Modularized intelligent electrodeless ultraviolet sewage treatment device

The ultraviolet wastewater treatment device, with its modular and intelligent design, uses an electric push rod to drive the ultraviolet lamp tube to swing and a magnetic ring to link, which solves the problem of uneven wastewater treatment caused by the fixed installation of ultraviolet lamp tubes, and improves the uniformity of wastewater treatment and the stability of effluent water quality.

CN121573765AInactive Publication Date: 2026-02-27LUZHOU VOCATIONAL & TECHN COLLEGE
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Patent Information

Application Number
CN202610013068.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-07
Publication Date
2026-02-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In existing ultraviolet wastewater treatment devices, the fixed installation method of ultraviolet lamps leads to uneven irradiation doses of wastewater flowing through the treatment area. Some areas receive insufficient irradiation, while others receive excessive irradiation, affecting the stability of the effluent water quality.

Method used

Adopting a modular and intelligent design, the ultraviolet lamp is driven to swing slightly by an electric push rod, and the brightness of the lamp is precisely controlled by a magnetic ring and a pressure sensor, ensuring uniform treatment of wastewater.

Benefits of technology

It significantly improves the uniformity of wastewater purification and energy utilization efficiency, realizes intelligent brightness adjustment of ultraviolet lamps, and improves the stability of effluent water quality.

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Abstract

The invention relates to the technical field of sewage treatment, and discloses a modular intelligent electrodeless ultraviolet sewage treatment device which comprises a mounting top plate, a concave mounting frame is arranged at the bottom of the mounting top plate, and a power supply assembly is further arranged above the mounting top plate. A plurality of middle supporting rods which are distributed at equal intervals are arranged in the middle of the bottom of the concave inner groove of the mounting frame, and a plurality of left placing frames and right placing frames which are distributed at equal intervals are arranged on the side walls, opposite to the middle supporting rods, of the two sides of the interior of the mounting frame; and rectangular notches are formed in each left placing frame and each right placing frame. According to the device, the electric push rod drives the ultraviolet lamp tubes to slightly swing, all the lamp tubes are linked through the rotating rod and the pull rod, it is ensured that the ultraviolet treatment degree of flowing sewage is consistent, the purification uniformity is greatly improved, and meanwhile when the ultraviolet lamp tubes swing, the ultraviolet lamp tubes can drive the magnetic rings, the connecting pieces and the like to be linked with the pressure sensors; and signals can be transmitted to the controller to realize accurate control of the brightness of the lamp tube, and the intelligent level is high.
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Description

Technical Field

[0001] This invention belongs to the field of wastewater treatment technology, specifically, it relates to a modular intelligent electrodeless ultraviolet wastewater treatment device. Background Technology

[0002] In the field of wastewater treatment, ultraviolet disinfection technology has become one of the mainstream advanced treatment methods due to its advantages such as no chemical residue, high sterilization efficiency, and convenient operation.

[0003] In existing ultraviolet wastewater treatment devices, ultraviolet lamps are mostly installed in a fixed manner. Due to the limitations of wastewater flow and lamp irradiation range, the wastewater flowing through the treatment area suffers from uneven irradiation dose. In some areas, the wastewater fails to meet the preset purification standards due to insufficient irradiation, while in other areas, excessive irradiation leads to energy waste and seriously affects the stability of the effluent quality.

[0004] In view of this, the present invention is proposed. Summary of the Invention

[0005] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by the present invention is as follows: A modular intelligent stepless ultraviolet wastewater treatment device includes a mounting top plate. A mounting frame with a concave shape is provided at the bottom of the mounting top plate. A power supply component is also provided above the mounting top plate. Multiple equidistant central support rods are provided in the middle of the bottom of the concave inner groove of the mounting frame. Multiple equidistant left and right placement frames are provided on the side walls of the mounting frame opposite to the central support rods. Each left and right placement frame has a rectangular slot, and a driving component is provided in one of the rectangular slots. The driving component includes an electric push rod, which is electrically connected to the power supply component. Multiple equidistant mounting parts are also provided inside the cavity of each left and right placement frame. Ultraviolet lamps are threaded through the middle of each mounting part. Each pair of ultraviolet lamps is symmetrical to each other, and magnetic rings are provided at both ends of the two horizontally opposite ultraviolet lamps. Each magnetic ring is provided with a connector.

