Water outlet device and shower apparatus
By designing the control mechanism and separation structure of the water outlet device, the shower head's water outlet mode can be switched in a variety of ways, solving the problem of the traditional shower head's single water outlet and providing a variety of shower experiences and massage effects.
Patent Information
- Application Number
- CN202410657767.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-24
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2044-05-24
AI Technical Summary
Traditional showerheads have a single water flow pattern, which cannot meet the diverse massage needs of families or different shower areas.
Design a water outlet device that uses a control mechanism to drive the separation structure to move at different positions, and the drive component and the water outlet nozzle cooperate to switch between dynamic and static water outlet modes. Furthermore, through the cooperation of the water distribution component and the impeller, multiple water outlet modes can be switched.
It achieves significant differences in water pressure and pattern to meet the showering needs of different people or different parts of the body, increasing the fun of showering and a more diverse massage experience.
Smart Images

Figure CN118371349B_ABST
Abstract
Description
Technical Field
[0001] This invention generally relates to the field of bathroom technology, and more specifically, to a water outlet device and a shower device. Background Technology
[0002] Traditional showerheads have a relatively simple water output pattern and limited shower massage experience, which cannot simultaneously meet the massage needs of a family or different shower areas. Summary of the Invention
[0003] The water outlet device and shower equipment provided by this invention offer diverse shower modes and enhance the user experience.
[0004] According to a first aspect of the present invention, a water outlet device is provided, comprising:
[0005] The main body has a water inlet at one end and a water outlet at the other end;
[0006] A drive component is movably disposed within the main body and is capable of driving the first water outlet to move relative to the main body;
[0007] A detachable structure is movably disposed within the main body and has a first position and a second position relative to the main body;
[0008] A control mechanism is disposed within the main body and is connected to the separation structure via a transmission mechanism;
[0009] The control mechanism is configured to move relative to the main body and drive the separation structure to move between a first position and a second position, so that the drive component can selectively drive the first water outlet to rotate, thereby switching between a dynamic water outlet mode and a static water outlet mode.
[0010] In some embodiments, the driving component includes:
[0011] A guide plate, wherein the guide plate is provided with a guide hole, and the first water outlet is inserted through the guide hole;
[0012] An impeller is disposed on the side of the guide plate facing the separation structure. The separation structure can be selectively connected to the guide plate. A perforation is provided in the main body. The perforation is corresponding to the impeller, so that the water flowing out of the perforation can drive the impeller to rotate relative to the main body and can drive the first water outlet to swing through the guide plate.
[0013] In some embodiments, the guide plate is provided with a mounting hole corresponding to the impeller, the impeller is installed in the mounting hole, and the projection of the central axis of the impeller relative to the reference plane and the projection of the central axis of the mounting hole relative to the reference plane do not coincide, so that the guide plate can drive the water outlet to swing.
[0014] The central axis of the impeller and the central axis of the mounting hole are arranged parallel to each other, and the central axis of the mounting hole is arranged perpendicular to the reference plane.
[0015] In some embodiments, the impeller is provided with a mounting shaft on the side facing the guide plate, and the mounting hole is provided corresponding to the mounting shaft, with the mounting shaft passing through the mounting hole and slidingly engaging with the mounting hole.
[0016] In some embodiments, the separation structure abuts against the guide plate and pushes the guide plate to move away from the impeller, so that the guide plate selectively drives the first water outlet to rotate.
[0017] In some embodiments, the separation structure includes:
[0018] A connecting shaft, one end of which can abut against the guide plate;
[0019] A guide slider is rotatably disposed within the main body;
[0020] The guide groove is inclined relative to the axial direction of the drive assembly. The guide slider and the guide groove are slidably engaged to drive the connecting shaft to slide along the axial direction of the drive assembly, thereby pushing the guide plate to move away from the impeller.
[0021] In some embodiments, a water distribution component is also movably disposed within the main body, and the main body also includes a second water outlet, with the water inlet connected to the first and second water outlets via the water distribution component.
[0022] The water distribution component is provided with a water distribution channel. One end of the water distribution channel is connected to the water inlet, and the other end is connected to the first water outlet and the second water outlet. The first water outlet has a dynamic water outlet mode and a static water outlet mode.
[0023] In some embodiments, the water separation component includes:
[0024] A water distribution seat is disposed between the guide plate and the control mechanism, the punch is disposed in the water distribution seat, and the impeller passes through the water distribution seat;
[0025] A water distribution plate is connected to the control mechanism, and the water distribution plate is provided with a water inlet hole;
[0026] A water distribution body is disposed between the water distribution plate and the water distribution seat. The water distribution body is provided with a dynamic water outlet, a static water outlet and a third water outlet. The dynamic water outlet, the static water outlet and the third water outlet are arranged along the circumferential direction of the water distribution plate. The separation structure passes through the water distribution plate, the water distribution body and the water distribution seat.
[0027] The control mechanism is configured to drive the water distribution plate to rotate relative to the main body, so that the water inlet is connected to one of the dynamic water outlet, the static water outlet and the third water outlet, forming at least a partial water distribution channel.
[0028] In some embodiments, the separation structure further includes:
[0029] A guide block is provided on the outer peripheral wall of the connecting shaft, and one end of the connecting shaft passes through the water distribution plate; the inner wall of the water distribution plate and the guide block are provided with a guide slider and a guide groove, respectively.
[0030] One of the inner walls of the guide block and the water separator is provided with an axial groove, and the other is provided with an axial slider. The axial slider slides in conjunction with the axial groove, and the axial groove extends along the axial direction of the drive assembly.
[0031] In some embodiments, the water distribution seat is provided with an isolation section, the perforation is provided in the isolation section, the isolation section is provided with an isolation cavity, the dynamic water outlet and the static water outlet are both connected to the isolation cavity, and the isolation cavity is connected to the perforation to form at least a partial water distribution channel.
[0032] In some embodiments, the water distribution seat is provided with a drain hole, and a connecting cavity is provided between two adjacent isolation parts. One end of the connecting cavity is connected to the third water outlet, and the other end is connected to the drain hole, forming at least a partial water distribution channel.
[0033] In some embodiments, there are multiple water inlets, which are arranged circumferentially along the water distribution plate, and there is a first included angle between two adjacent water inlets.
[0034] The number of the dynamic water outlet, the static water outlet, and the third water outlet is multiple, and any two of the dynamic water outlet, the static water outlet, and the third water outlet have a second included angle between them;
[0035] The first included angle and the second included angle are not the same.
[0036] In some embodiments, the main body includes a body and a face cover, the drive assembly and the control mechanism are disposed between the body and the face cover, and the first water outlet is inserted through the face cover;
[0037] In this configuration, one of the faceplate and the guide plate, which are close to each other, is provided with a guide post, and the other is provided with a guide hole. The guide post passes through the guide hole and slides in cooperation with the guide hole, so that the axial direction of the first water outlet is set along the axial direction of the drive assembly.
