Faucet water outlet device integrated with ozone reaction module
By integrating an ozone reaction module into the faucet water dispenser, the problem of complex and inconvenient ozone water generation in existing technologies has been solved, enabling rapid generation and use of ozone water and improving the user experience.
Patent Information
- Application Number
- CN202520551053.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-03-27
AI Technical Summary
Existing ozone water generators have complex preparation processes, and the generated ozone water is inconvenient to receive or use, thus reducing the user experience.
Design a faucet water dispenser with an integrated ozone reaction module. The faucet is connected to the water outlet and the diversion port through a control component. Ozone water is generated in the water tank using a voltage generator, enabling rapid formation and use.
It enables rapid generation of ozone water, improves the user experience, and simplifies the ozone water preparation process.
Smart Images

Figure CN223922312U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of ozone water preparation, and particularly relates to a water outlet device of a faucet integrated with an ozone reaction module. BACKGROUND
[0002] Ozone is an active oxygen with extremely strong oxidizing ability, and its oxidizing property in nature is only inferior to fluorine; when ozone is dissolved in water, it will rapidly decompose to generate monatomic oxygen and hydroxyl radicals with strong oxidizing action, thereby endowing ozone water with strong oxidizing ability, so that ozone water can be widely applied to the medical field, the food field, environmental protection and daily life. Among them, ozone water applied to daily life is mainly used for eliminating impurities and peculiar smell in drinking water, improving taste; or purifying food such as meat, seafood and fruit, cleaning household equipment, personal care and oral care, etc.
[0003] In the prior art, the working principle of an ozone water generating device is electrolysis, specifically, water is subjected to electrolysis reaction through voltage between electrodes; at the anode, water is oxidized to generate oxygen, and part of the oxygen is further converted into ozone.
[0004] The inventor finds that in daily life, the technical steps of first connecting tap water and then placing tap water into the device make the preparation process of ozone water more complicated, and the generated ozone water is inconvenient to receive or use, reducing the user experience. CONTENT OF THE UTILITY MODEL
[0005] The application embodiment provides a water outlet device of a faucet integrated with an ozone reaction module, aiming to quickly form ozone water and provide for relevant personnel to use, thereby guaranteeing the user experience.
[0006] To achieve the above-mentioned purpose, the technical solution adopted by the application is:
[0007] Provided is a water outlet device of a faucet integrated with an ozone reaction module, comprising:
[0008] a water outlet device main body for being fixed on a faucet and being in communication with the faucet; the water outlet device main body is provided with a first water outlet and a shunt on the water outlet device main body, and the water outlet device main body is internally provided with a control member for connecting the faucet and the first water outlet or the faucet and the shunt;
[0009] a reactor main body fixedly arranged outside the water outlet device main body, which is provided with a water injection port adapted to be in communication with the shunt and a second water outlet; and
[0010] The water storage shell is fixedly arranged in the reactor body and communicates with the water inlet; the water storage shell is provided with an overflow port and an electric voltage generator inserted into the water storage shell; the electric voltage generator is used for electrifying and contacting with liquid under the overflow port to generate ozone water.
[0011] In a possible implementation, the electric voltage generator is an electrode fixedly arranged in the water storage shell, and an anode of the electrode is used for being inserted below the liquid surface of the water storage shell.
[0012] In a possible implementation, the upper end of the reactor body adopts an open structure, and a baffle is detachably connected.
[0013] In a possible implementation, the upper side of the electrode is fixedly connected with a positioning column, and a positioning disc is arranged between the electrode and the baffle;
[0014] The outer circumferential surface of the positioning disc abuts against the inner circumferential surface of the reactor body, and the positioning disc is provided with a butt joint hole suitable for the positioning column to pass through; and the baffle is further provided with a limiting piece extending downward to abut against the positioning disc.
