Electrolysis generating device with lamplight interaction function

By introducing lighting interaction functions and ultrasonic welding technology into the electrolytic device, the problems of poor interaction and inconvenient disassembly and assembly of traditional electrolytic devices are solved, and user-friendly electrolytic process display and structural stability are achieved.

CN223047608UActive Publication Date: 2025-07-01LANGKE INTELLIGENT ELECTRICAL APPLIANCES (JINAN) CO LTD
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Patent Information

Application Number
CN202422048920.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-22
Publication Date
2025-07-01
Estimated Expiration
2034-08-22

AI Technical Summary

Technical Problem

Traditional electrolytic ozone devices lack interactivity and visual display, have poor user experience and are not convenient for disassembly and assembly.

Method used

An electrolytic generator with light interaction was designed, using a translucent water tank, LED light emitting tube and microcontroller to prompt the electrolysis process through the lighting effect, and ultrasonic welding was used to connect the water tank and the electrolytic generator to increase the structural strength.

Benefits of technology

Improves user experience, provides intuitive visual feedback and interactivity, simplifies operation, and improves the structural strength and integration of the device.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides an electrolysis generating device with lamplight interaction. The electrolysis generating device comprises a semitransparent water tank; one end of the semitransparent water tank is connected with an upper cap; an electrolytic generator is mounted inside the bottom of the semitransparent water tank; a main control board is mounted outside the bottom of the semitransparent water tank; a plurality of LEDs are arranged on the periphery of the main control board; a microcontroller, a light-emitting control circuit and an electrolysis power supply control circuit are arranged on the main control board; a storage battery is mounted in the base; the microcontroller is connected with the key to obtain a start control instruction input by a user, is connected with each LED light-emitting tube through the light-emitting control circuit to control the LED light-emitting tubes to start, and is also provided with the electrolysis power supply control circuit to be connected with the electrolysis generator to control the electrolysis generator to operate; and the storage battery supplies power to the electrolytic generator through the electrolytic power supply control circuit. The device can prompt a user of the electrolysis generation process and improve the user experience.
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Description

Technical Field

[0001] The utility model belongs to the technical field of electrolyzed water, and particularly relates to an electrolysis generating device with light interaction. Background Technique

[0002] The electrolysis generating technology is based on the principle of electrolyzed water. During the electrolysis process, water molecules are decomposed into hydrogen and oxygen under the action of an electric field. That is, a power supply is connected, and an electric current is passed through the water in the electrolytic cell through an electrolyte. Water molecules are decomposed into hydrogen and oxygen under the action of the electrolysis field. Oxygen molecules undergo an oxidation reaction on the anode to generate ozone, and the ozone plays a disinfection role.

[0003] With the development of technology, the application of electrolysis technology in various fields is becoming increasingly widespread, such as water treatment, energy conversion, material synthesis, etc. At the same time, people's demand for the visualization and interactivity of the electrolysis process is also increasing. Traditional electrolytic ozone devices are often just simple electrolysis processes, unable to effectively display the operating state of the device, with poor user experience and lack of interactivity with users. Moreover, traditional electrolytic ozone devices are often integrally formed and are not convenient for disassembly and use. Content of the Utility Model

[0004] The utility model provides an electrolysis generating device with light interaction, which can prompt the user about the electrolysis generating process and improve the user experience.

[0005] The device includes: a translucent water tank; one end of the translucent water tank is connected with an upper cap, and the other end is connected with a base;

[0006] An electrolyzer is installed inside the bottom of the translucent water tank; a main control board is installed outside the bottom of the translucent water tank;

[0007] The main control board is attached to the side wall of the translucent water tank, and a plurality of LED light-emitting tubes are arranged around the main control board;

[0008] The main control board is provided with a microcontroller, a light-emitting control circuit, and an electrolysis power supply control circuit;

[0009] A storage battery is installed inside the base; a button is arranged on the side wall of the base;

[0010] The microcontroller is connected to the button to obtain the start control instruction input by the user, and is respectively connected to each LED light-emitting tube through the light-emitting control circuit to control the start of the LED light-emitting tube. The microcontroller also provides an electrolysis power supply control circuit connected to the electrolyzer to control the operation of the electrolyzer;

[0011] The storage battery supplies power to the electrolyzer through the electrolysis power supply control circuit.

