Adjusting structure and water outlet device

By integrating drive components and intelligent adjustment structure, the problem of inconvenient adjustment in traditional showers is solved, enabling three-dimensional all-round adjustment of the water outlet components, improving user experience and supporting remote control.

CN224119651UActive Publication Date: 2026-04-14JOMOO KITCHEN & BATHROOM
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Traditional showers require users to use both hands to adjust the angle, height, and position of the water outlet components, and are difficult to control effectively when it is inconvenient to use both hands, especially for people of shorter stature such as children.

Method used

It adopts integrated drive components, including linear drive unit, pitch drive unit and swing drive unit, and realizes all-round adjustment of the height, pitch angle and rotation angle of the water outlet component through intelligent adjustment. Combined with limit device and control unit, it realizes remote intelligent control.

Benefits of technology

It enables the water outlet components to be adjusted in all directions in three-dimensional space, meeting the shower needs of different users, improving the shower experience, and has the advantages of energy saving, high efficiency, low noise, and supports remote personalized control.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an adjusting structure and a water outlet device, and the adjusting structure is used for adjusting the angle and the height of a water outlet component and comprises a supporting piece, a water outlet component and a water outlet component, the sliding piece is in sliding connection with the guide rail and suitable for moving in the extending direction relative to the supporting piece; the connecting piece is rotationally connected with the sliding piece and is suitable for performing pitching motion relative to the sliding piece; and the driving piece is integrated in the sliding piece and the connecting piece and comprises a linear driving unit used for driving the sliding piece to move, a pitching driving unit used for driving the connecting piece to do pitching motion and a swing driving unit used for driving the water outlet component to rotate relative to the connecting piece. According to the adjusting structure and the water outlet device, all-directional adjustment of the height, the pitching angle and the rotating angle of the water outlet component is achieved through intelligent adjustment of the adjusting structure, so that the shower requirements of different users are met, and the shower experience is improved.
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Description

Technical Field

[0001] This utility model relates to the field of sanitary equipment, specifically to an adjustment structure and a water outlet device. Background Technology

[0002] Traditional showerheads typically require users to use both hands to adjust the angle, height, and position of the water spray components, and the adjustment process is laborious. This is especially true when washing hair or back, where using both hands is inconvenient, making it difficult for users to effectively control the showerhead. Furthermore, adjusting the showerhead is particularly inconvenient for shorter individuals such as children. Utility Model Content

[0003] The purpose of this utility model is to overcome the above-mentioned defects or problems in the background technology and provide an adjustment structure and water outlet device. The adjustment structure realizes all-round adjustment of the height, pitch angle and rotation angle of the water outlet component through intelligent adjustment, so as to meet the shower needs of different users and improve the shower experience.

[0004] To achieve the above objectives, the various embodiments of this utility model adopt the following technical solutions, but are not limited to the following solutions:

[0005] The first technical solution relates to an adjustment structure for adjusting the angle and height of a water outlet component, comprising: a support member having a guide rail in a vertical direction; a sliding member slidably connected to the guide rail and adapted to move relative to the support member along its extension direction; a connecting member rotatably connected to the sliding member and adapted to perform pitch motion relative to the sliding member; and a driving member integrated within the sliding member and the connecting member, including a linear driving unit for driving the sliding member to move, a pitch driving unit for driving the connecting member to pitch motion, and a swing driving unit for driving the water outlet component to rotate relative to the connecting member.

[0006] The second technical solution is based on the first technical solution, wherein the guide rail is provided with a moving rack extending along its extension direction, the sliding member is sleeved outside the support member, and the linear drive unit includes a first drive member and a first gear connected to the first drive member. The first gear meshes with the moving rack to drive the sliding member to move.

[0007] The third technical solution is based on the second technical solution, wherein the linear drive unit further includes a limiting device for limiting the movement position of the slider, and the limiting device is at least one of a mechanical limiting structure, a position sensor or a magnetic induction device; the first drive component is a DC motor.

