Small molecular group water generating device and water heater
By installing a diversion channel assembly and a small molecule cluster generator inside the water tank, and using an external magnetic field to pre-cut the water flow, the problem of low generation efficiency in existing devices is solved, and more efficient small molecule cluster water generation is achieved.
Patent Information
- Application Number
- CN202422662685.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-01
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-11-01
AI Technical Summary
Existing small molecule cluster water generators suffer from low efficiency in generating small molecule cluster water due to unreasonable flow channel layout, making it difficult to meet users' water needs.
A diversion channel assembly is installed inside the water tank. The magnetic field outside the small molecule cluster generator is used to pre-cut the water flow to form preliminary small molecule cluster water, which then enters the small molecule cluster generator for further magnetic field cutting, thereby improving the generation efficiency.
By pre-cutting and further cutting, the generation efficiency of small water molecule clusters is significantly improved, magnetic field waste is avoided, and the structure is simple and compact.
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Figure CN223561369U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of electrical appliances, especially to a small molecular cluster water generating device and water heater. BACKGROUND
[0002] The small molecular cluster water generating device is applied to a household water heating gas rapid water heater and a dual-purpose stove, so that users can use small molecular cluster water, thereby improving bathing experience. The existing small molecular cluster water generating device utilizes magnetic field cutting to realize the generation of small molecular cluster water. Due to unreasonable flow channel layout, the generation efficiency of small molecular cluster water is not high, which is difficult to meet the water demand of users.
[0003] Therefore, there is an urgent need for a small molecular cluster water generating device to solve the above problems. UTILITY MODEL CONTENT
[0004] The utility model aims at at least in a certain extent solve one of the problems existing in prior art related, for this, the utility model provides a kind of small molecular cluster water generating device, can utilize the residual magnetic field outside small molecular cluster water generator to pre-cut water flow, thereby improving the generation efficiency of small molecular cluster water.
[0005] The above-mentioned purpose is realized by the following technical solutions:
[0006] A small molecular cluster water generating device, comprising:
[0007] A water tank with a first accommodating cavity inside, a first water inlet and a first water outlet are provided on the water tank and communicate with the first accommodating cavity;
[0008] A shunt flow channel assembly is installed in the first accommodating cavity, a plurality of cutting flow channels are sequentially connected in the shunt flow channel assembly, and a second accommodating cavity is located inside the cutting flow channel; a second water inlet is provided on the outer side of the shunt flow channel assembly and communicates with the first accommodating cavity and the cutting flow channel; a second water outlet is provided on the inner side of the shunt flow channel assembly and communicates with the second accommodating cavity and the cutting flow channel;
[0009] A small molecular cluster generator is installed in the second accommodating cavity, the small molecular cluster generator comprises a shell and a magnet arranged in the shell, an internal cutting flow channel is provided in the shell and communicates with the second water outlet, and a third water outlet is provided at one end of the shell and communicates with the first water outlet.
[0010] Optionally, the shunt flow channel assembly comprises:
[0011] A first sleeve, and the second water inlet is provided in the upper part of the first sleeve;
[0012] A second sleeve is arranged inside the first sleeve and is spaced apart from the first sleeve, and a water flow cavity is formed between the first sleeve and the second sleeve, and the inside of the second sleeve forms the second accommodating cavity, and the second water outlet is arranged on the upper portion of the second sleeve;
[0013] A plurality of first partitions are arranged in the water flow cavity in a circumferential direction to divide the water flow cavity into a plurality of cutting flow channels, and the cutting flow channel comprises a water inlet cutting flow channel, a water passing cutting flow channel and a water outlet cutting flow channel connected in sequence, the water inlet cutting flow channel is communicated with the second water inlet, and the water outlet cutting flow channel is communicated with the second water outlet.
