Generating device for reducing water molecule clusters and water heater with same
By setting multiple magnets on the rotating component and using water flow to drive the rotating component to rotate, the water flow passes through the magnetic field in a non-parallel manner, which solves the problems of low magnetization efficiency and insufficient safety of existing water magnetization devices, and achieves efficient water magnetization effect and device durability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- VATTI CORP LTD
- Filing Date
- 2025-04-24
- Publication Date
- 2026-04-24
AI Technical Summary
Existing water magnetization treatment devices have shortcomings in terms of magnetization efficiency and safety, especially electromagnetic devices which require high field strength and high control performance.
A device for reducing water molecule cluster generation was designed. By setting multiple magnets on the rotating component and using water flow to drive the rotating component to rotate, the water flow passes through the magnetic field non-parallel, increasing the number of magnetizations. Combined with eddy current and turbulent motion, the magnetization efficiency is improved.
It improves the magnetization efficiency of water, reduces the size of water molecule clusters, increases activity and solubility, reduces viscosity, enhances permeability, and decreases density. It also avoids corrosion problems caused by exposed magnets and extends the service life of the device.
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Figure CN224160444U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water magnetization technology, and in particular to a device for reducing the generation of water molecule clusters and a water heater having the same. Background Technology
[0002] With increasingly abundant material supplies and rapidly developing technology, consumers have developed a huge demand for healthy water quality and water use.
[0003] When water flows through a magnetic field of a certain strength at a certain speed, its physical structure changes without altering its original chemical composition, resulting in unique properties. Existing research shows that after magnetization, water molecule clusters become smaller, significantly improving its activity and solubility. It also exhibits lower viscosity than ordinary tap water, stronger permeability, and lower density. Currently, water magnetization treatment devices mainly consist of a magnetic field generator. Water flows perpendicularly through the magnetic field at a certain velocity, and after magnetization, the water molecule clusters become smaller. Magnetic field generators are generally divided into permanent magnet and electromagnetic types. Electromagnetic types require higher field strength and have higher requirements for safety and control performance. Utility Model Content
[0004] This utility model provides a device for reducing the generation of water molecule clusters and a water heater having the same, so as to at least solve some of the above-mentioned technical problems existing in the prior art.
[0005] In a first aspect, embodiments of the present invention provide an apparatus for reducing the generation of water molecule clusters, comprising:
[0006] A housing having an inner cavity, and an inlet and an outlet communicating with the inner cavity;
[0007] A rotating component is disposed within the inner cavity. The rotating component is rotatably connected to the housing. The axis of rotation of the rotating component forms an angle with the center line of the water inlet. The rotating component can rotate under the action of water flow.
[0008] Multiple magnets are mounted on a rotating assembly. The two ends of the magnets along the axial direction of the rotating assembly are the S pole and the N pole, respectively. The magnets rotate with the rotating assembly so that the water flows non-parallel through the magnetic field generated by the magnets.
[0009] In an optional embodiment, the rotating component includes:
[0010] Multiple blades are evenly distributed circumferentially along the axis of rotation of the rotating assembly, each blade having a chamber parallel to the axis of rotation, and the magnet is disposed within the chamber.
[0011] In an optional embodiment, the impeller includes:
[0012] The first surface is connected to the rotating shaft, the line of intersection between the first surface and the rotating shaft is parallel to the rotating shaft, the first surface is a concave arc surface, and the first surface is bent clockwise or counterclockwise.
[0013] The second surface is connected to the rotating shaft. The line of intersection between the second surface and the rotating shaft is parallel to the rotating shaft. The second surface is a convex arc surface, and the bending direction of the second surface is the same as the bending direction of the first surface.
[0014] In an optional embodiment, the impeller includes:
[0015] The third surface is connected to the first surface and the second surface respectively. The third surface is a convex arc surface. The third surface of each blade is located on the same cylindrical surface.
[0016] The end faces are located at both ends of the axial direction of the impeller and are respectively connected to the first face, the second face, the third face and the rotating shaft.
