Integrated water treatment equipment dosing system and process for water pollution treatment

By designing an integrated water treatment device, water pressure sensors and solenoid valves are used to achieve chemical dosing at different depths, and the dosage is monitored and replenished in real time. This solves the shortcomings of single chemical systems in treating multiple pollutants and improves the adaptability and effectiveness of water pollution control.

CN118753664BActive Publication Date: 2026-05-15XIAN SHAN CHUAN PETROLEUM TECH CO LTD
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Patent Information

Application Number
CN202410892042.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-07-04
Publication Date
2026-05-15
Estimated Expiration
2044-07-04

AI Technical Summary

Technical Problem

Existing single-agent delivery systems cannot simultaneously treat multiple pollutants or adapt to complex pollution situations in water bodies at different depths, especially when heavy metal pollution accumulates in deeper layers while organic pollution is concentrated in shallower layers, resulting in poor treatment effects.

Method used

An integrated water treatment device was designed, including a support platform, an operating platform, a dispensing and retracting mechanism, a position adjustment component, and a tiered dosing mechanism. It utilizes water pressure sensors and solenoid valves to achieve dosing of chemicals at different depths, and the dosing component monitors and replenishes the dosage in real time. Combined with the dispensing and retracting mechanism, the depth of the dosing chamber can be easily adjusted.

Benefits of technology

It enables precise application of various agents based on differences in water depth and pollution type, improving the effectiveness of water pollution control, ensuring real-time monitoring and replenishment of agent dosage, and adapting to complex water pollution environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of water treatment dosing, in particular to a dosing system and process of an integrated water treatment equipment for water pollution treatment, which comprises a supporting table, the top of the supporting table is fixedly connected with an operating table, further comprises a folding and unfolding mechanism, a position adjusting assembly and a layered dosing mechanism, wherein the multiple dosing bins are sequentially and staggeredly installed through installation top plates and installation bottom plates, the bottom of a hoisting plate is fixedly connected with the top of one of the installation top plates, a dosing assembly is installed on the dosing bin, a dosing assembly is installed on the top of the supporting table, and the dosing assembly is connected with the multiple dosing bins. The dosing system and process of the integrated water treatment equipment for water pollution treatment can avoid the adoption of a single dosing system, and the main limitation of such a system is that they cannot simultaneously treat multiple pollutants or adapt to complex pollution conditions, especially in the environment where the pollution degree and type of different depth water bodies can be different.
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Description

Technical Field

[0001] This invention relates to the field of water treatment dosing technology, specifically to an integrated water treatment equipment dosing system and process for water pollution control. Background Technology

[0002] In the field of water pollution control, especially when dealing with heavy metal pollution in water bodies, the strategies and technologies for chemical application have a decisive impact on the treatment effect. Heavy metal pollution not only harms aquatic ecosystems but can also affect human health through the food chain. Currently, treating this type of pollution typically requires the use of specific chemical or biological agents to adsorb or transform heavy metal ions in the water.

[0003] Publication number "CN208933200U" discloses a submersible chemical dosing device for water pollution treatment. This device can precisely and quantitatively add chemicals to the areas requiring treatment. It utilizes a screw conveyor on a floating platform to precisely deliver powder, achieving accurate submersible dosing. A diaphragm pump, in conjunction with a mixer, generates negative pressure to draw the powder through pipelines to the dosing site. A check valve is installed on the dosing pipeline to prevent backflow. To prevent the powder from clogging the pipeline upon contact with water, compressed air is used for cleaning in case of blockage. Simultaneously, the device mixes with the sediment, ensuring thorough reaction and effectively purifying or solidifying pollutants in the riverbed sediment.

[0004] In practical use, it adopts a single agent dosing system. The main limitation of such systems is that they cannot treat multiple pollutants at the same time or adapt to complex pollution situations, especially in environments where the degree and type of pollution may differ in water bodies at different depths. For example, some heavy metals may accumulate in deeper layers of water, while other types of pollutants, such as organic pollutants, may concentrate in shallower layers. A single agent system cannot effectively treat such stratified conditions. Summary of the Invention

[0005] To address the current market's use of single-agent dosing systems, which are limited by their inability to simultaneously treat multiple pollutants or adapt to complex pollution situations, especially in environments where the degree and type of pollution may differ at different water depths—for example, where certain heavy metals may accumulate in deeper layers while other types of pollutants, such as organic pollutants, may concentrate in shallower layers—single-agent systems cannot effectively treat such stratified conditions.

[0006] To achieve the above objectives, the first aspect of this application proposes an integrated water treatment equipment dosing system for water pollution control, including a support platform, an operating platform fixedly connected to the top of the support platform, and a retraction mechanism, a position adjustment component, and a layered dosing mechanism. The retraction mechanism is installed on the top of the operating platform, and the position adjustment component is installed inside the support platform for adjusting the dosing position. The layered dosing mechanism includes a lifting plate, dosing chambers, a mounting top plate, a mounting bottom plate, a dosing component, and a dosing component. The top of the lifting plate is fixedly connected to the end of the retraction mechanism. Multiple dosing chambers are symmetrically fixedly connected to the mounting top plate and the mounting bottom plate at both ends, and the multiple dosing chambers are sequentially and alternately installed via the mounting top plate and the mounting bottom plate. The bottom of the lifting plate is fixedly connected to the top of one of the mounting top plates. The dosing component is installed on the dosing chamber, and the dosing component is installed on the top of the support platform, and the dosing component is connected to the multiple dosing chambers.