[0012] Further, it should be noted that the light-emitting control circuit includes: triode Q1, diode D31, resistor R11, resistor R12, light-emitting diode D32, and light-emitting diode D33;

[0013] The collector of triode Q1 is connected to the positive pole of battery J1, the base of triode Q1 is connected to the microcontroller, and the emitter of triode Q1 is respectively connected to the cathode of diode D31 and the first end of resistor R12;

[0014] The second end of resistor R12 is respectively connected to the cathode of light-emitting diode D32 and the cathode of light-emitting diode D33; the anode of light-emitting diode D32 and the anode of light-emitting diode D33 are grounded.

[0015] Further, it should be noted that a constant current circuit is connected to the output end of the battery;

[0016] The constant current circuit includes: constant current driving chip U1, resistor R1, resistor R2, resistor R3, resistor R4, resistor R5, resistor R6, triode Q2, capacitor C1, capacitor C2, and diode D21;

[0017] The collector of triode Q2 and the first end of resistor R1 are respectively connected to the power supply; the base of triode Q2 and the second end of resistor R1 are respectively connected to the first end of resistor R2, and the second end of resistor R2 is connected to the microcontroller;

[0018] The emitter of triode Q2 is respectively connected to the first end of capacitor C1, the first end of resistor R3, interface five, interface six, and interface two of constant current driving chip U1; the second end of capacitor C1, interface one of constant current driving chip U1, the second end of resistor R5, the second end of capacitor C2, and the second end of resistor R6 are respectively grounded;

[0019] The second end of resistor R3 is respectively connected to interface seven, interface eight of constant current driving chip U1, and the anode of diode D21;

[0020] The cathode of diode D21 is respectively connected to the first end of resistor R4, the first end of capacitor C2, and the output end of the constant current circuit; the second end of resistor R4 is respectively connected to interface four of constant current driving chip U1 and the first end of resistor R5; interface three of constant current driving chip U1 and the first end of resistor R6 are respectively connected to the output end of the constant current circuit.

[0021] Further, it should be noted that the constant current driving chip U1 uses an AP9234 boost-type chip.

[0022] Further, it should be noted that a liquid level sensor is arranged inside the semi-transparent water tank;

[0023] The microcontroller is connected to the liquid level sensor to obtain the liquid level information inside the semi-transparent water tank.

[0024] The liquid level sensor adopts the ZCT-YOF07 liquid level sensor.

[0025] Furthermore, it should be noted that a light-shielding paper is attached to the bottom of the electrolytic generator.

[0026] Furthermore, it should be noted that the translucent water tank and the electrolytic generator are connected by ultrasonic welding.

[0027] Furthermore, it should be noted that the translucent water tank is connected to the upper cap by a threaded or snap-fastening method;

[0028] The translucent water tank is connected to the base by a threaded or snap-fastening method.

[0029] Furthermore, it should be noted that the microcontroller adopts the PIC18F4520 single-chip microcomputer or the STC single-chip microcomputer.

[0030] As can be seen from the above technical solutions, the present utility model has the following advantages:

[0031] The electrolytic generating device with light interaction provided by the present utility model combines the LED light-emitting tube with the electrolysis process, providing users with intuitive visual feedback, enhancing the interactivity of use, and improving the user experience. Moreover, the button operation is simple, and users can easily control the start of the device, improving the convenience of use.

[0032] The device of the present utility model uses a translucent water tank design, enabling users to clearly observe the internal electrolysis process. By adding a light-shielding paper to block the light source at the bottom of the translucent water tank, a light-emitting ring effect at the bottom of the translucent water tank is presented. The ultrasonic welding method ensures the tight connection between the translucent water tank and the electrolytic generator, improving the structural strength and durability of the device. The application of the microcontroller realizes the intelligent control of the LED light-emitting tube and the electrolytic generator, improving the automation degree of the device operation, the integration degree and reliability of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] In order to more clearly illustrate the technical solutions of the present utility model, the drawings required for description will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0034] Figure 1 It is an exploded view of the electrolytic generating device with light interaction;

[0035] Figure 2 It is a schematic diagram of the electrolytic generating device with light interaction;

[0036] Figure 3Schematic diagram of the main control board;

[0037] Figure 4 Schematic diagram of the semi-transparent water tank;

[0038] Figure 5 Schematic diagram of the connection between the semi-transparent water tank and the electrolysis generator;

[0039] Figure 6 Schematic diagram of the light-emitting control circuit;

[0040] Figure 7 Schematic diagram of the constant current circuit. Detailed implementation manners

[0041] To make the objectives, features, and advantages of the present utility model more obvious and understandable, the technical solutions in the present utility model will be clearly and completely described below with reference to the accompanying drawings in the specific embodiments. Obviously, the embodiments described below are only a part of the embodiments of the present utility model, rather than all of them. Based on the embodiments in this patent, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the scope of protection of this patent.

