Electrolytic oxidation generator
By designing the shaft structure in the electrolytic oxidation generator, the problem that the cover plate cannot stay in the open position is solved, and the cover plate can be kept stable in the open or closed position is achieved, which improves operation convenience and safety.
Patent Information
- Application Number
- CN202421598239.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-08
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-07-08
AI Technical Summary
The existing electrolytic oxidation generator cover cannot stay stably in the open position, causing operational inconvenience to the user.
A rotating shaft structure is designed, including a movable block, a fixed block and an elastic member. When the cover plate rotates relative to the generator body, the rotating shaft structure switches between the first and second states to ensure a stable residence of the cover plate in the open or closed position.
Through the design of the shaft structure, the cover plate can stay stably in the open or closed position, avoiding unexpected movement caused by external forces or its own gravity, and improving the convenience and safety of operation.
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Figure CN223002781U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water disinfection, and more specifically, to an electrolytic oxidation generator. Background Art
[0002] Among the disinfection methods for swimming pools, the electrolytic salt disinfection method has gradually become a popular choice in the industry due to its high efficiency and environmental friendliness. This method involves adding table salt to the swimming pool and using an electrolytic oxidation generator to electrolyze the salt to produce chlorine, thereby achieving effective disinfection of the pool water. As the core equipment of this disinfection method, the electrolytic oxidation generator is usually equipped with an operation panel, enabling users to easily operate and monitor.
[0003] However, in the existing design of electrolytic oxidation generators, the opening and closing method of the cover plate often has deficiencies. The traditional cover plate is simply rotationally connected to the electrolytic oxidation generator, and the cover plate cannot stably stay in the open position. Specifically, when users need to operate the operation panel, they often need to open the cover plate. However, the opening of the cover plate requires manual maintenance by the user, which brings inconvenience to the operation. Summary of the Utility Model
[0004] The problem solved by the utility model is that the cover plate of the existing electrolytic oxidation generator cannot stably stay in the open position, bringing inconvenience to the operation of users.
[0005] To solve the above problems, the utility model provides an electrolytic oxidation generator, including: a generator body and a cover plate that are rotatably engaged with each other, and a shaft structure is provided at the rotational connection position between the generator body and the cover plate; when the cover plate rotates relative to the generator body, the shaft structure is switched between a first state and a second state; wherein, when the shaft structure is in the first state, the cover plate is buckled on the cover plate installation position of the generator body; when the shaft structure changes from the first state to the second state, the cover plate is restricted to the open position.
[0006] Compared with the prior art, the technical effects achieved by adopting this technical solution: By designing the shaft structure, the stable stay of the cover plate in the open or closed position is realized, avoiding accidental movement caused by external force or its own gravity, and improving the operation convenience. Specifically, when the shaft structure is in the first state, the shaft structure will make the cover plate tightly buckle on the cover plate installation position of the generator body, thereby ensuring the sealing and safety of the electrolytic oxidation generator. When users need to open the cover plate for operation or maintenance, manually open the cover plate. At this time, the shaft structure will change from the first state to the second state, stably restricting the cover plate in the open position, avoiding the problem that the cover plate accidentally closes or further opens due to external force or its own gravity, and ensuring the safety of user operation.
[0007] Further, the rotating shaft structure includes a movable block, a fixed block, and an elastic member; the movable block is movably arranged in the first fixing seat of the cover plate; the fixed block is connected to the generator body and at least partially enters the first fixing seat; the elastic member is arranged on the side of the movable block away from the fixed block and is used to apply an elastic force to the movable block to press it against the fixed block.
[0008] Compared with the prior art, the technical effects achieved by adopting this technical solution are as follows: The movable block is arranged in the first fixing seat of the cover plate. The movable block can move relative to the axial direction of the cover plate, and at the same time, when the cover plate rotates, it drives the movable block to rotate together. The elastic member is used to apply an elastic force to the movable block to press it in the direction of the fixed block, so as to ensure that the movable block is always in contact and cooperation with the fixed block.
[0009] Further, a first convex portion is circumferentially arranged on the end face of the movable block corresponding to the fixed block, and a first concave groove portion adapted to the first convex portion is circumferentially arranged on the end face of the fixed block corresponding to the movable block; when the rotating shaft structure is in the first state, the first convex portion and the first concave groove portion cooperate to limit the cover plate to the cover plate installation position by the movable block.
