Water passing assembly for intelligent closestool
By setting up an adsorption assembly and a first magnet in the water-flow assembly of the smart toilet to absorb metal impurity particles in the water, the problem of inability to remove metal impurity particles in the water in the existing smart toilet is solved, and the cleanliness of water and human safety are improved.
Patent Information
- Application Number
- CN202421901764.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-06
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-06
AI Technical Summary
In the water inlet module of existing smart toilets, the tee cannot remove metal impurities in the water, which may cause harm to the human body.
Design a water-operated assembly for smart toilets, including valve body and adsorption assembly. The valve body is provided with a water inlet pipe and a first water outlet pipe, and a first magnet is provided in the adsorption assembly. When the water flows through the slow flow channel, the magnet adsorbs metal impurity particles.
It effectively reduces the possibility of metal impurity particles in the water entering the first outlet pipe, improves the cleanliness of the water, and protects human safety.
Smart Images

Figure CN223034148U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of toilet accessories, in particular to a water passing component for a smart toilet. Background Art
[0002] A smart toilet is an upgraded product of an ordinary toilet, which is a toilet controlled by a microcomputer. It has all the functions of an ordinary toilet and combines functions such as automatic flushing, seat heating, hip washing, female washing, massage for defecation, and warm air drying, which are very comfortable and practical. By integrating advanced technologies, it combines a toilet, a feminine washbasin, and a dryer. It allows people to change the habit of wiping with toilet paper when using the toilet and replaces it with a more environmentally friendly and comfortable water flow cleaning and warm air drying, achieving a state of convenience, enjoyment, and health care.
[0003] The utility model with the publication number CN217000008U discloses a dual-control toilet flushing device, including an inlet module, a flushing ring module, a drainage module, and an electric module; it also includes a four-way component, which includes a body and a reversing rod. The body has four interfaces, and the reversing rod is located inside the body. The inlet module, the flushing ring module, the drainage module, and the electric module are respectively installed at the four interfaces to form an inlet channel, a flushing ring channel, a driving drainage channel, and an electric control channel; the inlet module or / and the electric module drive the reversing rod to move inside the body to open or block the flushing ring channel.
[0004] For the toilet in the above technical solution, the tee in its inlet module does not have the ability to remove metal impurity particles in the water. The tee usually connects the water inlet interface, the water path of the water tank, and the water path of the cleaning module. If water with tiny metal impurity particles is distributed to functional modules such as hip washing or female washing, it is easy to cause harm to the human body. Summary of the Utility Model
[0005] In order to reduce the possibility of metal impurity particles in the water entering the cleaning module, the present application provides a water passing component for a smart toilet.
[0006] The water passing component for a smart toilet provided by the present application adopts the following technical solution:
[0007] A water passing component for a smart toilet, comprising a valve body and an adsorption component. An inlet pipe and a first outlet pipe are provided on the valve body. A water passing cavity is formed on the valve body. The first outlet pipe is communicated with the water passing cavity. The adsorption component includes a seat body and a first magnet. The seat body is fixedly arranged in the water passing cavity. An inlet channel is vertically formed at the bottom of the seat body. The inlet channel is communicated with the inlet pipe. A plurality of slow flow channels are formed in the middle section of the seat body. The plurality of slow flow channels are respectively communicated with the upper port of the inlet channel and the water passing cavity. The first magnet is arranged in the seat body and close to the slow flow channels.
[0008] By adopting the above technical solution, water flows in from the inlet pipe and sequentially flows through the inlet channel, the slow flow channels and the water passing cavity and then flows out from the first outlet pipe. When the water flows through the slow flow channels, the first magnet can adsorb metal impurity particles in the water flowing through the slow flow channels, reducing the possibility of the water entering the first outlet pipe carrying metal impurity particles.
[0009] Preferably, the seat body includes an upper seat body and a lower seat body which are attached to each other up and down. The inlet channel is arranged through the lower seat body. A plurality of guide plates are arranged at the top of the lower seat body at intervals around the central axis of the inlet channel. The space between adjacent guide plates and the bottom wall of the upper seat body form the slow flow channels. A placement groove for installing the first magnet is formed at the top of the upper seat body. A top plate is detachably installed at the notch of the placement groove.
[0010] By adopting the above technical solution, while facilitating the processing of the slow flow channels, the upper seat body and the lower seat body can be replaced respectively. The placement groove and the top plate limit the position of the first magnet. When water flows into the water passing cavity, it can flow evenly through the circumferential side surface of the first magnet, enabling the first magnet to adsorb metal impurity particles in the water flowing through the inlet cavity, reducing the possibility of the water entering the first outlet pipe carrying metal impurity particles.