[0017] In an alternative embodiment, the magnet is sealed within the cavity by a sealing material.
[0018] In an alternative embodiment, the magnetic poles of two adjacent magnets in the circumferential direction of the rotating assembly are opposite.
[0019] In an optional embodiment, the device for generating water molecule clusters further includes:
[0020] An electric motor is connected to the rotating component via a transmission assembly to drive the rotating component to rotate, or the rotating component can rotate independently under the action of water flow.
[0021] In an optional embodiment, the centerline of the water inlet does not intersect the axis of rotation of the rotating component.
[0022] In an optional embodiment, the housing includes:
[0023] The shell body is a cylindrical shape with one end open, and the water inlet and the water outlet are located on the cylindrical wall of the shell body;
[0024] An end cap is connected to one end of the opening of the shell body to close the opening;
[0025] The axis of rotation of the rotating component is collinear with the axis of the housing.
[0026] Secondly, this utility model embodiment provides a water heater, including the device for reducing water molecule clusters described in this utility model embodiment.
[0027] One embodiment of this utility model has the following advantages or beneficial effects:
[0028] In the device for reducing water molecule clusters according to this embodiment of the invention, the shell has an inner cavity, and the shell has an inlet and an outlet that communicate with the inner cavity. Water flows into the inner cavity from the inlet and flows out from the outlet. A rotating component is disposed in the inner cavity and is rotatably connected to the shell. The rotating component's axis of rotation forms an angle with the center line of the inlet. The rotating component can rotate under the action of water flow. During the flow of water from the inlet to the outlet, it can drive the rotating component to rotate. The rotating component is provided with multiple magnets. As the magnets rotate with the rotating component, the magnetic field rotates, increasing the number of times the water passes through the magnetic field non-parallel, thus fully magnetizing the water. Attached Figure Description
[0029] The above and other features and advantages of this invention will become more apparent from a detailed description of exemplary embodiments with reference to the accompanying drawings.
[0030] Figure 1 This is a schematic diagram of a device for generating water molecule clusters according to an exemplary embodiment;
[0031] Figure 2 This is a schematic cross-sectional view of a device for generating water molecule clusters according to an exemplary embodiment.
[0032] Figure 3 This is a schematic diagram of the structure of a rotating assembly according to an exemplary embodiment;
[0033] Figure 4 This is a schematic diagram of the end face structure of a rotating component according to an exemplary embodiment;
[0034] Figure 5 This is a schematic diagram of the structure of a magnet according to an exemplary embodiment;
[0035] Figure 6 This is a schematic diagram of the structure of a water heater according to an exemplary embodiment.
[0036] The reference numerals in the attached drawings are explained as follows: 1-shell, 11-shell body, 12-end cap, 13-inlet, 14-outlet, 2-rotating assembly, 21-chamber, 22-shaft, 23-hub, 24-blade, 241-first surface, 242-second surface, 243-third surface, 244-end face, 3-motor, 4-magnet, 5-transmission assembly, 6-sealing material, 100-device for reducing water molecule clusters, 200-flow sensor, 300-heat exchanger, 400-outlet valve, 500-burner, 600-controller. Detailed Implementation
[0037] Exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in many forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that the present invention will be thorough and complete, and will fully convey the concept of the exemplary embodiments to those skilled in the art. The same reference numerals in the drawings denote the same or similar structures, and therefore their detailed description will be omitted.
[0038] The terms “a,” “one,” “the,” and “the” are used to indicate the existence of one or more elements / components / etc.; the terms “include” and “have” are used to indicate an open-ended meaning of inclusion and that there may be other elements / components / etc. in addition to the listed elements / components / etc.
[0039] See Figures 1 to 5 This utility model provides a device 100 for reducing water molecule clusters, including a housing 1, a rotating component 2, and multiple magnets 4. The housing 1 has an inner cavity, and the housing 1 has an inlet 13 and an outlet 14 communicating with the inner cavity. Water flows into the inner cavity through the inlet 13 and flows out through the outlet 14.
