Atomizing device
By electrolyzing and isolating hydrogen and oxygen ions within the atomizing device, and using an oxygen-rich or hydrogen-rich solution to directly clean the cavity, the problem of cumbersome cleaning of existing atomizing devices is solved, achieving a highly efficient cleaning and disinfection effect.
Patent Information
- Application Number
- CN202111331593.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-11-11
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2041-11-11
AI Technical Summary
Cleaning existing atomizing equipment is cumbersome and lengthy, requiring complex methods such as adding cleaning agents or boiling at high temperatures.
Hydrogen and oxygen ions are generated in the atomization device using an electrolyzer, and then stored separately in different containment chambers through a separator. The chambers are then cleaned and disinfected directly using an oxygen-rich or hydrogen-rich solution, simplifying the cleaning process.
It enables rapid and convenient cleaning and disinfection of atomizing equipment, avoiding the complexity of traditional cleaning methods and improving work efficiency.
Smart Images

Figure CN114042213B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of atomization technology, and in particular to an atomization device. Background Technology
[0002] In related technologies, atomizing devices are generally used for daily applications such as atomizing medical liquids for treatment or general beauty humidification.
[0003] Currently, cleaning the inside of atomizing devices generally relies on adding cleaning agents, boiling at high temperatures, or using specialized disinfectants. Therefore, cleaning atomizing devices is a cumbersome and lengthy process. Summary of the Invention
[0004] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes an atomizing device that can directly perform cleaning and disinfection, thereby greatly simplifying the cleaning process of the atomizing device and improving its working efficiency.
[0005] An atomizing device according to a first aspect of the present invention includes:
[0006] A first container, the first container having a cavity for storing a solution;
[0007] An electrolyzer is disposed within the cavity and is used to electrolyze the solution to form hydrogen ions and oxygen ions. The electrolyzer includes a first electrode and a second electrode; wherein the first electrode is disposed on one side of the first container and the second electrode is disposed on the other side of the first container.
[0008] An isolator is disposed between the first electrode and the second electrode to form a first receiving cavity and a second receiving cavity; wherein the first electrode is disposed in the first receiving cavity and the second electrode is disposed in the second receiving cavity;
[0009] An electrolysis driving circuit is provided, wherein the electrolysis driving circuit is used to be electrically connected to the first electrode and the second electrode respectively, and the electrolysis driving circuit is used to control the voltage level of the first electrode and the second electrode so that the oxygen ions are stored in the first receiving cavity or the second receiving cavity.
[0010] The second container is used to connect to the first container;
[0011] The main control module is disposed in the second container. The main control module is electrically connected to the electrolysis drive circuit. The main control module is used to receive control signals and control the working state of the electrolysis drive circuit according to the control signals.
[0012] The atomizing device according to embodiments of the present invention has at least the following beneficial effects: After the main control module detects the control signal, it controls the electrolysis drive circuit to work, controls the first electrode of the electrolyzer to switch to a high level and the second electrode to switch to a low level, the solution is electrolyzed, and oxygen ions are generated at the first electrode and hydrogen ions are generated at the second electrode. Due to the barrier of the isolator, the hydrogen ions are isolated in the second receiving cavity, while the oxygen ions are isolated in the first receiving cavity. After the oxygen ions mix with the solution in the first receiving cavity, an oxygen-rich solution is formed, thereby enabling direct cleaning and disinfection of the cavity, avoiding the use of complex cleaning and disinfection methods such as adding cleaning agents and high-temperature boiling, thus greatly simplifying the cleaning work of the atomizing device and improving the working efficiency of the atomizing device.
[0013] According to some embodiments of the present invention, the first container has a first opening end and a second opening end on one side. The first opening end is disposed on the side near the first electrode and is connected to the first receiving cavity; the second opening end is disposed on the side near the second electrode and is connected to the second receiving cavity.
