Water outlet device and shower apparatus
By designing a water outlet device with a control mechanism and water distribution components, the dynamic and static water outlet modes of the shower head and the microbubble water outlet are switched, which solves the problem of the single water outlet of traditional shower heads, meets diverse massage needs, and improves the shower experience.
Patent Information
- Application Number
- PCT/CN2025/095511
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-05-24
- Filing Date
- 2025-05-16
- Publication Date
- 2025-11-27
Smart Images

Figure CN2025095511_27112025_PF_FP_ABST
Abstract
Description
Water outlet device and shower equipment
[0001] The present disclosure claims priority to Chinese Patent Application No. 202410657767.5, filed on May 24, 2024, entitled “Water outlet device and shower equipment”, and Chinese Patent Application No. 202421157424.4, filed on May 24, 2024, entitled “Water outlet device and shower equipment”, the contents of which are incorporated herein by reference in their entirety. TECHNICAL FIELD
[0002] The present disclosure relates to a water outlet device and shower equipment. BACKGROUND
[0003] The water outlet state of the traditional shower head is relatively single, the water outlet form and the shower massage experience are single, and the massage needs of different shower parts or family groups cannot be met at the same time. SUMMARY
[0004] The water outlet device and shower equipment provided by the present disclosure diversify the shower mode and improve the user experience.
[0005] According to a first aspect of the present disclosure, a water outlet device is provided, comprising:
[0006] a main body, one end of the main body being provided with a water inlet, and the other end being provided with a water outlet nozzle;
[0007] a driving assembly movably arranged in the main body and capable of driving the first water outlet nozzle to move relative to the main body;
[0008] a separation structure movably arranged in the main body and having a first position and a second position relative to the main body;
[0009] a control mechanism arranged in the main body and drivingly connected to the separation structure;
[0010] The control mechanism is configured to move relative to the main body and drive the separation structure to move between the first position and the second position, so that the driving assembly can selectively drive the first water outlet nozzle to rotate, so as to switch between the dynamic water outlet mode and the static water outlet mode.
[0011] According to an embodiment of the present disclosure, the driving assembly comprises:
[0012] a guide plate provided with a guide hole, and the first water outlet nozzle is arranged in the guide hole;
[0013] A vane is arranged on one side of the guide plate facing the separation structure, the separation structure is selectively connected to the guide plate, a punching hole is arranged in the main body, the punching hole is arranged corresponding to the vane, water flowing out of the punching hole can drive the vane to rotate relative to the main body, and the guide plate can drive the first water outlet nozzle to swing.
[0014] According to one embodiment of the present disclosure, the guide plate is provided with a mounting hole corresponding to the vane, the vane is mounted in the mounting hole, the projection of the central axis of the vane on a reference plane and the projection of the central axis of the mounting hole on the reference plane do not coincide, so that the guide plate can drive the water outlet nozzle to swing.
[0015] The central axis of the vane and the central axis of the mounting hole are arranged in parallel to each other, and the central axis of the mounting hole is arranged perpendicularly relative to the reference plane.
[0016] According to one embodiment of the present disclosure, the vane is provided with a mounting shaft on one side facing the guide plate, the mounting hole is arranged corresponding to the mounting shaft, and the mounting shaft is arranged in the mounting hole and is in sliding fit with the mounting hole.
[0017] According to one embodiment of the present disclosure, the separation structure abuts against the guide plate and pushes the guide plate to move away from the vane, so that the guide plate selectively drives the first water outlet nozzle to rotate.
[0018] According to one embodiment of the present disclosure, the separation structure comprises:
[0019] A connecting shaft, one end of the connecting shaft is capable of abutting against the guide plate;
[0020] A guide slider is arranged in rotation in the main body;
[0021] A guide inclined groove is arranged obliquely relative to the axial direction of the driving assembly, the guide slider and the guide inclined groove are in sliding fit, and the guide inclined groove is used to drive the connecting shaft to slide along the axial direction of the driving assembly, so as to push the guide plate to move away from the vane.
[0022] According to one embodiment of the present disclosure, a water distribution assembly is movably arranged in the main body, the main body further comprises a second water outlet nozzle, and the water inlet is connected in communication with the first water outlet nozzle and the second water outlet nozzle through the water distribution assembly.
[0023] The water distribution assembly is provided with a water distribution channel, one end of the water distribution channel is connected in communication with the water inlet, and the other end is connected in communication with the first water outlet nozzle and the second water outlet nozzle, and the first water outlet nozzle has a dynamic water outlet mode and a static water outlet mode.
[0024] According to one embodiment of the present disclosure, the water distribution assembly comprises:
[0025] A water distribution seat is arranged between the guide plate and the control mechanism, the punching hole is arranged in the water distribution seat, and the impeller is arranged in the water distribution seat;
[0026] A water distribution disc is connected to the control mechanism, and the water distribution disc is provided with a water inlet hole;
[0027] A water distribution body is arranged between the water distribution disc and the water distribution seat, the water distribution body is provided with a dynamic water outlet hole, a static water outlet hole and a third water outlet hole, the dynamic water outlet hole, the static water outlet hole and the third water outlet hole are arranged along the circumferential direction of the water distribution disc, and the separation structure is arranged in the water distribution disc, the water distribution body and the water distribution seat;
[0028] The control mechanism is configured to drive the water distribution disc to rotate relative to the main body, so that the water inlet hole is in communication with one of the dynamic water outlet hole, the static water outlet hole and the third water outlet hole, forming at least part of the water distribution channel.
[0029] According to one embodiment of the present disclosure, the separation structure further comprises:
[0030] A guide block is arranged on the outer circumferential wall of the connecting shaft, one end of the connecting shaft is arranged in the water distribution disc, one of the inner wall of the water distribution disc and the guide block is provided with a guide sliding block, and the other is provided with a guide inclined slot;
[0031] One of the guide block and the inner wall of the water distribution body is provided with an axial sliding groove, and the other is provided with an axial sliding block, the axial sliding block is in sliding fit with the axial sliding groove, and the axial sliding groove is arranged in the axial direction of the driving assembly.
[0032] According to one embodiment of the present disclosure, the water distribution seat is provided with an isolation part, the punching hole is arranged in the isolation part, the isolation part is provided with an isolation cavity, the dynamic water outlet hole and the static water outlet hole are in communication with the isolation cavity, and the isolation cavity is in communication with the punching hole, forming at least part of the water distribution channel.
[0033] According to one embodiment of the present disclosure, the water distribution seat is provided with a drain hole, a communication cavity is arranged between two adjacent isolation parts, one end of the communication cavity is in communication with the third water outlet hole, the other end is in communication with the drain hole, and at least part of the water distribution channel is formed.
