Small molecular group water generating device

By using a magnetic field to cut water molecules in a small molecule water generator and using small molecule water to strengthen materials in the filter element, the problem of insufficient water generation rate and content of small molecule water in the prior art is solved, and more efficient water generation of small molecule water is achieved.

CN222989868UActive Publication Date: 2025-06-17VATTI CORP LTD
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Patent Information

Application Number
CN202421583584.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-05
Publication Date
2025-06-17
Estimated Expiration
2034-07-05

AI Technical Summary

Technical Problem

The existing small molecule water generators have shortcomings in the content and generation rate of small molecule water. Especially under different water quality conditions, it is difficult to effectively increase the content and generation rate of small molecule water.

Method used

A small molecule water-generating device is designed, including a small molecule water generator and a filter element. A magnet is provided in the small molecule water generator to cut the water flow through a magnetic field, break the hydrogen bond between the water molecules, and generate small molecule water. The filter element is equipped with multiple filter units, and the filter material includes a small molecular mass water-strengthening material, which can affect the dynamic equilibrium of hydrogen bonds in the water molecular mass and further improve the formation rate of small molecular mass water.

Benefits of technology

Through magnetic field cutting and small molecular mass water-strengthening material treatment in the filter element, the formation rate and content of small molecular mass water are significantly improved, adapting to different water quality conditions, and improving the water treatment effect.

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Abstract

The utility model provides a small molecular group water generating device which comprises a small molecular group water generator which comprises a base body and a magnet arranged on the base body, the base body is provided with a cavity, and the base body is provided with a base body water inlet and a mounting opening which are communicated with the cavity; the filter element is arranged in the cavity through the mounting opening, a water flow channel communicated with the water inlet of the base body is formed between the filter element and the base body, the filter element comprises a shell communicated with the water flow channel and a filter unit arranged in the shell, and a filter material of the filter unit comprises a small molecular group water strengthening material. The small molecular group water generating device disclosed by the utility model can improve the generating rate of the small molecular group water.
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Description

Technical Field

[0001] The utility model relates to the technical field of water treatment equipment, and particularly relates to a small-molecule cluster water generating device. Background Art

[0002] The residual chlorine smell for sterilization in ordinary municipal tap water, the rust smell caused by the oxidation of transmission pipelines and other pungent smells affect the water use experience. With the continuous improvement of people's requirements for the quality of life, consumers are no longer satisfied with the ordinary municipal tap water with shallow treatment. The small-molecule cluster water generator can form small-molecule cluster water, which has high penetration power, high diffusion power, high solubility, high oxygen content and weak alkalinity. Ordinary small-molecule cluster water generators can produce small-molecule cluster water with a content of about 5% - 10%. Different water qualities will also affect the generation of small-molecule cluster water. Therefore, it is particularly important to improve the generation rate of small-molecule cluster water and increase the content of small-molecule cluster water. Summary of the Utility Model

[0003] The embodiment of the utility model provides a small-molecule cluster water generating device to solve at least some of the above technical problems existing in the prior art.

[0004] On the one hand, the embodiment of the utility model provides a small-molecule cluster water generating device, including:

[0005] A small-molecule cluster water generator, including a base body and a magnet arranged on the base body. The base body has a chamber, and the base body is provided with a base body water inlet and an installation port communicating with the chamber;

[0006] A filter element is arranged in the chamber through the installation port. A water flow channel communicating with the base body water inlet is formed between the filter element and the base body. The filter element includes a shell communicating with the water flow channel and a filtering unit arranged in the shell. The filter material of the filtering unit includes a small-molecule cluster water strengthening material.

[0007] In an optional embodiment, the shell has a filter cavity. The first end of the shell has a water inlet, and the second end has a water outlet. The water inlet is communicated with the water flow channel, and the first end is far away from the base body water inlet along the length direction of the shell.

[0008] In an optional embodiment, there are multiple filtering units. The filter material of at least one filtering unit includes a small-molecule cluster water strengthening material. The multiple filtering units are sequentially arranged in the filter cavity along the direction from the water inlet to the water outlet. An elastic support assembly is arranged between adjacent two filtering units.