[0011] Preferably, the guide plates are arc-shaped.
[0012] By adopting the above technical solution, when the water flows through the slow flow channels, the flow distance of the water is increased. The water impacts on the side wall of the circulation channel, reducing the flow velocity of the water, thereby lengthening the flow time of the water in the deceleration channel and enabling the first magnet to better adsorb metal impurity particles in the water.
[0013] Preferably, a flow dividing block is arranged at the bottom of the lower seat body relative to the upper port of the inlet channel. The flow dividing block is arranged in a conical shape.
[0014] By adopting the above technical solution, the diversion block is arranged to guide the flow of water, making the water flow towards the slow-flow channels and evenly flow into several slow-flow channels, and can buffer the impact force and flow rate of the water, reducing the possibility of damage to the upper seat body caused by excessive impact force of the water, and enabling the first magnet to better adsorb metal impurity particles in the water.
[0015] Preferably, a circular groove is provided at the bottom of the lower seat body, and a second magnet is installed in the circular groove.
[0016] By adopting the above technical solution, the setting of the second magnet can adsorb metal impurity particles in the water flowing through the water inlet channel, reducing the possibility of the water entering the first water outlet pipe carrying metal impurity particles.
[0017] Preferably, the valve body includes a main body portion and a cover plate, and the first water outlet pipe is arranged on the cover plate; the water passing cavity is located at the upper end of the main body portion, and the cover plate is detachably connected to the upper end of the cover plate to cover the water passing cavity; a plurality of abutting plates are provided at the bottom of the cover plate. When the cover plate is installed on the main body portion, the plurality of abutting plates abut against the top plate, and the bottom of the seat body is pressed against the bottom wall of the water passing cavity.
[0018] By adopting the above technical solution, by making the cover plate detachably connected to the cover plate, it is convenient to clean or replace the upper seat body and the lower seat body in the water passing cavity, reducing the possibility of damage or blockage of the upper seat body or the lower seat body; the setting of the abutting plates limits the position of the seat body in the water passing cavity, reducing the possibility of deviation of the upper seat body or the lower seat body in the water passing cavity.
[0019] Preferably, a waterproof gasket is further installed at the bottom of the lower seat body, and the waterproof gasket covers the circular groove.
[0020] By adopting the above technical solution, the setting of the waterproof gasket restricts the flow of water, making the water flow in from the water inlet channel, reducing the possibility of water not entering the water inlet channel, and thus reducing the possibility of the water entering the first water outlet pipe carrying metal impurity particles.
[0021] Preferably, a second water outlet pipe is further included, and the second water outlet pipe is arranged on the valve body and is communicated with the water inlet pipe.
[0022] By adopting the above technical solution, the second water outlet pipe is communicated with the water inlet pipe, so that the water flowing through the second water outlet pipe does not pass through the water passing cavity.
[0023] The technical effects of the present utility model are mainly reflected in the following aspects:
[0024] 1. In the present utility model, by providing an adsorption assembly, water flows into the water inlet pipe and then sequentially flows through the water inlet channel, the slow flow channel, and the water passing cavity and then flows out from the first water outlet pipe. When the water flows through the slow flow channel, the first magnet can adsorb metal impurity particles in the water flowing through the slow flow channel, reducing the possibility of metal impurity particles in the water entering the first water outlet pipe;
[0025] 2. In the present utility model, by dividing the seat body into an upper seat body and a lower seat body, it is convenient for processing the slow flow channel and at the same time, the upper seat body and the lower seat body can be replaced separately; the placement groove and the top plate limit the position of the first magnet. When water flows into the water passing cavity, it can evenly flow through the circumferential side surface of the first magnet, enabling the first magnet to adsorb metal impurity particles in the water flowing through the water inlet cavity, reducing the possibility of metal impurity particles in the water entering the first water outlet pipe.
[0026] 3. In the present utility model, by dividing the valve body into a main body part and a cover plate, and making the cover plate detachably connected to the cover plate, it is convenient to clean or replace the upper seat body and the lower seat body in the water passing cavity, reducing the possibility of damage or blockage of the upper seat body or the lower seat body; the setting of the abutting plate limits the position of the seat body in the water passing cavity, reducing the possibility of the upper seat body or the lower seat body shifting in the water passing cavity. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 is a schematic diagram of the overall structure of an embodiment of the present application.
[0028] Figure 2 is a schematic diagram of the structure of the water passing cavity of an embodiment of the present application.
[0029] Figure 3 is a schematic diagram of the structure of the seat body of an embodiment of the present application.
[0030] Figure 4 is a schematic diagram of the structure of the adsorption assembly of an embodiment of the present application.
[0031] Figure 5 is a schematic diagram of the structure of the slow flow channel of an embodiment of the present application.