[0014] Optionally, the water passing cutting flow channel is provided with one, and a first water passing hole is arranged between the water inlet cutting flow channel and the water passing cutting flow channel, and a second water passing hole is arranged between the water passing cutting flow channel and the water outlet cutting flow channel, and the first water passing hole and the second water passing hole are staggered.
[0015] Optionally, the first water passing hole is arranged on one of the upper portion of the water flow cavity and the lower portion of the water flow cavity, and the second water passing hole is arranged on the other one of the upper portion of the water flow cavity and the lower portion of the water flow cavity.
[0016] Optionally, the water passing cutting flow channel is provided with at least two, and a first water passing hole is arranged between the water inlet cutting flow channel and the water passing cutting flow channel, and a second water passing hole is arranged between the water passing cutting flow channel and the water outlet cutting flow channel, and a third water passing hole is arranged between adjacent two water passing cutting flow channels, and the third water passing hole, the second water passing hole and the first water passing hole are staggered.
[0017] Optionally, one of the adjacent two third water passing holes is arranged on the upper portion of the water flow cavity, and the other one is arranged on the lower portion of the water flow cavity; one of the first water passing hole and the adjacent third water passing hole is arranged on the upper portion of the water flow cavity, and the other one is arranged on the lower portion of the water flow cavity; one of the second water passing hole and the adjacent third water passing hole is arranged on the upper portion of the water flow cavity, and the other one is arranged on the lower portion of the water flow cavity.
[0018] Optionally, at least two water passing cutting flow channels are arranged clockwise on the left side of the water inlet cutting flow channel, and at least two water passing cutting flow channels are arranged counterclockwise on the right side of the water inlet cutting flow channel.
[0019] Optionally, the shunt flow channel assembly further comprises a second partition plate, the second partition plate is arranged between the first sleeve and the second sleeve, and a water inlet cavity is enclosed between the second partition plate, the first sleeve and the second sleeve, and the second water inlet communicates with the water inlet cutting flow channel through the water inlet cavity.
[0020] Optionally, a plurality of second water inlets are arranged, and the plurality of second water inlets are arranged at intervals along the circumferential side of the first sleeve.
[0021] Optionally, a plurality of mounting portions are arranged at intervals in the circumferential direction of the shell, the internal cutting flow channels are formed between adjacent two mounting portions, at least one internal cutting flow channel communicates with the second water outlet and the third water outlet, the magnet is arranged in the mounting portion, internal water passing holes are arranged between adjacent two internal cutting flow channels, and adjacent two internal water passing holes are arranged in a staggered manner.
[0022] The utility model discloses a water heater on another aspect, including above-mentioned small molecular group water generating device.
[0023] Compared with the prior art, the utility model at least includes following beneficial effects:
[0024] The small molecular group water generating device provided by the utility model is simple in structure and compact, and comprises a water tank, a shunt flow channel assembly and a small molecular group generator. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 is the three-dimensional structure schematic diagram of small molecular group water generating device provided by the utility model embodiment;
[0026] Figure 2 is Figure 1 exploded view;
[0027] Figure 3 is the front view of shunt flow channel assembly of small molecular group water generating device provided by the utility model embodiment;
[0028] Figure 4 is Figure 3 sectional view of A-A in;
[0029] Figure 5 is Figure 3 sectional view of B-B in;
[0030] Figure 6 is the front view of the small molecular group water generator provided by the embodiment of the utility model;
[0031] Figure 7 is Figure 6 the section view at C-C in figure.
[0032] in the figure:
[0033] 1, water tank;100, first accommodating cavity;101, first water inlet;102, first water outlet;
[0034] 2, shunt flow channel assembly;21, first sleeve;211, second water inlet;22, second sleeve;221, second accommodating cavity;23, first baffle;24, second baffle;210, water inlet cutting flow channel;220, water passage cutting flow channel;230, water outlet cutting flow channel;10, first water passage hole;20, third water passage hole;30, second water passage hole;40, second water outlet;
[0035] 3, small molecular group generator;31, shell;32, magnet;301, internal cutting flow channel;302, third water outlet;310, internal water passage hole;311, mounting portion;
[0036] 41, first sealing ring;42, second sealing ring;
[0037] 5, water inlet joint. DETAILED DESCRIPTION
[0038] The following embodiments are used to illustrate the utility model, but the utility model is not limited by these embodiments. The specific embodiment of the utility model is modified or the equivalent replacement of part technical features, and does not deviate from the spirit of the utility model scheme, and it should be covered in the technical scheme range of the utility model claimed.