[0010] Compared with the prior art, the technical effects achieved by adopting this technical solution are as follows: When the cover plate rotates to the cover plate installation position, the cover plate drives the movable block to rotate together, so that the rotating shaft structure is in the first state. At this time, the movable block is pressed by the elastic force of the elastic member, and the first convex portion of the movable block is engaged with the first concave groove portion of the fixed block, thereby limiting the cover plate to the cover plate installation position. Through the mutual cooperation of the first convex portion and the first concave groove portion, it can effectively prevent the cover plate from loosening or displacing when subjected to external force or vibration, and improve the stability of the electrolytic oxidation generator.
[0011] Further, a second convex portion is circumferentially arranged on the end face of the movable block corresponding to the fixed block, and a second concave groove portion adapted to the second convex portion is circumferentially arranged on the end face of the fixed block corresponding to the movable block; when the rotating shaft structure is in the second state, the first convex portion and the second concave groove portion cooperate, and the second convex portion and the first concave groove portion cooperate to limit the cover plate to the open position by the movable block.
[0012] Compared with the prior art, the technical effects achieved by adopting this technical solution are as follows: When the cover plate rotates from the cover plate installation position to the open position, the cover plate drives the movable block to rotate together, so that the rotating shaft structure is in the second state. At this time, the movable block is pressed by the elastic force of the elastic member, and the second convex portion of the movable block is engaged with the second concave groove portion of the fixed block, thereby limiting the cover plate to the open position. Through the cooperation of the second convex portion and the second concave groove portion, when the cover plate rotates to the open position, the movable block will stay stably in this position, preventing the cover plate from accidentally closing or further opening due to external force or its own gravity. This design ensures the safety of users during maintenance or operation, and avoids injuries or equipment damage that may be caused by accidental movement of the cover plate.
[0013] Furthermore, the first fixing seat is provided with a first fixing portion, and the movable block is provided with a first mounting portion. The first fixing portion is matched with the first mounting portion to limit the relative rotation between the movable block and the first fixing seat.
[0014] Compared with the prior art, the technical effect achieved by adopting this technical solution is that the cover plate can drive the movable block to rotate together through the cooperation of the first fixing portion and the first mounting portion.
[0015] Furthermore, the rotating shaft structure includes: a rotating shaft, which sequentially passes through a fixing block, a movable block, an elastic member, and the first fixing seat. The rotating shaft is fixedly connected to the first fixing seat through a snap ring.
[0016] Compared with the prior art, the technical effect achieved by adopting this technical solution is that the rotating shaft makes the entire rotating shaft structure more compact. At the same time, the movable block can rotate along the rotating shaft, reducing jamming and abnormal noises caused by friction and vibration. The rotating shaft is fixedly connected to the first fixing seat through a snap ring, making the installation and disassembly of the entire rotating shaft structure simple and convenient.
[0017] Furthermore, the generator body is provided with a second fixing seat, the fixing block is arranged in the second fixing seat, and the fixing block abuts against the bottom of the second fixing seat.
[0018] Compared with the prior art, the technical effect achieved by adopting this technical solution is that by arranging the fixing block in the second fixing seat, the stability of the entire rotating shaft structure is effectively enhanced.
[0019] Furthermore, the second fixing seat is provided with a second fixing portion, and the fixing block is provided with a second mounting portion. The second fixing portion is matched with the second mounting portion to limit the relative rotation between the fixing block and the generator body.
[0020] Compared with the prior art, the technical effect achieved by adopting this technical solution is that the cooperation between the second fixing portion and the second mounting portion makes the connection between the fixing block and the generator body more stable, effectively restricting the relative rotation between the fixing block and the generator body.
[0021] Furthermore, when the cover plate is buckled to the cover plate installation position, the outer peripheral surface of the cover plate and the generator body has a smooth transition.
[0022] Compared with the prior art, the technical effect achieved by adopting this technical solution is that the smooth transition of the outer peripheral surface of the cover plate and the generator body helps to reduce gaps and uneven surfaces, thereby enhancing the sealing performance of the device and ensuring the safety and reliability of the device.
[0023] Furthermore, the electrolytic oxidation generator includes: an electrolytic cell, which is arranged in the generator body, and the electrolytic cell is provided with a water inlet and a water outlet.
