An electrolysis apparatus

By introducing a movable part and a drive unit into the electrolysis equipment, the problem of limited operating angle caused by the fixed volume of the water tank is solved, enabling liquid delivery at any angle and improving the applicability of the equipment and the user experience.

CN224548563UActive Publication Date: 2026-07-24QINGDAO LANWU TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
QINGDAO LANWU TECHNOLOGY CO LTD
Filing Date
2024-10-16
Publication Date
2026-07-24

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Abstract

The utility model discloses an electrolytic equipment, include: setting at least one movable part's liquid storage unit, drive unit is used for driving movable part moves, electrolytic unit is set in the liquid outlet path of liquid in the liquid storage unit when movable part moves, output unit is set in the liquid outlet side of electrolytic unit is used for output electrolytic product after electrolysis. The utility model discloses an electrolytic equipment through drive unit and drive the movable part of liquid storage unit moves, in the movable part moving process, the volume of liquid storage unit is constantly reduced, and the liquid in it is constantly squeezed out, therefore the electrolytic equipment of the utility model can convey the liquid in the liquid storage unit to the electrolytic unit and participate in electrolysis under any use angle.
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Description

Technical Field

[0001] This application belongs to the field of electrochemistry, specifically relating to an electrolysis device. Background Technology

[0002] Electrolysis equipment is becoming increasingly popular in civilian use. Its applications can be seen everywhere, from the catering industry and agriculture to daily life. For example, when an atomizing gun sprays out electrolysis products in the form of a spray, it can disinfect and sterilize the surrounding environment.

[0003] However, the water tank capacity of existing atomizing guns on the market is fixed. Water needs to be delivered to the electrolysis cell via a pump. When the air pump supplies water to the electrolysis cell, it relies on pressure difference to transport the liquid. When the inlet end of the suction tube is submerged below the water surface, the air pump can compress or extract gas to create negative or positive pressure inside the suction tube, thereby attracting or propelling the liquid through it. Therefore, if the inlet end of the suction tube is above the water surface, the air pump cannot effectively drive the liquid flow because the pressure difference cannot be formed or maintained.

[0004] Figure 1 This is a schematic diagram of an existing atomizing gun in its upright position. Figure 2 A schematic diagram of an existing atomizing gun when inverted, as shown below. Figure 1 and Figure 2 As shown, as water in the tank continuously participates in electrolysis, some of the tank's volume is occupied by air. When the tank is inverted, the water inlet end of the suction tube may protrude above the water surface. In this case, the water in the tank cannot be effectively delivered to the electrolytic cell, affecting the electrolysis process. Therefore, under the current water supply method for the electrolytic cell, the operating angle of electrolysis equipment, including the atomizing gun, is significantly affected, limiting its application scenarios.

[0005] Therefore, how to provide a more widely applicable electrolysis device has become an urgent problem to be solved. Utility Model Content

[0006] The purpose of this invention is to overcome the shortcomings of the prior art and provide an electrolysis device. The movable part of the liquid storage unit is moved by the drive unit. As the volume of the liquid storage unit decreases, the liquid inside is continuously squeezed out. Therefore, the liquid can be delivered to the electrolysis unit to participate in electrolysis at any angle of use.

[0007] To achieve the above objectives, the present invention adopts the following technical solution: An electrolysis apparatus, characterized in that it comprises: A liquid storage unit having at least one movable part; A drive unit is used to drive the movable part to move; An electrolysis unit is positioned on the liquid outlet path within the liquid storage unit when the movable part moves. The output unit is located on the liquid outlet side of the electrolysis unit and is used to output the electrolysis products after electrolysis.

[0008] Furthermore, the driving unit includes an active component and a passive component. When the active component is working, it drives the movable part to move through the passive component. Alternatively, the drive unit may only have an active component, which is spaced apart from the movable part.

[0009] Furthermore, the drive unit is only provided with active and passive components; Alternatively, the active component can be connected to the passive component via a force-transmitting component.