[0014] The atomizing device also includes:
[0015] A first connecting portion is disposed on the side wall of the first container; wherein the first opening end and the second opening end are both disposed inside the first connecting portion;
[0016] An atomizing module includes a second connecting portion, and the atomizing module has a third opening end and a fourth opening end on the side near the first container; wherein the third opening end and the fourth opening end are both disposed inside the second connecting portion, the second connecting portion is used to connect with the first connecting portion, the third opening end is used to connect with the first opening end, and the fourth opening end is used to connect with the second opening end.
[0017] According to some embodiments of the present invention, the atomizing device further includes:
[0018] A Hall switch is disposed on the side wall of the second container away from the first container, and the Hall switch is used for electrical connection with the main control module;
[0019] The main control module is electrically connected to the atomization module and controls the working state of the electrolysis drive circuit according to the switching state of the Hall switch and the control signal.
[0020] According to some embodiments of the present invention, the electrolysis drive circuit further includes:
[0021] The driver chip has a first port and a second port that are electrically connected to the main control module, a third port that is grounded, a fourth port that is electrically connected to the power supply, a fifth port and a sixth port that are electrically connected to the first electrode, and a seventh port and an eighth port that are electrically connected to the second electrode. The driver chip is used to control the voltage levels of the first electrode and the second electrode.
[0022] According to some embodiments of the present invention, the electrolysis drive circuit further includes a filtering unit, which is electrically connected to the power supply and is used to perform filtering operations on the power supply.
[0023] According to some embodiments of the present invention, the filtering unit includes:
[0024] A first capacitor, one end of which is electrically connected to the power supply, and the other end of which is grounded;
[0025] The second capacitor has one end for electrical connection to the power supply and the other end for grounding.
[0026] According to some embodiments of the present invention, the first container is further provided with a fifth opening end on the side away from the second container, and the opening direction of the fifth opening end corresponds to the opening direction of the cavity;
[0027] The atomizing device also includes:
[0028] A cup lid, which is used to seal the fifth open end.
[0029] According to some embodiments of the present invention, the cavity is provided with an anti-dry-burn needle on the side near the second container, the anti-dry-burn needle being used to prevent the solution from drying out.
[0030] According to some embodiments of the present invention, the atomizing device further includes:
[0031] A first magnet assembly is disposed on the side of the first container near the second container;
[0032] A second magnet assembly is disposed on the side of the second container closer to the first container;
[0033] Both the first magnet group and the second magnet group are used to reinforce the connection between the first container and the second container.
[0034] According to some embodiments of the present invention, the atomizing device further includes:
[0035] A button is disposed on the side wall of the second container near the first container. The button is used to electrically connect to the main control module and to generate the control signal.
[0036] The main control module is used to generate a square wave signal according to the control signal, and to control the working state of the electrolysis drive circuit according to the square wave signal.
[0037] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0038] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein:
[0039] Figure 1A This is a schematic diagram of a specific embodiment of the atomizing device of the present invention;
[0040] Figure 1B This is an embodiment of the present invention. Figure 1A Schematic diagram of the structure of part A in the middle;
[0041] Figure 2 This is an exploded view of the atomizing device of the present invention;
[0042] Figure 3 This is a circuit diagram of a specific embodiment of the electrolysis drive circuit of the present invention.
[0043] Figure label:
[0044] First container 100, electrolyzer 200, isolator 300, electrolysis drive circuit 400, second container 500, main control module 600, atomization module 700, first connecting part 800, cavity 110, first opening end 120, second opening end 130, fifth opening end 140, cup lid 150, anti-dry burning needle 160, first magnet group 170, first electrode 210, second electrode 220, drive chip 410, filter unit 420, Hall switch 510, button 520, second magnet group 530, second connecting part 710. Detailed Implementation
[0045] Embodiments of the present invention are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0046] In the description of this invention, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., are based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.
[0047] In the description of this invention, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0048] In the description of this invention, unless otherwise explicitly defined, terms such as "set up," "install," and "connect" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this invention in conjunction with the specific content of the technical solution.