[0034] According to one embodiment of the present disclosure, the number of water inlet holes is multiple, and multiple water inlet holes are arranged along the circumference of the water distribution disc, and there is a first included angle between two adjacent water inlet holes;
[0035] The number of the dynamic water outlet hole, the static water outlet hole and the third water outlet hole is multiple, and any two of the dynamic water outlet hole, the static water outlet hole and the third water outlet hole have a second included angle;
[0036] The first included angle and the second included angle are different.
[0037] According to one embodiment of the present disclosure, the main body comprises a body and a face cover, the driving assembly and the control mechanism are arranged between the body and the face cover, and the first water outlet nozzle is arranged in the face cover.
[0038] The face cover and the guide plate are arranged with a guide column and a guide hole respectively on one side close to each other, the guide column is arranged in the guide hole and is in sliding fit with the guide hole, and the axial direction of the first water outlet nozzle is arranged along the axial direction of the driving assembly.
[0039] According to one embodiment of the present disclosure, a first reset member is further arranged, which is arranged outside the guide column and between the face cover and the guide plate.
[0040] According to one embodiment of the present disclosure, the control mechanism comprises an operation assembly and an intermittent assembly, the intermittent assembly is arranged between the operation assembly and the driving assembly, and the operation assembly is configured to move relative to the main body, so that the intermittent assembly drives the driving assembly to rotate intermittently.
[0041] According to a second aspect of the present disclosure, the present disclosure further provides a shower device comprising the above water outlet device.
[0042] One embodiment of the present disclosure has the following advantages or beneficial effects:
[0043] The water outlet device and the shower device provided by the present disclosure can drive the separation structure to move between the first position and the second position by the control mechanism, and the driving assembly cooperates with the multiple first water outlet nozzles to drive or not to drive the first water outlet nozzles to move, so as to realize the effect of different water in the same hole. Since the water outlet force, water outlet form and shower experience of the dynamic water outlet mode and the static water outlet mode are significantly different, the water outlet device can be switched between different water outlet massage modes, which can meet the shower needs of different people or different parts of the body, and the switching of different water outlet modes increases the interest, so as to meet the diversified massage needs of users. BRIEF DESCRIPTION OF DRAWINGS
[0044] The above and other features and advantages of the present disclosure will become more apparent by describing in detail example embodiments thereof with reference to the attached drawings.
[0045] FIG. 1 shows a structural schematic view of a water outlet device according to one embodiment of the present disclosure;
[0046] Fig. 2 shows an exploded schematic view of the water outlet device according to an embodiment of the present disclosure;
[0047] Fig. 3 shows a schematic view of the operation assembly of the water outlet device according to an embodiment of the present disclosure;
[0048] Fig. 4 shows a schematic view of the intermittent assembly of the water outlet device according to an embodiment of the present disclosure;
[0049] Fig. 5 shows a sectional view of the water outlet device in a dynamic water outlet mode according to an embodiment of the present disclosure;
[0050] Fig. 6 shows an enlarged view of a portion of Fig. 5 at A;
[0051] Fig. 7 shows a schematic view of the water distribution disc of the water outlet device according to an embodiment of the present disclosure;
[0052] Fig. 8 shows a schematic view of the water distribution body of the water outlet device according to an embodiment of the present disclosure;
[0053] Fig. 9 shows a schematic view of the water distribution seat of the water outlet device according to an embodiment of the present disclosure;
[0054] Fig. 10 shows a schematic view of the guide plate of the water outlet device according to an embodiment of the present disclosure;
[0055] Fig. 11 shows a schematic view of the separation structure of the water outlet device according to an embodiment of the present disclosure;
[0056] Fig. 12 shows a sectional view of the water outlet device in a micro-bubble water outlet mode according to an embodiment of the present disclosure;
[0057] Fig. 13 shows a sectional view of the water outlet device in a static water outlet mode according to an embodiment of the present disclosure.
[0058] Wherein, the reference signs are explained as follows: 1, main body; 2, water distribution mechanism; 3, control mechanism; 4, bubbler; 101, water inlet; 102, first water outlet nozzle; 103, second water outlet nozzle; 11, body; 12, face cover; 121, guide column; 13, connecting seat; 14, fixing seat; 15, mandrel; 21, water distribution assembly; 22, driving assembly; 23, separation structure; 24, first reset member; 25, sealing gasket; 26, spring seat; 211, water distribution seat; 2111, punching hole; 2112, isolation part; 2113, isolation cavity; 2114, lower water hole; 2115, communication cavity; 212, water distribution disc; 2121, water inlet hole; 2122, guide sliding block; 213, water distribution body; 2131, dynamic water outlet hole; 2132, static water outlet hole; 2133, third water outlet hole; 2134, axial sliding block; 221, guide plate; 2211, guide hole; 2212, mounting hole; 2213, guide hole; 222, impeller; 2221, mounting shaft; 231, connecting shaft; 232, guide block; 2321, axial sliding groove; 2322, guide inclined groove; 31, operating assembly; 311, button; 312, first pin shaft; 313, swing lever; 314, push block; 315, first elastic member; 32, intermittent assembly; 321, ratchet wheel; 322, pawl; 323, second pin shaft; 324, stopper claw; 325, second elastic member. DETAILED DESCRIPTION
[0059] Example implementations will now be described more fully with reference to the accompanying drawings. Example implementations can be implemented in any number of manners, and are not limited to the embodiments described herein. While relative terms such as "upper," "lower," etc. are used herein to describe one component's relative relationship to another component in the figures, such terms are used herein for convenience only and are in no way intended to limit the examples described herein to any particular orientation. It is to be understood that if a device were turned over so that its upper portion is now at its lower portion, and vice versa, then what was described as at the "upper" would now be at the "lower," and vice versa. Other relative terms, such as "top," "bottom," etc. are to be interpreted in a like fashion. When a structure is "on" another structure, it can mean that the structure is formed integrally with the other structure or that the structure is "directly" on the other structure, or that the structure is "indirectly" on the other structure via another structure.
[0060] The terms "a," "an," "the" and "said" are used to refer to one or more than one instance of the element in the description; the terms "comprising," "having" and "including" are used to mean "including but not limited to," and the use of these terms are meant only to provide enclousive limitations and not exclusive limitations; the terms "first," "second," etc. are used only as labels and are not meant to impose numerical requirements on their objects.
[0061] This embodiment provides a water outlet device suitable for bathroom applications such as shower heads and faucets. As shown in Figures 1-2, 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 allow water to enter, 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 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 a dynamic water outlet mode and a static water outlet mode.
[0062] 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.
