Intelligent water plant water production and supply system

The intelligent water treatment system addresses inefficiencies in quartz sleeve cleaning by using UV light transmission detection to control a mechanical cleaning mechanism, ensuring consistent UV light transmission and improved cleaning efficiency.

CN120309052AInactive Publication Date: 2025-07-15梅州市梅县区村镇供排水服务中心
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Patent Information

Application Number
CN202510511156.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2025-07-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, the cleaning efficiency of ultraviolet lamp quartz casing is low and cannot be cleaned in real time according to actual conditions, which is prone to untimely cleaning.

Method used

UV transmittance is detected through an ultraviolet intensity sensor, combined with lifting modules and mechanical cleaning components, the surface condition of the quartz casing is monitored in real time, and the casing is steadily moved through the diamond four-link structure, and efficient cleaning is carried out using scrapers and cleaning liquid or airflow.

Benefits of technology

Real-time cleaning of quartz casing is achieved, the accuracy and cleaning efficiency of ultraviolet light transmittance detection are improved, and the stability of ultraviolet disinfection effect is ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of water production and supply, in particular to an intelligent water plant water production and supply system which comprises an ultraviolet lamp and a quartz sleeve assembled outside the ultraviolet lamp in a sealed mode. The assembly seat is arranged at the top of the disinfection channel, a lifting module is arranged at the bottom of the assembly seat, the output end of the lifting module is associated with the end part of a quartz sleeve, and the quartz sleeve can move upwards and is separated from the liquid level; a plurality of ultraviolet intensity sensors are installed at the bottom of the assembly base, the output end of the lifting module is located under the ultraviolet intensity sensors, and vertically upward light emitted by the ultraviolet lamp can be received by the ultraviolet intensity sensors; according to the invention, the transmissivity of ultraviolet light penetrating through the quartz socket tube can be detected, so that the quartz socket tube can be cleaned by the pneumatic mechanical cleaning assembly according to the transmissivity condition.
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Description

Technical Field

[0001] The present invention relates to the technical field of water production and supply, and in particular to an intelligent water plant water production and supply system. Background Art

[0002] In the process of water production in the water plant, the water raw materials need to be disinfected by ultraviolet light. Therefore, a UV disinfection channel will be designed at the end of the water production process. In the open channel, the UV lamp is usually completely immersed below the water level in the channel. This design is to ensure that the water flow is fully exposed to the radiation range of ultraviolet light, thereby achieving efficient sterilization effect.

[0003] However, in the prior art, a scraper is installed on the lamp holder to process dirt on the outer wall of the quartz sleeve, such as inorganic scaling, sticky biofilm, algae film or other suspended matter. The scraper works periodically and cannot be cleaned in real time according to the actual situation of the quartz sleeve. The efficiency is low and it is easy to be untimely cleaned. Summary of the invention

[0004] The present invention provides an intelligent water plant water making and supply system, which can detect the transmittance of ultraviolet light penetrating a quartz sleeve, so that a pneumatic mechanical cleaning component can clean the quartz sleeve according to the transmittance.

[0005] In order to achieve the above object, the present invention provides the following technical solutions:

[0006] An intelligent water plant water production and supply system, comprising:

[0007] An ultraviolet lamp and a quartz sleeve sealed on the outside thereof; a disinfection channel and an assembly seat on its top, a lifting module installed at the bottom of the assembly seat, the output end of the lifting module is associated with the end of the quartz sleeve, and the quartz sleeve can be displaced upward and out of the liquid surface; a plurality of ultraviolet intensity sensors are installed at the bottom of the assembly seat, the output end of the lifting module is located directly below the ultraviolet intensity sensor, and the vertically upward light emitted by the ultraviolet lamp can be received by the ultraviolet intensity sensor; a mechanical cleaning component associated with the quartz sleeve.

