A wave-outlet shower head
By designing the driving water distribution mechanism and transmission mechanism of the wave water shower, the water pressure drives the nozzle to swing to form a wavy movable water splash, the existing shower water splash is solved, and the user experience and convenience are improved.
Patent Information
- Application Number
- CN202111654953.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-30
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2041-12-30
AI Technical Summary
The existing shower spray style is fixed and stationary, which cannot improve the user experience, and requires manual operation and is cumbersome to use.
A wave water shower is designed, including a shell, a driving water distribution mechanism, a transmission mechanism and a water outlet mechanism, which drives the rotary member to rotate through the water pressure, drives the driving crankshaft and the nozzle to swing, forming a wavy movable water splash.
The wavy movable water splash pattern is realized, which improves the user experience. The water splash automatically swings without manual operation, is convenient to use, and has a massage effect.
Smart Images

Figure CN114471977B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of shower heads, and particularly to a wave-shaped water outlet shower head. Background Art
[0002] Shower heads are commonly used bathroom supplies. Traditional shower heads have only a single water outlet function. With the improvement of people's living standards and the requirements for the quality of life, some existing shower heads already have the function of switching multiple water flower styles. For example, the patent with the publication number CN203842733U discloses a multi-waterway switching shower head, which includes a button, a water distribution plate, a switching plate, and a water distribution pipe. The button is connected to the water distribution plate through a transmission mechanism. Different water distribution ports in the switching plate can be connected to different water distribution pipes. By pressing the button, the rotation of the water distribution plate can be controlled, so that water enters different water distribution pipes through different water distribution ports, thus forming different water flower styles. However, the water flower styles after switching of this shower head that can switch water flowers are fixed and static styles, which are relatively single and cannot improve the user experience. Moreover, manual switching of the water flower styles is required, and it is relatively cumbersome to use. Summary of the Invention
[0003] The technical problem to be solved by the present invention is to provide a wave-shaped water outlet shower head that can spray a movable wave-shaped water flower style, has high ornamental value, and can improve the user experience; moreover, the wave-shaped water flower swings automatically without manual operation, and is convenient to use.
[0004] To solve the above technical problem, the present invention provides a wave-shaped water outlet shower head, which includes a housing, a driving water distribution mechanism, a transmission mechanism, and a water outlet mechanism. The housing includes an upper cover and a base connected to each other. The upper cover is provided with a water inlet, and water enters the wave-shaped water outlet shower head from the water inlet.
[0005] The driving water distribution mechanism includes a water passing port and a rotating member. The water passing port is communicated with the water inlet, and the water passing port is located above the rotating member. Water can enter the driving water distribution mechanism from the water passing port and can drive the rotating member to rotate. The water outlet mechanism includes a plurality of nozzles. The plurality of nozzles are distributed on the base, and the nozzles are communicated with the driving water distribution mechanism. Water can be sprayed out from the nozzles.
[0006] The transmission mechanism includes a driving crankshaft. The driving crankshaft is connected to the rotating member. The rotating member can drive the driving crankshaft to rotate. The driving crankshaft is simultaneously connected to one end of a plurality of the nozzles in a slidable manner. The nozzles are provided with spray ports, and the swing directions of the plurality of spray ports are staggered one by one. When the driving crankshaft rotates, it can drive the plurality of nozzles to swing reciprocally at the same time and spray intermittent wave-shaped water flowers.
[0007] As an improvement to the above solution, the driving water distribution mechanism further includes a driving worm, the driving worm is coaxially fixed with the rotating shaft of the rotating member, and the rotating member is hinged to the inner side of the base.
[0008] As an improvement to the above solution, the transmission mechanism further includes a transmission worm gear, the axis of the transmission worm gear is perpendicular to the rotating shaft of the rotating member, the transmission worm gear can be meshed with the driving worm, the driving crankshaft includes a plurality of main journal necks, the driving crankshaft can rotate around the axis formed by the plurality of main journal necks, and the axis of the transmission worm gear is connected to one of the main journal necks.
[0009] As an improvement to the above solution, the driving crankshaft further includes a plurality of connecting rod journal necks, the connecting rod journal necks are parallel to the main journal necks, the positions of the plurality of connecting rod journal necks deviate from the axis where the main journal necks are located, and the connecting rod journal necks can rotate around the axis where the main journal necks are located.
