Solar copper ion generator capable of throwing chlorine tablets

By adding a chlorine tablet dosing component and a dirt collection component to the solar copper ion generator, automatic chlorine tablet dosing and dirt collection are achieved, solving the problems of limited sterilization effect and cumbersome operation in the existing technology, and improving the disinfection effect and convenience.

CN223892584UActive Publication Date: 2026-02-10NINGBO C F ELECTRONICS TECH CO LTD
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Patent Information

Application Number
CN202520259511.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-19
Publication Date
2026-02-10
Estimated Expiration
2035-02-19

AI Technical Summary

Technical Problem

Existing solar copper ion generators lack chlorine tablet dosing functionality, resulting in limited sterilization effects and cumbersome operation.

Method used

A chlorine tablet dosing component, including a float and an adjustable support, is added to the solar copper ion generator to achieve automated chlorine tablet dosing. A dirt collection component is also provided to collect dirt generated by the electrodes, thereby improving the sterilization effect and ease of operation.

Benefits of technology

By using chlorine tablets and copper ions together for sterilization, the disinfection effect is improved, the operation process is simplified, the degree of automation is high, and it prevents dirt from entering the water tank, thus maintaining water quality cleanliness.

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Abstract

The utility model provides a solar copper ion generator capable of throwing chlorine tablets, which comprises a copper ion generator body, a chlorine tablet throwing assembly is arranged on the copper ion generator body, the chlorine tablet throwing assembly comprises a floating seat which is arranged in a vertical sliding manner, a plurality of chlorine tablets are vertically stacked at the upper end of the floating seat, and the chlorine tablets are arranged on the floating seat. The buoyancy of the floating seat in water is smaller than the gravity of a single chlorine sheet, and the floating seat can enable at least part of the chlorine sheets located at the bottom to be placed in water under the gravity of the chlorine sheets; the chlorine tablet feeding assembly further comprises a chlorine tablet cylinder vertically arranged on the copper ion generator body, a chlorine tablet feeding opening is formed in the bottom of the chlorine tablet cylinder, and the floating seat is installed in the chlorine tablet cylinder in a sliding mode; the solar copper ion generator capable of feeding the chlorine tablets overcomes the defect that an existing solar copper ion generator does not have the chlorine tablet feeding function.
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Description

Technical Field

[0001] This utility model relates to the field of solar copper ion generators, and in particular to a solar copper ion generator that can dispense chlorine tablets. Background Technology

[0002] Swimming pools are pools where people engage in various competitive swimming, fitness, water play, rehabilitation, and medical activities. The quality of the water is crucial to ensuring the health of swimmers. To sterilize and disinfect water, copper ion generators have been designed. After electrolysis, the positively charged copper ions combine with the negatively charged cell walls of microorganisms to form electrostatic bonds. The formation of these electrostatic bonds alters the permeability of the cell walls, disrupting the normal uptake of nutrients by microorganisms, thus achieving a sterilizing effect. Similarly, once copper ions enter algal cells, they immediately attack the sulfur-containing amino acids within the cell proteins, preventing normal photosynthesis and causing the algal cells to die.

[0003] Although copper ion generators can sterilize and disinfect, their sterilization effect is limited. In daily use, it is necessary to add chlorine-containing substances separately to further maintain water quality and disinfection. The sterilization and disinfection operation is cumbersome and inconvenient to use. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] The problem to be solved by this utility model is to provide a solar copper ion generator that can dispense chlorine tablets, so as to overcome the defect that existing solar copper ion generators do not have the function of dispensing chlorine tablets.

[0006] (II) Technical Solution

[0007] To solve the aforementioned technical problem, this utility model provides a solar-powered copper ion generator capable of dispensing chlorine tablets, comprising a copper ion generator body, on which a chlorine tablet dispensing assembly is provided. The chlorine tablet dispensing assembly includes a float that slides vertically, with multiple chlorine tablets stacked vertically on the upper end of the float. The buoyancy of the float in water is less than the weight of a single chlorine tablet, and the float, under the weight of the chlorine tablets, allows at least a portion of the chlorine tablets at the bottom to be submerged in water.

[0008] In some embodiments, the chlorine tablet dosing assembly further includes a chlorine tablet cylinder vertically disposed on the copper ion generator body, the bottom of the chlorine tablet cylinder having a chlorine tablet dosing port, and the float being slidably mounted inside the chlorine tablet cylinder.