[0006] In a preferred embodiment of the present invention, the mounting frame and the central support rod are respectively provided with a plurality of equally spaced circular slots and through slots, and a circular baffle is provided between each of the through slots. A pressure sensor is provided on the side wall of each circular slot opposite to the circular baffle.

[0007] In a preferred embodiment of the present invention, each of the pressure sensors has an extrusion member on each pair of opposite arc surfaces, and each extrusion member has a connecting member. Each connecting member is symmetrical to each other and each connecting member is respectively matched with a connecting member.

[0008] In a preferred embodiment of the present invention, each of the left and right placement racks has a left placement slot and a right placement slot respectively on its opposite side wall, and a connecting rod is provided through each of the left and right placement slots.

[0009] In a preferred embodiment of the present invention, each of the left and right placement frames is provided with a left sliding plate and a right sliding plate in its inner cavity. Each of the left and right sliding plates is symmetrical to each other. Each of the left and right sliding plates is connected to a connecting rod. Each of the left and right placement frames is also provided with an arc-shaped groove at the mounting part.

[0010] In a preferred embodiment of the present invention, each of the mounting components is provided with a through mounting slot, and an ultraviolet lamp tube is provided through the inner cavity of the mounting slot. Each of the mounting components is also provided with an arc-shaped slide rail, and the arc-shaped slide rail and the arc-shaped slot fit together.

[0011] In a preferred embodiment of the present invention, each of the mounting components is provided with a fixing block, and each fixing block is symmetrical to the other in pairs.

[0012] In a preferred embodiment of the present invention, a swing arm is provided on the side of the mounting member opposite to the left sliding plate, and the other end of the swing arm is provided at the bottom of the left sliding plate.

[0013] In a preferred embodiment of the present invention, each magnetic ring is provided with an ultraviolet lamp tube on each sidewall between two pairs of magnetic rings, and each ultraviolet lamp tube is symmetrical to each other between two pairs of magnetic rings.

[0014] In a preferred embodiment of the present invention, each of the mounting components is provided with rotating rods in pairs, and the rotating rods are symmetrical to each other. Each rotating rod is movably inserted through the left placement frame and the right placement frame, and a pull rod is provided at the other end of the rotating rod. A fixing plate is provided at the other end of each pull rod.

[0015] Compared with the prior art, the present invention has the following advantages: This invention uses an electric push rod to drive the ultraviolet lamp tubes to swing slightly, and uses a rotating rod and a pulling rod to link all the lamp tubes, ensuring that the wastewater flowing through it receives the same degree of ultraviolet treatment, greatly improving the uniformity of purification. At the same time, when the ultraviolet lamp tubes swing, they can drive the magnetic ring, connectors, etc. to link with the pressure sensor, which can transmit signals to the controller to achieve precise control of the lamp tube brightness, resulting in a high level of intelligence.

[0016] The specific embodiments of the present invention will now be described in further detail with reference to the accompanying drawings. Attached Figure Description

[0017] In the attached diagram: Figure 1A three-dimensional structural diagram of a modular intelligent electrodeless ultraviolet wastewater treatment device; Figure 2 A side view of the modular intelligent electrodeless ultraviolet wastewater treatment device; Figure 3 A partial structural schematic diagram of a modular intelligent electrodeless ultraviolet wastewater treatment device; Figure 4 A partial side view of the modular intelligent electrodeless ultraviolet wastewater treatment device; Figure 5 A cross-sectional view (I) of the left placement frame of the modular intelligent electrodeless ultraviolet wastewater treatment device; Figure 6 (II) Schematic diagram of the left placement frame of the modular intelligent electrodeless ultraviolet wastewater treatment device; Figure 7 Modular intelligent electrodeless ultraviolet wastewater treatment device Figure 6 Enlarged structural diagram at point A in the middle; Figure 8 A schematic diagram of the right sliding plate structure of a modular intelligent stepless ultraviolet wastewater treatment device; Figure 9 A cross-sectional structural diagram of the mounting frame for a modular, intelligent, electrodeless ultraviolet wastewater treatment device; Figure 10 Modular intelligent electrodeless ultraviolet wastewater treatment device Figure 9 Enlarged structural diagram at point B; Figure 11 A partial upward view of the modular intelligent electrodeless ultraviolet wastewater treatment device; Figure 12 A partial rear view schematic diagram of a modular intelligent electrodeless ultraviolet wastewater treatment device; Figure 13 Modular intelligent electrodeless ultraviolet wastewater treatment device Figure 12 Enlarged structural diagram at point C.