[0010] As an improvement to the above solution, the transmission mechanism further includes a hinge disc, the driving crankshaft is hinged to the end of the inner side of the base through the hinge disc, the plane of the hinge disc is perpendicular to the axis where the main journal necks are located, the projections of the plurality of connecting rod journal necks on the plane of the hinge disc are staggered from each other, and the angles by which the adjacent connecting rod journal necks are staggered on the plane of the hinge disc are equal.
[0011] As an improvement to the above solution, swing grooves are provided on each of the plurality of nozzles, the swing grooves are provided at one end of the nozzle away from the nozzle orifice, the plurality of connecting rod journal necks are respectively inserted into the plurality of swing grooves, the connecting rod journal necks can swing the nozzle orifice back and forth through the swing grooves, the staggering angle between two adjacent nozzle orifices is equal to the staggering angle between the projections of two adjacent connecting rod journal necks on the plane of the hinge disc, and the spatial connection lines of the plurality of nozzle orifices can form a wavy line type.
[0012] As an improvement to the above solution, a hinge column is provided on the side of the nozzle, the setting direction of the hinge column is parallel to the central axis of the transmission worm gear, the nozzle is hinged to the bottom of the base through the hinge column, and the swing groove can swing the nozzle orifice back and forth through the hinge column.
[0013] As an improvement to the above solution, an avoidance hole is provided at the bottom of the base, the nozzle orifice can pass through the avoidance hole, and the length of the avoidance hole is not less than the amplitude of the movement of the nozzle orifice during reciprocating swing.
[0014] As an improvement to the above solution, the driving water distribution mechanism further includes a water distribution cavity, the water distribution cavity is arranged inside the shell, the water inlet is communicated with the upper part of the water distribution cavity, and the rotating member is arranged inside the water distribution cavity.
[0015] As an improvement of the above solution, the driving water distribution mechanism further includes a water distribution port which can communicate with the nozzle, and the water distribution port is arranged at the lower side of the water distribution cavity.
[0016] As an improvement of the above solution, driving vanes are arranged on the side of the rotating member, and the driving vanes are evenly distributed around the circumference on the rotating shaft of the rotating member. Water can be ejected from the water through-hole to drive the driving vanes to drive the rotating member to rotate.
[0017] As an improvement of the above solution, the driving water distribution mechanism further includes a water through-cavity which communicates with the water inlet. The water through-hole is located at the side of the water through-cavity, and the water through-hole is arranged at a position deviating from the rotating shaft of the rotating member and directly above the driving vanes.
[0018] Implementing the present invention has the following beneficial effects:
[0019] The wave-shaped water spraying shower head of the present invention is provided with a driving water distribution mechanism, a transmission mechanism and a water spraying mechanism. A rotating member is arranged in the driving water distribution mechanism, a driving crankshaft is arranged in the transmission mechanism, and a plurality of nozzles are arranged in the water spraying mechanism. The nozzle is provided with a spray opening. The driving crankshaft forms a slidable connection with one end of a plurality of the nozzles at the same time. When water enters, the water can impact the rotating member to make the rotating member rotate. When the rotating member rotates, it will drive the driving crankshaft to rotate accordingly. The driving crankshaft will drive the nozzles to swing simultaneously. Since the swinging directions of a plurality of the spray openings are staggered from each other one by one, when water is ejected, the water spraying angles of a plurality of the nozzles are different, and the water sprays connected to each other will form wave-shaped water flowers. When the water supply does not stop, the spray openings will continuously swing back and forth, thereby forming movable wave-shaped water flowers, which has better ornamental value. Moreover, the movable wave-shaped water flowers also have a massaging effect, which can improve the user experience. Since the swinging of the spray openings is driven by water pressure and does not require manual adjustment, it has better convenience during use and can further improve the use experience. Description of the Drawings
[0020] Figure 1 is a schematic structural diagram of the wave-shaped water spraying shower head of the present invention;
[0021] Figure 2 is a schematic diagram of the present invention in the water spraying state;
[0022] Figure 3 is a schematic structural diagram of the transmission mechanism and the water spraying mechanism of the present invention;
[0023] Figure 4 is a schematic side structural diagram of the driving crankshaft of the present invention;
[0024] Figure 5 is a schematic structural diagram of the water distribution cavity and the water distribution port of the present invention;
[0025] Figure 6 It is a schematic diagram of the water flow path of the wave-emerging shower head of the present invention. Specific Embodiments
[0026] To make the objectives, technical solutions and advantages of the present invention clearer, the present invention will be further described in detail below with reference to the accompanying drawings. It is hereby declared that the orientation terms such as up, down, left, right, front, back, inside and outside that appear or will appear in the text of the present invention are only based on the accompanying drawings of the present invention, and they do not specifically limit the present invention.