[0009] In some embodiments, an adjustable support with height adjustment is installed at the lower end of the chlorine tablet cartridge, and a float is located on the upper side of the adjustable support. After multiple chlorine tablets are installed, the float will rest against the adjustable support. The adjustable support is used to adjust the number of chlorine tablets entering the water.

[0010] In some embodiments, the adjustable support is threaded into the chlorine tablet cylinder, and the adjustable support has a support ring portion for supporting the float, with a plurality of water passage holes provided at the bottom of the support ring portion; in use, both the support ring portion and the float are located below the water surface, so that at least part of the chlorine tablets are placed in the water.

[0011] In some embodiments, a sensing device is installed on the float. When the float floats out of the water, the sensing device sends a signal indicating that the chlorine tablets are used up. A guide post is provided on one or both sides of the float, and a guide groove adapted to the guide post is provided vertically on the chlorine tablet cylinder. The lower end of the guide groove is connected to the outside.

[0012] In some embodiments, the copper ion generator body includes a main body and an electrode assembly mounted on the main body. The chlorine tablet dosing assembly is disposed on one side of the electrode assembly, and a sludge collection assembly is detachably mounted on the outside of the electrode assembly. The sludge collection assembly includes a filter basket covering the outside of the electrode assembly and a sludge collection box detachably mounted on the bottom of the filter basket. The sludge collection box has a drain hole communicating with the filter basket, and the bottom of the filter basket has a sludge inlet. A float is vertically mounted inside the filter basket, and the float is located directly above the drain hole and can open and close the sludge inlet. In use, the float rises to open the sludge inlet, and the sludge generated by the electrode assembly falls along the outer ring of the float and is collected in the sludge collection box through the sludge inlet.

[0013] In some embodiments, the bottom of the filter basket is threadedly connected to a connecting seat, and the sludge collection box is threadedly connected to the connecting seat; the sludge inlet is disposed within the connecting seat, and the sludge inlet is flared in shape with a larger upper diameter and a smaller lower diameter; a guide pipe communicating with the drain hole is disposed at the center of the connecting seat; the float includes a conical body covering the upper side of the guide pipe and a float seat fixed within the conical body, and a guide groove for the guide pipe to pass through is disposed within the float seat; the diameter of the guide groove is larger than that of the guide pipe, so that the float can move horizontally relative to the guide pipe.

[0014] In some embodiments, the upper end of the guide tube is provided with a plurality of limiting protrusions at equal intervals in an annular shape, the limiting protrusions being used to limit the float; the connecting seat is provided with a plurality of connecting plates at equal intervals in an annular shape, the connecting plates being connected between the guide tube and the connecting seat, the connecting plates being used to limit the float; the upper end of the guide tube is provided with a plurality of elastic plates at equal intervals in an annular shape, the limiting protrusions being disposed on the corresponding elastic plates.

[0015] In some embodiments, a drain pipe is vertically arranged at the center of the inside of the sludge collection box, and the drain hole is arranged inside the drain pipe. The sludge collection box is made of transparent material.

[0016] In some embodiments, a screw seat is fixed to the lower end of the main body, a connecting flange is provided on the upper side of the filter basket, and a locking nut is threaded onto the screw seat. The locking nut secures the connecting flange, the electrode assembly, and the screw seat tightly. The filter basket includes a cylindrical hollow support and a filter screen mounted on the hollow support. The connecting flange is located at the upper end of the hollow support.

[0017] In some embodiments, the electrode assembly includes an electrode base and two electrodes mounted on the electrode base. A connector is symmetrically installed in the screw base, and the two electrodes can be plugged into the corresponding connectors respectively. A solar panel and a circuit board are mounted on the upper end of the main body. The solar panel is located above the circuit board, and the solar panel, the circuit board, and the electrode assembly are electrically connected in sequence.