[0008] The fourth technical solution is based on the first technical solution. In this solution, one end of the connector is provided with a connecting part suitable for installing the water outlet component. The connector includes a rotating disk that is rotatably connected to the sliding member. The rotating disk rotates around a horizontal axis and is fixedly connected to the connector. The rotating disk is provided with an annular toothed portion at least partially along the circumferential direction. The pitch drive unit includes a second drive member fixedly connected to the sliding member and a second gear connected to the second drive member. The second gear meshes with the annular toothed portion to drive the rotating disk to rotate around the horizontal axis.

[0009] The fifth technical solution is based on the fourth technical solution, wherein the pitch drive unit further includes a limiting member for limiting the rotation angle range of the annular tooth, the limiting member being a protruding stop block disposed on the sliding member; the second drive member is a stepper motor.

[0010] The sixth technical solution is based on the first technical solution, wherein the swing drive unit includes a roller disposed in the connector and in rolling contact with the water outlet component, a third drive member and a third gear connected to the third drive member, the third gear being driven to the roller to drive the roller to rotate around its axis.

[0011] The seventh technical solution is based on the sixth technical solution, wherein the third gear is a star-shaped centering transmission structure; and the third driving component is a stepper motor.

[0012] The eighth technical solution is based on any one of the first to seventh technical solutions, and further includes a control unit and a power module fixed inside the sliding member; the control unit is electrically connected to each driving member, and the control unit integrates a Bluetooth module to receive control commands or voice commands from the control panel or mobile terminal.

[0013] The ninth technical solution is based on the eighth technical solution, wherein the power supply module adopts a wall-mounted adapter or a hydroelectric power generation module as the power supply method.

[0014] The tenth technical solution is based on any one of the first to ninth technical solutions, wherein a water outlet device includes a water outlet component and the aforementioned adjustment structure; a support member is fixed to a wall; the water outlet component is provided with a transmission part, the transmission part is installed on the connection part of the connector, and a roller rolls in contact with the transmission part to drive the water outlet component to rotate.

[0015] As can be seen from the above description of the various embodiments of the present utility model, compared with the prior art, the various embodiments of the present utility model have the following beneficial effects:

[0016] In the first technical solution and related embodiments, the adjustment structure, through integrated drive components, achieves omnidirectional adjustment of the water outlet component in three-dimensional space, including height adjustment, pitch angle adjustment, and rotation angle adjustment. Specifically, the height of the water outlet component is adjusted by the linear drive unit in cooperation with the motion rack on the support component, meeting the needs of different heights and usage scenarios. The pitch drive unit cooperates with the annular teeth of the connector, enabling the connector and the water outlet component mounted thereon to perform pitch movement around the horizontal axis, adjusting the angle between the water spray direction and the body, enhancing the shower experience. The oscillation drive unit, through rollers, rolls into contact with the water outlet component, pushing the water outlet component to rotate clockwise or counterclockwise, achieving rotational water spray from left to right or right to left, increasing the coverage area and comfort during showering.

[0017] In the second technical solution and related embodiments, the first driving member drives the first gear to rotate, which meshes with the moving rack on the support member, thereby controlling the moving speed and position of the sliding member in the vertical direction.

[0018] In the third technical solution and related embodiments, the limiting device, whether through a mechanical limiting structure of physical contact or through a non-contact position sensor or magnetic induction device, can effectively prevent the sliding part from exceeding the preset range during movement. The DC motor can adjust its output torque and speed according to the actual load, offering advantages such as energy saving, high efficiency, and low noise.

[0019] In the fourth technical solution and related embodiments, the pitch drive unit controls the rotation angle and speed of the rotating disk around the horizontal axis by integrating a second drive member fixed to the slider, a second gear connected to the second drive member, and an annular tooth portion at least partially provided along the circumference on the rotating disk.

