Composite electrolysis equipment

By designing a composite electrolytic device, the anode and cathode products are connected to the bubble generation module respectively, which solves the problem of neutralization reaction before product mixing and achieves the stability and effective utilization of the product.

CN222948167UActive Publication Date: 2025-06-06QINGDAO LANWU TECHNOLOGY CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202421790919.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-06-06
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

In the existing electrolytic technology, the anode and cathode products are prone to neutralization reactions before mixing, losing their respective effects, and the anode products are easily reduced and decomposed by hydrogen ions in the water, making it difficult to effectively utilize.

Method used

A composite electrolytic device is designed. By connecting the anode cavity and the cathode cavity to two bubble generation modules, the anode and cathode products generated by the electrolysis module electrolysis form bubbles respectively before mixing, for use.

Benefits of technology

The neutralization reaction between the anode and cathode products is effectively avoided, and the respective effects are retained, and the anode product is promptly discharged, which can prevent it from being reduced and decomposed, achieving effective utilization of the anode product.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222948167U_ABST
    Figure CN222948167U_ABST
Patent Text Reader

Abstract

The utility model provides composite electrolysis equipment, which comprises a water supply unit, a water storage unit and a control unit, the electrolysis unit comprises a shunting device and an electrolysis module which is arranged in the shunting device and divides the shunting device into an anode cavity and a cathode cavity; the spraying unit comprises two bubble generating modules; the power supply unit is used for supplying power to the electrolysis unit; the control panel is used for controlling the electrolysis unit and the spraying unit; the electrolysis module comprises an anode, a diaphragm and a cathode; one end of the anode cavity and one end of the cathode cavity are both connected with the water supply unit, and the other end of the anode cavity and the other end of the cathode cavity are connected with the two bubble generation modules respectively. The anode cavity and the cathode cavity are respectively connected with the two bubble generation modules, so that the anode products and the cathode products generated by electrolysis of the electrolysis modules can respectively form bubbles for use before being mixed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application belongs to the technical field of water electrolysis, and specifically relates to a composite electrolysis device. Background Art

[0002] Existing electrolytic devices such as water flossers or mouthwashes on the market already have the technology to generate tiny bubbles by electrolysis; for example, a water flosser recorded in Chinese patent CN115153932A has a specific structure including a microbubble generating mechanism 1 and a nozzle mechanism 2, wherein the microbubble generating mechanism 1 includes an electrolytic module 11 and a pump body 12, and the water outlet 122 of the pump body is connected to the nozzle mechanism 2; the working process of the microbubble generating mechanism 1 is: firstly, a voltage is applied to the electrolytic sheet, and the water body is electrolyzed into hydrogen and oxygen, and the ratio of hydrogen to oxygen is 2:1. After these hydrogen and oxygen are partially dissolved in water, most of them exist in the water body in the form of bubbles, and the diameter of these bubbles can reach 50μm-1000μm, forming microbubble water with the remaining water, and flowing to the nozzle mechanism 2 through the extraction action of the pump body 12 for spraying and use. However, this scheme of using electrolyzed water directly by electrolysis has many defects: the cathode product is rich in hydrogen and hydroxide ions and is alkaline, and the anode product generates oxidation products such as oxygen and ozone and hydrogen ions, which are acidic. If the products of the anode and cathode are not isolated, or a neutralization reaction occurs quickly, the anode and cathode products lose their proper efficacy; and the oxidation products such as ozone at the anode are easily reduced and decomposed by hydrogen ions in the water and need to be used in time. Therefore, if the technical problem that the oxidation products such as ozone are easily reduced is not solved, the anode product is difficult to be effectively used. Therefore, how to make the oxidation products and reduction products generated by electrolysis of water maintain their respective characteristics and enhance the stability of the products so as to achieve the purpose of use is a technical problem that needs to be solved in this field. Utility Model Content

[0003] In order to solve the above problems, the utility model provides a composite electrolysis device, comprising:

[0004] A water supply unit, used for providing water source;

[0005] An electrolysis unit, comprising a flow splitter and an electrolysis module disposed in the flow splitter to separate the flow splitter into an anode cavity and a cathode cavity;

[0006] The injection unit includes two bubble generating modules;

[0007] A power supply unit, providing power to the electrolysis unit;

[0008] A control panel, used to control the electrolysis unit and the injection unit;

[0009] The electrolysis module comprises an anode, a diaphragm and a cathode; one end of the anode cavity and the cathode cavity are both connected to the water supply unit, and the other ends of the anode cavity and the cathode cavity are respectively connected to the two bubble generating modules.

[0010] Furthermore, a water inlet hole is formed at one end of the flow dividing device close to the water supply unit, and the water supply unit is connected to the anode cavity and the cathode cavity simultaneously through the water inlet hole.