[0027] See Figure 1 , an embodiment of the present invention discloses a wave-emerging shower head, which includes a housing 1, a driving and water-distributing mechanism 2, a transmission mechanism 3 and a water outlet mechanism 4. The housing 1 includes an upper cover 11 and a base 12 that are connected to each other. The driving and water-distributing mechanism 2, the transmission mechanism 3 and the water outlet mechanism 4 are arranged inside the housing 1. The upper cover 11 also has a water inlet function. The upper cover 11 is provided with a water inlet 111, and water enters the wave-emerging shower head from the water inlet 111. The driving and water-distributing mechanism 2 includes a water passing port 26 and a rotating member 21. The water passing port 26 is communicated with the water inlet 111. After water enters the water inlet 111, it will continue to flow downward from the water passing port 26. The water passing port 26 is located above the rotating member 21, and water can directly impact on the rotating member 21, providing power for the rotation of the rotating member 21. Therefore, water can enter the driving and water-distributing mechanism 2 from the water passing port 26 and drive the rotating member 21 to rotate. The water outlet mechanism 4 includes a plurality of nozzles 41. The plurality of nozzles 41 are distributed on the base 12. The nozzles 41 are communicated with the driving and water-distributing mechanism 2. Water enters the nozzles 41 from the driving and water-distributing mechanism 2 and is finally sprayed out from the nozzles 41.
[0028] In order to make the nozzles 41 spray movable wavy water flowers, the transmission mechanism 3 includes a driving crankshaft 31. The driving crankshaft 31 is connected to the rotating member 21. When the rotating member 21 rotates under the drive of water pressure, the rotating member 21 can drive the driving crankshaft 31 to rotate. The driving crankshaft 31 is simultaneously connected to one end of a plurality of the nozzles 41 in a slidable manner. The driving crankshaft 31 can slide at one end of the nozzles 41 to adapt to the up-and-down displacement of the driving crankshaft 31 relative to the nozzles 41 during rotation. The driving crankshaft 31 only transmits the side displacement to the nozzles 41, enabling the nozzles 41 to swing, and the up-and-down displacement of the driving crankshaft 31 can be offset by the sliding of the driving crankshaft 31 at one end of the nozzles 41. See Figure 2, the spray head 41 is provided with spray nozzles 411. When at rest, the swinging directions of the plurality of spray nozzles 411 are staggered from each other one by one. By setting the swinging angles of the respective spray nozzles 411, it is possible to form a spatial wavy shape with the end face connection lines of the plurality of spray nozzles 411. Therefore, when spraying water, wavy water flowers can be sprayed. Under the action of water pressure, the driving crankshaft 31 will drive the plurality of spray heads 41 to swing simultaneously. During the swinging process, the swinging directions of the plurality of spray nozzles 411 will still remain staggered from each other, so that when the driving crankshaft 31 rotates, it can drive the plurality of spray heads 41 to reciprocally swing simultaneously and spray intermittent fluctuating wavy water flowers, and these wavy water flowers are still in a swinging state, forming a dynamic "wave", so it has high ornamental value. Moreover, the swinging wavy water flowers can intermittently stimulate the skin in different areas, enabling the user to obtain a massage effect.
[0029] The beneficial effects of the embodiments of the present invention are as follows:
[0030] The wave - discharging shower head of the embodiments of the present invention is provided with a housing 1, a driving water - distributing mechanism 2, a transmission mechanism 3 and a water - discharging mechanism 4. Water enters from the water inlet 111 of the housing 1. The driving water - distributing mechanism 2 is provided with a rotating member 21. The transmission mechanism 3 is provided with a driving crankshaft 31. The water - discharging mechanism 4 is provided with a plurality of spray heads 41. The spray heads 41 are provided with spray nozzles 411. One end of the driving crankshaft 31 is slidably connected to a plurality of the spray heads 41 at the same time. The rotating member 21 can drive the plurality of spray heads 41 to reciprocally swing through the driving crankshaft 31. When water enters, the water can impact the rotating member 21 to make the rotating member 21 rotate. When the rotating member 21 rotates, it will drive the driving crankshaft 31 to rotate accordingly. The driving crankshaft 31 will drive the spray heads 41 to swing simultaneously. Since the swinging directions of the plurality of spray nozzles 411 are staggered from each other one by one, when discharging water, the water - spraying angles of the plurality of spray heads 41 are different, and when connected to each other, they will form wavy water flowers. Without stopping the water supply, the spray nozzles 411 will continuously reciprocally swing, thereby forming wavy water flowers with a dynamic wave effect, having better ornamental value, and the movable wavy water flowers also have a massage effect, which can improve the user experience. Since the swinging of the spray nozzles 411 is driven by water pressure and does not require manual adjustment, it has better convenience during use and can further improve the user experience.
