Device for continuously producing electrolytic silver ions
By setting cleaning components and circulating components in the electrolytic device, cleaning impurities on the surface of the anode rod and sediments on the collection cover, the problem that impurities on the surface of the anode rod affect the silver ion electrolytic efficiency is solved, and the silver ion electrolytic efficiency is improved and continuous production is achieved.
Patent Information
- Application Number
- CN202510781976.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-12
- Publication Date
- 2025-08-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the long-term electrolysis of silver ions, the surface impurities of the anode rod are seriously attached to each other, which affects the electrolytic efficiency of silver ions and cannot achieve long-term continuous production.
An electrolytic device including a cleaning component is designed to clean impurities on the surface of the anode rod by driving the cleaning rod and bristles through the rotary rod, and collect and clean silver ions in the electrolyte through the circulation component, combining the vibration of the impact rod and the collection cover to clean impurities to ensure the sustainability of the electrolytic efficiency.
It effectively avoids the wrapping of impurities on the surface of the anode rod, reduces the concentration of silver ions in the electrolyte, improves the electrolytic efficiency of silver ions, and achieves the stability of continuous production.
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Figure CN120485807A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of electrolytic equipment, and more particularly to a device for continuously producing electrolytic silver ions. Background Art
[0002] Silver ions are natural antibacterial preservatives that have been known and used by humans for a long time. Silver ion solutions can kill bacteria and have no drug resistance. They can promote wound healing, cell growth and repair of damaged cells. At the same time, they have no toxic reactions and are non-irritating to the skin.
[0003] Most existing silver ions are produced through electrolytic silver. During the electrolysis process, the electrolyte usually uses high-purity deionized water or ultrapure water, the cathode usually uses inert materials such as platinum, titanium plated with platinum, titanium plated with ruthenium and iridium, etc., and the anode usually uses silver. The shape can be plate-shaped, rod-shaped, mesh-shaped or cylindrical, and the cathode and anode are separated by a cation exchange membrane. During electrolysis, the silver rod at the anode will turn into silver ions, and then the cathode will electrolyze hydrogen. After a long period of electrolysis in the existing electrolysis device, as the silver ions are electrolyzed, impurities in the silver rod will adhere to the surface of the silver rod, thereby seriously affecting the electrolysis efficiency of the silver ions. Therefore, the user needs to clean the silver rod at regular intervals, and it is impossible to achieve long-term continuous production of silver ions, which seriously affects the electrolysis efficiency of the silver ions. Summary of the Invention
[0004] In view of the problems existing in the prior art, the object of the present invention is to provide a device for continuously producing electrolytic silver ions, which can achieve the purpose of improving the silver ion electrolysis efficiency.
[0005] To solve the above problems, the present invention adopts the following technical solutions.
[0006] A device for continuously producing electrolytic silver ions, comprising an electrolytic box, a cover plate detachably mounted on the top wall of the electrolytic box, a bipolar membrane fixedly mounted in the electrolytic box, an anode rod and a cathode rod respectively mounted on the bottom wall of the cover plate, the cathode rod and the anode rod being located on either side of the cationic membrane, and a cleaning assembly for cleaning the anode rod provided on the electrolytic box;
[0007] The cleaning assembly includes a rotating rod rotatably mounted on the bottom wall of the electrolytic box, a U-shaped cleaning rod fixedly mounted on the top wall of the rotating rod, and first bristles evenly fixedly mounted on the cleaning rod, and a first circulation assembly cooperating with the rotating rod is provided on the electrolytic box.
[0008] Furthermore, the first circulation component includes a first water pipe fixedly mounted on the side wall of the electrolytic box, and a first circulation pump is provided at one end of the first water pipe away from the electrolytic box, the output end of the first circulation pump is connected to a first silver ion collection tank, a second water pipe connected to the electrolytic box is inserted into the first collection tank, a vertical rod is fixedly mounted in the first water pipe, a horizontal rod is rotatably mounted on the vertical rod, and an impeller cooperating with the second water pipe is fixedly mounted on the horizontal rod, a first bevel gear is fixedly mounted on one end of the horizontal rod away from the impeller, and a second bevel gear meshing with the first bevel gear is fixedly mounted on the bottom end of the rotating rod.
[0009] Furthermore, a collecting cover cooperating with the anode rod is fixedly mounted on the bottom wall of the cover plate, a second brush for cleaning the collecting cover is evenly mounted on the cleaning rod, a collecting port is opened on the bottom wall of the collecting cover, and a collecting box connected to the collecting port is mounted on the bottom wall of the collecting cover.