[0038] In some embodiments, a first reset member is further included, which is sleeved on the outside of the guide post and disposed between the face cover and the guide plate.
[0039] In some embodiments, the control mechanism includes an operating component and an intermittent component, the intermittent component being disposed between the operating component and the drive component, the operating component being configured to move relative to the main body, causing the intermittent component to drive the drive component to rotate intermittently.
[0040] According to a second aspect of the present invention, an embodiment of the present invention also provides a shower device, including the water outlet device described above.
[0041] One embodiment of the present invention has the following advantages or beneficial effects:
[0042] The water outlet device and shower equipment provided in this invention have a control mechanism that can drive the separation structure to move between a first position and a second position. The drive component cooperates with multiple first water outlets to drive or not drive the first water outlets to move, thereby achieving the effect of different water flow from the same outlet. Since the water flow intensity, water flow pattern, and shower experience of the dynamic water flow mode and the static water flow mode are significantly different, the water outlet device can switch between different water flow massage modes to suit the shower needs of different people or different parts of the body. Furthermore, the switching between different water flow modes increases the fun and meets the diverse massage needs of users. Attached Figure Description
[0043] To better understand the present invention, reference may be made to the embodiments shown in the following drawings. Components in the drawings are not necessarily to scale, and related elements may be omitted to emphasize and clearly illustrate the technical features of the invention. Furthermore, related elements or components may have different arrangements as known in the art. Additionally, in the drawings, the same reference numerals denote the same or similar components in various figures. The above and other features and advantages of the present invention will become more apparent from a detailed description of exemplary embodiments thereof with reference to the accompanying drawings.
[0044] in:
[0045] Figure 1 The diagram shown is a structural schematic of a water outlet device according to an embodiment of the present invention;
[0046] Figure 2 The diagram shown is an exploded schematic of a water outlet device according to an embodiment of the present invention;
[0047] Figure 3 The diagram shown is a structural schematic of the operating components in a water outlet device according to an embodiment of the present invention;
[0048] Figure 4 The diagram shown is a structural schematic of an intermittent component in a water outlet device according to an embodiment of the present invention;
[0049] Figure 5 The figure shown is a cross-sectional view of a water outlet device according to an embodiment of the present invention in dynamic water outlet mode;
[0050] Figure 6 What is shown is Figure 5 A magnified view of a portion at point A;
[0051] Figure 7 The diagram shown is a structural schematic of the water distribution plate in a water outlet device according to an embodiment of the present invention;
[0052] Figure 8 The diagram shown is a structural schematic of the water distribution body in a water outlet device according to an embodiment of the present invention;
[0053] Figure 9 The diagram shown is a structural schematic of the water distribution seat in a water outlet device according to an embodiment of the present invention;
[0054] Figure 10 The diagram shown is a structural schematic of the guide plate in a water outlet device according to an embodiment of the present invention;
[0055] Figure 11 The diagram shown is a schematic diagram of the separation structure in a water outlet device according to an embodiment of the present invention;
[0056] Figure 12 The diagram shown is a cross-sectional view of a water outlet device according to an embodiment of the present invention in microbubble water outlet mode;
[0057] Figure 13 The diagram shown is a cross-sectional view of a water outlet device according to an embodiment of the present invention in static water outlet mode.
[0058] The reference numerals in the attached figures are explained as follows:
[0059] 1. Main body; 2. Water distribution mechanism; 3. Control mechanism; 4. Aerator;
[0060] 101. Water inlet; 102. First water outlet; 103. Second water outlet; 11. Body; 12. Face cover; 121. Guide post; 13. Connecting seat; 14. Fixing seat; 15. Spindle;
[0061] 21. Water distribution assembly; 22. Drive assembly; 23. Separation structure; 24. First reset component; 25. Sealing gasket; 26. Spring seat;
[0062] 211. Water distribution seat; 2111. Perforation; 2112. Isolation section; 2113. Isolation chamber; 2114. Drain hole; 2115. Connecting chamber;
[0063] 212. Water distribution plate; 2121. Water inlet; 2122. Guide slider; 213. Water distribution body; 2131. Dynamic water outlet; 2132. Static water outlet; 2133. Third water outlet; 2134. Axial slider;
[0064] 221, Guide plate; 2211, Guide hole; 2212, Mounting hole; 2213, Guide hole; 222, Impeller; 2221, Mounting shaft;
[0065] 231. Connecting shaft; 232. Guide block; 2321. Axial groove; 2322. Guide groove;
[0066] 31. Operating component; 311. Button; 312. First pin; 313. Rocker arm; 314. Push block; 315. First elastic element;
[0067] 32. Intermittent assembly; 321. Ratchet; 322. Pad; 323. Second pin; 324. Stop pawl; 325. Second elastic element. Detailed Implementation
[0068] The technical solutions of the exemplary embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. The exemplary embodiments described herein are for illustrative purposes only and are not intended to limit the scope of protection of the present invention. Therefore, it should be understood that various modifications and changes can be made to the exemplary embodiments without departing from the scope of protection of the present invention.
[0069] In the description of this invention, unless otherwise expressly specified and limited, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance; the term "multiple" refers to two or more; and the term "and / or" includes any and all combinations of one or more of the associated listed items. In particular, references to "the / described" object or "an" object are also intended to indicate one of a possible plurality of such objects.
[0070] Unless otherwise specified or stated, the terms "connection," "fixed," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, an integral connection, an electrical connection, or a signal connection; "connection" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0071] Furthermore, in the description of this invention, it should be understood that the directional terms such as "upper," "lower," "inner," and "outer" described in the exemplary embodiments of this invention are used to describe the angles shown in the accompanying drawings and should not be construed as limiting the exemplary embodiments of this invention. It should also be understood that, in the context of an element or feature being connected to another element (one or more) "upper," "lower," "inner," or "outer," it can be directly connected to the other element (one or more) "upper," "lower," "inner," or "outer," or indirectly connected to the other element (one or more) "upper," "lower," "inner," or "outer" through an intermediate element.
[0072] Exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in many forms and should not be construed as limited to the embodiments set forth herein; rather, they are provided so that the invention will be thorough and complete, and the concept of the exemplary embodiments will be fully conveyed to those skilled in the art. The same reference numerals in the drawings denote the same or similar structures, and therefore their detailed description will be omitted.
