Water outlet structure and shower device

By designing a water outlet structure with a guide plate and a water baffle, a periodic alternating water outlet pattern of the shower head is achieved, solving the problem of the single water outlet mode of the shower head and improving the massage effect and user experience.

CN223832543UActive Publication Date: 2026-01-27FOSHAN DAHUI BIO TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520004376.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-02
Publication Date
2026-01-27
Estimated Expiration
2035-01-02

AI Technical Summary

Technical Problem

Existing showerheads have a single water flow pattern, an insignificant massage effect, and a fixed massage area, which cannot meet the diverse showering needs of users.

Method used

Design a water outlet structure including a shell, a water baffle and a guide plate. The rotation of the guide plate drives the water baffle to switch between a first position and a second position, realizing a periodic alternating water outlet pattern. Combined with the power transmission of the guide plate, impeller and swing plate, a variety of water outlet effects can be achieved.

Benefits of technology

The massage effect of the shower device has been improved, and the massage water area has been dynamically changed to enhance the user experience.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223832543U_ABST
    Figure CN223832543U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of bathroom accessories, and discloses a water outlet structure and a shower device, the water outlet structure comprises a shell, a water retaining piece and a guide disc, the shell is provided with a plurality of water outlet holes, and each water outlet hole is provided with a first water outlet channel and a second water outlet channel which are communicated with the water outlet hole and are mutually independent. The first water outlet channel and the second water outlet channel corresponding to each water outlet hole are each provided with a water retaining piece, and the water retaining pieces can be movably switched between a first position and a second position. The guide disc is rotationally arranged in the shell and can drive the at least one water retaining piece to be switched between the first position and the second position in a reciprocating mode when rotating, so that at least one of the multiple water outlet holes periodically and alternately discharges water between the first mode and the second mode. The same water outlet hole of the water outlet structure can generate at least two kinds of water spray regularly, the positions of the water outlet holes for switching the water outlet modes are different at different moments, the water outlet area of massage water can be dynamically changed, the better massage effect is achieved, and the use experience feeling of the shower device is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of bathroom technology, and in particular to a water outlet structure and shower device. Background Technology

[0002] Showerheads are essential bathroom products, providing convenience for users to shower. Currently, showerheads typically produce a straight stream of water with a limited variety of spray patterns.

[0003] Some showerheads with massage functions typically use an impeller designed to intermittently block some of the water outlets as it rotates, creating a pulsating water flow. However, the massage effect is not significant. Furthermore, the positions of the water outlets that produce massage water in existing showerheads are fixed, meaning the massage area is fixed, which cannot meet higher showering requirements and results in a poor user experience.

[0004] Therefore, there is an urgent need for a water outlet structure and shower device to solve the above problems. Utility Model Content

[0005] Based on the above problems, the purpose of this utility model is to provide a water outlet structure and shower device, which has a more diversified water outlet mode, can improve the massage effect of the shower device, and enhance the user experience.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] On the one hand, a water outlet structure is provided, including:

[0008] The housing has multiple water outlet holes, and the housing is provided with a first water outlet channel and a second water outlet channel that are connected to and independent of each water outlet hole;

[0009] A water-blocking component is provided for each of the first and second water outlet channels of each of the water outlet holes, and the water-blocking component can be switched between a first position and a second position.

[0010] In the first position, the water-blocking component blocks the inlet of the first water outlet channel and opens the inlet of the second water outlet channel, and the water outlet discharges water in the second mode; in the second position, the water-blocking component blocks the inlet of the second water outlet channel and opens the inlet of the first water outlet channel, and the water outlet discharges water in the first mode.

[0011] A guide plate is rotatably disposed within the housing and at least partially acts on the water-blocking component. When the guide plate rotates, it can drive at least one of the water-blocking components to reciprocate between the first position and the second position, so that at least one of the plurality of water outlets periodically alternates water discharge between the first mode and the second mode, and the remaining water outlets periodically alternate water discharge between the second mode and the first mode.

[0012] As an optional solution for the water outlet structure of this utility model, the water baffle is slidably disposed in the housing along a preset direction;

[0013] The guide disc has a non-circular annular guide protrusion, and the water-blocking component has a movable groove. The annular guide protrusion is at least partially engaged with and slidably fitted into the movable groove. When the guide disc rotates, the annular guide protrusion can push against the wall of the movable groove, thereby driving the water-blocking component to slide along the preset direction; or...

[0014] The guide plate is provided with a pushing protrusion, and an elastic element is provided between the water-blocking element and the housing. When the guide plate rotates, the pushing protrusion can abut against the water-blocking element and push the water-blocking element to slide towards the first position, and the elastic element is squeezed to generate elastic deformation. When the guide plate rotates to the point where the pushing protrusion disengages from the water-blocking element, the elastic element can drive the water-blocking element to slide towards the second position.

[0015] As an optional solution for the water outlet structure of this utility model, the annular guide protrusion includes a connected arc segment and at least one outwardly convex arc segment. The center of the arc segment is the rotation center of the guide disk, and the center of the outwardly convex arc segment is offset from the rotation center of the guide disk.

[0016] Multiple water outlets are arranged at intervals along the circumference. During the rotation of the guide disc, the convex arc segment can drive the water-blocking member to slide toward the first position one by one along the circumference, and the arc segment can drive the water-blocking member to slide toward the second position, so that at least one water outlet can periodically alternate water discharge between the first mode and the second mode along the circumference.

[0017] As an optional solution for the water outlet structure of this utility model, a rotating plate is provided on the side of the guide disc facing the water baffle. The rotating plate is located in the space formed by the plurality of water baffles. The pushing protrusion protrudes from the outer edge of the rotating plate, and at least one pushing protrusion is provided on the rotating plate.

[0018] The multiple water outlets are arranged at intervals along the circumference. During the rotation of the guide disc, the pushing protrusions drive the water-blocking member to slide from the second position to the first position one by one along the circumference, so that at least one of the water outlets periodically alternates water discharge between the first mode and the second mode along the circumference.

[0019] As an optional solution for the water outlet structure of this utility model, the water baffle is provided with a first limiting part and a second limiting part at intervals, and the movable groove is formed between the first limiting part and the second limiting part;

[0020] And / or, the housing is provided with a sliding groove, and the water-blocking member is at least partially located in the sliding groove and slides in cooperation with the sliding groove in the preset direction;

[0021] And / or, the inlet end of the first water outlet channel is the first inlet, the inlet end of the second water outlet channel is the second inlet, and the first inlet and the second inlet are arranged at intervals along the sliding direction of the water baffle.

[0022] As an optional solution for the water outlet structure of this utility model, one of the first water outlet channel and the second water outlet channel is a first straight channel, and the first straight channel is coaxially and directly opposite to the water outlet hole.

