Ozone generating device and humidifying equipment

By setting baffles and optimizing the positions of the inlet and outlet in the cavity of the ozone generator to form a liquid channel, the mixing effect of ozone and liquid is improved, solving the problem of insufficient ozone mixing in the prior art. This achieves an increase in the ozone concentration in the liquid and an enhanced sterilization effect, while also extending the service life of the device.

CN224148190UActive Publication Date: 2026-04-21GD MIDEA ENVIRONMENT APPLIANCES MFG
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GD MIDEA ENVIRONMENT APPLIANCES MFG
Filing Date
2025-05-06
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing ozone generators have poor ozone mixing with liquids, resulting in low ozone content in the liquid, which in turn affects the sterilization and disinfection effect of the liquid.

Method used

A baffle is installed inside the cavity of the ozone generator to form a liquid channel, and the inlet and outlet are staggered to extend the liquid flow path and improve the turbulence effect. At the same time, the electrolysis module is placed in the liquid channel to generate ozone, and the liquid flow is optimized by the relationship between the direction of the inlet and outlet and the baffle to ensure that the liquid and the electrolysis module are in full contact.

Benefits of technology

It improves the mixing effect of ozone and liquid, increases the concentration of ozone in the liquid, enhances the sterilization and disinfection effect of the liquid, reduces the risk of overheating of the electrolysis module, and extends the service life of the device.

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Abstract

The utility model discloses an ozone generating device and humidifying equipment, ozone generating device includes: casing and electrolysis module, casing has cavity, and the cavity is equipped with the baffle, and the baffle is used for separating cavity and forms the liquid channel that is used for liquid circulation, casing is equipped with the liquid inlet and liquid outlet respectively at the both ends of liquid channel's circulation path, and the liquid inlet and liquid outlet are connected with the electrolysis module. The liquid inlet and the liquid outlet are arranged in a staggered mode, and the electrolysis module is arranged in the liquid channel and used for electrolyzing liquid to generate ozone. Therefore, by arranging the partition plate in the cavity, the cavity can be partitioned by the partition plate to form the liquid channel, liquid can flow along the liquid channel in the cavity, the flowing path of the liquid in the cavity can be prolonged, the turbulence effect of the liquid can be improved, the mixing effect of ozone and the liquid can be improved, and the concentration of ozone in the liquid can be improved; therefore, the liquid sterilization and disinfection effect can be improved.
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Description

Technical Field

[0001] This utility model relates to the technical field of ozone generators, and in particular to an ozone generator and a humidification device. Background Technology

[0002] In related technologies, the ozone generated in the ozone generator cannot fully contact the liquid, resulting in poor mixing between the ozone and the liquid, which in turn leads to a low ozone content in the liquid and consequently a poor sterilization and disinfection effect. Utility Model Content

[0003] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes an ozone generator, wherein the ozone generated by the ozone generator mixes well with the liquid, thereby facilitating the increase of ozone content in the liquid.

[0004] An ozone generator includes: a housing having a cavity, wherein a partition is provided within the cavity, the partition being used to separate the cavity and form a liquid channel for liquid flow, the housing having an inlet and an outlet at opposite ends of the flow path of the liquid channel, the inlet and outlet being offset from each other; and an electrolysis module disposed within the liquid channel and used to electrolyze the liquid to generate ozone.

[0005] According to the ozone generator of this utility model embodiment, by setting a partition in the cavity, the partition can separate the cavity and form a liquid channel. The liquid can flow along the liquid channel in the cavity, which is beneficial to extending the flow path of the liquid in the cavity and improving the turbulence effect of the liquid. This is beneficial to improving the mixing effect of ozone and liquid, increasing the concentration of ozone in the liquid, and thus improving the sterilization and disinfection effect of the liquid. By setting the inlet and outlet of the liquid in a staggered manner, it is beneficial to allow the liquid to flow fully in the cavity, thereby facilitating full contact between the liquid and the electrolysis module, improving the electrolysis effect of the ozone generator, and allowing the liquid to fully exchange heat with the electrolysis module, reducing the risk of overheating of the electrolysis module, and thus improving the service life of the ozone generator.

[0006] According to some embodiments of the present invention, the liquid inlet direction is parallel to the liquid outlet direction; and / or, the liquid inlet direction is parallel to the partition; and / or, the liquid outlet direction is parallel to the partition.