[0073] This embodiment provides a water outlet device suitable for bathroom applications such as shower heads and faucets. Figures 1-2 As shown, the water outlet device includes a main body 1, a water distribution mechanism 2, a separation structure 23, and a control mechanism 3. One end of the main body 1 has a water inlet 101, and the other end has a first water outlet 102. The water inlet 101 is used to introduce water, and the first water outlet 102 is used to discharge water. The water can be ordinary water such as domestic water or purified water. The drive component 22 of the water distribution mechanism 2 is movably disposed within the main body 1 and can drive the first water outlet 102 to move relative to the main body 1. The separation structure 23 is movably disposed within the main body 1 and has a first position and a second position relative to the main body 1. The control mechanism 3 is disposed within the main body 1 and is drively connected to the separation structure 23. The control mechanism 3 is configured to move relative to the main body 1 and drive the separation structure 23 to move between the first and second positions, allowing the drive component 22 to selectively drive the first water outlet 102 to rotate, switching between dynamic and static water outlet modes.
[0074] The dynamic water discharge mode refers to the first water outlet 102 moving relative to the main body 1, in which case the water discharged from the first water outlet 102 is in motion, thus achieving the dynamic water discharge function. The static water discharge mode refers to the first water outlet 102 not moving relative to the main body 1, in which case the water discharged from the first water outlet 102 is in a static state, thus achieving the static water discharge function. It can be understood that the water discharged in both the dynamic and static water discharge modes is the same, which is ordinary water use. The difference between the two is whether the first water outlet 102 moves relative to the main body 1.
[0075] The water outlet device provided in this embodiment has a control mechanism 3 that can drive the separation structure 23 to move between a first position and a second position. The drive component 22 cooperates with multiple first water outlets 102 to drive or not drive the first water outlets 102 to move, thereby achieving the effect of different water flow from the same outlet. Since the water flow intensity, water flow pattern, and shower experience of the dynamic water flow mode and the static water flow mode are significantly different, the water outlet device can switch between different water flow massage modes to suit the shower needs of different people or different parts of the body. The switching between different water flow modes also increases the fun and meets the diverse massage needs of users.
[0076] In one embodiment, a second water outlet 103 is also provided at the other end of the main body 1 (e.g., Figure 12 As shown, the second water outlet 103 is used to discharge special water, such as microbubble water, carbonated water, and other functional water with special beauty or health benefits. The microbubble water mode refers to the water discharged from the second water outlet 103 through the aerator 4 being microbubble water. Microbubble water is composed of a mixture of water and air, with internal bubbles typically ranging in size from 1 micrometer to 100 micrometers. Due to the large number of tiny bubbles inside, microbubble water appears milky white. Microbubble water has strong cleaning power and can be widely used in skin cleansing, fruit and vegetable washing, and even wastewater treatment.
[0077] It should be noted that the dynamic water outlet mode and the static water outlet mode are water outlets through the first water outlet 102, while the microbubble water is water outlets through the second water outlet 103, and the microbubble water is water splashes in a separate flow channel.
[0078] In one embodiment, such as Figures 1-2 As shown, the main body 1 includes a body 11 and a cover 12. The body 11 is convenient for users to hold or hang on a wall mount. A receiving cavity is formed between the body 11 and the cover 12. The water distribution mechanism 2 and the control mechanism 3 are disposed in the receiving cavity between the body 11 and the cover 12, serving to isolate and protect them. The first water outlet 102 passes through the cover 12 to facilitate water dispensing from the first water outlet 102.
[0079] like Figure 2As shown, the main body 1 also includes a connecting seat 13 and a fixed seat 14. Both the connecting seat 13 and the fixed seat 14 are disposed in the receiving cavity. The connecting seat 13 is disposed on the fixed seat 14 and is used to support the control mechanism 3.
[0080] like Figure 2 As shown, the main body 1 also includes a spindle 15, which has a conveying chamber. One end of the conveying chamber is connected to the water inlet 101, and the other end is connected to the water distribution mechanism 2. Water entering from the water inlet 101 is conveyed to the water distribution mechanism 2 through the conveying chamber. The water distribution mechanism 2 distributes the water and then discharges it through the first water outlet 102.
[0081] In one embodiment, such as Figures 2-4 As shown, the control mechanism 3 includes an operating component 31 and an intermittent component 32. The intermittent component 32 is disposed between the operating component 31 and the water distribution mechanism 2. The operating component 31 is configured to move relative to the main body 1, so that the intermittent component 32 drives part of the water distribution mechanism 2 to rotate intermittently.
[0082] Under the drive and control of the operating component 31, the intermittent component 32 can drive part of the water distribution mechanism 2 to rotate intermittently, which facilitates the switching between dynamic water outlet mode, static water outlet mode and microbubble water outlet mode. The mode switching is free and flexible, and each mode can be paused, which improves the stability and reliability of the current mode.
[0083] Specifically, such as Figures 2-3 As shown, the operating component 31 includes a button 311, a first pin 312, a rocker arm 313, a push block 314, and a first elastic element 315. The button 311 is slidably disposed within the main body 1. The rocker arm 313 has a triangular structure. The first end of the rocker arm 313 is rotatably connected to the fixed base 14 of the main body 1 via the first pin 312. The second end of the rocker arm 313 abuts against the button 311, and the third end of the rocker arm 313 abuts against the push block 314. The end of the push block 314 away from the rocker arm 313 abuts against the intermittent component 32 and is movable relative to the main body 1. The first elastic element 315 may be a spring. The first elastic element 315 is sleeved outside the positioning post of the push block 314 and disposed between the push block 314 and the intermittent component 32 for resetting the push block 314.
[0084] Specifically, such as Figures 2-4 As shown, the intermittent assembly 32 includes a ratchet 321, a pawl 322, a second pin 323, and a stop pawl 324. The ratchet 321 is rotatably disposed within the main body 1 and connected to at least part of the water distribution mechanism 2. The pawl 322 has a semi-circular structure, encircling the ratchet 321. One end of the pawl 322 is rotatably connected to the fixed seat 14 of the main body 1 via the second pin 323, and the other end abuts against the outer peripheral wall of the ratchet 321. One end of the stop pawl 324 is rotatably connected to the main body 1, and the other end abuts against the outer peripheral wall of the ratchet 321, for locking the position of the ratchet 321.
[0085] When the user presses down button 311, button 311 pushes the second end of lever 313 to move, and the first end of lever 313 rotates relative to the main body 1, causing the third end of lever 313 to drive push block 314 to move. Push block 314 compresses first elastic element 315, and first elastic element 315 stores energy. Push block 314 drives pawl 322 to rotate relative to the main body 1 around second pin 323. Pawl 322 drives ratchet 321 to rotate counterclockwise by a ratchet angle. After the user releases button 311, first elastic element 315 has a tendency to reset. Under its own restoring force, first elastic element 315 drives pawl 322, lever 313, and button 311 to reset to their initial positions. Stop pawl 324 limits and locks ratchet 321, fixing ratchet 321 in the switched position, thereby realizing a mode function switch.
