A garden landscape water ecological water replacement device and its working method
By designing a garden landscape water ecological water replacement device and utilizing water quality monitoring and automatic control systems, the problem of pollutant accumulation in garden landscape water bodies has been solved, efficient and intelligent water quality monitoring and sewage extraction have been achieved, and the water replacement efficiency and intelligence level have been improved.
Patent Information
- Application Number
- CN202510264844.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-07
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2045-03-07
AI Technical Summary
In the existing technology, the accumulation of pollutants in garden landscape water bodies leads to deterioration of water quality. In addition, the manual drainage and water injection methods are inefficient, with low levels of intelligence and automation, making it difficult to accurately monitor water quality changes and control the timing of replacement.
A garden landscape water ecological water replacement device is designed, which includes a buoyancy box, a sewage extraction component, a drive component, a lifting component, a water quality monitoring component and a controller component. The water quality monitoring component detects water quality in real time, and the controller component automatically controls the operation of the sewage extraction component and the drive component to realize intelligent water replacement.
It improves the efficiency and intelligence of landscape water replacement, can automatically track sewage areas and efficiently extract pollutants from the water surface and bottom, ensuring the real-time and accuracy of water quality monitoring.
Smart Images

Figure CN119843758B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water replacement, and in particular to a garden landscape water ecological water replacement device and a working method thereof. Background Art
[0002] Water is a crucial component of landscape architecture. However, over time, various pollutants inevitably accumulate in these water bodies. Natural materials such as fallen leaves and dust are gradually transported into the water by wind and rain. Furthermore, human factors such as littering by tourists and food scraps can also contribute to water quality deterioration.
[0003] The accumulation of these pollutants will have a serious impact on water quality, leading to water quality deterioration. Water quality deterioration will not only affect the landscape effect, but also destroy the ecological balance. In order to avoid water quality deterioration, protect the landscape effect and maintain the ecological balance, it is necessary to replace the water in the garden landscape water ecology.
[0004] Currently, the most common method for landscape water replacement is manual drainage and water injection. This process is time-consuming and labor-intensive, inefficient, and difficult to accurately monitor water quality changes and determine when water needs to be replaced. Furthermore, the level of intelligence and automation is low.
[0005] Therefore, how to replace the ecological water of garden landscape water more efficiently and intelligently is a problem that technicians in this field urgently need to solve. Summary of the Invention
[0006] In order to replace the ecological water of garden landscape water more efficiently and intelligently, the present application provides a garden landscape water ecological water replacement device and a working method thereof.
[0007] The present application provides a garden landscape water ecological water replacement device and its working method using the following technical solutions:
[0008] First aspect
[0009] A garden landscape water ecological water replacement device includes a buoyancy box, a sewage extraction component is arranged inside the buoyancy box, the sewage extraction component is connected to an external sewage treatment device, a driving component is arranged on the top of the buoyancy box, and a lifting component is arranged on the bottom of the buoyancy box corresponding to the sewage extraction component, a water quality monitoring component is arranged on the lifting component, and the water quality monitoring component is connected to a controller component, the controller component is electrically connected to the sewage extraction component, the driving component and the lifting component, and the controller component is wirelessly connected to an external mobile terminal.
[0010] Furthermore, the sewage extraction component includes a main water pump, which is fixedly installed inside the buoyancy box. The main water pump is electrically connected to the controller component. The output end of the main water pump is connected to an external sewage treatment device through a hose. The input end of the main water pump is connected to a three-way pipe. The two ends of the three-way pipe away from the main water pump respectively pass through the top and bottom of the buoyancy box. The end of the three-way pipe passing through the top of the buoyancy box is provided with a sealing mechanism electrically connected to the controller component. The end of the three-way pipe passing through the bottom of the buoyancy box is sealed and connected to a main telescopic pipe. The end of the main telescopic pipe away from the three-way pipe is connected to the lifting component.