[0009] In an optional embodiment, the elastic support assembly includes a spring, and the spring applies pressure to the filtering units located at both ends thereof.

[0010] In an alternative embodiment, the elastic support assembly further includes a support plate, on which a plurality of third through holes are arranged, and the first end of the spring is provided with the support plate.

[0011] In an alternative embodiment, the end of the spring is flattened to form a plane.

[0012] In an alternative embodiment, the outer diameters of both ends of the spring are larger than the outer diameter of the middle part.

[0013] In an alternative embodiment, on the side surface of the first end of the housing, a plurality of first through holes communicating with the filter cavity are circumferentially provided, and the first through holes form the water inlet;

[0014] On the end surface of the second end of the housing, a plurality of second through holes communicating with the filter cavity are provided, and the second through holes form the water outlet.

[0015] In an alternative embodiment, the filtering unit includes:

[0016] A coating layer, on which filter holes are distributed, and a coating space is formed inside the coating layer;

[0017] Filter media, arranged in the coating space;

[0018] The filter media of each filtering unit are the same or different.

[0019] In an alternative embodiment, the filter media further includes at least one of an adsorption material, a scale inhibitor material, an antibacterial material, and a mineralization material.

[0020] In an alternative embodiment, the small molecule cluster water strengthening material includes at least one of a far-infrared ball, a hydrogen-rich ball, and a magnetic energy ball; the filtering unit containing the small molecule cluster water strengthening material is arranged close to the water outlet.

[0021] One embodiment of the present utility model has the following advantages or beneficial effects:

[0022] The small molecule cluster water generating device of the embodiment of the present utility model includes a small molecule cluster water generator and a filter element arranged inside the small molecule generator. The filter element includes a housing and a plurality of filtering units arranged inside the housing. The filter media of at least one filtering unit is a small molecule cluster water strengthening material. The small molecule cluster water strengthening material can affect the dynamic balance of hydrogen bond breakage - connection in the water molecule cluster and reduce the surface tension of water molecules. Thus, when the magnetic field magnetic force lines generated by the small molecule cluster water generator cut the water flow water molecules, the hydrogen bonds between water molecules in the larger water molecule cluster are more likely to break, thereby generating small molecule cluster water and increasing the small molecule cluster water generation rate. Description of the Drawings

[0023] By referring to the accompanying drawings and describing its exemplary embodiments in detail, the above and other features and advantages of the present utility model will become more apparent.

[0024] Figure 1 is a schematic structural diagram of a small cluster water generating device shown according to an exemplary embodiment;

[0025] Figure 2 is a schematic cross-sectional structural diagram of a small cluster water generating device shown according to an exemplary embodiment;

[0026] Figure 3 is a schematic structural diagram of a filter element shown according to an exemplary embodiment;

[0027] Figure 4 is a schematic cross-sectional structural diagram of a filter element shown according to an exemplary embodiment;

[0028] Figure 5 is a schematic exploded structural diagram of a filter element shown according to an exemplary embodiment;

[0029] Figure 6 is a schematic structural diagram of an elastic support assembly in a filter element shown according to an exemplary embodiment Figure 1 ;

[0030] Figure 7 is a schematic structural diagram of an elastic support assembly in a filter element shown according to an exemplary embodiment Figure 2 ;

[0031] Figure 8 is a schematic structural diagram of a filtering unit in a filter element shown according to an exemplary embodiment.

[0032] Among them, the reference numerals are explained as follows: 100 - filter element, 1 - housing, 11 - water inlet, 12 - water outlet, 13 - cylinder, 14 - end cap, 15 - first end, 16 - second end, 2 - filtering unit, 21 - coating layer, 22 - filter medium, 3 - elastic support assembly, 31 - spring, 32 - support plate, 321 - third through hole; 200 - small cluster water generator, 201 - base body, 2011 - base body water inlet, 2012 - mounting port, 202 - magnet, 400 - water flow channel. Detailed implementation manners

[0033] Now, exemplary embodiments will be described more fully with reference to the accompanying drawings. However, the exemplary embodiments can be implemented in various forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this utility model will be thorough and complete, and will fully convey the concept of the exemplary embodiments to those skilled in the art. Like reference numerals in the figures denote the same or similar structures, and thus their detailed descriptions will be omitted.