[0010] Furthermore, the force transmission component is configured as a lead screw, and the passive component is sleeved on the outside of the force transmission component; The drive unit also includes a guide member connected to the passive component, the guide member being used to limit the rotation of the passive component.

[0011] Furthermore, the movable part is configured as a piston, which is slidably connected to the inner wall of the liquid storage unit; Alternatively, the peripheral wall of the liquid storage unit is configured as an accordion structure, and the movable part, under the action of the driving unit, drives the peripheral wall of the liquid storage unit to contract or expand.

[0012] Furthermore, a housing is provided on the outside of the liquid storage unit, and the housing at least covers the initial position of the movable part; When the movable part is in its initial position, the liquid storage unit is in its maximum volume state.

[0013] Furthermore, the electrolysis unit is disposed between the liquid storage unit and the output unit, and the housing is provided with a propulsion member that restricts the movement of the liquid storage unit in the direction away from the electrolysis unit.

[0014] Furthermore, the propulsion member is disposed on the door of the housing, and the propulsion member has a wedge-shaped structure, with its thickness gradually decreasing along the direction close to the electrolysis unit; Alternatively, the inner wall of the housing may be provided with a support member protruding outwards, and the propulsion member may be an elastic structure, with one end abutting against the liquid storage unit and the other end contacting the support member protruding outwards from the inner wall of the housing.

[0015] Furthermore, a reset element is provided between the electrolysis unit and the liquid storage unit, and the reset element is used to drive the liquid storage unit to move in a direction away from the electrolysis unit.

[0016] Furthermore, the outer wall of the liquid storage unit is provided with a transition pipe along its axial direction. One end of the transition pipe is detachably connected to the first contact of the electrolysis unit, and the other end is detachably connected to the second contact provided on the inner wall of the housing. The second contact is connected to the power supply unit.

[0017] By adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art: 1. The electrolysis device of this utility model drives the movable part of the liquid storage unit to move through the drive unit. During the movement of the movable part, the volume of the liquid storage unit continuously decreases and the liquid inside is continuously squeezed out. Therefore, the electrolysis device of this utility model can transport the liquid in the liquid storage unit to the electrolysis unit to participate in electrolysis at any angle of use.

[0018] 2. In the prior art, in order to increase the number of usage scenarios, the water tank needs to be set to be relatively large to ensure that the water level inside is sufficient to submerge the water inlet end of the straw at other usage angles to achieve water supply. However, since the liquid in the storage unit can be effectively transported to the electrolysis unit for electrolysis at any angle, the water tank of the present invention can be set to be relatively small compared to the water tank of the prior art, so as to reduce the size of the equipment and make it easier for users to use, thus ensuring the user experience. Attached Figure Description

[0019] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0020] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] Figure 1 This is a schematic diagram of an atomizing gun in the prior art when it is upright. Figure 2 This is a schematic diagram of an inverted atomizing gun in the prior art; Figure 3 This is a schematic diagram of the liquid storage unit during installation in one embodiment of the present invention; Figure 4 This is a schematic diagram of the liquid storage unit after installation in one embodiment of the present invention; Figure 5 This is a schematic diagram of the liquid storage unit during installation in another embodiment of the present invention; Figure 6 This is a schematic diagram of the drive unit of this utility model; Figure 7 This is a schematic diagram of an electrolysis device in another embodiment of the present invention.

[0022] Explanation of reference numerals in the attached figures: 1. Liquid storage unit; 11. Movable part; 2. Drive unit; 21. Passive component; 22. Force transmission component; 23. Guide component; 24. Active component; 3. Electrolysis unit; 4. Output unit; 5. Housing; 51. Propulsion component; 52. Support component; 53. Door; 6. Water tank; 61. Suction pipe; 62. Water inlet end. Detailed Implementation

[0023] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.

