Water spray switching control device and shower head

By designing the adjustment plate and sealing components, the problem of easy wear and tear on the shower head's water output switching structure was solved, enabling quick and convenient switching of water output modes, extending the shower head's service life and improving the structure's stability.

CN224586133UActive Publication Date: 2026-08-04XIAMEN JIELANG SANITARY WARE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XIAMEN JIELANG SANITARY WARE
Filing Date
2025-09-12
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

The existing showerheads mainly use a button-type mechanism for switching water flow functions, which is prone to wear and tear, resulting in a short service life.

Method used

The shower head is designed with an adjusting plate, a push block, a first sealing component, and a second sealing component. The push block controls the horizontal movement of the adjusting plate, which in turn controls the vertical movement of the first and second sealing components, thus switching the water output mode of the shower head.

Benefits of technology

It enables quick and convenient switching of shower head water output modes, extends the service life of the shower head, and improves the stability and sealing of the structure.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of shower heads, and provides a water spraying switching control device, which comprises a shower head body, an adjusting plate, a push block, a first plugging assembly and a second plugging assembly. The shower head body is respectively provided with a scattering area and a direct shooting area, and the scattering area is close to the direct shooting area. Water inlet cavities, scattering water cavities and direct shooting water cavities are respectively formed in the shower head body. The first plugging assembly is arranged at the position where the water inlet cavity and the scattering water cavity are communicated, and the second plugging assembly is arranged at the position where the water inlet cavity and the direct shooting water cavity are communicated. The adjusting plate is horizontally movably connected to the shower head body, and is used for controlling the first plugging assembly and the second plugging assembly to move up and down. The push block is connected with the adjusting plate and is used for being forced by a user. A strip-shaped hole is formed in the shower head body and is used for allowing the push block to move. The application has the effect of conveniently switching the water outlet modes of the shower head.
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Description

Technical Field

[0001] This application relates to the field of shower head technology, and in particular to a water spray switching control device and a shower head. Background Technology

[0002] Showerheads are an indispensable core fixture in modern bathrooms, primarily used to control the shape and intensity of water flow, providing a convenient and comfortable showering experience. Their core function revolves around the water outlet pattern. There are direct-spray (high-pressure) designs suitable for quickly rinsing off shampoo foam and cleaning stubborn stains, with a concentrated and powerful water flow, especially suitable for homes with low water pressure. There are also diffused (soft-pressure) models using multi-hole diversion or air injection technology, with a fine and gentle water flow and wide coverage, more suitable for daily full-body showers, especially catering to the needs of the elderly, children, and people with sensitive skin.

[0003] From the perspective of core water flow principles and functional attributes, the two most basic and typical types of showerheads are direct-spray (high-pressure) and diffused-spray (soft-pressure). Direct-spray showerheads work by reducing the diameter of the water outlet holes and increasing water pressure, allowing the water to spray out in a "concentrated and powerful" form. Their core characteristics are strong impact and focused water flow. The water stream is columnar or a thin beam, with a relatively fixed direction, making it less prone to diffusion, and each beam of water has sufficient impact force.

[0004] The diffused spray method uses an increased number of water outlets, enlarged orifice diameters, or a multi-hole diversion structure to allow water to be sprayed out in a "dispersed and gentle" form. Its core features are wide coverage and a gentle touch. The water is dispersed into fine water threads or mist, covering a large area (such as the shoulders, back, and torso), and has a soft touch that will not irritate the skin.

[0005] In existing technologies, the water flow function switching mechanism of shower heads mainly adopts a button-press type, where the water flow mode is switched by pressing a button. Although this method is simple in structure, it has the disadvantage of being prone to wear and tear, and therefore needs to be improved. Utility Model Content

[0006] To facilitate switching of the showerhead's water flow mode and extend the showerhead's service life, this application provides a water spray switching control device.