[0034] The terms "a", "an", "the", and "" are used to indicate the presence of one or more elements / components / etc.; the terms "comprising" and "having" are used to mean an open inclusion and refer to the possibility of the existence of additional elements / components / etc. in addition to the listed elements / components / etc.

[0035] See Figure 1 and Figure 2 , an embodiment of the present utility model provides a small-molecule cluster water generating device, including a small-molecule cluster water generator 200 and a filter element 100. The small-molecule cluster water generator 200 includes a base body 201 and a magnet 202 provided on the base body 201. The base body 202 has a chamber, and the base body 201 is provided with a base body water inlet 2011 and an installation port 2012 communicating with the chamber. When water flows through the small-molecule cluster generator 200, the water flow is perpendicular to the magnetic field generated by the magnet, and the magnetic field lines of force will cut the water molecules in the water flow, causing the hydrogen bonds between the water molecules to break, and the large-molecule cluster water to break into small-molecule cluster water. The filter element 100 is arranged in the chamber through the installation port 2012. A water flow channel 400 communicating with the base body water inlet 2011 is formed between the filter element 100 and the base body 201. The filter element 100 includes a housing 1 communicating with the water flow channel 400 and a filtering unit 2 arranged in the housing 1. The filter material of the filtering unit 2 includes a small-molecule cluster water strengthening material. The small-molecule cluster water strengthening material can affect the dynamic balance of the breakage-connection of hydrogen bonds in the water molecule cluster, so that when the water flow passes through the magnetic field generated by the small-molecule cluster water generator 200, the hydrogen bonds between the water molecules in the larger water molecule cluster are more likely to break, thereby generating small-molecule cluster water and increasing the small-molecule cluster water generation rate.

[0036] In addition, see Figure 2 , Figure 2 The arrow in indicates the water flow direction. A water flow channel 400 is formed between the filter element 100 and the base body 201. Water flows in from the water inlet 11 of the base body 201, passes through the water flow channel 400 and the filter element 100, and finally flows out from the water outlet 12 of the filter element 100. The water flow passes through the magnetic field generated by the magnet multiple times, and the magnetic field lines cut the water molecules in the water flow multiple times, further increasing the small-molecule cluster water generation rate.

[0037] In some embodiments, the water flow channel 400 may be an annular water flow channel provided between the filter element 100 and the base body 201, or may be water flow channels circumferentially and spaced apart along the outer edge of the filter element 100.

[0038] In some embodiments, see 3 to Figure 5, there is a filter cavity inside the housing 1. The first end 15 of the housing 1 has a water inlet 11, and the second end 16 has a water outlet 12. The water inlet 11 is communicated with the water flow channel 400. The first end 15 is far from the matrix water inlet 2011 along the length direction of the housing 1. The water body enters the water flow channel 400 from the matrix water inlet 2011, then flows along the water flow channel 400 in the direction from the second end 16 to the first end 15 of the housing 1, and flows into the filter cavity from the water inlet 11, then flows along the filter cavity in the direction from the first end 15 to the second end 16, and flows out from the water outlet 12. The water flow passes through the magnetic field generated by the magnet multiple times, and the magnetic force lines cut the water molecules of the water flow multiple times, further improving the generation rate of small molecule cluster water.