[0063] 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.
[0064] In one embodiment, the other end of the main body 1 is also provided with a second water outlet nozzle 103 (as shown in FIG. 12), which is used to discharge special water, such as micro-bubble water, carbonated water and other functional water with special functions such as beauty or health care. Among them, the micro-bubble water mode refers to the water discharged from the second water outlet nozzle 103 through the bubbler 4 is micro-bubble water, wherein the micro-bubble water is composed of water and air mixed, and the internal bubble size is generally between 1 micrometer to 100 micrometers. The micro-bubble water is filled with a large number of small bubbles inside, and appears milky white under visual effect. The micro-bubble water has strong decontamination ability and can be widely used in skin cleaning, fruit and vegetable cleaning and even sewage treatment.
[0065] It should be particularly pointed out that the dynamic water outlet mode and the static water outlet mode are through the first water outlet nozzle 102, and the micro-bubble water is through the second water outlet nozzle 103, which is another flow channel water.
[0066] In one embodiment, as shown in FIGS. 1-2, the main body 1 includes a body 11 and a face cover 12, the body 11 is convenient for the user to hold or hang on the wall seat of the wall. The body 11 and the face cover 12 form a containing cavity therebetween, and the water distribution mechanism 2 and the control mechanism 3 are arranged in the containing cavity between the body 11 and the face cover 12, which plays a role of isolation and protection. The first water outlet nozzle 102 is arranged through the face cover 12, which is convenient for the water outlet of the first water outlet nozzle 102.
[0067] As shown in FIG. 2, the main body 1 further includes a connecting seat 13 and a fixing seat 14, both of which are arranged in the containing cavity, and the connecting seat 13 is arranged in the fixing seat 14, which is used to support the control mechanism 3.
[0068] As shown in FIG. 2, the main body 1 further includes a mandrel 15, which is provided with a conveying cavity therein, one end of the conveying cavity is communicated with the water inlet 101, and the other end is communicated with the water distribution mechanism 2. The water flowing into the water inlet 101 is conveyed to the water distribution mechanism 2 through the conveying cavity, and then discharged through the first water outlet nozzle 102 after being distributed by the water distribution mechanism 2.
[0069] In one embodiment, as shown in FIGS. 2-4, the control mechanism 3 includes an operation assembly 31 and an intermittent assembly 32, the intermittent assembly 32 is arranged between the operation assembly 31 and the water distribution mechanism 2, and the operation assembly 31 is configured to move relative to the main body 1, so as to drive the intermittent assembly 32 to drive part of the water distribution mechanism 2 to rotate intermittently.
[0070] Under the driving control of the operation assembly 31, the intermittent assembly 32 can drive part of the water distribution mechanism 2 to rotate intermittently, which is convenient for mode switching between the dynamic water outlet mode, the static water outlet mode and the micro-bubble water mode. The mode switching is free and flexible, and each mode can be paused, which improves the stability and reliability in the current mode.
[0071] Specifically, as shown in FIGS. 2-3, the operation assembly 31 includes a button 311, a first pin shaft 312, a swing lever 313, a push block 314, and a first elastic member 315. The button 311 is slidingly arranged in the main body 1. The swing lever 313 has a triangular structure. The first end of the swing lever 313 is rotatably connected to the fixed seat 14 of the main body 1 via the first pin shaft 312. The second end of the swing lever 313 abuts against the button 311. The third end of the swing lever 313 abuts against the push block 314. The end of the push block 314 away from the swing lever 313 abuts against the intermittent assembly 32 and is movable relative to the main body 1. The first elastic member 315, which can be a spring, is sleeved on the outside of the positioning column of the push block 314 and arranged between the push block 314 and the intermittent assembly 32, and is used for resetting the push block 314.
[0072] Specifically, as shown in FIGS. 2-4, the intermittent assembly 32 includes a ratchet wheel 321, a pawl 322, a second pin shaft 323, and a stop pawl 324. The ratchet wheel 321 is rotatably arranged in the main body 1 and connected to at least part of the water distribution mechanism 2. The pawl 322 has a semi-annular structure. The pawl 322 is annularly arranged around the ratchet wheel 321. One end of the pawl 322 is rotatably connected to the fixed seat 14 of the main body 1 via the second pin shaft 323. The other end of the pawl 322 abuts against the outer peripheral wall of the ratchet wheel 321. One end of the stop pawl 324 is rotatably connected to the main body 1. The other end of the stop pawl 324 abuts against the outer peripheral wall of the ratchet wheel 321, and is used for locking the position of the ratchet wheel 321.
[0073] When the user presses the button 311 downward, the button 311 pushes the second end of the swing lever 313 to move. The first end of the swing lever 313 rotates relative to the main body 1, so that the third end of the swing lever 313 drives the push block 314 to move. The push block 314 compresses the first elastic member 315, and the first elastic member 315 stores energy. The push block 314 drives the pawl 322 to rotate relative to the main body 1 about the second pin shaft 323. The pawl 322 drives the ratchet wheel 321 to rotate counterclockwise by one ratchet angle. After the user releases the button 311, the first elastic member 315 has a resetting tendency. Under the self-recovery force of the first elastic member 315, the first elastic member 315 drives the pawl 322, the swing lever 313, and the button 311 to reset to the initial position. The stop pawl 324 limits and locks the ratchet wheel 321, so that the ratchet wheel 321 is fixed at the position after switching, thereby realizing the switching of one mode function.
[0074] In one embodiment, as shown in FIGS. 2 and 5, the water distribution mechanism 2 further includes a water distribution assembly 21. The water distribution assembly 21 is movably arranged in the main body 1. The water distribution assembly 21 is provided with a water distribution channel. One end of the water distribution channel is in communication with the water inlet 101. The other end of the water distribution channel is in communication with 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. The drive assembly 22 is arranged between the water distribution assembly 21 and the first water outlet 102. The water distribution assembly 21 can drive the drive assembly 22 and drive the first water outlet 102 to rotate relative to the main body 1.
[0075] In this way, the water from the water inlet 101 is transported to the first water outlet nozzle 102 through the water distribution channel of the water distribution assembly 21, the water distribution assembly 21 plays a role of connecting and transporting between the water inlet 101 and the first water outlet nozzle 102, at the same time, the water distribution assembly 21 also provides driving force for the driving assembly 22, so that the driving assembly 22 can drive the first water outlet nozzle 102 to move relative to the main body 1 to realize the dynamic water outlet function.