[0007] Firstly, the water spray switching control device provided in this application adopts the following technical solution: A water spray switching control device includes a shower head body, an adjustment plate, a push block, a first sealing component, and a second sealing component. The shower head body is respectively provided with a scattering area and a direct spray area, and the scattering area is close to the direct spray area. The shower head body has an inlet chamber, a diffused water chamber and a direct water chamber respectively. The first sealing component is located at the connection between the inlet chamber and the diffused water chamber, and the second sealing component is located at the connection between the inlet chamber and the direct water chamber. The adjusting plate is horizontally movably connected to the shower head body. The adjusting plate is used to control the up and down movement of the first sealing component and the second sealing component. The push block is connected to the adjusting plate and is used for the user to apply force. The shower head body has a strip hole for the push block to move.

[0008] By adopting the above technical solution, the pusher is used for the user to apply pushing force, thereby controlling the horizontal linear movement of the adjustment plate. The movement of the adjustment plate can control the up and down movement of the first sealing component and the second sealing component.

[0009] When the regulating plate controls the first sealing component to rise, the second sealing component descends. At this time, the channel switches, the water inlet chamber and the water scattering chamber are connected, and the water in the water pipe flows through the water inlet chamber to the water scattering chamber, and finally sprays out from the scattering area. When the regulating plate lowers the first sealing component, the second sealing component also lowers. At this point, the channel switches, connecting the inlet chamber and the direct-jet chamber. Water from the pipe flows through the inlet chamber to the direct-jet chamber and finally sprays out from the direct-jet area. The entire switching structure is simple, has low manufacturing costs, is easy for users to operate, and allows for fast switching.

[0010] Preferably, one end of the adjusting plate is provided with a first upper plate, a first inclined plate and a first lower plate, the first upper plate and the first lower plate are parallel to each other, and the first inclined plate is used to connect the first upper plate and the first lower plate; The first sealing component includes a first lifting block, a first protrusion and a first sealing ring. The first lifting block is movably disposed vertically. The first protrusion is disposed at one end of the first lifting block. The first upper plate, the first inclined plate and the first lower plate are provided with a first through hole for the first protrusion to pass through. The first lifting block is provided with a first limiting groove, and the first sealing ring is sleeved in the first limiting groove. The first sealing ring is used to seal the connection between the water inlet chamber and the water scattering chamber. When the first protrusion moves from the first lower plate to the first upper plate, the first lifting block rises vertically, and the first sealing ring releases the blockage of the water scattering chamber.

[0011] By adopting the above technical solution, in the initial state, the first protrusion is located on the first lower plate, and the first sealing ring is blocked at the connection between the water inlet chamber and the scattering water chamber.

[0012] During switching, the control adjustment plate moves horizontally to the right, and the first protrusion is pushed by the first inclined plate. The first protrusion transitions from the first lower plate to the first upper plate, causing the entire first lifting block to be lifted up. The first sealing ring rises synchronously, thereby releasing the sealing effect of the first sealing ring and realizing the connection between the water inlet chamber and the scattering water chamber.

[0013] Preferably, the other end of the adjusting plate is provided with a second upper plate, a second inclined plate and a second lower plate, the second upper plate and the second lower plate are parallel to each other, and the second inclined plate is used to connect the second upper plate and the second lower plate; The second sealing assembly includes a second lifting block, a second protrusion, and a second sealing ring. The second lifting block is movably mounted up and down. The second protrusion is located at one end of the second lifting block. The second upper plate, the second inclined plate, and the second lower plate are provided with a second through hole for the second protrusion to pass through. The second lifting block is provided with a second limiting groove, and the second sealing ring is sleeved in the second limiting groove. The second sealing ring is used to seal the connection between the water inlet chamber and the direct water injection chamber. When the second protrusion moves from the second lower plate to the second upper plate, the second lifting block rises vertically, and the second sealing ring releases the blockage of the direct water injection chamber.

[0014] By adopting the above technical solution, in the initial state, the first protrusion is located on the first lower plate, and the first sealing ring is blocked at the connection between the water inlet chamber and the scattering water chamber. At this time, the second protrusion is located on the second upper plate, and the second sealing ring is not blocked at the connection between the water inlet chamber and the direct water chamber.