[0015] In a possible implementation, the water outlet body is provided with a water inlet coaxially arranged with the first water outlet and oppositely directed; the control member comprises:
[0016] A flow guide column is fixedly arranged in the water outlet body, and the flow guide column is provided with a water passage coaxially communicating with the water inlet and having an opening directed to the water inlet;
[0017] A flow distribution plate is fixedly arranged outside the flow guide column, and the flow distribution plate is provided with a flow distribution water inlet hole communicating with the water passage, a first flow distribution water outlet hole and a second flow distribution water outlet hole arranged around the flow distribution water inlet hole; the first flow distribution water outlet hole communicates with the first water outlet, and the second flow distribution water outlet hole communicates with the flow distribution outlet; and
[0018] A knob is rotationally arranged on the outer side surface of the water outlet body, and a rotation axis of the knob is coaxially arranged with the flow distribution water inlet hole; the knob is partially inserted into the water outlet body, and an insertion end of the knob is provided with a backflow groove communicating with the flow distribution water inlet hole;
[0019] The knob is suitable for rotating to the backflow groove to communicate with the first flow distribution water outlet hole, or the backflow groove to communicate with the second flow distribution water outlet hole, or the flow distribution plate to close the backflow groove.
[0020] In a possible implementation, the overflow port is arranged through the upper end surface of the water storage shell, and the outer side surface of the water storage shell is fixedly provided with a flow guide pipe penetrating in the up-down direction and communicating with the overflow port.
[0021] In a possible implementation, a filter screen disc is fixedly arranged at the first water outlet and the second water outlet.
[0022] In a possible implementation, a mounting ring is arranged on the water outlet body and the reactor body, the mounting ring is arranged around the first water outlet or the second water outlet, and a first protruding rib extending in the circumferential direction is arranged on the outer periphery of the mounting ring, and the filter screen disc further comprises:
[0023] a positioning cylinder coaxially connected with the filter screen disc and adapted to be coaxially sleeved on the outer periphery of the mounting ring, and a second protruding rib is arranged on the inner peripheral wall of the positioning cylinder, the second protruding rib is adapted to abut against one side of the first protruding rib facing the water outlet body or the reactor body, so as to limit the movement of the positioning cylinder away from the mounting ring.
[0024] In a possible implementation, a groove is formed on one side of the first protruding rib facing the water outlet body or the reactor body, and the second protruding rib has a protruding block adapted to be embedded in the groove.
[0025] In a possible implementation, the water outlet device of the faucet further comprises:
[0026] a flow sensor arranged between the shunt port and the water injection port, for monitoring the flow between the shunt port and the water injection port;
[0027] The flow sensor is electrically connected with the control module of the voltage generator, so that the voltage generator is started when the flow sensor detects flow.
[0028] In the embodiment, the faucet and the first water outlet are communicated through the control member, so that when the faucet is opened, tap water is discharged through the first water outlet. In addition, the faucet and the shunt port are communicated through the control member, so that when the faucet is opened, tap water is discharged through the shunt port to the water injection port, and then fills the inner cavity of the water storage shell. On this basis, the voltage generator electrolyzes the liquid in the water storage shell at low voltage, and the tap water is converted into ozone water. Finally, the ozone water overflows at the overflow port and is discharged to the outside through the second water outlet for the user to use.
[0029] Compared with the prior art, the faucet water outlet device with an integrated ozone reaction module provided in the embodiment can quickly form ozone water and supply it to relevant personnel, thereby ensuring the user experience. BRIEF DESCRIPTION OF DRAWINGS
[0030] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed to be used in the embodiments or prior art description will be briefly introduced. Obviously, the drawings in the following description only constitute some embodiments of the present application, and other drawings can be obtained by those skilled in the art without any creative effort based on these drawings.
[0031] Figure 1 The three-dimensional structure schematic diagram of the faucet water outlet provided with the integrated ozone reaction module in the embodiments of the present application is shown in the figure.
[0032] Figure 2 The front view of the faucet water outlet provided with the integrated ozone reaction module in the embodiments of the present application is shown in the figure. Figure 1
[0033] Figure 3 The cross-sectional structure diagram of the faucet water outlet provided with the integrated ozone reaction module in the embodiments of the present application along the A-A line in the figure. Figure 2
[0034] Figure 4 The cross-sectional structure schematic diagram of the faucet water outlet main body and the control member in the combined state in the embodiments of the present application is shown in the figure.
[0035] Figure 5 The exploded structure schematic diagram of the shunt plate and the knob in the embodiments of the present application is shown in the figure.
[0036] Figure 6 The cross-sectional structure schematic diagram of the faucet water outlet main body and the flow guide column in the combined state in the embodiments of the present application is shown in the figure.