[0042] As Figures 1 to 4 shown, the electrolysis generating device with light interaction provided by the present utility model includes: a semi-transparent water tank 1. The semi-transparent water tank 1 can be made of transparent plastic.

[0043] Optionally, one end of the semi-transparent water tank 1 is connected to an upper cap 6, and the other end is connected to a base 7; the cross-sections of the semi-transparent water tank 1, the upper cap 6, and the base 7 can be circular. The semi-transparent water tank 1 is connected to the upper cap by a threaded or snap-fit method; the semi-transparent water tank 1 is connected to the base by a threaded or snap-fit method. In this way, it is convenient to disassemble and assemble the whole device.

[0044] The upper part of the semi-transparent water tank 1 has a water filling hole, and the hole wall of the water filling hole has an external thread, which can be blocked by a water cap.

[0045] In this embodiment, an electrolysis generator 3 is installed inside the bottom of the semi-transparent water tank 1. Specifically, the semi-transparent water tank 1 and the electrolysis generator 3 are connected by ultrasonic welding. As Figure 5 shown, an ultrasonic welding line 2 is formed at the welding position, and multiple ultrasonic welding lines can be provided according to needs to meet the requirements of sealing and fixing.

[0046] A main control board 4 is installed outside the bottom of the semi-transparent water tank 1; the main control board 4 is attached to the side wall of the semi-transparent water tank 1, and a plurality of LED light-emitting diodes 401 are arranged around the main control board 4.

[0047] A light-shielding paper 5 is attached to the bottom of the electrolysis generator 3. In this embodiment, by adding the light-shielding paper, the light source at the bottom of the semi-transparent water tank is blocked, presenting the effect of a light-emitting ring at the bottom of the water tank; optionally, the LED light-emitting tubes 401 are set in different colors to prompt the user about the working state of the current device.

[0048] In this embodiment, the main control board 4 is provided with a microcontroller, a light-emitting control circuit, and an electrolysis power supply control circuit; a storage battery is installed inside the base; and a button is provided on the side wall of the base. The button can be used to obtain the start instruction and stop instruction input by the user.

[0049] The microcontroller is respectively connected to each LED light-emitting tube 401 through the light-emitting control circuit, and can respectively control the lighting and extinguishing of each LED light-emitting tube 401, and thus can form a flashing effect.

[0050] The microcontroller is connected to the button 8 to obtain the start control instruction input by the user, and is respectively connected to each LED light-emitting tube 401 through the light-emitting control circuit to control the start of the LED light-emitting tube 401. In addition, the electrolysis power supply control circuit is connected to the electrolysis generator 3 to control the operation of the electrolysis generator 3; the storage battery supplies power to the electrolysis generator 3 through the electrolysis power supply control circuit.

[0051] In this embodiment, a liquid level sensor is arranged inside the semi-transparent water tank 1; the microcontroller is connected to the liquid level sensor to obtain the liquid level information inside the semi-transparent water tank 1. The liquid level sensor adopts a ZCT-YOF07 liquid level sensor.

[0052] Optionally, an ozone concentration sensor can also be arranged inside the semi-transparent water tank 1 according to needs. The device can obtain the ozone concentration and liquid level state inside the semi-transparent water tank 1, and thus can prompt the user through the lighting and extinguishing of the LED light-emitting tubes 401.

[0053] In this embodiment, the microcontroller can be software and / or firmware executed by a processing circuit that can include one or more processors, such as one or more digital signal processors (DSPs), general microprocessors, application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other integrated circuits, or discrete logic circuits. Therefore, the term "processor" as used herein can refer to any of the foregoing structures or any other structure more suitable for implementing the techniques described herein. Additionally, in some aspects, the functions described in the present disclosure can be provided in software modules and hardware modules.

[0054] Optionally, the microcontroller adopts a PIC18F4520 single-chip microcomputer or an STC single-chip microcomputer.

[0055] Such as Figure 6As shown in the figure, the light-emitting control circuit of this embodiment includes: a triode Q1, a diode D31, a resistor R11, a resistor R12, a light-emitting diode D32, and a light-emitting diode D33.