[0007] According to some embodiments of the present invention, the housing is provided with a plurality of partitions, which are arranged at intervals in the vertical direction within the cavity and divide the cavity into multiple flow sections arranged in the vertical direction, and the flow sections on both sides of any one of the partitions are interconnected.

[0008] According to some embodiments of the present invention, two partitions arranged adjacent to each other in the vertical direction are respectively disposed on a first side wall and a second side wall opposite to each other in the first direction of the housing; wherein, the partition disposed on the first side wall and the second side wall are spaced apart in the first direction; the partition disposed on the second side wall and the first side wall are spaced apart in the first direction.

[0009] According to some embodiments of the present invention, the liquid inlet is located on one of the first sidewall and the second sidewall; the liquid outlet is located on one of the first sidewall and the second sidewall.

[0010] According to some embodiments of the present invention, the multiple flow sections include: an inlet section connected to the inlet port; an outlet section connected to the outlet port; and at least one transition section connected between the inlet section and the outlet section; wherein the electrolysis module is disposed in the outlet section and / or the transition section.

[0011] According to some embodiments of the present invention, the electrolysis module is disposed within the liquid outlet section, and the electrolysis module includes: a cathode plate and an anode plate, the cathode plate and the anode plate being disposed opposite to each other, and the anode plate being disposed on the side of the cathode plate near the liquid outlet; and an electrolyte membrane, the electrolyte membrane being sandwiched between the cathode plate and the anode plate.

[0012] According to some embodiments of the present invention, the electrolysis module is disposed on the partition plate, and the electrolysis module is arranged perpendicular to the partition plate.

[0013] According to some embodiments of the present invention, the anode plate is provided with an opening, and the opening is disposed through the anode plate along the thickness direction.

[0014] The second objective of this invention is to provide a humidification device.

[0015] A humidification device includes: an atomizing component for atomizing liquid into water mist; a water circuit component and a water holding chamber, the water circuit component for guiding the liquid in the water holding chamber to the atomizing component; and an ozone generator, the ozone generator being the ozone generator described above, the ozone generator being disposed in the water circuit component to electrolyze at least a portion of the liquid.

[0016] The humidification device has the same advantages as the ozone generator mentioned above, and will not be elaborated on here.

[0017] According to some embodiments of the present invention, the atomizing component includes: a wet curtain, wherein the water circuit component is used to guide the liquid to the wet curtain; and a fan, wherein the fan is used to control the airflow through the wet curtain.

[0018] Additional aspects and advantages of this 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

[0019] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0020] Figure 1 This is a partial structural schematic diagram of the ozone generator described in an embodiment of the present invention;

[0021] Figure 2 for Figure 1 A schematic diagram of the structure after the first sidewall is hidden;

[0022] Figure 3 for Figure 2 Enlarged view of point A in the middle.

[0023] Figure label:

[0024] Ozone generator 100

[0025] Shell 110, cavity 111, partition 112

[0026] Liquid channel 113, inlet section 1131, outlet section 1132, transition section 1133

[0027] Inlet 114, outlet 115, first sidewall 116, second sidewall 117

[0028] Electrolysis module 120, cathode plate 121, anode plate 122, opening 1221, electrolyte membrane 123.

[0029] Fastener 130. Detailed Implementation

[0030] The embodiments of this utility model 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 this utility model, and should not be construed as limiting this utility model.

[0031] In the description of this utility model, it should be understood that the terms "width," "thickness," "upper," "lower," "vertical," "top," and "bottom," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model 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, and therefore should not be construed as a limitation of this utility model. Furthermore, features defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more.

[0032] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0033] The following is for reference. Figures 1-3 Description of an ozone generator 100 according to an embodiment of the present invention.

[0034] Reference Figure 1 According to an embodiment of the present invention, an ozone generator 100 includes a housing 110 and an electrolysis module 120. The housing 110 has a cavity 111, and a partition 112 is provided inside the cavity 111. The partition 112 is used to separate the cavity 111 and form a liquid channel 113 for liquid flow. The housing 110 has an inlet 114 and an outlet 115 at both ends of the flow path of the liquid channel 113, respectively. The inlet 114 and the outlet 115 are staggered. The electrolysis module 120 is disposed in the liquid channel 113 and is used to electrolyze the liquid to generate ozone.

