Electrolysis deoxygenization and dehumidification device and equipment with electrolysis deoxygenization and dehumidification device
By using high-frequency atomizers and moisture absorbing components in electrolytic dehumidification devices to remove liquid water, the problems of increasing humidity and heat generation are solved, ensuring the normal operation of the equipment and prolonging life.
Patent Information
- Application Number
- CN202422409968.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-09-30
AI Technical Summary
The water vapor generated by existing electrolytic deoxygenators during the deoxygenation process leads to an increase in humidity, which may lead to condensation water, affecting the normal operation of the equipment, and traditional dehumidification schemes will generate heat to affect the life of the equipment.
High-frequency atomizers are used to shock the liquid water absorbed by the absorbent member into aerosol and export it. Combined with the fan, the airflow is accelerated to avoid heat generation, and the liquid water is removed by setting up an additional absorbent component.
Effectively remove liquid water produced by electrolytic oxygen, avoid heat affecting the operation of the equipment, extend the service life of the equipment, and improve the practicality of the dehumidification device.
Smart Images

Figure CN223263635U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of dehumidification devices, and in particular relates to an electrolytic deoxidation and dehumidification device and equipment with the electrolytic deoxidation and dehumidification device. Background Art
[0002] The electrolytic deoxidizer is installed on the equipment and includes a housing and an electrolytic assembly mounted within the housing. The housing has an air inlet, an air outlet, and a connecting hole connecting to the interior of the equipment. The electrolytic assembly includes an anode plate, an electrolyte membrane, and a cathode plate. During the electrolytic deoxidation process, voltage is applied to the built-in power module. On the anode side, external air flows in through the air inlet and is ionized at the anode to produce oxygen, hydrogen protons, and electrons. Oxygen flows from the air outlet into the outside air, while hydrogen protons pass through the electrolyte membrane, and electrons travel through the circuit to the cathode. On the cathode side, oxygen within the equipment reaches the cathode through the connecting hole. At this point, the oxygen, hydrogen protons, and electrons recombine to form water vapor, thereby achieving the purpose of electrolytic deoxidation. However, during the deoxidation process, the increase in water vapor will cause the humidity inside the electrolytic deoxidizer to increase. If the humidity is too high, condensation may occur, which can affect the normal operation of the equipment.
[0003] To avoid this, current dehumidification solutions using semiconductor refrigeration chips and heating dehumidification are commonly used to control humidity. However, these traditional dehumidification solutions generate heat during the dehumidification process, and some equipment (such as refrigerators) generates heat during the dehumidification process, which can affect the normal operation of the equipment and shorten its service life. Therefore, the practicality of electrolytic deoxidizers is poor. Utility Model Content
[0004] In order to solve the deficiencies of the prior art, the utility model provides an electrolytic deoxidation and dehumidification device and equipment having the electrolytic deoxidation and dehumidification device.
[0005] The technical effects to be achieved by the present invention are achieved through the following technical aspects:
[0006] In a first aspect, the present invention provides an electrolytic deoxidation and dehumidification device, comprising:
[0007] The shell is respectively provided with an air inlet, an air outlet and a communication port;
[0008] an electrolytic assembly, disposed in the housing and corresponding to the air inlet, the air outlet, and the communication port;
[0009] The desiccant component is arranged in the shell and includes a high-frequency atomizer and a desiccant component for absorbing the liquid water generated by the electrolytic component. The high-frequency atomizer is connected to the desiccant component, and the high-frequency atomizer is arranged corresponding to the air outlet so that the high-frequency atomizer can vibrate the liquid water absorbed by the desiccant component into aerosol and discharge it along the air outlet.
[0010] In some embodiments, the desiccant component further includes a water barrier, which is disposed on the desiccant component and has a perforation, through which the high-frequency atomization component is connected to the desiccant component.
[0011] In some embodiments, the moisture absorbing component further includes a water delivery component, one end of which passes through the through hole and is connected to the moisture absorbing component, and the other end of which is connected to the high-frequency atomization component.
[0012] In some embodiments, a fan is disposed in the housing, and the fan is disposed between the air inlet and the air outlet.