[0023] The other of the first water outlet channel and the second water outlet channel includes a second straight channel, a buffer channel and at least one guide channel connected in sequence. The second straight channel is offset from the water outlet, and the end of the guide channel away from the buffer channel is connected to the water outlet.

[0024] As an optional solution to the water outlet structure of this utility model, the first water outlet channel or the second water outlet channel includes the second straight channel, the buffer channel and at least two flow guiding channels connected in sequence, and the outlets of the at least two flow guiding channels are arranged opposite to each other;

[0025] And / or, the cross-sectional area of ​​the buffer channel gradually decreases or increases along the water outlet direction.

[0026] As an optional embodiment of the water outlet structure of this utility model, the water baffle is provided with a water inlet hole. In the first position, the water inlet hole is connected to the water inlet end of the second water outlet channel; in the second position, the water inlet hole is offset from the water inlet end of the second water outlet channel.

[0027] And / or, the water-blocking member has a third position, in which the water-blocking member partially blocks the water inlet end of the first water outlet channel and partially blocks the water inlet end of the second water outlet channel, and the water outlet outlet discharges water in a third mode.

[0028] As an optional embodiment of the water outlet structure of this utility model, the water outlet structure further includes a water guide plate, an impeller, and a swing plate. The water guide plate, the impeller, the swing plate, and the guide plate are sequentially arranged inside the housing along the water inlet direction. The impeller is rotatably connected to the water guide plate, the swing plate is connected to the impeller and is eccentrically arranged relative to the rotation center of the impeller, and the guide plate is drively connected to the swing plate. The water guide plate is provided with an inclined water guide hole, and the water flow output through the water guide hole can drive the impeller to drive the swing plate to rotate eccentrically, so that the swing plate drives the guide plate to rotate inside the housing.

[0029] And / or, the water outlet structure further includes a cover, the housing has a receiving cavity, the water baffle and the guide plate are both located in the receiving cavity, the cover is detachably connected to the housing and can block the opening of the receiving cavity; the cover is provided with a water inlet pipe connector, one end of the water inlet pipe connector is connected to the receiving cavity, and the other end is configured to be connected to the water inlet pipe.

[0030] On the other hand, a shower device is provided, including a main structure and a water outlet structure as described above, wherein the main structure is provided with an installation cavity, and the water outlet structure is installed in the installation cavity.

[0031] The beneficial effects of this utility model are as follows:

[0032] The water outlet structure and shower device provided by this utility model allow the guide plate to rotate within the housing when water flows through it. Simultaneously, the guide plate drives at least one water-blocking component to move within the housing. When the water-blocking component moves to the first position, it blocks the inlet of the first water outlet channel and opens the inlet of the second water outlet channel. Water then flows through the second water outlet channel to the water outlet hole, which discharges water in a second mode. When the water-blocking component moves to the second position, it blocks the inlet of the second water outlet channel and opens the inlet of the first water outlet channel. Water then flows through the first water outlet channel to the water outlet hole, which discharges water in a first mode. As the guide plate rotates continuously, the water-blocking component switches back and forth between the first and second positions, ensuring that the same water outlet hole of this water outlet structure can regularly produce both first and second mode water sprays to provide a massage effect to the user.

[0033] Furthermore, as the guide disc rotates at different angles, it moves the water-blocking components at different positions to the first position, thereby switching the water outlets at different positions from the first mode to the second mode. That is, at any given moment, at least one of the multiple water outlets is dispensing water in the second mode, while the rest are dispensing water in the first mode. At different times, at least one water outlet at a corresponding position switches from the first mode to the second mode, thus changing the water outlet area of ​​the massage water, dynamically altering the massage water flow, and ultimately providing a better massage effect, improving bathing comfort, and enhancing the user experience of the shower device. Attached Figure Description

[0034] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments of this utility model will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the content of the embodiments of this utility model and these drawings without creative effort.

[0035] Figure 1 This is a schematic diagram of the water outlet structure provided in a specific embodiment of this utility model;

[0036] Figure 2 This is a longitudinal cross-sectional view of the water outlet structure provided in a specific embodiment of this utility model;

[0037] Figure 3 This is a first exploded view of the water outlet structure provided in a specific embodiment of this utility model;

[0038] Figure 4 This is a second exploded view of the water outlet structure provided in a specific embodiment of this utility model;

[0039] Figure 5 This is a schematic diagram of the cooperation between the swing disk and the housing provided in a specific embodiment of this utility model;

[0040] Figure 6 This is a schematic diagram of the cooperation between the annular guide protrusion of the guide disc and the water-blocking component provided in a specific embodiment of this utility model;

[0041] Figure 7 This is a first cross-sectional view of the water outlet structure provided in a specific embodiment of this utility model;

[0042] Figure 8 This is a second cross-sectional view of the water outlet structure provided in a specific embodiment of this utility model;

[0043] Figure 9 This is a flow chart of the water outlet structure provided in Embodiment 1 of this utility model;

[0044] Figure 10 This is a schematic diagram of the water outlet shape of the water outlet structure provided in Embodiment 1 of this utility model;

[0045] Figure 11 This is a longitudinal cross-sectional view of the water outlet structure provided in Embodiment 2 of this utility model;

[0046] Figure 12 This is a first cross-sectional view of the water outlet structure provided in Embodiment 2 of this utility model;

[0047] Figure 13 This is a second cross-sectional view of the water outlet structure provided in Embodiment 2 of this utility model;

[0048] Figure 14 This is a flow chart of the water outlet structure provided in Embodiment 2 of this utility model;

[0049] Figure 15 This is a schematic diagram of the cooperation between the annular guide protrusion of the guide disc and the water-blocking component provided in Embodiment 3 of this utility model;

[0050] Figure 16 This is a schematic diagram of the cooperation between the rotating plate of the guide disc and the water-blocking component provided in Embodiment 4 of this utility model;

[0051] Figure 17 This is a schematic diagram of the shower device provided in a specific embodiment of the present invention.