[0035] For example, liquid can flow into cavity 111 through inlet 114. Baffle 112 is provided in cavity 111. Baffle 112 cooperates with housing 110 to define liquid channel 113. After entering cavity 111, liquid can flow along liquid channel 113. During the flow of liquid in liquid channel 113, electrolysis module 120 electrolyzes liquid and generates ozone. After flowing through liquid channel 113, liquid can be discharged from cavity 111 through outlet 115.

[0036] By setting a partition 112 inside the cavity 111, a liquid channel 113 is formed inside the cavity 111. The inlet 114 and the outlet 115 are located at the two ends of the flow path of the liquid channel 113, respectively. This allows the liquid to flow along the liquid channel 113 after entering the cavity 111, which helps to extend the flow path of the liquid in the cavity 111 and improves the turbulence effect of the liquid. This, in turn, helps to improve the mixing effect of the generated ozone with the liquid, increases the concentration of ozone in the liquid, and thus helps to improve the disinfection and sterilization effect of the liquid.

[0037] The liquid inlet 114 and the liquid outlet 115 are staggered. For example, the liquid inlet 114 is located below the liquid outlet 115. That is to say, the liquid in the ozone generator 100 enters from the bottom and exits from the top. This is conducive to the uniform distribution of the liquid in the cavity 111, thereby improving the electrolysis effect of the ozone generator 100. At the same time, as the liquid flows from bottom to top, it can fully contact the electrolysis module 120, thereby fully exchanging heat with the electrolysis module 120, reducing the risk of overheating of the electrolysis module 120, and thus helping to extend the service life of the ozone generator 100.

[0038] In some other examples, the inlet 114 may be located above the outlet 115; it is understood that the specific arrangement of the inlet 114 and the outlet 115 can be determined according to actual production requirements, and no specific limitation is made here.

[0039] In related technologies, the ozone generated in the ozone generator cannot fully contact the liquid, resulting in poor mixing between the ozone and the liquid, which in turn leads to a low ozone content in the liquid and consequently a poor sterilization and disinfection effect.

[0040] This application provides a partition 112 within the cavity 111. The partition 112 separates the cavity 111 and forms a liquid channel 113, allowing the liquid to flow along the liquid channel 113 within the cavity 111. This extends the flow path of the liquid within the cavity 111 and improves liquid turbulence, thereby enhancing the mixing effect of ozone and liquid, increasing the concentration of ozone in the liquid, and thus improving the sterilization and disinfection effect of the liquid. By staggering the liquid inlet 114 and liquid outlet 115, the liquid can flow fully within the cavity 111, ensuring sufficient contact between the liquid and the electrolysis module 120, improving the electrolysis effect of the ozone generator, and facilitating sufficient heat exchange between the liquid and the electrolysis module 120, reducing the risk of overheating of the electrolysis module 120, and thus extending the service life of the ozone generator 100.

[0041] In some examples, the liquid can be water.

[0042] Combination Figure 1 and Figure 2 In some embodiments of this utility model, the liquid inlet 114 is arranged parallel to the liquid outlet 115.

[0043] For example, the flow direction of liquid through inlet 114 can be parallel to the first direction, that is, the liquid inlet direction of inlet 114 is parallel to the first direction, and the flow direction of liquid through outlet 115 can be parallel to the first direction, that is, the liquid outlet direction of outlet 115 is parallel to the first direction. The parallel flow direction of inlet 114 and liquid outlet 115 is beneficial to make the liquid flow uniformly in cavity 111, thereby making the liquid contact the electrolysis module 120 uniformly, and also making the ozone and liquid mix uniformly.

[0044] It should be noted that "first direction" can be understood as the width direction of the ozone generator 100. A specific direction diagram can be found in [reference needed]. Figure 1 and Figure 2 As shown.

[0045] Combination Figure 1 and Figure 2 In some embodiments, the liquid inlet 114 is arranged parallel to the partition 112.

[0046] For example, the liquid inlet 114 is parallel to the first direction, and the partition 112 is arranged in the cavity 111 along the first direction. By making the liquid inlet 114 parallel to the partition 112, it is beneficial to reduce flow resistance and improve the flow efficiency of the liquid.