[0037] Figure 7 The three-dimensional structure schematic diagram of the faucet water outlet main body and the mounting ring in the combined state in the embodiments of the present application is shown in the figure.
[0038] Figure 8 The three-dimensional structure schematic diagram of the filter screen disc and the positioning cylinder in the combined state in the embodiments of the present application is shown in the figure.
[0039] Figure 9 The exploded structure schematic diagram of the reactor main body and the flow sensor in the embodiments of the present application is shown in the figure.
[0040] Figure 10 The exploded structure schematic diagram of the reactor main body and the voltage generator in the embodiments of the present application is shown in the figure.
[0041] Figure 11 The three-dimensional structure schematic diagram of the reactor main body and the mounting ring in the combined state in the embodiments of the present application is shown in the figure.
[0042] Figure 12 The top view of the reactor main body and the mounting ring in the combined state in the embodiments of the present application is shown in the figure.
[0043] The reference signs are explained as follows: 1, water outlet main body; 11, first water outlet; 12, shunt; 13, water inlet; 2, reactor main body; 21, water injection port; 22, second water outlet; 23, baffle; 231, limiting sheet; 3, water storage shell; 31, overflow port; 32, flow guide pipe; 4, control member; 41, flow guide column; 411, water passage; 42, shunt plate; 421, shunt water inlet hole; 422, first shunt water outlet hole; 423, second shunt water outlet hole; 43, knob; 431, backflow groove; 5, voltage generator; 51, positioning column; 6, alignment disc; 61, butt joint hole; 7, filter disc; 8, mounting ring; 81, first convex rib; 811, groove; 9, positioning cylinder; 91, second convex rib; 911, convex block; 10, flow sensor. DETAILED DESCRIPTION
[0044] In order to make the technical problems to be solved, technical solutions and beneficial effects of the present application clearer, the present application will be further described in detail below in combination with the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and not to limit the present application.
[0045] It should be noted that when an element is referred to as being “fixed to” or “disposed on” another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being “connected to” another element, it can be directly connected to the other element or indirectly connected to the other element.
[0046] It should be understood that the terms “length”, “width”, “upper”, “lower”, “front”, “back”, “left”, “right”, “vertical”, “horizontal”, “top”, “bottom”, “inner”, “outer” and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only used to facilitate the description of the present application and simplify the description, and therefore cannot be understood as indicating or implying that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0047] In addition, the terms “first” and “second” are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined as “first” and “second” can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of “plurality” is two or more, unless otherwise specifically limited.
[0048] Please refer to Figures 1 to 12 , the integrated ozone reaction module faucet water outlet provided by the present application will be described. The integrated ozone reaction module faucet water outlet provided by the present application comprises a water outlet main body 1, a reactor main body 2 and a water storage shell 3.
[0049] The water outlet body 1 is used for being fixed on a faucet, and is communicated with an outlet of the faucet, so as to receive tap water discharged by the faucet. On this basis, the water outlet body 1 is provided with a first water outlet 11 and a shunt 12, and the first water outlet 11 faces downward and the shunt 12 faces horizontally. Moreover, the water outlet body 1 is internally provided with a control member 4, which is used for communicating the faucet with the first water outlet 11 or the shunt 12; when the control member 4 communicates the faucet with the first water outlet 11, the faucet is opened, and the tap water can be discharged at the first water outlet 11. On this basis, a filter sheet, a filter element or the like structure can be arranged at the first water outlet 11, so as to realize impurity filtration of the tap water.
[0050] The reactor body 2 is fixedly arranged outside the water outlet body 1, specifically on the side facing the shunt 12, and is connected with the water outlet body 1 through a connecting structure, so as to form an integrated structure. The reactor body 2 is provided with a water inlet 21 adapted to be communicated with the shunt 12, and a second water outlet 22 arranged downward; when the tap water is discharged through the shunt 12, the tap water can enter the inside of the reactor body 2 through the water inlet 21, and is discharged from the second water outlet 22 after reaction.
[0051] In the embodiment, the first water outlet 11 and the second water outlet 22 are consistent in direction, and when the water outlet body 1 is fixed on the faucet, the first water outlet 11 and the second water outlet 22 both face downward, so as to facilitate user use.