[0076] In one embodiment, as shown in FIGS. 2, 5-7, the water distribution assembly 21 comprises a water distribution disc 212, wherein the outer shape of the water distribution disc 212 is similar to a disc structure, and the water distribution disc 212 is connected to the control mechanism 3. Specifically, the center of the water distribution disc 212 is provided with a protruding part, and the protruding part is arranged through the ratchet wheel 321 of the control mechanism 3, when the ratchet wheel 321 rotates relative to the main body 1, the water distribution disc 212 rotates with the ratchet wheel 321.
[0077] As shown in FIG. 7, the water distribution disc 212 is provided with a water inlet hole 2121, which is connected to the water inlet 101 through the conveying cavity of the mandrel 15.
[0078] In one embodiment, as shown in FIGS. 2, 5-8, the water distribution assembly 21 comprises a water distribution disc 212 and a water distribution body 213, the water distribution body 213 is fixedly arranged in the accommodating cavity of the main body 1, and the water distribution body 213 is arranged on the side of the water distribution disc 212 away from the control mechanism 3. The water distribution body 213 is provided with a dynamic water outlet hole 2131, a static water outlet hole 2132 and a third water outlet hole 2133, and the dynamic water outlet hole 2131, the static water outlet hole 2132 and the third water outlet hole 2133 are arranged along the circumferential direction of the water distribution disc 212.
[0079] Among them, the control mechanism 3 is configured to drive the water distribution disc 212 to rotate relative to the main body 1, so that the water inlet hole 2121 is connected to one of the dynamic water outlet hole 2131, the static water outlet hole 2132 and the third water outlet hole 2133, forming at least part of the water distribution channel.
[0080] For example, when the ratchet wheel 321 of the control mechanism 3 drives the water distribution disc 212 to rotate, if the water inlet hole 2121 of the water distribution disc 212 corresponds to the dynamic water outlet hole 2131, the water flowing out of the dynamic water outlet hole 2131 is transported to the first water outlet nozzle 102, realizing the dynamic water outlet mode; if the water inlet hole 2121 of the water distribution disc 212 corresponds to the static water outlet hole 2132, the water flowing out of the static water outlet hole 2132 is transported to the first water outlet nozzle 102, realizing the static water outlet mode; if the water inlet hole 2121 of the water distribution disc 212 corresponds to the third water outlet hole 2133, the water flowing out of the third water outlet hole 2133 is transported to the second water outlet nozzle 103 through the bubbler 4, realizing the micro-bubble water outlet mode.
[0081] By setting the dynamic water outlet hole 2131, the static water outlet hole 2132 and the third water outlet hole 2133 along the circumferential direction of the water distribution disc 212, as the water distribution disc 212 rotates, the water inlet hole 2121 can be selectively connected with one of the water outlet holes, and the water outlet mode can be switched freely, flexibly and conveniently.
[0082] Specifically, as shown in FIGS. 7-8, the number of the water inlet holes 2121 is multiple, and the multiple water inlet holes 2121 are arranged along the circumferential direction of the water distribution disc 212. For example, the number of the water inlet holes 2121 is multiple, and the four water inlet holes 2121 are arranged in a cross shape. The number of the dynamic water outlet hole 2131, the static water outlet hole 2132 and the third water outlet hole 2133 is multiple, and the multiple dynamic water outlet holes 2131, the multiple static water outlet holes 2132 and the multiple third water outlet holes 2133 are arranged along the circumferential direction of the water distribution disc 212. For example, the number of the dynamic water outlet hole 2131, the static water outlet hole 2132 and the third water outlet hole 2133 is two, and the two dynamic water outlet holes 2131 are symmetrically distributed with respect to the center of the water distribution disc 212, the two static water outlet holes 2132 are symmetrically distributed with respect to the center of the water distribution disc 212, and the two third water outlet holes 2133 are symmetrically distributed with respect to the center of the water distribution disc 212, and the three water outlet holes are staggered, i.e., the static water outlet hole 2132 is arranged between the adjacent dynamic water outlet hole 2131 and the third water outlet hole 2133.
[0083] In this way, for the same water outlet mode, the water distribution disc 212 can pass through multiple times in one rotation, and the water distribution disc 212 can rotate by a smaller angle to enter the next water outlet mode, shorten the response time, and the mode switching speed is relatively fast.
[0084] In one embodiment, the first included angle between the adjacent two water inlet holes 2121 and the second included angle between any two of the dynamic water outlet hole 2131, the static water outlet hole 2132 and the third water outlet hole 2133 are not the same.
[0085] For example, the first included angle between the adjacent two water inlet holes 2121 is 90°, and the included angle between any two water inlet holes 2121 can be 90°, 180°. The total number of the dynamic water outlet hole 2131, the static water outlet hole 2132 and the third water outlet hole 2133 is six, and the included angle between the adjacent two water outlet holes is 60°, and the second included angle between any two water outlet holes is 60°, 120°, 180°.
[0086] When two of the water inlet holes 2121 correspond to two dynamic water outlet holes 2131, the other two water inlet holes 2121 are just located between the static water outlet hole 2132 and the third water outlet hole 2133, that is, the other two water inlet holes 2121 do not correspond to the static water outlet hole 2132 or the third water outlet hole 2133, then the water flowing out of the water inlet hole 2121 can only enter the dynamic water outlet hole 2131, and cannot enter the static water outlet hole 2132 or the third water outlet hole 2133, thereby ensuring the accuracy of the dynamic water outlet mode and reducing the risk of confusion of different water outlet modes. It can be understood that two of the water inlet holes 2121 correspond to two static water outlet holes 2132 or the third water outlet hole 2133, and the principle is similar, so it will not be described in detail.
[0087] By setting the first included angle and the second included angle to be different, the water inlet hole 2121 can only correspond to the dynamic water outlet hole 2131, the static water outlet hole 2132, and the third water outlet hole 2133, thereby realizing isolation of different water outlet modes and reducing the risk of mode confusion.
[0088] It can be understood that the key 311 of the control mechanism 3 rotates the water distribution disc 212 by 30° once, and the water distribution disc 212 rotates by 90° after pressing the three water outlet modes. If the water distribution disc 212 rotates by 360° in one revolution, the same water outlet mode can be traversed four times, further shortening the response time and the mode switching speed is relatively fast.
[0089] In one embodiment, as shown in FIGS. 2, 5-9, the water distribution assembly 21 includes a water distribution seat 211, which is arranged in the main body 1. The water distribution seat 211 is provided with a mounting groove, and the water distribution body 213 is arranged in the mounting groove for fixing and mounting the water distribution body 213.
[0090] Specifically, as shown in FIG. 9, the water distribution seat 211 is provided with a separation portion 2112, and the separation portion 2112 is provided with a separation cavity 2113. The separation cavity 2113 is arranged corresponding to the dynamic water outlet hole 2131 and the static water outlet hole 2132, and the dynamic water outlet hole 2131 and the static water outlet hole 2132 are in communication with the separation cavity 2113.