[0047] Combination Figure 1 and Figure 2 The liquid outlet 115 is set parallel to the partition 112 in the direction of liquid discharge.

[0048] For example, the liquid outlet 115 has a liquid outlet direction parallel to the first direction, and the partition 112 is arranged in the cavity 111 along the first direction. By setting the liquid outlet 115 to have a liquid outlet direction parallel to the partition 112, it is beneficial to reduce flow resistance and improve the flow efficiency of the liquid.

[0049] Optionally, the ozone generator 100 may be configured such that the inlet direction of the liquid inlet 114 and the outlet direction of the liquid outlet 115 are both parallel to the partition 112; or the ozone generator 100 may be configured such that the inlet direction of the liquid inlet 114 is parallel to the partition 112, and the outlet direction of the liquid outlet 115 is arranged at an angle to the partition 112 and the inlet direction of the liquid inlet 114; or the ozone generator 100 may be configured such that the outlet direction of the liquid outlet 115 is parallel to the partition 112, and the inlet direction of the liquid inlet 114 is arranged at an angle to the partition 112 and the outlet direction of the liquid outlet 115; or the ozone generator 100 may be configured such that the inlet direction of the liquid inlet 114 is parallel to the outlet direction of the liquid outlet 115, and both the inlet direction of the liquid inlet 114 and the outlet direction of the liquid outlet 115 are arranged at an angle to the partition 112.

[0050] It is understandable that the inlet direction of liquid inlet 114, the outlet direction of liquid outlet 115, and the relationship between baffle 112 can be determined according to actual production requirements, and no specific limitation is made here.

[0051] Combination Figure 1 and Figure 2 In some embodiments of this utility model, the housing 110 is provided with a plurality of partitions 112, which are arranged at intervals in the vertical direction in the cavity 111 and divide the cavity 111 to form multiple flow sections arranged in the vertical direction, and the flow sections on both sides of any partition 112 are interconnected.

[0052] It should be noted that "vertical direction" can also be understood as the height direction of the ozone generator 100, and the vertical direction is perpendicular to the first direction.

[0053] For example, two partitions 112 are provided inside the cavity 111. The two partitions 112 are arranged at intervals in the vertical direction inside the cavity 111. A flow section can be formed between the two partitions 112. A flow section can be formed between each partition 112 and the housing 110 in the vertical direction. The flow sections on both sides of the same partition 112 in the vertical direction are interconnected. The liquid inlet 114 can be connected to the flow section provided near the bottom wall of the housing 110 among the multiple flow sections. The liquid outlet 115 can be connected to the flow section provided near the top wall of the housing 110 among the multiple flow sections. After the liquid enters the cavity 111 through the liquid inlet 114, it can flow through the multiple flow sections in sequence and can be further discharged from the cavity 111 through the liquid outlet 115.

[0054] It is understood that the two partitions 112 inside the cavity 111 are merely an example for illustrative purposes and should not be construed as a limitation of this application. The cavity 111 may also have three partitions 112, four partitions 112, etc. The specific number of partitions 112 can be determined according to actual production requirements and is not specifically limited here.

[0055] Therefore, by setting multiple baffles 112 inside the housing 110, it is beneficial to further extend the flow path of the liquid in the cavity 111, thereby further improving the mixing effect of ozone and liquid, which in turn helps to increase the concentration of ozone in the liquid and improve the sterilization and disinfection effect of the liquid.

[0056] Combination Figure 1 and Figure 2 In some embodiments of this utility model, two partitions 112 arranged adjacent to each other in the vertical direction are respectively provided on the first side wall 116 and the second side wall 117 opposite to each other in the first direction of the housing 110; wherein, the partition 112 provided on the first side wall 116 and the second side wall 117 are spaced apart in the first direction; the partition 112 provided on the second side wall 117 and the first side wall 116 are spaced apart in the first direction.

[0057] For example, two partitions 112 are provided inside the cavity 111. The two partitions 112 are spaced apart in the vertical direction, and the two partitions 112 can be spaced apart from the top wall and bottom wall of the housing 110 in the vertical direction, respectively. One of the two partitions 112 is provided on the first side wall 116 and spaced apart from the second side wall 117 in the first direction, and the other of the two partitions 112 is provided on the second side wall 117 and spaced apart from the first side wall 116.