[0040] Rotating component 2 is located within the inner cavity and is rotatably connected to the housing 1. It can rotate under the influence of water flow. Water flows into the inner cavity from the inlet 13 and towards the outlet 14, acting on the rotating component 2 and driving it to rotate. The axis of rotation 22 of the rotating component 2 forms an angle with the centerline of the inlet 13. In a specific implementation, the axis of rotation 22 can be substantially perpendicular to the centerline of the inlet 13, increasing the component of the force driving the rotation of the rotating component 2.
[0041] Multiple magnets 4 are mounted on the rotating assembly 2. The two ends of each magnet 4 along the axial direction of the rotating assembly 2 are the S pole and the N pole, respectively. The magnets 4 rotate with the rotating assembly 2, causing the water flow to pass through the magnetic field generated by the magnets 4 in a non-parallel manner. Magnetic field lines around the magnets 4 emerge from the N pole and enter the S pole. Inside the magnet, the magnetic field lines run from the S pole to the N pole. The magnets 4 can be positioned along the axial direction of the rotating assembly 2. As water enters through the inlet 13 and flows out through the outlet 14, the water flows through the magnetic field at a certain angle. As the magnets 4 rotate with the rotating assembly 2, the magnetic field also rotates, promoting the magnetization of the water.
[0042] In the water molecule cluster reduction generating device 100 of this utility model embodiment, the shell 1 has an inner cavity, and the shell 1 has an inlet 13 and an outlet 14 communicating with the inner cavity. Water flows into the inner cavity from the inlet 13 and flows out from the outlet 14. The rotating component 2 is disposed in the inner cavity and is rotatably connected to the shell 1. The rotating shaft 22 of the rotating component 2 has an angle with the center line of the inlet 13. The rotating component 2 can rotate under the action of water flow. During the flow of water from the inlet 13 to the outlet 14, it can drive the rotating component 2 to rotate. The rotating component 2 is provided with multiple magnets 4. The magnets 4 can generate a magnetic field. During the rotation of the magnets 4 with the rotating component 2, the magnetic field rotates, increasing the number of times the water flows non-parallel through the magnetic field generated by the magnets 4, improving the magnetization efficiency, and making the water fully magnetized.
[0043] In this embodiment of the invention, the rotation of the rotating component 2 generates eddies, intensifying turbulent motion and making the water flow direction more irregular. Furthermore, the interaction with the rotating magnetic field allows the water to flow through the magnetic field more efficiently, increasing magnetization efficiency and ensuring full magnetization. This breaks the hydrogen bonds between water molecules, resulting in smaller water molecule clusters.
[0044] In some embodiments, see Figure 3 The rotating assembly 2 has a chamber 21, and the magnet 4 is disposed inside the chamber 21. By placing the magnet 4 inside the chamber 21, the magnet 4 is prevented from being exposed to the outside, thereby improving the problem of easy corrosion of the exposed magnet 4 and increasing its service life.
[0045] In some embodiments, see Figure 3 The rotating assembly 2 includes multiple blades 24, and can be rotatably connected to the housing 1 via a rotating shaft 22. The multiple blades 24 are disposed on the circumferential surface of the rotating shaft 22, and each blade 24 has a chamber 21, which may be parallel to the rotating shaft 22. A magnet 4 is disposed within the chamber 21. The blades 24 facilitate the rotation of the rotating assembly 2 under the influence of water flow. The magnet 4 is disposed on the blades 24 to increase the number of times the water flows through the magnetic field. The chambers 21 on the blades 24 facilitate the assembly of the magnet 4 and prevent the magnet 4 from being exposed. The multiple blades 24 can be symmetrically distributed around the rotating shaft 22 as an axis of symmetry. Alternatively, the multiple blades 24 can be evenly distributed around the rotating shaft 22. For example, the rotating shaft may have four blades 24, with a central angle of 90° between any two adjacent blades 24.
[0046] In some embodiments, the shaft 22 has a hub 23, and the blades 24 are connected to the hub 23. By providing the hub 23, the arrangement of the blades 24 can be facilitated.