[0018] In the picture: 1. Top plate; 11. Mounting bracket; 111. Central support rod; 112. Left placement bracket; 113. Right placement bracket; 12. Power supply assembly; 13. Rectangular slot; 131. Left placement slot; 132. Right placement slot; 133. Arc-shaped slot; 14. UV lamp; 141. Magnetic ring; 142. Connector; 15. Circular slot; 16. Circular baffle; 161. Through slot; 2. Electric push rod; 21. Left sliding plate; 211. Swing arm; 22. Mounting component; 221. Mounting slot; 222. Arc-shaped slide rail; 223. Fixing block; 23. Connecting rod; 24. Right sliding plate; 3. Pressure sensor; 31. Extrusion component; 311. Connecting component; 5. Fixed plate; 51. Rotating rod; 511. Pull rod. Detailed Implementation

[0019] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate the present invention.

[0020] Example 1: like Figures 1 to 13 As shown, the modular intelligent electrodeless ultraviolet wastewater treatment device includes a mounting top plate 1, a mounting frame 11 at the bottom of the mounting top plate 1, and the mounting frame 11 is concave. A power supply component 12 is also provided above the mounting top plate 1. Multiple central support rods 111 are equidistantly distributed in the middle of the bottom of the concave inner groove of the mounting frame 11. Multiple left placement frames 112 and right placement frames 113 are equidistantly distributed on the side walls of the mounting frame 11, which are opposite to the central support rods 111. Each left placement frame 112 and right placement frame 113 The device has a rectangular slot 13 inside, and a drive assembly is installed in one of the rectangular slots 13. The drive assembly includes an electric push rod 2, which is electrically connected to a power supply assembly 12. Each left placement frame 112 and right placement frame 113 also has multiple equally spaced mounting parts 22 inside, and each mounting part 22 has a UV lamp tube 14 running through its center. Each pair of UV lamp tubes 14 are symmetrical to each other, and each pair of horizontally opposite UV lamp tubes 14 has a magnetic ring 141 at both ends. Each magnetic ring 141 has a connector 142. The UV lamp tubes 14 are slightly oscillated by the electric push rod 2, and all lamp tubes are linked by the rotating rod 51 and the pulling rod 511 to ensure that the wastewater flowing through is treated with UV light to a consistent degree, greatly improving the uniformity of purification. At the same time, when the UV lamp tubes 14 oscillate, they can drive the magnetic rings 141, connectors 142, etc., to be linked with the pressure sensor 3, which can transmit signals to the controller to achieve precise control of the lamp brightness, resulting in a high level of intelligence.

[0021] like Figures 1 to 9 and Figures 11 to 12As shown in the specific embodiment, the mounting frame 11 and the central support rod 111 are respectively provided with multiple equally spaced circular slots 15 and through slots 161. A circular baffle 16 is provided between each through slot 161, and a pressure sensor 3 is provided on the side wall opposite to each circular slot 15 and the circular baffle 16. In this configuration, the circular slots 15 and the circular baffles 16 form a limiting space for the movement of the magnetic ring 141, ensuring that the magnetic ring 141 always stays within the preset trajectory when it moves the ultraviolet lamp 14. The installation position of the pressure sensor 3 corresponds precisely to the movement path of the magnetic ring 141, laying the structural foundation for generating control signals through mechanical compression and realizing real-time monitoring of the operating status of the ultraviolet lamp.

[0022] like Figures 1 to 9 and Figures 11 to 12 As shown, furthermore, each pressure sensor 3 has a pressing element 31 on each pair of opposite arc surfaces, and each pressing element 31 has a connecting element 311. Each connecting element 311 is symmetrical to the other two, and each connecting element 311 is matched with the connecting element 142. In this configuration, the arc-shaped mounting track provides a smooth sliding guide for the pressing element 31, avoiding jamming during movement; the matching design of the connecting element 311 and the connecting element 142 ensures that the displacement of the magnetic ring 141 can be fully transmitted to the pressing element 31, so that the pressure sensor 3 can accurately sense the swing amplitude of the ultraviolet lamp tube 14, realizing the precise conversion of mechanical motion and electrical signal.