[0011] Furthermore, the sealing mechanism includes a stepper motor, which is electrically connected to the controller component and fixedly mounted on the drive component. The output shaft of the stepper motor is transmission-connected with a spiral rod at one end corresponding to the three-way pipe passing through the top of the buoyancy box body. The drive component is slidingly connected with a sealing plug at one end corresponding to the three-way pipe passing through the top of the buoyancy box body. A spiral groove is provided on the sealing plug corresponding to the spiral rod, and the spiral rod is threadedly connected to the sealing plug through the spiral groove.
[0012] Furthermore, the drive assembly includes a drive box, which is fixedly connected overhead to the top of the buoyancy box. Two drive motors are symmetrically installed inside the drive box. The drive motors are electrically connected to the controller assembly. The output shafts of the drive motors are transmission-connected to drive shafts, which are rotatably connected to the bottom surface of the drive box. Both ends of the drive shaft are fixedly connected to paddle rods, and the outside of the paddle rods is provided with propeller blades with the same rotation direction.
[0013] Furthermore, the lifting assembly includes a diving seat, an auxiliary telescopic tube is connected between the diving seat and the buoyancy box, the end of the auxiliary telescopic tube close to the diving seat is set as a sealing end, the end of the auxiliary telescopic tube close to the buoyancy box is connected to an auxiliary water pump, the auxiliary water pump is configured as a bidirectional pump and is installed inside the buoyancy box, the auxiliary water pump is electrically connected to the controller assembly, the end of the auxiliary water pump away from the auxiliary telescopic tube is connected to a water pumping pipe, the end of the water pumping pipe away from the auxiliary water pump passes through the bottom surface of the buoyancy box and is connected to a filter cover.
[0014] Furthermore, the water quality monitoring component includes a water quality monitor, which is electrically connected to the controller component. The water quality monitor is fixedly installed inside the buoyancy box. The water quality monitor is connected to at least four water quality monitoring probes, which are evenly distributed in a ring shape on the lifting component. The lifting component is provided with a water inlet hole corresponding to the water quality monitoring probe and connected to the sewage extraction component.
[0015] Furthermore, the controller component includes a shell, which is hollow and shaped like an animal or plant model that conforms to the garden landscape. The shell is fixedly installed on the upper part of the drive component, and a controller is fixedly installed inside the shell. The controller is electrically connected to the sewage extraction component, the drive component, the lifting component and the water quality monitoring component at the same time. A signal transceiver antenna is fixedly connected to the shell, and the signal transceiver antenna is connected to the controller. The controller is wirelessly connected to an external mobile terminal through the signal transceiver antenna.
[0016] Furthermore, a battery is installed inside the driving component, and the battery is electrically connected to the sewage extraction component, the driving component, the lifting component, the water quality monitoring component and the controller component. The controller component is connected to a charging base, and the charging base is electrically connected to the battery.
[0017] Furthermore, a buoyancy ring is fixedly connected to the outer side of the driving assembly, and a balance plate is fixedly provided on the outer side of the buoyancy ring.
[0018] Second aspect
[0019] A working method of a garden landscape water ecological water replacement device comprises the following steps:
[0020] S1. Place the landscape water ecological water replacement device as described in the claim in a water body, use the water quality monitoring component to detect the water quality of the water body in real time, and transmit the water quality parameter signal to the controller component;
[0021] S2. The controller component determines whether the water quality parameter exceeds the set value based on the water quality parameter signal; if the water quality parameter exceeds the set value, the controller component controls the sewage extraction component to start pumping; if the water quality parameter does not exceed the set value, the controller component controls the driving component to drive the landscape water ecological water replacement device as a whole to automatically move in the water body along a set route;
[0022] S3. After the sewage extraction component starts pumping water, the controller component prompts the staff through the mobile terminal to intervene in the water replacement operation, and the staff filters and disinfects the sewage through the external sewage treatment device;
[0023] S4. Discharge water with qualified water quality into the water body of the garden landscape water ecology to complete the water replacement.
[0024] Beneficial effects achieved:
[0025] This application utilizes the water quality monitoring component to monitor the water body and combines the controller component to automatically control the operation of the sewage extraction component and / or the drive component, so as to replace the garden landscape water ecological water more efficiently and intelligently.