[0015] During switching, the control adjustment plate moves horizontally to the right, and the first protrusion is pushed by the first inclined plate. The first protrusion transitions from the first lower plate to the first upper plate, causing the entire first lifting block to be lifted up. The first sealing ring rises synchronously, thereby releasing the sealing effect of the first sealing ring and realizing the connection between the water inlet chamber and the scattering water chamber.

[0016] As the adjusting plate moves horizontally to the right, the second protruding post is subjected to the force of the second inclined plate. The second protruding post will gradually transition from the second upper plate to the second lower plate, causing the entire second lifting block to be pressed down. The second sealing ring descends synchronously, thereby achieving the sealing effect of the second sealing ring. At this time, the water inlet chamber and the direct water injection chamber are not connected.

[0017] Preferably, the end of the first lifting block away from the first protrusion is connected to a first locking block, and a first locking groove is provided in the shower body, with the first locking block engaging in the first locking groove; the end of the second lifting block away from the second protrusion is connected to a second locking block, and a second locking groove is provided in the shower body, with the second locking block engaging in the second locking groove.

[0018] By adopting the above technical solution, when the first lifting block moves downward, the first locking block will engage in the first locking groove, improving the connection stability between the first lifting block and the shower head body. Similarly, when the second lifting block moves downward, the second locking block will engage in the second locking groove, improving the connection stability between the second lifting block and the shower head body. Preferably, the shower head body is further provided with a first left cylinder and a first right cylinder, the first left cylinder and the first right cylinder are arranged opposite to each other and form a first limiting cavity, the first lifting block is located in the first limiting cavity, and an O-ring is sleeved on the first lifting block. The O-ring is close to the first protrusion to prevent water from overflowing from the water inlet cavity.

[0019] By adopting the above technical solution, the first limiting cavity formed by the first left cylinder and the first right cylinder can limit the movement of the first lifting block, ensuring that the first lifting block does not easily deviate in the left or right direction during its up and down movement. The presence of the O-ring can play a waterproof sealing role, preventing water in the water inlet cavity from overflowing from the first through hole.

[0020] Preferably, the outer surface of the pusher block is provided with several raised textures.

[0021] By adopting the above technical solution, the raised texture can increase the roughness of the contact between the user's finger and the surface of the push block, so as to better apply the pushing force to the push block to control the movement of the adjustment plate.

[0022] Preferably, a threaded sleeve is connected to the shower head body. The threaded sleeve is used for screwing the water supply pipe. The threaded sleeve is hollow and communicates with the water inlet chamber.

[0023] By adopting the above technical solution, the water inlet pipe can be threaded onto the threaded sleeve, allowing water to flow into the water inlet chamber.

[0024] Secondly, this application also provides a shower head, including a spray switching control device with all the above-described structures.

[0025] In summary, this application includes at least one of the following beneficial technical effects: (1) By setting up an adjusting plate, a push block, a first sealing component, and a second sealing component, the user applies a pushing force to the push block to control the adjusting plate to move horizontally in a straight line. The movement of the adjusting plate can control the up and down movement of the first and second sealing components. When the adjusting plate controls the first sealing component to rise, the second sealing component descends, the water inlet chamber and the water scattering chamber are connected, and the water in the water pipe flows through the water inlet chamber to the water scattering chamber, and finally sprays out from the scattering area. The whole adjustment process is convenient and quick, realizing the rapid switching of the water spraying mode.

[0026] (2) By setting the first card block, the first card block can be locked in the first card slot, which improves the stability of the connection between the first lifting block and the shower body.

[0027] (3) By setting the first left cylinder and the first right cylinder, the first limiting cavity formed by the first left cylinder and the first right cylinder can limit the first lifting block, ensuring that the first lifting block moves up and down without easily deviating in the left and right directions. Attached Figure Description

[0028] Figure 1 This is a schematic diagram of the switching control device in the embodiments of this application; Figure 2 This is a schematic diagram of the switching control device from another perspective in an embodiment of this application; Figure 3 This is a partial structural schematic diagram of the switching control device in the embodiments of this application; Figure 4 This is a cross-sectional schematic diagram of the switching control device (the second protrusion is pushed up) in an embodiment of this application; Figure 5 This is a cross-sectional schematic diagram of the switching control device (the first protrusion is lifted) in an embodiment of this application.