[0086] In one embodiment, such as Figure 2 and Figure 5 As shown, the water distribution mechanism 2 also includes a water distribution component 21, which is movably disposed within the main body 1. The water distribution component 21 is provided with a water distribution channel, one end of which is connected to the water inlet 101, and the other end is connected to the first water outlet 102 and the second water outlet 103. The first water outlet 102 has a dynamic water outlet mode and a static water outlet mode. A drive component 22 is disposed between the water distribution component 21 and the first water outlet 102. The water distribution component 21 can drive the drive component 22 and cause the first water outlet 102 to rotate relative to the main body 1.
[0087] In this manner, water entering from the inlet 101 is transported to the first outlet 102 through the water distribution channel of the water distribution component 21. The water distribution component 21 serves as a connection and conveyor between the inlet 101 and the first outlet 102. At the same time, the water distribution component 21 also provides driving force to the drive component 22, enabling the drive component 22 to drive the first outlet 102 to move relative to the main body 1, thereby realizing the dynamic water discharge function.
[0088] In one embodiment, such as Figure 2 , Figures 5-7 As shown, the water distribution assembly 21 includes a water distribution plate 212, which has a disc-like shape and is connected to the control mechanism 3. Specifically, the water distribution plate 212 has a protrusion at its center, which passes through the ratchet 321 of the control mechanism 3. When the ratchet 321 rotates relative to the main body 1, the water distribution plate 212 rotates along with the ratchet 321.
[0089] like Figure 7 As shown, the water distribution plate 212 is provided with a water inlet 2121, which is connected to the water inlet 101 through the conveying cavity of the spindle 15.
[0090] In one embodiment, such as Figure 2 , Figures 5-8 As shown, the water distribution assembly 21 includes a water distribution plate 212 and a water distribution body 213. The water distribution body 213 is fixedly disposed within the receiving cavity of the main body 1, and is located on the side of the water distribution plate 212 away from the control mechanism 3. The water distribution body 213 is provided with a dynamic water outlet 2131, a static water outlet 2132, and a third water outlet 2133, which are arranged along the circumferential direction of the water distribution plate 212.
[0091] The control mechanism 3 is configured to drive the water distribution plate 212 to rotate relative to the main body 1, so that the water inlet 2121 is connected to one of the dynamic water outlet 2131, the static water outlet 2132 and the third water outlet 2133, forming at least a partial water distribution channel.
[0092] For example, when the ratchet 321 of the control mechanism 3 drives the water distribution plate 212 to rotate, if the water inlet 2121 of the water distribution plate 212 corresponds to the dynamic water outlet 2131, the water flowing out of the dynamic water outlet 2131 is transported to the first water outlet 102 to realize the dynamic water outlet mode; if the water inlet 2121 of the water distribution plate 212 corresponds to the static water outlet 2132, the water flowing out of the static water outlet 2132 is transported to the first water outlet 102 to realize the static water outlet mode; if the water inlet 2121 of the water distribution plate 212 corresponds to the third water outlet 2133, the water flowing out of the third water outlet 2133 is transported to the second water outlet 103 through the aerator 4 to realize the microbubble water outlet mode.
[0093] With the dynamic water outlet 2131, static water outlet 2132 and third water outlet 2133 arranged along the circumferential direction of the water distribution plate 212, as the water distribution plate 212 rotates, the water inlet 2121 can be selected to correspond to and connect with one of the water outlets, and the water outlet mode can be switched freely and flexibly, making it convenient to use.
[0094] Specifically, such as Figures 7-8As shown, there are multiple water inlets 2121, which are arranged circumferentially along the water distribution plate 212. For example, there are multiple water inlets 2121, with four water inlets 2121 arranged in a cross shape. There are also multiple dynamic water outlets 2131, static water outlets 2132, and third water outlets 2133, which are arranged circumferentially along the water distribution plate 212. For example, there are two dynamic water outlets 2131, two static water outlets 2132, and two third water outlets 2133. The two dynamic water outlets 2131 are symmetrically distributed with respect to the center of the water distribution plate 212, the two static water outlets 2132 are symmetrically distributed with respect to the center of the water distribution plate 212, and the two third water outlets 2133 are symmetrically distributed with respect to the center of the water distribution plate 212. The three water outlets are staggered, that is, the static water outlet 2132 is located between the adjacent dynamic water outlets 2131 and the third water outlet 2133.
[0095] In this way, the water distribution plate 212 can rotate once, and the same water outlet mode can be experienced multiple times. Moreover, the water distribution plate 212 can rotate a small angle to enter the next water outlet mode, which shortens the response time and makes the mode switching speed faster.
[0096] In one embodiment, there is a first included angle between two adjacent water inlets 2121, and a second included angle between any two water outlets among the dynamic water outlet 2131, the static water outlet 2132, and the third water outlet 2133, wherein the first included angle and the second included angle are different.
[0097] For example, the first included angle between two adjacent water inlets 2121 is 90°, and the included angle between any two water inlets 2121 can be 90° or 180°. There are a total of six water outlets: dynamic water outlet 2131, static water outlet 2132, and third water outlet 2133. The included angle between two adjacent water outlets is 60°, and the second included angle between any two water outlets can be 60°, 120°, or 180°.
[0098] When two of the inlet holes 2121 correspond to two dynamic outlet holes 2131, the other two inlet holes 2121 will be located exactly between the static outlet hole 2132 and the third outlet hole 2133. That is, the other two inlet holes 2121 will not correspond to either the static outlet hole 2132 or the third outlet hole 2133. Therefore, water flowing from the inlet holes 2121 can only enter the dynamic outlet hole 2131 and will not enter the static outlet hole 2132 or the third outlet hole 2133, ensuring the accuracy of the dynamic water outlet pattern and reducing the risk of confusion between different water outlet patterns. It is understandable that the principle is similar when two inlet holes 2121 correspond to two static outlet holes 2132 or the third outlet hole 2133, so it will not be elaborated further.
[0099] By setting the first included angle and the second included angle to be different, the water inlet hole 2121 can only correspond to one of the dynamic water outlet hole 2131, the static water outlet hole 2132 and the third water outlet hole 2133, thereby achieving isolation of different water outlet modes and reducing the risk of mode confusion.
[0100] It is understandable that pressing button 311 of control mechanism 3 once will rotate water distribution plate 212 by 30°. After pressing the three water outlet modes, water distribution plate 212 will rotate by 90°. If water distribution plate 212 rotates 360° in one revolution, the same water outlet mode can be experienced four times, further shortening the response time and making the mode switching speed relatively fast.