[0056] The collector of the triode Q1 is connected to the positive pole of the storage battery J1, the base of the triode Q1 is connected to the microcontroller, and the emitter of the triode Q1 is respectively connected to the cathode of the diode D31 and the first end of the resistor R12. The second end of the resistor R12 is respectively connected to the cathode of the light-emitting diode D32 and the cathode of the light-emitting diode D33; the anode of the light-emitting diode D32 and the anode of the light-emitting diode D33 are grounded; the anode of the diode D31 and the first end of the resistor R11 are respectively connected to the power supply, and the second end of the resistor R11 is grounded.

[0057] The microcontroller can control the start and stop of the light-emitting diode by controlling the on and off of the triode Q1, meeting the flashing requirement of the light-emitting diode and also meeting the switching requirement. The number of light-emitting diodes can be set according to actual needs and is not limited here.

[0058] In this embodiment, the storage battery can supply power to all the electronic components on the main control board 4.

[0059] A constant current circuit is connected to the output end of the storage battery; the constant current circuit includes: a constant current driving chip U1, a resistor R1, a resistor R2, a resistor R3, a resistor R4, a resistor R5, a resistor R6, a triode Q2, a capacitor C1, a capacitor C2, and a diode D21.

[0060] The collector of the triode Q2 and the first end of the resistor R1 are respectively connected to the power supply; the base of the triode Q2 and the second end of the resistor R1 are respectively connected to the first end of the resistor R2, and the second end of the resistor R2 is connected to the microcontroller;

[0061] The emitter of the triode Q2 is respectively connected to the first end of the capacitor C1, the first end of the resistor R3, and the interfaces five, six, and two of the constant current driving chip U1; the second end of the capacitor C1, the interface one of the constant current driving chip U1, the second end of the resistor R5, the second end of the capacitor C2, and the second end of the resistor R6 are respectively grounded;

[0062] The second end of the resistor R3 is respectively connected to the interfaces seven, eight of the constant current driving chip U1 and the anode of the diode D21;

[0063] The cathode of the diode D21 is respectively connected to the first end of the resistor R4, the first end of the capacitor C2, and the output end of the constant current circuit; the second end of the resistor R4 is respectively connected to the interface four of the constant current driving chip U1 and the first end of the resistor R5; the interface three of the constant current driving chip U1 and the first end of the resistor R6 are respectively connected to the output end of the constant current circuit.

[0064] Optionally, the constant-current drive chip U1 uses the AP9234 boost chip. The resistors R1 and R2 construct a voltage-dividing circuit to adjust the output signal of the microcontroller to a voltage level suitable for the base of the triode Q2.

[0065] The resistor R3 is connected between the emitter of the triode Q2 and the interface of the constant-current drive chip U1 to limit the current flowing into U1. C1 is used for filtering or decoupling, which can smooth the voltage fluctuation at the emitter of Q2, reduce the influence of noise on U1, and improve the stability of the circuit. The capacitor C2, the resistor R4, and the diode D21 can be used to filter out high-frequency noise or transient voltage at the output end. C2 and the resistor R4 together provide the reverse recovery time for the diode D21 to prevent the diode D21 from generating excessive reverse current during the fast switching process.

[0066] The electrolysis generating device with light interaction involved in this embodiment adopts mechatronics technology. On the premise of a compact structural layout, by using the principle of light refraction and collocating with opaque light guide materials, the light effect at the bottom of the semi-transparent water tank is made uniform and soft. Then, by adding light-shielding paper to block the light source at the bottom of the semi-transparent water tank, a light-emitting ring effect at the bottom of the semi-transparent water tank is presented; furthermore, through the collocation of light colors and different flashing states, the working state of the device can be prompted to the user.

[0067] The terms "first", "second", "third", "fourth", etc. in the specification, claims and above-mentioned drawings of the present utility model, if any, are used to distinguish similar objects and do not necessarily have to be used to describe a specific order or sequence. It should be understood that such used data can be interchanged under appropriate circumstances so that the embodiments of the present utility model described herein can be implemented in an order other than those illustrated or described herein. In addition, the terms "comprising" and "having" and any variations thereof are intended to cover non-exclusive inclusion.