[0013] In some embodiments, the housing is provided with a breathable valve for balancing the pressure difference between the inside and outside of the device.
[0014] In some embodiments, a moisture absorption port for communicating with the interior of the device is opened on the shell, and the moisture absorption member covers the moisture absorption port.
[0015] In some embodiments, an inner seal is provided between the electrolytic assembly and the housing.
[0016] In some embodiments, the housing is provided with an outer seal for sealing with the device, and the outer seal is provided around the outer side of the communication port.
[0017] In some embodiments, the electrolytic assembly includes an anode plate, an electrolyte membrane, and a cathode plate connected in sequence, the anode plate is arranged close to the air inlet, and the electrolytic assembly is insulated from the shell.
[0018] In some embodiments, the operating frequency of the high-frequency atomizer is set to be greater than 20 kHz.
[0019] In a second aspect, the present invention provides a device having an electrolytic deoxidation and dehumidification device, including the electrolytic deoxidation and dehumidification device described in any one of the above embodiments.
[0020] In summary, the present invention has at least the following advantages:
[0021] The electrolytic deoxidation and dehumidification device provided by the present invention can absorb the liquid water generated by the electrolytic component and transfer it to the high-frequency atomization component through the hygroscopic component in the hygroscopic component, and the high-frequency atomization component can guide the liquid water out of the air outlet, and the hygroscopic component and the high-frequency atomization component do not generate heat during operation. In this way, compared with the semiconductor refrigeration plate and heating dehumidification solutions, the solution of the present application is provided with an independent hygroscopic component. During the dehumidification process, it can not only ensure the removal of liquid water generated by electrolytic deoxidation, but also avoid the heat generated by dehumidification affecting the normal operation of the equipment, thereby ensuring the service life of the equipment. This makes the electrolytic deoxidation and dehumidification device more practical. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 This is a schematic diagram of the overall structure of the electrolytic deoxidation and dehumidification device according to an embodiment of the present application;
[0023] Figure 2 This is a schematic diagram of the overall cross-sectional structure of the electrolytic deoxidation and dehumidification device according to an embodiment of the present application;
[0024] Figure 3 This is a schematic diagram of the exploded structure of an electrolytic deoxidation and dehumidification device according to an embodiment of the present application;
[0025] Figure 4 This is a schematic diagram of the exploded structure of the electrolytic deoxidation and dehumidification device according to an embodiment of the present application in another direction;
[0026] Figure 5 This is a partial cross-sectional structural diagram of an electrolytic deoxidation and dehumidification device according to an embodiment of the present application;
[0027] Figure 6 This is a schematic structural diagram of the electrolytic deoxidation and dehumidification device of an embodiment of the present application with the upper cover removed;
[0028] Figure 7 for Figure 6 A local enlarged schematic diagram of point A;
[0029] Figure 8 This is a schematic structural diagram of the electrolytic deoxidation and dehumidification device of an embodiment of the present application after the bottom plate is removed.
[0030] Markings in the figure:
[0031] 10. Electrolytic deoxidation and dehumidification device; 100. Shell; 110. Upper cover; 111. Air inlet; 112. Air outlet; 120. Bottom plate; 121. Communication port; 122. External sealing member; 123. Moisture absorption port; 200. Electrolytic component; 210. Anode plate; 220. Electrolyte membrane; 230. Cathode plate; 300. Moisture absorption component; 310. High-frequency atomization member; 320. Water supply member; 330. Water barrier member; 340. Moisture absorption member; 400. Fan; 500. Breathing valve; 510. Valve body; 520. Elastic member; 530. Valve cover; 600. Inner sealing member; 700. Pressing member. DETAILED DESCRIPTION
[0032] To make the purpose, technical solutions and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. The described embodiments are only part of the embodiments of the present invention, not all of the embodiments.
[0033] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but rather merely represents selected embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by a person of ordinary skill in the art without creative effort are within the scope of protection of the present invention.
[0034] In the following embodiments and drawings, reference is made to Figures 1 to 4 The coordinate system is such that the direction indicated by the arrow of the X-axis is right, the direction indicated by the arrow of the Y-axis is forward, and the direction indicated by the arrow of the Z-axis is upward.