[0008] Optionally, the lifting module includes two main drive connecting rods symmetrically hinged on the assembly seat, the free ends of the two main drive connecting rods are hinged with driven connecting rods, the free ends of the two driven connecting rods are commonly hinged with an assembly gimbal, the quartz sleeve is fixedly mounted on the assembly gimbal, a diamond four-bar linkage is formed between the two main drive connecting rods, the two driven connecting rods, the assembly gimbal and the assembly seat, and the two main drive connecting rods and the two driven connecting rods are symmetrically distributed about the median vertical plane of the quartz sleeve; the lifting module also includes an external driver for controlling the opposite rotation of the two main drive connecting rods.

[0009] Optionally, the mechanical cleaning assembly includes a positioning seat installed on the inner wall of the disinfection channel. A threaded seat is slidably installed inside the positioning seat along the axis direction of the quartz sleeve. Two assembly covers are symmetrically hinged on the threaded seat. When the two assembly covers are in the expanded state, they do not interfere with the up and down displacement of the quartz sleeve. When the two assembly covers are rotated towards each other to the closed state, they can form a clean cylinder sleeve. When the assembly cloud platform moves upward to a preset position, the two assembly covers are rotated towards each other to the closed state. The clean sleeve is sleeved on the outer wall of the quartz sleeve, and there is a gap between the inner wall of the clean sleeve and the outer wall of the quartz sleeve. A plurality of scraping strips are installed on the inner wall of the clean sleeve, and the scraping strips are in close contact with the outer wall of the quartz sleeve. A first driver for controlling the relative rotation of the two assembly covers is installed on the threaded seat; a second driver for controlling the sliding of the threaded seat along the axis direction of the quartz sleeve is designed on the positioning seat.

[0010] Optionally, a liquid storage cavity is designed inside the assembly cover. The liquid storage cavity is associated with an external intelligent liquid pump. A plurality of liquid outlet holes are opened on the inner wall of the assembly cover, and all the liquid outlet holes are communicated with the liquid storage cavity. The liquid outlet holes are located in the intervals between the plurality of scraping strips. The liquid pump can transport special cleaning liquid into the liquid storage cavity.

[0011] Optionally, the scraping strips are in a spiral structure on the inner wall of the assembly cover, and a plurality of the scraping strips are circumferentially arranged in an array on the inner wall of the assembly cover. A plurality of the liquid outlet holes located between any two scraping strips are arranged in a spiral pattern, and the jet direction of the liquid outlet holes intersects with the axis of the quartz sleeve.

[0012] Optionally, the first driver includes a servo motor installed on the threaded seat. Two rotating shafts are fixedly installed on the two assembly covers respectively. The two rotating shafts are rotatably assembled on the threaded seat. Gears are fixedly installed on the two rotating shafts respectively, and the two gears are meshed and connected. The output end of the servo motor is fixedly connected with one of the rotating shafts.

[0013] Optionally, the second driver includes a groove opened inside the positioning seat. The threaded seat is slidably assembled in the groove. A lead screw is rotatably installed on the inner wall of the groove. The threaded seat is threadedly connected to the threaded outer wall of the lead screw. The axis of the lead screw is parallel to the axis of the quartz sleeve. A servo motor for controlling the rotation of the lead screw is installed on the outer wall of the positioning seat.

[0014] Optionally, an air storage tank is fixedly installed on the outer wall of the driven connecting rod. A plurality of air jet holes are opened on the air storage tank. The plurality of air jet holes are arranged in an array along the axis of the quartz sleeve, and the jet direction of the air jet holes is collinear and coincides with the radial line of the quartz sleeve. The opening of the air jet hole is of an expanded structure. The air storage tank is associated with an external clean air source.

[0015] Optionally, a sewage receiving hopper is slidably installed on the inner wall of the disinfection channel. The sliding path of the sewage receiving hopper is located below the liquid level and below the quartz sleeve, and the sewage receiving hopper does not interfere with the operation of the mechanical cleaning assembly. The sewage receiving hopper is designed to be inclined, and a water baffle is installed at the inclined end of the sewage receiving hopper.