[0032] Figure 6 is a schematic diagram of the structure of the first water outlet pipe of an embodiment of the present application.
[0033] Figure 7 is a schematic diagram of the structure of the water inlet assembly installed in the water inlet module of an embodiment of the present application.
[0034] Description of reference numerals: 1. Valve body; 11. Main body part; 111. Water passing cavity; 12. Cover plate; 121. Abutted plate; 122. Sealing groove; 123. Sealing ring; 13. Water inlet pipe; 14. First water outlet pipe; 15. Second water outlet pipe; 2. Adsorption assembly; 21. Seat body; 211. Upper seat body; 212. Lower seat body; 213. Flow buffering channel; 214. Flow guiding plate; 215. Flow splitting block; 216. Water inlet channel; 217. Placing groove; 218. Annular groove; 219. Top plate; 220. Waterproof gasket; 22. First magnet; 23. Second magnet. Detailed implementation manners
[0035] The following is a further detailed description of the present application in combination with the Figures 1-7 accompanying drawings to make the technical solutions of the present application easier to understand and master.
[0036] An embodiment of the present application discloses a water passing assembly for a smart toilet.
[0037] Referring to Figures 1-7 , a water passing assembly for a smart toilet in this embodiment includes a valve body 1 and an adsorption assembly 2. A water inlet pipe 13, a first water outlet pipe 14 and a second water outlet pipe 15 are provided on the valve body 1. A water passing cavity 111 is formed in the valve body 1. The first water outlet pipe 14 is communicated with the water passing cavity 111. The second water outlet pipe 15 is fixedly connected to the valve body 1, and the second water outlet pipe 15 is communicated with the water inlet pipe 13, so that the second water outlet pipe 15 is communicated with the water inlet pipe 13, and the water flowing through the second water outlet pipe 15 does not pass through the water passing cavity 111.
[0038] Referring to Figures 2-5 , the adsorption assembly 2 includes a seat body 21 and a first magnet 22. The seat body 21 is located in the water passing cavity 111. An water inlet channel 216 is vertically formed at the bottom of the seat body 21. The water inlet channel 216 is communicated with the water inlet pipe 13. A plurality of flow buffering channels 213 are formed in the middle section of the seat body 21. The plurality of flow buffering channels 213 are respectively communicated with the upper port of the water inlet channel 216 and the water passing cavity 111. The plurality of flow buffering channels 213 are uniformly distributed around the axis of the water inlet channel 216. The first magnet 22 is installed in the seat body 21 and close to the flow buffering channels 213.
[0039] Referring to Figures 2-5, the seat body 21 includes an upper seat body 211 and a lower seat body 212 that are attached to each other up and down. The water inlet channel 216 is disposed through the lower seat body 212. A plurality of flow guide plates 214 are arranged at intervals around the central axis of the water inlet channel 216 on the top of the lower seat body 212. The plurality of flow guide plates 214 are evenly distributed in the axial direction of the water inlet channel 216. The plurality of flow guide plates 214 are respectively arranged in an arc shape. The space between adjacent flow guide plates 214 and the bottom wall of the upper seat body 211 form a slow flow channel 213; the first magnet 22 is columnar. A placement groove 217 for installing the first magnet 22 is opened on the top of the upper seat body 211. A top plate 219 is detachably installed at the notch of the placement groove 217.
[0040] Refer to Figures 1-7 , after the water flows into from the water inlet pipe 13, it sequentially flows through the water inlet channel 216, the slow flow channel 213, and the water passing cavity 111 and then flows out from the first water outlet pipe 14. When the water flows through the slow flow channel 213, the flow distance of the water is increased. The water impacts on the side wall of the circulation channel to reduce the flow velocity of the water, thereby lengthening the flow time of the water in the deceleration channel. The first magnet 22 can adsorb the metal impurity particles in the water flowing through the slow flow channel 213, reducing the possibility of the water entering the first water outlet pipe 14 carrying metal impurity particles. When the water flows into the water passing cavity 111, it can evenly flow through the circumferential side surface of the upper seat body 211, so that the first magnet 22 can adsorb the metal impurity particles in the water flowing through the water inlet cavity, reducing the possibility of the water entering the first water outlet pipe 14 carrying metal impurity particles.
[0041] Refer to Figures 2-5 , dividing the seat body 21 into the upper seat body 211 and the lower seat body 212 is convenient for processing the slow flow channel 213. At the same time, the upper seat body 211 and the lower seat body 212 can be replaced respectively. The placement groove 217 and the top plate 219 limit the position of the first magnet 22.