[0018] (III) Beneficial Effects

[0019] The solar-powered copper ion generator capable of dispensing chlorine tablets provided by this utility model has the following advantages compared with the prior art:

[0020] 1) A chlorine tablet dosing component is added to the copper ion generator. The chlorine tablets work in conjunction with the copper ion generator for sterilization and disinfection, resulting in better sterilization and disinfection effects. There is no need for separate chlorine tablet disinfection, simplifying the sterilization and disinfection process and making operation easier. The chlorine tablet dosing component, through the cooperation of an adjustable support and float, can adjust the number of chlorine tablets entering the water to regulate the sterilization effect. It can automatically add chlorine tablets to the water, with a high degree of automation and convenient use.

[0021] 2) An additional sludge collection component is added. This component, consisting of a filter basket, a sludge collection box, and a float, works as follows: During use, the float rises to open the sludge inlet. Sludge generated by the electrode assembly is blocked by the filter basket and falls along the outer ring of the float, finally being collected in the sludge collection box through the inlet. When the copper ion generator is removed from the water, the float descends to close the sludge inlet, preventing sludge from leaking out of the collection box. This component collects impurities generated by the electrodes, preventing them from entering the pool and affecting water quality. The float serves two purposes: firstly, it blocks the drain hole, preventing sludge from entering the pool through it; secondly, during use, the float's movement with the water flow helps to better expel copper ions generated by the electrode assembly from the filter basket, improving the sterilization and disinfection effect. Attached Figure Description

[0022] To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a perspective view of a solar-powered copper ion generator capable of dispensing chlorine tablets, according to the present invention.

[0024] Figure 2 This is a perspective view of a solar-powered copper ion generator capable of dispensing chlorine tablets, according to this utility model.

[0025] Figure 3 This is an exploded view of a solar-powered copper ion generator capable of dispensing chlorine tablets, according to this utility model.

[0026] Figure 4 This is a schematic diagram of the chlorine dosing component of a solar-powered copper ion generator capable of dispensing chlorine tablets, according to the present invention.

[0027] Figure 5 This is an exploded view of the chlorine dosing component of a solar-powered copper ion generator capable of dispensing chlorine tablets, according to this utility model.

[0028] Figure 6 This is a schematic diagram of the structure of a solar-powered copper ion generator dirt collection component capable of dispensing chlorine tablets according to the present invention;

[0029] Figure 7 This is a schematic diagram of the structure of the float and connecting base of a solar copper ion generator capable of dispensing chlorine tablets according to this utility model;

[0030] Figure 8 This is an exploded view of the float and connecting base of a solar copper ion generator capable of dispensing chlorine tablets according to this utility model.

[0031] The component names corresponding to the various labels in the figure are as follows: 1. Copper ion generator body; 11. Main body; 12. Electrode assembly; 13. Screw base; 14. Locking nut; 15. Solar panel; 121. Electrode holder; 122. Electrode; 131. Connector; 2. Chlorine tablet dosing assembly; 21. Chlorine tablet cylinder; 22. Adjustable support; 23. Chlorine tablet; 24. Float; 211. Chlorine tablet dosing port; 212. Guide groove; 221. Support ring; 222. Through 241. Water passage hole; 3. Guide post; 4. Sludge collection assembly; 31. Filter basket; 32. Sludge collection box; 33. Float; 34. Connecting seat; 311. Connecting flange; 312. Hollow bracket; 313. Filter screen; 321. Drainage passage hole; 322. Drain pipe; 331. Conical body; 332. Float seat; 333. Guide groove; 341. Sludge inlet; 342. Guide tube; 343. Limiting protrusion; 344. Connecting plate; 345. Elastic plate. Detailed Implementation

[0032] The present application will now be described in detail with reference to the accompanying drawings and specific embodiments.

[0033] The following specific examples illustrate the implementation of this application. Those skilled in the art can easily understand other advantages and effects of this application from the content disclosed in this specification. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. This application can also be implemented or applied through other different specific embodiments, and the details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of this application. It should be noted that, in the absence of conflict, the following embodiments and features in the embodiments can be combined with each other. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0034] It should be noted that various aspects of embodiments within the scope of the appended claims are described below. It will be apparent that the aspects described herein can be embodied in a wide variety of forms, and any particular structure and / or function described herein is merely illustrative. Based on this application, those skilled in the art will understand that one aspect described herein can be implemented independently of any other aspect, and two or more of these aspects can be combined in various ways. For example, any number and aspects set forth herein can be used to implement the device and / or practice the method. Additionally, this device and / or method can be implemented using structures and / or functionalities other than one or more of the aspects set forth herein.