[0052] In the picture:

[0053] 1-Shell; 2-Water baffle; 3-Guide plate; 4-Water guide plate; 5-Impeller; 6-Swing plate; 7-Cap; 8-Shaft;

[0054] 10-Accommodation cavity; 11-Water outlet hole; 12-First water outlet channel; 13-Second water outlet channel; 14-Slide groove; 15-Limiting block; 16-Protruding post; 17-Second tooth; 18-First connecting lug;

[0055] 110 - Second straight channel; 120 - Buffer channel; 130 - Guide channel; 140 - Separator protrusion; 121 - First inlet; 131 - Second inlet;

[0056] 21-Moving groove; 22-First limiting part; 23-Second limiting part; 24-Water inlet hole;

[0057] 31-Annular guide protrusion; 32-Insertion part; 33-Third shaft hole; 34-Second through hole;

[0058] 35 - Pushing protrusion; 36 - Rotating plate;

[0059] 311 - Circular arc segment; 312 - Outwardly convex arc segment; 313 - Transition segment;

[0060] 41-Water guide hole; 42-First insertion hole;

[0061] 51-Eccentric convex shaft; 52-First shaft hole;

[0062] 61-Second shaft hole; 62-First tooth; 63-First through hole;

[0063] 71-Inlet pipe connector; 72-Second connecting lug; 73-Pressure ring;

[0064] 100 - Main structure. Detailed Implementation

[0065] To make the technical problems solved by this utility model, the technical solutions adopted, and the technical effects achieved clearer, the technical solutions of the embodiments of this utility model will be further described in detail below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0066] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this utility model and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Specifically, the terms "first position" and "second position" refer to two different positions.

[0067] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to fixed connections or detachable connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0068] Example 1

[0069] like Figures 1 to 10As shown, this embodiment provides a water outlet structure with more diverse water outlet modes, which can improve the massage effect of the shower device and enhance the user experience. The water outlet structure includes a housing 1, a water baffle 2, and a guide plate 3.

[0070] Among them, see Figure 1 , Figure 2 , Figure 3 and Figure 4 The housing 1 has multiple water outlet holes 11, and for each water outlet hole 11, the housing 1 is provided with a first water outlet channel 12 and a second water outlet channel 13 that are connected to and independent of each other. That is, the housing 1 is provided with multiple sets of independent first water outlet channels 12 and second water outlet channels 13, wherein the water outlet end of the first water outlet channel 12 and the water outlet end of the second water outlet channel 13 in the same set are connected to the corresponding water outlet hole 11. Each first water outlet channel 12 and second water outlet channel 13 corresponding to each water outlet hole 11 is provided with a water baffle 2, and the water baffle 2 can be switched between a first position and a second position.

[0071] See Figure 2 In the first position, the water-blocking component 2 blocks the water inlet of the first water outlet channel 12 and opens the water inlet of the second water outlet channel 13, and the water outlet 11 discharges water in the second mode; in the second position, the water-blocking component 2 blocks the water inlet of the second water outlet channel 13 and opens the water inlet of the first water outlet channel 12, and the water outlet 11 discharges water in the first mode.

[0072] The guide disk 3 is rotatably disposed inside the housing 1 and can at least partially act on the water baffle 2. When the guide disk 3 rotates, it can drive at least one water baffle 2 to switch back and forth between the first position and the second position, so that at least one of the multiple water outlets 11 periodically alternates water discharge between the first mode and the second mode, and the remaining water outlets 11 periodically alternate water discharge between the second mode and the first mode.

[0073] Specifically, when water flows into the housing 1, the guide plate 3 can rotate within the housing 1. Simultaneously, the guide plate 3 drives at least one water-blocking component 2 to move within the housing 1. When the water-blocking component 2 moves to the first position, it blocks the inlet of the first water outlet channel 12 and opens the inlet of the second water outlet channel 13. At this time, water flows through the second water outlet channel 13 to the water outlet hole 11, which then discharges water in the second mode. When the water-blocking component 2 moves to the second position, it blocks the inlet of the second water outlet channel 13 and opens the inlet of the first water outlet channel 12. At this time, water flows through the first water outlet channel 12 to the water outlet hole 11, which then discharges water in the first mode. As the guide plate 3 rotates continuously, the water-blocking component 2 switches back and forth between the first and second positions, ensuring that the same water outlet hole 11 of this water outlet structure can regularly produce both the first and second modes of water spray, thus providing a massage effect to the user.

[0074] Furthermore, as the guide plate 3 rotates at different angles, it moves the water-blocking components 2 at different positions to the first position, thereby switching the water outlets 11 at different positions from the first mode to the second mode. That is, at any given moment, at least one of the multiple water outlets 11 is discharging water in the second mode, while the remaining outlets 11 are discharging water in the first mode. At the next moment, the outlet 11 discharging water in the second mode switches back to discharging water in the first mode, and at least one of the multiple outlets 11 discharging water in the first mode switches back to discharging water in the second mode. Thus, at different times, at least one outlet 11 at a corresponding position switches from the first mode to the second mode, thereby changing the water outlet area of ​​the massage water, dynamically changing the massage water, and ultimately providing a better massage effect, improving bathing comfort, and enhancing the user experience of the shower device.

[0075] See Figure 2 , Figure 3 and Figure 4 The water outlet structure also includes a water guide plate 4, an impeller 5, and a swing plate 6. The water guide plate 4, impeller 5, swing plate 6, and guide plate 3 are arranged sequentially in the housing 1 along the water inlet direction. The impeller 5 is rotatably connected to the water guide plate 4, the swing plate 6 is connected to the impeller 5 and is eccentrically set relative to the rotation center of the impeller 5, and the guide plate 3 is drively connected to the swing plate 6. The water guide plate 4 is provided with an inclined water guide hole 41. The water flow output through the water guide hole 41 can drive the impeller 5 to drive the swing plate 6 to rotate eccentrically, so that the swing plate 6 drives the guide plate 3 to rotate in the housing 1.

[0076] Specifically, the water flows sequentially through the guide plate 4, impeller 5, oscillating plate 6, and guide plate 3, finally exiting from the outlet 11. The inclined guide plate 41 changes the direction of water flow, causing the water to flow obliquely towards the impeller 5, generating a rotational torque on the impeller 5 and driving it to rotate within the housing 1. Simultaneously, the impeller 5 drives the oscillating plate 6 to rotate eccentrically within the housing 1, which in turn drives the guide plate 3 to rotate synchronously within the housing 1. The guide plate 3 then drives the baffle 2 to switch between a first position and a second position, blocking the inlet end of the first outlet channel 12 or the inlet end of the second outlet channel 13, thus allowing the outlet 11 to alternately switch between the first and second modes. That is, the guide plate 3 is driven to rotate using the kinetic energy of the water flow itself, eliminating the need for an additional power mechanism and simplifying the structural design. The eccentric motion of the oscillating plate 6 decelerates the guide plate 3, making its rotation speed more uniform, thereby ensuring more stable movement of the baffle 2 and guaranteeing a stable water flow.

[0077] See Figure 3 and Figure 4The water guide plate 4 has multiple inclined water guide holes 41 spaced circumferentially, and the inclination direction of the multiple water guide holes 41 is consistent to ensure that sufficient water flow impact force acts on the impeller 5, ensuring smooth rotation of the impeller 5. For example, three water guide holes 41 are equally spaced circumferentially to make the force on the impeller 5 more even. In other embodiments, the number of water guide holes 41 can be increased or decreased as needed.