[0091] That is, the separation portion 2112 is a circular arc structure, and the central angle of the separation portion 2112 is greater than or equal to 60°. The separation portion 2112 can cover the range area of the dynamic water outlet hole 2131 and the static water outlet hole 2132, and the water flowing out of the dynamic water outlet hole 2131 or the static water outlet hole 2132 can enter the separation cavity 2113 of the separation portion 2112.
[0092] It can be understood that, since the difference between the dynamic water outlet mode and the static water outlet mode is only the movement state of the first water outlet nozzle 102, but the water discharged by the first water outlet nozzle 102 is ordinary water, the isolation cavity 2113 can accommodate the ordinary water flowing from the dynamic water outlet hole 2131 and the static water outlet hole 2132, and will not adversely affect the water outlet of the dynamic water outlet mode and the static water outlet mode. In addition, the isolation cavity 2113 can also be used to some extent to realize the sharing of the two modes. Since in the micro-bubble water outlet mode, the water actually entering the isolation cavity 2113 is also ordinary water, when the ordinary water passes through the bubbler 4 to generate micro-bubble water, the water discharged by the second water outlet nozzle 103 is micro-bubble water, that is, the type of water in the micro-bubble water outlet mode is different from the types of the other two water, and the isolation cavity 2113 does not correspond to the third water outlet hole 2133. In this way, the isolation cavity 2113 plays a role in isolating different types of water, and improves the reliability of the water outlet in the micro-bubble water outlet mode.
[0093] As shown in FIG. 9, the isolation part 2112 is provided with a punching hole 2111, and the isolation cavity 2113 is in communication with the punching hole 2111 to form at least part of the water distribution channel. In this way, the water in the isolation cavity 2113 is not completely limited in the isolation cavity 2113, and the ordinary water in the isolation cavity 2113 is discharged and transported to the first water outlet nozzle 102 through the punching hole 2111.
[0094] As shown in FIG. 9, the water distribution seat 211 is provided with a drain hole 2114, and a communication cavity 2115 is arranged between the adjacent two isolation parts 2112, one end of the communication cavity 2115 is in communication with the third water outlet hole 2133, and the other end is in communication with the drain hole 2114 to form at least part of the water distribution channel.
[0095] In this way, the communication cavity 2115 is arranged between the adjacent two isolation parts 2112, and the space between the adjacent two isolation parts 2112 is fully utilized as the communication cavity 2115, so that the communication cavity 2115 does not need to be additionally and separately arranged, thereby saving production cost. At the same time, the communication cavity 2115 and the isolation cavity 2113 are separated by the isolation part 2112 to realize the isolation of the micro-bubble water and the ordinary water.
[0096] Specifically, the ordinary water discharged from the dynamic water outlet hole 2131 or the static water outlet hole 2132 enters the isolation cavity 2113 and is then transported to the first water outlet nozzle 102 through the punching hole 2111, and the ordinary water flowing out of the third water outlet hole 2133 enters the communication cavity 2115 and is then transported to the second water outlet nozzle 103 through the drain hole 2114 and the bubbler 4. Different types of water are transported along different paths to avoid mixing of the two types of water, thereby improving the water outlet reliability and accuracy of each water outlet mode.
[0097] As shown in FIG. 2, FIG. 5-FIG. 6 and FIG. 10, the drive assembly 22 of the water distribution mechanism 2 includes a guide plate 221, which is arranged between the water distribution seat 211 and the first water outlet nozzle 102, and is provided with a guide hole 2211, in which the first water outlet nozzle 102 is arranged, and the guide hole 2211 provides a limiting position for the first water outlet nozzle 102, and the guide plate 221 can drive the first water outlet nozzle 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 nozzle 102 to move, at which time the static water outlet mode is adopted; when the guide plate 221 rotates relative to the main body 1, the guide plate 221 can drive the first water outlet nozzle 102 to move, at which time the dynamic water outlet mode is adopted, and the switching between the static water outlet mode and the dynamic water outlet mode is realized by the relative rotation of the guide plate 221.
[0098] As shown in FIG. 2, FIG. 5-FIG. 6 and FIG. 9-FIG. 10, the drive assembly 22 further includes an impeller 222, which is arranged between the water distribution seat 211 and the guide plate 221 of the water distribution assembly 21, and is arranged on the side of the guide plate 221 facing the separation structure 23, and the separation structure 23 is selectively connected to the guide plate 221. The punching hole 2111 is arranged corresponding to the impeller 222, so that the spray water flowing out of the punching hole 2111 can drive the impeller 222 to rotate relative to the main body 1, and can drive the first water outlet nozzle 102 to rotate through the guide plate 221.
[0099] In this way, the water flowing out of the punching hole 2111 is the power source for driving the impeller 222 to rotate, and the rotation of the impeller 222 does not require additional power source, saving production cost. When the impeller 222 is connected to the guide plate 221, with the rotation of the impeller 222, the first water outlet nozzle 102 is driven to rotate through the guide plate 221, so as to ensure the realization of the dynamic water outlet mode, and at the same time, since the impeller 222 and the guide plate 221 are not fixedly connected but movably connected, when the impeller 222 is not connected to the guide plate 221, the impeller 222 and the guide plate 221 are separated, even if the impeller 222 is in a rotating state, it cannot drive the guide plate 221 to rotate, the impeller 222 is in an idle state, and the first water outlet nozzle 102 is in a static water outlet mode, and the process of connecting and separating between the impeller 222 and the guide plate 221 is the switching process between the static water outlet mode and the dynamic water outlet mode.
[0100] Among them, the impeller 222 and the blade and the extension direction of the punching hole 2111 are arranged at an angle, for example, 60°, 90°, etc., that is, the punching hole 2111 can be selected as an inclined punching hole, so that the water discharged from the punching hole 2111 can directly impact the blade of the impeller 222 to drive the impeller 222 to rotate.
[0101] In one embodiment, the guide plate 221 is provided with a mounting hole 2212 corresponding to the impeller 222, the impeller 222 is mounted 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 nozzle 102 to swing; wherein 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 2212 is arranged vertically relative to the reference plane.
[0102] In this way, the impeller 222 is in an eccentric fitting state, and as the impeller 222 rotates, the impeller 222 drives the guide plate 221 to swing circumferentially, so that the dynamic movement of the first water outlet nozzle 102 is more obvious, the movement range of the first water outlet nozzle 102 is increased, and the difference between the dynamic water outlet mode and the static water outlet mode is increased. Further, the first water outlet nozzle 102 can perform conical swing movement around the swing pivot of the first water outlet nozzle 102, the dynamic movement range is large, and the interest is strong.