[0058] For ease of description, the partition 112 disposed on the first side wall 116 is defined as the first partition, and the partition 112 disposed on the second side wall 117 is defined as the second partition. The ends of the flow sections located on both sides of the first partition in the vertical direction near the second side wall 117 are interconnected, and the ends of the flow sections located on both sides of the second partition in the vertical direction near the first side wall 116 are interconnected. The flow section located between the first partition and the second partition is the same flow section, and its two ends are connected to the connecting sections located above and below it, respectively.

[0059] Thus, a tortuous and extended liquid channel 113 is formed inside the cavity 111 to prolong the flow path of the liquid inside the cavity 111 and improve the turbulence effect of the liquid inside the cavity 111, thereby improving the mixing effect of ozone and liquid, increasing the concentration of ozone in the liquid, and thus improving the disinfection and sterilization effect of the liquid.

[0060] Combination Figure 1 and Figure 2 In some embodiments of this utility model, the liquid inlet 114 is provided on one of the first sidewall 116 and the second sidewall 117; the liquid outlet 115 is provided on one of the first sidewall 116 and the second sidewall 117.

[0061] In some examples, one end of the flow path of the liquid channel 113 can be located near the first sidewall 116 and the other end can be located near the second sidewall 117. In this structure, the liquid inlet 114 can be located on the first sidewall 116 and the liquid outlet 115 can be located on the second sidewall 117, or the liquid inlet 114 can be located on the second sidewall 117 and the liquid outlet 115 can be located on the first sidewall 116.

[0062] In other examples, both ends of the flow path of the liquid channel 113 can be located close to the first sidewall 116. In this structure, the inlet 114 and the outlet 115 can both be located on the first sidewall 116.

[0063] In some other examples, both ends of the flow path of the liquid channel 113 can be located close to the second side wall 117, and the inlet 114 and the outlet 115 can both be located on the second side wall 117.

[0064] It is understandable that the specific locations of the inlet 114 and outlet 115 can be determined based on the extension direction of the flow path of the liquid channel 113, and no specific limitation is made here.

[0065] Combination Figure 1 and Figure 2 In some embodiments of this utility model, the multi-section flow section includes: an inlet section 1131, an outlet section 1132, and at least one transition section 1133. The inlet section 1131 is connected to the inlet port 114, the outlet section 1132 is connected to the outlet port 115, and the transition section 1133 is connected between the inlet section 1131 and the outlet section 1132.

[0066] For example, two partitions 112 may be provided inside the cavity 111. One of the partitions 112 is disposed on the first sidewall 116 and spaced apart from the second sidewall 117, and the other of the partitions 112 is disposed on the second sidewall 117 and spaced apart from the first sidewall 116. The partition 112 disposed on the first sidewall 116 is defined as the first partition, and the partition 112 disposed on the second sidewall 117 is defined as the second partition. The first partition and the bottom wall of the housing 110 together define the liquid inlet. Section 1131, the first partition and the second partition together define a transition section 1133, the liquid inlet section 1131 and the transition section 1133 are connected through the gap between the first partition and the second side wall 117, the second partition and the top wall of the shell 110 together define a liquid outlet section 1132, the transition section 1133 and the liquid outlet section 1132 are connected through the gap between the second partition and the first side wall 116, the liquid inlet section 1131, the liquid outlet section 1132 and the transition section 1133 together constitute a liquid channel 113.

[0067] The inlet 114 is disposed on the first side wall 116 and is disposed opposite to the inlet section 1131 in the first direction, so that the inlet 114 and the inlet section 1131 are connected. The outlet 115 is disposed on the second side wall 117 and is disposed opposite to the outlet section 1132 in the first direction, so that the outlet section 1132 and the outlet 115 are connected. The flow path of the liquid after passing through the inlet 114 can be as follows: flowing in the inlet section 1131 along the first direction toward the second side wall 117 - flowing vertically from the inlet section 1131 into the transition section 1133 - flowing in the transition section 1133 along the first direction toward the first side wall 116 - flowing vertically from the transition section 1133 into the outlet section 1132 - flowing in the outlet section 1132 along the first direction toward the second side wall 117 - flowing out from the cavity 111 through the outlet 115.