[0049] In the description of this invention, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of the invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0050] like Figure 1A and Figure 1BAs shown, the atomizing device according to an embodiment of the present invention includes a first container 100, an electrolyzer 200, an isolator 300, an electrolysis drive circuit 400, a second container 500, and a main control module 600. The first container 100 has a cavity 110 for storing a solution; the electrolyzer 200 is disposed within the cavity 110 and is used to electrolyze the solution to form hydrogen ions and oxygen ions; the electrolyzer 200 includes a first electrode 210 and a second electrode 220; wherein the first electrode 210 is disposed on one side of the first container 100, and the second electrode 220 is disposed on the other side of the first container 100; the isolator 300 is disposed between the first electrode 210 and the second electrode 220, so that the cavity 110 forms a first receiving cavity and a second receiving cavity; wherein the first electrode 210 is disposed on the first... Inside the containment cavity, the second electrode 220 is disposed; the electrolysis drive circuit 400 is used to electrically connect to the first electrode 210 and the second electrode 220 respectively, and to control the level state of the first electrode 210 and the second electrode 220 so that oxygen ions are stored in the first containment cavity or the second containment cavity; the second container 500 is used to connect to the first container 100; the main control module 600 is disposed inside the second container 500 and electrically connected to the electrolysis drive circuit 400, and the main control module 600 is used to receive control signals and then control the working state of the electrolysis drive circuit 400 according to the control signals.
[0051] Specifically, the cavity 110 of the first container 100 is located at the end of the first container 100 away from the second container 500. The electrolyzer 200 is located at the lower end inside the cavity 110, with its first electrode 210 located above the separator 300 and its second electrode 220 located below the separator 300. The separator 300 also divides the cavity 110 into a first receiving cavity above the separator 300 and a second receiving cavity below the separator 300; that is, the first electrode 210 is located in the first receiving cavity, and the second electrode 220 is located in the second receiving cavity. The electrolysis drive circuit 400 is located at the end of the first container 100 near the second container 500, and the main control module 600 is located at the end of the second container 500 near the left sidewall. The lowermost end of the first container 100 is connected to the uppermost end of the second container 500.
[0052] Specifically, after detecting the control signal, the main control module 600 controls the electrolysis drive circuit 400 to operate, thereby controlling the voltage levels of the first electrode 210 and the second electrode 220 of the electrolyzer 200. When the electrolyzer 200 controls the first electrode 210 to be at a high voltage level and the second electrode 220 to be at a low voltage level, the solution in the cavity 110 is electrolyzed, generating hydrogen ions at the first electrode 210 and oxygen ions at the second electrode 220. The isolator 300 is a device with the function of isolating specific ions, such as a proton exchange membrane that can block the movement of oxygen ions. Therefore, hydrogen ions are isolated in the second containment cavity, while oxygen ions are isolated in the first containment cavity. At this time, the oxygen ions mix with the solution in the first containment cavity to form an oxygen-rich solution, which the atomizing device can directly use for cleaning, i.e., the atomizing device performs oxygen-rich cleaning at this time.
[0053] When the electrolyzer 200 controls the first electrode 210 to a low level and the second electrode 220 to a high level, hydrogen ions are generated at the first electrode 210, and oxygen ions are generated at the second electrode 220. Due to the isolation effect of the aforementioned isolator 300, oxygen ions are isolated in the second receiving cavity, while hydrogen ions are isolated in the first receiving cavity. At this time, the oxygen ions mix with the solution in the first receiving cavity to form a hydrogen-rich solution, which is used for hydrogen-rich atomization in the atomizing device; that is, the atomizing device performs hydrogen-rich atomization at this time.
[0054] According to the atomizing device of the present invention, the main control module 600 controls the electrolysis drive circuit 400 to work according to the control signal, thereby controlling the solution to be electrolyzed by the electrolyzer 200. The oxygen ions generated by electrolysis are isolated in the first receiving cavity and mixed with the solution to form an oxygen-rich solution, thereby enabling direct cleaning and disinfection of the cavity 110. This avoids the use of complicated cleaning and disinfection methods such as adding detergents and high-temperature boiling, thus greatly simplifying the cleaning work of the atomizing device and improving the working efficiency of the atomizing device.