[0011] Furthermore, two water outlet holes are provided at one end of the flow diversion device close to the bubble generating module, and the two bubble generating modules are respectively connected to the anode cavity and the cathode cavity through the water outlet holes.

[0012] Furthermore, the bubble generating module is connected to the water outlet through an outlet pipe, one end of the outlet pipe is connected to the water outlet, and the other end of the outlet pipe is a bubble outlet.

[0013] Further, the composite electrolysis equipment includes at least one electric heating unit;

[0014] The electric heating unit is arranged between the bubble generating module and the water outlet, and is connected to the outlet pipe.

[0015] Further, the composite electrolysis equipment includes at least one electric heating unit;

[0016] The electric heating unit is arranged between the bubble generating module and the bubble outlet, and is connected to the outlet pipe.

[0017] Furthermore, the electric heating unit includes an electric heater in contact with the outlet pipe and a protective shell wrapping the electric heater.

[0018] Furthermore, the electric heater is an electric heating wire wound around the lead-out pipe.

[0019] Furthermore, the bubble generating module is a bubble generator.

[0020] Furthermore, the bubble generator connected to the cathode cavity is a nano bubble generator.

[0021] The composite electrolysis equipment provided by the utility model can make the anode and cathode products generated by the electrolysis of the electrolysis module form bubbles respectively before mixing for use by connecting the anode cavity and the cathode cavity to the two bubble generating modules respectively; since the electrolysis products of the electrolysis module are isolated, the anode and cathode products will not undergo a neutralization reaction and can retain their original functions; at the same time, since the products of the anode electrolysis are discharged in time to form bubbles, they can avoid being reduced and decomposed by hydrogen ions in water, and the anode products can be effectively utilized. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.

[0023] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, for ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.

[0024] Figure 1 This is a schematic diagram of the structure of an embodiment of the present application;

[0025] Figure 2 This is a structural diagram of another embodiment of the present application.

[0026] Description of reference numerals:

[0027] 1. Water supply unit

[0028] 21.Electrolysis module

[0029] 22. Diversion device

[0030] 221. Water inlet

[0031] 222. Water outlet

[0032] 223. Anode cavity

[0033] 224.Cathode cavity

[0034] 31. Bubble Generator

[0035] 310.Nano bubble generator

[0036] 4. Battery

[0037] 5. Circuit Board

[0038] 6. Lead-out pipe

[0039] 61. Bubble outlet

[0040] 71. Electric heating wire

[0041] 72. Protective shell

[0042] 8. Switch DETAILED DESCRIPTION

[0043] In order 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 in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work should fall within the scope of protection of this application.

[0044] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application and the above-mentioned drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the data used in this way can be interchangeable where appropriate, so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein. In addition, the terms "including" and "having" and any of their variations are intended to cover non-exclusive inclusions, for example, a process, method, system, product or device comprising a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.

[0045] For ease of understanding, the background technology is further supplemented here:

[0046] During the process of electrolysis of water, anode products and cathode products are generated at the anode and cathode respectively. The anode products have a certain oxidation potential value and are used for sterilization, cleaning, facial and body cleansing, etc., while the anode products containing oxidation products such as ozone and having oxidizing properties can more effectively remove various viruses, bacteria or microorganisms on objects, containers or human faces, mouths, and teeth only when they are in the gaseous aerosol state. However, since the solubility of oxygen-based gases and hydrogen in water is low and they are easy to diffuse on the anode and cathode sides, ordinary oxygen-based gases and hydrogen bubbles will quickly rise to the surface in water and escape or undergo a neutralization reaction after meeting; therefore, at normal temperature and pressure, it is difficult to prepare electrolyzed water with a certain oxidation potential or supersaturated hydrogen-rich water for use using conventional water electrolysis technology.

[0047] like Figure 1-2 As shown, in one embodiment, the utility model provides a composite electrolysis device: comprising:

[0048] A water supply unit 1, used for providing water;

[0049] The electrolysis unit includes a flow dividing device 22 and an electrolysis module 21 disposed in the flow dividing device 22 and dividing the flow dividing device 22 into an anode cavity 223 and a cathode cavity 224;

[0050] The injection unit includes two bubble generating modules;

[0051] A power supply unit, providing power to the electrolysis unit;

[0052] A control panel, used for controlling the electrolysis unit and the injection unit;

[0053] The electrolysis module 21 includes an anode, a diaphragm, and a cathode; one end of the anode cavity 223 and the cathode cavity 224 are connected to the water supply unit 1, and the other ends of the anode cavity 223 and the cathode cavity 224 are respectively connected to two bubble generating modules.