[0024] After adopting the technical solution of the present utility model, the following technical effects can be achieved:
[0025] By designing the rotating shaft structure, the stable stay of the cover plate in the open or closed position is realized, avoiding accidental movement caused by external force or its own gravity, and improving the operation convenience. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 FIG. is a schematic structural view of the hidden cover plate of the electrolytic oxidation generator provided in the first embodiment of the present utility model;
[0027] Figure 2 is Figure 1 an enlarged view of part A in;
[0028] Figure 3 FIG. is a cross-sectional view of the rotating shaft structure of the electrolytic oxidation generator provided in the first embodiment of the present utility model;
[0029] Figure 4 FIG. is a schematic structural view of the movable block of the electrolytic oxidation generator provided in the first embodiment of the present utility model;
[0030] Figure 5 FIG. is a schematic structural view of the fixed block of the electrolytic oxidation generator provided in the first embodiment of the present utility model;
[0031] Figure 6 FIG. is a partially enlarged view of the cover plate of the electrolytic oxidation generator provided in the first embodiment of the present utility model;
[0032] Figure 7 FIG. is a schematic structural view of the electrolytic oxidation generator provided in the first embodiment of the present utility model.
[0033] DESCRIPTION OF THE REFERENCE NUMERALS:
[0034] 100, generator body; 110, second fixed seat; 120, cover plate mounting position; 200, cover plate; 210, first fixed seat; 211, first fixing portion; 211a, upper end of the first fixing portion; 211b, lower end of the first fixing portion; 300, rotating shaft structure; 310, movable block; 311, first protruding portion; 312, second protruding portion; 313, first mounting portion; 320, fixed block; 321, first groove portion; 322, second groove portion; 323, second mounting portion; 330, elastic member; 340, rotating shaft; 350, snap ring; 400, electrolytic cell. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0035] In order to make the above objects, features and advantages of the present utility model more obvious and understandable, the following detailed description of the specific embodiments of the present utility model will be given with reference to the accompanying drawings.
[0036] Embodiment 1:
[0037] The electrolytic oxidation generator generates chlorine and other disinfectants by electrolyzing a brine solution. The electrolytic oxidation generator is usually equipped with an operation panel. During use, the user operates and monitors the electrolytic oxidation generator through the operation panel. To protect the operation panel from external contamination and damage, a cover plate 200 is usually provided outside the operation panel. The traditional cover plate 200 is simply rotationally connected to the electrolytic oxidation generator. When the cover plate 200 is closed, it is prone to loosening due to external force or vibration, affecting the sealing and safety of the device. Similarly, when the cover plate 200 needs to be opened, due to the lack of an effective positioning mechanism, the cover plate 200 often cannot stay stably in the open position after being opened and may accidentally close, bringing inconvenience and safety hazards to the user during operation.
[0038] To solve the above problems, this embodiment provides an electrolytic oxidation generator, as Figure 1 and Figure 2 shown, including: a generator body 100 and a cover plate 200 that are rotatably engaged with each other, and a rotating shaft structure 300 is provided at the rotational connection position between the generator body 100 and the cover plate 200; when the cover plate 200 rotates relative to the generator body 100, the rotating shaft structure 300 is switched between a first state and a second state; wherein, when the rotating shaft structure 300 is in the first state, the cover plate 200 is buckled on the cover plate installation position 120 of the generator body 100; when the rotating shaft structure 300 changes from the first state to the second state, the cover plate 200 is restricted to the open position.
[0039] Specifically, a cover plate installation position 120 is provided on the outer surface of the generator body 100, and an operation panel is provided in the cover plate installation position 120. The user operates and monitors the electrolytic oxidation generator through the operation panel. When the user closes the cover plate, the cover plate 200 is buckled on the cover plate installation position 120. At this time, the rotating shaft structure 300 is in the first state, and the rotating shaft structure 300 generates a circumferential force in the first direction to restrict the cover plate 200 in the cover plate installation position 120, ensuring the sealing of the operation panel. When the user needs to operate and monitor the electrolytic oxidation generator through the operation panel, the user manually opens the cover plate 200, and the cover plate 200 drives the rotating shaft structure 300 to change from the first state to the second state. When the cover plate 200 reaches the open position, the rotating shaft structure is in the second state, and the rotating shaft structure 300 generates a circumferential force in the second direction to restrict the cover plate 200 in the open position. It avoids the problem that the cover plate 200 accidentally closes or further opens due to external force or its own gravity, ensuring the safety of the user's operation.
[0040] It should be noted that the first direction is the rotational direction in which the cover plate 200 closes, and the second direction is the rotational direction in which the cover plate 200 opens. The first direction is opposite to the second direction.