[0023] Example 2: The difference between the above embodiments and this embodiment is that: Figures 1 to 9 and Figures 11 to 12 As shown, in the modular intelligent stepless ultraviolet wastewater treatment device, each left placement frame 112 and right placement frame 113 has a left placement slot 131 and a right placement slot 132 respectively on one side wall. A connecting rod 23 is installed through each left placement slot 131 and right placement slot 132. The left placement slot 131 and right placement slot 132 provide space for the connecting rod 23 to be installed through. The connecting rod 23, as the core transmission component, realizes the rigid connection between the left sliding plate 21, the right sliding plate 24 and the placement frame, which not only ensures the guidance of the sliding plate when moving, but also ensures the efficiency of force transmission during the transmission process and avoids transmission lag.

[0024] like Figures 1 to 9 and Figures 11 to 12As shown in the specific embodiment, each left placement frame 112 and right placement frame 113 has a left sliding plate 21 and a right sliding plate 24 respectively in its inner cavity. Each left sliding plate 21 and right sliding plate 24 are symmetrical to each other, and each left sliding plate 21 and right sliding plate 24 is connected to a connecting rod 23. Each left placement frame 112 and right placement frame 113 also has an arc-shaped slot 133 at the mounting member 22. In this configuration, the symmetrical arrangement of the left sliding plate 21 and right sliding plate 24 ensures the synchronization of the transmission on both sides of the device and avoids structural displacement caused by uneven force on one side. The arc-shaped slot 133 and the arc-shaped slide rail 222 of the mounting member 22 form a matching relationship, providing precise trajectory constraints for the rotation of the mounting member 22, limiting the rotation range of the mounting member 22, and ensuring that the swing amplitude of the ultraviolet lamp tube 14 is in the optimal irradiation range.

[0025] like Figures 1 to 9 and Figures 11 to 13 As shown, each mounting component 22 is further provided with a through mounting slot 221, and the ultraviolet lamp tube 14 passes through the inner cavity of the mounting slot 221. Each mounting component 22 is also provided with an arc-shaped slide rail 222, and the arc-shaped slide rail 222 and the arc-shaped slot 133 fit together. In this configuration, the mounting slot 221 enables modular installation of the ultraviolet lamp tube 14, which facilitates the disassembly and maintenance of the lamp tube, while ensuring the stability of the lamp tube during swinging and preventing it from falling off. The clearance fit between the arc-shaped slide rail 222 and the arc-shaped slot 133 greatly reduces the frictional resistance when the mounting component 22 rotates, improves the smoothness of movement, and the precise fit between the two ensures that the rotation angle of all mounting components is consistent, ensuring the uniformity of ultraviolet irradiation.

[0026] like Figures 1 to 9 and Figures 11 to 12 As shown, each mounting component 22 is further provided with a fixing block 223, and each fixing block 223 is symmetrical to each other. In this configuration, the symmetrically distributed fixing blocks 223 serve a dual purpose: first, to limit the rotation of the mounting component 22, preventing the ultraviolet lamp tube 14 from colliding with other components due to excessive rotation; second, to provide a stable force support point for the swing arm 211, ensuring the structural rigidity of the swing arm when transmitting power and preventing the mounting component 22 from swaying during movement.

[0027] like Figures 1 to 9 and Figures 11 to 12As shown, furthermore, a swing arm 211 is provided on the opposite side of the mounting component 22 and the left sliding plate 21, and the other end of the swing arm 211 is located at the bottom of the left sliding plate 21. In this configuration, the swing arm 211 serves as a motion conversion mechanism, efficiently converting the vertical linear motion of the left sliding plate 21 into the arc-shaped rotational motion of the mounting component 22. The movable connection design at both ends ensures the flexibility of motion transmission. Through the transmission of the swing arm 211, the movement of the sliding plate can precisely drive the ultraviolet lamp tube 14 to swing, thereby expanding the coverage of ultraviolet irradiation and improving the uniformity of wastewater treatment.