[0007] The integrated water treatment equipment dosing system for water pollution control in this embodiment uses multiple water pressure sensors to monitor water pressure in real time. When the water pressure reaches a certain value, the corresponding first solenoid valve can be opened, and then the chemical solution in the corresponding dosing chamber can be discharged through the dosing pipe. This achieves the effect of different agents being added at different depths, thus avoiding the use of a single agent dosing system. The main limitation of such systems is that they cannot treat multiple pollutants simultaneously or adapt to complex pollution situations, especially in environments where the degree and type of pollution in water bodies at different depths may vary. At the same time, the water level sensor can monitor the dosage of the chemical in real time, and when the chemical is low, it can be replenished in time through the dosing component.

[0008] In addition, the integrated water treatment equipment dosing system for water pollution control proposed in this application may also have the following additional technical features:

[0009] As a preferred embodiment of the present invention, the dosing assembly includes a dosing pipe, a first solenoid valve, a controller, a water pressure sensor, and a water level sensor. One end of the dosing pipe is fixedly connected to the outer wall of the dosing chamber. The first solenoid valve is installed on the outer wall of the dosing pipe. The controller is installed on one side of the top of the operating table. The water pressure sensor is installed on the outer wall of the dosing chamber, and the water level sensor is installed on the inner wall of the dosing chamber.

[0010] As a preferred embodiment of the present invention, the dosing assembly includes a dosing chamber, partitions, output pipes, connecting pipes, a pump body, an injection pipe, a second solenoid valve, and a connecting hose. The dosing chamber is fixedly connected to the top of the support platform. Multiple partitions are fixedly connected at equal intervals to the inner wall of the dosing chamber. The pump body is mounted on the top of the support platform, opposite to one side of the dosing chamber. One end of each of the multiple output pipes is fixedly inserted through the top of the dosing chamber and located between two partitions. The inlet of the connecting pipe is fixedly connected to the other end of each of the multiple output pipes. The other end of the connecting pipe is connected to the inlet of the pump body. One end of the injection pipe is fixedly connected to the outer wall of the dosing chamber. The other end of the injection pipe is connected to the outlet of the pump body via the connecting hose. The second solenoid valve is mounted on the outer wall of the injection pipe.

[0011] As a preferred embodiment of the present invention, the launching and retracting mechanism includes a U-shaped frame, a drive roller, a drive motor, a connecting rope, and a protective assembly. The U-shaped frame is fixedly connected to the top side of the operating platform. The drive roller is rotatably connected to both ends of the inner wall of the U-shaped frame. The drive motor is mounted on the outer wall of the U-shaped frame, and the output end of the drive motor is fixedly connected to one end of the drive roller. One end of the connecting rope is sleeved on the outer wall of the drive roller, and the other end of the connecting rope passes through the protective assembly and the position adjustment assembly in sequence, and is fixedly connected to the top of the lifting plate.

[0012] As a preferred embodiment of the present invention, the protective assembly includes a support base, a protective cover plate, a support sleeve, an abutment rod, and a support spring. The support base is fixedly connected to the top of the operating table, the protective cover plate is bolted to the top of the support base, the top of the support base has a guide groove for the movement of the connecting rope, one end of a plurality of support sleeves is fixedly connected at equal intervals to the bottom of the protective cover plate, and one end of the abutment rod slides through the other end of the support sleeve via the support spring.

[0013] As a preferred embodiment of the present invention, the position adjustment assembly includes a support side plate, a cylinder, a drive rod, and a protective sleeve. The support side plate is fixedly connected to the inner wall of the support platform. The cylinder is installed on one side of the support side plate. One end of the drive rod is fixedly connected to the output end of the cylinder. The other end of the drive rod slides through the inner wall of the support platform and is fixedly connected to the outer wall of the protective sleeve. The protective sleeve is slidably fitted onto the outer wall of the connecting rope.

[0014] As a preferred embodiment of the present invention, a threaded head is fixedly connected to the top of the mounting top plate, and a threaded groove matching the threaded head is provided on the bottom of the mounting base plate.

[0015] As a preferred embodiment of the present invention, the first solenoid valve, water pressure sensor, water level sensor, pump body, injection pipe and the second solenoid valve are all electrically connected to the controller, and the controller is electrically connected to an external power supply.

[0016] As a preferred embodiment of the present invention, the other end of the abutment rod is rotatably connected to a ball bearing.

[0017] A chemical dosing process for an integrated water treatment equipment for water pollution control includes the following steps:

[0018] S1. Equipment Inspection and Installation: Ensure all dosing chambers, pipelines, delivery / retraction mechanisms, and position adjustment components are intact and correctly connected. Install multiple dosing chambers in a staggered manner from top to bottom according to design requirements, ensuring each dosing chamber is connected to the main control system.