[0054] In the present embodiment, when the electrolysis module 21 electrolyzes water, it generates oxidizing active substances such as ozone at the anode and accumulates them in the anode cavity 223, and generates reducing substances such as hydrogen at the cathode and accumulates them in the cathode cavity 224. By sending the substances in the two cavities to the two bubble generating modules for foaming and injection respectively, compared with the prior art of sending the anode and cathode mixture to a single bubble generating module for unified foaming and injection, it can avoid redox reactions between the anode products and the cathode products during the mixing process, thereby losing the respective effectiveness of the anode products and the cathode products; and because when the electrolysis module 21 electrolyzes water, the control panel controls the bubble generating module for foaming, the anode products can be quickly injected and utilized, which can avoid the anode products being reduced and decomposed by hydrogen ions in the water, and can effectively utilize the anode products.

[0055] In another embodiment, a water inlet hole 221 is provided at one end of the flow diverter 22 close to the water supply unit 1, and the water supply unit is connected to the anode cavity 223 and the cathode cavity 224 at the same time through the water inlet hole 211; the water supply unit 1 may include a water pump or an air pump, and water is pumped to the water inlet hole 211 by pressure, and enters the anode cavity 223 and the cathode cavity 224 respectively. In other embodiments, two or more water inlet holes 221 may also be provided at one end of the flow diverter 22 close to the water supply unit 1, as long as water can enter the anode cavity 223 and the cathode cavity 224, the present application does not limit it.

[0056] In another embodiment, two water outlet holes 222 are provided at one end of the flow diversion device 22 close to the bubble generating module, and the two bubble generating modules are respectively connected to the anode cavity 223 and the cathode cavity 224 through the two water outlet holes 222 .

[0057] In another embodiment, two bubble generating modules are respectively connected to two water outlets 222 through two lead-out pipes 6, one end of the lead-out pipe 6 is connected to the water outlet 222, and the other end of the lead-out pipe 6 is a bubble outlet 61. The lead-out pipe 6 can be metal or non-metal, such as rubber, plastic material, etc., and is installed on the water outlet 222, and then connected to the anode cavity 223 / cathode cavity 224. The bubble generating module can be connected to the lead-out pipe 6 through a three-way pipe, as long as the bubble generating module and the lead-out pipe 6 are connected, the bubble generating module is connected to the lead-out pipe 6 in what way, and this application does not limit it. In addition, the two lead-out pipes 6 can be the same material or different materials. For example, due to the strong oxidation of the anode product, the first lead-out pipe connected to the anode cavity 223 can be a non-metallic material, and the metal material is not easy to age, so the second lead-out pipe connected to the cathode cavity 224 can be set to a metal material, such as a copper pipe; the material and shape of the lead-out pipe 6 are not limited in this application.

[0058] In another embodiment, the composite electrolysis device provided by the present application further includes at least one electric heating unit; the electric heating unit is disposed between the bubble generating module and the water outlet 222, and is connected to the outlet pipe 6; or the electric heating unit is disposed between the bubble generating module and the bubble outlet 61, and is connected to the outlet pipe 6. This embodiment explains "at least one electric heating unit". Since there are two outlet pipes 6, the composite electrolysis device of the present application can simultaneously set electric heating units at the two outlet pipes 6 (such as Figure 2 As shown), an electric heating unit (such as Figure 1 As shown); in one embodiment, if the electric heating unit is arranged between the bubble generating module and the water outlet 222 and is connected to the lead-out pipe 6, it can be understood that when the substance produced by electrolysis enters the lead-out pipe 6 from the water outlet 222, it is first heated by the electric heating unit, then passes through the bubble generating module for foaming, and then sprays out the bubble outlet 61, that is, it is heated first and then foamed; and in another embodiment, if the electric heating unit is arranged between the bubble generating module and the bubble outlet 61 and is connected to the lead-out pipe 6, it can be understood that when the substance produced by electrolysis enters the lead-out pipe 6 from the water outlet 222, it is first foamed by the bubble generating module, then heated by the electric heating unit, and then sprays out the bubble outlet 61, that is, it is foamed first and then heated; the present application does not limit the two implementation modes; heating the anode product or the cathode product can improve the user experience. When used for the elderly, children or patients, the body temperature is more comfortable and there is no irritation.

[0059] In another embodiment, the electric heating unit includes an electric heater in contact with the lead-out tube 6 and a protective shell 72 that wraps the electric heater; the electric heater can be an electric heating wire 71, which is wound around the lead-out tube 6; in another embodiment, the electric heater can also be a metal plate or other material that is easy to conduct electricity and generate heat, which can be in contact with the outer periphery of the lead-out tube 6 or embedded in the lead-out tube 6; the present application does not limit the heating material, shape and contact state of the electric heating unit with the lead-out tube 6.