[0010] Furthermore, an annular groove is provided on the collection cover, a mounting ring is rotatably installed in the annular groove, and a connecting rod is commonly installed between the mounting ring and the cleaning rod, a cleaning rod is fixedly installed on the mounting ring, a cleaning cavity is provided on the cleaning rod, and connecting holes are evenly provided on the cleaning cavity.
[0011] Furthermore, an annular plate is rotatably mounted on the mounting ring, a first linkage groove is provided on the annular plate, a second linkage groove communicating with the cleaning chamber is provided on the mounting ring, and an end of the second water pipe away from the collection tank is communicated with the first linkage groove.
[0012] Furthermore, the cleaning rod is evenly provided with a slide groove, an impact rod is slidably installed in the slide groove, and a spring is installed between the impact rod and the slide groove, and the collection cover is evenly provided with impact grooves that cooperate with the impact rod.
[0013] Furthermore, the electrolytic box is provided with a second circulation component that cooperates with the cathode rod, the second circulation component includes a third water pipe inserted into the electrolytic box, the third water pipe is connected to a second circulation pump, the output end of the second circulation pump is connected to a second collecting tank, and the second collecting tank is equipped with a fourth water pipe connected to the electrolytic box.
[0014] Furthermore, one end of the impact rod away from the spring is a smooth mirror surface.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] (1) This solution provides a cleaning rod, which drives the cleaning rod to rotate during the rotation of the rotating rod. During the rotation of the cleaning rod, the first brush can be driven to clean the impurities on the anode rod, thereby preventing the impurities from being wrapped on the surface of the anode rod and affecting the electrolysis efficiency of silver ions, thereby improving the electrolysis efficiency of silver ions;
[0017] (2) This solution provides a second brush, which is then driven to rotate as the cleaning rod rotates. The rotating second brush can clean the impurities attached to the collection cover, and the impurities are moved into the collection box through the collection port under the combined action of gravity and centrifugal force, thereby preventing the holes on the collection cover from being blocked, affecting the normal flow of silver ions into the electrolyte outside the collection cover, and further improving the silver ion electrolysis efficiency by causing the silver ion content near the anode rod to be too high.
[0018] (3) This solution opens a cleaning chamber, and drives the cleaning rod to rotate during the rotation of the mounting ring. At the same time, the electrolyte flowing out of the second water pipe flows into the cleaning chamber through the first linkage groove and the second linkage groove, and is sprayed toward the outer wall of the collection cover through the connecting hole on the cleaning chamber, so that the impurities in the gap of the collection cover can be separated from the collection cover, making it easier for the second brush to clean the impurities. At the same time, the concentration of silver ions in the electrolyte near the anode rod can be reduced, further improving the electrolysis efficiency of silver ions.
[0019] (4) This solution sets up an impact rod, which drives the impact rod to rotate during the rotation of the cleaning rod. When the impact rod contacts the impact groove, the spring stretches and drives the impact rod into the impact groove. When the impact rod is out of contact with the impact groove, the impact rod moves along the slide groove and compresses the spring. As the impact rod moves back and forth, it will hit the collection cover and cause the collection cover to vibrate, thereby loosening the impurities on the collection cover, making it easier to clean the impurities on the collection cover. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a structural schematic diagram of the present invention;
[0021] Figure 2 is a cross-sectional view of the electrolytic box of the present invention;
[0022] Figure 3 It is a cross-sectional view of the collection cover, collection box, and cleaning rod of the present invention;
[0023] Figure 4 For the present invention Figure 3 Enlarged view of point A in the middle;
[0024] Figure 5 This is a combined diagram of the first water pipe, impeller, and horizontal rod of the present invention;
[0025] Figure 6This is a combined diagram of the cleaning rod, rotating rod, first bristles, and second bristles of the present invention;
[0026] Figure 7 It is a top cross-sectional view of the collecting cover and the cleaning rod of the present invention;
[0027] Figure 8 For the present invention Figure 7 Enlarged view of point B in the middle.