[0024] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0025] like Figure 1 and Figure 2 As shown, since the volume of the water tank 6 in the existing electrolysis equipment is fixed, a pump is needed to transport the water in the water tank 6 to the electrolysis cell. During this process, the space inside the water tank 6 will gradually be filled with air. When the electrolysis equipment is at another operating angle, such as when the electrolysis equipment is used upside down, as... Figure 2 As shown, the water inlet 62 of the straw 61 may be exposed above the water surface. In this case, the water in the water tank 6 cannot be effectively transported to the electrolytic cell to participate in electrolysis. Therefore, the application scenarios of the electrolysis equipment in the prior art are limited.

[0026] In view of this, such as Figure 3-7 As shown, this utility model provides an electrolysis device, comprising: A liquid storage unit 1 having at least one movable part 11; The drive unit 2 is used to drive the movable part 11 to move. As the movable part 11 moves, the volume of the liquid storage unit 1 decreases or increases accordingly. When the volume of the liquid storage unit 1 continuously decreases, the liquid inside is continuously squeezed out to participate in electrolysis. When the volume of the liquid storage unit 1 increases, the user can replenish the liquid. Then the movable part 11 can work again to squeeze the liquid in the liquid storage unit 1 into the electrolysis unit 3 to participate in electrolysis. The electrolysis unit 3 is located on the liquid outlet path of the liquid storage unit 1 when the movable part 11 moves. Therefore, in this utility model, the electrolysis unit can obtain enough raw liquid from the liquid storage unit 1 for electrolysis regardless of the usage angle, and the applicability of the electrolysis equipment is better. Output unit 4 is located on the liquid outlet side of electrolysis unit 3 and is used to output the electrolysis products after electrolysis.

[0027] In this invention, the liquid in the storage unit 1 is the original liquid that participates in electrolysis. The original liquid is not limited to water. Liquids formed by adding substances such as hyaluronic acid to water can also participate in electrolysis. Therefore, any liquid that can participate in electrolysis should be considered within the scope of protection of this application.

[0028] Regarding the drive unit 2, in one embodiment of this utility model, the drive unit 2 is only provided with an active member 24, and the active member 24 and the movable part 11 are spaced apart. For example, when the active member is an air pump, by continuously supplying outside air to the gap between the active member 24 and the movable part 11, the change in pressure within the gap can be used to drive the movable part 11 to move. Alternatively, the active member 24 can also be in the form of a water pump, by continuously supplying outside water to the gap between the active member 24 and the movable part 11, the change in water pressure within the gap can be used to drive the movable part 11 to move.

[0029] In another embodiment of the present invention, the driving unit 2 includes an active member 24 and a passive member 21. In the working state, the passive member 21 is in contact with the movable part 11. When the active member 24 is working, it drives the movable part 11 to move through the passive member 21, thereby adjusting the volume of the liquid storage unit 1.

[0030] In this embodiment, the active component 24 and the passive component 21 can be arranged at intervals. For example, the active component 24 and the passive component 21 can be controlled by the magnetic force between them. At this time, the active component 24 is set in the form of an electromagnet, and the passive component 21 is a corresponding magnetic attraction component.

[0031] In this embodiment, the active member 24 can be disposed on the outside or inside the liquid storage unit 1. When the active member 24 is disposed on the outside of the liquid storage unit 1, the magnetic force between the active member 24 and the passive member 21 can be set as a repulsive force, thereby controlling the movable part 11 to move continuously and squeezing out the liquid in the liquid storage unit 1. When the active member 24 is disposed on the inside of the liquid storage unit 1, the magnetic force between the active member 24 and the passive member 21 can be set as an attractive force, thereby squeezing out the liquid in the liquid storage unit 1 by controlling the movement of the movable part 11.

[0032] Alternatively, in addition to magnetic force, in this embodiment, the active member 24 can also be connected to the passive member 21 through the force transmission member 22. When the active member 24 is working, it drives the passive member 21 to move through the force transmission member 22, thereby driving the movable part 11 to move.