[0026] The present invention can more conveniently extract the sewage and dirt floating on the water surface and deposited on the bottom of the water body by utilizing the setting of the three-way pipe, effectively improving the efficiency of sewage extraction and water replacement.
[0027] The present application utilizes four water quality monitoring probes to monitor water quality at four different directions at the same time, thereby generating four water quality parameter signals corresponding to different directions at the same time during the water quality monitoring process. The controller component can compare the signal strengths of the four water quality parameter signals, so that the controller component can control the driving component to drive the sewage extraction component to move toward the direction close to the highest water quality parameter signal strength, thereby achieving automatic tracking of the sewage extraction component during the sewage extraction process, further improving the efficiency and effect of sewage extraction. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present application.
[0029] Figure 2 This is a schematic diagram of the internal structure of the first direction of an embodiment of the present application.
[0030] Figure 3 It is a schematic diagram of the overall structure decomposition of an embodiment of the present application.
[0031] Figure 4 This is a schematic diagram of the internal structure of the second direction of an embodiment of the present application.
[0032] Figure 5 It is a schematic diagram of the structural decomposition of the blocking mechanism in one embodiment of the present application.
[0033] Explanation of reference numerals: 100, buoyancy box; 200, sewage extraction assembly; 201, main water pump; 202, tee pipe; 203, main telescopic pipe; 300, drive assembly; 301, drive box; 302, drive motor; 303, drive shaft; 304, propeller shaft; 305, propeller blade; 400, lifting assembly; 401, diving seat; 402, auxiliary telescopic pipe; 403, auxiliary water pump; 404, water extraction pipe; 405, filter Cover; 500, water quality monitoring component; 501, water quality monitor; 502, water quality monitoring probe; 503, water inlet; 600, controller component; 601, shell; 602, controller; 603, signal transceiver antenna; 700, blocking mechanism; 701, stepper motor; 702, screw rod; 703, sealing plug; 704, spiral groove; 800, battery; 801, charging base; 900, buoyancy ring; 901, balance board. DETAILED DESCRIPTION
[0034] The following is combined with Figure 1-5 This application is described in further detail.
[0035] In the description of this application, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate the description of the present invention and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0036] In the description of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.
[0037] The embodiments of the present application disclose a garden landscape water ecological water replacement device and a working method thereof.
[0038] Please refer to Figures 1 to 5In one embodiment of the present application, a landscape water ecological water replacement device includes a buoyancy housing 100, which enables the entire device to float in water. In this specific embodiment of the present application, the buoyancy housing 100 can be made of a material with a density much lower than that of water, such as foam, wood, or a gas-filled material. Of course, in other embodiments of the present application, the buoyancy housing 100 can be further enhanced in terms of structural design to enhance its ability to float on the water surface, such as by adopting a sealed hollow structure.
[0039] Please refer to Figures 1 to 5 In one embodiment of the present application, a sewage extraction assembly 200 is fixedly installed inside the buoyancy box 100, and the sewage extraction assembly 200 is connected to an external sewage treatment device. A driving assembly 300 is provided on the top of the buoyancy box 100, and a lifting assembly 400 is provided on the bottom of the buoyancy box 100 corresponding to the sewage extraction assembly 200. A water quality monitoring assembly 500 is provided on the lifting assembly 400, and the water quality monitoring assembly 500 is connected to a controller assembly 600. The controller assembly 600 is electrically connected to the sewage extraction assembly 200, the driving assembly 300, and the lifting assembly 400. The controller assembly 600 is wirelessly connected to an external mobile terminal.
[0040] During operation, the controller component 600 can be controlled in real time and programmed through an external mobile terminal. The controller component 600 can control the sewage extraction component 200, the drive component 300, and the lifting component 400. The water quality monitoring component 500 can detect the water quality of the water body in real time and transmit the water quality parameter signal to the controller component 600. The controller component 600 can control the operation of the sewage extraction component 200 and / or the drive component 300 through program setting according to the water quality parameter signal.
[0041] When the driving component 300 is running, it can drive the entire device to move in the water, so that the water quality monitoring component 500 can monitor a large range of water bodies in real time; when the sewage extraction component 200 is running, it can pump the sewage to an external sewage treatment device for treatment, and then discharge the water with qualified water quality into the water body of the garden landscape water ecology, thus completing the water replacement.