[0047] In an exemplary embodiment, the plurality of blades 24 may also be grouped in pairs, with the plurality of blades 24 symmetrically distributed in the circumferential direction of the rotating shaft 22, including the plurality of blades 24 symmetrically distributed in groups. Alternatively, the plurality of blades 24 may be evenly distributed in the circumferential direction, including the plurality of blades 24 evenly distributed in groups.
[0048] In some embodiments, see Figure 3 and Figure 4 The impeller 24 includes a first surface 241 and a second surface 242. The first surface 241 is connected to the rotating shaft 22, and the intersection line of the first surface 241 and the rotating shaft 22 extends along the rotating shaft 22. In specific implementations, the intersection line of the first surface 241 and the rotating shaft 22 can be parallel to the rotating shaft 22. Alternatively, the intersection line of the first surface 241 and the rotating shaft 22 can also extend spirally at a certain angle to the rotating shaft 22 on the circumference of the rotating shaft 22. The first surface 241 is a concave arc surface and is curved clockwise. As an alternative embodiment, the first surface 241 can also be curved counterclockwise.
[0049] The second surface 242 is connected to the rotating shaft 22, and the line of intersection between the second surface 242 and the rotating shaft 22 extends along the rotating shaft 22. In specific implementations, the line of intersection between the second surface 242 and the rotating shaft 22 can be parallel to the rotating shaft 22. Alternatively, the line of intersection between the second surface 242 and the rotating shaft 22 can also extend spirally along the circumference of the rotating shaft 22 at a certain angle. The second surface 242 is a convex arc surface, and the bending direction of the second surface 242 is the same as the bending direction of the first surface 241. If the impeller 24 is bent clockwise as a whole, then both the second surface 242 and the first surface 241 are inclined in the clockwise direction. If the impeller 24 is bent counterclockwise as a whole, then both the second surface 242 and the first surface 241 are bent in the counterclockwise direction.
[0050] The rotating shaft 22 has a hub 23, and the wheel blade 24 is connected to the circumferential surface of the hub 23. The first surface 241 and the second surface 242 respectively form an intersection line with the surface of the hub 23.
[0051] In some embodiments, see Figure 3 and Figure 4 The impeller 24 also includes a third surface 243, which is connected to the first surface 241 and the second surface 242 respectively. The third surface 243 is a convex arc surface. The impeller includes the first surface 241, the second surface 242 and the third surface 243, and the third surface 243 is located on the side of the impeller 24 away from the shaft 22, which can give the impeller sufficient thickness to form the chamber 21.
[0052] In some embodiments, see Figure 3 and Figure 4 The third surface 243 of each blade 24 is located on the same cylindrical surface. Having the third surface 243 of multiple blades 24 located on the same cylindrical surface can make the gap between the blade 24 and the inner wall of the housing 1 consistent.
[0053] In some embodiments, the third surface 243 may also gradually approach the pivot 22 from the direction of the first surface 241 to the second surface 242.
[0054] In some embodiments, the first surface 241 and the second surface 242 of the blade 24 can be connected together on the side away from the shaft 22, thus eliminating the need for a third surface 243.
[0055] In an exemplary embodiment, the curvature of the first surface 241 can be the same along the direction away from the axis of rotation 22. For example, the first surface 241 can be a cylinder. The curvature of the first surface 241 can also be different along the direction away from the axis of rotation 22. Similarly, the curvature of the second surface 242 can also be the same along the direction away from the axis of rotation 22. For example, the second surface 242 can be a cylinder. Alternatively, the curvature of the second surface 242 can also be different along the direction away from the axis of rotation 22.
[0056] In some embodiments, the first surface 241 and the second surface 242 can have varying curvatures to give the blade 24 a certain thickness, and they can be connected together on the side away from the axis of rotation 22. For example, the curvature of the first surface 241 can gradually decrease along the direction away from the axis of rotation 22, causing it to gradually move towards the side of the second surface 242. The curvature of the second surface 242 can gradually increase along the direction away from the axis of rotation 22, causing it to gradually move towards the side of the first surface 241. The curvature of one of the first surface 241 and the second surface 242 can gradually change, connecting them on the side away from the axis of rotation 22; alternatively, the curvatures of both the first surface 241 and the second surface 242 can gradually change, connecting them on the side away from the axis of rotation 22.