[0035] It should also be noted that the illustrations provided in the following embodiments are only schematic representations of the basic concept of this application. The illustrations only show the components related to this application and are not drawn according to the number, shape and size of the components in actual implementation. In actual implementation, the form, quantity and proportion of each component can be arbitrarily changed, and the layout of the components may also be more complex.

[0036] Additionally, specific details are provided in the following description to facilitate a thorough understanding of the examples. However, those skilled in the art will understand that practice can be carried out without these specific details.

[0037] The technical solutions provided by the various embodiments of this application are described below with reference to the accompanying drawings.

[0038] See Figures 1 to 8 This utility model provides a solar copper ion generator that can dispense chlorine tablets, including a copper ion generator body 1 and a chlorine tablet dispensing component 2. The chlorine tablet dispensing component 2 can dispense chlorine tablets into the water. While the copper ion generator body 1 is working, chlorine tablets are also dispensed into the water for sterilization and disinfection, resulting in better sterilization and disinfection effect and more convenient use.

[0039] See Figure 2 and Figure 3 The chlorine tablet dosing assembly 2 includes a float 24 that slides vertically. Multiple chlorine tablets 23 are stacked vertically on the upper end of the float 24. The buoyancy of the float 24 in water is less than the weight of a single chlorine tablet 23. Under the weight of the chlorine tablets 23, the float 24 allows at least a portion of the chlorine tablets 23 located at the bottom to be submerged in water. The chlorine tablet dosing assembly 2 also includes a chlorine tablet cylinder 21 that is vertically mounted on the copper ion generator body 1. The chlorine tablet cylinder 21 can be integrally mounted with the main body 11 of the copper ion generator body 1, or it can be a separate component fixed to the main body 11. The chlorine tablet cylinder 21 is cylindrical with a closed upper end and an open lower end. A chlorine tablet dosing port 211 is provided at the bottom of the chlorine tablet cylinder 21 for adding chlorine tablets 23. The float 24 is slidably mounted inside the chlorine tablet cylinder 21. The lower end of the chlorine tablet cartridge 21 is equipped with a height-adjustable support 22. The float 24 is located on the upper side of the adjustable support 22. After multiple chlorine tablets 23 are installed, the float 24 will rest against the adjustable support 22. The adjustable support 22 is used to adjust the number of chlorine tablets 23 entering the water.

[0040] When the copper ion generator body 1 is placed on the water surface, at least a portion of the chlorine tablets 23 at the bottom are submerged in the water to disinfect it. An adjustable support is provided, allowing the support height to be adjusted according to actual usage needs. This adjusts the number of chlorine tablets entering the water, thus allowing for adjustments to the disinfection effect based on the actual conditions of the water area, making it more flexible to use.

[0041] In some embodiments, such as Figures 3 to 5 As shown, the float 24 is located above the adjustable support 22. Multiple chlorine tablets 23 are stacked vertically on the upper end of the float 24, and the float 24 rests against the adjustable support 22 under the weight of the chlorine tablets 23. The weight of the chlorine tablets 23 is greater than the buoyancy of the float 24 in the water, ensuring that a single chlorine tablet 23 can also press down on the float 24 for use in the water. The adjustable support 22 is threaded into the chlorine tablet cylinder 21 and has a support ring 221 for supporting the float 24. The bottom of the support ring 221 has multiple water passage holes 222. In use, both the support ring 221 and the float 24 are below the water surface, so that at least part of the chlorine tablets 23 are submerged in the water. In this structure, multiple chlorine tablets 23 are inserted through the chlorine tablet inlet 211, then the float 24 is installed, and finally the adjustable support 22 is installed inside the chlorine tablet inlet 211. The threaded adjustable support 33 is very easy to install and remove. With the float 33 in place, the chlorine tablet at the bottom rests against the float and is placed in the water. When the chlorine tablet in the water has completely dissolved, the gravity of the upper chlorine tablets causes the next (or several) chlorine tablets to re-enter the water, thus realizing the function of automatic chlorine tablet dosing. It has a high degree of automation and is more flexible in use.