[0042] In this way, by monitoring the water body through the water quality monitoring component 500 and combining the controller component 600 to automatically control the operation of the sewage extraction component 200 and / or the drive component 300, the garden landscape water ecological water can be replaced more efficiently and intelligently.
[0043] Please refer to Figures 1 to 5In one embodiment of the present application, the sewage extraction component 200 includes a main water pump 201, which is fixedly installed inside the buoyancy box 100. The main water pump 201 is electrically connected to the controller component 600. The output end of the main water pump 201 is connected to a hose, and the end of the hose away from the main water pump 201 is connected to an external sewage treatment device.
[0044] In a specific embodiment of the present application, the sewage treatment device includes a filtering device and a disinfecting device. The filtering device removes impurities such as suspended solid particles and colloids in the sewage through physical interception, greatly reducing the turbidity of the sewage and making the water clear in appearance. This not only improves the sensory quality of the water, but also creates good conditions for subsequent deep treatment. The disinfecting device kills harmful microorganisms in the sewage. For example, the disinfecting device can effectively inactivate pathogens such as water containing a large number of pathogenic bacteria, viruses and parasite eggs. If chlorine dioxide is used for disinfection, it can quickly diffuse into the microbial cells and destroy the enzyme system and cell wall of the microorganisms through oxidation, thereby preventing the spread of the disease and protecting the health of people who come into contact with sewage and the public health safety of the surrounding environment.
[0045] Please refer to Figures 1 to 5 In one embodiment of the present application, the input end of the main water pump 201 is connected to a tee 202, and the two ends of the tee 202 away from the main water pump 201 respectively pass through the top and bottom of the buoyancy box 100. The end of the tee 202 passing through the top of the buoyancy box 100 is provided with a sealing mechanism 700 electrically connected to the controller assembly 600, and the end of the tee 202 passing through the bottom of the buoyancy box 100 is sealed and connected to the main telescopic tube 203, and the end of the main telescopic tube 203 away from the tee 202 is connected to the lifting assembly 400.
[0046] During operation, it is only necessary to configure the buoyancy of the buoyancy box 100 so that the buoyancy box 100 is located in a position close to the water surface in the water body ( Figure 2The position shown by the two dotted lines in the figure is the working water level), so that one end of the three-way pipe 202 passing through the top of the buoyancy box 100 is close to the water surface. When the staff finds that there are pollutants or sewage on the water surface during real-time control, they can control the blocking mechanism 700 through the controller assembly 600 to release the blockage of the top of the three-way pipe 202, and then start the main water pump 201 to extract the sewage and dirt floating on the water surface; when the staff finds that there are pollutants or sewage on the bottom of the water during real-time control, they can control the blocking mechanism 700 through the controller assembly 600 to block the top of the three-way pipe 202, and then start the main water pump 201 and the lifting assembly 400. The lifting assembly 400 drives the main telescopic pipe 203 to extend toward the bottom of the water body, so as to extract the sewage and dirt deposited on the bottom of the water body; by utilizing the arrangement of the three-way pipe 202, the sewage and dirt floating on the water surface and deposited on the bottom of the water body can be more conveniently extracted, effectively improving the efficiency of sewage extraction and water replacement.
[0047] Please refer to Figures 1 to 5 In one embodiment of the present application, the sealing mechanism 700 includes a stepper motor 701, which is electrically connected to the controller assembly 600. The stepper motor 701 is fixedly mounted on the drive assembly 300. The output shaft of the stepper motor 701 is connected to a screw rod 702 at one end corresponding to the three-way pipe 202 passing through the top of the buoyancy box 100. The drive assembly 300 is connected to a sealing plug 703 in a sliding manner at one end corresponding to the three-way pipe 202 passing through the top of the buoyancy box 100. A spiral groove 704 is provided on the sealing plug 703 corresponding to the spiral rod 702, and the spiral rod 702 is screwed to the sealing plug 703 through the spiral groove 704.