[0029] Reference numerals: 1. Shower head body; 2. Adjustment plate; 3. Push block; 4. First sealing assembly; 41. First lifting block; 42. First protruding post; 43. First sealing ring; 5. Second sealing assembly; 51. Second lifting block; 52. Second protruding post; 53. Second sealing ring; 6. Scattering area; 7. Direct spray area; 8. Water inlet chamber; 9. Scattering water chamber; 10. Direct spray water chamber; 11. Threaded sleeve; 12. Strip hole; 13. First upper plate; 14. First inclined plate; 15. First lower plate; 16. First through hole; 17. Second upper plate; 18. Second inclined plate; 19. Second lower plate; 20. Second through hole; 21. First locking block; 22. Second locking block; 23. First left cylinder; 24. First right cylinder; 25. O-ring; 26. Second left cylinder; 27. Second right cylinder. Detailed Implementation

[0030] The technical solutions of this application will now be described with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. This application can be embodied in many different forms and is not limited to the embodiments described herein.

[0031] In the representation of this application, the reference to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., means that a specific feature, structure, material, or characteristic represented in connection with that embodiment or example is included in at least one embodiment or example of this application. Moreover, the specific features, structures, materials, or characteristics represented may be combined in any suitable manner in one or more embodiments or examples.

[0032] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains; the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the application; the terms “comprising” and “having”, and any variations thereof, in the specification, claims, and foregoing description of the drawings are intended to cover non-exclusive inclusion.

[0033] In the description of the embodiments of this application, unless otherwise expressly specified and limited, the technical terms "installation," "connection," "joining," "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection; a detachable connection; an integral part; or a mechanical connection. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this application according to the specific circumstances.

[0034] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Without conflict, those skilled in the art can combine and integrate the different embodiments or examples shown in this application, as well as the features of those embodiments or examples.

[0035] This application discloses a water spray switching control device. (Refer to...) Figures 1 to 4 The switching control device includes a shower body 1, an adjusting plate 2, a push block 3, a first sealing assembly 4, and a second sealing assembly 5. The shower body 1 is provided with a diffused area 6 and a direct-spray area 7, with the diffused area 6 close to the direct-spray area 7. The diffused area 6 is used for diffused water output, and the direct-spray area 7 is used for direct water output. The shower body 1 has an inlet chamber 8, a diffused water chamber 9, and a direct-spray water chamber 10 inside. A threaded sleeve 11 is fixedly installed at the end of the shower body 1 away from the direct-spray area 7. The threaded sleeve 11 is hollow and has external threads on its outer surface for screwing in the inlet pipe. Water from the inlet pipe flows into the inlet chamber 8 through the threaded sleeve 11.

[0036] The first sealing component 4 is installed at the connection between the water inlet chamber 8 and the diffused water chamber 9, and the second sealing component 5 is installed at the connection between the water inlet chamber 8 and the direct water chamber 10. Both the first sealing component 4 and the second sealing component 5 can move up and down, and their rotation axes are parallel to each other. The adjusting plate 2 is horizontally movably connected to the shower body 1, and the adjusting plate 2 is used to control the up and down movement of the first sealing component 4 and the second sealing component 5. The push block 3 is fixedly connected to the adjusting plate 2 and is used for the user to apply force. The shower body 1 has a strip hole 12 for the push block 3 to move, and the strip hole 12 is used to limit the range of movement of the push block 3. In this embodiment, the outer surface of the push block 3 is provided with several raised textures, which are used to increase the roughness of the surface of the push block 3 so that the user can better apply horizontal pushing force to the push block 3 to control the movement of the adjusting plate 2.

[0037] When the regulating plate 2 controls the first blocking component 4 to rise, the second blocking component 5 descends. At this time, the channel switches, and the inlet chamber 8 and the scattering water chamber 9 are connected. The water flow in the water pipe flows through the inlet chamber 8 to the scattering water chamber 9, and finally sprays out from the scattering area 6. When the regulating plate 2 controls the first blocking component 4 to descend, the second blocking component 5 descends. At this time, the channel switches, and the inlet chamber 8 and the direct water chamber 10 are connected. The water flow in the water pipe flows through the inlet chamber 8 to the direct water chamber 10, and finally sprays out from the direct water chamber 7. The entire switching structure is simple, has low manufacturing cost, is easy for users to operate, and has a fast switching speed.