[0016] The present invention provides an intelligent water plant water production and supply system, which has the following beneficial effects compared with the prior art:

[0017] First, through the cooperation of the ultraviolet lamp group, the lifting module and the ultraviolet intensity sensor, the ultraviolet intensity sensor can be used to detect the ultraviolet light passing through the quartz sleeve, so as to obtain the real-time ultraviolet light transmittance, thereby indirectly reflecting the interference situation on the surface of the quartz sleeve, and then controlling the operation of the mechanical cleaning assembly according to the transmittance situation.

[0018] Second, by designing the rhombic four-link mechanism, the quartz sleeve can be stably moved in the vertical direction, and the ultraviolet intensity sensor can always be located directly above the ultraviolet lamp group. Secondly, two sets of lifting modules can be designed, corresponding to both ends of the quartz sleeve respectively, to improve the bearing capacity.

[0019] Third, when the quartz sleeve is removed from the liquid level and it is detected that there are interference substances on its surface, the two assembly covers will rotate towards each other to form a clean cylinder sleeve. The clean cylinder sleeve surrounds the periphery of the quartz sleeve, and by using the displacement of the threaded seat and the close fit of the scraping strip with the outer wall of the quartz sleeve, the scraping strip can perform a comprehensive and higher-quality scraping and cleaning on the circumferential outer wall of the quartz sleeve.

[0020] Fourth, through the cooperation between the gas storage tank and the air injection holes, the outside of the quartz sleeve can be subjected to air flow impact before detection or after cleaning, to avoid liquid residue on the surface of the quartz sleeve. Description of the Drawings

[0021] Figure 1 is the external three-dimensional structure schematic diagram of the present invention;

[0022] Figure 2 is for the present invention Figure 1 front view structure schematic diagram;

[0023] Figure 3 is the three-dimensional structure schematic diagram of the lifting module in the present invention;

[0024] Figure 4 is for the present invention Figure 3 right view structure schematic diagram;

[0025] Figure 5 is for the present invention along Figure 3 sectional structure schematic diagram at A-A in;

[0026] Figure 6It is a schematic diagram of the structure of the two assembly covers of the present invention when they are in an extended state;

[0027] Figure 7 It is a three-dimensional structural schematic diagram of the first driver and the assembly cover in the present invention;

[0028] Figure 8 is a schematic diagram of the three-dimensional structure of the second driver in the present invention;

[0029] Figure 9 It is a schematic diagram of the three-dimensional structure of the assembly cover, the liquid outlet and the scraper in the present invention.

[0030] In the figure: 1. disinfection channel; 2. assembly seat; 3. driven connecting rod; 4. assembly pan head; 5. assembly cover; 6. main drive connecting rod; 7. ultraviolet intensity sensor; 8. air storage box; 9. positioning seat; 11. jet hole; 12. threaded seat; 13. scraper; 14. liquid outlet; 15. rotating shaft; 16. gear; 17. screw; 19. water baffle; 21. sewage hopper. DETAILED DESCRIPTION

[0031] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0032] See also Figures 1 to 9 The present invention provides a technical solution: an intelligent water plant water production and supply system, comprising:

[0033] An ultraviolet lamp and a quartz sleeve sealed on the outside thereof; a disinfection channel 1 and an assembly seat 2 on the top thereof, a lifting module being installed at the bottom of the assembly seat 2, the output end of the lifting module being associated with the end of the quartz sleeve, and the quartz sleeve being displaced upward and out of the liquid surface; a plurality of ultraviolet intensity sensors 7 being installed at the bottom of the assembly seat 2, the output end of the lifting module being located directly below the ultraviolet intensity sensor 7, and the vertically upward light emitted by the ultraviolet lamp being received by the ultraviolet intensity sensor 7; a mechanical cleaning component associated with the quartz sleeve.