[0055] like Figure 1A , Figure 1B and Figure 2As shown, in some specific embodiments of the present invention, a first opening end 120 and a second opening end 130 are provided on one side of the first container 100. The first opening end 120 is located near the first electrode 210 and is connected to the first receiving cavity; the second opening end 130 is located near the second electrode 220 and is connected to the second receiving cavity. The atomizing device also includes an atomizing module 700 and a first connecting part 800. The first connecting part 800 is located on the side wall of the first container 100; wherein, the first opening end 120 and the second opening end 130 are both located inside the first connecting part 800; the atomizing module 700 includes a second connecting part 710, and the atomizing module 700 is provided with a third opening end (not shown in the figure) and a fourth opening end (not shown in the figure) on the side near the first container 100; wherein, the third opening end and the fourth opening end are both located inside the second connecting part 710, the second connecting part 710 is used to connect with the first connecting part 800, the third opening end is used to connect with the first opening end 120, and the fourth opening end is used to connect with the second opening end 130.
[0056] Specifically, the first connecting part 800 and the second connecting part 710 are correspondingly arranged. After the first connecting part 800 and the second connecting part 710 are connected, the first opening end 120 and the third opening end can spatially correspond to and connect with each other, and the second opening end 130 and the fourth opening end can spatially correspond to and connect with each other. After the first opening end 120 and the third opening end are connected, the solution in the first receiving cavity can enter the atomizing module 700 through the first opening end 120 and the third opening end; after the second opening end 130 and the fourth opening end are connected, the gas generated in the second receiving cavity can be discharged outside the atomizing device through the second opening end 130 and the fourth opening end.
[0057] like Figure 1A , Figure 1B and Figure 2 As shown, in some specific embodiments of the present invention, the atomizing device further includes a Hall switch 510. The Hall switch 510 is disposed on the side wall of the second container 500 away from the first container 100 and is used to be electrically connected to the main control module 600; wherein, the main control module 600 is used to be electrically connected to the atomizing module 700 and to control the working state of the electrolysis drive circuit 400 according to the switching state of the Hall switch 510 and the control signal.
[0058] Specifically, the Hall switch 510 is located on the side wall of the second container 500 near the main control module 600.
[0059] Specifically, the switching state of Hall switch 510 is used to switch the atomizing device to perform normal atomization or hydrogen-rich atomization.
[0060] The control signals can be divided into a first control signal and a second control signal. After the main control module 600 detects the first control signal, it controls the atomizing module 700 to start working. After detecting the first control signal again, it controls the atomizing module 700 to stop working. That is, the first control signal is used to turn the atomizing module 700 on or off. After the main control module 600 detects the second control signal, it controls the electrolysis drive circuit 400 to start working, thereby controlling the first electrode 210 to switch to a high level and the second electrode 220 to switch to a low level, so that the solution is electrolyzed, thereby forming an oxygen-rich solution for cleaning. That is, the second control signal is used to switch the working state of the atomizing device to the cleaning working state.
[0061] Specifically, when the main control module 600 detects that the Hall switch 510 is closed and only detects the first control signal, the electrolysis drive circuit 400 does not operate. At this time, the first electrode 210 and the second electrode 220 of the electrolyzer 200 have no voltage level, and the solution does not undergo electrolysis. Simultaneously, the main control module 600 controls the atomization module 700 to start operating. The solution in the first receiving cavity enters the atomization module 700 through the first opening 120 and the third opening, and the atomization module 700 performs atomization. That is, the atomization device performs normal atomization operation. If, during normal atomization operation, the main control module 600 detects that the Hall switch 510 is open, the main control module 600 will not control the electrolysis drive circuit 400 to start operating. The voltage levels of the first electrode 210 and the second electrode 220 will not change, meaning the solution still does not undergo electrolysis, and the atomization device continues to perform normal atomization operation.