[0078] See Figure 2 , Figure 3 and Figure 4 The water outlet structure also includes a rotating shaft 8, a first insertion hole 42 on the water guide plate 4, a first shaft hole 52 on the impeller 5, a second shaft hole 61 on the swing plate 6, a third shaft hole 33 on the guide plate 3, and a protruding post 16 coaxial with the third shaft hole 33 protruding inside the housing 1. The protruding post 16 is inserted into the third shaft hole 33 and rotates with the third shaft hole 33. A second insertion hole is provided on the protruding post 16. One end of the rotating shaft 8 is inserted into the first insertion hole 42, and the other end passes through the first shaft hole 52, the second shaft hole 61, and the third shaft hole 33 in sequence before being inserted into the second insertion hole. The rotating shaft 8 rotates with the first insertion hole 42 and the second insertion hole, or the rotating shaft 8 rotates with the first shaft hole 52, so that the impeller 5 can rotate relative to the water guide plate 4 under the action of water flow. An eccentric convex shaft 51 protrudes from the side of the impeller 5 facing the oscillating disk 6. The eccentric convex shaft 51 is eccentrically positioned relative to the first shaft hole 52, and the eccentric convex shaft 51 is inserted and fixed in the second shaft hole 61 so that the impeller 5 can drive the oscillating disk 6 to rotate eccentrically when it rotates.

[0079] See Figure 3 and Figure 5 The oscillating disc 6 has multiple first teeth 62 arranged circumferentially, and the inner wall of the housing 1 has multiple second teeth 17 arranged circumferentially. The first teeth 62 and the second teeth 17 mesh and drive each other, wherein the number of first teeth 62 is less than the number of second teeth 17. When the impeller 5 rotates under the action of water flow, the eccentric cam shaft 51 drives the oscillating disc 6 to rotate eccentrically. At the same time, some of the first teeth 62 on the oscillating disc 6 mesh and drive with some of the second teeth 17 inside the housing 1, so that the oscillating disc 6 can rotate eccentrically stably inside the housing 1 and form a certain differential speed ratio, thereby reducing the rotational speed of the oscillating disc 6, making the rotational speed of the guide disc 3 appropriate and uniform, ensuring that the water flow velocity sprayed from the water outlet 11 is not too high or too low, and achieving a better massage effect.

[0080] See Figure 3 and Figure 4One of the swing disk 6 and the guide disk 3 is provided with a plug-in part 32, and the other is provided with a first through hole 63. The plug-in part 32 is inserted into the first through hole 63 and can move within the first through hole 63. When the swing disk 6 rotates, the wall of the first through hole 63 pushes against the plug-in part 32, thereby causing the guide disk 3 to rotate. This allows the swing disk 6 to drive the guide disk 3 to rotate, thus driving the water-blocking member 2 to switch back and forth between the first position and the second position. The movement of the plug-in part 32 within the first through hole 63 can accommodate the eccentric movement of the swing disk 6 and prevent interference between the two.

[0081] Furthermore, the oscillating disk 6 is provided with multiple first through holes 63, the guide disk 3 is provided with multiple second through holes 34, and multiple insertion parts 32 are provided, with each insertion part 32 located between two adjacent second through holes 34. The number of insertion parts 32 is less than the number of first through holes 63, ensuring smooth water flow. The diameter of the first through holes 63 is larger than the diameter of the second through holes 34, ensuring that the water flowing through the impeller 5 can smoothly flow to the inlet end of the first water outlet channel 12 and the inlet end of the second water outlet channel 13 through the multiple first through holes 63 and the multiple second through holes 34.

[0082] See Figure 2 , Figure 3 and Figure 4 The water outlet structure also includes a cover 7. The housing 1 has a receiving cavity 10. The water guide plate 4, impeller 5, swing plate 6, water baffle 2, and guide plate 3 are all located within the receiving cavity 10. The cover 7 is detachably connected to the housing 1 and can seal the opening of the receiving cavity 10, so that each moving part can move stably within the housing 1. Further, the cover 7 is provided with a water inlet pipe connector 71. One end of the water inlet pipe connector 71 is connected to the receiving cavity 10, and the other end is configured to connect to a water inlet pipe. The water inlet pipe is used for water supply, and water flows into the housing 1 through the water inlet pipe connector 71. Exemplarily, the water inlet pipe connector 71 is provided with an external thread, which can be threadedly connected to the water inlet pipe for easy disassembly and assembly. The water inlet pipe can be an internal pipe of the shower device or a water supply pipe for a bathroom, etc.

[0083] Continue reading Figure 2 , Figure 3 and Figure 4 The housing 1 is provided with a first connecting ear 18, and the cover 7 is provided with a second connecting ear 72. The first connecting ear 18 and the second connecting ear 72 can be connected and fixed by fasteners such as screws or bolts, which is convenient to assemble and reliable. Furthermore, the cover 7 is provided with a clamping ring 73 on the side facing the housing 1, and the inner ring of the housing 1 is provided with a stepped surface. The outer edge of the water guide plate 4 rests on the stepped surface. After the cover 7 is connected and fixed to the housing 1, the clamping ring 73 abuts against the water guide plate 4 to ensure that the water guide plate 4 is firmly fixed inside the housing 1.

[0084] Optionally, the water-blocking component 2 is slidably disposed within the housing 1 along a preset direction. When the guide disk 3 rotates, it drives the water-blocking component 2 to slide, thereby blocking the water inlet end of the first water outlet channel 12 or the water inlet end of the second water inlet channel. In this embodiment, the preset direction is the radial direction of the guide disk 3.

[0085] See Figure 2 , Figure 3 , Figure 4 and Figure 6 The water-blocking component 2 is provided with a water inlet hole 24. In the first position, the water inlet hole 24 is connected to the water inlet end of the second water outlet channel 13. In the second position, the water inlet hole 24 is offset from the water inlet end of the second water outlet channel 13. This allows the water-blocking component 2 to block the water inlet end of the first water outlet channel 12 and open the water inlet end of the second water outlet channel 13 when it slides to the first position, and to block the water inlet end of the second water outlet channel 13 and open the water inlet end of the first water outlet channel 12 when it slides to the second position.

[0086] For example, the size of the water inlet hole 24 is approximately the same as the size of the water inlet end of the second water outlet channel 13 to ensure smooth water intake. In other embodiments, a notch can also be made on the water baffle 2, so that in the first position, the water inlet end of the second water outlet channel 13 is exposed through the notch, allowing the second water outlet channel 13 to be open.

[0087] In some other alternative embodiments, the water baffle 2 can also be rotatably disposed within the housing 1, and the water baffle 2 can be switched between a first position and a second position by driving the water baffle 2 to rotate.

