collection box, the drain pipe, the solenoid valve, and the water quality detector of the present utility model.

[0018] Names of the reference numerals in the figure: 1 - mounting frame, 2 - floating plate, 3 - mounting box, 4 - guide sleeve, 5 - sliding column, 6 - collection chamber, 7 - water inlet, 8 - first electric push rod, 9 - sliding plate, 10 - blocking block, 11 - rack, 12 - stepping motor, 13 - gear, 14 - connecting frame, 15 - second electric push rod, 16 - moving plate, 17 - collection box, 171 - drain pipe, 172 - solenoid valve, 18 - water quality detector, 19 - controller, 20 - guide rod, 21 - scraping block, 22 - notch. Detailed implementation manners

[0019] The above solution will be further described below in conjunction with specific embodiments. It should be understood that these embodiments are for illustrating the present application and not for limiting the scope of the present application. The implementation conditions adopted in the embodiments can be further adjusted according to the conditions of specific manufacturers, and the implementation conditions not specified are usually the conditions in conventional experiments.

[0020] As Figures 1-6 shown, a smart water source management device includes a mounting frame 1, a floating plate 2, a mounting box 3, a guide sleeve 4, a sliding column 5, a first electric push rod 8, a sliding plate 9, a blocking block 10, a lifting mechanism and a detection mechanism. A floating plate 2 is slidably connected inside the mounting frame 1. The top of the floating plate 2 is connected with a mounting box 3 by bolts. A guide sleeve 4 is connected to the middle of the mounting box 3. A sliding column 5 is slidably connected inside the guide sleeve 4. An opening for the sliding column 5 to pass through is formed in the middle of the floating plate 2. Three collection chambers 6 are evenly spaced inside the sliding column 5. Three water inlets 7 are evenly spaced on the right side of the sliding column 5. The water inlets 7 communicate with the collection chambers 6. The upper part on the right side of the sliding column 5 is installed with a first electric push rod 8 by bolts. A sliding plate 9 is slidably connected to the right side of the sliding column 5. The lower end of the telescopic rod of the first electric push rod 8 is connected to the top of the sliding plate 9. Three blocking blocks 10 are evenly spaced and connected to the sliding plate 9. A notch 22 for the first electric push rod 8, the sliding plate 9 and the blocking block 10 to pass through is provided on the right side inside the guide sleeve 4. A lifting mechanism for controlling the rising and falling of the sliding column 5 is provided on the mounting box 3, and a detection mechanism for detecting water quality is provided on the mounting box 3.

[0021] As Figure 2 shown, the lifting mechanism includes a rack 11, a stepping motor 12 and a gear 13. A rack 11 is connected to the left side of the sliding column 5. A notch for the rack 11 to move is formed on the left side of the guide sleeve 4. The stepping motor 12 is installed at the bottom left inside the mounting box 3 by bolts. A gear 13 is key-connected to the output shaft of the stepping motor 12. The gear 13 meshes with the rack 11.

[0022] As Figure 1 、 Figure 5 and Figure 6As shown in the figure, the detection mechanism includes a connecting frame 14, a second electric push rod 15, a moving plate 16, a collection box 17, a drain pipe 171, a solenoid valve 172, a water quality detector 18 and a controller 19. The right side of the top of the installation box 3 is connected with a connecting frame 14 by bolts. The middle part of the right side of the connecting frame 14 is installed with a second electric push rod 15 by bolts. The left end of the telescopic rod of the second electric push rod 15 is connected with a moving plate 16. Three collection boxes 17 are evenly spaced and connected to the left side of the moving plate 16 by bolts. The bottom of each collection box 17 is communicated with a drain pipe 171, and a solenoid valve 172 is installed on each drain pipe 171. A water quality detector 18 is installed in each collection box 17. The controller 19 is installed on the right side of the bottom inside the installation box 3. The water quality detector 18 and the controller 19 are electrically connected.

[0023] As Figure 5 shown in the figure, it further includes guide rods 20. Three pairs of guide rods 20 are evenly spaced and connected to the left side of the moving plate 16. The three groups of guide rods 20 are respectively slidably connected to the three collection boxes 17. The two guide rods 20 in the same group are symmetrically arranged front and back. The two guide rods 20 together guide the collection box 17 and can prevent the collection box 17 from tilting.

[0024] As Figure 2 shown in the figure, it further includes scraping blocks 21. Two scraping blocks 21 are connected to the left side of the bottom of the guide sleeve 4. The two scraping blocks 21 are symmetrically arranged front and back.