[0019] S2. Chemical preparation: Based on the water quality analysis results, select appropriate chemicals and fill them into each of the dosing tanks. Ensure that each dosing tank is clearly labeled to avoid confusion.

[0020] S3. Adjust the position of the dosing chamber and activate the position adjustment component: Use the control panel to activate the position adjustment component and adjust the position and depth of the dosing chamber as needed.

[0021] S4. Initiate chemical dosing, monitor water pressure data, determine the dosing chambers to be activated, select the appropriate dosing chamber based on the water pressure, and open the corresponding pipeline via the control system to begin chemical dosing.

[0022] S5. Dosing and Maintenance: Real-time monitoring of the dosage in each dosing chamber; timely dosing when the dosage is insufficient; dosing and administration can be performed simultaneously.

[0023] S6. Regular Inspection: Conduct a comprehensive inspection of the system regularly, including the inspection of components such as pipes, tanks, and valves, to ensure there are no leaks or damage. According to the maintenance plan, clean the dosing tank and pipes regularly to prevent chemical residues from causing blockages or corrosion.

[0024] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application.

[0025] Compared with the prior art, the beneficial effects of the present invention are:

[0026] 1. In this invention, a position adjustment component is provided. By using the cylinder in the position adjustment component, the position of the end of the drive rod can be adjusted by activating the cylinder, thereby adjusting the position of the protective sleeve, which in turn adjusts the position of the connecting rope, thus conveniently adjusting the water entry position of the dosing chamber, thereby improving the water pollution treatment effect.

[0027] 2. In this invention, a dosing assembly is provided. Through the dosing pipeline, first solenoid valve, controller, and water pressure sensor in the dosing assembly, multiple water pressure sensors monitor the water pressure in real time. When the water pressure reaches a certain value, the corresponding first solenoid valve can be opened, and then the liquid medicine in the corresponding dosing chamber can be discharged through the dosing pipeline. This achieves the effect of different agents being administered at different depths, thereby avoiding the use of a single agent dosing system. The main limitation of such systems is that they cannot treat multiple pollutants simultaneously or adapt to complex pollution situations, especially in environments where the degree and type of pollution in water bodies at different depths may differ.

[0028] 3. In this invention, by setting up a dosing assembly, the injection pipe, the second solenoid valve, and the connecting hose in the dosing assembly are activated. First, various agents are pre-stored in the dosing chamber. Then, the dosage of agents in different dosing chambers is monitored in real time by a water level sensor. When the amount of agent is low, the first solenoid valve is closed and the second solenoid valve is opened. Then, by activating the pump, the corresponding pre-stored agent is extracted and injected into the injection pipe through the connecting hose. Then, it is injected into the dosing chamber through the injection pipe, thereby replenishing the agent in a timely manner and ensuring the treatment effect of water pollution.

[0029] 4. In this invention, a retraction mechanism is provided. By activating the drive motor and connecting rope in the retraction mechanism, the drive roller can be rotated, thereby driving the retraction and extension of the connecting rope. This allows the dosing chamber to be easily adjusted in depth in the water, thus enabling different solutions to be placed in different locations, effectively improving the water pollution control effect. Attached Figure Description

[0030] Figure 1 This is a schematic diagram of the chemical dosing system for the integrated water treatment equipment used in the water pollution control of the present invention. Figure 1 ;

[0031] Figure 2 This is a schematic diagram of the chemical dosing system for the integrated water treatment equipment used in the water pollution control of the present invention. Figure 2 ;

[0032] Figure 3 This is a schematic diagram of the stratified drug delivery mechanism of the present invention. Figure 1 ;

[0033] Figure 4This is a schematic diagram of the internal structure of the drug delivery chamber of the present invention;

[0034] Figure 5 This is a schematic diagram of the drug delivery chamber of the present invention;

[0035] Figure 6 This is a schematic diagram of the structure of the protective component of the present invention;

[0036] Figure 7 This is a schematic diagram of the internal structure of the support platform of the present invention;

[0037] Figure 8 This is a schematic diagram of the internal structure of the dosing chamber of the present invention;

[0038] Figure 9 For the present invention Figure 4 Enlarged structural diagram at point A;

[0039] Figure 10 For the present invention Figure 6 Enlarged structural diagram at point B.

[0040] In the diagram: 1. Support platform; 2. Operating platform; 3. Retracting mechanism; 31. U-shaped frame; 32. Drive roller; 33. Drive motor; 34. Connecting rope; 35. Protective assembly; 351. Support base; 352. Protective cover plate; 353. Support sleeve; 354. Abutment rod; 355. Support spring; 4. Position adjustment assembly; 41. Support side plate; 42. Cylinder; 43. Drive rod; 44. Protective sleeve; 5. Layered dosing mechanism; 51. Lifting plate; 52. Dosing chamber; 53. Install top plate; 531. Threaded head; 541. Threaded groove; 54. Install base plate; 55. Dosing assembly; 551. Dosing pipeline; 552. First solenoid valve; 553. Controller; 554. Water pressure sensor; 555. Water level sensor; 56. Dosing assembly; 561. Dosing chamber; 562. Baffle; 563. Output pipeline; 564. Connecting pipeline; 565. Pump body; 566. Injection pipeline; 567. Second solenoid valve; 568. Connecting hose. Detailed Implementation

[0041] Embodiments of this application are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application. Rather, embodiments of this application include all variations, modifications, and equivalents falling within the spirit and scope of the appended claims.