[0028] Example 3: The difference between the above embodiments and this embodiment is that: Figures 1 to 12 As shown, in this modular intelligent stepless ultraviolet wastewater treatment device, ultraviolet lamps 14 are respectively installed on the sidewalls between each pair of magnetic rings 141, and each pair of ultraviolet lamps 14 is symmetrical. In this design, the installation of ultraviolet lamps 14 on the sidewalls between the magnetic rings 141 fully utilizes the electromagnetic induction characteristics of the magnetic rings, ensuring efficient light emission while achieving a dense and symmetrical arrangement of multiple lamps. The symmetrical lamp structure creates a uniform ultraviolet irradiation field in the wastewater flow area, avoiding irradiation blind spots and significantly improving the comprehensiveness of wastewater purification.

[0029] like Figures 1 to 9 and Figures 11 to 12 As shown in the specific embodiment, each mounting component 22 is provided with a rotating rod 51 arranged in pairs, and the rotating rods 51 are symmetrical to each other. Each rotating rod 51 is movably inserted through the left placement frame 112 and the right placement frame 113, and a pull rod 511 is provided at the other end of the rotating rod 51. A fixing plate 5 is provided at the other end of each pull rod 511. In this arrangement, the staggered rotating rods 51, pull rods 511, and fixing plates 5 constitute a linkage transmission system. The design of the rotating rods 51 penetrating through the placement frame ensures the degree of freedom of rotation, and the pull rods 511 realize the force transmission between each rotating rod. When the upper ultraviolet lamp tube 14 rotates, the linkage system drives all mounting components 22 to rotate synchronously, ensuring that the swinging action of all ultraviolet lamp tubes is completely consistent, and structurally ensuring that the ultraviolet irradiation intensity received by each area of ​​the sewage is uniform. The fixing plate 5 is fixed to the mounting top plate 1, providing a stable support benchmark for the entire linkage mechanism and improving the reliability of the structure operation.

[0030] The implementation principle of the modular intelligent electrodeless ultraviolet wastewater treatment device of the present invention is as follows: First, the staff installs the modular intelligent electrodeless ultraviolet wastewater treatment equipment at the location where wastewater needs to be treated. After installation, the staff can control the electric push rod 2 and the magnetic ring 141 to operate. (The electrodeless lamp is a long-life, high-efficiency electric light source that is based on the Faraday electromagnetic induction principle and adopts a transformer-like structure to complete the electrical power coupling between the primary winding and the secondary winding formed by the plasma loop to transfer lamp power. Therefore, it can purify the wastewater flowing through it when generating the electric light source.) At the same time, when the electric push rod 2 is running, it can also drive the left sliding plate 21 to move vertically in the rectangular slot 13 opened in the left placement frame 112. When the left sliding plate 21 moves vertically, it can drive the swing arm 211 to move. Therefore, when the swing arm 211 moves, it can drive the mounting part 22 to rotate slightly with the assistance of the arc-shaped slide rail 222 and the arc-shaped slot 133. When the mounting part 22 rotates, it can drive the ultraviolet lamp tube 14 that is installed through the inner cavity to swing slightly. When the upper UV lamp tube 14 rotates, it can drive the rotating rod 51 to rotate. When the rotating rod 51 rotates, it can drive the pull rod 511 to rotate. When the pull rod 511 rotates, it can drive the fixing plate 5 to move slightly. When the fixing plate 5 moves slightly, it can drive the other pull rods 511 to move. Therefore, the pull rods 511 can drive the other rotating mounting parts 22 to rotate, thereby ensuring that the other UV lamp tubes 14 can swing slightly. Therefore, when treating sewage with UV light, it can ensure that the sewage flowing through the UV lamp tubes 14 receives almost the same degree of UV treatment. Therefore, when the left sliding plate 21 moves, it can drive the right sliding plate 24 to move through the connecting rod 23. Thus, the right sliding plate 24 can drive the above steps to move in the inner cavity of the right placement rack 113. Simultaneously, when the ultraviolet lamp tube 14 swings, it drives the magnetic ring 141 set in the inner cavity of the circular slot 15 to move synchronously. The movement of the magnetic ring 141 then drives the connector 142 to move. The displacement of the connector 142 is transmitted to the connecting member 311 and drives it to move. The movement of the connecting member 311 drives the pressing member 31 to perform corresponding actions. During the movement, the pressing member 31 compresses the pressure sensor 3, causing the pressure sensor 3 to deform. After the pressure sensor 3 deforms, it transmits a signal to the controller. After receiving the signal, the controller can achieve precise control of the brightness of the ultraviolet lamp tube 14 (the specific signal transmission and brightness control are existing technologies).