[0033] For example, such as Figure 6 As shown, the force transmission component 22 can be configured as a lead screw, and the passive component 21 is sleeved on the outside of the force transmission component 22. At this time, the active component 24 can be configured as a motor that drives the force transmission component 22 to rotate.

[0034] Furthermore, in this embodiment, the drive unit 2 also includes a guide member 23 connected to the passive member 21, which is used to restrict the rotation of the passive member 21, so that the passive member 21 can only move along the axial direction of the force transmission member 22, thereby driving the movable part 11 to adjust the volume of the liquid storage unit 1.

[0035] When the driving member 24 is working, the force transmission member 22 rotates accordingly. At this time, due to the restriction of the guide member 23, the passive member 21 sleeved on the outside of the force transmission member 22 cannot rotate accordingly. Therefore, the force transmission member 22 converts its rotation into the movement of the passive member 21 along its axial direction.

[0036] In this embodiment, the drive unit 2 can be disposed on the side of the movable part 11 away from the liquid in the liquid storage unit 1, or it can be disposed on the side of the movable part 11 facing the liquid in the liquid storage unit 1.

[0037] When the movable part 11 is positioned on the side facing the liquid in the storage unit 1, the drive unit 2 is immersed in the liquid in the storage unit 1. At this time, in order to avoid the force transmission member 22 affecting the normal movement of the movable part 11, a corresponding first through hole needs to be provided on the movable part 11 to avoid the force transmission member 22. The end of the storage unit 2 away from the movable part 11 also needs to be provided with a second through hole corresponding to the guide member 23. At this time, the second through hole plays a limiting role on the guide member 23, thereby restricting the passive member 21 from rotating with the rotation of the force transmission member 22.

[0038] In the above embodiments, since the drive unit 2 is immersed in the liquid in the liquid storage unit 1, it may cause contamination of the liquid. On the other hand, more through holes need to be provided in the liquid storage unit 1 to accommodate related components, so production costs need to be increased to avoid leakage of the liquid storage unit 2.

[0039] Therefore, the drive unit 2 is preferably located on the side of the movable part 11 away from the liquid in the liquid storage unit 2. At this time, a guide groove can be provided at the active member 24. The guide groove extends along the axial direction of the force transmission member 22, and the guide member 23 is embedded in the guide groove to restrict the rotation of the passive member 21. Alternatively, the active member 24 is provided with a guide rail extending axially along the force transmission member 22, and the end of the guide member 23 has a concave structure. The guide rail is embedded in the concave part of the guide member 23 to restrict the rotation of the passive member 21.

[0040] Regarding the replenishment of liquid storage unit 1, liquid storage unit 1 can be equipped with an outlet and a replenishment port, so that when replenishing liquid storage unit 1, the user can directly replenish the liquid through the replenishment port.

[0041] However, considering that an additional replenishment port is provided on the liquid storage unit 1, leakage may occur during use. Therefore, in one embodiment of this utility model, the liquid storage unit 1 is provided with only one outlet. When it is necessary to replenish the liquid storage unit 1, the user can simply remove the liquid storage unit 1. During the replenishment process, the movable part 11 gradually retracts to the initial position, which is the state of the maximum volume of the liquid storage unit 11.

[0042] In this invention, the peripheral wall of the liquid storage unit 1 can be configured as an accordion structure. The movable part 11, under the action of the driving unit 2, drives the peripheral wall of the liquid storage unit 1 to contract or extend. However, the peripheral wall of the accordion structure is not convenient for users to hold. When users need to hold the liquid storage unit 1 to replenish it, the liquid inside may be accidentally squeezed out as the user holds it, and the user experience cannot be guaranteed.

[0043] Therefore, in another embodiment of the present invention, for ease of gripping by the user, the movable part 11 is configured as a piston, and the piston is slidably connected to the inner wall of the liquid storage unit 1.