[0035] Example 1:
[0036] like Figures 1 to 4 As shown, this embodiment provides an electrolytic deoxidation and dehumidification device 10, including: a shell 100, which is respectively provided with an air inlet 111, an air outlet 112 and a connecting port 121; an electrolysis component 200, which is arranged in the shell 100 and corresponds to the air inlet 111, the air outlet 112 and the connecting port 121; a desiccant component 300, which is arranged in the shell 100, including a high-frequency atomizer 310 and a desiccant component 340 for absorbing liquid water generated by the electrolysis component 200, the high-frequency atomizer 310 is connected to the desiccant component 340, and the high-frequency atomizer 310 is arranged corresponding to the air outlet 112, so that the high-frequency atomizer 310 oscillates the liquid water absorbed by the desiccant component 340 into aerosol and discharges it along the air outlet 112.
[0037] Specifically, the housing 100 includes an upper cover 110 and a bottom plate 120. The upper cover 110 and the bottom plate 120 are optionally but not limited to being snap-fitted together, and the two are sealed. Figure 2 and Figure 4 The inner surface of the upper cover 110 can protrude downward and be provided with an electrolysis limiting ring and a moisture absorption limiting part. The electrolysis limiting ring is used to position and install the electrolysis component 200, and the moisture absorption limiting part is used to position and install the moisture absorption component 300. Of course, the electrolysis component 200 and the moisture absorption component 300 can also be limited by other structures, which are not limited here; the air inlet 111 is provided on the right side of the upper cover 110, and the air outlet 112 is provided on the left side of the upper cover 110. The air inlet 111 and the air outlet 112 are arranged opposite to each other. The shape of the air inlet 111 and the shape of the air outlet 112 can be selected but not limited to a strip shape, and the number of the air inlet 111 and the air outlet 112 can be selected but not limited to two; the connecting port 121 is provided on the bottom plate 120, and the number of the connecting ports 121 can be selected but not limited to nine; during installation, the bottom plate 120 is connected to the equipment to introduce the oxygen inside the equipment into the shell 100 through the connecting port 121. The anode side of the electrolytic component 200 is arranged near the upper air inlet 111 and the air outlet 112, and the cathode side of the electrolytic component 200 is arranged near the lower connecting hole. The hygroscopic component 340 is used to absorb the liquid water generated by the electrolytic component 200 on the cathode side. The hygroscopic component 340 can be selected but not limited to a hygroscopic sheet. The shape of the hygroscopic component 340 can be selected but not limited to a concave shape, and the material of the hygroscopic sheet can be set to fiber or other water-absorbing materials, which are not limited here; the high-frequency atomizing component 310 can use high-frequency vibration to atomize liquid water into small molecular aerosol, so as to guide the liquid water absorbed by the hygroscopic component 340 from the air outlet 112 to the outside world, and part of the aerosol atomized by the high-frequency atomizing component 310 can also overflow to the anode side of the electrolytic component 200. At this time, the aerosol The water molecules in the electrolyte can be decomposed into hydrogen ions and oxygen by the anode side of the electrolysis component 200, thereby effectively promoting the electrolysis cycle; it is understandable that the high-frequency atomizer 310 can be selected from but not limited to a mesh atomizer and a compression atomizer, wherein the size of the high-frequency atomizer 310 can be selected from but not limited to 2 cm, and the operating frequency of the high-frequency atomizer 310 is greater than 20 kHz. For example, the operating frequency of the high-frequency atomizer 310 is 1.7 MHz, that is, the high-frequency atomizer 310 can be set as an ultrasonic atomizer to atomize liquid water into small molecular aerosols through ultrasonic waves. Among them, the specific matching method of the shell 100, the electrolysis component 200 and the moisture absorption component 300 shall be based on the actual production requirements and is not limited here. It only needs to ensure that the corresponding deoxygenation and dehumidification functions can be completed.
