Self-cleaning bathroom faucet

CN224649191UActive Publication Date: 2026-08-18ZHEJIANG XINTANG HAOZHI INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202521950220.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-11
Publication Date
2026-08-18
Estimated Expiration
2035-09-11

AI Technical Summary

Technical Problem

[0003]针对现有技术存在的不足,本实用新型的目的在于提供一种自清洁卫浴龙头,以解决上述背景技术中提出的卫浴龙头内部容易堆积水渍且清洁不便的问题

Benefits of technology

[0010]与现有技术相比,本实用新型提供了一种自清洁卫浴龙头,具备以下有益效果:清洁部件与腔体内壁接触,遇水后借水流驱动震动,无需电力或化学剂即可物理剥离水垢等杂质,实现边用边清洁的自清洁模式,减少人工维护;弹性定位部件可随水流压力自适应调整清洁部件与内壁的接触力度,高压时增强冲击、低压时保持贴合,避免清洁盲区,确保全工况清洁一致;减少腔体堵塞并延长阀芯等易损件寿命。

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Abstract

The utility model discloses a kind of self-cleaning bathroom faucets, including faucet body, the cavity for passing through water is in the middle of faucet body, at least one cleaning mechanism is provided in the cavity, each cleaning mechanism includes cleaning component and the positioning component for positioning cleaning component in cavity, the cleaning component is contacted with wall inner wall and can be vibrated after being contacted with water, the positioning component has elasticity, this bathroom faucet can be vibrated by water flow impact to generate self-cleaning, simple structure, easy to operate, convenient to disassemble.
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Description

Technical Field

[0001] This utility model relates to the field of bathroom faucet technology, specifically a self-cleaning bathroom faucet. Background Technology

[0002] Bathroom faucets are essential bathroom fixtures in most homes. With many young people now involved in home renovations, they often prioritize high-quality bathroom products for an artistic touch. Some young people choose faucets with unique designs, deviating from conventional shapes. However, regardless of the design, water still flows through the faucet's internal cavity. Due to impurities in the water, these impurities tend to accumulate on the inner wall of the faucet cavity, especially near the spout. Existing bathroom faucets lack self-cleaning functions and require manual cleaning. Some faucets are even difficult to disassemble and clean, leading to blockages over time. Utility Model Content

[0003] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a self-cleaning bathroom faucet to solve the problem mentioned in the background art that water stains easily accumulate inside the bathroom faucet and it is inconvenient to clean.

[0004] To achieve the above objectives, the present invention provides the following technical solution: a self-cleaning bathroom faucet, comprising a faucet body, wherein the faucet body has a cavity in the middle for water to pass through, and at least one cleaning mechanism is provided in the cavity, each of the cleaning mechanisms comprising a cleaning component and a positioning component for positioning the cleaning component in the cavity, wherein the cleaning component contacts the inner wall of the wall and is able to vibrate after contact with water, and the positioning component is elastic.

[0005] As a further improvement of this utility model, the cleaning component includes a main ball and a cleaning brush. The cleaning brush is evenly distributed on the main ball. The main ball is connected to the positioning component. One end of the cleaning brush is fixedly connected to the main ball, and the other end contacts the inner peripheral wall of the cavity.

[0006] As a further improvement of this utility model, the positioning component includes at least one hook and an elastic rope disposed on the inner wall of the wall, one end of the elastic rope being connected to the main ball and the other end being detachably connected to a hook.

[0007] As a further improvement of this utility model, the hook is provided with a rotating ring, which is located at one end of the elastic rope corresponding to the hook, and the elastic rope is connected to the rotating ring.

[0008] As a further improvement of this utility model, the rotating ring is an arc-shaped rotating ring.

[0009] As a further improvement of this utility model, a plurality of guide walls are evenly distributed along the length of the inner wall of the cavity, and each guide wall is oriented toward the main ball.

[0010] Compared with the prior art, this utility model provides a self-cleaning bathroom faucet with the following advantages: the cleaning component contacts the inner wall of the cavity, and vibrates with the water flow after contact with water, physically removing scale and other impurities without electricity or chemical agents, realizing a self-cleaning mode that cleans while in use, reducing manual maintenance; the elastic positioning component can adaptively adjust the contact force between the cleaning component and the inner wall according to the water pressure, enhancing the impact under high pressure and maintaining a close fit under low pressure, avoiding cleaning blind spots and ensuring consistent cleaning under all working conditions; it reduces cavity blockage and extends the life of vulnerable parts such as the valve core. Attached Figure Description

[0011] Figure 1 This is a perspective view of the present utility model; Figure 2 This is a cross-sectional view of the present invention; Figure 3 This is a partial structural diagram of the cleaning mechanism of this utility model; Figure 4 This is a partial structural diagram of the positioning component of this utility model.