[0042] In some embodiments, such as Figure 4 and Figure 5 As shown, a sensing device (not shown) is installed on the float 24. When the float 24 rises above the water surface, the sensing device sends a signal indicating that the chlorine tablets are used up. The sensing device may include a magnet mounted on the float, and a sensor that can sense the magnet is mounted on the main body 11. In this embodiment, the magnet can be installed in the groove of the guide post. When all the chlorine tablets are used up, the float rises above the water surface due to the lack of chlorine tablets, so that the magnet corresponds to the position of the sensor and senses it. The sensor sends a signal indicating that the chlorine tablets are used up, and the warning light on the main body 11 then sounds an alarm. The sensor is existing technology and will not be described in detail in this embodiment. By adding a sensor, an alarm can be triggered when all the chlorine tablets in the chlorine tablet cylinder are used up, allowing the user to add chlorine tablets in time. Guide posts 241 are provided on one or both sides of the float 24, and guide grooves 212 adapted to the guide posts 241 are provided vertically along the upper edge of the chlorine tablet cylinder 21. There are two guide posts 241 on both sides of the float 24, which provides good guiding effect. The guide posts 241 are placed in the guide grooves 212. The lower end of the guide grooves 212 is connected to the outside, which makes it easy to remove the float when adding chlorine tablets and ensures the feasibility of the structure.

[0043] In some embodiments, such as Figure 3 and Figure 6As shown, the copper ion generator body 1 includes a main body 11 and an electrode assembly 12 detachably mounted on the main body 11. A chlorine tablet dosing assembly 2 is located on one side of the electrode assembly 12, and a dirt collection assembly 3 is detachably mounted on the outside of the electrode assembly 12. In existing copper ion generators, the electrodes produce trace amounts of suspended solids, which can enter the water tank and affect its cleanliness. The dirt collection assembly 3 collects the impurities generated by the electrodes, preventing them from entering the water tank and affecting water quality.

[0044] like Figure 3 and Figure 6 As shown, the sludge collection assembly 3 includes a filter basket 31 covering the outside of the electrode assembly 12 and a sludge collection box 32 detachably installed at the bottom of the filter basket 31. The sludge collection box 32 has a drain hole 321 communicating with the filter basket 31. The drain hole 321 is funnel-shaped, facilitating the placement or removal of the copper ion generator from the water surface and preventing air pressure buildup. A sludge inlet 341 is located at the bottom of the filter basket 31, connecting to the sludge collection box 32. A float 33 is vertically mounted inside the filter basket 31, positioned directly above the drain hole 321 and capable of opening and closing the sludge inlet 341. The float 33 can block the drain hole 321, preventing sludge from entering the pool through it during use. The outer diameter of the float 33 is smaller than the inner diameter of the filter basket 31, allowing for a gap to facilitate sludge falling along the outer ring of the float 33.

[0045] When the copper ion generator is placed in water, buoyancy causes the float 33 to rise and open the waste inlet 341. Waste generated by the electrode assembly 12 is blocked by the filter basket 31 and falls along the outer ring of the float 33, finally collecting in the waste collection box 32 through the waste inlet 341. When the copper ion generator is removed from the water, gravity causes the float 33 to descend and close the waste inlet 341, preventing waste from leaking out of the waste collection box 32, resulting in better performance.

[0046] In some embodiments, such as Figure 3 , Figure 6 and Figure 7 As shown, the bottom of the filter basket 31 is threadedly connected to the connecting seat 34, and the sludge collection box 32 is threadedly connected to the connecting seat 34; the sludge inlet 341 is set inside the connecting seat 34. The sludge inlet 341 is in the shape of a horn with a larger upper diameter and a smaller lower diameter. The horn-shaped sludge inlet 341 can be opened and closed by the raising and lowering of the float 33, ensuring the feasibility of the structure.

[0047] The connecting seat 34 has a guide tube 342 at its center, which communicates with the drain hole 321. The float 33 includes a conical body 331 covering the upper side of the guide tube 342 and a float seat 332 fixed inside the conical body 331. The float seat 332 slides on the guide tube 342 and can move up and down along the guide tube 342. The material density of the float 33 needs to be less than or equal to the density of water. For example, the float 33 can be made of PP material to ensure that the float 33 can float in water during use. The float seat 332 has a guide groove 333 for the guide tube 342 to pass through. The diameter of the guide groove 333 is larger than that of the guide tube 342, so that the float 33 can move horizontally relative to the guide tube 342. With this structure, the float can also sway with the water flow during use, which can better discharge the copper ions generated by the electrode assembly from the filter basket, thereby improving the sterilization and disinfection effect.