[0034] In the prior art, the cleaning mechanism cannot clean in real time according to the actual situation of the quartz sleeve, with low efficiency and prone to untimely cleaning. In the present invention, through the cooperation of the ultraviolet lamp group, the lifting module and the ultraviolet intensity sensor 7, the ultraviolet intensity sensor 7 can be used to detect the ultraviolet light passing through the quartz sleeve, so as to obtain the real-time ultraviolet light transmittance, thereby indirectly reflecting the interference situation on the surface of the quartz sleeve, and then controlling the operation of the mechanical cleaning component according to the transmittance situation. Secondly, in order to better detect the transmittance of ultraviolet light through the quartz sleeve, the lifting module can move the quartz sleeve and the ultraviolet lamp group upward to get out of the liquid surface, improving the detection quality.

[0035] Specifically, when the quartz sleeve is pollution-free, record the initial ultraviolet light intensity value received by the ultraviolet intensity sensor 7, and compare it with the ultraviolet light intensity value received by the ultraviolet intensity sensor 7 after the quartz sleeve has worked for a period of time, so as to judge the attenuation of the ultraviolet light, and at the same time calculate the transmittance T. Therefore, an intelligent cleaning module for the water plant can be designed. When the transmittance T is greater than the transmittance threshold S, it is determined that the quartz sleeve is normal at this time, and the lifting module controls the quartz sleeve and the ultraviolet lamp group to move down and continue to work; if the transmittance T is less than the transmittance threshold S, trigger an external electronic alarm or control the mechanical cleaning component to work, perform a cleaning procedure on the quartz sleeve, and then detect the transmittance T again until the transmittance T is greater than the transmittance threshold S.

[0036] In a more preferred embodiment, the lifting module includes two main driving links 6 symmetrically hinged on the assembly seat 2. The free ends of the two main driving links 6 are both hinged with driven links 3. The free ends of the two driven links 3 are jointly hinged with an assembly cloud platform 4. The quartz sleeve is fixedly assembled on the assembly cloud platform 4. A rhombic four-link mechanism is formed among the two main driving links 6, the two driven links 3, the assembly cloud platform 4 and the assembly seat 2, and the two main driving links 6 and the two driven links 3 are symmetrically distributed with respect to the central vertical plane of the quartz sleeve; the lifting module further includes an external driver for controlling the two main driving links 6 to rotate towards each other.

[0037] Please refer to Figures 2 to 6 , in this embodiment, by designing a rhombic four-link mechanism, the quartz sleeve can be stably moved in the vertical direction, and the ultraviolet intensity sensor 7 can always be directly above the ultraviolet lamp group. Secondly, two sets of lifting modules can be designed, corresponding to both ends of the quartz sleeve respectively, to improve the bearing capacity. When the external driver controls the two main driving links 6 to rotate towards each other, the assembly cloud platform 4 can be displaced upward.

[0038] Based on the embodiment of the lifting module, the mechanical cleaning assembly includes a positioning seat 9 installed on the inner wall of the disinfection channel 1. A threaded seat 12 is slidably installed inside the positioning seat 9 along the axis direction of the quartz sleeve. Two assembly covers 5 are symmetrically hinged on the threaded seat 12. When the two assembly covers 5 are in the expanded state, they do not interfere with the up and down displacement of the quartz sleeve. When the two assembly covers 5 are rotated towards each other to the closed state, they can form a clean cylinder sleeve. When the assembly platform 4 is displaced upwards to a preset position, the two assembly covers 5 are rotated towards each other to the closed state. The clean sleeve is sleeved on the outer wall of the quartz sleeve, and there is a gap between the inner wall of the clean cylinder sleeve and the outer wall of the quartz sleeve. A plurality of scraping strips 13 are installed on the inner wall of the clean cylinder sleeve. The scraping strips 13 are in close contact with the outer wall of the quartz sleeve. A first driver for controlling the relative rotation of the two assembly covers 5 is installed on the threaded seat 12; a second driver for controlling the sliding of the threaded seat 12 along the axis direction of the quartz sleeve is designed on the positioning seat 9.