[0088] In this embodiment, see Figure 4 and Figure 6 The guide disc 3 has a non-circular annular guide protrusion 31, and the water-blocking component 2 has a movable groove 21. The annular guide protrusion 31 is at least partially engaged with and slides in the movable groove 21. During the rotation of the guide disc 3, the annular guide protrusion 31 can push against the groove wall of the movable groove 21, thereby driving the water-blocking component 2 to slide along a preset direction. When the guide disc 3 rotates, the annular guide protrusion 31 rotates synchronously with the guide disc 3. The engagement of the annular guide protrusion 31 with the movable groove 21 can link the rotation of the guide disc 3 with the sliding action of the water-blocking component 2. Since the annular guide protrusion 31 is non-circular, its rotation trajectory is also non-circular. At different times during the rotation of the guide disc 3, the annular guide protrusion 31 enters the movable groove 21 of the water-blocking component 2 at different positions, thereby pushing or pulling the water-blocking component 2 to slide along a preset direction, and thus causing the water-blocking component 2 to slide towards a first position or a second position.

[0089] See Figure 4 and Figure 6The annular guide protrusion 31 includes a connected arc segment 311 and at least one outwardly convex arc segment 312. The center of the arc segment 311 is the rotation center of the guide disk 3, and the center of the outwardly convex arc segment 312 is offset from the rotation center of the guide disk 3. During the rotation of the guide disk 3, the outwardly convex arc segment 312 can drive the water-blocking member 2 to slide towards a first position, and the arc segment 311 can drive the water-blocking member 2 to slide towards a second position.

[0090] Specifically, when the guide disc 3 rotates until the outwardly convex arc-shaped section 312 enters the movable groove 21 of the water-blocking member 2, the outwardly convex arc-shaped section 312 can generate a pushing force on the water-blocking member 2, thereby causing the water-blocking member 2 to slide outward along the radial direction of the guide disc 3, that is, to slide towards the first position, so as to open the water inlet end of the second water outlet channel 13 and block the water inlet end of the first water outlet channel 12; when the guide disc 3 rotates until the arc-shaped section 311 enters the movable groove 21 of the water-blocking member 2, the arc-shaped section 311 can generate a pulling force on the water-blocking member 2, thereby causing the water-blocking member 2 to slide inward along the radial direction of the guide disc 3, that is, to slide towards the second position, so as to open the water inlet end of the first water outlet channel 12 and block the water inlet end of the second water outlet channel 13. This cycle repeats, causing the water-blocking member 2 to switch back and forth between the first position and the second position, and the water outlet 11 regularly switches between the first mode and the second mode to output water.

[0091] See Figure 6 Multiple water outlets 11 are arranged at intervals along the circumference. Correspondingly, multiple water baffles 2 are arranged at intervals along the circumference inside the housing 1. The multiple water baffles 2 correspond one-to-one with multiple sets of first water outlet channels 12 and second water outlet channels 13. During the rotation of the guide plate 3, the outwardly convex arc-shaped section 312 can drive the water baffles 2 to slide from the second position to the first position one by one along the circumference, so that at least one water outlet 11 can periodically alternate water outlets between the first mode and the second mode along the circumference.

[0092] In this embodiment, taking the annular guide protrusion 31 including an outwardly convex arc segment 312 as an example, refer to... Figure 6 In the initial state, the upper right corner water-blocking component 2 is in the first position, while the other water-blocking components 2 are in the second position or between the first and second positions. At this time, the water outlet 11 corresponding to this position discharges water in the second mode. When the guide plate 3 rotates a certain angle, the outwardly convex arc segment 312 enters the movable groove 21 of the rightmost water-blocking component 2, and the water-blocking component 2 slides to the first position. At the same time, the upper right corner water-blocking component 2 slides towards the second position. At this time, the water outlet 11 corresponding to the rightmost water-blocking component 2 discharges water in the second mode. This cycle repeats, with each of the circumferential water outlets 11 switching from the first mode to the second mode, achieving dynamic switching of the water discharge modes of multiple water outlets 11 and improving the massage effect of the water spray generated by the water outlet structure.

[0093] Optionally, the water-blocking member 2 also has a third position. In the third position, the water-blocking member 2 partially blocks the water inlet end of the first water outlet channel 12 and partially blocks the water inlet end of the second water outlet channel 13, and the water outlet 11 discharges water in the third mode. That is, the third position is between the first and second positions, such as... Figure 6 As shown, when the guide plate 3 drives the water baffle 2 to slide to the third position, the first water outlet channel 12 and the second water outlet channel 13 are both partially open. At this time, the water can flow through the first water outlet channel 12 and the second water outlet channel 13 to the water outlet hole 11 at the same time, so that the water outlet hole 11 emits water in the third mode. The water outlet structure can generate water splashes in the third mode, which can further improve the massage effect of the water outlet structure.

[0094] See Figure 6 The annular guide protrusion 31 also includes a transition section 313, through which the arc section 311 is connected to the outwardly convex arc section 312. When the guide disc 3 rotates to the point where the transition section 313 enters the movable groove 21 of the water baffle 2, the transition section 313 drags or pushes the water baffle 2 to the third position, thereby opening a portion of the water inlet end of the first water outlet channel 12 and the water inlet end of the second water outlet channel 13.

[0095] For example, such as Figure 6 As shown, the arc segment 311 is approximately semi-circular, and the convex arc segment 312 and the transition segment 313 are approximately semi-elliptical. In other embodiments, the annular guide protrusion 31 may also be other non-circular shapes.

[0096] See Figure 3 and Figure 6 The water-blocking member 2 is provided with a first limiting part 22 and a second limiting part 23 at intervals, and a movable groove 21 is formed between the first limiting part 22 and the second limiting part 23. When the outwardly convex arc-shaped section 312 of the annular guide protrusion 31 enters the movable groove 21, the outwardly convex arc-shaped section 312 pushes against the first limiting part 22, driving the water-blocking member 2 to slide towards the first position; when the arc-shaped end of the annular guide protrusion 31 enters the movable groove 21, the arc-shaped section 311 pushes against the second limiting part 23, causing the water-blocking member 2 to slide towards the second position.

[0097] For example, the water-blocking member 2 is a strip structure, and the first limiting part 22 and the second limiting part 23 are both protrusions protruding from the water-blocking member 2. The outer contour of the protrusions is smoothly transitioned to ensure that the annular guide protrusion 31 rotates smoothly with the guide plate 3.

[0098] See Figure 3 and Figure 6 The housing 1 is provided with a sliding groove 14, and the water-blocking component 2 is at least partially located in the sliding groove 14 and slides in a preset direction with the sliding groove 14. This configuration ensures that the water-blocking component 2 always slides along the preset direction and accurately switches between the first position and the second position.