[0020] In the fifth technical solution and related embodiments, the stepper motor, as the second driving component, has the ability to precisely control the rotation angle. Combined with limiting components, such as raised stops, it ensures that the annular toothed section and the connected rotating disk move within a preset rotation angle range.

[0021] In the sixth technical solution and related embodiments, power is provided by a third driving component, and the roller is rotated around its axis by a transmission connection between the third gear and the roller.

[0022] In the seventh technical solution and related embodiments, the stepper motor, by controlling the multi-gear transmission structure, can convert the rotational motion of the third driving component into the clockwise or counterclockwise rotation of the roller, thereby driving the water outlet component to rotate clockwise or counterclockwise, and realizing the water outlet component to rotate and spray water from left to right or from right to left.

[0023] In the eighth technical solution and related embodiments, by integrating a Bluetooth module, the control unit can receive control commands or voice commands from the control panel or mobile terminal, realize remote intelligent control of the adjustment structure, and enjoy a personalized shower experience.

[0024] In the ninth technical solution and related embodiments, the wall-mounted adapter, as a common power interface, is easy to install and connect. The hydroelectric power generation module utilizes the power of water flow to convert it into electrical energy; its installation is relatively simple, requiring only connection to the water pipe. If there is no power supply in the shower area, a hydroelectric power generation module can be used.

[0025] In the tenth technical solution and related embodiments, the shower head integrates the automatic adjustment structure to achieve all-round intelligent adjustment of the position and angle of the water outlet component. Attached Figure Description

[0026] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0027] Figure 1 This is a schematic diagram of the structure breakdown for an embodiment;

[0028] Figure 2 This is a schematic diagram of the support structure for an embodiment;

[0029] Figure 3 This is a schematic diagram of the linear drive unit structure in an embodiment;

[0030] Figure 4 This is a schematic diagram of the linear motion of the slider in an embodiment;

[0031] Figure 5 This is an exploded view of the pitch drive unit and connector in an embodiment;

[0032] Figure 6 This is a schematic diagram of the pitch motion of the connector in an embodiment.

[0033] Figure 7 This is a schematic diagram of the swing drive unit structure in an embodiment;

[0034] Figure 8 This is a schematic diagram of the rotation of the water outlet component in an embodiment;

[0035] Figure 9 This is a schematic diagram of the water outlet device in an embodiment.

[0036] Explanation of key figure labels:

[0037] Support component 1; Sliding component 2; Connecting component 3; Water outlet component 4; Top nozzle 5; Linear drive unit 6; Pitch drive unit 7; Oscillation drive unit 8; Control unit 9; Power module 10; Guide rail 11; Housing 12; Moving rack 13; Upper wall mount 14; Lower wall mount 15; Track groove 16; Protective sleeve 21; Rear cover 22; Bottom decorative plate 23; Bolt 24; Slide groove 25; Rotating disk 31; Annular toothed part 32; Connecting part 33; Transmission part 41; First drive component 61; First gear 62; Second drive component 71; Second gear 72; Third drive component 81; Third gear 82; Roller 83. Detailed Implementation

[0038] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are preferred embodiments of the present utility model and should not be considered as excluding other embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.

[0039] Unless otherwise expressly defined, the use of terms such as "first," "second," or "third" in the claims, description, and drawings of this utility model is for distinguishing different objects and not for describing a specific order.

[0040] Unless otherwise expressly defined, in the claims, description, and accompanying drawings of this utility model, the use of directional terms such as "center," "lateral," "longitudinal," "horizontal," "vertical," "top," "bottom," "inner," "outer," "upper," "lower," "front," "rear," "left," "right," "clockwise," and "counterclockwise" to indicate orientation or positional relationships is based on the orientation and positional relationships shown in the accompanying drawings and is only for the convenience of describing this utility model and simplifying the description. It does not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as limiting the specific protection scope of this utility model.