[0031] Specifically, the driving water diversion mechanism 2 also includes a driving worm 22, which is coaxially fixed with the rotating shaft of the rotating member 21, and the rotating member 21 is hinged to the inner side of the base 12. In this embodiment, the number of the rotating members 21 is preferably 2, and the two rotating members 21 are respectively hinged to the opposite sides of the base 12, and the driving worm 22 is arranged between the two rotating members 21. Therefore, when water impacts the rotating member 21 to cause the rotating member 21 to rotate, the two rotating members 21 can drive the driving worm 22 to rotate, and the rotation direction of the driving worm 22 is consistent with the rotation direction of the rotating member 21. In order to achieve transmission, the transmission mechanism 3 also includes a transmission worm wheel 32, the axis of the transmission worm wheel 32 is perpendicular to the rotating shaft of the rotating member 21, and the transmission worm wheel 32 can engage with the driving worm 22 to form a worm gear transmission. The transmission of the worm gear is relatively large and the structure is compact, which can enable the nozzle 41 to achieve a large swing, and the worm gear has a self-locking function, and the driving worm 22 cannot be rotated by bending the transmission worm wheel 32, and has a high fault tolerance rate.
[0032] See also Figure 3 The driving crankshaft 31 includes a plurality of main journals 311, and the main journals 311 are the rotating axes of the driving crankshaft 31. The driving crankshaft 31 can rotate around the axis formed by the plurality of main journals 311. The axis of the transmission worm wheel 32 is connected to one of the main journals 311. When the driving worm 22 drives the transmission worm wheel 32 to rotate, the main journal 311 can be driven to rotate, thereby rotating the entire driving crankshaft 31. Figure 4 The driving crankshaft 31 also includes a plurality of connecting rod journals 312, and the connecting rod journals 312 are journals connected to the side of the main journal 311. The connecting rod journals 312 are parallel to the main journal 311. The positions of the plurality of connecting rod journals 312 deviate from the axis of the main journal 311, and the connecting rod journals 312 can rotate around the axis of the main journal 311. Since the connecting rod journal 312 deviates from the main journal 311, when the connecting rod journal 312 rotates around the main journal 311, the connecting rod journal 312 can generate displacement relative to the main journal 311 in the lateral and up and down directions. The lateral displacement of the connecting rod journal 312 can drive the nozzle 41 to swing.
[0033] The transmission mechanism 3 further includes a hinge disc 33. The driving crankshaft 31 is hinged to the inner end of the base 12 through the hinge disc 33. The plane of the hinge disc 33 is perpendicular to the axis where the main journal 311 is located. The projections of multiple connecting rod journals 312 on the plane of the hinge disc 33 are staggered from each other. Therefore, in space, the connecting lines of multiple connecting rod journals 312 can form a spatial wave helix, and the angles by which adjacent connecting rod journals 312 are staggered in the plane of the hinge disc 33 are equal. Swing grooves 412 are provided on each of the multiple nozzles 41. The swing grooves 412 are provided at one end of the nozzle 41 away from the nozzle orifice 411. Multiple connecting rod journals 312 can be respectively inserted into the multiple swing grooves 412. Since the connecting rod journals 312 are staggered from each other in space, in order to be inserted into the swing grooves 412, the nozzle 41 needs to swing by a certain angle to adapt to the direction of the connecting rod journals 312. During the rotation of the connecting rod journal 312 following the driving crankshaft 31, the displacement generated laterally by it can transmit torque through the swing groove 412, thereby realizing the reciprocating swing of the nozzle orifice 411. In addition to the function of transmitting torque, the swing groove 412 also plays a role in releasing the up-and-down displacement of the connecting rod journal 312, which can prevent the connecting rod journal 312 from driving the nozzle 41 to move in the vertical direction and protect the sealing performance of the nozzle 41. In this embodiment, the staggering angle between two adjacent nozzle orifices 411 is equal to the staggering angle between the projections of two adjacent connecting rod journals 312 on the plane of the hinge disc 33, so as to generate water flowers with a uniform wave bending radian. In other embodiments, diversified angles can also be flexibly set to make the nozzle 41 spray more personalized wave-shaped water flowers. The nozzle 41 needs to swing by a certain angle to adapt to the direction of the connecting rod journal 312. By setting the direction of the connecting rod journal 312, the spatial connecting lines of multiple nozzle orifices 411 can form a wave line. Therefore, when discharging water, the nozzle orifice 411 can spray wave-shaped water flowers.