[0048] In some embodiments, such as Figure 7 and Figure 8 As shown, the upper end of the guide tube 342 is provided with multiple equidistant limiting protrusions 343 in an annular pattern. The limiting protrusions 343 are used to limit the float 33. The upper end of the guide tube 342 is provided with multiple equidistant elastic plates 345 in an annular pattern, and the limiting protrusions 343 are set on the corresponding elastic plates 345. The elastic plates 345, limiting protrusions 343, guide tube 342 and connecting seat 34 are integrated plastic parts. There are through holes between two adjacent elastic plates 345 to give the elastic plates 345 a certain degree of elasticity. The setting of the elastic plates 345 makes it convenient to fit the float seat 332 onto the guide tube 342. The connecting seat 34 is provided with multiple equidistant connecting plates 344 in an annular pattern. The connecting plates 344 connect the guide tube 342 and the connecting seat 34, and the connecting plates 344 are used to limit the float 33 in a lower position. When the float 33 rises, it is limited to the upper limit by the limiting protrusion 343; when the float 33 falls, it is limited to the lower limit by the connecting plate 344.

[0049] In some embodiments, such as Figure 3 and Figure 6 As shown, a drain pipe 322 is vertically arranged at the center of the sludge collection box 32, and a drain hole 321 is located inside the drain pipe 322. The sludge collection box 32 is made of transparent material. The transparent material of the sludge collection box 32 makes it easy to observe the amount of sludge inside the sludge collection box 32 and facilitates timely cleaning.

[0050] In some embodiments, such as Figure 3 and Figure 6As shown, a screw seat 13 is fixed to the lower end of the main body 11, and a connecting flange 311 is provided on the upper side of the filter basket 31. A locking nut 14 is threaded onto the screw seat 13, and the locking nut 14 secures the connecting flange 311, the electrode assembly 12, and the screw seat 13. The filter basket 31 includes a cylindrical hollow support 312 and a filter screen 313 mounted on the hollow support 312. The connecting flange 311 is located at the upper end of the hollow support 312. The electrode assembly 12 includes an electrode seat 121 and two electrodes 122 mounted on the electrode seat 121. Plugs 131 are symmetrically installed inside the screw seat 13, and the two electrodes 122 can be plugged into the corresponding plugs 131 respectively. A solar panel 15 and a circuit board (not shown in the figure) are installed on the upper end of the main body 11. The solar panel 15 is located on the upper side of the circuit board, and the solar panel 15, the circuit board, and the electrode assembly 12 are electrically connected in sequence.

[0051] The same or similar parts between the various embodiments in this specification can be referred to mutually. Each embodiment focuses on describing the differences from other embodiments.

[0052] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. A solar-powered copper ion generator capable of dispensing chlorine tablets, comprising a copper ion generator body (1), characterized in that: The copper ion generator body (1) is provided with a chlorine tablet dosing assembly (2). The chlorine tablet dosing assembly (2) includes a float (24) that slides vertically. Multiple chlorine tablets (23) are stacked vertically on the upper end of the float (24). The buoyancy of the float (24) in the water is less than the weight of a single chlorine tablet (23). Under the weight of the chlorine tablets (23), the float (24) can place at least a portion of the chlorine tablets (23) at the bottom in the water.

2. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 1, characterized in that: The chlorine tablet dosing assembly (2) also includes a chlorine tablet cylinder (21) vertically arranged on the copper ion generator body (1), with a chlorine tablet dosing port (211) at the bottom of the chlorine tablet cylinder (21), and the float (24) slidably installed inside the chlorine tablet cylinder (21).

3. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 2, characterized in that: The lower end of the chlorine tablet cartridge (21) is equipped with a height-adjustable support (22). The float (24) is located on the upper side of the adjustable support (22). After multiple chlorine tablets (23) are installed, the float (24) will abut against the adjustable support (22). The adjustable support (22) is used to adjust the number of chlorine tablets (23) entering the water.

4. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 3, characterized in that: The adjustable support (22) is threaded into the chlorine tablet cylinder (21). The adjustable support (22) has a support ring (221) for supporting the float (24). The bottom of the support ring (221) is provided with a plurality of water passage holes (222). In use, the support ring (221) and the float (24) are both located below the water surface, so that at least part of the chlorine tablet (23) is placed in the water.

5. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 2, characterized in that: A sensing device is installed on the float (24). When the float (24) floats out of the water, the sensing device sends a signal that the chlorine tablets are used up. A guide post (241) is provided on one or both sides of the float (24). A guide groove (212) adapted to the guide post (241) is provided vertically on the chlorine tablet cylinder (21). The lower end of the guide groove (212) is connected to the outside.

6. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 1, characterized in that: The copper ion generator body (1) includes a main body (11) and an electrode assembly (12) mounted on the main body (11). The chlorine tablet dosing assembly (2) is disposed on one side of the electrode assembly (12). A dirt collection assembly (3) is detachably installed on the outside of the electrode assembly (12). The sludge collection assembly (3) includes a filter basket (31) covering the outside of the electrode assembly (12) and a sludge collection box (32) detachably installed at the bottom of the filter basket (31). The sludge collection box (32) is provided with a drain hole (321) communicating with the filter basket (31). The bottom of the filter basket (31) is provided with a sludge inlet (341). A float (33) is installed in the filter basket (31) and can be raised and lowered. The float (33) is located directly above the drain hole (321) and can open and close the sludge inlet (341). In use, the float (33) rises and opens the sludge inlet (341). The sludge generated by the electrode assembly (12) falls along the outer ring of the float (33) and is collected in the sludge collection box (32) through the sludge inlet (341).

7. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 6, characterized in that: The bottom of the filter basket (31) is threadedly connected to a connecting seat (34), and the sludge collection box (32) is threadedly connected to the connecting seat (34); the sludge inlet (341) is located inside the connecting seat (34), and the sludge inlet (341) is in the shape of a trumpet with a larger upper port diameter and a smaller lower port diameter. The center of the connecting seat (34) is provided with a guide pipe (342) communicating with the drainage through hole (321); the float (33) includes a conical body (331) covering the upper side of the guide pipe (342) and a float seat (332) fixed in the conical body (331). The float seat (332) is provided with a guide groove (333) for the guide pipe (342) to pass through; the diameter of the guide groove (333) is larger than that of the guide pipe (342), so that the float (33) can move horizontally relative to the guide pipe (342).

8. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 7, characterized in that: The upper end of the guide tube (342) is provided with a plurality of limiting protrusions (343) at equal intervals in an annular shape. The limiting protrusions (343) are used to limit the float (33) to an upper limit. The connecting seat (34) is provided with a plurality of connecting plates (344) at equal intervals in an annular shape. The connecting plates (344) are connected between the guide tube (342) and the connecting seat (34). The connecting plates (344) are used to limit the float (33) to a lower limit. The upper end of the guide tube (342) is provided with a plurality of elastic plates (345) at equal intervals in an annular shape. The limiting protrusions (343) are provided on the corresponding elastic plates (345).

9. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 6, characterized in that: The sludge collection box (32) has a drain pipe (322) arranged vertically in the center of the interior, and the drain hole (321) is arranged in the drain pipe (322). The sludge collection box (32) is made of transparent material.

10. The solar-powered copper ion generator capable of dispensing chlorine tablets as described in claim 6, characterized in that: The lower end of the main body (11) is fixed with a screw seat (13), and the upper side of the filter basket (31) is provided with a connecting flange (311). A locking nut (14) is threaded onto the screw seat (13). The locking nut (14) secures the connecting flange (311), the electrode assembly (12), and the screw seat (13) together. The filter basket (31) includes a columnar hollow support (312) and a filter screen (313) installed on the hollow support (312). The connecting flange (311) is located at the upper end of the hollow support (312). The electrode assembly (12) includes an electrode base (121) and two electrodes (122) mounted on the electrode base (121). Plugs (131) are symmetrically installed in the screw base (13), and the two electrodes (122) can be plugged into the corresponding plugs (131) respectively. A solar panel (15) and a circuit board are installed on the upper end of the main body (11). The solar panel (15) is located on the upper side of the circuit board. The solar panel (15), the circuit board and the electrode assembly (12) are electrically connected in sequence.