[0057] In some embodiments, see Figure 3 and Figure 4 The impeller 24 also includes an end face 244, which is located at both ends of the impeller 24 in the axial direction and connects the first face 241, the second face 242, the third face 243 and the rotating shaft 22 respectively.
[0058] The chamber 21 on the impeller 24 may have an opening on one end face 244, through which the magnet 4 is disposed within the chamber 21. The chamber 21 extends along the shaft 22. The chamber 21 may be substantially parallel to the shaft 22.
[0059] In some embodiments, see Figure 2 The magnet 4 is sealed within the chamber 21 by a sealing material 6. The sealing material 6 may include, for example, epoxy resin. Sealing the magnet 4 within the chamber 21 with the sealing material 6 prevents the magnet 4 from being exposed. It also prevents the magnet 4 from moving within the chamber 21. For example, potting with materials such as epoxy resin can fix the magnet 4 and prevent it from being exposed. Alternatively, the magnet 4 can be fixed within the chamber 21 by filling with an elastic material.
[0060] In this embodiment of the invention, the rotation direction of the rotating component 2 is opposite to the bending direction of the blade 24.
[0061] In this embodiment of the invention, the chamber 21 extends to a sufficient size along the direction of the rotating shaft 22, so that the magnet 4 inside has the largest possible size along the rotating shaft 22.
[0062] In some embodiments, the magnetic poles of two adjacent magnets 4 on the circumference of the rotating assembly 2 are opposite. This opposite polarity generates a magnetic field between the two magnets 4, with magnetic field lines extending circumferentially from the N pole of one magnet 4 to the S pole of the adjacent magnet 4. This increases the number of times water flows through the magnetic field, thus improving magnetization efficiency.
[0063] In some embodiments, the cross-section of the magnet 4 may include, but is not limited to, rectangular, circular, trapezoidal, or other geometric shapes.
[0064] In some embodiments, see Figure 5 The cross-section of magnet 4 is an isosceles trapezoid, with the shorter base of the trapezoid facing the hub 23. This structure allows the magnetic field lines between two adjacent magnets 4 to converge more closely, maximizing the utilization of the magnetic field and thus increasing the generation rate of small molecule clusters of water.
[0065] In practice, the plane containing the two sides of the magnet 4 along the circumference of the rotating component 2 passes through the axis 22 of the rotating component 2. This reduces the transmission angle of the magnetic field lines between adjacent magnets 4, ensuring that the magnetic field lines are more concentrated and maximizing the utilization of the magnetic field.
[0066] The magnet 4 in this embodiment of the invention adopts a strip structure, which can ensure a longer magnetic circuit and increase the flow rate of water in the magnetic field. At the same time, the strip structure can facilitate installation and greatly improve the installation efficiency.
[0067] Of course, magnet 4 can also be in the shape of a cuboid or other suitable shape.
[0068] In some embodiments, Figure 1 and Figure 2 The device 100 for reducing water molecule clusters in this embodiment of the invention also includes a motor 3. The motor 3 is connected to the rotating component 2 via a transmission assembly 5 to drive the rotating component 2 to rotate. The transmission assembly 5 can transmit torque unidirectionally from the motor 3 to the rotating component 2, so that the motor 3 can drive the rotating component 2 to rotate, or the rotating component 2 can rotate independently under the action of water flow. The transmission assembly 5 can be a unidirectional transmission from the motor 3 to the rotating component 2, and the motor 3 can drive the rotating component 2 to rotate. When the rotating component 2 rotates under the action of water flow, there is no reverse transmission to the motor 3, which reduces the resistance when the rotating component 2 rotates independently. The rotating component 2 can rotate under the drive of the motor 3 or under the drive of water flow.