[0048] During operation, the stepper motor 701 can be used to drive the screw rod 702 to rotate. When the screw rod 702 rotates, it will drive the sealing plug 703 to slide through the screw transmission. When the sealing plug 703 is close to the end of the tee pipe 202 passing through the top of the buoyancy box 100, the sealing plug 703 will block the end of the tee pipe 202 passing through the top of the buoyancy box 100. When the sealing plug 703 leaves the end of the tee pipe 202 passing through the top of the buoyancy box 100, the end of the tee pipe 202 passing through the top of the buoyancy box 100 can be opened. The control method using the sealing plug 703 is simpler and more reliable than valve control, which can prevent dirt from clogging the tee pipe 202 and is conducive to increasing the passability of sewage and dirt.
[0049] Please refer to Figures 1 to 5In a specific embodiment of the present application, the sealing plug 703 is made of elastic rubber material, and the bottom of the sealing plug 703 is provided with a boss adapted to the diameter of the pipe mouth of the tee pipe 202, so that two sealing surfaces can be formed on the end face and the inner side face of the tee pipe 202 by utilizing the side face of the boss and the end face close to the boss, which is conducive to ensuring the sealing effect of the plugging.
[0050] Of course, in other embodiments of the present application, the shape of the sealing plug 703 can also be set to be conical or cylindrical with chamfers.
[0051] Please refer to Figures 1 to 5 In one embodiment of the present application, the drive assembly 300 includes a drive box 301, which is fixedly connected to the top of the buoyancy box 100. Two drive motors 302 are symmetrically installed inside the drive box 301. The drive motors 302 are electrically connected to the controller assembly 600. The output shafts of the drive motors 302 are transmission-connected with drive shafts 303. The drive shafts 303 are rotatably connected to the bottom surface of the drive box 301. Both ends of the drive shaft 303 are fixedly connected to paddle rods 304, and the outside of the paddle rods 304 is provided with propeller blades 305 with the same rotation direction.
[0052] During operation, the use of two symmetrically arranged drive motors 302 can not only improve the overall balance of the device, but also drive the two drive shafts 303 to rotate respectively. The drive shaft 303 will correspondingly drive the paddle rod 304 to rotate, and the propeller blades 305 outside the paddle rod 304 will stir the water near the water surface. In this way, by controlling the speed and direction of the two drive motors 302, the stirring speed and direction of the water body by the propeller blades 305 can be controlled. The stirring of the water body by the propeller blades 305 can push the entire device to move in the water, and when extracting sewage and dirt floating on the water surface, the propeller blades 305 can also drive the water body and floating objects to move toward the direction close to the three-way pipe 202 during stirring, which is conducive to accelerating the extraction of floating objects and further improving the efficiency of extracting sewage and dirt floating on the water surface.
[0053] Please refer to Figures 1 to 5In one embodiment of the present application, the lifting assembly 400 includes a diving seat 401, and an auxiliary telescopic tube 402 is connected between the diving seat 401 and the buoyancy box 100. The end of the auxiliary telescopic tube 402 close to the diving seat 401 is set as a sealed end, and the end of the auxiliary telescopic tube 402 close to the buoyancy box 100 is connected to an auxiliary water pump 403. The auxiliary water pump 403 is configured as a bidirectional pump and is installed inside the buoyancy box 100. The auxiliary water pump 403 is electrically connected to the controller assembly 600, and the end of the auxiliary water pump 403 away from the auxiliary telescopic tube 402 is connected to a water pumping pipe 404, and the end of the water pumping pipe 404 away from the auxiliary water pump 403 passes through the bottom surface of the buoyancy box 100 and is connected to a filter cover 405.