[0041] Furthermore, as Figure 2 andFigure 3 As shown in the figure, the rotating shaft structure 300 includes a movable block 310, a fixed block 320, and an elastic member 330. The movable block 310 is movably disposed in the first fixing seat 210 of the cover plate 200. The fixed block 320 is connected to the generator body 100 and at least partially enters the first fixing seat 210. The elastic member 330 is disposed on the side of the movable block 310 away from the fixed block 320 and is used to apply an elastic force to the movable block 310 to press it against the fixed block 320.
[0042] Specifically, the number of the rotating shaft structures 300 is two, which are respectively disposed in the two first fixing seats 210 of the cover plate 200. The two first fixing seats 210 are disposed at the end of the cover plate 200 connected to the generator body 100, and the openings formed in the two first fixing seats 210 are arranged outward.
[0043] Specifically, the elastic member 330, the movable block 310, and the fixed block 320 are sequentially disposed in the first fixing seat 210. One end of the elastic member 330 abuts against the bottom of the first fixing seat, and the other end abuts against the movable block 310. The elastic force generated by the elastic member 330 will be applied to the movable block 310 and cause the movable block 310 to move in the direction close to the fixed block 320.
[0044] Specifically, the movable block 310 can move in the axial direction relative to the fixed block 320, and when the movable block 310 moves away from the fixed block 320, the movable block 310 will compress the elastic member 330.
[0045] Further, as shown in Figure 4 and Figure 5 the figure, a first convex portion 311 is circumferentially provided on the end face of the movable block 310 corresponding to the fixed block 320, and a first concave portion 321 adapted to the first convex portion 311 is circumferentially provided on the end face of the fixed block 320 corresponding to the movable block 310. When the rotating shaft structure 300 is in the first state, the first convex portion 311 and the first concave portion 321 cooperate to limit the cover plate 200 to the installation position of the cover plate 200 by the movable block 310.
[0046] Specifically, a first convex portion 311 is circumferentially provided on the end face of the movable block 310 corresponding to the fixed block 320, and the fixed block 320 is provided with a first concave portion 321. The first concave portion 321 faces the first convex portion 311, as shown in Figure 2As shown, when the rotating shaft structure 300 is in the first state, the first groove portion 321 engages with the first protrusion portion 311. At this time, the elastic member is in a compressed state, and the elastic member 330 applies an elastic force to the movable block 310 to squeeze it against the fixed block 320, so that the first groove portion 321 and the first protrusion portion 311 are always engaged, thereby pressing the movable block 310 against the fixed block 320. The movable block 310 restricts the cover plate to the cover plate installation position 120 through the first fixing seat 210. When the cover plate 200 is buckled to the cover plate installation position, the first protrusion portion 311 and the first groove portion 321 cooperate with each other. Thus, the cover plate 200 receives a buckling force toward the generator body 100, so that the cover plate 200 is closely attached to the cover plate installation position 120. This can effectively prevent the cover plate 200 from loosening or displacing when subjected to external forces or vibrations when buckled to the cover plate installation position 120, improving the safety of the electrolytic oxidation generator.
[0047] Specifically, during the process of the cover plate 200 rotating from the open position to the cover plate installation position 120, the elastic member 330 applies a restoring force to the movable block 310 to squeeze it against the fixed block 320, so that the first protrusion portion 311 of the movable block 310 comes into contact and cooperation with the first groove portion 321 of the fixed block 320; further, when the movable block 310 comes into contact and cooperation with the fixed block 320, since the elastic member 330 is still in a compressed state, at this time, the elastic member 330 continues to apply a restoring force to the movable block 310 to squeeze it against the fixed block 320. Since the first protrusion portion 311 and the first groove portion 321 have achieved cooperation, the restoring force applied by the elastic member 330 is converted into a rotational force for the cover plate 200 to rotate in the direction of the cover plate installation position 120, so that the cover plate 200 is tightly buckled to the cover plate installation position 120, thereby enhancing the sealing performance of the device and improving the waterproof and dustproof performance of the device.
[0048] Further, as Figure 4 and Figure 5 shown, the second protrusion portion 312 is circumferentially provided on the end surface of the movable block 310 corresponding to the fixed block 320, and the second groove portion 322 adapted to the second protrusion portion 312 is circumferentially provided on the end surface of the fixed block 320 corresponding to the movable block 310; when the rotating shaft structure 300 is in the second state, the first protrusion portion 311 and the second groove portion 322 cooperate, and the second protrusion portion 312 and the first groove portion 321 cooperate to restrict the cover plate 200 to the open position by the movable block 310.