[0039] In some embodiments, referring to Figures 3 to 5 , there are multiple filtering units 2. The filter media of at least one filtering unit 2 includes small molecule cluster water strengthening materials. The multiple filtering units 2 are sequentially arranged in the filter cavity along the direction from the water inlet 11 to the water outlet 12. An elastic support assembly 3 is arranged between two adjacent filtering units 2. The water flow enters the filter cavity from the water inlet 11, and after passing through the filtration of the multiple filtering units 2 in sequence, flows out from the water outlet 12. The elastic support assembly 3 separates the adjacent filtering units 2 and applies force to the filtering unit 2 to keep the filter media 22 of the filtering unit 2 compact, avoiding the collapse of each filtering unit 2 due to reasons such as the loss of the filter media 22. It improves the problem that the collapse of the filtering unit 2 is not conducive to the overflow of beneficial components between the water body and the filter media 22. The elastic support assembly 3 separates the filtering units 2 relatively, so that each filtering unit processes the water flow in sequence.

[0040] In some embodiments, referring to Figure 6 , the elastic support assembly 3 may include a spring 31, and the spring 31 applies pressure to the filtering units 2 located at its two ends. The two ends of the spring 31 act on two adjacent filtering units 2 respectively. By applying pressure to the filtering units 2 at its two ends, the filter media 22 of the filtering unit 2 is kept compact, avoiding the loosening and collapse of the filter media 22 due to reasons such as partial dissolution of the filter media 22. When the water body entering from the water inlet 11 flows through each compact filtering unit 2, the water body can fully contact the filter media 22, and the contact time is extended, enabling the filtering unit 2 to maintain the filtering effect.

[0041] In some embodiments, continue to refer to Figure 6, the end of the spring 31 is flattened to form a flat surface. When the end of the spring 31 directly contacts the filter unit 2 after being flattened, the contact area can be increased, and the coating layer 21 of the filter unit 2 can be prevented from being punctured, thereby prolonging the service life and maintaining the filtering effect. In an exemplary embodiment, one end of the spring 31 may be flattened to form a flat surface, or both ends of the spring 31 may be flattened respectively to form flat surfaces. When both ends of the spring 31 are flattened to form flat surfaces and directly abut against the filter unit 2 at both ends respectively, the coating layer 21 of the filter unit 2 is prevented from being punctured, and the contact area is increased.

[0042] In some embodiments, the outer diameters of both ends of the spring 31 are larger than the outer diameter of the middle part. By increasing the outer diameters of both ends of the spring 31, a larger contact area can be provided at both ends of the spring 31, which can provide better support for two adjacent filter units 2. And the middle part of the spring 31 has a relatively smaller outer diameter compared with both ends, which can reduce the material consumption of the spring 31. One end or both ends of the spring 31 can be flattened to form a flat surface at the end of the spring 31. When the outer diameter of the end of the spring 31 is larger than the outer diameter of the middle part, while increasing the area of the end, the flattening treatment at the end can further increase the contact area of the end of the spring 31 and prevent the end of the spring 31 from puncturing the filter unit 2.

[0043] The outer diameter of the spring 31 can gradually decrease from both ends to the middle. The generatrix forming the outer shape of the spring 31 is an arc.

[0044] The spring 31 may include a variable-diameter section and a cylindrical section. The outer diameter of the variable-diameter section gradually increases from the middle to both ends, and one end or both ends of the variable-diameter section are connected with a cylindrical section. The dimension of the cylindrical section in the circumferential direction may not exceed 25% of the whole spring 31.

[0045] In some embodiments, see Figure 6 and Figure 7 , the elastic support assembly 3 further includes a support plate 32. The support plate 32 is provided with third through holes 321, and at least one end of the spring 31 is provided with the support plate 32. One end or both ends of the spring 31 act on the filter unit 2 through the support plate 32, and the support plate 32 can provide a larger support area. In an exemplary embodiment, the first end of the spring 31 is provided with the support plate 32. The first end of the spring 31 is the end close to the first end 15 of the housing 1.

[0046] The material of the support plate 32 can be metal or plastic. In an exemplary embodiment, one side or both side plates of the support plate 32 may have reinforcing ribs. By providing the reinforcing ribs, the support plate 32 can have a smaller thickness and maintain a larger strength, and the deformation of the support plate 32 can be effectively reduced.

[0047] The spring 31 and the support plate 32 may be fixedly connected. For example, the spring 31 and the support plate 32 are welded together. The spring 31 and the support plate 32 may also be snap-connected. The end of the spring 31 may also be abutted against the support plate 32.