[0039] Please refer to Figures 1-7The utility model provides a kind of small molecule group water generating device, including water tank 1, shunt flow channel component 2 and small molecule group generator 3.First accommodating cavity 100 is opened in water tank 1, first water inlet 101, first water outlet 102 that are communicated with first accommodating cavity 100 are opened on water tank 1.Shunt flow channel component 2 is installed in first accommodating cavity 100, a plurality of sequentially connected cutting flow channels and the second accommodating cavity 221 located in the inboard of cutting flow channel are provided in shunt flow channel component 2, the second water inlet 211 that is communicated first accommodating cavity 100 with cutting flow channel is opened in the outboard of shunt flow channel component 2, the second water outlet 40 that is communicated second accommodating cavity 221 with cutting flow channel is opened in the inboard of shunt flow channel component 2.Small molecule group generator 3 is installed in second accommodating cavity 221, and small molecule group generator 3 includes shell 31 and magnet 32 arranged in shell 31, internal cutting flow channel 301 that is communicated with second water outlet 40 is opened in shell 31, third water outlet 302 that is communicated with first water outlet 102 is opened in one end of shell 31.
[0040] The small molecule group water generating device provided by the utility model, by setting water tank 1, shunt flow channel component 2 and small molecule group generator 3, so that the water in water tank 1 first enters shunt flow channel component 2, flows in shunt flow channel component 2 to pre-cut the magnetic field outside small molecule group generator, generates primary small molecule group water, avoids waste of magnetic field, and then enters small molecule group generator 3 for further magnetic field cutting, to form more small molecule group water, improve the generation efficiency of small molecule group water, and the structure is simple and compact.
[0041] Optionally, shunt flow channel component 2 includes first sleeve pipe 21, second sleeve pipe 22 and multiple first partitions 23.Second water inlet 211 is opened in the upper portion of first sleeve pipe 21.Second sleeve pipe 22 is arranged on the inboard of first sleeve pipe 21 and is spaced apart from first sleeve pipe 21, and a water flow cavity is formed between first sleeve pipe 21 and second sleeve pipe 22, the inboard of second sleeve pipe 22 forms second accommodating cavity 221, and second water outlet 40 is opened in the upper portion of second sleeve pipe 22.Multiple first partitions 23 are circumferentially spaced apart in water flow cavity to form multiple cutting flow channels by spacing water flow cavity, and the cutting flow channel includes sequentially connected water inlet cutting flow channel 210, water passing cutting flow channel 220 and water outlet cutting flow channel 230, water inlet cutting flow channel 210 is communicated with second water inlet 211, and water outlet cutting flow channel 230 is communicated with second water outlet 40.Water flows into water inlet cutting flow channel 210 for first round magnetic field cutting through second water inlet 211, then flows into water passing cutting flow channel 220 for second round magnetic field cutting, and then flows into water outlet cutting flow channel 230 for third round magnetic field cutting, to carry out multiple magnetic field cutting, improve the pre-generation efficiency of small molecule group water.
[0042] Optionally, the water flow cutting channel 220 is provided with one, the first water passing hole 10 is arranged between the water inlet cutting channel 210 and the water flow cutting channel 220, the second water passing hole 30 is arranged between the water flow cutting channel 220 and the water outlet cutting channel 230, and the first water passing hole 10 and the second water passing hole 30 are staggered to make the water flow through the water inlet cutting channel 210, the water flow cutting channel 220 and the water outlet cutting channel 230 fully flow, and the magnetic field is fully cut, thereby optimizing the generation efficiency of small molecular group water.