[0054] During operation, the auxiliary water pump 403 is configured as a bidirectional pump, which can pump water from the water body into the auxiliary telescopic tube 402 in a forward direction and pump water out of the auxiliary telescopic tube 402 in a reverse direction. When the auxiliary water pump 403 pumps water from the water body into the auxiliary telescopic tube 402, the auxiliary telescopic tube 402 will extend axially, thereby driving the submersible seat 401 to dive to the bottom of the water body. When the auxiliary water pump 403 pumps water from the auxiliary telescopic tube 402, the auxiliary telescopic tube 402 will shorten axially, thereby driving the submersible seat 401 to rise to the surface of the water body. The submersible seat 401 can then drive the water quality monitoring component 500 and the sewage extraction component 200 to rise and fall in the water body. This design directly uses water from the water body as the hydraulic medium to drive the extension and retraction of the auxiliary telescopic tube 402, avoiding the use of a dedicated hydraulic medium. This is beneficial for controlling costs and reducing the influence of gravity caused by the dedicated hydraulic medium. It also helps to control weight while ensuring the extension and retraction stroke of the auxiliary telescopic tube 402 during operation.
[0055] Please refer to Figures 1 to 5 In one embodiment of the present application, the water quality monitoring component 500 includes a water quality monitor 501, which is electrically connected to the controller component 600. The water quality monitor 501 is fixedly installed inside the buoyancy box 100. The water quality monitor 501 is connected to at least four water quality monitoring probes 502. The water quality monitoring probes 502 are evenly distributed in a ring shape on the lifting component 400. The lifting component 400 is provided with a water inlet hole 503 corresponding to the water quality monitoring probe 502 and connected to the sewage extraction component 200.
[0056] During the water pumping process, taking the four directions of east, south, west and north as an example, when the water inlet 503 connected to the sewage extraction component 200 is located in the southeast of the sewage area, the sewage area is located in the northwest of the four water quality monitoring probes 502 and the water inlet 503. As the sewage extraction component 200 continuously extracts sewage, the two water quality monitoring probes 502 close to the center of the sewage area, that is, located in the northwest direction, will continue to detect signals that the water quality parameters exceed the standard, while the water quality parameter signals detected by the two water quality monitoring probes 502 far away from the center of the pollution area, that is, located in the southeast direction, will gradually meet the standard or be weaker than the water quality parameter signals detected by the two water quality monitoring probes 502 located in the northwest direction. Through program settings, the controller component 600 automatically controls the drive component 300 to drive the sewage extraction component 200 to move toward the northwest.
[0057] By utilizing four water quality monitoring probes 502, water quality can be monitored in four different directions at the same time, thereby generating four water quality parameter signals corresponding to different directions at the same time during the water quality monitoring process. The controller component 600 can compare the signal strengths of the four water quality parameter signals, so that the controller component 600 can control the driving component 300 to drive the sewage extraction component 200 to move toward the direction close to the highest water quality parameter signal strength, thereby enabling the sewage extraction component 200 to automatically track during the sewage extraction process, thereby further improving the efficiency and effect of sewage extraction.
[0058] Please refer to Figures 1 to 5 In one embodiment of the present application, the controller component 600 includes a shell 601. The shell 601 is hollow and shaped like an animal or plant model that conforms to a garden landscape. The shell 601 is fixedly mounted on the upper portion of the drive component 300. A controller 602 is fixedly mounted inside the shell 601. The controller 602 is electrically connected to the sewage extraction component 200, the drive component 300, the lifting component 400, and the water quality monitoring component 500. A signal transceiver antenna 603 is fixedly connected to the shell 601. The signal transceiver antenna 603 is connected to the controller 602. The controller 602 is wirelessly connected to an external mobile terminal via the signal transceiver antenna 603. The shell 601 can serve as an installation base for the controller 602 and the controller 602. During operation, it can not only protect the signal transceiver antenna 603 and the controller 602, but also increase the beauty of the garden landscape with specific animal and plant models.
[0059] Please refer to Figures 1 to 5In one embodiment of the present application, a battery 800 is installed within the drive assembly 300. The battery 800 is electrically connected to the sewage extraction assembly 200, the drive assembly 300, the lifting assembly 400, the water quality monitoring assembly 500, and the controller assembly 600. The controller assembly 600 is connected to a charging station 801, which is electrically connected to the battery 800. The battery 800 can provide the electrical energy required for the operation of the sewage extraction assembly 200, the drive assembly 300, the lifting assembly 400, the water quality monitoring assembly 500, and the controller assembly 600, and the charging station 801 can be used to charge the battery 800.