[0048] For example, the support plate 32 may be disposed at the downstream end of the water flow direction. The water body filtered by the previous filtering unit 2 may enter the next filtering unit 2 after being distributed again through the support plate 32.

[0049] In some embodiments, referring to Figure 5 , the housing 1 may include a cylindrical body 13 and an end cap 14. The cylindrical body 13 may be open at one end or both ends, and the open end of the cylindrical body 13 is connected to the end cap 14. The end cap 14 may be detachably connected to the cylindrical body 13 by snap connection or threaded connection. By detaching the end cap 14 from the cylindrical body 13, the filtering unit 2 and the elastic support assembly 3 can be replaced.

[0050] In some embodiments, the housing 1 may also have an opening at the first end 15. The filter element 100 is disposed inside the small molecule cluster generator 200. The first end 15 is connected to the inner wall surface of the base 201, and the base 201 closes the first end 15.

[0051] In some embodiments, the water inlet 11 and / or the water outlet 12 may be disposed on the end face of the housing 1, or may be disposed on the side surface of the housing 1. In an exemplary embodiment, referring to Figure 5 , on the side surface of the first end 15 of the housing 1, a plurality of first through holes communicating with the filter cavity are formed along the circumferential direction, and the first through holes form the water inlet 11; on the end face of the second end 16 of the housing 1, a plurality of second through holes communicating with the filter cavity are formed, and the second through holes form the water outlet 12. Of course, the first through holes may also be disposed on the end face of the first end 15, and the first through holes on the end face of the first end 15 form the water inlet 11.

[0052] The shapes of the first through holes and the second through holes are not limited. For example, the first through holes and / or the second through holes may be regular or irregular geometric shapes such as circular and rectangular. The shapes of the first through holes and the second through holes may be the same or different. For example, the first through holes may be rectangular through holes disposed on the side surface of the first end 15 of the housing 1, and the second through holes may be circular through holes disposed on the end face of the second end 16.

[0053] The first through-hole and the second through-hole may be regularly distributed or irregularly distributed. Regular distribution includes distribution in an array. The array may be a rectangular array or an annular array. In an exemplary embodiment, the first through-holes may be circumferentially divided into multiple columns on the side surface of the first end 15, and each column extends axially. The second through-holes may be distributed in multiple rows on the end surface of the second end 16, and two adjacent rows of the second through-holes may be staggered. Alternatively, the second through-holes may be distributed in a ring shape on the end surface of the second end 16, and the multiple formed rings may be concentric circles. The second through-holes on two adjacent rings may be staggered.

[0054] In some embodiments, referring to Figure 8 , the filtering unit 2 includes a coating layer 21 and a filter medium 22. Filter holes are distributed on the coating layer 21, and a coating space is formed inside the coating layer 21; the filter medium 22 is arranged in the coating space. The coating layer 21 coats the filter medium 22 to prevent the filter medium 22 from flowing away. The filter holes on the coating layer 21 can allow water to flow through freely. The coating layer 21 can be made of porous cotton gauze. The porous cotton gauze can effectively coat the filter medium 22 to prevent the filter medium 22 from flowing away and does not hinder the flow of water. Moreover, when the porous cotton gauze coats the filter medium 22, the shape of the filtering unit 2 can be easily adjusted and can be better filled in the housing 1.

[0055] The filter media 22 of each filtering unit 2 are the same or different. In an exemplary embodiment, the filter media 22 of multiple filtering units 2 are all different. For example, there are four filtering units 2, and the filter media 22 filled in the four filtering units 2 are all different. The four filtering units 2 perform four functional treatments on the flowing water body. The elastic support assembly 3 separates the filtering units 2 from each other to prevent the filter media 22 of different filtering units 2 from being mixed, which can ensure that the water body is treated for water quality in sequence and can extend the operation time of the water body in the generator.

[0056] Each filtering unit 2 can adsorb, scale inhibit, inhibit bacteria, supplement minerals or enhance the generation rate of small molecule group water for the water body according to the selected filter medium 22.