[0044] Considering that the liquid storage unit 1 is provided with at least one movable part 22, if the user accidentally touches the movable part 11, there is a possibility that the liquid in the liquid storage unit 1 may be accidentally squeezed out, and the user's experience cannot be guaranteed.

[0045] Therefore, in this embodiment, the electrolysis device can be equipped with a switch valve at the outlet of the liquid storage unit 1. The switch valve is opened only when the drive unit 2 is working. At this time, the liquid in the liquid storage unit 1 can be smoothly squeezed out. When the drive unit 2 is not working, the switch valve is in the closed state. At this time, even if the user accidentally touches the movable part 11, the liquid will not be accidentally squeezed out, and the user experience is improved.

[0046] Alternatively, a protective housing 7 may be provided on the outside of the liquid storage unit 1. The housing 7 covers at least the initial position of the movable part 11 of the liquid storage unit 1. When the movable part 11 is in the initial position, the liquid storage unit 1 is in the maximum volume state.

[0047] In this embodiment, a guide groove extending axially along the force transmission member 22 can be provided on the inner wall of the housing 7. The guide member 23 of the drive unit 2 is embedded in the guide groove to restrict the passive member 21 from rotating with the force transmission member 22. Alternatively, a guide rail extending axially along the force transmission member 22 can be provided inside the housing 7. The guide member 23 has a concave structure, and the guide rail is embedded in the concave part of the guide member 23 to restrict the passive member 21 from rotating with the force transmission member 22.

[0048] In this invention, the electrolysis unit 3 is positioned on the liquid outlet path of the liquid in the storage unit 1, which is movable within the movable part 11. Considering that the electrolysis products are continuously consumed during flow, if the transport path of the electrolysis products is too long, the concentration of the electrolysis products output by the output unit cannot be guaranteed. Therefore, in this invention, it is preferable to position the electrolysis unit 3 between the storage unit 1 and the output unit 4 to shorten the output path of the electrolysis products as much as possible, thereby ensuring the output concentration of the electrolysis products.

[0049] When the anode product is needed, the anode plate and cathode plate of the electrolysis unit 1 can be set perpendicular to the liquid outlet direction of the liquid storage unit 1, and the anode plate is set on the side close to the output unit 4. At this time, the liquid will finally participate in electrolysis at the anode plate and be sprayed out through the output unit 4, and the output amount of the anode product will be guaranteed accordingly. Alternatively, when the cathode product is required, the cathode plate is preferably located on the side close to the output unit 4. In this case, the liquid is finally electrolyzed at the cathode plate and then sprayed out through the output unit 4, thus ensuring the output of the cathode product.

[0050] Meanwhile, considering that the drive unit 2 is preferably located on the side of the movable part 11 away from the liquid in the storage unit 2, the electrolysis device of this utility model is provided with the drive unit 2, the storage unit 1, the electrolysis unit 3 and the output unit 4 in sequence. At this time, the storage unit 1 can be detached from the abdomen of the electrolysis device or the end of the output unit 4 for replenishment.

[0051] In this invention, the liquid storage unit 1 and the electrolysis unit 3 can be connected by interference fit or by thread, as long as leakage at the connection point can be avoided. Considering that the liquid storage unit 1 needs to be disassembled and replenished multiple times, for the convenience of users to disassemble and install, the liquid storage unit 1 and the electrolysis unit 3 are preferably connected by interference fit. For example, the interference fit can be achieved by embedding the liquid outlet of the liquid storage unit 1 into the electrolysis unit 3, or by embedding the liquid inlet of the electrolysis unit 3 into the liquid storage unit 1.

[0052] To further enhance the sealing at the connection between the liquid storage unit 1 and the electrolysis unit 3, this invention provides a propulsion member 51 on the housing 5 to restrict the movement of the liquid storage unit 1 in a direction away from the electrolysis unit 3.

[0053] In one embodiment of this utility model, such as Figure 3 and Figure 4 As shown, the propulsion member 51 can be installed at the door 53 of the outer shell 7 of the liquid storage unit 1. The propulsion member 51 has a wedge-shaped structure, and its thickness gradually decreases along the direction close to the electrolysis unit 3.