[0099] In this embodiment, multiple water-blocking components 2 are provided, and multiple limiting blocks 15 are arranged circumferentially inside the housing 1. A sliding groove 14 is formed between each two adjacent limiting blocks 15, and a water-blocking component 2 is slidably arranged in each sliding groove 14, so that multiple water-blocking components 2 can move along a set trajectory.

[0100] See Figure 3 and Figure 6 The inlet end of the first water outlet channel 12 is the first inlet 121, and the inlet end of the second water outlet channel 13 is the second inlet 131. The first inlet 121 and the second inlet 131 are arranged at intervals along the sliding direction of the water-blocking member 2. With this arrangement, when the water-blocking member 2 slides a certain distance in the preset direction, it can block the first inlet 121 or the second inlet 131.

[0101] In other embodiments, if the water-blocking member 2 is designed to swing left and right, the first inlet 121 and the second inlet 131 can be arranged alternately on the swing path of the water-blocking member 2.

[0102] Optionally, see Figure 2 , Figure 7 and Figure 8 One of the first water outlet channel 12 and the second water outlet channel 13 is a first straight channel, which is coaxially and directly opposite the water outlet hole 11. The other of the first water outlet channel 12 and the second water outlet channel 13 includes a second straight channel 110, a buffer channel 120 and at least one guide channel 130 connected in sequence. The second straight channel 110 is staggered from the water outlet hole 11, and the end of the guide channel 130 away from the buffer channel 120 is connected to the water outlet hole 11. The first straight channel is coaxially aligned with the water outlet 11, causing the water flowing through the first straight channel to the water outlet 11 to be sprayed out in a columnar shape (first mode), which has a certain impact force. The second straight channel 110 is staggered with the water outlet 11, causing the water flowing through the second straight channel 110, buffer channel 120, and guide channel 130 to the water outlet 11 to be sprayed out in an umbrella shape or granular shape (second mode), which is gentler. Multiple water outlets 11 spray columnar water and granular water alternately in sequence, which can form a shower water with alternating force and gentleness, effectively improving the massage effect.

[0103] In this embodiment, as Figure 2 , Figure 7 and Figure 8 As shown, the first water outlet channel 12 is a first straight channel, and the second water outlet channel 13 includes a second straight channel 110, a buffer channel 120, and at least one guide channel 130 connected in sequence, as shown. Figure 9 and Figure 10As shown, water entering the first outlet channel 12 directly enters the outlet hole 11, while water entering the second outlet channel 13 must flow sequentially through the second straight channel 110, the buffer channel 120, and the guide channel 130 before entering the outlet hole 11. This means the water flow consumes some kinetic energy before being ejected, thus making the water flow gentler. Combined with... Figure 6 Taking the annular guide protrusion 31, which includes an outwardly convex arc segment 312, as an example, when the guide disc 3 rotates, the outwardly convex arc segment 312 drives the water-blocking member 2 to slide from the second position to the first position one by one along the circumference. Among the water outlets 11, there is always one water outlet 11 spraying granular water or umbrella-shaped water, while the other water outlets 11 spray columnar water. Moreover, the water outlets 11 that spray granular water or umbrella-shaped water in the circumference take turns in sequence, which can bring a massage experience that is both firm and gentle.

[0104] See Figure 2 , Figure 7 and Figure 8 The second water outlet channel 13 includes a second straight channel 110, a buffer channel 120, and at least two guide channels 130 connected in sequence, with the outlets of the at least two guide channels 130 arranged opposite to each other. This arrangement allows two water streams to converge at the water outlet 11, slowing the water flow and creating particulate water. Furthermore, the extension direction of the guide channels 130 is parallel to the tangent direction of the circle containing the water outlet 11, allowing the water flow to generally flow tangentially through the guide channels 130 towards the water outlet 11. The water flow output from the two guide channels 130 flows spirally along the wall of the water outlet 11, thus forming umbrella-shaped water or particulate water, further softening the water flow from the water outlet 11.

[0105] like Figure 8 As shown, the cross-sectional area of ​​the buffer channel 120 gradually increases along the water outlet direction, roughly forming a fan-shaped annulus, which can provide sufficient space to slow down the water flow rate. Furthermore, a dividing protrusion 140 is provided inside the buffer channel 120, and the dividing protrusion 140 is located between the second straight channel 110 and the water outlet 11, so as to form two guide channels 130 on both sides of the water outlet 11.

[0106] In other embodiments, the number and distribution of the flow channels 130 can be increased or decreased, and the shape of the buffer channels 120 can be changed according to actual needs, without being limited to the number, distribution, and shape listed above.

[0107] Example 2

[0108] This embodiment provides a water outlet structure, which differs from Embodiment 1 in that:

[0109] like Figure 11 , Figure 12 and Figure 13As shown, the second water outlet channel 13 is the first straight channel, which is coaxially and directly opposite the water outlet hole 11. The first water outlet channel 12 includes a second straight channel 110, a buffer channel 120 and at least one guide channel 130 connected in sequence. The second straight channel 110 is staggered from the water outlet hole 11, and the end of the guide channel 130 away from the buffer channel 120 is connected to the water outlet hole 11.

[0110] See Figure 11 and Figure 14 Water entering the second water outlet channel 13 directly enters the water outlet 11, and the water outlet 11 sprays out a column of water (second mode); water entering the second water outlet channel 13 needs to flow through the second straight channel 110, the buffer channel 120, and the guide channel 130 in sequence before entering the water outlet 11. The water flow will consume some kinetic energy before being sprayed out, forming umbrella-shaped water or granular water (first mode), and the water outlet becomes softer.

[0111] Taking the annular guide protrusion 31, which includes an outwardly convex arc segment 312, as an example, when the guide disc 3 rotates, the outwardly convex arc segment 312 drives the water-blocking member 2 to slide from the second position to the first position one by one along the circumference. Among the water outlets 11, there is always one water outlet 11 spraying columnar water, while the other water outlets 11 spray granular water or umbrella-shaped water. Moreover, the water outlets 11 that spray columnar water in the circumference take turns in sequence, which can bring a massage experience that is both gentle and firm.

[0112] See Figure 13 The cross-sectional area of ​​the buffer channel 120 gradually decreases along the water outlet direction, making it easier for the water in the buffer channel 120 to converge in the guide channel 130, ensuring that the water sprayed from the water outlet 11 has a certain impact force.