[0042] The following description, in conjunction with the accompanying drawings, illustrates the integrated water treatment equipment dosing system and process for water pollution control according to embodiments of this application.

[0043] The present application provides an integrated water treatment equipment dosing system for water pollution control, which can solve the problem of single-agent dosing systems currently on the market. The main limitation of such systems is that they cannot treat multiple pollutants simultaneously or adapt to complex pollution situations, especially in environments where the degree and type of pollution may differ at different water depths. For example, some heavy metals may accumulate in deeper layers of water, while other types of pollutants, such as organic pollutants, may concentrate in shallower layers. Single-agent systems cannot effectively treat such stratified conditions.

[0044] like Figures 1-10 As shown in the embodiment of this application, the integrated water treatment equipment dosing system for water pollution control may include a support platform 1, with an operating platform 2 fixedly connected to the top of the support platform 1, and may also include a retraction mechanism 3, a position adjustment component 4, and a layered dosing mechanism 5.

[0045] The delivery mechanism 3 is installed on the top of the operating table 2, and the position adjustment component 4 is installed inside the support platform 1, which can be used to adjust the drug delivery position.

[0046] It should be noted that the support platform 1 described in this embodiment has an internal compartment for installing the position adjustment component 4, and guide sleeves are fixedly connected to both the inner and outer walls of the support platform 1. The guide sleeves make it easier for the position adjustment component 4 to operate.

[0047] The layered dosing mechanism 5 includes a hoisting plate 51, a dosing chamber 52, a mounting top plate 53, a mounting bottom plate 54, a dosing assembly 55, and a dosing assembly 56.

[0048] The top of the hoisting plate 51 is fixedly connected to the end of the take-up and take-down mechanism 3.

[0049] It should be noted that the top of the lifting plate 51 described in this embodiment is connected with multiple bolts in a circumferential array, and a reinforcing head is fixedly connected to the center of the top of the lifting plate 51. The end of the reinforcing head is fixedly connected to the end of the launching mechanism 3.

[0050] Multiple dosing chambers 52 are symmetrically fixedly connected to their ends with mounting top plates 53 and mounting bottom plates 54, and the multiple dosing chambers 52 are installed in a staggered manner through mounting top plates 53 and mounting bottom plates 54, with the bottom of the hoisting plate 51 fixedly connected to the top of one of the mounting top plates 53.

[0051] Furthermore, such as Figures 4-5 As shown, a threaded head 531 is fixedly connected to the top of the mounting plate 53, and a threaded groove 541 matching the threaded head 531 is provided on the bottom of the mounting base plate 54.

[0052] It should be noted that the top of the uppermost mounting plate 53 described in this embodiment has multiple threaded holes arranged in a circular array to match the bolts on the lifting plate 51. The mounting plate 53, mounting base plate 54 and dosing chamber 52 have the same cross-sectional dimensions. By matching the thread head 531 with the thread groove 541, multiple dosing chambers 52 can be installed in an alternating manner from top to bottom, so that multiple agents can be stored through multiple dosing chambers 52.

[0053] The dosing assembly 55 is installed on the dosing chamber 52, and the dosing assembly 56 is installed on the top of the support platform 1, and the dosing assembly 56 is connected to multiple dosing chambers 52.

[0054] It should be noted that the dosing assembly 55 described in this embodiment is provided in multiple sets, and the multiple sets of dosing assemblies 55 are respectively installed on the outer wall of the corresponding dosing chamber 52. At the same time, the dosing assembly 56 is provided with multiple injection pipes, and the ends of the multiple injection pipes are also fixedly connected to the outer wall of the corresponding dosing chamber 52. In this way, when the liquid is insufficient, the liquid can be added immediately to ensure the effect of water pollution treatment.

[0055] Specifically, when treating polluted water sources, integrated water treatment equipment is often used. This integrated equipment improves the effectiveness of chemical dosing. To further enhance the treatment effect, the top of the lifting plate 51 is fixedly connected to the end of the launching mechanism 3. Multiple dosing chambers 52 are symmetrically fixedly connected to their ends with mounting top plates 53 and mounting bottom plates 54, respectively. The multiple dosing chambers 52 are installed alternately via the mounting top plates 53 and mounting bottom plates 54. The bottom of the lifting plate 51 is fixedly connected to the top of one of the mounting top plates 53. A dosing assembly 55 is installed on the dosing chamber 52, and a dosing component 56 is installed on the top of the support platform 1. The dosing component 56 is connected to the multiple dosing chambers 52, and through the matching of the threaded head 531 and the threaded groove 541, the multiple dosing chambers 52 can be moved from top to bottom. The dosing system is staggered, allowing multiple dosing chambers 52 to store various chemicals. The depth of the dosing chambers 52 in the water can be adjusted by the release mechanism 3, and the water entry position of the dosing chambers 52 can be further adjusted by the position adjustment component 4. After the multiple dosing chambers 52 are placed in the water, the water pressure changes accordingly as the position and depth are continuously adjusted. Therefore, the dosing component 55 can open the corresponding valve according to the different water pressures, allowing different chemicals to be added to water at different depths. This avoids the problem of not being able to treat multiple pollutants simultaneously or adapt to complex pollution situations, especially in environments where the degree and type of pollution in water bodies at different depths may vary. At the same time, when the chemicals are insufficient, the dosing component 56 can be used to add chemicals in a timely manner, thereby ensuring the effectiveness of water pollution treatment.