[0052] The water storage shell 3 is fixedly arranged inside the reactor body 2, and its inside is communicated with the water inlet 21, so as to be capable of receiving the tap water discharged from the water inlet 21 at the first time.
[0053] In the embodiment, the water storage shell 3 is provided with an overflow 31 and a voltage generator 5 inserted into the water storage shell 3; when the tap water is discharged into the water storage shell 3 through the water inlet 21, the liquid surface of the tap water gradually rises, and is finally discharged to the outside of the water storage shell 3 (inside the reactor body 2) through the overflow 31 and is discharged through the second water outlet 22. On this basis, the voltage generator 5 is used for being electrified and being in contact with the liquid on the lower side of the overflow 31, so as to generate ozone water, so that the liquid discharged from the second water outlet 22 is ozone water.
[0054] In the embodiment, the faucet and the first water outlet 11 are communicated by the control member 4, so that when the faucet is opened, tap water is discharged through the first water outlet 11. In addition, the faucet and the shunt 12 are communicated by the control member 4, so that when the faucet is opened, tap water is discharged through the shunt 12 to the water injection port 21, and then fills the inner cavity of the water storage shell 3. On this basis, the liquid in the water storage shell 3 is subjected to low-voltage electrolysis by the voltage generator 5, and the tap water is converted into ozone water. Finally, the ozone water overflows at the overflow port 31 and is discharged to the outside through the second water outlet 22 for the user to use.
[0055] The faucet water outlet provided by the embodiment can quickly form ozone water and supply the related personnel to use, thereby ensuring the use experience of the user.
[0056] In some embodiments, as shown in Figure 10 The anode of the electrode is inserted below the liquid level of the water storage shell 3.
[0057] In some embodiments, as shown in Figure 10 The upper end of the reactor body 2 adopts an open structure, and the baffle 23 for closing the opening is detachably connected.
[0058] By adopting the above technical solution, when the electrode needs to be replaced periodically, the electrode can be easily taken out and placed in by removing the baffle 23.
[0059] In some embodiments, as shown in Figure 10 The upper side of the electrode is fixedly connected with the positioning column 51. Specifically, the upper side of the motor has a horizontally extending mounting plate, and the mounting plate has a plurality of positioning columns 51 extending upward.
[0060] The electrode and the baffle 23 have the alignment disc 6, the outer circumferential surface of the alignment disc 6 abuts against the inner circumferential surface of the reactor body 2, and the alignment disc 6 has a plurality of docking holes 61 adapted for the positioning columns 51 to pass through. Specifically, the docking holes 61 also have a plurality of docking holes 61, and the number of the docking holes 61 is less than the number of the positioning columns 51, so that some of the positioning columns 51 abut against the lower side of the alignment disc 6, and the other positioning columns 51 one by one pass through the corresponding docking holes 61 and extend out.
[0061] In addition, the baffle 23 also has a limiting piece 231 extending downward to abut against the alignment disc 6, so as to limit the electrode, the alignment disc 6 and the baffle 23 two by two.
[0062] In some embodiments, as shown in Figures 4 to 6As shown, the water outlet body 1 has a water inlet 13 coaxially arranged with the first water outlet 11 and facing opposite directions. By connecting the water inlet 13 and the faucet, the communication between the drain end of the faucet and the inside of the water outlet body 1 is realized.
[0063] Based on this, the control member 4 includes a flow guide column 41, a flow distribution plate 42, and a knob 43.
[0064] The flow guide column 41 is fixedly arranged in the water outlet body 1 and has a water passage cavity 411 with an opening facing the water inlet 13 and coaxially communicating with the water inlet 13. When the faucet is opened, tap water enters the water passage cavity 411 through the water inlet 13 to realize timely reception and storage of tap water.
[0065] The flow distribution plate 42 is fixedly arranged on the outside of the flow guide column 41, specifically on the side of the flow guide column 41 facing away from the reactor body 2.
[0066] The flow distribution plate 42 has a flow distribution water inlet hole 421 communicating with the water passage cavity 411, and a first flow distribution water outlet hole 422 and a second flow distribution water outlet hole 423 arranged around the flow distribution water inlet hole 421.