[0038] Specifically, one end of the adjusting plate 2 is integrally connected to a first upper plate 13, a first inclined plate 14, and a first lower plate 15. The first upper plate 13 and the first lower plate 15 are parallel to each other, and the first inclined plate 14 is used to connect the first upper plate 13 and the first lower plate 15. The first sealing assembly 4 includes a first lifting block 41, a first protrusion 42, and a first sealing ring 43. The first lifting block 41 is movably disposed in the shower body 1. The first protrusion 42 is fixedly connected to the upper end of the first lifting block 41. The first upper plate 13, the first inclined plate 14, and the first lower plate 15 are provided with a first through hole 16 for the first protrusion 42 to pass through. When the adjusting plate 2 moves horizontally, the first protrusion 42 is always located in the first through hole 16.

[0039] The first lifting block 41 has a first limiting groove, and the first sealing ring 43 is fitted into the first limiting groove. The first sealing ring 43 is used to seal the connection between the water inlet chamber 8 and the water scattering chamber 9. When the first protrusion 42 moves from the first lower plate 15 to the first upper plate 13, the first lifting block 41 rises vertically, and at this time the first sealing ring 43 releases the seal on the water scattering chamber 9.

[0040] The other end of the adjusting plate 2 is integrally connected to a second upper plate 17, a second inclined plate 18, and a second lower plate 19. The second upper plate 17 and the second lower plate 19 are parallel to each other. The second inclined plate 18 is used to connect the second upper plate 17 and the second lower plate 19. The second upper plate 17 is on the same horizontal plane as the first upper plate 13, and the second lower plate 19 is on the same horizontal plane as the first lower plate 15. The second inclined plate 18 and the first inclined plate 14 have the same inclination angle.

[0041] The second sealing assembly 5 includes a second lifting block 51, a second protrusion 52, and a second sealing ring 53. The second lifting block 51 is movably disposed within the shower head body 1. The second protrusion 52 is fixedly connected to the upper end of the second lifting block 51. The second upper plate 17, the second inclined plate 18, and the second lower plate 19 are provided with second through holes 20 for the second protrusion 52 to pass through. When the adjusting plate 2 moves horizontally, the second protrusion 52 is always located within the second through hole 20.

[0042] The second lifting block 51 has a second limiting groove, and the second sealing ring 53 is fitted into the second limiting groove. The second sealing ring 53 is used to seal the connection between the water inlet chamber 8 and the direct water injection chamber 10. When the second protrusion 52 moves from the second lower plate 19 to the second upper plate 17, the second lifting block 51 rises vertically, and the second sealing ring 53 releases the seal on the direct water injection chamber 10.

[0043] Combination Figure 5 In the initial state, the first protrusion 42 is located on the first lower plate 15, and the first sealing ring 43 is blocked at the connection between the water inlet chamber 8 and the scattering water chamber 9. At this time, the second protrusion 52 is located on the second upper plate 17, and the second sealing ring 53 is not blocked at the connection between the water inlet chamber 8 and the direct water chamber 10, that is, the water inlet chamber 8 and the direct water chamber 10 are connected.

[0044] During switching, the control adjustment plate 2 moves horizontally to the right, and the first protruding post 42 is pushed by the first inclined plate 14. The first protruding post 42 transitions from the first lower plate 15 to the first upper plate 13, causing the entire first lifting block 41 to be lifted up. The first sealing ring 43 rises synchronously, thereby releasing the sealing effect of the first sealing ring 43 and realizing the connection between the water inlet chamber 8 and the scattering water chamber 9.