[0056] To clearly illustrate the above embodiment, in one example of this application, such as Figures 1-10As shown, the dosing assembly 55 includes a dosing pipe 551, a first solenoid valve 552, a controller 553, a water pressure sensor 554, and a water level sensor 555. One end of the dosing pipe 551 is fixedly connected to the outer wall of the dosing chamber 52. The first solenoid valve 552 is installed on the outer wall of the dosing pipe 551. The controller 553 is installed on one side of the top of the operating table 2. The water pressure sensor 554 is installed on the outer wall of the dosing chamber 52, and the water level sensor 555 is installed on the inner wall of the dosing chamber 52.

[0057] As one possible scenario, a drainage mechanism is provided inside the dosing chamber 52. The drainage mechanism may include an electric cylinder and a push plate. The outer wall of the push plate is in contact with the inner wall of the dosing chamber 52. The electric cylinder is installed at the bottom inner side of the dosing chamber 52, and its output end is fixedly connected to the bottom of the push plate. Therefore, by activating the electric cylinder, the push plate can be pushed upward, thereby conveniently draining the liquid medicine.

[0058] It should be understood that the water pressure sensor 554 is located below the push plate.

[0059] Specifically, to achieve the dispensing of different agents at different depths, one end of the dosing pipe 551 is fixedly connected to the outer wall of the dosing chamber 52. A first solenoid valve 552 is installed on the outer wall of the dosing pipe 551, a controller 553 is installed on one side of the top of the operating platform 2, a water pressure sensor 554 is installed on the outer wall of the dosing chamber 52, and a water level sensor 555 is installed on the inner wall of the dosing chamber 52. Multiple water pressure sensors 554 monitor the water pressure in real time. When the water pressure reaches a certain value, the corresponding first solenoid valve 552 is opened, and the liquid medicine in the corresponding dosing chamber 52 is then discharged through the dosing pipe 551, thus achieving... Different agents are applied at different depths, thus avoiding the use of a single agent application system. The main limitation of such systems is that they cannot treat multiple pollutants simultaneously or adapt to complex pollution situations, especially in environments where the degree and type of pollution may differ at different depths. For example, some heavy metals may accumulate in deeper layers of water, while other types of pollutants, such as organic pollutants, may concentrate in shallower layers. A single agent system cannot effectively address this stratification. Meanwhile, the water level sensor 555 can monitor the agent dosage in real time, and when the agent is low, it can be replenished promptly through the dosing assembly 56.

[0060] In one example of this application, such as Figures 1-10As shown, the dosing assembly 56 includes a dosing chamber 561, partitions 562, output pipes 563, connecting pipes 564, a pump body 565, an injection pipe 566, a second solenoid valve 567, and a connecting hose 568. The dosing chamber 561 is fixedly connected to the top of the support platform 1. Multiple partitions 562 are fixedly connected at equal intervals to the inner wall of the dosing chamber 561. The pump body 565 is mounted on the top of the support platform 1, opposite to one side of the dosing chamber 561. One end of each of the multiple output pipes 563 is fixedly inserted through the dosing chamber 561. The top of 61 is located between two partitions 562. The inlet of the connecting pipe 564 is fixedly connected to the other end of multiple output pipes 563. The other end of the connecting pipe 564 is connected to the inlet of the pump body 565. One end of the injection pipe 566 is fixedly connected to the outer wall of the dosing chamber 52. A connecting hose 568 is provided between the other end of the injection pipe 566 and the outlet of the pump body 565, and they are connected through the connecting hose 568. The second solenoid valve 567 is installed on the outer wall of the injection pipe 566.

[0061] Furthermore, such as Figure 4 As shown, the first solenoid valve 552, water pressure sensor 554, water level sensor 555, pump body 565, injection pipe 566, and second solenoid valve 567 are all electrically connected to the controller 553, and the controller 553 is electrically connected to an external power supply.

[0062] Specifically, in order to replenish the medicine in a timely manner when the medicine is low, since the pump body 565 is installed on the top of the support platform 1 and on one side of the dosing chamber 561, one end of multiple output pipes 563 is fixedly inserted through the top of the dosing chamber 561 and is located between two partitions 562. The inlet of the connecting pipe 564 is fixedly connected to the other end of the multiple output pipes 563, and the other end of the connecting pipe 564 is connected to the inlet of the pump body 565. One end of the injection pipe 566 is fixedly connected to the outer wall of the dosing chamber 52, and a connecting hose 568 is provided between the other end of the injection pipe 566 and the outlet of the pump body 565. Connected to 568, the second solenoid valve 567 is installed on the outer wall of the injection pipe 566. Multiple chemicals are pre-stored in the dosing chamber 561. Then, the water level sensor 555 monitors the dosage of chemicals in different dosing chambers 52 in real time. When the chemical solution is low, the first solenoid valve 552 is closed, and the second solenoid valve 567 is opened. The pump body 565 is then activated to extract the pre-stored chemicals, which are then injected into the injection pipe 566 through the connecting hose 568. From there, the chemicals are injected into the dosing chamber 52, ensuring timely replenishment of the chemical solution and guaranteeing the effectiveness of water pollution treatment.