[0062] When the main control module 600 detects that the Hall switch 510 is open and only detects the first control signal, the main control module 600 controls the electrolysis drive circuit 400 to work, thereby controlling the first electrode 210 of the electrolyzer 200 to be at a low level and the second electrode 220 to be at a high level. At this time, the solution is electrolyzed, and hydrogen ions are generated at the first electrode 210 and oxygen ions are generated at the second electrode 220. Due to the obstruction of the isolator 300, the oxygen ions are isolated in the second receiving cavity. After forming oxygen, it is discharged from the atomizing device through the second opening 130 and the fourth opening. The hydrogen ions are isolated in the first receiving cavity. After the hydrogen ions mix with the solution in the first receiving cavity, a hydrogen-rich solution is formed. At the same time, the main control module 600 controls the atomizing module 700 to start working. The hydrogen-rich solution in the first receiving cavity enters the atomizing module 700 through the first opening 120 and the third opening. The atomizing module 700 performs atomization operation on the hydrogen-rich solution, that is, the atomizing device performs hydrogen-rich atomization operation. If Hall switch 510 is closed at this time, the main control module 600 controls the electrolysis drive circuit 400 to stop working, thereby controlling the level state of the first electrode 210 and the second electrode 220 to switch to no level, that is, the solution stops electrolysis and the atomizing device switches to normal atomization operation.
[0063] like Figure 3 As shown, in some specific embodiments of the present invention, the electrolysis drive circuit 400 includes a drive chip 410. The first port BI and the second port FI of the drive chip 410 are respectively electrically connected to the main control module 600; the third port GND of the drive chip 410 is grounded; the fourth port VCC of the drive chip 410 is electrically connected to the power supply; the fifth port FO1 and the sixth port FO2 of the drive chip 410 are respectively electrically connected to the first electrode 210; and the seventh port BO1 and the eighth port BO2 of the drive chip 410 are respectively electrically connected to the second electrode 220. The drive chip 410 is used to control the voltage levels of the first electrode 210 and the second electrode 220.
[0064] Specifically, when the main control module 600 detects that the Hall switch 510 is open, and the main control module 600 detects the first control signal but does not detect the second control signal, the main control module 600 outputs a low-level signal to the first port BI of the driver chip 410 and outputs a high-level signal to the second port FI of the driver chip 410. At this time, the fifth port FO1 and the sixth port FO2 of the driver chip 410 output a low level to the first electrode 210, and the seventh port BO1 and the eighth port of the driver chip 410 output a high level to the second electrode 220. That is, the atomizing device is in the hydrogen-rich atomization working state at this time.
[0065] When the main control module 600 detects that the Hall switch 510 is open, and simultaneously detects the first control signal and the second control signal, the main control module 600 outputs a high-level signal to the first port BI of the driver chip 410 and a low-level signal to the second port FI of the driver chip 410. At this time, the fifth port FO1 and the sixth port FO2 of the driver chip 410 output a high level to the first electrode 210, and the seventh port BO1 and the eighth port of the driver chip 410 output a low level to the second electrode 220. That is, the atomizing device is in an oxygen-rich cleaning working state at this time. The driver chip 410 can be selected as model RZ7888. It is understood that the specific model of the driver chip 410 can be selected according to actual needs.
[0066] like Figure 3 As shown, in some specific embodiments of the present invention, the electrolysis drive circuit 400 includes a filter unit 420. The filter unit 420 is electrically connected to the power supply and is used to perform filtering operations on the power supply.
[0067] like Figure 3As shown, in some specific embodiments of the present invention, the filter unit 420 includes a first capacitor C25 and a second capacitor C26. One end of the first capacitor C25 is electrically connected to the power supply, and the other end of the first capacitor C25 is grounded; one end of the second capacitor C26 is electrically connected to the power supply, and the other end of the second capacitor C26 is grounded.
[0068] Specifically, the first capacitor C25 and the second capacitor C26 are connected in parallel. One end of the first capacitor C25 and the second capacitor C26 is connected to the power supply, and the other end of the first capacitor C25 and the second capacitor C26 is grounded.