[0028] Description of the numbers in the figure:
[0029] 1. Electrolytic box; 2. Cover plate; 3. Bipolar membrane; 4. Cathode rod; 5. Anode rod;
[0030] 6. Cleaning assembly; 601. Rotating rod; 602. Cleaning rod; 603. First bristle;
[0031] 7. First circulation assembly; 701. First water pipe; 702. First circulation pump; 703. First collection tank; 704. Second water pipe; 705. Vertical rod; 706. Horizontal rod; 707. Impeller; 708. First bevel gear; 709. Second bevel gear;
[0032] 801, collection cover; 802, second bristles; 803, collection box;
[0033] 901, annular groove; 902, mounting ring; 903, connecting rod; 904, cleaning rod; 905, cleaning chamber; 906, connecting hole;
[0034] 101. Annular plate; 102. First linkage groove; 103. Second linkage groove;
[0035] 111. Impact rod; 112. Spring; 113. Impact groove;
[0036] 12. Second circulation component; 121. Third water pipe; 122. Second circulation pump; 123. Second collection tank; 124. Fourth water pipe. DETAILED DESCRIPTION
[0037] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention; it is obvious that the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0038] See also Figures 1 to 8A device for continuously producing electrolytic silver ions, comprising an electrolytic box 1, a cover plate 2 being detachably mounted on the top wall of the electrolytic box 1, a bipolar membrane 3 being fixedly mounted within the electrolytic box 1, an anode rod 5 and a cathode rod 4 being mounted on the bottom wall of the cover plate 2, the cathode rod 4 and the anode rod 5 being located on either side of the cationic membrane, respectively, and a cleaning assembly 6 for cleaning the anode rod 5 being provided on the electrolytic box 1;
[0039] The cleaning assembly 6 includes a rotating rod 601 rotatably mounted on the inner bottom wall of the electrolytic box 1, a U-shaped cleaning rod 602 is fixedly mounted on the top wall of the rotating rod 601, and first bristles 603 are evenly fixedly mounted on the cleaning rod 602, and the electrolytic box 1 is provided with a first circulation assembly 7 that cooperates with the rotating rod 601.
[0040] The first circulation component 7 includes a first water pipe 701 fixedly mounted on the side wall of the electrolytic box 1, and a first circulation pump 702 is provided at one end of the first water pipe 701 away from the electrolytic box 1, the output end of the first circulation pump 702 is connected to a first silver ion collection tank 703, and a second water pipe 704 connected to the electrolytic box 1 is inserted into the first collection tank 703, a vertical rod 705 is fixedly mounted in the first water pipe 701, and a horizontal rod 706 is rotatably mounted on the vertical rod 705, and an impeller 707 cooperating with the second water pipe 704 is fixedly mounted on the horizontal rod 706, a first bevel gear 708 is fixedly mounted on one end of the horizontal rod 706 away from the impeller 707, and a second bevel gear 709 meshing with the first bevel gear 708 is fixedly mounted on the bottom end of the rotating rod 601.
[0041] During use, the cathode rod 4 and the anode rod 5 are energized, and then the silver at the anode is gradually electrolyzed into silver ions. As the silver ions are electrolyzed, the silver on the anode rod 5 is gradually dissolved. At this time, some impurities on the anode rod 5 will adhere to the anode rod 5. Then the first circulation component 7 drives the rotating rod 601 to rotate, and during the rotation of the rotating rod 601, it drives the cleaning rod 602 to rotate. During the rotation of the cleaning rod 602, it can drive the first brush 603 to clean the impurities on the anode rod 5, thereby preventing impurities from being wrapped around the surface of the anode rod 5 and affecting the electrolysis efficiency of the silver ions, thereby improving the electrolysis efficiency of the silver ions.
[0042] As silver is electrolyzed, the silver ion content in the electrolyte gradually increases. In order to avoid excessive concentration of silver ions in the electrolyte, which affects the silver ion electrolysis efficiency, the user can start the first circulation pump 702, and then the first circulation pump 702 drives the electrolyte in the electrolysis box 1 to flow to the first collection tank 703 through the first water pipe 701 and the first circulation pump 702. At this time, the first collection tank 703 can collect the silver ions in the electrolyte, and the electrolyte collected by the first collection tank 703 can flow back to the electrolysis box 1 through the second water pipe 704, thereby effectively avoiding excessive silver ion concentration in the electrolyte affecting the motor efficiency and further improving the silver ion electrolysis efficiency.
[0043] As the electrolyte passes through the first water pipe 701, it will hit the impeller 707 and drive the impeller 707 to rotate. Then, during the rotation of the impeller 707, the first bevel gear 708 is driven to rotate through the horizontal rod 706, and during the rotation of the first bevel gear 708, the rotating rod 601 is driven to rotate through the second bevel gear 709, thereby driving the cleaning component 6 to operate.