[0067] The first flow distribution water outlet hole 422 communicates with the first water outlet 11, and the second flow distribution water outlet hole 423 communicates with the distribution port 12.
[0068] The knob 43 is rotationally arranged on the outside of the water outlet body 1, specifically on the side of the water outlet body 1 facing away from the reactor body 2, and the rotation axis of the knob 43 is coaxially arranged with the flow distribution water inlet hole 421. Based on this, the knob 43 is partially inserted into the water outlet body 1, the insertion end surface of the knob 43 abuts against the flow distribution plate 42, and a backflow groove 431 communicating with the flow distribution water inlet hole 421 is arranged on the insertion end surface of the knob 43. The backflow groove 431 extends along the radial direction of the insertion end of the knob 43 to expand to the outside of the flow distribution water inlet hole 421.
[0069] In actual use, the knob 43 is adapted to be rotated to make the backflow groove 431 communicate with the first flow distribution water outlet hole 422 to realize the communication between the faucet and the first water outlet 11, or to make the backflow groove 431 communicate with the second flow distribution water outlet hole 423 to realize the communication between the faucet and the distribution port 12, or to make the flow distribution plate 42 close the backflow groove 431, i.e., the backflow groove 431 does not communicate with any other hole.
[0070] It should be noted that a third flow distribution water outlet hole is also arranged on the flow distribution plate 42 and does not communicate with any hole to cooperate with the backflow groove 431 and ensure that tap water will not be discharged into the first water outlet 11 or the distribution port 12.
[0071] In some embodiments, as Figures 10 to 12As shown, the overflow port 31 is arranged through the upper end surface of the water storage shell 3 to avoid the water storage space in the water storage shell 3 as much as possible, so that the water storage shell 3 can store more liquid in a limited space. The outer side of the water storage shell 3 is fixedly provided with a flow guide pipe 32 which is arranged through in the up-down direction and communicates with the overflow port 31, so that the liquid discharged through the overflow port 31 is directed to the second water outlet 22 on the lower side.
[0072] In some embodiments, as shown in Figure 1 As shown, the first water outlet 11 and the second water outlet 22 are both fixedly provided with a filter screen disc 7 to filter impurities in the liquid and improve the cleanliness of the tap water and ozone water discharged by the device.
[0073] In some embodiments, as shown in Figure 3 , Figure 4 , Figure 7 and Figure 8 As shown, the water outlet body 1 and the reactor body 2 are both provided with a mounting ring 8 which is arranged around the corresponding first water outlet 11 or second water outlet 22, and the outer periphery of the mounting ring 8 is provided with a first rib 81 which extends along the circumference of the mounting ring 8 to form a long strip structure.
[0074] Based on the foregoing, the filter screen disc 7 further includes a positioning cylinder 9 which is coaxially connected with the filter screen disc 7 and is adapted to be coaxially sleeved on the outer periphery of the mounting ring 8.
[0075] Among them, the inner peripheral wall of the positioning cylinder 9 is provided with a second rib 91 which extends along the circumference of the positioning cylinder 9 to form a long strip structure.
[0076] By adopting the above technical scheme, when the positioning cylinder 9 and the mounting ring 8 are docked, the second rib 91 is adapted to abut against the side of the first rib 81 facing the water outlet body 1 or the reactor body 2, so as to limit the movement of the positioning cylinder 9 away from the mounting ring 8.
[0077] It should be noted that the extension end of the first rib 81 and the extension end of the second rib 91 both have a bending part, so that when the first rib 81 and the second rib 91 are rotated to the docked state, the first rib 81 abuts against the bending part on the second rib 91, and the second rib 91 abuts against the bending part on the first rib 81.
[0078] In some embodiments, as shown in Figure 8 and Figure 11 As shown, the side of the first rib 81 facing the water outlet body 1 or the reactor body 2 is provided with a groove 811, and the second rib 91 has a protruding block 911 made of elastic material which is adapted to be embedded in the groove 811, so as to limit the relative movement of the first rib 81 and the second rib 91 along the circumference of the mounting ring 8.
[0079] In some embodiments, as shown in Figure 9 The faucet water outlet further comprises a flow sensor 10, which is arranged between the shunt 12 and the water injection port 21, and is used to monitor the flow between the shunt 12 and the water injection port 21.