[0063] In one embodiment of this application, such as Figures 1-10As shown, the launching and retracting mechanism 3 includes a U-shaped frame 31, a drive roller 32, a drive motor 33, a connecting rope 34, and a protective component 35. The U-shaped frame 31 is fixedly connected to the top side of the operating platform 2. The drive roller 32 is rotatably connected to both ends of the inner wall of the U-shaped frame 31. The drive motor 33 is installed on the outer wall of the U-shaped frame 31, and the output end of the drive motor 33 is fixedly connected to one end of the drive roller 32. One end of the connecting rope 34 is sleeved on the outer wall of the drive roller 32, and the other end of the connecting rope 34 passes through the protective component 35 and the position adjustment component 4 in sequence, and is fixedly connected to the top of the lifting plate 51.

[0064] It should be noted that, in this embodiment, the inner walls of the U-shaped frame 31 are symmetrically fixedly connected with limiting plates, and the two ends of the drive roller 32 are rotatably connected to the ends of the limiting plates.

[0065] Specifically, to facilitate the adjustment of the depth of the dosing chamber 52, the U-shaped frame 31 is fixedly connected to the top side of the operating platform 2, the drive roller 32 is rotatably connected to both ends of the inner wall of the U-shaped frame 31, the drive motor 33 is installed on the outer wall of the U-shaped frame 31, and the output end of the drive motor 33 is fixedly connected to one end of the drive roller 32. One end of the connecting rope 34 is sleeved on the outer wall of the drive roller 32, and the other end of the connecting rope 34 passes through the protective component 35 and the position adjustment component 4 in sequence, and is fixedly connected to the top of the lifting plate 51. Then, by starting the drive motor 33, the drive roller 32 can be driven to rotate, which can drive the connecting rope 34 to be extended and retracted, thereby enabling the dosing chamber 52 to be conveniently adjusted in depth in the water. In this way, different liquids can be placed in different positions, effectively improving the treatment effect of water pollution.

[0066] In one embodiment of this application, such as Figures 1-10 As shown, the protective assembly 35 includes a support base 351, a protective cover 352, a support sleeve 353, an abutment rod 354, and a support spring 355. The support base 351 is fixedly connected to the top of the operating table 2. The protective cover 352 is bolted to the top of the support base 351. The top of the support base 351 has a guide groove for the movement of the connecting rope 34. One end of multiple support sleeves 353 is fixedly connected to the bottom of the protective cover 352 at equal intervals. One end of the abutment rod 354 slides through the other end of the support sleeve 353 via the support spring 355.

[0067] Furthermore, such as Figure 6 As shown, a ball bearing is rotatably connected to the other end of the abutment rod 354.

[0068] It should be noted that the support base 351 described in this embodiment has a protrusion in the middle, and a threaded hole is provided on the protrusion. The threaded hole matches the bolt on the protective cover plate 352, and the ball is located above the guide groove.

[0069] Specifically, to ensure easier movement of the connecting rope 34, the support base 351 is fixedly connected to the top of the operating table 2, and the protective cover 352 is bolted to the top of the support base 351. The top of the support base 351 is provided with a guide groove for the movement of the connecting rope 34. One end of multiple support sleeves 353 is fixedly connected to the bottom of the protective cover 352 at equal intervals. One end of the abutment rod 354 slides through the other end of the support sleeve 353 through the support spring 355. Thus, during the movement of the connecting rope 34, the support spring 355 drives the ball bearing to abut against the outer wall of the connecting rope 34, thereby ensuring more stable movement of the connecting rope 34.

[0070] In one embodiment of this application, such as Figures 1-10 As shown, the position adjustment assembly 4 includes a support side plate 41, a cylinder 42, a drive rod 43, and a protective sleeve 44. The support side plate 41 is fixedly connected to the inner wall of the support platform 1. The cylinder 42 is installed on one side of the support side plate 41. One end of the drive rod 43 is fixedly connected to the output end of the cylinder 42. The other end of the drive rod 43 slides through the inner wall of the support platform 1 and is fixedly connected to the outer wall of the protective sleeve 44. The protective sleeve 44 is slidably sleeved on the outer wall of the connecting rope 34.

[0071] It should be noted that the inner wall of the protective sleeve 44 described in this embodiment is rotatably connected in a circumferential array with multiple rolling balls, which makes it more convenient for the connecting rope 34 to move inside the protective sleeve 44.