[0044] like Figure 2 ,Figure,3, Figure 4 、 Figure 6 、 Figure 7 、 Figure 8 As shown, a collecting cover 801 cooperating with the anode rod 5 is fixedly mounted on the bottom wall of the cover plate 2, a second brush 802 for cleaning the collecting cover 801 is evenly mounted on the cleaning rod 602, a collecting port is provided on the bottom wall of the collecting cover 801, and a collecting box 803 connected to the collecting port is mounted on the bottom wall of the collecting cover 801.
[0045] An annular groove 901 is provided on the collecting cover 801, a mounting ring 902 is rotatably installed in the annular groove 901, and a linkage rod 903 is installed between the mounting ring 902 and the cleaning rod 602, a cleaning rod 904 is fixedly installed on the mounting ring 902, a cleaning cavity 905 is provided on the cleaning rod 904, and connecting holes 906 are evenly provided on the cleaning cavity 905.
[0046] A ring plate 101 is rotatably mounted on the mounting ring 902 , a first linkage groove 102 is provided on the ring plate 101 , a second linkage groove 103 communicating with the cleaning chamber 905 is provided on the mounting ring 902 , and the end of the second water pipe 704 away from the collection tank is communicated with the first linkage groove 102 .
[0047] The cleaning rod 904 is evenly provided with sliding grooves, in which a striking rod 111 is slidably installed, and a spring 112 is installed between the striking rod 111 and the sliding groove. The collecting cover 801 is evenly provided with striking grooves 113 that cooperate with the striking rod 111.
[0048] By adopting the above technical solution, as silver is electrolyzed, some impurities that are out of contact with the anode rod 5 will be blocked by the collecting cover 801, thereby preventing impurities from contaminating the electrolyte. Then, as the cleaning rod 602 rotates, the second brush 802 will be driven to rotate, and the rotating second brush 802 can clean the impurities attached to the collecting cover 801. Under the combined action of gravity and centrifugal force, the impurities move through the collecting port into the collecting box 803, thereby preventing the holes on the collecting cover 801 from being blocked, affecting the normal flow of silver ions into the electrolyte outside the collecting cover 801, and causing the silver ion content near the anode rod 5 to be too high, affecting the electrolysis efficiency of the silver ions, and further improving the electrolysis efficiency of the silver ions.
[0049] During the rotation of the cleaning rod 602, the mounting ring 902 is driven to rotate by the connecting rod 903, and since the collection box 803 on the bottom wall of the collection cover 801 is installed on the inner bottom wall of the electrolytic box 1 by a snap, the collection cover 801 cannot rotate. Then, during the rotation of the mounting ring 902, the cleaning rod 904 is driven to rotate. At the same time, the electrolyte flowing out of the second water pipe 704 flows into the cleaning chamber 905 through the first connecting groove 102 and the second connecting groove 103, and is sprayed to the outer wall of the collection cover 801 through the connecting hole 906 on the cleaning chamber 905, so that the impurities in the gap of the collection cover 801 can be separated from the collection cover 801, which is convenient for the second brush 802 to clean the impurities. At the same time, the concentration of silver ions in the electrolyte near the anode rod 5 can be reduced, further improving the electrolysis efficiency of silver ions.
[0050] During the rotation of the cleaning rod 904, the impact rod 111 is driven to rotate. When the impact rod 111 contacts the impact groove 113, the spring 112 stretches and drives the impact rod 111 into the impact groove 113. When the impact rod 111 is out of contact with the impact groove 113, the impact rod 111 moves along the slide groove and compresses the spring 112. As the impact rod 111 moves back and forth, it will hit the collection cover 801 and cause the collection cover 801 to vibrate, thereby loosening the impurities on the collection cover 801, making it easier to clean the impurities on the collection cover 801.
[0051] like Figure 1 、 Figure 2 As shown, the electrolytic box 1 is provided with a second circulation component 12 that cooperates with the cathode rod 4. The second circulation component 12 includes a third water pipe 121 inserted into the electrolytic box 1. The third water pipe 121 is connected to a second circulation pump 122. The output end of the second circulation pump 122 is connected to a second collecting tank 123. The second collecting tank 123 is equipped with a fourth water pipe 124 that is connected to the electrolytic box 1.