[0080] The flow sensor 10 is electrically connected with the control module of the voltage generator 5, so that when the flow sensor 10 detects flow, the voltage generator 5 is started, thereby reducing the manual operation steps of the device, improving the generation efficiency of ozone water and the timeliness of starting of related equipment.
[0081] The above is only a preferred embodiment of the present application, and is not used to limit the present application. Any modification, equivalent replacement and improvement made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A faucet water dispenser with an integrated ozone reaction module, characterized in that, The utility model relates to a water outlet body for fixing on a faucet and communicating with the faucet, the water outlet body having a first water outlet and a shunt on the water outlet body, and the water outlet body having a control member inside for communicating the faucet with the first water outlet or the faucet with the shunt. The reactor body is fixedly arranged outside the water outlet body and has a water injection port adapted to communicate with the shunt and a second water outlet. The water storage shell is fixedly arranged inside the reactor body and communicates with the water injection port, and the water storage shell has an overflow port and an electric voltage generator inserted into the water storage shell. The electric voltage generator is an electrode fixedly arranged in the water storage shell, and the anode of the electrode is inserted below the liquid surface of the water storage shell. The upper end of the reactor body is in an open structure and detachably connected with a baffle.
2. The integrated ozone reaction module faucet spout of claim 1, wherein, The upper side of the electrode is fixedly connected with a positioning column, and the electrode and the baffle have an alignment disc therebetween.
3. The integrated ozone reaction module faucet spout of claim 2, wherein, The outer periphery of the alignment disc abuts against the inner periphery of the reactor body, and the alignment disc has an alignment hole adapted to pass through the positioning column.
4. The integrated ozone reaction module faucet water dispenser of claim 3, wherein, The water outlet body has a water inlet coaxially arranged with the first water outlet and oppositely directed. The control member includes a flow guide column fixedly arranged in the water outlet body and having a water passage with an opening directed toward the water inlet and coaxially communicating with the water inlet, a shunt plate fixedly arranged outside the flow guide column and having a shunt water inlet hole communicating with the water passage and a first shunt water outlet hole and a second shunt water outlet hole arranged around the shunt water inlet hole, wherein the first shunt water outlet hole communicates with the first water outlet, and the second shunt water outlet hole communicates with the shunt, and a knob rotatably arranged on the outer side of the water outlet body and having a rotation axis coaxially arranged with the shunt water inlet hole, wherein the knob is partially inserted into the water outlet body and has a backflow groove at the insertion end communicating with the shunt water inlet hole.
5. The integrated ozone reaction module faucet spout of claim 1, wherein, The overflow port is arranged through the upper end surface of the water storage shell, and the outer side surface of the water storage shell is fixedly arranged with a flow guide pipe penetrating in the up-down direction and communicating with the overflow port. The first water outlet and the second water outlet are each fixedly arranged with a filter screen disc. The water outlet body and the reactor body are each arranged with a mounting ring arranged around the first water outlet or the second water outlet and having a first convex rib extending along the circumferential direction on the outer periphery, and the filter screen disc further includes 6. The integrated ozone reaction module faucet spout of claim 1, wherein, 7. The integrated ozone reaction module faucet spout of claim 1, wherein, 8. The integrated ozone reaction module faucet spout of claim 7, wherein, A positioning cylinder is coaxially connected with the filter screen disc and is adapted to be coaxially sleeved on the outer periphery of the mounting ring; a second protruding rib is arranged on the inner peripheral wall of the positioning cylinder, and the second protruding rib is adapted to abut against one side of the water dispenser body or the reactor body towards the first protruding rib to limit the movement of the positioning cylinder away from the mounting ring.
9. The integrated ozone reaction module faucet spout of claim 8, wherein, The first protruding rib is provided with a groove on one side towards the water dispenser body or the reactor body, and the second protruding rib has a protruding block adapted to be embedded in the groove.
10. The integrated ozone reaction module faucet spout of any one of claims 1-9, wherein, The faucet water dispenser further comprises: A flow sensor is arranged between the shunt port and the water injection port for monitoring the flow between the shunt port and the water injection port; The flow sensor is electrically connected with the control module of the voltage generator, so that the voltage generator is started when the flow sensor detects flow.