[0039] In the ultraviolet disinfection channel, since the ultraviolet lamp combined with the quartz sleeve needs to be immersed below the liquid level, mechanical cleaning of the circumferential outer wall of the quartz sleeve is required. Please refer to Figure 3 and Figure 6 , in this embodiment, when the quartz sleeve is removed from the liquid level and it is detected that there are interfering substances on its surface, at this time, the two assembly covers 5 are rotated towards each other to form a clean cylinder sleeve. The clean cylinder sleeve surrounds the outer periphery of the quartz sleeve. By using the displacement of the threaded seat 12, the scraping strips 13 comprehensively scrape and clean the circumferential outer wall of the quartz sleeve, and the scraping strips 13 are closely attached to the outer wall of the quartz sleeve, improving the quality of mechanical cleaning.

[0040] Based on the embodiment of the mechanical cleaning assembly, a liquid storage cavity is designed inside the assembly cover 5. The liquid storage cavity is associated with an external intelligent liquid pump. A plurality of liquid outlet holes 14 are opened on the inner wall of the assembly cover 5. The liquid outlet holes 14 are all communicated with the liquid storage cavity. The liquid outlet holes 14 are located in the intervals between the plurality of scraping strips 13. The liquid pump can transport a special cleaning liquid into the liquid storage cavity. Please refer to Figure 9 , in this embodiment, during the cleaning process, it is also necessary to cooperate with the cleaning liquid to improve the cleaning efficiency and quality. For example, citric acid is used. Secondly, the liquid outlet holes 14 can adopt polytetrafluoroethylene scraping blades, which are durable and have good cleaning quality.

[0041] Furthermore, the scraping strips 13 are in a spiral structure on the inner wall of the assembly cover 5, and a plurality of scraping strips 13 are circumferentially arrayed on the inner wall of the assembly cover 5. A plurality of liquid outlet holes 14 located between any two scraping strips 13 are arranged in a spiral pattern, and the spraying direction of the liquid outlet holes 14 intersects with the axis of the quartz sleeve. Please refer to Figure 9 , in this embodiment, the plurality of spiral scraping strips 13 can cover the circumferential outer wall of the quartz sleeve, and the spiral-structured scraping strips 13 can reduce the sense of resistance compared with the horizontal design in the prior art, improving the cleaning quality and efficiency.

[0042] Based on the embodiment of the mechanical cleaning assembly, the first driver includes a servo motor installed on the threaded seat 12. Both of the two assembly covers 5 are fixedly installed with rotating shafts 15. Both of the two rotating shafts 15 are rotatably assembled on the threaded seat 12. Both of the two rotating shafts 15 are fixedly installed with gears 16. The two gears 16 are meshed and connected. The output end of the servo motor is fixedly connected to one of the rotating shafts 15.

[0043] Based on the embodiment of the mechanical cleaning assembly, the second driver includes a groove opened inside the positioning seat 9. The threaded seat 12 is slidably assembled in the groove. A lead screw 17 is rotatably installed on the inner wall of the groove. The threaded seat 12 is threadedly connected to the threaded outer wall of the lead screw 17. The axis of the lead screw 17 is parallel to the axis of the quartz sleeve. A servo motor for controlling the rotation of the lead screw 17 is installed on the outer wall of the positioning seat 9.