[0052] By adopting the above technical solution, since gas is generated during the electrolysis process of the cathode rod 4, if the gas cannot be processed in time, when there is too much gas near the cathode rod 4, the electrolysis efficiency of the silver ions will be affected. Then the second circulation pump 122 drives the electrolyte on the side of the cathode rod 4 to flow to the second collection tank 123 through the third water pipe 121, and then the second collection tank 123 can collect the gas in the electrolyte. Then, the electrolyte after the gas is collected flows again into the electrolysis box 1 through the fourth water pipe 124 on the second collection tank 123, thereby further improving the electrolysis efficiency of the silver ions.
[0053] like Figure 8 As shown, the end of the impact rod 111 away from the spring 112 is a smooth mirror surface.
[0054] By adopting the above-mentioned technical solution, in the process of the cleaning rod 904 driving the impact rod 111 to rotate, the end of the impact rod 111 away from the spring 112 will rub back and forth with the impact groove 113. By making the end of the impact rod 111 away from the spring 112 a smooth mirror surface, the friction between the impact rod 111 and the impact groove 113 can be reduced, thereby ensuring that the impact rod 111 slides normally along the slide groove, and the degree of wear of the impact rod 111 can also be reduced.
[0055] Instructions for use: During use, the cathode rod 4 and the anode rod 5 are energized, and the silver at the anode is gradually electrolyzed into silver ions. As the silver ions are electrolyzed, the silver on the anode rod 5 is gradually dissolved. At this time, some impurities on the anode rod 5 will adhere to the anode rod 5. Then the first circulation component 7 drives the rotating rod 601 to rotate, and during the rotation of the rotating rod 601, it drives the cleaning rod 602 to rotate, and during the rotation of the cleaning rod 602, it can drive the first brush 603 to clean the impurities on the anode rod 5. As the silver is electrolyzed, the silver ion content in the electrolyte gradually increases. In order to avoid the concentration of silver ions in the electrolyte being too high and affecting the efficiency of silver ion electrolysis, the user can start the first circulation pump 702, and then the first circulation pump 702 drives the electrolysis The electrolyte in the box 1 flows to the first collection tank 703 through the first water pipe 701 and the first circulation pump 702. At this time, the first collection tank 703 can collect the silver ions in the electrolyte, and the electrolyte collected by the first collection tank 703 can flow into the electrolytic box 1 again through the second water pipe 704. In the process of the electrolyte passing through the first water pipe 701, it will hit the impeller 707 and drive the impeller 707 to rotate. Then, in the process of the impeller 707 rotating, the first bevel gear 708 is driven to rotate through the horizontal rod 706, and in the process of the first bevel gear 708 rotating, the rotating rod 601 is driven to rotate through the second bevel gear 709; as the cleaning rod 602 rotates, the second brush 802 is driven to rotate, and the rotating second brush 80 2 can clean the impurities attached to the collection cover 801, and under the combined action of gravity and centrifugal force, the impurities move through the collection port into the collection box 803, thereby preventing the holes on the collection cover 801 from being blocked and affecting the normal flow of silver ions into the electrolyte outside the collection cover 801; during the rotation of the cleaning rod 602, the connecting rod 903 drives the mounting ring 902 to rotate, and since the collection box 803 on the bottom wall of the collection cover 801 is installed on the inner bottom wall of the electrolytic box 1 through a buckle, the collection cover 801 cannot rotate, and then during the rotation of the mounting ring 902, the cleaning rod 904 is driven to rotate, and at the same time, the electrolyte flowing out of the second water pipe 704 flows into the cleaning chamber 90 through the first connecting groove 102 and the second connecting groove 103. 5, and is sprayed toward the outer wall of the collection cover 801 through the connecting hole 906 on the cleaning chamber 905, so that the impurities in the gap of the collection cover 801 can be separated from the collection cover 801, making it easier for the second brush 802 to clean the impurities; during the rotation of the cleaning rod 904, the impact rod 111 is driven to rotate, and when the impact rod 111 contacts the impact groove 113, the spring 112 stretches and drives the impact rod 111 into the impact groove 113, and when the impact rod 111 is separated from the impact groove 113, the impact rod 111 moves along the slide groove and compresses the spring 112, and as the impact rod 111 moves back and forth, it will hit the collection cover 801 and make the collection cover 801 vibrate, so that the impurities on the collection cover 801 become loose.