[0043] Optionally, the first water passing hole 10 is arranged on one of the upper part of the water flow cavity and the lower part of the water flow cavity, and the second water passing hole 30 is arranged on the other of the upper part of the water flow cavity and the lower part of the water flow cavity, so as to realize the staggered arrangement of the first water passing hole 10 and the second water passing hole 30, which can make the first water passing hole 10 and the second water passing hole 30 far apart, so that the magnetic field cutting of the water flow is more sufficient.
[0044] Optionally, the water flow cutting channel 220 is provided with at least two to further improve the sufficiency of the magnetic field cutting, the first water passing hole 10 is arranged between the water inlet cutting channel 210 and the water flow cutting channel 220, the second water passing hole 30 is arranged between the water flow cutting channel 220 and the water outlet cutting channel 230, and the third water passing hole 20 is arranged between the adjacent two water flow cutting channels 220, the adjacent two third water passing holes 20, the third water passing hole 20 and the second water passing hole 30, and the first water passing hole 10 and the third water passing hole 20 are staggered to make the water flow through the water inlet cutting channel 210, the water flow cutting channel 220 and the water outlet cutting channel 230 fully flow, and the magnetic field is fully cut, thereby optimizing the generation efficiency of small molecular group water.
[0045] Optionally, one of the adjacent two third water passing holes 20 is arranged at the upper part of the water flow cavity, and the other is arranged at the lower part of the water flow cavity, so that the adjacent third water passing holes 20 are far apart, so that the magnetic field cutting of the water flow is more sufficient; one of the first water passing hole 10 and the adjacent third water passing hole 20 is arranged at the upper part of the water flow cavity, and the other is arranged at the lower part of the water flow cavity, so that the first water passing hole 10 and the third water passing hole 20 arranged adjacent to each other are far apart, so that the magnetic field cutting of the water flow is more sufficient; one of the second water passing hole 30 and the adjacent third water passing hole 20 is arranged at the upper part of the water flow cavity, and the other is arranged at the lower part of the water flow cavity, so that the second water passing hole 30 and the third water passing hole 20 arranged adjacent to each other are far apart, so that the magnetic field cutting of the water flow is more sufficient.
[0046] Optionally, at least two water passing cutting flow channels 220 are arranged clockwise on the left side of the water inlet cutting flow channel 210, and at least two water passing cutting flow channels 220 are arranged counterclockwise on the right side of the water inlet cutting flow channel 210, so that the water flow in the water inlet cutting flow channel 210 can be divided into two parts to enter the water passing cutting flow channel 220, which can reduce the water pressure in the water passing cutting flow channel 220, avoid local stress concentration in the shunt flow channel assembly 2, thereby affecting the service life of the small molecular group water generating device, and on the other hand, it can reduce the flow rate of the water flow, so that the water flow can be more fully cut by the magnetic field, thereby improving the generation efficiency of the small molecular group water.
[0047] Optionally, the shunt flow channel assembly 2 further comprises a second partition plate 24 arranged between the first sleeve 21 and the second sleeve 22, and the second partition plate 24, the first sleeve 21 and the second sleeve 22 form a water inlet cavity, the second water inlet 211 and the water inlet cutting flow channel 210 are communicated through the water inlet cavity, and the water in the first containing cavity 100 enters the water inlet cavity through the second water inlet 211, and then flows in the water inlet cavity counterclockwise or clockwise to the water inlet cutting flow channel 210, which can reduce the water pressure in the water inlet cavity, avoid local stress concentration in the shunt flow channel assembly 2, thereby affecting the service life of the small molecular group water generating device.