[0049] Specifically, when the cover plate 200 needs to be opened, the user manually opens the cover plate 200. Since the elastic member 330 applies an elastic force to the movable block 310 to squeeze it against the fixed block 320, a relatively large thrust needs to be applied to open the cover plate 200. The cover plate 200 drives the movable block 310 to rotate along the axis in the second direction. The inclined surface of the first protrusion 311 will move relative to the inclined surface of the first groove portion 321, so that the movable block 310 moves away from the fixed block 320 and compresses the elastic member 330. When the first protrusion 311 completely disengages from the first groove portion 321, the elastic member 330 is compressed to the maximum. At this time, when the cover plate 200 is continuously pushed, the movable block 310 continues to rotate, so that the first protrusion 311 abuts against the second groove portion 322, and the second protrusion 312 abuts against the first groove portion 321. The inclined surface of the first protrusion 311 will move relative to the inclined surface of the second groove portion 322, so that the movable block 310 moves toward the fixed block 320 and releases the elastic member 330. When the cover plate 200 moves to the open position, the first protrusion 311 and the second groove portion 322 are engaged, and the second protrusion 312 and the first groove portion 321 are engaged.
[0050] It should be noted that in this embodiment, the number of the protrusion portion and the groove portion is two. In other embodiments, a plurality of protrusion portions and groove portions can be provided, such as a third protrusion portion and a third groove portion, a fourth protrusion portion and a fourth groove portion, so that the rotating shaft structure 300 has a third state and a fourth state, and the cover plate 200 can stop at different open positions when the rotating shaft structure 300 is in the third state or the fourth state.
[0051] It should be noted that the angle between the first protrusion 311 and the second protrusion 312 is the same as the angle between the first groove portion 321 and the second groove portion 322, and the angle of the open position can be adjusted by setting different angles, so that the open position of the cover plate 200 can be adjusted according to actual needs.
[0052] Furthermore, as Figure 6 shown, the first fixing seat 210 is provided with a first fixing portion 211, and the movable block 310 is provided with a first mounting portion 313. The first fixing portion 211 cooperates with the first mounting portion 313 to limit the relative rotation between the movable block 310 and the first fixing seat 210.
[0053] Specifically, the first fixing portion 211 includes an upper end 211a of the first fixing portion and a lower end 211b of the first fixing portion. When the movable block 310 is disposed on the first fixing portion 211, the first mounting portion 313 of the movable block 310 is engaged with the upper end 211a of the first fixing portion and the lower end 211b of the first fixing portion, so that the cover plate 200 and the movable block 310 rotate in the same direction.
[0054] Further, the rotating shaft structure 300 includes: a rotating shaft 340, which sequentially passes through a fixed block 320, a movable block 310, an elastic member 330, and a first fixing seat 210. The rotating shaft 340 is fixedly connected to the first fixing seat 210 through a circlip 350.
[0055] Specifically, the fixed block 320, the movable block 310, and the elastic member 330 are sequentially sleeved on the rotating shaft 340. One end of the rotating shaft 340 is fixedly connected to the fixed block 320, and the other end is provided with a card slot. The first end with the card slot passes through the first fixing seat 210 and is connected to the card slot through the circlip 350, fixing the rotating shaft 340, the fixed block 320, the movable block 310, and the elastic member 330 in the first fixing seat 210.
[0056] Further, the generator body 100 is provided with a second fixing seat 110. The fixed block 320 is arranged in the second fixing seat 110, and the fixed block 320 abuts against the bottom of the second fixing seat 110.
[0057] Further, the second fixing seat 110 is provided with a second fixing portion, and the fixed block 320 is provided with a second mounting portion 323. The second fixing portion cooperates with the second mounting portion 323 to limit the relative rotation between the fixed block 320 and the generator body 100.
[0058] Further, when the cover plate 200 is buckled to the installation position of the cover plate 200, the outer peripheral surface of the cover plate 200 is smoothly transitioned with the generator body 100.
[0059] Further, as Figure 7 shown, the electrolytic oxidation generator includes: an electrolytic cell 400, which is arranged in the generator body 100. The electrolytic cell 400 is provided with a water inlet and a water outlet.
[0060] Specifically, when the electrolytic oxidation generator is in use, sodium chloride is added to the swimming pool to be disinfected. The outlet pipe of the swimming pool is connected to the water inlet, and the inlet pipe and the water outlet of the swimming pool are connected. The water in the swimming pool enters the electrolytic cell 400 under the action of a water pump, and chlorine is generated through electrolysis. The water after electrolysis enters the swimming pool again through the water outlet and the inlet pipe. The water after electrolysis contains active chlorine with disinfection effect, which can disinfect the water in the swimming pool.