[0056] The above description is merely a preferred embodiment of the present invention; however, the scope of protection of the present invention is not limited thereto. Any person skilled in the art who, within the technical scope disclosed by the present invention, makes equivalent substitutions or modifications based on the technical solutions and improved concepts of the present invention shall be covered by the scope of protection of the present invention.
Claims
1. A device for continuously producing electrolytic silver ions, comprising an electrolytic box (1), characterized in that: A cover plate (2) is detachably mounted on the top wall of the electrolytic box (1), a bipolar membrane (3) is fixedly mounted in the electrolytic box (1), an anode rod (5) and a cathode rod (4) are respectively mounted on the bottom wall of the cover plate (2), and the cathode rod (4) and the anode rod (5) are respectively located on both sides of the cationic membrane, and a cleaning component (6) for cleaning the anode rod (5) is provided on the electrolytic box (1); The cleaning assembly (6) comprises a rotating rod (601) rotatably mounted on the inner bottom wall of the electrolytic box (1); a U-shaped cleaning rod (602) is fixedly mounted on the top wall of the rotating rod (601); and first bristles (603) are evenly fixedly mounted on the cleaning rod (602); and a first circulation assembly (7) cooperating with the rotating rod (601) is provided on the electrolytic box (1).
2. A device for continuously producing electrolytic silver ions according to claim 1, characterized in that: The first circulation component (7) comprises a first water pipe (701) fixedly mounted on the side wall of the electrolytic box (1), and a first circulation pump (702) is provided at one end of the first water pipe (701) away from the electrolytic box (1), the output end of the first circulation pump (702) is connected to a first silver ion collection tank (703), a second water pipe (704) connected to the electrolytic box (1) is inserted into the first collection tank (703), a vertical rod (705) is fixedly mounted in the first water pipe (701), a horizontal rod (706) is rotatably mounted on the vertical rod (705), an impeller (707) matched with the second water pipe (704) is fixedly mounted on the horizontal rod (706), a first bevel gear (708) is fixedly mounted at one end of the horizontal rod (706) away from the impeller (707), and a second bevel gear (709) meshing with the first bevel gear (708) is fixedly mounted at the bottom end of the rotating rod (601).
3. A device for continuously producing electrolytic silver ions according to claim 2, characterized in that: A collecting cover (801) that cooperates with the anode rod (5) is fixedly mounted on the bottom wall of the cover plate (2); second brushes (802) for cleaning the collecting cover (801) are evenly mounted on the cleaning rod (602); a collecting port is provided on the bottom wall of the collecting cover (801); and a collecting box (803) that is in communication with the collecting port is mounted on the bottom wall of the collecting cover (801).
4. A device for continuously producing electrolytic silver ions according to claim 3, characterized in that: The collecting cover (801) is provided with an annular groove (901), a mounting ring (902) is rotatably mounted in the annular groove (901), and a linkage rod (903) is installed between the mounting ring (902) and the cleaning rod (602), a cleaning rod (904) is fixedly mounted on the mounting ring (902), a cleaning cavity (905) is provided on the cleaning rod (904), and connecting holes (906) are evenly provided on the cleaning cavity (905).
5. A device for continuously producing electrolytic silver ions according to claim 4, characterized in that: An annular plate (101) is rotatably mounted on the mounting ring (902), a first linkage groove (102) is provided on the annular plate (101), a second linkage groove (103) communicating with the cleaning chamber (905) is provided on the mounting ring (902), and an end of the second water pipe (704) away from the collection tank is communicated with the first linkage groove (102).
6. A device for continuously producing electrolytic silver ions according to claim 5, characterized in that: The cleaning rod (904) is evenly provided with a sliding groove, an impact rod (111) is slidably installed in the sliding groove, and a spring (112) is installed between the impact rod (111) and the sliding groove, and the collection cover (801) is evenly provided with an impact groove (113) that cooperates with the impact rod (111).
7. A device for continuously producing electrolytic silver ions according to claim 6, characterized in that: The electrolytic box (1) is provided with a second circulation assembly (12) that cooperates with the cathode rod (4), and the second circulation assembly (12) includes a third water pipe (121) inserted into the electrolytic box (1), and the third water pipe (121) is connected to a second circulation pump (122), and the output end of the second circulation pump (122) is connected to a second collection tank (123), and the second collection tank (123) is installed with a fourth water pipe (124) that is connected to the electrolytic box (1).
8. A device for continuously producing electrolytic silver ions according to claim 7, characterized in that: One end of the impact rod (111) away from the spring (112) is a smooth mirror surface.