[0060] In another embodiment, the bubble generating module is a bubble generator 31 , which may be an aeration membrane, a venturi tube, an ultrasonic vibrator, a porous membrane, an agitator or the like. The present application does not limit the type of the bubble generator 31 .

[0061] In another embodiment, the bubble generator 31 connected to the cathode cavity is a nano bubble generator 310; since nano bubbles have a larger surface area than ordinary bubbles, rise slower in water, and have enriched charges on the bubble surface, nano bubbles have good stability and long life for cathode products such as hydrogen, and can achieve long-term utilization of hydrogen-rich water.

[0062] Combination Figure 1 In the following embodiment, a process of electrolyzing water by the composite electrolysis device of the present application is provided: press the switch 8, and under the power supply of the battery 4, the circuit board 5 controls the water supply unit 1 to use pressure to send water to the anode cavity 223 and the cathode cavity 224. At the same time, the electrolysis module 21 works to perform electrolysis, and the anode produces oxidizing active substances such as ozone, which are accumulated in the anode cavity 223, and the cathode produces reducing substances such as hydrogen, which are accumulated in the cathode cavity 224. Then, under the action of pressure, on the one hand, the anode product enters the first lead-out pipe from the first water outlet, is first heated by the electric heating wire 71 (heating is controlled by the circuit board 5), and then enters the first bubble generator for foaming (foaming is controlled by the circuit board 5), and finally sprays out from the bubble outlet 61. On the other hand, the cathode product enters the second lead-out pipe from the second water outlet, and then enters the second bubble generator for foaming (foaming is controlled by the circuit board 5), and finally sprays out from the bubble outlet 61.

[0063] The composite electrolysis device provided in the present application can utilize the oxidation bubble products and the reduction bubble products separately. For the oxidation bubble products, the user can directly use high-quality oxidation bubble water to rinse teeth, cleanse face or rinse mouth when washing, beauty cleansing, gargling, flossing teeth, etc.; and because oxidizing active substances such as ozone will be reduced and degraded in a very short time under normal temperature and condition, it will not cause long-term impact on the body or the environment; for the reduction bubble products, because the hydrogen concentration in the water is increased, the purpose of hydrogen-rich water can be achieved and it can be drunk directly.

[0064] The above is only a preferred implementation of the present application. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present application. These improvements and modifications should also be regarded as the scope of protection of the present application.

Claims

1. A composite electrolysis device, characterized in that: include: A water supply unit, used for providing water source; An electrolysis unit, comprising a flow splitter and an electrolysis module disposed in the flow splitter to separate the flow splitter into an anode cavity and a cathode cavity; The injection unit includes two bubble generating modules; A power supply unit, providing power to the electrolysis unit; A control panel, used to control the electrolysis unit and the injection unit; The electrolysis module includes an anode, a diaphragm, and a cathode; One end of the anode cavity and the cathode cavity are both connected to the water supply unit, and the other ends of the anode cavity and the cathode cavity are respectively connected to the two bubble generating modules.

2. The composite electrolysis equipment according to claim 1, characterized in that: A water inlet hole is formed at one end of the flow dividing device close to the water supply unit, and the water supply unit is connected to the anode cavity and the cathode cavity simultaneously through the water inlet hole.

3. The composite electrolysis equipment according to claim 1, characterized in that: The diversion device has two water outlets at one end close to the bubble generating module, and the two bubble generating modules are respectively connected to the anode cavity and the cathode cavity through the water outlets.

4. The composite electrolysis equipment according to claim 3, characterized in that: The bubble generating module is connected to the water outlet through an outlet pipe, one end of the outlet pipe is connected to the water outlet, and the other end of the outlet pipe is a bubble outlet.

5. The composite electrolysis equipment according to claim 4, characterized in that: The composite electrolysis device comprises at least one electric heating unit; The electric heating unit is arranged between the bubble generating module and the water outlet, and is connected to the outlet pipe.

6. The composite electrolysis equipment according to claim 4, characterized in that: The composite electrolysis device comprises at least one electric heating unit; The electric heating unit is arranged between the bubble generating module and the bubble outlet, and is connected to the outlet pipe.

7. The composite electrolysis equipment according to claim 5 or 6, characterized in that: The electric heating unit includes an electric heater in contact with the outlet pipe and a protective shell wrapping the electric heater.

8. The composite electrolysis equipment according to claim 7, characterized in that: The electric heater is an electric heating wire, which is wound around the lead-out pipe.

9. The composite electrolysis equipment according to claim 1, characterized in that: The bubble generating module is a bubble generator.

10. The composite electrolysis equipment according to claim 9, characterized in that: The bubble generator communicated with the cathode cavity is a nano bubble generator.

Citation Information

Patent Citations

  • Water pick

    CN115153932A