[0038] It is worth noting that the hygroscopic component 340 in the hygroscopic assembly 300 can absorb the liquid water generated by the electrolytic assembly 200 and transfer it to the high-frequency atomizer 310, and the high-frequency atomizer 310 can guide the liquid water out of the air outlet 112, and the hygroscopic component 340 and the high-frequency atomizer 310 do not generate heat during operation. In this way, compared with the semiconductor refrigeration plate and heating dehumidification solutions, the solution of the present application is provided with an independent hygroscopic component 300. During the dehumidification process, it can not only ensure the removal of liquid water generated during electrolytic deoxidation, but also avoid the heat generated by dehumidification affecting the normal operation of the equipment, thereby ensuring the service life of the equipment. This makes the electrolytic deoxidation and dehumidification device 10 more practical.
[0039] Example 2
[0040] This embodiment is a further implementation of embodiment 1. Figures 3 and 4 As shown, in this embodiment, the desiccant assembly 300 further includes a water barrier 330 , which is disposed on the desiccant member 340 , and the water barrier 330 is provided with a perforation, through which the high-frequency atomization member 310 is connected to the desiccant member 340 .
[0041] Specifically, the electrolytic assembly 200 is positioned on the left side of the upper cover 110, and the moisture-absorbing assembly 300 is positioned on the right side of the upper cover 110. The left end of the moisture-absorbing member 340 is positioned near the electrolytic assembly 200 to absorb liquid water generated by the electrolytic assembly 200. The water-blocking member 330 completely covers the moisture-absorbing member 340 to prevent it from absorbing additional water molecules. It should be understood that the specific coordination between the moisture-blocking member 330 and the moisture-absorbing member 340 will depend on actual production requirements and is not limited here; it only needs to ensure that the moisture-absorbing member 340 does not absorb additional water molecules.
[0042] In order to facilitate the water supply of the moisture absorbing member 340 and the high-frequency atomizing member 310, as shown in FIG. Figure 3 and Figure 4 As shown, in some embodiments, the moisture absorption component 300 further includes a water delivery component 320 , one end of the water delivery component 320 is connected to the moisture absorption component 340 through the through hole, and the other end is connected to the high-frequency atomization component 310 .
[0043] Specifically, the water delivery member 320 may be, but is not limited to, a cotton swab. The bottom end of the water delivery member 320 passes through the perforation and abuts against the moisture absorbing member 340 , and the top end of the water delivery member 320 is connected to the high-frequency atomizing member 310 , thereby enabling the water in the moisture absorbing member 340 to be transferred to the high-frequency atomizing member 310 .
[0044] In order to speed up the working efficiency of the electrolytic deoxidation and dehumidification device 10, Figures 2 to 4 As shown, in some embodiments, a fan 400 is disposed in the housing 100 , and the fan 400 is disposed between the air inlet 111 and the air outlet 112 .
[0045] Specifically, the fan 400 is provided between the upper cover 110 and the anode side of the electrolysis component 200 to blow the air blown into the air inlet 111 on the left side to the anode side of the electrolysis component 200 for electrolysis, and can also blow the aerosol on the left side to the air outlet 112. This effectively speeds up the working efficiency of the electrolytic deoxidation and dehumidification device 10. Among them, the specific position of the fan 400 is not limited here, it only needs to ensure that the air from the air inlet 111 can be blown onto the electrolysis component 200 and the aerosol atomized by the high-frequency atomization element 310 can be blown to the air outlet 112.
[0046] In order to ensure the internal pressure balance of the electrolytic deoxidation and dehumidification device 10, Figures 4 to 8 As shown, in some embodiments, the housing 100 is provided with a breathable valve 500 for balancing the pressure difference between the inside and outside of the device.
[0047] Specifically, a ventilation hole is opened on the bottom plate 120, and the ventilation hole is sealed with the ventilation valve 500 to balance the internal and external pressure difference when there is a pressure difference between the air pressure in the device cavity and the external air pressure.
[0048] In order to facilitate the installation of the breathable valve 500, as Figure 5 As shown, in some embodiments, the air valve 500 includes a valve body 510, an elastic member 520 and a valve cover 530, one end of the valve body 510 is clamped to the outer surface of the shell 100, and the other end of the valve body 510 is connected to the valve cover 530 through the air hole, and the elastic member 520 is arranged between the valve cover 530 and the inner surface of the shell 100, so that one end of the valve body 510 blocks the air hole under the action of the elastic member 520.