[0041] Unless otherwise expressly defined, the terms "fixed connection" or "fixed connection" used in the claims, description and drawings of this utility model shall be interpreted broadly to refer to any connection in which there is no displacement or relative rotation relationship between the two parties, including non-removable fixed connection, detachable fixed connection, integral connection and fixed connection through other devices or components.

[0042] In the claims, description and accompanying drawings of this utility model, the terms "comprising", "having", and variations thereof are used to mean "including but not limited to".

[0043] See Figures 1 to 9 ,like Figure 1 and Figure 2 As shown, an adjustment structure for adjusting the angle and height of the water outlet component 4 includes a support 1, a sliding member 2, a connecting member 3, a driving member, a control unit 9, and a power module 10.

[0044] Support component 1, such as Figure 1 As shown, it includes two parts: a housing 12 and a guide rail 11. In this embodiment, these two parts are designed to be detachable and installable to facilitate maintenance or replacement.

[0045] The housing 12 is shaped and structured to accommodate and protect the internal guide rails 11. The housing 12 has internal rail grooves 16 for mounting the guide rails 11. These rail grooves 16 can be configured in various directions, including but not limited to vertical and horizontal, to accommodate different application requirements. In this embodiment, the rail grooves 16 are configured vertically to fix the guide rails 11 and ensure their stability in the vertical direction.

[0046] The guide rail 11 has a built-in rack 13 extending along its extension direction. Furthermore, as... Figure 2 As shown, the upper and lower ends of the support member 1 are respectively provided with an upper wall seat 14 and a lower wall seat 15. These two wall seats are used to firmly fix the support member 1 to the wall. The upper wall seat 14 and the lower wall seat 15 can be connected to the wall by bolts 24, expansion plugs or other suitable fasteners to ensure the stable support of the support member 1 in the vertical direction and provide a solid foundation for the adjustment structure.

[0047] It is worth noting that although the housing 12 and the guide rail 11 are designed to be disassembled and installed separately in this embodiment, they can also be integrated in other embodiments, depending on the product design and manufacturing requirements. Furthermore, the shape, size, and position of the track groove 16, as well as the assembly relationship between the guide rail 11 and the housing 12, can also be adjusted and optimized according to specific application scenarios.

[0048] Slider 2, such as Figure 1 and Figure 2As shown, the slider 2 is fitted onto the outside of the support member 1 and slidably connected to the guide rail 11, suitable for vertical movement relative to the support member 1. Specifically, the slider 2 has a vertically penetrating groove 25 inside to pass through the support member 1, facilitating vertical movement of the slider 2 relative to the support member 1. The size and shape of the groove 25 match the support member 1 to ensure the stability and smoothness of the slider 2 during movement. The design of the groove 25 not only provides a sliding interface between the slider 2 and the support member 1 but also ensures that the slider 2 will not deviate from the predetermined trajectory during movement. In addition, a protective sleeve 21 is installed on the inner wall of the groove 25 to protect the groove 25 from damage during movement. A bottom decorative plate 23 is provided at the bottom of the groove 25 to make the slider 2 more aesthetically pleasing.

[0049] The slider 2 has a first receiving cavity to accommodate some components of the drive component. The design of the first receiving cavity takes into account the size and shape of the drive component to ensure that it can be securely installed inside the slider 2. The slider 2 has a rear cover 22 to close the first receiving cavity.

[0050] Connector 3 is rotatably connected to slider 2. An annular toothed portion 32 is provided at the connection point between connector 3 and slider 2, allowing connector 3 to pitch relative to slider 2 under the drive of the driving component. Specifically, as shown... Figure 5 As shown, the connecting member 3 includes a rotating disk 31 rotatably connected to the sliding member 2. The rotating disk 31 rotates about a horizontal axis and is fixedly connected to the connecting member 3. The rotating disk 31 is provided with at least a portion of annular teeth 32 along its circumferential direction. Figure 2 As shown, the end of the connector 3 away from the slider 2 is provided with a connecting portion 33 suitable for mounting the water outlet component 4. Specifically, the connecting portion 33 is a U-shaped groove structure, suitable for fitting the water outlet component 4. The opening of the U-shaped groove faces the side away from the slider 2. The U-shaped groove structure provides an installation interface for the water outlet component 4, ensuring the stability of the water outlet component 4 on the connector 3. The connector 3 is provided with a second receiving cavity to accommodate some components of the driving component.