[0069] like Figure 1A and Figure 2 As shown, in some specific embodiments of the present invention, a fifth opening end 140 is provided on one side of the first container 100, and the opening direction of the fifth opening end 140 corresponds to the opening direction of the cavity 110; the atomizing device also includes a cup lid 150, which is used to seal the fifth opening end 140.
[0070] Specifically, the fifth opening end 140 is located at the uppermost end of the first container 100, and the fifth opening end 140 is connected to the cavity 110, so that the solution can be added into the cavity 110 through the fifth opening end 140.
[0071] As shown in Figure 1, in some specific embodiments of the present invention, the cavity 110 is provided with an anti-dry-burn needle 160 on the side near the second container 500, the anti-dry-burn needle being used to prevent the solution from drying out.
[0072] Specifically, the anti-dry-burn needle 160 is located at the bottom of the cavity 110 and on the side close to the atomizing module 700. The top of the anti-dry-burn needle 160 extends into the second receiving cavity, thereby preventing the solution in the cavity 110 from drying out.
[0073] like Figure 1A and Figure 2 As shown, in some specific embodiments of the present invention, the atomizing device further includes a first magnet group 170 and a second magnet group 530. The first magnet group 170 is disposed on the side of the first container 100 near the second container 500, and the second magnet group 530 is disposed on the side of the second container 500 near the first container 100. The first magnet group 170 and the second magnet group 530 are both used to reinforce the connection between the first container 100 and the second container 500.
[0074] Specifically, the first magnet assembly 170 is located at the bottom of the first container 100, and the second magnet assembly 530 is located at the top of the second container. The first magnet assembly 170 and the second magnet assembly 530 attract each other magnetically, making the connection between the first container 100 and the second container 500 more secure.
[0075] like Figure 1A , Figure 1B and Figure 2 As shown, in some specific embodiments of the present invention, the atomizing device further includes a button 520. The button 520 is disposed on the side wall of the second container 500, and the button 520 is used to be electrically connected to the main control module 600 and to generate a control signal; wherein, the main control module 600 is used to generate a square wave signal according to the control signal and to control the working state of the electrolysis drive circuit 400 according to the square wave signal.
[0076] Specifically, button 520 is located on the side wall on the same side as Hall switch 510, and button 520 is located above Hall switch 510.
[0077] Specifically, the control signals can be divided into a first control signal and a second control signal. The first control signal is used to turn the atomizing module 700 on or off, and the second control signal is used to switch the working state of the atomizing device to the cleaning working state. When button 520 is pressed and held for 3 seconds, the main control module 600 detects the first control signal; when button 520 is pressed briefly, the main control module 600 detects the second control signal.
[0078] If the main control module 600 detects a brief press of button 520, it controls the electrolysis drive circuit 400 to operate, thereby controlling the first electrode 210 to switch to a high level and the second electrode 220 to switch to a low level. The solution is electrolyzed, generating oxygen ions at the first electrode 210 and hydrogen ions at the second electrode 220. Due to the obstruction of the isolator 300, the hydrogen ions are isolated in the second containment cavity, forming hydrogen gas which is then discharged outside the atomizing device through the second opening 130 and the fourth opening. The oxygen ions are isolated in the first containment cavity and mix with the solution to form an oxygen-rich solution. This oxygen-rich solution can directly clean and disinfect the cavity 110 inside the container, i.e., clean the atomizing device. Simultaneously, the main control module 600 outputs a PWM square wave signal with a frequency of 1kHz and a duty cycle of 1%, and the frequency of the PWM square wave signal increases by 1kHz and the duty cycle increases by 1% every second. When the frequency of the output PWM square wave signal reaches 90KHz and the duty cycle reaches 90%, the main control module 600 controls the first electrode 210 and the second electrode 220 to switch back to their original level state, that is, the atomizing device ends the cleaning work.