[0049] Specifically, the cross-street area of the bottom end of the valve body 510 is larger than the cross-sectional area of the top end. The shape of the valve body 510 may be, but is not limited to, an inverted T-shape. The top end of the valve body 510 passes through the air vent and the elastic member 520 in sequence and is connected to the valve cover 530. The top end of the valve body 510 and the valve cover 530 may be, but are not limited to, snap-fitted. The elastic member 520 may be, but is not limited to, a spring. The elastic member 520 supports the inner surface of the bottom plate 120, so that the bottom end of the valve body 510 can continuously close the air vent. When the air pressure inside the cavity is lower than the external air pressure, the valve cover 530 presses down the elastic member 520, and the bottom end of the valve body 510 moves away from and opens the air vent, so that the equipment cavity can exchange airflow with the external air entering from the air inlet 111 to achieve a balance of the internal and external pressure differences.
[0050] In order to facilitate the installation of the valve body 510, as shown in FIG. Figure 5 As shown, in some embodiments, a groove for positioning and installing one end of the valve body 510 is opened on the bottom plate 120, and the groove and the air vent are connected to each other.
[0051] Specifically, a groove is provided at the bottom end of the air vent, and the shape of the groove matches the shape of the bottom end of the valve body 510 , so that the bottom end of the valve body 510 can be accommodated, thereby preventing the valve body 510 from being hit.
[0052] In order to ensure the service life of the valve body 510, Figure 4 and Figure 5 As shown, in some embodiments, a buffer is provided between one end of the valve body 510 and the outer surface of the housing 100 .
[0053] Specifically, the buffer member may be, but is not limited to, a gasket, which is sleeved on the upper surface of the bottom end of the valve body 510 to prevent the bottom end of the valve body 510 from making hard contact with the outer surface of the bottom plate 120, thereby extending the service life of the air valve 500.
[0054] In order to remove excess moisture in the equipment, such as Figure 3 and Figure 4 As shown, in some embodiments, a moisture absorption port 123 for communicating with the interior of the device is opened on the housing 100 , and the moisture absorption member 340 covers the moisture absorption port 123 .
[0055] Specifically, a moisture absorption opening 123 is defined on the right side of the bottom plate 120. The number of moisture absorption openings 123 is optional but not limited to two. The shape of the moisture absorption openings 123 corresponds to the shape of the moisture absorption member 340. For example, if the moisture absorption member 340 is concave, one moisture absorption opening 123 can be concave, while the other moisture absorption opening 123 can be strip-shaped. Furthermore, each moisture absorption opening 123 is always within the range of the moisture absorption member 340, that is, the moisture absorption opening 123 is always blocked by the moisture absorption member 340. This facilitates the moisture absorption member 340 to absorb excess moisture within the device. Furthermore, if moisture on the cathode side of the electrolytic assembly 200 overflows into the device, it can be promptly absorbed by the moisture absorption member 340.
[0056] To facilitate sealing and insulating the electrolytic assembly 200, as Figure 3 and Figure 4 As shown, in some embodiments, an inner seal 600 is provided between the electrolytic assembly 200 and the housing 100 .
[0057] Specifically, an inner seal 600 is provided on both the upper and lower surfaces of the electrolytic assembly 200. The inner seal 600 may be, but is not limited to, a gasket, and the material of the gasket may be, but is not limited to, silicone. Thus, the inner seal 600 not only seals the electrolytic assembly 200 but also serves as a buffer and insulation.
[0058] In order to facilitate the installation of the electrolytic deoxidation and dehumidification device 10 and the equipment, Figure 3 and Figure 4As shown, in some embodiments, the housing 100 is provided with an outer seal 122 for sealing with the device, and the outer seal 122 is provided around the outer side of the communication port 121 .