[0051] Drive components, such as Figure 1 As shown, it is integrated inside the slider 2 and the connector 3, and includes a linear drive unit 6, a pitch drive unit 7 and a swing drive unit 8.

[0052] Linear drive unit 6, such as Figures 2 to 4 As shown, it is used to drive the slider 2 to move, and includes a first driving member 61, a first gear 62, and a limiting device. The linear driving unit 6 is disposed in the first accommodating cavity of the slider 2.

[0053] like Figure 4As shown, the linear drive unit 6 engages with the motion rack 13 to drive the slider 2 to move vertically along the extension direction of the support member 1. Specifically, the first gear 62 meshes with the motion rack 13 to drive the slider 2 to move vertically. In this embodiment, the first drive member 61 is a DC motor, which has excellent speed regulation performance and load adaptability. The DC motor is connected to an external power source via a power line and rotates upon receiving control signal commands.

[0054] The first gear 62 is fixedly connected to the connecting shaft of the first driving member 61. When the DC motor rotates, the first gear 62 rotates accordingly. The number of teeth and module of the first gear 62 must match those of the moving rack 13 to ensure stable and efficient meshing. The moving rack 13 is arranged along the support member 1 and meshes with the first gear 62. When the first gear 62 rotates, the interaction between the teeth drives the sliding member 2 to move vertically along the support member 1.

[0055] A limiting device is used to restrict the movement of the sliding member 2. In this embodiment, the limiting device can be selected from at least one of a mechanical limiting structure, a position sensor, or a magnetic sensing device, depending on actual needs.

[0056] If the limiting device adopts a mechanical limiting structure, such as using the upper wall seat 14 and the lower wall seat 15 as mechanical limiting, then... Figure 2 As shown, when the slider 2 moves to the upper and lower limit positions of the support 1, it will contact the upper wall seat 14 and the lower wall seat 15 respectively. At this time, the DC motor will stall due to the increased load, and the current will increase significantly. The control unit 9 can determine that the slider 2 has reached the limit position by detecting the change in current.

[0057] If the limit device uses a position sensor, the position sensor can be installed on the slider 2 or the support 1 to monitor the position of the slider 2 in real time. When the slider 2 moves to the preset limit position, the position sensor sends a signal, and the control unit 9 immediately stops the rotation of the DC motor after receiving the signal.

[0058] If the limiting device uses a magnetic sensing device, a magnet is preset on the support 1, and a magnetic sensing element (such as a Hall sensor) is installed on the control unit 9. When the slider 2 moves near the magnet, the magnetic sensing element detects the change in magnetic field and sends a signal to the control system. The control unit 9 then stops the rotation of the DC motor based on the signal.

[0059] The setting of the limiting device, whether through a mechanical limiting structure with physical contact or through a non-contact position sensor or magnetic induction device, can effectively prevent the sliding part 2 from exceeding the preset range during movement.

[0060] In terms of specific working principle, when the control unit 9 issues a movement command, the first driving member 61 begins to rotate, driving the first gear 62 to rotate via the connecting shaft. The first gear 62 meshes with the moving rack 13, driving the sliding member 2 to move vertically along the extension direction of the support member 1. During the movement, the limiting device monitors the position of the sliding member 2 in real time to ensure that it moves within a preset range. When the sliding member 2 approaches its limit position, the limiting device sends a signal to the control unit 9, and the control unit 9 immediately stops the rotation of the first driving member 61 to prevent the sliding member 2 from exceeding the preset range.