[0034] In order to facilitate the swinging of the nozzle 41, a hinge post 413 is provided on the side of the nozzle 41. The setting direction of the hinge post 413 is parallel to the central axis of the driving worm gear 32. The nozzle 41 is hinged to the bottom of the base 12 through the hinge post 413. The swinging slot 412 can swing the nozzle 411 reciprocally through the hinge post 413. When the driving worm gear 32 rotates, the driving crankshaft 31 will drive the nozzle 41 to swing reciprocally around the hinge post 413. The hinge post 413 becomes the fulcrum of the nozzle 41. The swinging slot 412 and the nozzle 411 are respectively located on both sides of the fulcrum, thus forming a lever structure. When the swinging slot 412 is swung by the driving crankshaft 31, the nozzle 411 will make a corresponding swing on the other side. The swinging angles of the nozzle 411 and the swinging slot 412 are equal.
[0035] In order to accommodate the swinging of the nozzle 41, an avoidance hole 121 is provided at the bottom of the base 12. The nozzle 411 can pass through the avoidance hole 121, so that water can be sprayed out from the bottom of the base 12. The length of the avoidance hole 121 is not less than the amplitude of the nozzle 411 moving during reciprocating swinging, so as to avoid interference with the swinging of the nozzle 411. See Figure 5 The driving water distribution mechanism 2 further includes a water distribution cavity 23. The water distribution cavity 23 is arranged inside the housing 1. In this embodiment, the number of the water distribution cavities 23 is preferably 2. The 2 water distribution cavities 23 are respectively arranged on both sides inside the housing 1. The water passing port 26 is communicated with the upper part of the water distribution cavity 23. The rotating member 21 is arranged in the water distribution cavity 23 and can receive the impact of water from the water passing port 26. Water can impact the rotating member 21 from the water passing port 26 and enter the water distribution cavity 23. The driving water distribution mechanism 2 further includes a water distribution port 24. The water distribution port 24 can be communicated with the nozzle 41. The water distribution port 24 is arranged at the lower side part of the water distribution cavity 23. In this embodiment, the number of the water distribution ports 24 is preferably 2. The 2 water distribution ports 24 are respectively arranged at the lower side parts of the 2 water distribution cavities 23. The water outlet directions of the 2 water distribution ports 24 are opposite. After water enters the water distribution cavity 23 from the water passing port 26, it can be discharged from the water distribution ports 24 in opposite directions respectively, so as to flow into each nozzle 41.
[0036] Driving blades 211 are provided on the side of the rotating member 21. The driving blades 211 are evenly distributed in a circumferential manner on the rotating shaft of the rotating member 21. Water can be sprayed out from the water passing port 26 and drive the driving blades 211 to drive the rotating member 21 to rotate. See Figure 6, the driving water distribution mechanism 2 further includes a water passage chamber 25, the water passage chamber 25 is communicated with the water inlet 111, the water passage port 26 is located at the side of the water passage chamber 25, and the water passage port 26 is arranged at a position deviating from the rotation axis of the rotating member 21 and is located directly above the driving vane 211. After water enters the water inlet 111, it first enters the water passage chamber 25. Under the action of water pressure, the water can be ejected from the water passage port 26 located directly above the driving vane 211, so as to impact the driving vane 211 and drive the rotating member 21 to rotate. Then the water enters the water distribution chamber 23 and flows into the nozzle 41 from the water distribution port 24.
[0037] The above are the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art of the present technology, without departing from the principle of the present invention, several improvements and refinements can also be made, and these improvements and refinements are also regarded as the protection scope of the present invention.