[0045] As the adjusting plate 2 moves horizontally to the right, the second protruding post 52 will be subjected to the force of the second inclined plate 18. The second protruding post 52 will gradually transition from the second upper plate 17 to the second lower plate 19, causing the entire second lifting block 51 to be pressed down. The second sealing ring 53 will descend synchronously, thereby achieving the sealing function of the second sealing ring 53. At this time, the water inlet chamber 8 and the direct water injection chamber 10 are not connected.

[0046] The first lifting block 41 has a first locking block 21 fixedly connected to the end away from the first protrusion 42. A first locking groove is provided inside the shower body 1, and the first locking block 21 is engaged in the first locking groove. The second lifting block 51 has a second locking block 22 fixedly connected to the end away from the second protrusion 52. A second locking groove is provided inside the shower body 1, and the second locking block 22 is engaged in the second locking groove.

[0047] When the first lifting block 41 moves downward, the first locking block 21 engages in the first locking groove, improving the connection stability between the first lifting block 41 and the shower head body 1. Similarly, when the second lifting block 51 moves downward, the second locking block 22 engages in the second locking groove, improving the connection stability between the second lifting block 51 and the shower head body 1. In addition, a first left cylinder 23 and a first right cylinder 24 are fixedly installed inside the shower body 1. The first left cylinder 23 and the first right cylinder 24 are horizontally opposite each other and form a first limiting cavity. The first lifting block 41 is located in the first limiting cavity. The first limiting cavity can limit the first lifting block 41, ensuring that the first lifting block 41 can move up and down without easily deviating in the left and right directions. An O-ring 25 is also fitted on the first lifting block 41. The O-ring 25 is close to the first protrusion 42 and is located between the first left cylinder 23 and the first right cylinder 24. The O-ring 25 is used to prevent water from overflowing from the water inlet cavity 8 into the first through hole 16, thus playing a sealing role.

[0048] Similarly, a second left cylinder 26 and a second right cylinder 27 are respectively installed on both sides of the second lifting block 51. The second left cylinder 26 and the second right cylinder 27 are arranged opposite each other and form a second limiting cavity, within which the second lifting block 51 is located. The second limiting cavity can limit the movement of the second lifting block 51, ensuring that the second lifting block 51 does not easily deviate in the left or right direction during its up and down movement. An O-ring 25 is also fitted onto the second lifting block 51 to prevent water from overflowing from the water inlet cavity 8 into the second through hole 20.

[0049] The implementation principle of a water spray switching control device in this application embodiment is as follows: In the initial state, the first protrusion 42 is located on the first lower plate 15, and the first sealing ring 43 is blocked at the connection between the water inlet chamber 8 and the scattering water chamber 9. At this time, the second protrusion 52 is located on the second upper plate 17, and the second sealing ring 53 is not blocked at the connection between the water inlet chamber 8 and the direct spray water chamber 10.

[0050] During switching, the control adjustment plate 2 moves horizontally to the right, and the first protruding post 42 is pushed by the first inclined plate 14. The first protruding post 42 transitions from the first lower plate 15 to the first upper plate 13, causing the entire first lifting block 41 to be lifted up. The first sealing ring 43 rises synchronously, thereby releasing the sealing effect of the first sealing ring 43 and realizing the connection between the water inlet chamber 8 and the scattering water chamber 9.

[0051] As the adjusting plate 2 moves horizontally to the right, the second protruding post 52 is subjected to the force of the second inclined plate 18. The second protruding post 52 will gradually transition from the second upper plate 17 to the second lower plate 19, causing the entire second lifting block 51 to be pressed down. The second sealing ring 53 descends synchronously, thereby achieving the sealing function of the second sealing ring 53. At this time, the water inlet chamber 8 and the direct water injection chamber 10 are not connected.

[0052] Based on the above embodiments, this application also provides a shower head, which includes a water spray switching control device with all the above structures. Since the water spray switching control device has been discussed in detail above, it will not be repeated here.