[0061] Pitch drive unit 7, such as Figure 5 and Figure 6 As shown, it is used to drive the pitch movement of the connecting member 3, and includes a second driving member 71, a second gear 72, and a limiting member. The pitch driving unit 7 cooperates with the ring gear 32 to drive the connecting member 3 and the water outlet component 4 to perform forward and backward pitch movements. Specifically, the second gear 72 meshes with the ring gear 32 to drive the rotating disk 31 to rotate around the horizontal axis.

[0062] The second driving component 71 is a stepper motor, which serves as the power source for the pitch drive unit 7 and can precisely control the rotation angle and speed. Stepper motors have advantages such as high positioning accuracy, smooth operation, and ease of control, making them suitable for applications requiring precise control. In this embodiment, the stepper motor is fixedly installed within the first accommodating cavity of the sliding component 2.

[0063] The second gear 72 is fixedly connected to the output shaft of the second drive member 71. When the second drive member 71 is working, its output shaft drives the second gear 72 to rotate. The number of teeth of the second gear 72 matches the number of teeth of the ring gear 32 to ensure that the two can mesh smoothly and transmit power.

[0064] A limiting structure is used to restrict the rotation range of the pitch drive unit 7 to prevent the connector 3 and the water outlet component 4 from excessive pitching, which could damage them or affect their performance. In this embodiment, the limiting element is a protruding stop on the sliding member 2. The protruding stop is fixedly installed on the sliding member 2 and is located on the rotation path of the second gear 72. When the second gear 72 rotates to the position of the protruding stop, it will be blocked and unable to continue rotating, thereby limiting the rotation range of the pitch drive unit 7.

[0065] Raised stops are typically made of wear-resistant and impact-resistant materials to improve their service life and stability. Furthermore, the position and shape of the raised stops can be adjusted according to actual needs to meet the requirements of different usage scenarios.

[0066] In terms of specific working principle, when the second drive component 71 receives a motion command and is powered on, it drives the second gear 72 to rotate. The second gear 72 meshes with the ring tooth 32 on the rotating disk 31, driving the rotating disk 31 to rotate around the horizontal axis, and driving the connecting component 3 connected to it to perform a pitching motion. Since the water outlet component 4 is installed on the connecting component 3, the water outlet component 4 also performs a pitching motion accordingly.

[0067] Swing drive unit 8, such as Figure 7 and Figure 8 As shown, it is used to drive the water outlet component 4 to rotate relative to the connector 3, and includes a roller 83, a third drive component 81, and a third gear 82. The swing drive unit 8 is disposed in the second accommodating cavity of the connector 3.

[0068] Roller 83, disposed within connector 3 and in rolling contact with water outlet component 4, drives water outlet component 4 to rotate through rolling friction. This movement is achieved through a transmission connection with third gear 82. The surface of roller 83 is typically made of a wear-resistant, smooth material to reduce friction and wear between it and water outlet component 4, thereby extending its service life.

[0069] The third driving component 81 is a stepper motor, which serves as the power source for the swing drive unit 8. It has advantages such as high positioning accuracy, smooth operation, and easy control. By controlling its rotation angle and speed, the stepper motor can drive the roller 83, thereby controlling the rotation of the water outlet component 4.

[0070] The third gear 82 is fixedly connected to the output shaft of the third drive component 81. The third gear 82 is a multi-gear transmission structure. The third gear 82 is connected to the roller 83 to drive the roller 83 to rotate around its axis. The third gear 82 and the roller 83 are connected by a transmission mechanism (such as a connecting rod, transmission rod, or transmission belt). When the stepper motor is working, its output shaft drives the third gear 82 to rotate, which in turn drives the roller 83 to rotate around its axis through the transmission mechanism. By controlling the multi-gear transmission structure, the stepper motor can convert the rotational motion of the third drive component 81 into the clockwise or counterclockwise rotation of the roller 83, driving the water outlet component 4 to rotate clockwise or counterclockwise, thus realizing the rotational spraying of water from left to right or from right to left by the water outlet component 4.