[0103] As shown in FIGS. 6 and 9-10, 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 is arranged through the mounting hole 2212 and is in sliding fit with the mounting hole 2212.
[0104] Through the cooperation of the mounting shaft 2221 and the mounting hole 2212, the connection and separation of the impeller 222 and the guide plate 221 are guided, so that the relative position of the impeller 222 and the guide plate 221 is prevented from deviating greatly when connected.
[0105] As shown in FIGS. 6 and 11, the separation structure 23 is arranged through the water distribution assembly 21 and the impeller 222, the water distribution assembly 21 can drive the separation structure 23 to move in the axial direction of the water distribution mechanism 2, the separation structure 23 abuts against the guide plate 221 and drives the guide plate 221 to move away from the impeller 222, so that the guide plate 221 selectively drives the first water outlet nozzle 102 to rotate.
[0106] In this way, the water distribution assembly 21 also provides a driving force for the separation structure 23 to move in the axial direction of the water distribution assembly 21, without the need to increase an additional driving source, thereby saving production cost. At the same time, during the movement of the separation structure 23 in the axial direction of the water distribution assembly 21, the separation structure 23 can drive the guide plate 221 to move, so as to separate the guide plate 221 and the impeller 222, the impeller 222 is in an idle state, the guide plate 221 cannot rotate with the impeller 222, and the first water outlet nozzle 102 is in a static water outlet state.
[0107] Specifically, the guide plate 221 has at least a first position and a second position, when the guide plate 221 is located at the first position, the guide plate 221 is close to the impeller 222, the guide plate 221 of the driving assembly 22 drives the first water outlet nozzle 102; when the guide plate 221 is located at the second position, the guide plate 221 is away from the impeller 222, the guide plate 221 of the driving assembly 22 does not drive the first water outlet nozzle 102.
[0108] As shown in FIG. 6 and FIG. 11, the separation structure 23 includes a connecting shaft 231, one end of the connecting shaft 231 is arranged through the water distribution disc 212, and the other end of the connecting shaft 231 can abut against the guide plate 221.
[0109] Since one end of the connecting shaft 231 is arranged through the water distribution disc 212, with the rotation of the water distribution disc 212, the water distribution disc 212 can drive the other end of the connecting shaft 231 to provide a pushing force for the guide plate 221, facilitating the mutual separation of the guide plate 221 and the impeller 222.
[0110] As shown in FIG. 8 and FIG. 11, the separation structure 23 includes a guide sliding block 2122 and a guide inclined slot 2322, the guide sliding block 2122 is rotationally arranged in the main body 1, the guide inclined slot 2322 is arranged obliquely relative to the axial direction of the driving assembly 22, the guide sliding block 2122 and the guide inclined slot 2322 are slidingly matched, and are used to drive the connecting shaft 231 to slide along the axial direction of the driving assembly 22, so as to push the guide plate 221 to move in a direction away from the impeller 222.
[0111] Specifically, one of the inner wall of the water distribution disc 212 and the guide block 232 is provided with the guide sliding block 2122, and the other is provided with the guide inclined slot 2322, the guide inclined slot 2322 and the axial sliding slot 2321 are connected in communication, the guide sliding block 2122 and the guide inclined slot 2322 are slidingly matched, and the guide inclined slot 2322 is arranged obliquely relative to the axial direction of the water distribution mechanism 2.
[0112] Since the guide inclined slot 2322 is arranged obliquely relative to the axial direction of the water distribution mechanism 2, after the guide sliding block 2122 and the guide inclined slot 2322 are in contact, the guide sliding block 2122 generates an acting force along the extension direction of the guide inclined slot 2322 on the guide inclined slot 2322, the acting force can be decomposed into an axial acting force along the axial direction of the water distribution mechanism 2 and a radial acting force along the radial direction of the water distribution mechanism 2, the axial acting force can drive the connecting shaft 231 to move along the axial direction of the water distribution mechanism 2 through the guide block 232, and is used for the separation of the impeller 222 and the guide plate 221; the radial acting force can drive the connecting shaft 231 to have a rotation trend along the radial direction of the water distribution mechanism 2 through the guide block 232, but is limited by the cooperation of the axial sliding block 2134 and the axial sliding slot 2321, and the connecting shaft 231 only has a movement along the axial direction of the water distribution mechanism 2.
[0113] It can be understood that the guide slider 2122 is located at different positions of the guide chute 2322, corresponding to the connection shaft 231 pushing 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.
[0114] In one embodiment, the separation structure 23 further comprises a guide block 232 provided on the outer circumferential wall of the connection shaft 231, one end of the connection shaft 231 penetrating the water distribution disc 212. Among them, one of the guide block 232 and the inner wall of the water distribution body 213 is provided with an axial sliding groove 2321, and the other is provided with an axial sliding block 2134, the axial sliding block 2134 and the axial sliding groove 2321 are in sliding fit, and the axial sliding groove 2321 is arranged along the axial direction of the water distribution mechanism 2.
[0115] For example, the guide block 232 is provided with an axial sliding groove 2321, and the water distribution body 213 is correspondingly provided with an axial sliding block 2134, which is used to plan and limit the movement path of the connection shaft 231 through the sliding fit of the axial sliding block 2134 and the axial sliding groove 2321. The connection shaft 231 can only have a movement trend along the axial direction of the water distribution assembly 21, ensuring the accuracy of the alignment contact between the connection shaft 231 and the guide plate 221, thereby ensuring the thoroughness of the separation of the guide plate 221 and the impeller 222.
[0116] Among them, the number of axial sliding grooves 2321 and axial sliding blocks 2134 is multiple, for example, the number of axial sliding grooves 2321 and axial sliding blocks 2134 is four, four axial sliding blocks 2134 are arranged along the circumference of the water distribution assembly 21, four axial sliding grooves 2321 are arranged along the circumference of the water distribution assembly 21, four axial sliding blocks 2134 and four axial sliding grooves 2321 are correspondingly in sliding fit, ensuring the smoothness and balance of the sliding between the guide block 232 and the water distribution seat 211.
[0117] It can be understood that a second elastic member 325 (as shown in FIG. 6) is further arranged between the fixed seat 14 and the water distribution disc 212, which can be a cylindrical spring, used for resetting the water distribution disc 212. Among them, the elastic force of the second elastic member 325 is greater than the elastic force of the first reset member 24, which can also be used for sealing the water distribution disc 212.