[0113] Example 3

[0114] This embodiment provides a water outlet structure, which differs from Embodiment 1 in that:

[0115] like Figure 15 As shown, the annular guide protrusion 31 includes a connected arc segment 311 and two outwardly convex arc segments 312. The center of the arc segment 311 is the rotation center of the guide disk 3, and the center of the outwardly convex arc segments 312 is offset from the rotation center of the guide disk 3. Multiple water outlets 11 are arranged circumferentially at intervals. During the rotation of the guide disk 3, the two outwardly convex arc segments 312 can simultaneously drive the two water-blocking components 2 to slide from the second position to the first position. This ensures that at any given moment, two of the water outlets 11 in a circle discharge water in the second mode, while the remaining water outlets 11 discharge water in the first mode. As the guide disk 3 rotates continuously, there are always two water outlets 11 discharging water in the second mode, and these two water outlets discharging water in the second mode alternate sequentially in the circumferential direction, enhancing the massage effect.

[0116] For example, two convex arc-shaped segments 312 are spaced apart, as shown in the reference. Figure 15 In the orientation of the guide disc 3, when the guide disc 3 rotates, the two convex arc segments 312 respectively push the water-blocking members 2 at the upper right and lower right corners to slide to the first position. In other embodiments, the two convex arc segments 312 can also be arranged adjacently so as to simultaneously push the two adjacent water-blocking members 2 to slide to the first position.

[0117] Of course, in some other embodiments, three or more convex arc segments 312 can be set, which can be designed according to actual needs and is not limited to the number and arrangement listed above.

[0118] Example 4

[0119] This embodiment provides a water outlet structure, which differs from Embodiments 1, 2, and 3 in that:

[0120] like Figure 16 As shown, the guide disk 3 is provided with a pushing protrusion 35, and an elastic element is provided between the water-blocking member 2 and the housing 1. When the guide disk 3 rotates, the pushing protrusion 35 can abut against the water-blocking member 2 and push the water-blocking member 2 to slide towards the first position, and the elastic element is squeezed to produce elastic deformation. When the guide disk 3 rotates until the pushing protrusion 35 disengages from the water-blocking member 2, the elastic element can drive the water-blocking member 2 to slide towards the second position.

[0121] Reference Figure 16 In the orientation of the guide plate 3, after the push protrusion 35 contacts the water-blocking member 2, as the guide plate 3 continues to rotate, the push protrusion 35 pushes the water-blocking member 2 to slide outward, that is, to slide towards the first position, so as to open the water inlet end of the second water outlet channel 13 and block the water inlet end of the first water outlet channel 12. During this process, the elastic member is squeezed and deformed to accumulate elastic potential energy. When the guide plate 3 rotates to the point where the push protrusion 35 disengages from the current water-blocking member 2, the pushing force of the push protrusion 35 on the current water-blocking member 2 is removed, thereby causing the elastic member to release elastic potential energy and drive the water-blocking member 2 to slide inward, that is, to slide towards the second position, so as to open the water inlet end of the first water outlet channel 12 and block the water inlet end of the second water outlet channel 13. In this way, the water-blocking member 2 switches back and forth between the first position and the second position, and the water outlet 11 regularly switches between the first mode and the second mode to output water.

[0122] For example, the elastic element is a spring, and a mounting groove can be provided on the housing 1 below the water-blocking member 2. The extending direction of the mounting groove is consistent with the sliding direction of the water-blocking member 2. The spring is placed in the mounting groove, and the water-blocking member 2 has a mounting part protruding towards the mounting groove. The mounting part slides with the mounting groove, and the spring is connected to the mounting part. When the water-blocking member 2 slides, it compresses the spring through the mounting part.

[0123] In this embodiment, multiple water-blocking components 2 are arranged circumferentially inside the housing 1, and each water-blocking component 2 corresponds to a set of first water outlet channels 12 and second water outlet channels 13. A rotating plate 36 is fixedly arranged on the side of the guide plate 3 facing the water-blocking component 2. The rotating plate 36 is located within the space formed by the multiple water-blocking components 2, and the outer contour of the rotating plate 36 is in contact with the multiple water-blocking components 2, so that the water-blocking component 2 can be stably maintained in the first position or the second position. A pushing protrusion 35 protrudes from the rotating plate 36, and at least one pushing protrusion 35 is provided on the rotating plate 36. When the guide plate 3 rotates, the pushing protrusion 35 drives the water-blocking component 2 to slide from the second position to the first position one by one along the circumferential direction, so that at least one water outlet hole 11 is periodically alternately discharging water between the first mode and the second mode.

[0124] As the guide plate 3 rotates continuously, the push protrusion 35 pushes the water-blocking parts 2 at different positions to slide to the first position, thereby causing at least one water outlet 11 at different positions to switch the water outlet mode, change the water outlet area of ​​the massage water, and make the massage water dynamically change, bringing a better massage effect.

[0125] Example 5

[0126] like Figure 17 As shown, this embodiment provides a shower device, including a main structure 100 and a water outlet structure as described in any of the above embodiments. The main structure 100 is provided with an installation cavity (not shown), and the water outlet structure is installed in the installation cavity. That is, the water outlet structure can be manufactured separately and then installed in the installation cavity of an existing shower device, which can reduce mold opening and lower the production cost of the shower device product. For example, the shower device is a shower head.

[0127] Furthermore, the shower device may also include a faucet, a water supply pipe, etc., with the water supply pipe connected to the main structure 100, and the faucet used to control the on / off of the water supply pipe and / or adjust the water output of the shower device.

[0128] The shower device provided in this embodiment can regularly generate two types of water spray, namely a first mode and a second mode, through the same water outlet 11 of the water outlet structure, so as to produce a better massage effect for the user. Furthermore, during operation, at least one water outlet 11 in the circumferential direction periodically alternates between the first mode and the second mode, which can realize the dynamic switching of the water outlet modes of multiple water outlets 11, thereby changing the water outlet area of ​​the massage water, bringing a better massage effect and improving the user's experience.

[0129] Note that the above description is merely a preferred embodiment of the present invention and the technical principles employed. Those skilled in the art will understand that the present invention is not limited to the specific embodiments described herein, and various obvious changes, readjustments, and substitutions can be made without departing from the scope of protection of the present invention. Therefore, although the present invention has been described in detail through the above embodiments, the present invention is not limited to the above embodiments. Many other equivalent embodiments may be included without departing from the concept of the present invention, and the scope of the present invention is determined by the scope of the appended claims.