[0068] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present utility model. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present utility model. Therefore, the present utility model will not be limited to the embodiments shown herein, but rather will be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. An electrolysis device with light interaction, characterized in that: include: A translucent water tank (1); one end of the translucent water tank (1) is connected to an upper cap, and the other end is connected to a base; An electrolytic generator (3) is installed on the inner side of the bottom of the translucent water tank (1); a main control panel (4) is installed on the outer side of the bottom of the translucent water tank (1); The main control board (4) is closely connected to the side wall of the translucent water tank (1), and a plurality of LED light-emitting tubes (401) are arranged around the main control board (4); A microcontroller, a light emitting control circuit and an electrolysis power supply control circuit are arranged on the main control board (4); A storage battery is installed in the base; a button (8) is arranged on the side wall of the base; The microcontroller is connected to the key to obtain the start control instruction input by the user, and is respectively connected to each LED light-emitting tube (401) through the light control circuit to control the start of the LED light-emitting tube (401), and also provides an electrolysis power supply control circuit to connect to the electrolysis generator (3) to control the operation of the electrolysis generator (3); The storage battery supplies power to the electrolysis generator (3) through the electrolysis power supply control circuit.

2. The electrolysis generating device with light interaction according to claim 1, characterized in that: The light emitting control circuit includes: a transistor Q1, a diode D31, a resistor R11, a resistor R12, a light emitting diode D32 and a light emitting diode D33; The collector of transistor Q1 is connected to the positive electrode of battery J1, the base of transistor Q1 is connected to the microcontroller, and the emitter of transistor Q1 is connected to the cathode of diode D31 and the first end of resistor R12 respectively; The second end of the resistor R12 is connected to the cathode of the light emitting diode D32 and the cathode of the light emitting diode D33 respectively; the anode of the light emitting diode D32 and the anode of the light emitting diode D33 are grounded; The anode of the diode D31 and the first end of the resistor R11 are connected to a power source respectively, and the second end of the resistor R11 is grounded.

3. The electrolysis generating device with light interaction according to claim 1, characterized in that: The output end of the battery is connected to a constant current circuit; The constant current circuit includes: a constant current driving chip U1, a resistor R1, a resistor R2, a resistor R3, a resistor R4, a resistor R5, a resistor R6, a transistor Q2, a capacitor C1, a capacitor C2 and a diode D21; The collector of transistor Q2 and the first end of resistor R1 are connected to the power supply respectively; the base of transistor Q2 and the second end of resistor R1 are connected to the first end of resistor R2 respectively, and the second end of resistor R2 is connected to the microcontroller; The emitter of transistor Q2 is respectively connected to the first end of capacitor C1, the first end of resistor R3, interface 5, interface 6 and interface 2 of constant current driver chip U1; the second end of capacitor C1, interface 1 of constant current driver chip U1, the second end of resistor R5, the second end of capacitor C2 and the second end of resistor R6 are respectively grounded; The second end of the resistor R3 is connected to the interface 7 and the interface 8 of the constant current driving chip U1 and the anode of the diode D21 respectively; The cathode of diode D21 is respectively connected to the first end of resistor R4, the first end of capacitor C2 and the output end of the constant current circuit; the second end of resistor R4 is respectively connected to interface four of constant current driving chip U1 and the first end of resistor R5; interface three of constant current driving chip U1 and the first end of resistor R6 are respectively connected to the output end of the constant current circuit.

4. The electrolysis generating device with light interaction according to claim 3, characterized in that: The constant current driver chip U1 adopts the AP9234 boost chip.

5. The electrolysis generating device with light interaction according to claim 1, characterized in that: A liquid level sensor is arranged inside the translucent water tank (1); The microcontroller obtains the internal liquid level information of the translucent water tank (1) by connecting to the liquid level sensor.

6. The electrolysis generating device with light interaction according to claim 5, characterized in that: The liquid level sensor uses ZCT-YOF07 liquid level sensor.

7. The electrolysis generating device with light interaction according to claim 1, characterized in that: The bottom of the electrolytic generator (3) is pasted with a light-shielding paper (5).

8. The electrolysis generating device with light interaction according to claim 1, characterized in that: The translucent water tank (1) and the electrolytic generator (3) are connected by ultrasonic welding.

9. The electrolysis generating device with light interaction according to claim 1, characterized in that: The translucent water tank (1) is connected to the upper cap by a threaded method or a snap-on method; The translucent water tank (1) is connected to the base in a threaded manner or a snap-fit ​​manner.

10. The electrolysis generating device with light interaction according to claim 1, characterized in that: The microcontroller adopts PIC18F4520 single-chip microcomputer, or adopts STC single-chip microcomputer.