[0118] As shown in FIGS. 12-13, one of the face cover 12 and the guide plate 221 which are close to each other is provided with a guide column 121, and the other is provided with a guide hole 2213, the guide column 121 penetrates the guide hole 2213 and is in sliding fit with the guide hole 2213, so that the axial direction of the first water outlet 102 is arranged along the axial direction of the water distribution mechanism 2.
[0119] Under the pressing action 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 with the impeller 222. The guide column 121 of the face cover 12 is inserted into the guide hole 2213 of the guide plate 221, and the guide plate 221 and the face cover 12 are in a guide cooperation. The guide plate 221 pulls the first water outlet nozzle 102 to move, so as to adjust the position of the first water outlet nozzle 102, and make the axial direction of the first water outlet nozzle 102 as much as possible along the axial direction of the water distribution mechanism 2, so as to correct the first water outlet nozzle 102, and realize the static water outlet mode.
[0120] In an embodiment, the water outlet device further comprises a first reset member 24, which is sleeved outside the guide column 121 and arranged between the face cover 12 and the guide plate 221.
[0121] In an embodiment, the first reset member 24 can be a spring. When the guide plate 221 moves downward to disengage 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 disc 212 rotates to be aligned with the axial sliding groove 2321 of the guide block 232. At this time, the first reset member 24 drives the guide plate 221 to reset to the initial position under the self-recovery force, so as to realize the next cycle switching.
[0122] As shown in FIGS. 12-13, the water outlet device further comprises a spring seat 26, which is arranged between the guide plate 221 and the face cover 12, and is used for installing the first reset member 24 and can apply a force to the first reset member 24.
[0123] It can be understood that if the guide plate 221 directly acts on the first reset member 24, the swing of the guide plate 221 will cause the first reset member 24 to be twisted. The spring seat 26 can support the guide plate 221, so that the guide plate 221 does not directly act on the first reset member 24, and the risk of the first reset member 24 being twisted is reduced.
[0124] In other embodiments, only the dynamic water outlet mode and the static water outlet mode can be provided, and the micro-bubble water outlet mode is not provided. At this time, the water distribution disc 212 and the water distribution body 213 are not required, and the water flow directly flows into the isolation chamber 2113 and is sprayed through the punching hole 2111 to drive the impeller 222 to rotate and spray from the first water outlet nozzle 102. In addition, a rotating member is provided, the guide slider 2122 is arranged on the rotating member, and the operating assembly 31 drives the rotating member to rotate to drive the guide slider 2122 to rotate.
[0125] The working process of the water outlet device provided in the embodiment is as follows:
[0126] 1、When it is needed to switch to dynamic water-out mode, as shown in FIG. 5-6, press the button 311, the spring seat 26, the guide plate 221 and the first reset member 24 are reset, the water inlet hole 2121 of the water distribution disc 212 is aligned with the dynamic water outlet hole 2131 of the water distribution body 213, the ordinary water enters the isolation cavity 2113 through the water inlet hole 2121 and the dynamic water outlet hole 2131 and is then sprayed through the punch hole 2111, driving the impeller 222 to rotate, at this time, the guide plate 221 and the impeller 222 are in connection and mutual cooperation state, the impeller 222 drives the guide plate 221 to swing circumferentially, the first water outlet nozzle 102 is linked with the guide plate 221, so that the guide plate 221 swings circumferentially and simultaneously drives the first water outlet nozzle 102 to swing circumferentially around its center, thus realizing the dynamic water-out mode, i.e. non-splashing particle water.
[0127] 2、When it is needed to switch to micro-bubble water-out mode, press the button 311 again, the water inlet hole 2121 of the water distribution disc 212 is aligned with the third water outlet hole 2133 of the water distribution body 213, the ordinary water enters the communication cavity 2115 through the water inlet hole 2121 and the third water outlet hole 2133 and is then discharged through the lower water hole 2114, and enters the second water outlet nozzle 103 through the bubbler 4 to output micro-bubble water. At the same time, the guide slider 2122 of the water distribution disc 212 abuts against the guide inclined groove 2322 of the separation structure 23, so that the connecting shaft 231 of the separation structure 23 drives the guide plate 221 to move away from the impeller 222, for separating the guide plate 221 and the impeller 222, the guide hole 2213 of the guide plate 221 is about to enter the guide cooperation state with the guide column 121 of the face cover 12. With the downward movement of the guide plate 221, the first reset member 24 is compressed, and the first reset member 24 stores energy.
[0128] 3、When it is needed to switch to static water-out mode, press the button 311 again, the water inlet hole 2121 of the water distribution disc 212 is aligned with the static water outlet hole 2132 of the water distribution body 213, the ordinary water enters the isolation cavity 2113 through the water inlet hole 2121 and the static water outlet hole 2132 and is then sprayed through the punch hole 2111, driving the impeller 222 to rotate. At the same time, the guide slider 2122 of the water distribution disc 212 abuts against the guide inclined groove 2322 of the separation structure 23, so that the connecting shaft 231 of the separation structure 23 continues to drive the guide plate 221 to move away from the impeller 222, after the impeller 222 and the guide plate 221 have been separated, the impeller 222 is in an idle state. After being pressed twice, 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 enters the guide cooperation state with the guide column 121 of the face cover 12, the first water outlet nozzle 102 is linked with the guide plate 221, the guide plate 221 drives the first water outlet nozzle 102 to guide to the central position around its center and then keeps the position unchanged, the first water outlet nozzle 102 sprays ordinary water, realizing the function of static shower water, thus realizing a cycle.
[0129] If the button 311 is pressed again, the guide slider 2122 on the water distribution disc 212 is rotated to a position aligned with the axial sliding groove 2321, at which time the first reset member 24 drives the spring seat 26 and the guide plate 221 to reset to the initial position, thus realizing the next cycle switching.
[0130] The embodiment also provides a shower device, which comprises a water outlet device, the control mechanism 3 can drive the separation structure 23 to move between the first position and the second position, and the driving assembly 22 cooperates with the plurality of first water outlet nozzles 102 to drive or not to drive the first water outlet nozzles 102 to move, so as to realize the effect of different water in the same hole. Since the water outlet force, water outlet form and shower experience of the dynamic water outlet mode and the static water outlet mode are significantly different, the water outlet device can be switched between different water outlet massage modes, can be suitable for different people or different parts of the body to meet the shower needs, and the switching of different water outlet modes increases the interest to meet the diversified massage needs of users.
[0131] It should be understood that the present disclosure does not limit its application to the detailed structure and arrangement of the components presented in the specification. The present disclosure can have other embodiments and can be implemented and executed in various ways. The foregoing variations and modifications fall within the scope of the present disclosure. It should be understood that the present disclosure disclosed and defined in the specification extends to all alternative combinations of two or more individual features mentioned or obvious from the text and / or drawings. All these different combinations constitute multiple alternative aspects of the present disclosure. The embodiments described in the specification illustrate the best way known for implementing the present disclosure and will enable those skilled in the art to utilize the present disclosure.