[0059] Specifically, an outer seal 122 is disposed on the outer surface of the base plate 120, i.e., the lower surface. The outer seal 122 may be, but is not limited to, a sealing ring. A sealing groove is defined at the bottom of the base plate 120, and the sealing ring is secured within the groove. The outer seal 122 is used to seal the electrolytic deoxidizing and dehumidifying device 10 from the device's mounting surface. A communication port 121 is located at the center of the sealing groove to ensure airtightness while ensuring airflow exchange between the device cavity and the interior of the housing 100.
[0060] In order to facilitate the electrolytic deoxidation of the electrolytic assembly 200, as Figure 3 and Figure 4 As shown, in some embodiments, the electrolytic assembly 200 includes an anode plate 210 , an electrolyte membrane 220 , and a cathode plate 230 connected in sequence. The anode plate 210 is disposed near the air inlet 111 , and the electrolytic assembly 200 is insulated from the housing 100 .
[0061] Specifically, the anode plate 210 is located on the upper side, near the air inlet 111 and the air outlet 112, and is connected to the positive electrode of the power supply. The cathode plate 230 is located on the lower side, near the connecting port 121, and is electrically connected to the negative electrode of the power supply. The electrolyte membrane 220 is composed of PTFE (polytetrafluoroethylene), carbon paper, a proton exchange membrane, a metal mesh, and a catalyst. It has a front and back side: the catalyst side is the front side, which is the wet side, and the carbon paper side is the back side, which is the moisture-removing side. When a DC voltage is applied to the cathode plate 230 and the anode plate 210, moisture on the anode side is decomposed into hydrogen ions and oxygen. The hydrogen ions are liberated through the electrolyte membrane 220 and travel to the cathode side. There, the hydrogen ions react with oxygen in the device cavity to form water molecules.
[0062] In order to facilitate the fixing of the electrolytic assembly 200, as Figure 3 and Figure 4 As shown, in some embodiments, a compression member 700 is provided between the anode side of the electrolysis assembly 200 and the housing 100 .
[0063] Specifically, the pressing member 700 may be, but is not limited to, a frame-shaped pressing plate. The pressing member 700 compresses and secures the electrolytic assembly 200 to the housing 100, thereby increasing the tightness between the electrode sheet and the electrolyte membrane 220, reducing impedance, and improving the reliability of the detachable connection structure. The pressing member 700 is positioned above the anode sheet 210, between the inner seal 600 and the fan 400.
[0064] In the above embodiments, the devices are all configured to have an electrolytic deoxidation and dehumidification device 10 , and the devices having the electrolytic deoxidation and dehumidification device 10 may be, but are not limited to, refrigerators.
[0065] Example 3
[0066] This embodiment is similar to embodiment 2, except that the hygroscopic member 340 can be configured to have a thinner end and a wider end, with the thinner end being positioned closer to the high-frequency atomizing member 310 to prevent the hygroscopic member 340 from absorbing additional moisture from the outside air.
[0067] Example 4
[0068] An apparatus having an electrolytic deoxidation and dehumidification device is provided, comprising the electrolytic deoxidation and dehumidification device 10 of embodiment 1, 2 or 3.
[0069] Specifically, the bottom plate 120 is sealed and installed with the device. The hydrogen ions on the cathode plate 230 side react with the oxygen in the device cavity to generate water vapor which is absorbed by the hygroscopic component 340. The hygroscopic component 340 absorbs a certain amount of water vapor to form liquid water. The liquid water is transferred to the high-frequency atomization component 310 through the water delivery component 320. The energy of the ultrasonic wave is used to atomize the liquid into a small molecule mist, and the mist on the anode plate 210 side can be decomposed into hydrogen ions for use in the reaction on the cathode plate 230 side, forming a cyclic reaction.
[0070] In this utility model, unless otherwise specified or limited, the terms "installed," "connected," "connect," "fixed," etc. should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection, electrical connection; direct connection, indirect connection through an intermediate medium, internal communication between two components, or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on specific circumstances.
[0071] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer" and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, or are the orientations or positional relationships in which the utility model product is typically placed when in use. These terms are intended solely to facilitate the description of this utility model and to simplify the description, and are not intended to indicate or imply that the device or component referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first," "second," and "third," etc., are used solely to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0072] Furthermore, terms such as "horizontal," "vertical," and "overhanging" do not necessarily imply that a component must be absolutely horizontal or overhanging, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," and does not mean that the structure must be completely horizontal, but rather that it can be slightly tilted.