[0012] Reference numerals: 1. Faucet body; 2. Cavity; 3. Cleaning mechanism; 21. Guide wall; 31. Cleaning component; 32. Positioning component; 311. Main ball; 312. Cleaning brush; 321. Hook; 322. Elastic rope; 323. Rotating ring. Detailed Implementation

[0013] As shown in the figure, in order to achieve the above-mentioned objective, this utility model provides a self-cleaning bathroom faucet, including a faucet body 1. The faucet body 1 has a cavity 2 for water to pass through in the middle. At least one cleaning mechanism 3 is provided in the cavity 2. Each cleaning mechanism 3 includes a cleaning component 31 and a positioning component 32 for positioning the cleaning component 31 in the cavity 2. The cleaning component 31 contacts the inner wall of the wall and can vibrate after contacting water. The positioning component 32 is elastic.

[0014] In implementation, the faucet body 1 is a conventional structure adapted to bathroom scenarios, with a central cavity 2 for water flow. The shape of the cavity 2 matches the overall design of the faucet body 1, ensuring smooth water flow. At least one cleaning mechanism 3 is installed within the cavity 2. For example, one, two, or more cleaning mechanisms 3 can be selected based on the length of the cavity 2. Each cleaning mechanism 3 consists of a cleaning component 31 and a positioning component 32. The positioning component 32 is made of a flexible material, with one end connected to the inner wall of the cavity 2 and the other end fixed to the cleaning component 31, thus stably positioning the cleaning component 31 inside the cavity 2. In this solution, the positioning is not fixed; rather, the cleaning component 31 is positioned according to a predetermined location to prevent it from dislodging. The outer periphery of the cleaning component 31 is adapted to the inner wall of the cavity 2. After assembly, the cleaning component 31 can contact the inner wall of the cavity 2. When water flows through the cavity 2, the water impacts the cleaning component 31. Combined with the elastic deformation of the positioning component 32, the cleaning component 31 can generate vibration. Through vibration, the scale and impurities attached to the inner wall of the cavity 2 are peeled off, thus achieving self-cleaning of the cavity 2.

[0015] As an improved specific embodiment, the cleaning component 31 includes a main ball 311 and a cleaning brush 312. The cleaning brush 312 is evenly distributed on the main ball 311. The main ball 311 is connected to the positioning component 32. One end of the cleaning brush 312 is fixedly connected to the main ball 311, and the other end contacts the inner peripheral wall of the cavity 2.

[0016] In implementation, the cleaning component 31 includes a main ball 311 and cleaning brushes 312. The main ball 311 is a solid or hollow spherical structure, its size adapted to the inner diameter of the cavity 2. The main ball 311 can be stably installed within the cavity 2 without obstructing water flow. The cleaning brushes 312 are evenly arranged along the outer circumference of the main ball 311. For example, multiple sets of cleaning brushes 312 can be arranged along the radial direction of the main ball 311, with each set of cleaning brushes 312 spaced at the same angle. One end of the cleaning brush 312 is connected to the main ball 311 by conventional fixing methods such as adhesive or snap-fit, while the other end extends to and contacts the inner circumferential wall of the cavity 2. When water flows through the cavity 2 and causes the main ball 311 to vibrate, the main ball 311 simultaneously drives the cleaning brushes 312 to vibrate. The ends of the cleaning brushes 312 rub against the inner circumferential wall of the cavity 2, further enhancing the cleaning effect on impurities on the inner wall of the cavity 2, while avoiding damage caused by direct rigid friction between the cleaning component 31 and the inner wall of the cavity 2.

[0017] As an improved specific embodiment, the positioning component 32 includes at least one hook 321 and an elastic rope 322 disposed on the inner wall of the wall. One end of the elastic rope 322 is connected to the main ball 311, and the other end is detachably connected to a hook 321.