Claims

1. A water outlet structure, characterized in that, include: The housing (1) has multiple water outlet holes (11), and the housing (1) is provided with a first water outlet channel (12) and a second water outlet channel (13) that are connected to each water outlet hole (11) and are independent of each other; Water-blocking component (2) is provided in the first water outlet channel (12) and the second water outlet channel (13) of each of the water outlet holes (11). The water-blocking component (2) can be switched between the first position and the second position. In the first position, the water-blocking member (2) blocks the water inlet of the first water outlet channel (12) and opens the water inlet of the second water outlet channel (13), and the water outlet (11) discharges water in the second mode; in the second position, the water-blocking member (2) blocks the water inlet of the second water outlet channel (13) and opens the water inlet of the first water outlet channel (12), and the water outlet (11) discharges water in the first mode; The guide disk (3) is rotatably disposed inside the housing (1) and can at least partially act on the water baffle (2). When the guide disk (3) rotates, it can drive at least one of the water baffles (2) to switch back and forth between the first position and the second position, so that at least one of the plurality of water outlets (11) periodically alternates water discharge between the first mode and the second mode, and the remaining water outlets (11) periodically alternate water discharge between the second mode and the first mode.

2. The water outlet structure according to claim 1, characterized in that, The water-blocking component (2) is slidably disposed within the housing (1) in a preset direction; The guide disc (3) is provided with a non-circular annular guide protrusion (31), and the water-blocking member (2) is provided with a movable groove (21). The annular guide protrusion (31) is at least partially engaged with the movable groove (21) and slides in cooperation with the movable groove (21). When the guide disc (3) rotates, the annular guide protrusion (31) can push against the groove wall of the movable groove (21) to drive the water-blocking member (2) to slide along the preset direction; or, The guide disc (3) is provided with a pushing protrusion (35), and an elastic element is provided between the water-blocking member (2) and the housing (1). When the guide disc (3) rotates, the pushing protrusion (35) can abut against the water-blocking member (2) and push the water-blocking member (2) to slide toward the first position, and the elastic element is squeezed to generate elastic deformation. When the guide disc (3) rotates to the point that the pushing protrusion (35) disengages from the water-blocking member (2), the elastic element can drive the water-blocking member (2) to slide toward the second position.

3. The water outlet structure according to claim 2, characterized in that, The annular guide protrusion (31) includes a connected arc segment (311) and at least one outwardly convex arc segment (312). The center of the arc segment (311) is the rotation center of the guide disk (3), and the center of the outwardly convex arc segment (312) is offset from the rotation center of the guide disk (3). Multiple water outlets (11) are arranged at intervals along the circumference. During the rotation of the guide disc (3), the convex arc segment (312) can drive the water baffle (2) to slide toward the first position one by one along the circumference, and the arc segment (311) can drive the water baffle (2) to slide toward the second position, so that at least one water outlet (11) can periodically alternate water discharge between the first mode and the second mode along the circumference.

4. The water outlet structure according to claim 2, characterized in that, The guide plate (3) is provided with a rotating plate (36) on the side facing the water-blocking member (2). The rotating plate (36) is located in the space formed by the multiple water-blocking members (2). The pushing protrusion (35) protrudes from the outer edge of the rotating plate (36), and at least one pushing protrusion (35) is provided on the rotating plate (36). Multiple water outlets (11) are arranged at intervals along the circumference. During the rotation of the guide disc (3), the push protrusion (35) drives the water baffle (2) to slide from the second position to the first position one by one along the circumference, so that at least one of the water outlets (11) periodically alternates water discharge between the first mode and the second mode along the circumference.

5. The water outlet structure according to claim 2, characterized in that, The water-blocking member (2) is provided with a first limiting part (22) and a second limiting part (23) spaced apart, and the movable groove (21) is formed between the first limiting part (22) and the second limiting part (23); And / or, a groove (14) is provided inside the housing (1), and the water-blocking member (2) is at least partially located in the groove (14) and slides in cooperation with the groove (14) in the preset direction; And / or, the water inlet end of the first water outlet channel (12) is the first inlet (121), the water inlet end of the second water outlet channel (13) is the second inlet (131), and the first inlet (121) and the second inlet (131) are arranged at intervals along the sliding direction of the water baffle (2).

6. The water outlet structure according to any one of claims 1-5, characterized in that, One of the first water outlet channel (12) and the second water outlet channel (13) is a first straight channel, and the first straight channel is coaxially and directly opposite the water outlet hole (11); The other of the first water outlet channel (12) and the second water outlet channel (13) includes a second straight channel (110), a buffer channel (120) and at least one guide channel (130) connected in sequence. The second straight channel (110) is offset from the water outlet (11), and the end of the guide channel (130) away from the buffer channel (120) is connected to the water outlet (11).

7. The water outlet structure according to claim 6, characterized in that, The first water outlet channel (12) or the second water outlet channel (13) includes the second straight channel (110), the buffer channel (120) and at least two flow guiding channels (130) connected in sequence, with the outlets of the at least two flow guiding channels (130) arranged opposite to each other; And / or, the cross-sectional area of ​​the buffer channel (120) gradually decreases or increases along the water outlet direction.

8. The water outlet structure according to any one of claims 1-5, characterized in that, The water-blocking member (2) is provided with a water inlet hole (24). In the first position, the water inlet hole (24) is connected to the water inlet end of the second water outlet channel (13); in the second position, the water inlet hole (24) is offset from the water inlet end of the second water outlet channel (13). And / or, the water-blocking member (2) has a third position, in which the water-blocking member (2) partially blocks the water inlet end of the first water outlet channel (12) and partially blocks the water inlet end of the second water outlet channel (13), and the water outlet (11) discharges water in a third mode.

9. The water outlet structure according to any one of claims 1-5, characterized in that, The water outlet structure also includes a water guide plate (4), an impeller (5), and a swing plate (6). The water guide plate (4), the impeller (5), the swing plate (6), and the guide plate (3) are arranged sequentially in the housing (1) along the water inlet direction. The impeller (5) is rotatably connected to the water guide plate (4), the swing plate (6) is connected to the impeller (5) and is eccentrically set relative to the rotation center of the impeller (5), and the guide plate (3) is drively connected to the swing plate (6). The water guide plate (4) is provided with an inclined water guide hole (41). The water flow output through the water guide hole (41) can drive the impeller (5) to drive the swing plate (6) to rotate eccentrically, so that the swing plate (6) drives the guide plate (3) to rotate in the housing (1). And / or, the water outlet structure further includes a cover (7), the housing (1) has a receiving cavity (10), the water baffle (2) and the guide plate (3) are both located in the receiving cavity (10), the cover (7) is detachably connected to the housing (1) and can block the opening of the receiving cavity (10); the cover (7) is provided with a water inlet pipe connector (71), one end of the water inlet pipe connector (71) is connected to the receiving cavity (10), and the other end is configured to be connected to the water inlet pipe.

10. A shower device, characterized in that, It includes a main structure (100) and a water outlet structure as described in any one of claims 1-9, wherein the main structure (100) is provided with an installation cavity, and the water outlet structure is installed in the installation cavity.