[0079] like Figure 1A , Figure 1B and Figure 2As shown, in a specific embodiment, the control signal can be divided into a first control signal and a second control signal. The first control signal is used to turn the atomizing module 700 on or off, and the second control signal is used to switch the working state of the atomizing device to the cleaning working state. When button 520 is pressed and held for 3 seconds, the main control module 600 detects the first control signal; when button 520 is pressed briefly, the main control module 600 detects the second control signal.
[0080] After the main control module 600 detects that the Hall switch 510 is turned on and that the button 520 is pressed and held for 3 seconds, the main control module 600 controls the electrolysis drive circuit 400 to work, thereby controlling the first electrode 210 of the electrolyzer 200 to be at a low level and the second electrode 220 to be at a high level. The solution is electrolyzed, and hydrogen ions are generated at the first electrode 210 and oxygen ions are generated at the second electrode 220. Due to the obstruction of the isolator 300, the oxygen ions are isolated in the second receiving cavity. After forming oxygen, it is discharged from the atomizing device through the second opening 130 and the fourth opening. The hydrogen ions are isolated in the first receiving cavity. The hydrogen ions mix with the solution in the first receiving cavity to form a hydrogen-rich solution. At the same time, the main control module 600 controls the atomizing module 700 to start working. The hydrogen-rich solution in the first receiving cavity enters the atomizing module 700 through the first opening 120 and the third opening. The atomizing module 700 performs the atomization operation on the hydrogen-rich solution, that is, the atomizing device performs hydrogen-rich atomization.
[0081] Subsequently, if the main control module 600 detects a brief press of button 520, it controls the electrolysis drive circuit 400 to operate, thereby controlling the first electrode 210 to switch to a high level and the second electrode 220 to switch to a low level. The solution is electrolyzed, generating oxygen ions at the first electrode 210 and hydrogen ions at the second electrode 220. Due to the obstruction of the isolator 300, the hydrogen ions are isolated in the second containment cavity, forming hydrogen gas which is then discharged from the atomizing device through the second opening 130 and the fourth opening. The oxygen ions are isolated in the first containment cavity and mix with the solution to form an oxygen-rich solution. This oxygen-rich solution can directly clean and disinfect the cavity 110 inside the container, i.e., clean the atomizing device. Simultaneously, the main control module 600 outputs a PWM square wave signal with a frequency of 1kHz and a duty cycle of 1%, and the frequency of the PWM square wave signal increases by 1kHz and the duty cycle increases by 1% every second. When the frequency of the output PWM square wave signal reaches 90KHz and the duty cycle reaches 90%, the main control module 600 controls the first electrode 210 to switch back to low level and the second electrode 220 to switch back to high level, that is, the atomizing device ends the cleaning work and continues to perform hydrogen-rich atomization.
[0082] When the main control module 600 detects that the Hall switch 510 is closed and the main control module 600 detects that the button 520 is pressed for 3 seconds, the electrolysis drive circuit 400 will not work. At this time, the first electrode 210 and the second electrode 220 of the electrolyzer 200 have no voltage level, and the solution does not undergo electrolysis. At the same time, the main control module 600 controls the atomization module 700 to start working. The solution in the first receiving cavity enters the atomization module 700 through the first opening end 120 and the third opening end. The atomization module 700 performs atomization operation on the solution, that is, the atomization device performs normal atomization operation.
[0083] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the spirit of the present invention. Furthermore, the embodiments of the present invention and the features thereof can be combined with each other unless otherwise specified.