[0101] In one embodiment, such as Figure 2 , Figures 5-9 As shown, the water distribution component 21 includes a water distribution base 211, which is disposed within the main body 1. The water distribution base 211 is provided with an installation groove, and the water distribution body 213 is disposed within the installation groove for fixing and installing the water distribution body 213.
[0102] Specifically, such as Figure 9 As shown, the water distribution base 211 is provided with an isolation section 2112, and an isolation cavity 2113 is provided inside the isolation section 2112. The isolation cavity 2113 is provided in correspondence with the dynamic water outlet 2131 and the static water outlet 2132. The dynamic water outlet 2131 and the static water outlet 2132 are both connected to the isolation cavity 2113.
[0103] That is, the isolation section 2112 has an arc-shaped structure with a central angle of 60° or greater. The isolation section 2112 can cover the area of the dynamic water outlet 2131 and the static water outlet 2132. Water flowing out from the dynamic water outlet 2131 or the static water outlet 2132 can enter the isolation chamber 2113 of the isolation section 2112.
[0104] Understandably, since the difference between the dynamic and static water outlet modes lies only in the movement of the first outlet 102, and the water discharged from the first outlet 102 is ordinary water, the isolation chamber 2113 can contain the ordinary water flowing from the dynamic outlet 2131 and the static outlet 2132. This will not adversely affect the water output of either the dynamic or static water outlet modes, and the isolation chamber 2113 can, to some extent, allow for the sharing of these two modes. In the microbubble water outlet mode, the water entering the isolation chamber 2113 is also ordinary water. When this ordinary water passes through the aerator 4, it generates microbubble water. The water discharged from the second outlet 103 is microbubble water. Therefore, the water type in the microbubble water outlet mode is different from the other two types, and the isolation chamber 2113 does not correspond to the third outlet 2133. In this way, the isolation chamber 2113 isolates different water types, improving the reliability of the microbubble water outlet mode.
[0105] like Figure 9 As shown, the isolation section 2112 is provided with perforations 2111, and the isolation chamber 2113 is connected to the perforations 2111, forming at least a partial water distribution channel. In this way, the water in the isolation chamber 2113 is not completely confined within the isolation chamber 2113, and the ordinary water in the isolation chamber 2113 is discharged through the perforations 2111 and transported to the first water outlet 102.
[0106] like Figure 9 As shown, the water distribution base 211 is provided with a drain hole 2114, and a connecting cavity 2115 is provided between two adjacent isolation parts 2112. One end of the connecting cavity 2115 is connected to the third water outlet 2133, and the other end is connected to the drain hole 2114, forming at least a partial water distribution channel.
[0107] In this manner, the connecting cavity 2115 is located between two adjacent isolation sections 2112, making full use of the interval between the two adjacent isolation sections 2112 as the connecting cavity 2115. The connecting cavity 2115 does not need to be set separately, saving production costs. At the same time, the connecting cavity 2115 and the isolation cavity 2113 are separated by the isolation section 2112, realizing the isolation between microbubble water and ordinary water.
[0108] Specifically, ordinary water discharged from the dynamic water outlet 2131 or the static water outlet 2132 enters the isolation chamber 2113 and is then transported to the first water outlet 102 through the flushing hole 2111. Ordinary water flowing out from the third water outlet 2133 enters the connecting chamber 2115 and is then transported to the second water outlet through the drain hole 2114 and the aerator 4. Different types of water are transported along different paths to avoid mixing of the two types of water and to improve the reliability and accuracy of water output in each water output mode.
[0109] like Figure 2, Figures 5-6 and Figure 10 As shown, the driving component 22 of the water distribution mechanism 2 includes a guide plate 221, which is disposed between the water distribution base 211 and the first water outlet 102. The guide plate 221 has a guide hole 2211 through which the first water outlet 102 passes. The guide hole 2211 provides a limiting position for the first water outlet 102, and the guide plate 221 can drive the first water outlet 102 to rotate. When the guide plate 221 does not rotate relative to the main body 1, the guide plate 221 cannot drive the first water outlet 102 to move, and it is in a static water outlet mode. When the guide plate 221 rotates relative to the main body 1, the guide plate 221 can drive the first water outlet 102 to move, and it is in a dynamic water outlet mode. The relative rotation of the guide plate 221 is used to switch between the static water outlet mode and the dynamic water outlet mode.
[0110] like Figure 2 , Figures 5-6 and Figures 9-10 As shown, the drive assembly 22 also includes an impeller 222, which is disposed between the water distribution seat 211 and the guide plate 221 of the water distribution assembly 21 and is positioned on the side of the guide plate 221 facing the separation structure 23. The separation structure 23 is selectively connected to the guide plate 221. The perforation 2111 is correspondingly disposed to the impeller 222, so that the spray water flowing out of the perforation 2111 can drive the impeller 222 to rotate relative to the main body 1, and can drive the first water outlet 102 to rotate through the guide plate 221.
[0111] In this manner, the water flowing out of the perforation 2111 serves as the power source for driving the impeller 222 to rotate. The rotation of the impeller 222 does not require additional power sources, saving production costs. When the impeller 222 is connected to the guide plate 221, its rotation drives the first water outlet 102 to rotate via the guide plate 221, ensuring the realization of the dynamic water outlet mode. Simultaneously, since the impeller 222 and the guide plate 221 are not fixedly connected but rather movably connected, when the impeller 222 is not connected to the guide plate 221, the impeller 222 and guide plate 221 are disconnected. Even if the impeller 222 is rotating, it cannot drive the guide plate 221 to rotate, and the impeller 222 is in an idling state. The first water outlet 102 is in a static water outlet mode. Therefore, the process of connecting and disconnecting the impeller 222 and the guide plate 221 is the switching process between the static and dynamic water outlet modes.
[0112] The impeller 222 and the blades and the extension direction of the punch 2111 are set at an angle, such as 60°, 90°, etc. That is, the punch 2111 can be a slanted punch, so that the water discharged from the punch 2111 can directly impact the blades of the impeller 222 to drive the impeller 222 to rotate.
[0113] In one embodiment, the guide plate 221 is provided with a mounting hole 2212 corresponding to the impeller 222. The impeller 222 is installed in the mounting hole 2212. The projection of the central axis of the impeller 222 relative to the reference plane and the projection of the central axis of the mounting hole 2212 relative to the reference plane do not coincide, so that the guide plate 221 can drive the first water outlet 102 to swing. The central axis of the impeller 222 and the central axis of the mounting hole 2212 are arranged parallel to each other, and the central axis of the mounting hole 22121 is arranged perpendicular to the reference plane.
[0114] In this manner, the impeller 222 is in an eccentric fit. As the impeller 222 rotates, it drives the guide plate 221 to oscillate circumferentially, making the dynamic movement of the first water outlet 102 more pronounced and increasing its range of motion. This enhances the difference between the dynamic and static water outlet modes. Furthermore, the first water outlet 102 can perform a conical pendulum motion around its oscillation fulcrum, resulting in a large dynamic range and enhanced visual appeal.