[0061] Although the present utility model is disclosed as above, the present utility model is not limited thereto. Any person skilled in the art can make various changes and modifications without departing from the spirit and scope of the present utility model. Therefore, the protection scope of the present utility model should be subject to the scope defined by the claims.
Claims
1. An electrolytic oxidation generator, characterized in that: include: A generator body (100) and a cover plate (200) that are rotatably matched with each other, and a rotating shaft structure (300) is provided at a rotationally connected position between the generator body (100) and the cover plate (200); When the cover plate (200) and the generator body (100) rotate relative to each other, the rotating shaft structure (300) is switched between a first state and a second state; Wherein, when the rotating shaft structure (300) is in the first state, the cover plate (200) is buckled into the cover plate mounting position (120) of the generator body (100); When the rotating shaft structure (300) changes from the first state to the second state, the cover plate (200) is restricted to an open position.
2. The electrolytic oxidation generator according to claim 1, characterized in that: The rotating shaft structure (300) comprises a movable block (310), a fixed block (320) and an elastic member (330); The movable block (310) is movably disposed in the first fixing seat (210) of the cover plate (200); The fixing block (320) is connected to the generator body (100) and at least partially enters the first fixing seat (210); The elastic member (330) is arranged on a side of the movable block (310) away from the fixed block (320), and is used to apply an elastic force to the movable block (310) so as to press the movable block (310) toward the fixed block (320).
3. The electrolytic oxidation generator according to claim 2, characterized in that: The end surfaces corresponding to the movable block (310) and the fixed block (320) are provided with a first protruding portion (311) in the circumferential direction, and the end surfaces corresponding to the fixed block (320) and the movable block (310) are provided with a first groove portion (321) adapted to the first protruding portion (311) in the circumferential direction; When the rotating shaft structure (300) is in a first state, the first protruding portion (311) and the first groove portion (321) cooperate with each other, so that the movable block (310) restricts the cover plate (200) to the installation position of the cover plate (200).
4. The electrolytic oxidation generator according to claim 3, characterized in that: The end surfaces corresponding to the movable block (310) and the fixed block (320) are provided with a second protruding portion (312) in the circumferential direction, and the end surfaces corresponding to the fixed block (320) and the movable block (310) are provided with a second groove portion (322) adapted to the second protruding portion (312) in the circumferential direction; When the rotating shaft structure (300) is in the second state, the first protrusion (311) and the second groove (322) cooperate with each other, and the second protrusion (312) and the first groove (321) cooperate with each other, so that the movable block (310) restricts the cover plate (200) to the open position.
5. The electrolytic oxidation generator according to claim 2, characterized in that: The first fixing seat (210) is provided with a first fixing portion (211), the movable block (310) is provided with a first mounting portion (313), and the first fixing portion (211) cooperates with the first mounting portion (313) to limit the relative rotation of the movable block (310) and the first fixing seat (210).
6. The electrolytic oxidation generator according to claim 2, characterized in that: The rotating shaft structure (300) comprises: A rotating shaft (340), the rotating shaft (340) sequentially passing through the fixed block (320), the movable block (310), the elastic member (330) and the first fixed seat (210), the rotating shaft (340) being fixedly connected to the first fixed seat (210) via a retaining spring (350).
7. The electrolytic oxidation generator according to claim 2, characterized in that: The generator body (100) is provided with a second fixing seat (110), the fixing block (320) is provided on the second fixing seat (110), and the fixing block (320) abuts against the bottom of the second fixing seat (110).
8. The electrolytic oxidation generator according to claim 7, characterized in that: The second fixing seat (110) is provided with a second fixing portion, the fixing block (320) is provided with a second mounting portion (323), and the second fixing portion cooperates with the second mounting portion (323) to limit relative rotation between the fixing block (320) and the generator body (100).
9. The electrolytic oxidation generator according to claim 1, characterized in that: When the cover plate (200) is buckled into the cover plate (200) installation position, the cover plate (200) and the outer peripheral surface of the generator body (100) smoothly transition.
10. The electrolytic oxidation generator according to any one of claims 1 to 9, characterized in that: The electrolytic oxidation generator comprises: An electrolytic cell (400), wherein the electrolytic cell (400) is arranged on the generator body (100), and the electrolytic cell (400) is provided with a water inlet and a water outlet.