[0072] Specifically, in order to adjust the water inlet position of the dosing chamber 52, since the support side plate 41 is fixedly connected to the inner wall of the support platform 1, the cylinder 42 is installed on one side of the support side plate 41, one end of the drive rod 43 is fixedly connected to the output end of the cylinder 42, and the other end of the drive rod 43 slides through the inner wall of the support platform 1 and is fixedly connected to the outer wall of the protective sleeve 44. The protective sleeve 44 is slidably sleeved on the outer wall of the connecting rope 34. Then, by starting the cylinder 42, the position of the end of the drive rod 43 can be adjusted, which in turn moves the position of the protective sleeve 44, thereby moving the position of the connecting rope 34, thus conveniently adjusting the water inlet position of the dosing chamber 52, thereby improving the water pollution treatment effect.

[0073] A chemical dosing process for an integrated water treatment equipment for water pollution control includes the following steps:

[0074] S1. Equipment Inspection and Installation: Ensure all dosing chambers 52, pipes, delivery / retraction mechanisms 3, and position adjustment components 4 are intact and correctly connected. Install multiple dosing chambers 52 in a staggered manner from top to bottom according to design requirements, ensuring each dosing chamber 52 is connected to the main control system.

[0075] S2. Chemical preparation: Based on the water quality analysis results, select appropriate chemicals and fill them into each dosing tank 52. Ensure that each dosing tank 52 is clearly labeled to avoid confusion.

[0076] S3. Adjust the position of the dosing chamber 52 and activate the position adjustment component 4: Use the control panel to activate the position adjustment component 4, and adjust the position and depth of the dosing chamber 52 as needed.

[0077] S4. Initiate chemical dosing, monitor water pressure data, determine the dosing chamber 52 to be activated, select the appropriate dosing chamber 52 based on the water pressure, and open the corresponding pipeline through the control system to begin chemical dosing.

[0078] S5. Dosing and Maintenance: Real-time monitoring of the dosage in each dosing chamber 52; timely dosing when the dosage is insufficient; dosing and administration can be performed simultaneously.

[0079] S6. Regular inspection: Conduct a comprehensive inspection of the system regularly, including the inspection of components such as pipes, tanks, and valves, to ensure there are no leaks or damage. According to the maintenance plan, clean the dosing tank 52 and pipes regularly to prevent chemical residues from causing blockages or corrosion.

[0080] In summary, the integrated water treatment equipment dosing system and process for water pollution control in this application embodiment uses multiple water pressure sensors 554 to monitor water pressure in real time. When the water pressure reaches a certain value, the corresponding first solenoid valve 552 can be opened, and then the chemical solution in the corresponding dosing chamber 52 can be discharged through the dosing pipe 551. This achieves the effect of different agents being added at different depths, thus avoiding the use of a single agent dosing system. The main limitation of such systems is that they cannot treat multiple pollutants simultaneously or adapt to complex pollution situations, especially in environments where the degree and type of pollution in water bodies at different depths may be different. At the same time, the water level sensor 555 can monitor the dosage of the chemical in real time, and when the chemical is low, it can be replenished in time through the dosing component 56.

[0081] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A chemical dosing system for an integrated water treatment equipment for water pollution control, comprising a support platform (1), wherein an operating platform (2) is fixedly connected to the top of the support platform (1), characterized in that, It also includes a receiving and dispensing mechanism (3), a position adjustment component (4), and a layered drug delivery mechanism (5), wherein, The take-up and release mechanism (3) is installed on the top of the operating table (2), and the position adjustment component (4) is installed inside the support platform (1) and can be used to adjust the drug delivery position; The layered dosing mechanism (5) includes a hoisting plate (51), a dosing chamber (52), a mounting top plate (53), a mounting bottom plate (54), a dosing assembly (55), and a dosing assembly (56), wherein, The top of the hoisting plate (51) is fixedly connected to the end of the retracting mechanism (3); The two ends of the plurality of dosing chambers (52) are respectively symmetrically fixedly connected with the mounting top plate (53) and the mounting bottom plate (54), and the plurality of dosing chambers (52) are installed alternately through the mounting top plate (53) and the mounting bottom plate (54), and the bottom of the hoisting plate (51) is fixedly connected to the top of one of the mounting top plates (53); The dosing assembly (55) is installed on the dosing chamber (52); The dosing assembly (56) is installed on the top of the support platform (1), and the dosing assembly (56) is connected to a plurality of the dosing chambers (52); The dosing assembly (55) includes a dosing pipe (551), a first solenoid valve (552), a controller (553), a water pressure sensor (554), and a water level sensor (555), wherein, One end of the dosing pipe (551) is fixedly connected to the outer wall of the dosing chamber (52), and the first solenoid valve (552) is installed on the outer wall of the dosing pipe (551); The controller (553) is installed on one side of the top of the control panel (2); The water pressure sensor (554) is installed on the outer wall of the dosing chamber (52), and the water level sensor (555) is installed on the inner wall of the dosing chamber (52). The dosing assembly (56) includes a dosing chamber (561), a partition (562), an output pipe (563), a connecting pipe (564), a pump body (565), an injection pipe (566), a second solenoid valve (567), and a connecting hose (568), wherein, The dosing chamber (561) is fixedly connected to the top of the support platform (1), and a plurality of partitions (562) are fixedly connected at equal intervals to the inner wall of the dosing chamber (561); The pump body (565) is mounted on the top of the support platform (1) and on one side relative to the dosing chamber (561); One end of each of the multiple output pipes (563) is fixedly inserted through the top of the dosing chamber (561) and is located between the two partitions (562). The inlet of the connecting pipe (564) is fixedly connected to the other end of the multiple output pipes (563), and the other end of the connecting pipe (564) is connected to the inlet of the pump body (565). One end of the injection pipe (566) is fixedly connected to the outer wall of the dosing chamber (52), and the other end of the injection pipe (566) is connected to the outlet of the pump body (565) by the connecting hose (568). The second solenoid valve (567) is installed on the outer wall of the injection pipe (566).