[0068] The size of the portion of the liquid channel 113 formed by the gap between the first partition and the second sidewall 117 and the gap between the second partition and the first sidewall 116 is smaller than the size of the rest of the liquid channel 113 (e.g., the inlet section 1131, the outlet section 1132, and the transition section 1133). This causes the liquid pressure to change when the liquid flows in the liquid channel 113, thereby generating a cavitation effect, which further increases the solubility of ozone in the liquid, thus improving the disinfection and sterilization effect of the liquid.

[0069] As a result, the liquid flows in a zigzag pattern along the liquid channel 113 within the cavity 111, which helps to improve the turbulence effect of the liquid.

[0070] The electrolysis module 120 is located in the liquid outlet section 1132 and / or the transition section 1133.

[0071] In some examples, combined Figure 1 and Figure 2 The electrolysis module 120 can be set in the liquid outlet section 1132. That is, the electrolysis module 120 is set in the end flow section of the liquid channel 113. Since the liquid flows through the liquid inlet section 1131 and the transition section 1133 before entering the liquid outlet section 1132, the turbulence effect is effectively improved when it enters the liquid outlet section 1132. Therefore, by setting the electrolysis module 120 in the liquid outlet section 1132, the mixing effect of ozone and liquid can be effectively improved, which is conducive to increasing the ozone content in the liquid, thereby improving the sterilization and disinfection effect of the liquid.

[0072] In other examples, the electrolysis module 120 can be located in the transition section 1133. That is, the electrolysis module 120 is located in the flow section in the middle of the liquid channel 113. Since the liquid flows through the inlet section 1131 before entering the transition section 1133, the turbulence effect is already effectively improved when it enters the transition section 1133. Therefore, by setting the electrolysis module 120 in the transition section 1133, the mixing effect of ozone and liquid can be effectively improved. Furthermore, as the liquid flows further towards the outlet section 1132, the turbulence effect of the liquid can be further improved, thereby further enhancing the mixing effect of ozone and liquid, increasing the ozone content in the liquid, and thus improving the sterilization and disinfection effect of the liquid.

[0073] In some other examples, an electrolysis module 120 can be installed in both the liquid outlet section 1132 and the transition section 1133 to increase the ozone content generated by electrolysis. Since the electrolysis module 120 is installed in the liquid outlet section 1132 and the transition section 1133, the turbulence effect when the liquid flows into the transition section 1133 and the liquid outlet section 1132 can be effectively enhanced, which is conducive to increasing the ozone content in the liquid and thus improving the disinfection and sterilization effect of the liquid.

[0074] Combination Figure 1 and Figure 2 In some embodiments of this utility model, the electrolysis module 120 is disposed in the liquid outlet section 1132. Since the liquid flows through the liquid inlet section 1131 and the transition section 1133 before entering the liquid outlet section 1132, the turbulence effect is effectively improved when it enters the liquid outlet section 1132. Therefore, by disposing of the electrolysis module 120 in the liquid outlet section 1132, the mixing effect of ozone and liquid can be effectively improved, which is conducive to increasing the ozone content in the liquid, thereby improving the sterilization and disinfection effect of the liquid.

[0075] Further integration Figure 3 The electrolysis module 120 includes a cathode plate 121 and an anode plate 122. The cathode plate 121 and the anode plate 122 are arranged opposite to each other, and the anode plate 122 is located on the side of the cathode plate 121 near the liquid outlet 115.

[0076] Considering that ozone is generated on one side of the anode plate 122 of the electrolysis module 120, by positioning the anode plate 122 on the side of the cathode plate 121 adjacent to the liquid outlet 115, ozone can be discharged from the cavity 111 along with the liquid. This helps to reduce the residence time of ozone in the cavity 111, thereby reducing the loss caused by the decomposition of ozone itself. It also facilitates the timely removal of the electrolyzed liquid and promotes the timely replenishment of the unelectrolyzed liquid to the anode plate 122 side, thereby helping to maintain the stability of the anode reaction environment and ensuring the high efficiency of the electrolysis reaction.

[0077] Further integration Figure 2 and Figure 3 The electrolysis module 120 also includes an electrolyte membrane 123, which is sandwiched between the cathode plate 121 and the anode plate 122. The electrolyte membrane 123 can separate the cathode reaction area and the anode reaction area, which helps to prevent the products (such as ozone) on the anode plate 122 side and the products (such as hydrogen) on the cathode plate 121 side from mixing, thereby helping to prevent the products on the anode plate 122 side and the products on the cathode plate 121 side from reacting chemically.