Claims
1. An atomizing device, characterized in that, include: A first container, the first container having a cavity for storing a solution; An electrolyzer is disposed within the cavity and is used to electrolyze the solution to form hydrogen ions and oxygen ions. The electrolyzer includes a first electrode and a second electrode; wherein the first electrode is disposed on one side of the first container and the second electrode is disposed on the other side of the first container. An isolator is disposed between the first electrode and the second electrode to form a first receiving cavity and a second receiving cavity; wherein the first electrode is disposed in the first receiving cavity and the second electrode is disposed in the second receiving cavity; An electrolysis driving circuit is provided, wherein the electrolysis driving circuit is used to be electrically connected to the first electrode and the second electrode respectively, and the electrolysis driving circuit is used to control the voltage level of the first electrode and the second electrode so that the oxygen ions are stored in the first receiving cavity or the second receiving cavity. The second container is used to connect to the first container; A main control module is disposed within the second container. The main control module is electrically connected to the electrolysis drive circuit. The main control module is used to receive control signals and control the working state of the electrolysis drive circuit according to the control signals. The control signals include a first control signal and a second control signal. The first control signal is used to turn the atomizing module on or off, and the second control signal is used to switch the working state of the atomizing device to an oxygen-enriched cleaning working state. A Hall switch is disposed on the side wall of the second container away from the first container, and the Hall switch is used for electrical connection with the main control module; The main control module is used to be electrically connected to the atomization module and to control the working state of the electrolysis drive circuit according to the switching state of the Hall switch and the control signal. The main control module is also used to control the drive chip in the electrolysis drive circuit to output a high level to the first electrode and a low level to the second electrode when the Hall switch is detected to be open and the first control signal and the second control signal are detected at the same time, so that the oxygen ions are isolated in the first containment cavity, and the oxygen ions mix with the solution in the first containment cavity to form an oxygen-rich solution for cleaning and disinfecting the cavity.
2. The atomizing device according to claim 1, characterized in that, The first container has a first opening end and a second opening end on one side. The first opening end is located near the first electrode and is connected to the first receiving cavity; the second opening end is located near the second electrode and is connected to the second receiving cavity. The atomizing device also includes: A first connecting portion is disposed on the side wall of the first container; wherein the first opening end and the second opening end are both disposed inside the first connecting portion; An atomizing module includes a second connecting portion, and the atomizing module has a third opening end and a fourth opening end on the side near the first container; wherein the third opening end and the fourth opening end are both disposed inside the second connecting portion, the second connecting portion is used to connect with the first connecting portion, the third opening end is used to connect with the first opening end, and the fourth opening end is used to connect with the second opening end.
3. The atomizing device according to claim 1, characterized in that, The electrolysis drive circuit includes: The driver chip has a first port and a second port that are electrically connected to the main control module, a third port that is grounded, a fourth port that is electrically connected to the power supply, a fifth port and a sixth port that are electrically connected to the first electrode, and a seventh port and an eighth port that are electrically connected to the second electrode. The driver chip is used to control the voltage levels of the first electrode and the second electrode.
4. The atomizing device according to claim 3, characterized in that, The electrolysis drive circuit further includes: A filtering unit is provided, which is electrically connected to the power supply and is used to perform filtering operations on the power supply.
5. The atomizing device according to claim 4, characterized in that, The filtering unit includes: A first capacitor, one end of which is electrically connected to the power supply, and the other end of which is grounded; The second capacitor has one end for electrical connection to the power supply and the other end for grounding.
6. The atomizing device according to any one of claims 1 to 5, characterized in that, The first container is further provided with a fifth opening end on the side away from the second container, and the opening direction of the fifth opening end corresponds to the opening direction of the cavity; The atomizing device also includes: A cup lid, which is used to seal the fifth open end.
7. The atomizing device according to claim 1, characterized in that, The cavity is provided with an anti-dry-burn needle on the side near the second container, which is used to prevent the solution from drying out.
8. The atomizing device according to claim 1, characterized in that, Also includes: A first magnet assembly is disposed on the side of the first container near the second container; A second magnet assembly is disposed on the side of the second container closer to the first container; Both the first magnet group and the second magnet group are used to reinforce the connection between the first container and the second container.
9. The atomizing device according to claim 1, characterized in that, Also includes: A button is disposed on the side wall of the second container near the first container. The button is used to electrically connect to the main control module and to generate the control signal. The main control module is used to generate a square wave signal according to the control signal, and to control the working state of the electrolysis drive circuit according to the square wave signal.
Citation Information
Patent Citations
Safe portable multifunctional oxygen-hydrogen integrated machine
CN105063652A
Atomization device
CN217138874U