[0054] When the user places the liquid storage unit 1 into the housing 5 and closes the door 53, during the closing process of the door 53, the liquid storage unit 1 is pushed towards the direction of the electrolysis unit 3 by the wedge-shaped pusher 51, which can improve the sealing of the connection between the two and prevent leakage.

[0055] When the liquid storage unit 1 reaches the first set position, with the feedback from the first sensor, the passive component 21 of the drive unit 2 gradually moves to the position that abuts against the movable part 11. When the electrolysis equipment needs to work, the liquid in the liquid storage unit 1 can be squeezed out into the electrolysis unit 3 in time to participate in electrolysis.

[0056] Correspondingly, when the liquid in the liquid storage unit 1 is exhausted and needs to be replenished, when the movable part 11 reaches the second set position, the passive part 22 of the drive unit 2 retracts to avoid affecting the user's disassembly of the liquid storage unit 1.

[0057] In this embodiment, a reset component is preferably provided between the electrolysis unit 3 and the liquid storage unit 1. When the door 53 is opened, the reset component can drive the liquid storage unit 2 to move in the direction away from the electrolysis unit 3, so that the liquid storage unit 1 is separated from the electrolysis unit 3, making it convenient for the user to disassemble the liquid storage unit 1 for replenishment. The reset component can be set as an elastic structure such as a spring.

[0058] Or, such as Figure 5 As shown, a support member 52 can be protruding from the inner wall of the housing 5, and a propulsion member 51 is provided on the support member 52. Specifically, the propulsion member 51 is an elastic structure, with one end abutting against the liquid storage unit 2 and the other end contacting the support member 52.

[0059] During the process of the user placing the replenished liquid storage unit 1 into the housing 5, the pusher 51 is in a compressed state. When the user releases the hand, the pusher 51 gradually returns to its original state. During this process, the liquid storage unit 1 is continuously pushed to the electrolysis unit 3, thereby ensuring the sealing of the connection between the two and preventing leakage.

[0060] When the propulsion member 51 is spring-loaded, the passive member 21 of the drive unit 2 pushes the movable part 11 to move from the hollow region of the propulsion member 51.

[0061] like Figure 7 As shown, when replenishing the liquid storage unit 1, it can be disassembled from the end of the output unit 4 to facilitate the user's handling of the liquid storage unit 1. At this time, the pusher 51 preferably adopts a spring structure. In this embodiment, the electrolysis unit 3 and the output unit 4 also need to be disassembled together during the disassembly of the liquid storage unit 1. To prevent the connection line of the electrolysis unit 3 from being stretched, the electrolysis unit 3 and the power supply unit set in the housing 5 adopt a detachable power supply form.

[0062] Specifically, the outer wall of the liquid storage unit 1 is provided with a transition pipe along its axial direction. One end of the transition pipe is detachably connected to the first contact of the electrolysis unit 3, and the other end is detachably connected to the second contact provided on the inner wall of the housing 5. The second contact is connected to the power supply unit.

[0063] When the user needs to replenish the liquid storage unit 1, after opening the door 53 of the housing 5, the liquid storage unit 1 is moved to a position that is easy for the user to access under the action of the pusher 51. The user takes the liquid storage unit 1 out of the housing 5, and then separates the electrolysis unit 3 from the liquid storage unit 1 to replenish it. After replenishment is completed, during the process of installing the electrolysis unit 3 to the liquid outlet end of the liquid storage unit 1, the transition pipe connects with the first contact. The user places the liquid storage unit 1 and the electrolysis unit 3 into the housing 5, and then closes the door 53. During this process, the liquid storage unit 1 will gradually move towards the drive unit 2. During this process, the pusher 51 is compressed, and during this process, the transition pipe gradually connects with the second contact on the inner wall of the housing 5, thereby ensuring the power supply of the electrolysis unit 3.