[0078] Combination Figure 1 and Figure 2 In some embodiments of this utility model, the electrolysis module 120 is disposed on the partition 112 to facilitate the positioning and installation of the electrolysis module 120. The electrolysis module 120 is arranged perpendicular to the partition 112 so that liquid can flow through the anode plate 122 and cathode plate 121 of the electrolysis module 120 respectively. When the liquid flows through the cathode plate 121, it can mix with the ozone escaping from the cathode plate 121, thereby further increasing the ozone content in the liquid and thus improving the disinfection and sterilization effect. Specifically, since the multiple flow sections within the cavity 111 are spaced apart by the partition 112 and the first sidewall 116 and / or the second sidewall 117... To achieve connectivity, if the electrolysis module 120 is set parallel to the partition 112 and abuts against the inner wall of the cavity 111, the electrolysis module 120 will divide its flow section into two parts arranged vertically, causing the liquid to flow only through one side of the surface of the electrolysis module 120. This will affect the mixing effect of ozone and liquid, resulting in a low ozone content in the liquid. However, by setting the electrolysis module 120 perpendicular to the partition 112, even if the electrolysis module 120 abuts against the inner wall of the cavity 111, the liquid can flow through the anode plate 122 and cathode plate 121 of the electrolysis module 120, thus helping to increase the ozone content in the liquid.

[0079] Combination Figures 1 to 3 In some embodiments of this utility model, the anode plate 122 is provided with an opening 1221, which is provided through the anode plate 122 along the thickness direction.

[0080] It should be noted that the "thickness direction" is perpendicular to the first direction and the vertical direction.

[0081] By providing an opening 1221 that extends through the anode plate 122 along its thickness direction, the contact area between the anode plate 122 and the liquid is increased, thereby improving the efficiency of ozone generation. Furthermore, the opening 1221 provides an escape channel for the generated ozone, facilitating its escape. Considering that the electrolysis module 120 generates heat during operation, the opening 1221 helps improve the heat dissipation efficiency of the electrolysis module 120 and reduces the risk of overheating.

[0082] Optionally, multiple openings 1221 can be provided on the anode plate 122 to further increase the contact area between the anode plate 122 and the liquid, thereby helping to further improve the efficiency of ozone generation. It is understood that the number of openings 1221 can be determined according to actual production requirements, and no specific limit is made here.

[0083] Combination Figure 1 and Figure 2 In some embodiments of this utility model, the ozone generator 100 further includes a fixing member 130, which is used to fix the electrolysis module 120 to the housing 110 to improve the assembly stability of the electrolysis module 120.

[0084] For example, the electrolysis module 120 may be provided with fasteners 130 on both sides in the thickness direction, so that the electrolysis module 120 can be fixed to the walls of the housing 110 on both sides in the thickness direction of the electrolysis module 120, which is beneficial to further improve the assembly stability of the electrolysis module 120.

[0085] Optionally, the fastener 130 can be configured as a threaded connection, such as a screw or bolt; the fastener 130 can also be configured as a snap-fit ​​structure, and the specific structure of the fastener 130 can be determined according to actual production requirements, and is not specifically limited here.

[0086] The humidification device according to an embodiment of the present invention includes: an atomizing component, a water circuit component, a water holding chamber, and the ozone generator 100 described above. The atomizing component is used to atomize liquid into water mist, the water circuit component is used to guide the liquid in the water holding chamber to the atomizing component, and the ozone generator 100 is disposed in the water circuit component to electrolyze at least a portion of the liquid.

[0087] Since the humidification equipment includes the ozone generator 100 mentioned above, by setting a partition 112 in the cavity 111, the partition 112 can separate the cavity 111 and form a liquid channel 113. The liquid can flow along the liquid channel 113 in the cavity 111, which is beneficial to extend the flow path of the liquid in the cavity 111 and to improve the turbulence effect of the liquid, thereby improving the mixing effect of ozone and liquid, increasing the concentration of ozone in the liquid, and thus improving the sterilization and disinfection effect of the liquid. By setting the liquid inlet 114 below the liquid outlet 115, it is beneficial to make the liquid evenly distributed in the cavity 111, thereby improving the electrolysis effect of the ozone generator 100. At the same time, as the liquid flows from bottom to top, it can fully contact the electrolysis module 120, thereby fully exchanging heat with the electrolysis module 120, reducing the risk of overheating of the electrolysis module 120, and thus improving the service life of the ozone generator 100.