[0048] Optionally, a plurality of second water inlets 211 are arranged on the first sleeve 21, which can help the water in the first containing cavity 100 to be dispersed into the shunt flow channel assembly 2, thereby avoiding local stress concentration and affecting the service life of the small molecular group water generating device.
[0049] Optionally, a plurality of mounting portions 311 are arranged on the shell 31, and the adjacent two mounting portions 311 form an internal cutting flow channel 301, at least one internal cutting flow channel 301 is communicated with the second water outlet 40 and the third water outlet 302, the magnet 32 is mounted in the mounting portion 311, and the adjacent two internal cutting flow channels 301 are provided with internal water passing holes 310, and the adjacent two internal water passing holes 310 are arranged alternately, so that the water flow can flow fully and cut the magnetic field fully, thereby optimizing the generation efficiency of the small molecular group water.
[0050] Optionally, a first sealing ring 41 is arranged at the lower part of the first sleeve 21 extending to the first water outlet 102, and the first sealing ring 41 is arranged between the first sleeve 21 and the inner wall of the first water outlet 102 to seal the gap between the first sleeve 21 and the first water outlet 102, thereby preventing the water in the first containing cavity 100 from overflowing from the gap between the first sleeve 21 and the first water outlet 102.
[0051] Optionally, a second sealing ring 42 is further included, which is arranged between the shell 31 and the inner wall of the second sleeve 22, and is located between the second water outlet 40 and the third water outlet 302, for sealing the gap between the second sleeve 22 and the shell 31, so as to avoid the water in the second accommodating cavity 221 overflowing through the gap between the second sleeve 22 and the shell 31.
[0052] Optionally, a water inlet joint 5 is further included, which is connected with the first water inlet 101, and the water outside the small-molecule water generating device flows into the first accommodating cavity 100 through the water inlet joint 5, and then flows into the shunt flow channel assembly 2 and the small-molecule generator 3 to be subjected to magnetic field cutting, so as to generate small-molecule water, and then the small-molecule water flows out through the third water outlet 302.
[0053] The utility model provides a water heater on the other hand, including above-mentioned small-molecule water generating device.
[0054] Optionally, the small-molecule water generating device is installed in the hot water pipe or the water inlet pipe of the water heater.
[0055] The above only is some implementation manners of the utility model. For ordinary skilled person in the art, under the premise of not departing from the creative concept of the utility model, a number of deformation and improvement can be made, and these all belong to the protection scope of the utility model.
Claims
1. A small cluster water generating device, characterized by, The utility model relates to a water tank (1) is provided with first accommodating cavity (100) in, and the water tank (1) is provided with first water inlet (101) and first water outlet (102) of communicating with first accommodating cavity (100) on, the shunt flow channel subassembly (2) is installed in first accommodating cavity (100), and the shunt flow channel subassembly (2) is provided with a plurality of sequentially connected cutting flow channel and the second accommodating cavity (221) in the inside of cutting flow channel, the outside of shunt flow channel subassembly (2) is provided with the second water inlet (211) of communicating first accommodating cavity (100) with cutting flow channel, and the inside of shunt flow channel subassembly (2) is provided with the second water outlet (40) of communicating second accommodating cavity (221) with cutting flow channel, small molecule group generator (3) is installed in second accommodating cavity (221), and small molecule group generator (3) includes the shell (31) and the magnet (32) of setting in shell (31), and the inside cutting flow channel (301) of communicating with second water outlet (40) is set up in shell (31), and the third water outlet (302) of communicating with first water outlet (102) is set up in one end of shell (31). The shunt flow channel subassembly (2) comprises: A first sleeve (21), the second water inlet (211) is set up in the upper portion of the first sleeve (21); A second sleeve (22) is provided inside the first sleeve (21) and is spaced apart from the first sleeve (21), a water flow cavity is formed between the first sleeve (21) and the second sleeve (22), the second sleeve (22) forms the second accommodating cavity (221) on the inside, and the second water outlet (40) is set up in the upper portion of the second sleeve (22); 2. The small molecule group water generating device according to claim 