[0071] Control unit 9, such as Figure 1As shown, it is responsible for receiving and processing instructions from the user or external devices, and controlling each driving component accordingly. The control unit 9 is fixed inside the sliding member 2 and electrically connected to each driving component. The control unit 9 integrates a Bluetooth module to receive control instructions or voice commands from the control panel or mobile terminal. The Bluetooth module can receive control instructions or voice commands from the control panel (such as a wall switch, remote control, etc.) or mobile terminal (such as a smartphone, tablet, etc.), realizing remote intelligent control of the adjustment structure and enjoying a personalized shower experience.

[0072] The power module 10 provides a stable power supply to the shower system, ensuring that all components can function properly. The power module 10 is fixed inside the sliding member 2 and uses a wall-mounted adapter or a hydroelectric power generation module as its power supply method.

[0073] Wall-mounted adapters are a common power interface that is easy to install and connect.

[0074] This hydroelectric power generation module converts the power of flowing water into electrical energy, requiring no external power source and making it suitable for shower areas without a power supply. The module contains key components such as a turbine and a water turbine generator, which convert the power of the flowing water into mechanical energy, and then into electrical energy. Installation is simple; just connect the module to the water pipes of the shower system, requiring no additional construction or modification.

[0075] In this embodiment, the adjustment structure, through integrated drive components, enables omnidirectional adjustment of the water outlet component 4 in three-dimensional space, including height adjustment, pitch angle adjustment, and rotation angle adjustment. Specifically, the linear drive unit 6, in conjunction with the motion rack 13 on the support member 1, adjusts the height of the water outlet component 4 to meet the needs of different heights and usage scenarios. The pitch drive unit 7, in conjunction with the annular tooth 32 of the connector 3, allows the connector 3 and the water outlet component 4 mounted thereon to perform pitch movements around a horizontal axis, adjusting the water spray direction and the angle with the body to enhance the showering experience. The swing drive unit 8, through rollers 83, rolls in contact with the water outlet component 4, pushing the water outlet component 4 to rotate clockwise or counterclockwise, achieving rotational water spraying from left to right or right to left, increasing the coverage area and comfort during showering.

[0076] A water outlet device, such as Figure 9 As shown, it includes a water outlet component 4, a top nozzle 5, and the aforementioned adjustment structure.

[0077] The water outlet component 4, as the core component of the shower system, is responsible for evenly spraying water onto the user. The water outlet component 4 has a transmission part 41, which is installed on the connecting part 33 of the connector 3. The roller 83 rolls in contact with the transmission part 41 to drive the water outlet component 4 to rotate. Specifically, the water outlet component 4 is connected to the water source of the shower system via a water outlet hose. The transmission part 41 is trumpet-shaped, allowing it to extend from one side of the U-shaped groove opening of the connecting part 33 of the connector 3 and be attached to the U-shaped groove. The water outlet component 4 can be a shower head, spray gun, or shower nozzle.

[0078] The top nozzle 5, located above the water outlet component 4, is used to provide a full-body spray of water.

[0079] Support 1 is fixed to the wall via upper wall seat 14 and lower wall seat 15 to support the entire adjustment structure and ensure its stability and reliability.

[0080] In this embodiment, the water outlet device integrates the adjustment structure to achieve all-round intelligent adjustment of the position and angle of the water outlet component 4.

[0081] The foregoing description of the specifications and embodiments is intended to explain the scope of protection of this utility model, but does not constitute a limitation on the scope of protection of this utility model. Modifications, equivalent substitutions, or other improvements to the embodiments of this utility model or a portion thereof that can be obtained by those skilled in the art through logical analysis, reasoning, or limited experimentation, based on the teachings of this utility model or the foregoing embodiments, should all be included within the scope of protection of this utility model.