[0088] In some embodiments of this utility model, the atomizing component includes a wet curtain and a fan, the water circuit component is used to guide the liquid to the wet curtain, and the fan is used to control the airflow through the wet curtain.

[0089] For example, when the humidifier is working, the water circuit assembly can guide the liquid in the water chamber to the wet curtain, the surface of the wet curtain absorbs moisture, and the fan drives the airflow through the wet curtain to accelerate the evaporation of moisture on the wet curtain, effectively improving the humidification efficiency of the humidification equipment.

[0090] In some embodiments of this utility model, the atomizing component includes a wet curtain and a fan. The humidification device adopts physical evaporation to improve the humidification efficiency and safety of the humidifier, making it particularly suitable for long-term operation, large spaces, and high-cleanliness application scenarios.

[0091] It is understood that in other embodiments, the atomizing component may also be an ultrasonic atomizing plate, an electric heating component, or other structures, as long as the atomizing component can atomize the liquid.

[0092] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present 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.

[0093] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. An ozone generating device, characterized by comprising: include: The housing has a cavity, and a partition is provided in the cavity. The partition is used to separate the cavity and form a liquid channel for liquid flow. The housing has an inlet and an outlet at both ends of the flow path of the liquid channel, and the inlet and outlet are staggered. An electrolysis module is disposed within the liquid channel and is used to electrolyze the liquid to generate ozone.

2. The ozone generating device according to claim 1, wherein The liquid inlet is positioned parallel to the liquid outlet. And / or, the liquid inlet is arranged parallel to the partition; And / or, the liquid outlet is arranged parallel to the partition.

3. The ozone generating device according to claim 1, wherein The housing is provided with a plurality of partitions, which are arranged at intervals in the vertical direction within the cavity and divide the cavity into multiple flow sections arranged in the vertical direction. The flow sections on both sides of any one of the partitions are interconnected.

4. The ozone generating device according to claim 3, wherein The two partitions arranged adjacent to each other in the vertical direction are respectively provided on the first sidewall and the second sidewall opposite to each other in the first direction of the shell; The partitions on the first sidewall and the second sidewall are spaced apart in the first direction; the partitions on the second sidewall and the first sidewall are spaced apart in the first direction.

5. The ozone generating device according to claim 4, wherein The liquid inlet is located on one of the first sidewall and the second sidewall; The liquid outlet is located on one of the first sidewall and the second sidewall.

6. The ozone generating device according to claim 3, wherein The multiple flow segments mentioned above include: A liquid inlet section, which is connected to the liquid inlet port; A liquid outlet section, which is connected to the liquid outlet; At least one transition section, said transition section connecting the inlet section and the outlet section; wherein... The electrolysis module is located in the liquid outlet section and / or the transition section.

7. The ozone generating device according to claim 6, wherein The electrolysis module is located within the liquid outlet section, and the electrolysis module includes: A cathode plate and an anode plate are provided, wherein the cathode plate and the anode plate are disposed opposite to each other, and the anode plate is disposed on the side of the cathode plate near the liquid outlet. An electrolyte membrane is sandwiched between the cathode plate and the anode plate.

8. The ozone generating device according to claim 7, wherein The electrolysis module is disposed on the partition plate and is arranged perpendicular to the partition plate.

9. The ozone generating device according to claim 7, wherein The anode plate has an opening that extends through the anode plate along its thickness direction.

10. A humidification apparatus, characterized by, include: Atomizing component for atomizing liquid into water mist; A water circuit assembly and a water-holding chamber, wherein the water circuit assembly is used to guide the liquid in the water-holding chamber to the atomizing assembly; An ozone generator, wherein the ozone generator is an ozone generator according to any one of claims 1-9, the ozone generator being disposed in the water circuit assembly to electrolyze at least a portion of the liquid.

11. The humidification apparatus of claim 10, wherein, The atomizing component includes: A wet curtain, wherein the water channel assembly is used to guide the liquid to the wet curtain; A fan is used to control the airflow through the wet curtain.