[0053] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A water spray switching control device, characterized in that, It includes a shower head body (1), an adjustment plate (2), a push block (3), a first sealing component (4) and a second sealing component (5). The shower head body (1) is provided with a scattering area (6) and a direct spray area (7), and the scattering area (6) is close to the direct spray area (7). The shower head body (1) is provided with a water inlet chamber (8), a diffused water chamber (9) and a direct water chamber (10) respectively. The first sealing component (4) is located at the connection between the water inlet chamber (8) and the diffused water chamber (9), and the second sealing component (5) is located at the connection between the water inlet chamber (8) and the direct water chamber (10). The adjusting plate (2) is horizontally movable and connected to the shower body (1). The adjusting plate (2) is used to control the first sealing component (4) and the second sealing component (5) to move up and down. The push block (3) is connected to the adjusting plate (2) and is used for the user to apply force. The shower body (1) has a strip hole (12) for the push block (3) to move.

2. The water spray switching control device according to claim 1, characterized in that, One end of the adjusting plate (2) is provided with a first upper plate (13), a first inclined plate (14) and a first lower plate (15). The first upper plate (13) and the first lower plate (15) are parallel to each other, and the first inclined plate (14) is used to connect the first upper plate (13) and the first lower plate (15). The first sealing component (4) includes a first lifting block (41), a first protrusion (42) and a first sealing ring (43). The first lifting block (41) is movable up and down. The first protrusion (42) is located at one end of the first lifting block (41). The first upper plate (13), the first inclined plate (14) and the first lower plate (15) are provided with a first through hole (16) through which the first protrusion (42) passes. The first lifting block (41) is provided with a first limiting groove, and the first sealing ring (43) is sleeved in the first limiting groove. The first sealing ring (43) is used to seal the connection between the water inlet chamber (8) and the scattering water chamber (9). When the first protrusion (42) moves from the first lower plate (15) to the first upper plate (13), the first lifting block (41) rises vertically, and the first sealing ring (43) releases the blockage of the scattering water chamber (9).

3. The water spray switching control device according to claim 2, characterized in that, The other end of the adjusting plate (2) is provided with a second upper plate (17), a second inclined plate (18) and a second lower plate (19). The second upper plate (17) and the second lower plate (19) are parallel to each other. The second inclined plate (18) is used to connect the second upper plate (17) and the second lower plate (19). The second sealing component (5) includes a second lifting block (51), a second protrusion (52), and a second sealing ring (53). The second lifting block (51) is movable up and down. The second protrusion (52) is located at one end of the second lifting block (51). The second upper plate (17), the second inclined plate (18), and the second lower plate (19) are provided with a second through hole (20) through which the second protrusion (52) passes. The second lifting block (51) is provided with a second limiting groove, and the second sealing ring (53) is sleeved in the second limiting groove. The second sealing ring (53) is used to seal the connection between the water inlet chamber (8) and the direct water chamber (10). When the second protrusion (52) moves from the second lower plate (19) to the second upper plate (17), the second lifting block (51) rises vertically, and the second sealing ring (53) releases the blockage of the direct water chamber (10).

4. The water spray switching control device according to claim 3, characterized in that, The first lifting block (41) is connected to a first locking block (21) at one end away from the first protrusion (42). The shower body (1) has a first locking groove, and the first locking block (21) is locked in the first locking groove. The second lifting block (51) is connected to a second locking block (22) at one end away from the second protrusion (52). The shower body (1) has a second locking groove, and the second locking block (22) is locked in the second locking groove.

5. The water spray switching control device according to claim 2, characterized in that, The shower body (1) is also provided with a first left cylinder (23) and a first right cylinder (24). The first left cylinder (23) and the first right cylinder (24) are arranged opposite to each other and form a first limiting cavity. The first lifting block (41) is located in the first limiting cavity. An O-ring (25) is sleeved on the first lifting block (41). The O-ring (25) is close to the first protrusion (42) to prevent water from overflowing from the water inlet cavity (8).

6. The water spray switching control device according to claim 1, characterized in that, The outer surface of the pusher (3) is provided with several raised textures.

7. The water spray switching control device according to claim 1, characterized in that, A threaded sleeve (11) is connected to the shower body (1). The threaded sleeve (11) is used for screwing the water supply pipe. The threaded sleeve (11) is hollow and communicates with the water inlet chamber (8).

8. A shower head, characterized in that, Includes the water spray switching control device as described in any one of claims 1 to 7.