[0018] In implementation, the positioning component 32 includes a hook 321 and an elastic cord 322. The hook 321 is located on the inner wall of the cavity 2. One or more hooks 321 can be selected according to the positioning requirements of the main ball 311, for example, one hook 321 can be set on each of the opposite sides of the inner wall of the cavity 2. The elastic cord 322 is an elastic rope-like structure. One end of it is connected to the surface of the main ball 311. One end of the elastic cord 322 can be tied to the hanging hole opened on the main ball 311. The other end is detachably connected to the hook 321. For example, a protrusion is provided on the hook 321, and a hanging ring adapted to the protrusion is provided at the end of the elastic cord 322. The detachable connection is achieved by the engagement of the hanging ring and the protrusion. This not only provides vibration space for the cleaning component 31 through the elasticity of the elastic cord 322, but also facilitates the subsequent disassembly, replacement, and maintenance of the cleaning component 31 or the elastic cord 322.

[0019] As an improved specific implementation, a rotating ring 323 is provided on the hook 321. The rotating ring 323 is located at one end of the hook 321 corresponding to the elastic rope 322, and the elastic rope 322 is connected to the rotating ring 323.

[0020] In implementation, a rotating ring 323 is provided at one end of the hook 321 corresponding to the elastic rope 322. The rotating ring 323 is a ring structure that can rotate around the end of the hook 321. The elastic rope 322 is connected to the rotating ring 323, for example, by tying the end of the elastic rope 322 to the rotating ring 323, or by fixing it to the rotating ring 323 through a snap-fit ​​structure. When the cleaning component 31 vibrates under the action of water flow, the elastic rope 322 will drive the rotating ring 323 to rotate synchronously, avoiding wear caused by direct friction between the elastic rope 322 and the hook 321, and extending the service life of the elastic rope 322. At the same time, the rotation of the rotating ring 323 can reduce the torsional stress of the elastic rope 322, ensuring that the vibration direction of the cleaning component 31 is more flexible and improving the cleaning coverage.

[0021] As an improved specific implementation, the rotating ring 323 is an arc-shaped rotating ring 323.

[0022] When implementing this solution, a circular arc-shaped rotating ring 323 is used, which has a circular arc surface that does not easily cause wear to the elastic rope 322.

[0023] As an improved specific implementation, a plurality of guide walls 21 are evenly distributed along the length of the inner wall of the cavity 2, and each guide wall 21 is arranged facing the main ball 311.

[0024] In implementation, this solution involves uniformly arranging several guide walls 21 along the length of the inner wall of the cavity 2. Each guide wall 21 is a plate-like structure protruding from the inner wall of the cavity 2, with equal spacing between them. The orientation of each guide wall 21 is aligned with the main ball 311, meaning the extension direction of the guide wall 21 points towards the center of the main ball 311. When water flows through the cavity 2, the guide walls 21 guide the water flow towards the main ball 311, enhancing the impact force of the water flow on the main ball 311 and causing it to vibrate more significantly. This, in turn, improves the cleaning effect of the cleaning brush 312 on the inner wall of the cavity 2. Simultaneously, the guide walls 21 prevent the water flow from forming eddies within the cavity 2, thus avoiding cleaning dead zones and ensuring that the water flow is evenly applied to the main ball 311, guaranteeing consistent cleaning of the inner wall of the cavity 2 by the cleaning component 31.

[0025] The above are merely preferred embodiments of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are within its protection scope. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within its protection scope.

Claims

1. A self-cleaning bathroom faucet, characterized in that, The device includes a faucet body, the faucet body having a cavity in the middle for water to pass through, the cavity having at least one cleaning mechanism, each cleaning mechanism including a cleaning component and a positioning component for positioning the cleaning component in the cavity, the cleaning component contacting the inner wall of the wall and being able to vibrate upon contact with water, and the positioning component being elastic.

2. The self-cleaning bathroom faucet according to claim 1, characterized in that, The cleaning component includes a main ball and a cleaning brush. The cleaning brush is evenly distributed on the main ball. The main ball is connected to a positioning component. One end of the cleaning brush is fixedly connected to the main ball, and the other end contacts the inner peripheral wall of the cavity.

3. The self-cleaning bathroom faucet according to claim 2, characterized in that, The positioning component includes at least one hook and an elastic rope disposed on the inner wall of the wall. One end of the elastic rope is connected to the main ball, and the other end is detachably connected to a hook.

4. The self-cleaning bathroom faucet according to claim 3, characterized in that, The hook is equipped with a rotating ring, which is located at one end of the elastic rope corresponding to the hook, and the elastic rope is connected to the rotating ring.

5. The self-cleaning bathroom faucet according to claim 4, characterized in that, The rotating ring is an arc-shaped rotating ring.

6. The self-cleaning bathroom faucet according to claim 2, characterized in that, The inner wall of the cavity is provided with a number of flow guide walls evenly distributed along its length, and each flow guide wall is positioned facing the main ball.