[0073] In the present invention, unless otherwise expressly specified or limited, the phrase "above or below a second feature" may include the first and second features directly abutting against each other, or may include the first and second features not abutting against each other directly but abutting against each other via another feature between them. Furthermore, the phrase "above, above, and above a second feature" may include the phrase "the first feature is directly above and obliquely above the second feature" or simply means that the first feature is higher in level than the second feature. The phrase "below, below, and below a second feature" may include the phrase "the first feature is directly below and obliquely below the second feature" or simply means that the first feature is lower in level than the second feature.
[0074] Although the present invention has been described with reference to the above specific embodiments, it is obvious that those skilled in the art can make many substitutions, modifications and variations based on the above content. Therefore, all such substitutions, modifications and variations are included within the spirit and scope of the appended claims.
Claims
1. An electrolytic deoxidation and dehumidification device, characterized in that: include: The housing (100) is provided with an air inlet (111), an air outlet (112) and a communication port (121); An electrolytic assembly (200) is disposed in the housing (100) and is arranged corresponding to the air inlet (111), the air outlet (112), and the communication port (121); The desiccant component (300) is arranged in the housing (100), and includes a high-frequency atomizer (310) and a desiccant component (340) for absorbing liquid water generated by the electrolytic component (200). The high-frequency atomizer (310) is connected to the desiccant component (340), and the high-frequency atomizer (310) is arranged corresponding to the air outlet (112), so that the high-frequency atomizer (310) oscillates the liquid water absorbed by the desiccant component (340) into aerosol and discharges it along the air outlet (112).
2. The electrolytic deoxidation and dehumidification device according to claim 1, characterized in that: The moisture absorbing component (300) further includes a water barrier (330), which is arranged on the moisture absorbing component (340), and the water barrier (330) is provided with a through-hole, and the high-frequency atomizing component (310) is connected to the moisture absorbing component (340) through the through-hole.
3. The electrolytic deoxidation and dehumidification device according to claim 2, characterized in that: The moisture absorption component (300) further comprises a water delivery component (320), one end of the water delivery component (320) passes through the through hole and is connected to the moisture absorption component (340), and the other end is connected to the high-frequency atomization component (310).
4. The electrolytic deoxidation and dehumidification device according to any one of claims 1 to 3, characterized in that: A fan (400) is provided in the housing (100), and the fan (400) is provided between the air inlet (111) and the air outlet (112).
5. The electrolytic deoxidation and dehumidification device according to any one of claims 1 to 3, characterized in that: The housing (100) is provided with a breathable valve (500) for balancing the pressure difference between the inside and outside of the equipment.
6. The electrolytic deoxidation and dehumidification device according to any one of claims 1 to 3, characterized in that: The housing (100) is provided with a moisture absorption port (123) for communicating with the interior of the device, and the moisture absorption member (340) covers the moisture absorption port (123).
7. The electrolytic deoxidation and dehumidification device according to any one of claims 1 to 3, characterized in that: An inner seal (600) is provided between the electrolytic assembly (200) and the housing (100).
8. The electrolytic deoxidation and dehumidification device according to any one of claims 1 to 3, characterized in that: The housing (100) is provided with an outer sealing member (122) for sealingly mounting with the device, and the outer sealing member (122) is arranged around the outer side of the communication port (121).
9. The electrolytic deoxidation and dehumidification device according to any one of claims 1 to 3, characterized in that: The electrolytic assembly (200) comprises an anode plate (210), an electrolyte membrane (220), and a cathode plate (230) connected in sequence, the anode plate (210) being arranged close to the air inlet (111), and the electrolytic assembly (200) and the housing (100) being insulated.
10. The electrolytic deoxidation and dehumidification device according to any one of claims 1 to 3, characterized in that: The operating frequency of the high-frequency atomizing element (310) is set to be greater than 20 kHz.
11. An apparatus having an electrolytic deoxidation and dehumidification device, characterized in that: It comprises the electrolytic deoxidation and dehumidification device (10) according to any one of claims 1 to 10.