Claims
1. A water outlet device, characterized by, The utility model relates to a water faucet, comprising: a body, one end of the body is provided with a water inlet, the other end is provided with a first water outlet nozzle; a drive assembly movably arranged in the body and capable of driving the first water outlet nozzle to move relative to the body; a separation structure movably arranged in the body and having a first position and a second position relative to the body; a control mechanism arranged in the body and drivingly connected to the separation structure; wherein the control mechanism is configured to move relative to the body and drive the separation structure to move between the first position and the second position, so that the drive assembly can selectively drive the first water outlet nozzle to rotate to switch between a dynamic water outlet mode and a static water outlet mode.
2. The water outlet device according to claim 1, characterized in that The drive assembly comprises: a guide plate provided with a guide hole, the first water outlet nozzle is arranged in the guide hole; an impeller arranged on one side of the guide plate facing the separation structure, the separation structure is selectively connected to the guide plate, the body is provided with a punch hole corresponding to the impeller, so that the water flowing out of the punch hole can drive the impeller to rotate relative to the body, and the first water outlet nozzle can be swung through the guide plate.
3. The water outlet device according to claim 2, characterized in that The guide plate is provided with a mounting hole corresponding to the impeller, the impeller is mounted in the mounting hole, the projection of the central axis of the impeller on a reference plane and the projection of the central axis of the mounting hole on the reference plane do not coincide, so that the guide plate can swing the water outlet nozzle; wherein the central axis of the impeller and the central axis of the mounting hole are arranged in parallel to each other, and the central axis of the mounting hole is arranged vertically relative to the reference plane.
4. The water outlet device according to claim 3, characterized in that The side of the impeller facing the guide plate is provided with a mounting shaft, the mounting hole is provided corresponding to the mounting shaft, the mounting shaft is arranged in the mounting hole and is in sliding fit 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 drives the guide plate to move away from the impeller, so that the guide plate selectively drives the first water outlet nozzle to rotate.
6. The water outlet device according to claim 5, characterized in that The separation structure comprises: a connecting shaft, one end of the connecting shaft can abut against the guide plate; a guide slider rotatably arranged in the body; a guide inclined slot, the guide inclined slot is arranged obliquely relative to the axial direction of the drive assembly, the guide slider and the guide inclined slot are in sliding fit, and are used for driving the connecting shaft to slide along the axial direction of the drive assembly to drive the guide plate to move away from the impeller.
7. The water outlet device according to claim 6, characterized in that Further comprising a water distribution assembly movably arranged in the body, the body further comprises a second water outlet nozzle, the water inlet is connected in communication with the first water outlet nozzle and the second water outlet nozzle through the water distribution assembly; the water distribution assembly is provided with a water distribution channel, one end of the water distribution channel is connected in communication with the water inlet, and the other end is connected in communication with the first water outlet nozzle and the second water outlet nozzle, and the first water outlet nozzle 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 distribution assembly comprises: a water distribution seat arranged between the guide plate and the control mechanism, the punch hole is arranged in the water distribution seat, and the impeller is arranged in the water distribution seat; a water distribution disc connected to the control mechanism, the water distribution disc is provided with a water inlet hole; A water diversion body is arranged between the water diversion disc and the water diversion seat, and is provided with a dynamic water outlet hole, a static water outlet hole and a third water outlet hole, which are arranged along the circumferential direction of the water diversion disc, and the separation structure is arranged through the water diversion disc, the water diversion body and the water diversion seat. The control mechanism is configured to drive the water diversion disc to rotate relative to the main body, so that the water inlet hole is in communication with one of the dynamic water outlet hole, the static water outlet hole and the third water outlet hole, forming at least part of the water diversion channel.
9. The water outlet device according to claim 8, characterized in that The separation structure further comprises: A guide block is arranged on the outer circumferential wall of the connecting shaft, and one end of the connecting shaft is arranged through the water diversion disc; one of the inner wall of the water diversion disc and the guide block is provided with a guide sliding block, and the other is provided with a guide inclined slot; One of the guide block and the inner wall of the water diversion body is provided with an axial sliding groove, and the other is provided with an axial sliding block, the axial sliding block and the axial sliding groove are in sliding fit, and the axial sliding groove is arranged along the axial direction of the driving assembly.
10. The water outlet device according to claim 8, characterized in that The water diversion seat is provided with an isolation part, the punching hole is arranged in the isolation part, an isolation cavity is arranged in the isolation part, the dynamic water outlet hole and the static water outlet hole are in communication with the isolation cavity, and the isolation cavity is in communication with the punching hole, forming at least part of the water diversion channel.
11. The water outlet device according to claim 10, characterized in that The water diversion seat is provided with a drain hole, and a communication cavity is arranged between adjacent two isolation parts, one end of the communication cavity is in communication with the third water outlet hole, and the other end is in communication with the drain hole, forming at least part of the water diversion channel.
12. The water outlet device according to claim 8, characterized in that The number of water inlet holes is multiple, and multiple water inlet holes are arranged along the circumference of the water diversion disc, and adjacent two water inlet holes have a first included angle; The number of the dynamic water outlet hole, the static water outlet hole and the third water outlet hole is multiple, and any two of the dynamic water outlet hole, the static water outlet hole and the third water outlet hole have a second included angle; The first included angle and the second included angle are different.
13. The water outlet device according to claim 3, characterized in that The main body comprises a body and a face cover, the driving assembly and the control mechanism are arranged between the body and the face cover, and the first water outlet nozzle is arranged through the face cover; One of the face cover and the guide plate arranged on the side close to each other is provided with a guide column, and the other is provided with a guide hole, the guide column is arranged through the guide hole and in sliding fit with the guide hole, so that the axial direction of the first water outlet nozzle is arranged along the axial direction of the driving assembly.
14. The water outlet device according to claim 13, characterized in that It further comprises a first reset member, which is sleeved on the outside of the guide column and arranged 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 comprises an operation assembly and an intermittent assembly, the intermittent assembly is arranged between the operation assembly and the driving assembly, and the operation assembly is configured to move relative to the main body, so that the intermittent assembly drives the driving assembly to rotate intermittently.
16. A shower apparatus characterised by The water outlet device comprises the water outlet device according to any one of claims 1 to 15.
Citation Information
Patent Citations
Shower head
CA2737857A1
Water outlet mechanism having same water outlets with different water outlet functions
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CN107159476A
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CN114146837A
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