2. The integrated water treatment equipment dosing system for water pollution control according to claim 1, characterized in that, The take-up and take-down mechanism (3) includes a U-shaped frame (31), a drive roller (32), a drive motor (33), a connecting rope (34), and a protective assembly (35), wherein, The U-shaped frame (31) is fixedly connected to the top side of the operating table (2), and the drive roller (32) is rotatably connected to both ends of the inner wall of the U-shaped frame (31); The drive motor (33) is mounted on the outer wall of the U-shaped frame (31), and the output end of the drive motor (33) is fixedly connected to one end of the drive roller (32); One end of the connecting rope (34) is sleeved on the outer wall of the drive roller (32), and the other end of the connecting rope (34) passes through the protective component (35) and the position adjustment component (4) in sequence, and is fixedly connected to the top of the hoisting plate (51).

3. The integrated water treatment equipment dosing system for water pollution control according to claim 2, characterized in that, The protective assembly (35) includes a support base (351), a protective cover (352), a support sleeve (353), an abutment rod (354), and a support spring (355), wherein, The support base (351) is fixedly connected to the top of the operating table (2), and the protective cover (352) is bolted to the top of the support base (351); The top of the support base (351) is provided with a guide groove for the movement of the connecting rope (34); One end of each of the multiple support sleeves (353) is fixedly connected at equal intervals to the bottom of the protective cover plate (352), and one end of the abutment rod (354) slides through the other end of the support sleeve (353) via the support spring (355).

4. The integrated water treatment equipment dosing system for water pollution control according to claim 3, characterized in that, The position adjustment assembly (4) includes a support side plate (41), a cylinder (42), a drive rod (43), and a protective sleeve (44), wherein, The support side plate (41) is fixedly connected to the inner wall of the support platform (1), and the cylinder (42) is installed on one side of the support side plate (41). One end of the drive rod (43) is fixedly connected to the output end of the cylinder (42), and the other end of the drive rod (43) slides through the inner wall of the support platform (1) and is fixedly connected to the outer wall of the protective sleeve (44). The protective sleeve (44) is slidably sleeved on the outer wall of the connecting rope (34).

5. The integrated water treatment equipment dosing system for water pollution control according to claim 1, characterized in that, The top of the mounting plate (53) is fixedly connected with a threaded head (531), and the bottom of the mounting plate (54) is provided with a threaded groove (541) that matches the threaded head (531).

6. The integrated water treatment equipment dosing system for water pollution control according to claim 1, characterized in that, The first solenoid valve (552), water pressure sensor (554), water level sensor (555), pump body (565), injection pipe (566) and the second solenoid valve (567) are all electrically connected to the controller (553), and the controller (553) is electrically connected to an external power source.

7. The integrated water treatment equipment dosing system for water pollution control according to claim 3, characterized in that, The other end of the abutment rod (354) is rotatably connected to a ball bearing.

8. A dosing process for an integrated water treatment equipment for water pollution control, implemented using the dosing system for an integrated water treatment equipment for water pollution control as described in any one of claims 1-7, characterized in that, Includes the following steps: S1. Equipment inspection and installation: Ensure that all dosing chambers (52), pipes, take-up and take-down mechanisms (3) and position adjustment components (4) are intact and correctly connected. Install multiple dosing chambers (52) in an alternating manner from top to bottom according to the design requirements, and ensure that each dosing chamber (52) is connected to the main control system. S2. Chemical preparation: Based on the water quality analysis results, select appropriate chemicals and fill them into each of the dosing tanks (52). Ensure that each dosing tank (52) is clearly marked to avoid confusion. S3. Adjust the position of the dosing chamber (52) and start the position adjustment component (4): Use the control panel to start the position adjustment component (4) and adjust the position and depth of the dosing chamber (52) as needed; S4. Start the dosing process, monitor the water pressure data of the water body, determine the dosing chamber (52) that needs to be opened, select the corresponding dosing chamber (52) according to the water pressure, open the corresponding pipeline through the control system, and start the dosing of the agent; S5. Adding and maintaining the drug: Real-time monitoring of the drug dosage in each of the drug delivery chambers (52). When the drug is insufficient, timely addition of the drug is carried out. The addition and drug delivery operations can be carried out simultaneously. S6. Regular inspection: Regularly conduct a comprehensive inspection of the system, including the pipes, tanks, and valve components, to ensure there are no leaks or damage. According to the maintenance plan, regularly clean the dosing tank (52) and pipes to prevent chemical residues from causing blockages or corrosion.