[0044] Based on the embodiment of the lifting module, an air storage tank 8 is fixedly installed on the outer walls of the two driven connecting rods 3. A plurality of air injection holes 11 are opened on the air storage tank 8. The plurality of air injection holes 11 are arranged in an array along the axis of the quartz sleeve. The injection direction of the air injection holes 11 is collinear and coincides with the radial line of the quartz sleeve. The opening of the air injection hole 11 is of an expanding structure. The air storage tank 8 is associated with an external clean air source. Please refer to Figure 6 In order to improve the detection quality of the transmittance, through the cooperation between the air storage tank 8 and the air injection holes 11 in this embodiment, the outside of the quartz sleeve can be subjected to an air flow impact before detection to avoid residual liquid interfering with the detection quality.

[0045] Secondly, after the cleaning liquid is cleaned, the air flow impact can quickly dry the surface of the quartz sleeve and quickly perform a secondary detection on the quartz sleeve.

[0046] To sum up, further, a sewage receiving hopper 21 is slidably installed on the inner wall of the disinfection channel 1. The sliding path of the sewage receiving hopper 21 is located below the liquid level and the quartz sleeve, and the sewage receiving hopper 21 does not interfere with the work of the mechanical cleaning assembly. The sewage receiving hopper 21 is inclined. A water baffle 19 is installed at the inclined end of the sewage receiving hopper 21. Please refer to Figure 1 and Figure 2 In this embodiment, when cleaning the outer wall of the quartz sleeve, there will be interfering substances such as inorganic scale. To prevent these interfering substances from falling into the open channel again, before cleaning, the sewage receiving hopper 21 needs to be slid to below the liquid level and the quartz sleeve to complete the blocking. Secondly, liquids such as the cleaning liquid will also be blocked by the water baffle 19 to prevent them from flowing into the open channel.

[0047] By using the cooperation of the above structures, the transmittance of ultraviolet light passing through the quartz sleeve can be detected, and then the mechanical cleaning assembly can clean the quartz sleeve according to the transmittance situation.

[0048] The standard parts used in this embodiment can be directly purchased from the market. As for the non-standard structural components described in the specification and drawings, they can also be directly processed without any doubt based on the existing common technical knowledge. At the same time, the connection methods of each component adopt the mature conventional means in the prior art, and the machinery, parts and equipment all adopt the conventional models in the prior art. Therefore, no specific description will be made here.

[0049] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An intelligent water plant water production and supply system, characterized in that: Including: An ultraviolet lamp and a quartz sleeve sealing and assembling its exterior; A disinfection channel (1) and an assembling seat (2) at its top. A lifting module is installed at the bottom of the assembling seat (2). The output end of the lifting module is associated with the end of the quartz sleeve, and the quartz sleeve can be displaced upward and separated from the liquid level; A plurality of ultraviolet intensity sensors (7) are installed at the bottom of the assembling seat (2). The output end of the lifting module is directly below the ultraviolet intensity sensors (7), and the vertically upward light emitted by the ultraviolet lamp can be received by the ultraviolet intensity sensors (7); A mechanical cleaning component associated with the quartz sleeve.

2. The intelligent water plant water production and supply system according to claim 1, wherein: The lifting module includes two main driving connecting rods (6) symmetrically hinged on the assembling seat (2). The free ends of the two main driving connecting rods (6) are both hinged with driven connecting rods (3). The free ends of the two driven connecting rods (3) are jointly hinged with an assembling cloud platform (4). The quartz sleeve is fixedly assembled on the assembling cloud platform (4). A rhombic four-link mechanism is formed among the two main driving connecting rods (6), the two driven connecting rods (3), the assembling cloud platform (4) and the assembling seat (2), and the two main driving connecting rods (6) and the two driven connecting rods (3) are symmetrically distributed with respect to the central vertical plane of the quartz sleeve; The lifting module further includes an external driver for controlling the opposite rotation of the two main driving connecting rods (6).