[0069] In some embodiments, the transmission component 5 may include at least one of a ratchet and a clutch. When the motor 3 is connected to the rotating shaft 22 of the rotating component 2 via the ratchet, the motor 3 can drive the rotating component 2 to rotate. However, when the rotating component 2 rotates under the action of water flow, it cannot drive the motor 3 in the opposite direction via the ratchet. Alternatively, when the motor 3 is connected to the rotating shaft 22 of the rotating component 2 via the clutch, the clutch is engaged, and the motor 3 can drive the rotating component 2 to rotate. When the clutch is disengaged, there is no transmission between the motor 3 and the rotating component 2. When the rotating component 2 rotates under the action of water flow, it cannot drive the motor 3 in the opposite direction via the clutch.
[0070] In some embodiments, the motor 3 may be fixed to the housing 1.
[0071] In some embodiments, the centerline of the inlet 13 does not intersect with the axis 22 of the rotating assembly 2. The eccentric arrangement of the inlet 13 allows the impeller 24 on one side of the axis 22 to be subjected to force, making the rotating assembly 2 easier to rotate.
[0072] In some embodiments, the inner cavity of the housing 1 is a rotating structure, for example, the inner cavity is cylindrical, which facilitates the rotation of the rotating component 2.
[0073] In some embodiments, see Figure 1 and Figure 2 The housing 1 includes a main body 11 and an end cap 12. The main body 11 is a cylindrical shape with one open end. An inlet 13 and an outlet 14 are located on the cylindrical wall of the main body 11. The end cap 12 is connected to the open end of the main body 11 to close the opening. A rotating assembly 2 can be assembled into the housing 1 through the opening. The rotating shaft 22 at one end of the rotating assembly 2 can be connected to the end cap 12, and the rotating shaft 22 at the other end can be connected to the bottom of the main body 11. The motor 3 can be fixed to either the end cap 12 or the bottom of the cylinder.
[0074] In some embodiments, the end cap 12 and the shell body 11 may be connected by bolts, the end cap 12 and the shell body 11 may be snap-fitted, or the end cap 12 and the shell body 11 may be connected by two or more methods such as bolts and snap-fitting.
[0075] In some embodiments, the end cap 12 and the shell body 11 may have a positioning structure for positioning between the two.
[0076] In some embodiments, the end cap 12 and the shell body 11 may have a mis-proof structure to ensure that the end cap 12 and the shell body 11 are correctly connected.
[0077] In some embodiments, the rotation axis of the rotating component 2 is collinear with the axis of the housing 1.
[0078] See Figure 6This utility model provides a water heater, including a water molecule cluster reduction generating device 100 according to this utility model.
[0079] This utility model provides a water heater, which may include a heat exchanger 300, a cold water inlet pipe, a hot water outlet pipe, and an outlet valve 400. The device 100 for reducing water molecule clusters in this utility model may be connected in series with the cold water inlet pipe and / or the hot water outlet pipe.
[0080] In an exemplary embodiment, the device 100 for reducing water molecule clusters is connected in series with a hot water outlet pipe. For example, one end of the hot water outlet pipe can be connected to the outlet of the heat exchanger 300, and the other end can be connected to the outlet valve 400.
[0081] One end of the hot water outlet pipe may have a first connector, and the other end may have a second connector. The first connector is used to connect to the outlet of the heat exchanger 300, and the second connector is used to connect to the outlet valve 400. The presence of a first connector and a second connector at both ends of the hot water outlet pipe facilitates the connection of the water molecule cluster reduction generating device 100 of this embodiment to the cold water inlet pipe of the water heater, or to the hot water outlet pipe.
[0082] The water heaters of this utility model embodiment include gas water heaters and electric water heaters. The gas water heater includes a burner 500.
[0083] In the water heater of this embodiment, the device 100 for reducing water molecule clusters can also be located before the heat exchanger 300. The water first flows through the device 100 for reducing water molecule clusters to generate small molecule clusters, and then enters the heat exchanger 300 for heat exchange and temperature increase. The small molecule clusters can reduce the formation of scale.