[0060] Please refer to Figures 1 to 5 In one embodiment of the present application, a buoyancy ring 900 is fixedly connected to the outside of the drive assembly 300, and a balance plate 901 is fixedly installed on the outside of the buoyancy ring 900. The use of the buoyancy ring 900 and the balance plate 901 can not only increase the buoyancy of the entire device, but also ensure the balance of the entire device during operation, which is conducive to ensuring the stability and reliability of the water replacement device during operation.
[0061] In one embodiment of the present application, a method for operating a landscape water ecological water replacement device includes the following steps:
[0062] S1. Place the landscape water ecological water replacement device of claim 1 in a water body, use the water quality monitoring component 500 to detect the water quality of the water body in real time, and transmit the water quality parameter signal to the controller component 600;
[0063] S2. The controller component 600 determines whether the water quality parameter exceeds the set value based on the water quality parameter signal; if the water quality parameter exceeds the set value, the controller component 600 controls the sewage extraction component 200 to start pumping; if the water quality parameter does not exceed the set value, the controller component 300 controls the driving component 300 to automatically move the landscape water ecological water replacement device as a whole in the water body along the set route;
[0064] S3. After the sewage extraction component 200 starts pumping water, the controller component 600 prompts the staff through the mobile terminal to intervene in the water replacement operation. The staff filters and disinfects the sewage through the external sewage treatment device;
[0065] S4. Discharge water with qualified water quality into the water body of the garden landscape water ecology to complete the water replacement.
[0066] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A garden landscape water ecological water replacement device, characterized by: The invention comprises a buoyancy box (100), wherein a sewage extraction component (200) is provided inside the buoyancy box (100), wherein the sewage extraction component (200) is connected to an external sewage treatment device, wherein a driving component (300) is provided on the top of the buoyancy box (100), and a lifting component (400) is provided on the bottom of the buoyancy box (100) corresponding to the sewage extraction component (200), wherein a water quality monitoring component (500) is provided on the lifting component (400), wherein the water quality monitoring component (500) is connected to a controller component (600), and wherein the controller component (600) is connected to the sewage extraction component (200) and the driving component. (300) and the lifting assembly (400) are electrically connected, and the controller assembly (600) is wirelessly connected to an external mobile terminal; the sewage extraction assembly (200) includes a main water pump (201), the main water pump (201) is fixedly installed inside the buoyancy box (100), the main water pump (201) is electrically connected to the controller assembly (600), the output end of the main water pump (201) is connected to an external sewage treatment device through a hose, and the input end of the main water pump (201) is connected to a three-way pipe (202), and the two ends of the three-way pipe (202) away from the main water pump (201) respectively pass through the The top and bottom of the buoyancy box (100), one end of the three-way pipe (202) passing through the top of the buoyancy box (100) is provided with a blocking mechanism (700) electrically connected to the controller component (600), one end of the three-way pipe (202) passing through the bottom of the buoyancy box (100) is sealed and connected to a main telescopic pipe (203), and one end of the main telescopic pipe (203) away from the three-way pipe (202) is connected to the lifting component (400); the lifting component (400) includes a diving seat (401), and an auxiliary telescopic pipe (402) is connected between the diving seat (401) and the buoyancy box (100), and the auxiliary telescopic pipe One end of (402) close to the diving seat (401) is set as a sealed end, and one end of the auxiliary telescopic tube (402) close to the buoyancy box (100) is connected to an auxiliary water pump (403), and the auxiliary water pump (403) is configured as a bidirectional pump and is installed inside the buoyancy box (100). The auxiliary water pump (403) is electrically connected to the controller component (600), and one end of the auxiliary water pump (403) away from the auxiliary telescopic tube (402) is connected to a water pumping pipe (404), and one end of the water pumping pipe (404) away from the auxiliary water pump (403) passes through the bottom surface of the buoyancy box (100) and is connected to a filter cover (405).