[0057] In some embodiments, the filter medium 22 includes at least one of an adsorption material, a scale inhibition material, an antibacterial material, a mineralization material, and a small molecule group water strengthening material. The filter media 22 of multiple filtering units 2 can be respectively selected from the above filter media 22. Of course, the filtering unit 2 can also select other filter media 22 other than the above. In an exemplary embodiment, multiple filtering units 2 can respectively select an adsorption material, a scale inhibition material, a mineralization material, and a small molecule group water strengthening material to respectively perform treatments such as adsorption purification to remove odors, reduce water scale, supplement mineral elements, and activate the water body on the flowing water body. Alternatively, multiple filtering units 2 can respectively select an adsorption material, an antibacterial material, a mineralization material, and a small molecule group water strengthening material to respectively perform treatments such as adsorption purification to remove odors, antibacterial, supplement mineral elements, and activate the water body on the flowing water body.

[0058] In some embodiments, the small water cluster intensifier may be an active substance that affects the dynamic equilibrium of hydrogen bond breakage - connection in water clusters. Specifically, the small water cluster intensifier may include at least one of far-infrared balls, hydrogen-rich balls, and magnetic energy balls, etc. One of the important indicators for detecting small water clusters is surface tension. Experiments show that the application of hydrogen-rich balls and far-infrared balls can significantly reduce the surface tension of water samples.

[0059] In some embodiments, when the plurality of filtering units 2 includes a filtering unit 2 using a small water cluster strengthening material, the filtering unit 2 containing the small water cluster strengthening material may be arranged close to the water outlet 12, or the filtering unit 2 containing the small water cluster strengthening material may also be arranged close to the water inlet 11, or the filtering unit 2 containing the small water cluster strengthening material may also be arranged at an intermediate position of the plurality of filtering units 2. Treating the water body with other filter media 22 can facilitate the strengthening of the water body by the small water cluster strengthening material and improve the small water cluster generation rate. Of course, the filtering unit 2 containing the small water cluster strengthening material may also be arranged at other positions.

[0060] In some embodiments, the scale inhibitor material includes a scale inhibitor containing an active group and a physical scale inhibitor. The scale inhibitor containing an active group may include at least one of MSAP and FOF, for example. The physical scale inhibitor may include at least one of a copper-based catalyst alloy and KDF, for example. MSAP and the copper-based catalyst alloy can reduce the degree of scale formation such as calcium carbonate in the heated water quality and are not easily formed into soap scale and attached to the skin surface. While the copper-based catalyst alloy and KDF have a scale inhibition effect, they also have an antibacterial effect. Multiple functions can be realized through one filtering unit 2, and the water body is both scale-inhibited and antibacterial-treated, reducing the number of filtering units 2.

[0061] In some embodiments, the mineralization material includes strontium mineral stone. When the filter media 22 uses strontium mineral stone, when the water body passes through, strontium elements can penetrate into the water body. Strontium elements have the effect of relieving allergies, no side effects, and are soluble substances with no risks. In the process of collagenase catalysis, as a crucial heat stabilizer; Sr 2+ can replace Ca 2+ As a heat stabilizer for collagenase in human skin organ culture and will activate and stabilize purified human skin fibroblast collagenase.

[0062] In some embodiments, the adsorption material includes activated carbon. Activated carbon has a highly porous structure, so it has a large specific surface area, can adsorb and remove odors, organic substances, heavy metal ions, etc. in the water body, and has a relatively good adsorption effect on suspended particles in the water body. The water body adsorbed by activated carbon is clear and transparent.

[0063] In some embodiments, the filter unit 2 containing the adsorption material is disposed near the water inlet 11. Through the treatment with adsorption materials such as activated carbon, the water body can be made cleaner, and the treatment effect of subsequent other filter media 22 can be better.