[0084] In this embodiment of the invention, the term "multiple" refers to two or more, unless otherwise explicitly defined. The terms "install," "connect," and "fix" should be interpreted broadly. For example, "connect" can mean a fixed connection, a detachable connection, or an integral connection. Those skilled in the art can understand the specific meaning of the above terms in this embodiment of the invention based on the specific circumstances.
[0085] In the description of the embodiments of this utility model, it should be understood that the terms "upper" and "lower" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of this utility model and simplifying the description, and do not indicate or imply that the device or unit referred to must have a specific direction or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this utility model.
[0086] In this specification, the terms "an embodiment," "a preferred embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which 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.
[0087] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. For those skilled in the art, the present utility model can have various modifications and variations. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A device for generating water molecule clusters, characterized in that, include: The housing (1) has an inner cavity and has an inlet (13) and an outlet (14) communicating with the inner cavity; A rotating component (2) is disposed in the inner cavity. The rotating component (2) is rotatably connected to the housing (1). The rotating shaft (22) of the rotating component (2) has an angle with the center line of the water inlet (13). The rotating component (2) can rotate under the action of water flow. Multiple magnets (4) are disposed on the rotating assembly (2). The two ends of the magnets (4) along the axial direction of the rotating assembly (2) are the S pole and the N pole, respectively. The magnets (4) rotate with the rotating assembly (2) so that the water flows through the magnetic field generated by the magnets (4) in a non-parallel manner.
2. The device for generating water molecule clusters according to claim 1, characterized in that, The rotating component (2) includes: Multiple blades (24) are evenly distributed along the circumference of the rotating shaft (22), each blade (24) having a chamber (21) parallel to the rotating shaft (22), and the magnet (4) is disposed in the chamber (21).
3. The device for generating water molecule clusters according to claim 2, characterized in that, The blade (24) includes: The first surface (241) is connected to the rotating shaft (22). The line of intersection between the first surface (241) and the rotating shaft (22) is parallel to the rotating shaft (22). The first surface (241) is a concave arc surface and is bent clockwise or counterclockwise. The second surface (242) is connected to the rotating shaft (22). The line of intersection between the second surface (242) and the rotating shaft (22) is parallel to the rotating shaft (22). The second surface (242) is a convex arc surface. The bending direction of the second surface (242) is the same as the bending direction of the first surface (241).
4. The device for generating water molecule clusters according to claim 3, characterized in that, The blade (24) includes: The third surface (243) is connected to the first surface (241) and the second surface (242) respectively. The third surface (243) is a convex arc surface. The third surface (243) of each blade (24) is located on the same cylindrical surface. The end face (244) is located at both ends of the axial direction of the blade (24) and connects the first face (241), the second face (242), the third face (243) and the shaft (22) respectively.
5. The device for generating water molecule clusters according to claim 2, characterized in that, The magnet (4) is sealed in the chamber (21) by a sealing material (6).
6. The device for generating water molecule clusters according to claim 1, characterized in that, The magnetic poles of two adjacent magnets (4) in the circumferential direction of the rotating assembly (2) are opposite.
7. The device for generating water molecule clusters according to claim 1, characterized in that, Also includes: The motor (3) is connected to the rotating component (2) via the transmission component (5) to drive the rotating component (2) to rotate, or the rotating component (2) can rotate independently under the action of water flow.
8. The apparatus for generating water molecule clusters according to claim 1, characterized in that, The centerline of the inlet (13) does not intersect the axis (22) of the rotating assembly (2).
9. The apparatus for generating water molecule clusters according to claim 1, characterized in that, The housing (1) includes: The shell body (11) is a cylindrical shape with one end open, and the water inlet (13) and the water outlet (14) are provided on the cylindrical wall of the shell body (11); An end cap (12) is connected to one end of the opening of the shell body (11) to close the opening; The rotating shaft (22) of the rotating component (2) is collinear with the axis of the housing (1).
10. A water heater, characterized in that, The device (100) for generating water molecule clusters as described in any one of claims 1-9.