[0115] like Figure 6 and Figures 9-10 As shown, the impeller 222 is provided with a mounting shaft 2221 on the side facing the guide plate 221. The mounting hole 2212 of the guide plate 221 is provided corresponding to the mounting shaft 2221. The mounting shaft 2221 passes through the mounting hole 2212 and slides in cooperation with the mounting hole 2212.
[0116] The mutual cooperation between the mounting shaft 2221 and the mounting hole 2212 provides guidance for the connection and separation of the impeller 222 and the guide plate 221, avoiding a large offset in the relative position of the impeller 222 and the guide plate 221 during connection.
[0117] like Figure 6 and Figure 11 As shown, the separation structure 23 passes through the water distribution assembly 21 and the impeller 222. The water distribution assembly 21 can drive the separation structure 23 to move along the axial direction of the water distribution mechanism 2. The separation structure 23 abuts against the guide plate 221 and pushes the guide plate 221 to move away from the impeller 222, so that the guide plate 221 selectively drives the first water outlet 102 to rotate.
[0118] In this way, the water distribution component 21 also provides the driving force for the separation structure 23 to move along the axial direction of the water distribution component 21, without the need for an additional driving source, thus saving production costs. At the same time, during the movement of the separation structure 23 along the axial direction of the water distribution component 21, the separation structure 23 can push the guide plate 221 to move, realizing the separation of the guide plate 221 and the impeller 222. The impeller 222 is in an idling state, the guide plate 221 cannot rotate with the rotation of the impeller 222, and the first water outlet 102 is in a static water outlet state.
[0119] Specifically, the guide plate 221 has at least a first station and a second station. When the guide plate 221 is located at the first station, the guide plate 221 is close to the impeller 222, and the guide plate 221 of the drive assembly 22 drives the first water outlet 102. When the guide plate 221 is located at the second station, the guide plate 221 is away from the impeller 222, and the guide plate 221 of the drive assembly 22 does not drive the first water outlet 102.
[0120] like Figure 6 and Figure 11 As shown, the separation structure 23 includes a connecting shaft 231, one end of which passes through the water distribution plate 212, and the other end of which can abut against the guide plate 221.
[0121] Since one end of the connecting shaft 231 passes through the water distribution plate 212, as the water distribution plate 212 rotates, the other end of the connecting shaft 231 can provide a driving force to the guide plate 221, which facilitates the separation of the guide plate 221 and the impeller 222.
[0122] like Figure 8 and Figure 11 As shown, the separation structure 23 includes a guide slider 2122 and a guide groove 2322. The guide slider 2122 is rotatably disposed within the main body 1, and the guide groove 2322 is inclined relative to the axial direction of the drive assembly 22. The guide slider 2122 and the guide groove 2322 are slidably engaged to drive the connecting shaft 231 to slide along the axial direction of the drive assembly 22, thereby pushing the guide plate 221 to move away from the impeller 222.
[0123] Specifically, the inner wall of the water distribution plate 212 and the guide block 232 are provided with a guide slider 2122 and a guide groove 2322, respectively. The guide groove 2322 is connected to the axial groove 2321. The guide slider 2122 and the guide groove 2322 are slidably engaged. The guide groove 2322 is inclined relative to the axial direction of the water distribution mechanism 2.
[0124] Since the guide groove 2322 is inclined relative to the axial direction of the water distribution mechanism 2, after the guide slider 2122 and the guide groove 2322 come into contact, the guide slider 2122 generates a force on the guide groove 2322 along the extension direction of the guide groove 2322. This force can be decomposed into an axial force along the axial direction of the water distribution mechanism 2 and a radial force along the radial direction of the water distribution mechanism 2. The axial force can drive the connecting shaft 231 to move along the axial direction of the water distribution mechanism 2 through the guide block 232, which is used for the separation of the impeller 222 and the guide plate 221. The radial force can drive the connecting shaft 231 to have a tendency to rotate along the radial direction of the water distribution mechanism 2 through the guide block 232. However, due to the cooperation of the axial slider 2134 and the axial groove 2321, the connecting shaft 231 only has movement along the axial direction of the water distribution mechanism 2.
[0125] It is understandable that the guide slider 2122 is located at different positions of the guide groove 2322, and the corresponding connecting shaft 231 pushes the guide plate 221 to different positions, thereby adjusting the distance between the impeller 222 and the guide plate 221 and the connection and disconnection.
[0126] In one embodiment, the separation structure 23 further includes a guide block 232, which is disposed on the outer peripheral wall of the connecting shaft 231, one end of which passes through the water distribution plate 212. The inner walls of the guide block 232 and the water distribution body 213 are provided with an axial groove 2321 and an axial slider 2134, respectively. The axial slider 2134 slides in conjunction with the axial groove 2321, which extends along the axial direction of the water distribution mechanism 2.
[0127] For example, an axial groove 2321 is provided in the guide block 232, and an axial slider 2134 is provided in the water distribution body 213. The axial slider 2134 and the axial groove 2321 slide together to plan and restrict the movement path of the connecting shaft 231. The connecting shaft 231 can only have the tendency to move along the axial direction of the water distribution component 21, which ensures the accuracy of the alignment and contact between the connecting shaft 231 and the guide plate 221, thereby ensuring the complete separation of the guide plate 221 and the impeller 222.
[0128] The axial groove 2321 and the axial slider 2134 are multiple, for example, there are four axial grooves 2321 and four axial sliders 2134. The four axial sliders 2134 are arranged around the circumference of the water distribution component 21, and the four axial grooves 2321 are arranged around the circumference of the water distribution component 21. The four axial sliders 2134 and the four axial grooves 2321 slide in a corresponding sliding fit to ensure the smooth sliding and balance between the guide block 232 and the water distribution seat 211.
[0129] It is understandable that a second elastic element 325 (such as...) is also provided between the fixed seat 14 and the water distribution plate 212. Figure 6 As shown, the second elastic element 325 can be a cylindrical spring, used for resetting the water distribution plate 212. The elastic force of the second elastic element 325 is greater than the elastic force of the first reset element 24, and it can also be used for sealing the water distribution plate 212.
[0130] like Figures 12-13 As shown, on the side of the faceplate 12 and the guide plate 221 that are close to each other, one of them is provided with a guide post 121 and the other is provided with a guide hole 2213. The guide post 121 passes through the guide hole 2213 and slides in cooperation with the guide hole 2213, so that the axial direction of the first water outlet 102 is set along the axial direction of the water distribution mechanism 2.