[0064] In a specific embodiment, refer to Figure 4 and Figure 5 , the filter element of the embodiment of the present application includes four filter units 2. The filter media 22 used for the four filter units 2 from the water inlet 11 to the water outlet 12 are adsorption materials such as activated carbon, scale inhibition materials such as copper-based catalyst alloys, mineralization materials such as strontium mineral stones, and small molecule cluster water intensifiers such as far-infrared balls.

[0065] The magnet in the small molecule cluster water generating device of the embodiment of the present utility model can adopt a permanent magnet.

[0066] In the embodiment of the present utility model, the term "a plurality of" refers to two or more, unless otherwise clearly defined. Terms such as "installed", "connected", "fixed", etc. should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral connection. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiment of the present utility model can be understood according to specific situations.

[0067] In the description of the embodiment of the present utility model, it should be understood that the orientation or positional relationship indicated by terms such as "upper", "lower", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the embodiment of the present utility model and simplifying the description, rather than indicating or implying that the device or unit referred to must have a specific direction, be constructed and operated in a specific orientation, and therefore, should not be construed as a limitation to the embodiment of the present utility model.

[0068] In the description of this specification, the description of terms such as "an embodiment", "a preferred embodiment", etc. means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the embodiment of the present utility model. In this specification, the schematic representation of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0069] The above are only the preferred embodiments of the embodiment of the present utility model, and are not used to limit the embodiment of the present utility model. For those skilled in the art, the embodiment of the present utility model can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the embodiment of the present utility model shall be included within the protection scope of the embodiment of the present utility model.

Claims

1. A small molecular cluster water generating device, characterized in that: include: A small molecular cluster water generator (200) comprises a base (201) and a magnet (202) disposed on the base (201), wherein the base (201) has a chamber, and the base (201) is provided with a base water inlet (2011) and a mounting port (2012) communicating with the chamber; The filter element (100) is arranged in the chamber through the installation port (2012); a water flow channel (400) connected to the water inlet (2011) of the base is formed between the filter element (100) and the base (201); the filter element (100) comprises a shell (1) connected to the water flow channel (400) and a filter unit (2) arranged in the shell (1); the filter material of the filter unit (2) comprises a small molecular group water strengthening material.

2. The small molecular cluster water generating device according to claim 1, characterized in that: The shell (1) has a filter chamber inside, the first end (15) of the shell (1) has a water inlet (11), and the second end (16) has a water outlet (12), the water inlet (11) is in communication with the water flow channel (400), and the first end (15) is away from the base body water inlet (2011) along the length direction of the shell (1).

3. The small molecular cluster water generating device according to claim 2, characterized in that: There are a plurality of filter units (2), the filter material of at least one of the filter units (2) comprises a small molecular group water strengthening material, the plurality of filter units (2) are sequentially arranged in the filter cavity along the direction from the water inlet (11) to the water outlet (12), and an elastic support component (3) is arranged between two adjacent filter units (2).

4. The small molecular cluster water generating device according to claim 3, characterized in that: The elastic support assembly (3) comprises a spring (31), and the spring (31) applies pressure to the filter unit (2) located at both ends thereof.

5. The small molecular cluster water generating device according to claim 4, characterized in that: The elastic support assembly (3) further comprises a support plate (32), on which a third through hole (321) is arranged, and the first end of the spring (31) is mounted on the support plate (32).

6. The small molecular cluster water generating device according to claim 4, characterized in that: The end of the spring (31) is flattened to form a flat surface.

7. The small molecular cluster water generating device according to claim 2, characterized in that: A plurality of first through holes communicating with the filter chamber are provided on the side surface of the first end (15) of the shell (1) along the circumferential direction, wherein the first through holes form the water inlet (11); The end surface of the second end (16) of the housing (1) is provided with a plurality of second through holes communicating with the filter chamber, and the second through holes form the water outlet (12).

8. The small molecular cluster water generating device according to claim 3, characterized in that: The filtering unit (2) comprises: A coating layer (21), wherein filter holes are distributed on the coating layer (21), and a coating space is provided inside the coating layer (21); A filter material (22) is disposed in the coating space; The filter material (22) of each filter unit (2) is the same or different.