1, characterized by A plurality of first partitions (23) are circumferentially spaced apart in the water flow cavity to separate the water flow cavity into a plurality of cutting flow channels, the cutting flow channels include sequentially connected water inlet cutting flow channels (210), water passing cutting flow channels (220), and water outlet cutting flow channels (230), the water inlet cutting flow channels (210) are in communication with the second water inlet (211), and the water outlet cutting flow channels (230) are in communication with the second water outlet (40). The water passing cutting flow channel (220) is provided with one, the first water passing hole (10) is provided between the water inlet cutting flow channel (210) and the water passing cutting flow channel (220), the second water passing hole (30) is provided between the water passing cutting flow channel (220) and the water outlet cutting flow channel (230), and the first water passing hole (10) and the second water passing hole (30) are staggered. The first water passing hole (10) is provided on one of the upper portion of the water flow cavity and the lower portion of the water flow cavity, and the second water passing hole (30) is provided on the other of the upper portion of the water flow cavity and the lower portion of the water flow cavity. 3. The small molecule group water generating device according to claim 2, characterized by 4. The small molecule group water generating device according to claim 3, characterized by 5. The small molecule group water generating device according to claim 2, characterized by The through-water cutting flow channel (220) is provided with at least two, the first water passing hole (10) is arranged between the water inlet cutting flow channel (210) and the through-water cutting flow channel (220), the second water passing hole (30) is arranged between the through-water cutting flow channel (220) and the water outlet cutting flow channel (230), the third water passing hole (20) is arranged between adjacent two through-water cutting flow channels (220), and the third water passing hole (20), the second water passing hole (30) and the first water passing hole (10) are staggered.
6. The small molecule group water generating device according to claim 5, wherein One of the adjacent two third water passing holes (20) is arranged in the upper part of the water flow cavity, and the other is arranged in the lower part of the water flow cavity; one of the first water passing hole (10) and the adjacent third water passing hole (30) is arranged in the upper part of the water flow cavity, and the other is arranged in the lower part of the water flow cavity; one of the second water passing hole (30) and the adjacent third water passing hole (30) is arranged in the upper part of the water flow cavity, and the other is arranged in the lower part of the water flow cavity.
7. The small molecule group water generating device according to claim 5, characterized by The left side of the water inlet cutting flow channel (210) is provided with at least two through-water cutting flow channels (220) clockwise, and the right side of the water inlet cutting flow channel (210) is provided with at least two through-water cutting flow channels (220) counterclockwise.
8. The small cluster water generating device according to any one of claims 2 to 7, characterized by, The shunt flow channel assembly (2) further comprises a second partition plate (24), the second partition plate (24) is arranged between the first sleeve (21) and the second sleeve (22), and the second partition plate (24), the first sleeve (21) and the second sleeve (22) are enclosed to form a water inlet cavity (201), and the second water inlet (211) and the water inlet cutting flow channel (210) are communicated through the water inlet cavity (201).
9. The small molecule group water generating device according to claim 8, characterized by The second water inlet (211) is provided with a plurality of second water inlets (211), and the plurality of second water inlets (211) are arranged at intervals along the circumferential side of the first sleeve (21).
10. The small cluster water generating device according to any one of claims 2 to 7, wherein The shell (31) is provided with a plurality of mounting portions (311) arranged at intervals in the circumferential direction, the internal cutting flow channel (301) is formed between adjacent two mounting portions (311), at least one internal cutting flow channel (301) is communicated with the second water outlet (40) and the third water outlet (302), the magnet (32) is mounted in the mounting portion (311), the internal water passing hole (310) is arranged between adjacent two internal cutting flow channels (301), and adjacent two internal water passing holes (310) are staggered.
11. A water heater, characterized by The small-molecule group water generating device of any one of claims 1-10. The small-molecule group water generating device of any one of claims 1-10.