[0031] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A modular intelligent electrodeless ultraviolet wastewater treatment device, including a mounting top plate (1), characterized in that: The mounting top plate (1) is provided with a mounting frame (11) at the bottom, and the mounting frame (11) is concave. A power supply component (12) is also provided above the mounting top plate (1). The mounting frame (11) has multiple central support rods (111) that are equidistantly distributed in the middle of the bottom of the concave inner groove. Multiple left placement frames (112) and right placement frames (113) that are equidistantly distributed are provided on the side walls of the mounting frame (11) that are opposite to the central support rods (111). Each of the left placement rack (112) and right placement rack (113) has a rectangular slot (13) and a drive assembly is provided in one of the rectangular slots (13). The drive assembly includes an electric push rod (2) and the electric push rod (2) is electrically connected to the power supply assembly (12). Each of the left placement rack (112) and right placement rack (113) is provided with a plurality of equally spaced mounting parts (22), and ultraviolet lamp tubes (14) are respectively provided through the middle of the mounting parts (22). Each ultraviolet lamp tube (14) is symmetrical to each other, and magnetic rings (141) are provided at both ends of the two horizontally opposite ultraviolet lamp tubes (14). Each magnetic ring (141) is provided with a connector (142).

2. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 1, characterized in that, The mounting bracket (11) and the central support rod (111) are respectively provided with a plurality of equally spaced circular slots (15) and through slots (161). A circular baffle (16) is provided between each through slot (161). A pressure sensor (3) is provided on the side wall opposite to the circular baffle (16) of each circular slot (15).

3. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 2, characterized in that, Each of the pressure sensors (3) has an extrusion member (31) on each pair of opposite arc surfaces. Each extrusion member (31) has a connector (311) on it. Each connector (311) is symmetrical to each other and each connector (311) is matched with a connecting member (142).

4. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 1, characterized in that, Each of the left placement rack (112) and the right placement rack (113) has a left placement slot (131) and a right placement slot (132) respectively on its opposite side wall, and a connecting rod (23) is provided through each of the left placement slot (131) and the right placement slot (132).

5. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 4, characterized in that, Each of the left placement brackets (112) and right placement brackets (113) has a left sliding plate (21) and a right sliding plate (24) respectively in its inner cavity. Each of the left sliding plates (21) and right sliding plates (24) is symmetrical to each other. Each of the left sliding plates (21) and right sliding plates (24) is connected to a connecting rod (23). Each of the left placement brackets (112) and right placement brackets (113) also has an arc-shaped groove (133) at the mounting part (22).

6. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 5, characterized in that, Each of the mounting components (22) has a through mounting slot (221) and an ultraviolet lamp tube (14) passes through the inner cavity of the mounting slot (221). Each of the mounting components (22) is also provided with an arc-shaped slide rail (222), and the arc-shaped slide rail (222) and the arc-shaped slot (133) fit together.

7. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 5, characterized in that, Each of the mounting components (22) is provided with a fixing block (223), and each fixing block (223) is symmetrical to each other.

8. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 5, characterized in that, A swing arm (211) is provided on one side opposite to the mounting component (22) and the left sliding plate (21), and the other end of the swing arm (211) is provided at the bottom of the left sliding plate (21).

9. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 1, characterized in that, Each of the magnetic rings 141 has an ultraviolet lamp tube 14 arranged on the sidewall between each pair of them, and each of the ultraviolet lamp tubes 14 is symmetrical to each other.

10. The modular intelligent electrodeless ultraviolet wastewater treatment device according to claim 5, characterized in that, Each of the mounting components (22) is provided with a rotating rod (51) in pairs, and the rotating rods (51) are symmetrical to each other. Each of the rotating rods (51) moves through the left placement frame (112) and the right placement frame (113), and a pull rod (511) is provided at the other end of the rotating rod (51). A fixing plate (5) is provided at the other end of each pull rod (511).