2. The garden landscape water ecological water replacement device according to claim 1, characterized in that: The sealing mechanism (700) includes a stepper motor (701), the stepper motor (701) is electrically connected to the controller assembly (600), the stepper motor (701) is fixedly mounted on the drive assembly (300), and a spiral rod (702) is transmission-connected to one end of the output shaft of the stepper motor (701) corresponding to the three-way pipe (202) passing through the top of the buoyancy box (100), and a sealing plug (703) is slidably connected to one end of the drive assembly (300) corresponding to the three-way pipe (202) passing through the top of the buoyancy box (100), a spiral groove (704) is provided on the sealing plug (703) corresponding to the spiral rod (702), and the spiral rod (702) is screwed to the sealing plug (703) through the spiral groove (704).
3. The garden landscape water ecological water replacement device according to claim 1, characterized in that: The driving assembly (300) includes a driving box (301), the driving box (301) is fixedly connected to the top of the buoyancy box (100), two driving motors (302) are symmetrically installed inside the driving box (301), the driving motors (302) are electrically connected to the controller assembly (600), the output shafts of the driving motors (302) are transmission-connected to the driving shafts (303), the driving shafts (303) are rotatably connected to the bottom surface of the driving box (301), both ends of the driving shaft (303) are fixedly connected to the propeller rods (304), and the propeller blades (305) with the same rotation direction are arranged on the outside of the propeller rods (304).
4. The garden landscape water ecological water replacement device according to claim 1, characterized in that: The water quality monitoring component (500) comprises a water quality monitor (501), the water quality monitor (501) being electrically connected to the controller component (600), the water quality monitor (501) being fixedly mounted inside the buoyancy box (100), the water quality monitor (501) being connected to at least four water quality monitoring probes (502), the water quality monitoring probes (502) being mounted on the lifting component (400) in a circular and uniform distribution, and the lifting component (400) being provided with water inlet holes (503) communicating with the sewage extraction component (200) corresponding to the water quality monitoring probes (502).
5. The garden landscape water ecological water replacement device according to claim 1, characterized in that: The controller component (600) includes a shell (601), the shell (601) is hollow, and the shape of the shell (601) is set to be an animal and plant model that conforms to the garden landscape. The shell (601) is fixedly installed on the upper part of the drive component (300), and a controller (602) is fixedly installed inside the shell (601). The controller (602) is electrically connected to the sewage extraction component (200), the drive component (300), the lifting component (400) and the water quality monitoring component (500). A signal transceiver antenna (603) is fixedly connected to the shell (601), and the signal transceiver antenna (603) is connected to the controller (602). The controller (602) is wirelessly connected to an external mobile terminal through the signal transceiver antenna (603).
6. The garden landscape water ecological water replacement device according to claim 1, characterized in that: A battery (800) is installed inside the driving component (300), and the battery (800) is electrically connected to the sewage extraction component (200), the driving component (300), the lifting component (400), the water quality monitoring component (500), and the controller component (600). A charging base (801) is connected to the controller component (600), and the charging base (801) is electrically connected to the battery (800).
7. A garden landscape water ecological water replacement device according to any one of claims 1 to 6, characterized in that: The outer side of the driving assembly (300) is fixedly connected to a buoyancy ring (900), and the outer side of the buoyancy ring (900) is fixedly provided with a balance plate (901).
8. A working method of a garden landscape water ecological water replacement device, characterized in that: The following steps are involved: S1. Place the landscape water ecological water replacement device as claimed in claim 1 in a water body as a whole, use the water quality monitoring component (500) to detect the water quality of the water body in real time, and transmit the water quality parameter signal to the controller component (600); S2, the controller component (600) determines whether the water quality parameter exceeds the set value based on the water quality parameter signal; if the water quality parameter exceeds the set value, the controller controls the sewage extraction component (200) to start pumping; if the water quality parameter does not exceed the set value, the controller controls the driving component (300) to drive the entire landscape water ecological water replacement device to automatically move in the water body along a set route; S3, after the sewage extraction component (200) starts pumping water, the controller component (600) prompts the staff to intervene in the water replacement operation through the mobile terminal, and the staff filters and disinfects the sewage through the external sewage treatment device; S4. Discharge the water with qualified water quality into the water body of the garden landscape water ecology to complete the water replacement.
Citation Information
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