[0064] If the output unit 4 needs to output the electrolysis products in a mist state through the action of the air pump, the outer wall of the liquid storage unit 1 can also be provided with a transition air passage along its axial direction. One end of the transition air passage is detachably connected to the third contact of the output unit 4, and the other end is detachably connected to the fourth contact provided on the inner wall of the housing 5. The third contact is connected to the air pump inside the housing 5.

[0065] It should be noted that, in addition to adopting the structural form of small devices such as atomizing guns and handheld beauty instruments, the electrolysis device of this utility model can also adopt the structural form of large devices, such as large beauty devices. This application does not impose specific limitations on the size of the electrolysis device or the specific application scenario.

[0066] The above description is only a preferred embodiment of this application. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this application, and these improvements and modifications should also be considered within the scope of protection of this application.

Claims

1. An electrolysis device, characterized in that, include: A liquid storage unit having at least one movable part; A drive unit is used to drive the movable part to move; An electrolysis unit is positioned on the liquid outlet path within the liquid storage unit when the movable part moves. The output unit is located on the liquid outlet side of the electrolysis unit and is used to output the electrolysis products after electrolysis.

2. The electrolysis equipment according to claim 1, characterized in that, The drive unit includes an active component and a passive component. When the active component is working, it drives the movable part to move through the passive component.

3. The electrolysis equipment according to claim 1, characterized in that, The drive unit is provided with only an active component, which is spaced apart from the movable part.

4. An electrolysis device according to claim 2, characterized in that, The drive unit is equipped with only active and passive components.

5. An electrolysis device according to claim 2, characterized in that, The drive unit is also provided with a force transmission component, and the active component is connected to the passive component through the force transmission component.

6. An electrolysis device according to claim 5, characterized in that, The force transmission component is configured as a lead screw, and the passive component is sleeved on the outside of the force transmission component; The drive unit also includes a guide member connected to the passive component, the guide member being used to limit the rotation of the passive component.

7. An electrolysis apparatus according to any one of claims 1-6, characterized in that, The movable part is configured as a piston, which is slidably connected to the inner wall of the liquid storage unit.

8. An electrolysis apparatus according to any one of claims 1-6, characterized in that, The peripheral wall of the liquid storage unit is configured as an accordion structure, and the movable part, under the action of the driving unit, drives the peripheral wall of the liquid storage unit to contract or extend.

9. An electrolysis device according to claim 1, characterized in that, The liquid storage unit is provided with a housing on its outer side, and the housing at least covers the initial position of the movable part; When the movable part is in its initial position, the liquid storage unit is in its maximum volume state.

10. An electrolysis device according to claim 9, characterized in that, The electrolysis unit is disposed between the liquid storage unit and the output unit, and the housing is provided with a propulsion member that restricts the movement of the liquid storage unit in the direction away from the electrolysis unit.

11. An electrolysis device according to claim 10, characterized in that, The propulsion member is disposed on the door of the housing. The propulsion member has a wedge-shaped structure, and its thickness gradually decreases along the direction close to the electrolysis unit.

12. An electrolysis device according to claim 10, characterized in that, The inner wall of the housing is provided with a support member that protrudes outwards. The propulsion member is an elastic structure, with one end abutting against the liquid storage unit and the other end contacting the support member that protrudes outwards from the inner wall of the housing.

13. An electrolysis apparatus according to claim 11 or 12, characterized in that, A reset element is provided between the electrolysis unit and the liquid storage unit, and the reset element is used to drive the liquid storage unit to move in a direction away from the electrolysis unit.

14. An electrolysis apparatus according to claim 11 or 12, characterized in that, The outer wall of the liquid storage unit is provided with a transition pipe along its axial direction. One end of the transition pipe is detachably connected to the first contact of the electrolysis unit, and the other end is detachably connected to the second contact provided on the inner wall of the housing. The second contact is connected to the power supply unit.