Claims
1. A wave-outlet shower head, characterized in that, it includes a housing, a driving and water-distributing mechanism, a transmission mechanism and a water-outlet mechanism. The housing includes an upper cover and a base which are connected to each other. The upper cover is provided with a water inlet, and water enters the wave-outlet shower head from the water inlet; the driving and water-distributing mechanism includes a water-through port and a rotating member. The water-through port is communicated with the water inlet and is located above the rotating member. Water can enter the driving and water-distributing mechanism from the water-through port and can drive the rotating member to rotate. The water-outlet mechanism includes a plurality of nozzles which are distributed on the base. The nozzles are communicated with the driving and water-distributing mechanism, and water can be sprayed out from the nozzles; the transmission mechanism includes a driving crankshaft which is connected to the rotating member. The rotating member can drive the driving crankshaft to rotate. The driving crankshaft is simultaneously connected to one end of a plurality of the nozzles in a slidable manner. The nozzles are provided with spray openings, and the swinging directions of a plurality of the spray openings are staggered one by one. When the driving crankshaft rotates, it can drive a plurality of the nozzles to swing reciprocally simultaneously and spray intermittent and fluctuating wavy water flowers; the driving crankshaft includes a plurality of main journal bearings and a plurality of connecting rod journal bearings. The positions of a plurality of the connecting rod journal bearings deviate from the axis where the main journal bearings are located; the transmission mechanism further includes a hinged disc. The driving crankshaft is hinged to the inner end of the base through the hinged disc; a plurality of the nozzles are each provided with a swinging groove which is arranged at one end of the nozzle far away from the spray opening. A plurality of the connecting rod journal bearings are respectively inserted into a plurality of the swinging grooves. The connecting rod journal bearings can reciprocally swing the spray opening through the swinging grooves. The staggering angle between two adjacent spray openings is equal to the staggering angle of the projections of two adjacent connecting rod journal bearings on the plane of the hinged disc. The spatial connection lines of a plurality of the spray openings can form a wavy line type; the bottom of the base is provided with an avoidance hole, and the spray opening can pass through the avoidance hole. The length of the avoidance hole is not less than the amplitude of the movement of the spray opening during reciprocating swing.
2. The wave-outlet shower head according to claim 1, characterized in that, the driving and water-distributing mechanism further includes a driving worm which is coaxially fixed to the rotating shaft of the rotating member. The rotating member is hinged to the inner side of the base.
3. The wave-outlet shower head according to claim 2, characterized in that, the transmission mechanism further includes a transmission worm gear. The axis of the transmission worm gear is perpendicular to the axis of the rotating shaft of the rotating member. The transmission worm gear can be meshed with the driving worm. The driving crankshaft can rotate around the axis formed by a plurality of the main journal bearings. The axis of the transmission worm gear is connected to one of the main journal bearings.
4. The wave-outlet shower head according to claim 3, characterized in that, the connecting rod journal bearing is parallel to the main journal bearing, and the connecting rod journal bearing can rotate around the axis where the main journal bearing is located.
5. The wave-outlet shower head according to claim 4, characterized in that, The plane of the articulated disc is perpendicular to the axis where the main journal is located, and the projections of multiple connecting rod journals on the plane of the articulated disc are staggered from each other, and the angles by which adjacent connecting rod journals are staggered in the plane of the articulated disc are equal.
6. The wave-outlet shower head according to claim 3, wherein, a hinge post is provided on the side of the shower head, the setting direction of the hinge post is parallel to the central axis of the driving worm gear, the shower head is hinged to the bottom of the base through the hinge post, and the swing slot can reciprocally swing the spray nozzle through the hinge post.
7. The wave-outlet shower head according to claim 2, wherein, the driving water distribution mechanism further includes a water distribution cavity, the water distribution cavity is arranged inside the housing, the water through hole is communicated with the upper part of the water distribution cavity, and the rotating member is arranged in the water distribution cavity.
8. The wave-outlet shower head according to claim 7, wherein, the driving water distribution mechanism further includes a water distribution port, the water distribution port can be communicated with the shower head, and the water distribution port is arranged at the lower side part of the water distribution cavity.
9. The wave-outlet shower head according to claim 1, wherein, driving vanes are arranged on the side of the rotating member, the driving vanes are evenly distributed in a circle on the rotating shaft of the rotating member, and water can be sprayed out from the water through hole and drive the driving vanes to drive the rotating member to rotate.
10. The wave-outlet shower head according to claim 9, wherein, the driving water distribution mechanism further includes a water through cavity, the water through cavity is communicated with the water inlet, the water through hole is located on the side of the water through cavity, and the water through hole is arranged at a position deviating from the rotating shaft of the rotating member and directly above the driving vanes.
Citation Information
Patent Citations
Multi-waterway switching shower head
CN203842733U
Labor-saving swinging water-splashing structure
CN203408835U
Wave water outlet shower head
CN217288865U
Transversely swinging spring device
CN2899963Y