3. The intelligent water plant water production and supply system according to claim 2, characterized in that: The mechanical cleaning component includes a positioning seat (9) installed on the inner wall of the disinfection channel (1). A threaded seat (12) is slidably installed in the positioning seat (9) along the axis direction of the quartz sleeve. Two assembling covers (5) are symmetrically hinged on the threaded seat (12). When the two assembling covers (5) are in the expanded state, they do not interfere with the up and down displacement of the quartz sleeve. When the two assembling covers (5) rotate towards each other to the closed state, they can form a clean cylinder sleeve. When the assembling cloud platform (4) is displaced upward to a preset position, the two assembling covers (5) rotate towards each other to the closed state. The clean sleeve is sleeved on the outer wall of the quartz sleeve, and there is a gap between the inner wall of the clean cylinder sleeve and the outer wall of the quartz sleeve. A plurality of scraping strips (13) are installed on the inner wall of the clean cylinder sleeve. The scraping strips (13) are in close contact with the outer wall of the quartz sleeve. A first driver for controlling the relative rotation of the two assembling covers (5) is installed on the threaded seat (12); A second driver for controlling the sliding of the threaded seat (12) along the axis direction of the quartz sleeve is designed on the positioning seat (9).

4. The intelligent water plant water production and supply system according to claim 3, characterized in that: A liquid storage cavity is designed inside the assembling cover (5). The liquid storage cavity is associated with an external intelligent liquid pump. A plurality of liquid outlet holes (14) are opened on the inner wall of the assembling cover (5). The liquid outlet holes (14) are all communicated with the liquid storage cavity. The liquid outlet holes (14) are located in the intervals between the plurality of scraping strips (13). The liquid pump can transport a special cleaning liquid into the liquid storage cavity.

5. The intelligent water plant water production and supply system according to claim 4, characterized in that: The scraping strips (13) are in a spiral structure on the inner wall of the assembling cover (5), and a plurality of the scraping strips (13) are circumferentially arrayed on the inner wall of the assembling cover (5). A plurality of the liquid outlet holes (14) located between any two scraping strips (13) are arranged in a spiral pattern, and the jetting direction of the liquid outlet holes (14) intersects with the axis of the quartz sleeve.

6. The intelligent water plant water production and supply system according to claim 3, characterized in that: The first driver includes a servo motor mounted on the threaded seat (12). Rotating shafts (15) are fixedly installed on both of the assembly covers (5). Both of the rotating shafts (15) are rotatably assembled on the threaded seat (12). Gears (16) are fixedly installed on both of the rotating shafts (15). The two gears (16) are meshed and connected. The output end of the servo motor is fixedly connected to one of the rotating shafts (15).

7. The intelligent water plant water production and supply system according to claim 3, characterized in that: The second driver includes a groove formed inside the positioning seat (9). The threaded seat (12) is slidably assembled in the groove. A lead screw (17) is rotatably installed on the inner wall of the groove. The threaded seat (12) is threadedly connected to the threaded outer wall of the lead screw (17). The axis of the lead screw (17) is parallel to the axis of the quartz sleeve. A servo motor for controlling the rotation of the lead screw (17) is installed on the outer wall of the positioning seat (9).

8. The intelligent water plant water production and supply system according to claim 2, wherein: An air storage tank (8) is fixedly installed on the outer walls of both of the driven connecting rods (3). A plurality of air injection holes (11) are formed in the air storage tank (8). The plurality of air injection holes (11) are arranged in an array along the axis of the quartz sleeve. The injection direction of the air injection holes (11) is collinear and coincides with the radial line of the quartz sleeve. The opening of the air injection hole (11) is of an expanding structure. The air storage tank (8) is associated with an external clean air source.

9. The intelligent water plant water production and supply system according to any one of claims 1-8, characterized in that: A sewage receiving hopper (21) is slidably installed on the inner wall of the disinfection channel (1). The sliding path of the sewage receiving hopper (21) is located below the liquid level and below the quartz sleeve, and the sewage receiving hopper (21) does not interfere with the operation of the mechanical cleaning assembly. The sewage receiving hopper (21) is designed to be inclined. A water baffle (19) is installed at the inclined end of the sewage receiving hopper (21).