[0025] Initially, the first electric push rod 8 is in an extended state. The staff connects the controller 19 to an external display device, and then installs this device in the reservoir through the mounting frame 1. The floating plate 2 floats on the water surface. When it is necessary to detect the water quality of the reservoir, control the output shaft of the stepping motor 12 to drive the gear 13 to rotate. The gear 13 drives the rack 11 to move downward. The rack 11 drives the sliding column 5 to move downward, lower the sliding column 5, and extend the sliding column 5 into the water. The three water inlets 7 respectively extend to three water level lines, and sample the water at different water levels at the same time, making the operation simpler and facilitating the management of the water source in the reservoir. Then, control the telescopic rod of the first electric push rod 8 to shorten, driving the sliding plate 9 and the blocking block 10 to move downward, so that the blocking block 10 no longer blocks the water inlet 7. The water in the reservoir enters the collection cavity 6 through the water inlet 7 for sampling. After sampling is completed, control the telescopic rod of the first electric push rod 8 to extend, driving the sliding plate 9 and the blocking block 10 to move downward, and the blocking block 10 blocks the water inlet 7 again. Then, control the output shaft of the stepping motor 12 to drive the gear 13 to rotate in the reverse direction. The gear 13 drives the rack 11 to move upward. The rack 11 drives the sliding column 5 to move upward and reset, lifting the sliding column 5 out of the water. The scraping block 21 can scrape the garbage on the rack 11 to prevent the garbage from jamming the rack 11 and the gear 13. Then, control the telescopic rod of the second electric push rod 15 to extend, driving the moving plate 16 and the collection box 17 to move leftward, so that the left side of the collection box 17 contacts the right side of the sliding column 5. The guide rod 20 can guide the collection box 17 to make the movement of the collection box 17 more stable. At this time, the collection box 17 is located below the water inlet 7. Control the telescopic rod of the first electric push rod 8 to shorten, driving the sliding plate 9 and the blocking block 10 to move downward, so that the blocking block 10 no longer blocks the water inlet 7. The water in the collection cavity 6 is discharged from the water inlet 7 into the collection box 17. The water quality detector 18 can detect the water in the collection cavity 6 and feedback the detection result to the controller 19. The controller 19 displays the detection result on the display device. The staff can obtain the water quality of each water level through the display device to process the polluted water. Control the solenoid valve 172 to open, and the water in the collection box 17 will be discharged through the drain pipe 171.

[0026] The above embodiments are only used to illustrate the technical concept and features of the present invention, and the purpose is to enable those who are familiar with this technology to understand the content of the present invention and implement it accordingly, and cannot be used to limit the protection scope of the present invention. Any equivalent changes or modifications made according to the spirit of the present invention should be covered within the protection scope of the present invention.

Claims

1. An intelligent water source management device, characterized in that: It includes a mounting frame (1), a floating plate (2), a mounting box (3), a guide sleeve (4), a sliding column (5), a first electric push rod (8), a sliding plate (9), a blocking block (10), a lifting mechanism and a detection mechanism. A floating plate (2) is slidably connected inside the mounting frame (1). The top of the floating plate (2) is connected with a mounting box (3). A guide sleeve (4) is connected to the mounting box (3). A sliding column (5) is slidably connected inside the guide sleeve (4). An opening for the sliding column (5) to pass through is formed on the floating plate (2). Three collecting cavities (6) are evenly spaced inside the sliding column (5). Three water inlets (7) are evenly spaced on the sliding column (5). The water inlets (7) communicate with the collecting cavities (6). A first electric push rod (8) is installed on the sliding column (5). A sliding plate (9) is slidably connected to the sliding column (5). The telescopic rod of the first electric push rod (8) is connected to the sliding plate (9). Three blocking blocks (10) for blocking the water inlets (7) are evenly spaced and connected to the sliding plate (9). A lifting mechanism for controlling the rising and falling of the sliding column (5) is provided on the mounting box (3). A detection mechanism for detecting water quality is provided on the mounting box (3).

2. The intelligent water source management device according to claim 1, characterized in that: The lifting mechanism includes a rack (11), a stepping motor (12) and a gear (13). A rack (11) is connected to the sliding column (5). A notch for the rack (11) to move is formed on the guide sleeve (4). A stepping motor (12) is installed inside the mounting box (3). A gear (13) is connected to the output shaft of the stepping motor (12). The gear (13) meshes with the rack (11).

3. The intelligent water source management device according to claim 2, characterized in that: The detection mechanism includes a connecting frame (14), a second electric push rod (15), a moving plate (16), a collecting box (17), a drain pipe (171), a solenoid valve (172), a water quality detector (18) and a controller (19). A connecting frame (14) is connected to the top of the mounting box (3). A second electric push rod (15) is installed on the connecting frame (14). A moving plate (16) is connected to the telescopic rod of the second electric push rod (15). Three collecting boxes (17) are evenly spaced and connected to the moving plate (16). Drain pipes (171) are connected to the bottoms of the collecting boxes (17). Solenoid valves (172) are installed on the drain pipes (171). Water quality detectors (18) are installed inside the collecting boxes (17). A controller (19) is installed inside the mounting box (3). The water quality detector (18) is electrically connected to the controller (19).

4. A smart water source management device according to claim 3, characterized in that: It also includes guide rods (20). Three pairs of guide rods (20) for guiding the collecting boxes (17) are evenly spaced and connected to the moving plate (16). The three groups of guide rods (20) are respectively slidably connected to the three collecting boxes (17).

5. The intelligent water source management device according to claim 4, characterized in that: It also includes scraping blocks (21). Two scraping blocks (21) for scraping the garbage on the rack (11) are connected to the bottom of the guide sleeve (4).

6. A smart water source management device according to claim 5, characterized in that: A notch (22) for the first electric push rod (8), the sliding plate (9) and the blocking block (10) to pass through is provided on the right side inside the guide sleeve (4).