[0131] Under the downward pressure of the separation structure 23, the guide plate 221 moves downward away from the impeller 222, and the guide plate 221 is in a disengaged state from the impeller 222. The guide post 121 of the cover 12 is inserted into the guide hole 2213 of the guide plate 221 to achieve the guiding fit between the guide plate 221 and the cover 12. The guide plate 221 pulls the first water outlet 102 to move, which is used to adjust the position of the first water outlet 102 so that the axial direction of the first water outlet 102 is set as close as possible to the axial direction of the water distribution mechanism 2, thereby correcting the first water outlet 102 and realizing the static water outlet mode.
[0132] In one embodiment, the water outlet device further includes a first reset member 24, which is sleeved on the outside of the guide post 121 and disposed between the cover 12 and the guide plate 221.
[0133] The first reset member 24 can be a spring. When the guide plate 221 moves down and disengages from the impeller 222, the guide plate 221 compresses the first reset member 24, and the first reset member 24 stores energy. If the button 311 is pressed again, the guide slider 2122 of the water distribution plate 212 rotates to be aligned with the axial groove 2321 of the guide block 232. At this time, the first reset member 24, under its own restoring force, drives the guide plate 221 to reset to its initial position, thus realizing the next cycle switching.
[0134] like Figures 12-13 As shown, the water outlet device also includes a spring seat 26, which is disposed between the guide plate 221 and the cover 12. The spring seat 26 is used to install the first reset member 24 and can apply force to the first reset member 24.
[0135] Understandably, if the guide plate 221 directly interacts with the first reset member 24, the swinging of the guide plate 221 will cause the first reset member 24 to twist. The spring seat 26 can support the guide plate 221, so that the guide plate 221 does not directly interact with the first reset member 24, thereby reducing the risk of the first reset member 24 twisting.
[0136] In other embodiments, there may only be dynamic and static water outlet modes, without a microbubble water outlet mode. In this case, the water distribution plate 212 and water distribution body 213 are not needed. The water flows directly into the isolation chamber 2113 and is then sprayed through the perforation 2111, driving the impeller 222 to rotate and spraying from the first water outlet 102. In addition, a rotating component is provided, and a guide slider is set on the rotating component. The operating component 31 drives the rotating component to rotate, thereby driving the guide slider to rotate.
[0137] The working process of the water outlet device provided in this embodiment is as follows:
[0138] 1. When it is necessary to switch to dynamic water output mode, such as Figures 5-6As shown, when button 311 is pressed, spring seat 26, guide plate 221 and first reset member 24 are reset. The water inlet hole 2121 of water distribution plate 212 is aligned with the dynamic water outlet hole 2131 of water distribution body 213. Ordinary water enters the isolation chamber 2113 through water inlet hole 2121 and dynamic water outlet hole 2131 and is then sprayed through punch hole 2111, driving impeller 222 to rotate. At this time, guide plate 221 and impeller 222 are connected and cooperate with each other. Impeller 222 drives guide plate 221 to swing circumferentially. First water outlet 102 is linked with guide plate 221, so that guide plate 221 swings circumferentially and simultaneously drives first water outlet 102 to swing circumferentially around its center. This achieves dynamic water outlet mode, that is, no splashing of particulate water.
[0139] 2. When switching to the microbubble water output mode, press button 311 again. The inlet hole 2121 of the water distribution plate 212 aligns with the third outlet hole 2133 of the water distribution body 213. Ordinary water enters the connecting cavity 2115 through the inlet hole 2121 and the third outlet hole 2133, then flows out through the drain hole 2114 and enters the second outlet 103 through the aerator 4 to output microbubble water. At the same time, the guide slider 2122 of the water distribution plate 212 abuts against the guide groove 2322 of the separation structure 23, causing the connecting shaft 231 of the separation structure 23 to push the guide plate 221 to move away from the impeller 222, so that the guide plate 221 and the impeller 222 are separated. The guide hole 2213 of the guide plate 221 and the guide post 121 of the cover 12 are about to enter the guiding engagement state. As the guide plate 221 moves down, the first reset member 24 is compressed, and the first reset member 24 stores energy.
[0140] 3. When switching to static water output mode, press button 311 again. The inlet hole 2121 of the water distribution plate 212 aligns with the static outlet hole 2132 of the water distribution body 213. Ordinary water enters the isolation chamber 2113 through the inlet hole 2121 and the static outlet hole 2132, and is then sprayed through the punch 2111, driving the impeller 222 to rotate. At the same time, the guide slider 2122 of the water distribution plate 212 abuts against the guide groove 2322 of the separation structure 23, causing the connecting shaft 231 of the separation structure 23 to continue pushing the guide plate 221 to continue moving away from the impeller 222. After the impeller 222 and the guide plate 221 have separated, the impeller 222 is in an idling state. After two presses, the guide plate 221 moves to the required height, the first reset member 24 continues to store energy, and the guide hole 2213 of the guide plate 221 and the guide post 121 of the cover 12 enter the guiding engagement state. The first water outlet 102 is linked with the guide plate 221. The guide plate 221 drives the first water outlet 102 to be guided around its center to the center position and then keeps the position fixed. The first water outlet 102 sprays ordinary water to realize the function of static shower water, thus realizing one cycle.
[0141] If button 311 is pressed again, the guide slider 2122 on the water distribution plate 212 rotates to a position aligned with the axial slide groove 2321. At this time, the first reset component 24 drives the spring seat 26 and the guide plate 221 to reset to the initial position, thus realizing the next cycle switching.
[0142] This embodiment also provides a shower device, including a water outlet device. A control mechanism 3 can drive a separation structure 23 to move between a first position and a second position. A drive component 22 cooperates with multiple first water outlets 102 to drive or not drive the first water outlets 102 to achieve the effect of different water flow from the same outlet. Since the water flow intensity, water flow pattern, and shower experience of dynamic water flow mode and static water flow mode are significantly different, the water outlet device can switch between different water flow massage modes to suit the shower needs of different people or different parts of the body. The switching between different water flow modes increases the fun and meets the diverse massage needs of users.
[0143] It should be noted that the embodiments of the present invention shown in the drawings and described in this specification are merely one example employing the principles of the invention. Those skilled in the art will clearly understand that the principles of the invention are not limited to any details or components of the apparatus shown in the drawings or described in the specification.
[0144] It should be understood that the application of this invention is not limited to the detailed structure and arrangement of the components presented in this specification. The invention can have other embodiments and can be implemented and performed in various ways. The foregoing variations and modifications fall within the scope of this invention. It should be understood that the invention disclosed and defined in this specification extends to all alternative combinations of two or more individual features mentioned or apparent in the text and / or drawings. All these different combinations constitute multiple alternative aspects of the invention. The embodiments described in this specification illustrate the best known mode for carrying out the invention and will enable those skilled in the art to utilize the invention.