Claims

1. A regulating structure for regulating the angle and height of a water outlet member (4), characterized in that, include: Support member (1), which is provided with guide rail (11) extending in its extension direction. The slider (2) is slidably connected to the guide rail (11) and is adapted to move relative to the support (1) along its extension direction; The connector (3) is rotatably connected to the slider (2) and is adapted to perform pitching motion relative to the slider (2); The drive unit, which is integrated within the slider (2) and the connector (3), includes a linear drive unit (6) for driving the slider (2) to move, a pitch drive unit (7) for driving the connector (3) to pitch, and a swing drive unit (8) for driving the water outlet component (4) to rotate relative to the connector (3).

2. The adjustment structure of claim 1, wherein The guide rail is provided with a moving rack (13) extending along its extension direction. The sliding member is sleeved outside the support member (1). The linear drive unit (6) includes a first drive member (61) and a first gear (62) connected to the first drive member (61). The first gear (62) meshes with the moving rack (13) to drive the sliding member (2) to move.

3. The adjustment structure of claim 2, wherein The linear drive unit (6) further includes a limiting device for limiting the movement position of the slider (2), the limiting device being at least one of a mechanical limiting structure, a position sensor, or a magnetic sensing device; the first drive member (61) is a DC motor.

4. The adjustment structure of claim 1, wherein One end of the connector (3) is provided with a connecting part (33) suitable for installing the water outlet component (4). The connector (3) includes a rotating disk (31) rotatably connected to the sliding member (2). The rotating disk (31) rotates around a horizontal axis and is fixedly connected to the connector (3). The rotating disk (31) is provided with an annular toothed portion (32) at least partially along the circumferential direction. The pitch drive unit (7) includes a second drive member (71) fixedly connected to the sliding member (2) and a second gear (72) connected to the second drive member (71). The second gear (72) meshes with the annular toothed portion (32) to drive the rotating disk (31) to rotate around the horizontal axis.

5. An adjustment structure as claimed in claim 4, characterized in that The pitch drive unit (7) further includes a limiting member for limiting the rotation range of the annular tooth (32), the limiting member being a protruding stop block disposed on the sliding member (2); the second drive member (71) is a stepper motor.

6. The adjustment structure of claim 1, wherein The swing drive unit (8) includes a roller (83) disposed in the connector (3) and in rolling contact with the water outlet component (4), a third drive member (81) and a third gear (82) connected to the third drive member (81), the third gear (82) being connected to the roller (83) in a transmission connection to drive the roller (83) to rotate around its axis.

7. An adjustment structure as claimed in claim 6, characterized in that The third gear (82) is a multi-gear transmission structure; the third driving component (81) is a stepper motor.

8. A regulating structure according to any one of claims 1 to 7, wherein It also includes a control unit (9) and a power module (10) fixed inside the sliding member (2); the control unit (9) is electrically connected to each driving member, and the control unit (9) integrates a Bluetooth module to receive control commands or voice commands from the control panel or mobile terminal.

9. An adjustment structure as claimed in claim 8, characterized in that The power module (10) uses a wall-mounted adapter or a hydroelectric power generation module as the power supply method.

10. A water outlet device, characterized by It includes a water outlet component (4) and an adjustment structure as described in any one of claims 1 to 5, 7 to 9; the support member (1) is fixed to the wall; the water outlet component (4) is installed on the connecting part (33) of the connector (3).

11. A water outlet device, characterized by It includes a water outlet component (4) and an adjustment structure as described in any one of claims 6 to 9; the support member (1) is fixed to the wall; the water outlet component (4) is provided with a transmission part (41), the transmission part (41) is installed on the connection part (33) of the connector (3), and the roller (83) rolls in contact with the transmission part (41) to drive the water outlet component (4) to rotate.