[0145] Other embodiments of the invention will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This invention is intended to cover any variations, uses, or adaptations of the invention that follow the general principles of the invention and include common knowledge or customary techniques in the art not disclosed herein. The specification and exemplary embodiments are to be considered as exemplary only, and the true scope and spirit of the invention are indicated by the appended claims.
[0146] It should be understood that the present invention is not limited to the precise structure described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of protection of the present invention is limited only by the appended claims.
Claims
1. A water outlet device, characterized in that, include: The main body has a water inlet at one end and a first water outlet at the other end; A drive assembly, movably disposed within the main body and capable of driving the first water outlet relative to the main body, the drive assembly including a guide plate; A detachable structure is movably disposed within the main body and has a first position and a second position relative to the main body; A control mechanism is disposed within the main body and is connected to the separation structure via a transmission mechanism; The control mechanism is configured to move relative to the main body and drive the separation structure to move between a first position and a second position. The separation structure can be selectively connected to the guide plate, so that the drive component can selectively drive the first water outlet to rotate, thereby switching between dynamic water outlet mode and static water outlet mode.
2. The water outlet device according to claim 1, characterized in that, The guide plate is provided with a guide hole, and the first water outlet is inserted through the guide hole; The driving component also includes: An impeller is disposed on the side of the guide plate facing the separation structure. A perforation is provided in the main body, and the perforation is correspondingly disposed to the impeller, so that the water flowing out of the perforation can drive the impeller to rotate relative to the main body, and can drive the first water outlet to swing through the guide plate.
3. The water outlet device according to claim 2, characterized in that, The guide plate is provided with mounting holes corresponding to the impeller. The impeller is installed in the mounting holes. The projection of the central axis of the impeller relative to the reference plane and the projection of the central axis of the mounting hole relative to the reference plane do not coincide, so that the guide plate can drive the water outlet to swing. The central axis of the impeller and the central axis of the mounting hole are arranged parallel to each other, and the central axis of the mounting hole is arranged perpendicular to the reference plane.
4. The water outlet device according to claim 3, characterized in that, The impeller is provided with a mounting shaft on the side facing the guide plate, and the mounting hole is provided corresponding to the mounting shaft. The mounting shaft passes through the mounting hole and slides in cooperation with the mounting hole.
5. The water outlet device according to claim 2, characterized in that, The separation structure abuts against the guide plate and pushes the guide plate to move away from the impeller, so that the guide plate selectively drives the first water outlet to rotate.
6. The water outlet device according to claim 5, characterized in that, The separation structure includes: A connecting shaft, one end of which can abut against the guide plate; A guide slider is rotatably disposed within the main body; The guide groove is inclined relative to the axial direction of the drive assembly. The guide slider and the guide groove are slidably engaged to drive the connecting shaft to slide along the axial direction of the drive assembly, thereby pushing the guide plate to move away from the impeller.
7. The water outlet device according to claim 6, characterized in that, It also includes a water distribution component that is movably disposed within the main body, and the main body also includes a second water outlet. The water inlet is connected to the first water outlet and the second water outlet through the water distribution component. The water distribution component is provided with a water distribution channel. One end of the water distribution channel is connected to the water inlet, and the other end is connected to the first water outlet and the second water outlet. The first water outlet has a dynamic water outlet mode and a static water outlet mode.
8. The water outlet device according to claim 7, characterized in that, The water separation component includes: A water distribution seat is disposed between the guide plate and the control mechanism, the punch is disposed in the water distribution seat, and the impeller passes through the water distribution seat; A water distribution plate is connected to the control mechanism, and the water distribution plate is provided with a water inlet hole; A water distribution body is disposed between the water distribution plate and the water distribution seat. The water distribution body is provided with a dynamic water outlet, a static water outlet and a third water outlet. The dynamic water outlet, the static water outlet and the third water outlet are arranged along the circumferential direction of the water distribution plate. The separation structure passes through the water distribution plate, the water distribution body and the water distribution seat. The control mechanism is configured to drive the water distribution plate to rotate relative to the main body, so that the water inlet is connected to one of the dynamic water outlet, the static water outlet and the third water outlet, forming at least a partial water distribution channel.
9. The water outlet device according to claim 8, characterized in that, The separation structure further includes: A guide block is provided on the outer peripheral wall of the connecting shaft, and one end of the connecting shaft passes through the water distribution plate; the inner wall of the water distribution plate and the guide block are provided with a guide slider and a guide groove, respectively. One of the inner walls of the guide block and the water separator is provided with an axial groove, and the other is provided with an axial slider. The axial slider slides in conjunction with the axial groove, and the axial groove extends along the axial direction of the drive assembly.
10. The water outlet device according to claim 8, characterized in that, The water distribution seat is provided with an isolation section, the perforation is provided in the isolation section, and an isolation cavity is provided in the isolation section. The dynamic water outlet and the static water outlet are both connected to the isolation cavity. The isolation cavity is connected to the perforation to form at least a partial water distribution channel.
11. The water outlet device according to claim 10, characterized in that, The water distribution seat is provided with a drain hole, and a connecting cavity is provided between two adjacent isolation parts. One end of the connecting cavity is connected to the third water outlet, and the other end is connected to the drain hole, forming at least a partial water distribution channel.
12. The water outlet device according to claim 8, characterized in that, The number of water inlets is multiple, and the multiple water inlets are arranged along the circumference of the water distribution plate, with a first included angle between two adjacent water inlets; The number of the dynamic water outlet, the static water outlet, and the third water outlet is multiple, and any two of the dynamic water outlet, the static water outlet, and the third water outlet have a second included angle between them; The first included angle and the second included angle are not the same.
13. The water outlet device according to claim 3, characterized in that, The main body includes a body and a cover, the drive component and the control mechanism are disposed between the body and the cover, and the first water outlet is inserted through the cover; In this configuration, one of the faceplate and the guide plate, which are close to each other, is provided with a guide post, and the other is provided with a guide hole. The guide post passes through the guide hole and slides in cooperation with the guide hole, so that the axial direction of the first water outlet is set along the axial direction of the drive assembly.
14. The water outlet device according to claim 13, characterized in that, It also includes a first reset member, which is sleeved on the outside of the guide post and disposed between the face cover and the guide plate.
15. The water outlet device according to any one of claims 1-14, characterized in that, The control mechanism includes an operating component and an intermittent component. The intermittent component is disposed between the operating component and the driving component. The operating component is configured to move relative to the main body, causing the intermittent component to drive the driving component to rotate intermittently.
16. A shower device, characterized in that, Includes the water outlet device as described in any one of claims 1 to 15.
Citation Information
Patent Citations
Water outlet device and shower equipment
CN222490509U