[0042] Refer to Figures 2-5 , a flow dividing block 215 is fixedly connected to the bottom of the lower seat body 212 relative to the upper port position of the water inlet channel 216. The flow dividing block 215 is arranged in a conical shape and is coaxially arranged with the water inlet channel 216. The setting of the flow dividing block 215 guides the flow of the water, making the water flow towards the slow flow channel 213 and evenly flowing towards a plurality of slow flow channels 213, and can buffer the impact force and flow velocity of the water, reducing the possibility of damage to the upper seat body 211 caused by excessive impact force of the water, and enabling the first magnet 22 to better adsorb the metal impurity particles in the water.
[0043] Refer to Figures 2-5, a circular groove 218 is formed at the bottom of the lower seat body 212, and a second magnet 23 is installed in the circular groove 218. The second magnet 23 is annular and coaxially arranged with the water inlet passage 216. The arrangement of the second magnet 23 can adsorb metal impurity particles in the water flowing through the water inlet passage 216, reducing the possibility of metal impurity particles in the water entering the first water outlet pipe 14.
[0044] Refer to Figures 1-6 , the valve body 1 includes a main body portion 11 and a cover plate 12, and the first water outlet pipe 14 is fixedly connected to the cover plate 12; the water passing cavity 111 is located at the upper end of the main body portion 11, and the cover plate 12 is detachably connected to the upper end of the cover plate 12 to cover the water passing cavity 111. The cover plate 12 is connected to the main body portion 11 by bolts, which is convenient for the disassembly of the cover plate 12; a plurality of abutting plates 121 are fixedly connected to the bottom of the cover plate 12, and the plurality of abutting plates 121 are evenly distributed around the central axis of the first water outlet pipe 14. When the cover plate 12 is installed on the main body portion 11, the plurality of abutting plates 121 abut on the top plate 219, and the bottom of the seat body 21 is pressed against the bottom wall of the water passing cavity 111. By making the cover plate 12 detachably connected to the cover plate 12, it is convenient to clean or replace the upper seat body 211 and the lower seat body 212 in the water passing cavity 111, reducing the possibility of damage or blockage of the upper seat body 211 or the lower seat body 212; the arrangement of the abutting plates 121 limits the position of the seat body 21 in the water passing cavity 111, reducing the possibility of deviation of the upper seat body 211 or the lower seat body 212 in the water passing cavity 111.
[0045] Refer to Figure 2 and Figure 7 , a sealing groove 122 is formed on the cover plate 12, and a sealing ring 123 is snap-fitted in the sealing groove 122. When the cover plate 12 is installed on the main body portion 11, the sealing ring 123 abuts on the main body portion 11. By providing the sealing groove 122 and the sealing ring 123 and making the sealing ring 123 abut on the main body portion 11, the possibility of water seeping out from the gap between the cover plate 12 and the main body portion 11 when water flows into the first water outlet pipe 14 is reduced, so as to increase the sealing performance of the valve body 1.
[0046] Refer to Figures 2-5 , a waterproof gasket 220 is further installed at the bottom of the lower seat body 212, and the waterproof gasket 220 covers the circular groove 218. The arrangement of the waterproof gasket 220 restricts the flow of water, making the water flow in from the water inlet passage 216, reducing the possibility of water not entering the water inlet passage 216, and thus reducing the possibility of metal impurity particles in the water entering the first water outlet pipe 14.
[0047] Of course, the above are only typical examples of the present application. In addition, the present application can also have many other specific implementation manners. Any technical solutions formed by equivalent replacement or equivalent transformation fall within the scope of protection required by the present application.
Claims
1. A water-passing assembly for a smart toilet, characterized in that: The invention comprises a valve body (1) and an adsorption assembly (2), wherein the valve body (1) is provided with a water inlet pipe (13) and a first water outlet pipe (14), the valve body (1) is provided with a water passage chamber (111), the first water outlet pipe (14) is connected to the water passage chamber (111), the adsorption assembly (2) comprises a seat body (21) and a first magnet (22), the seat body (21) is fixedly arranged in the water passage chamber (111), a water inlet channel (216) is vertically arranged at the bottom of the seat body (21), the water inlet channel (216) is connected to the water inlet pipe (13), a plurality of slow flow channels (213) are arranged in the middle section of the seat body (21), the plurality of slow flow channels (213) are respectively connected to the upper port of the water inlet channel (216) and the water passage chamber (111), and the first magnet (22) is arranged in the seat body (21) and close to the slow flow channel (213).
2. A water-passing assembly for a smart toilet according to claim 1, characterized in that: The seat body (21) comprises an upper seat body (211) and a lower seat body (212) which are fitted together. The water inlet channel (216) is arranged through the lower seat body (212). A plurality of guide plates (214) are arranged at intervals on the top of the lower seat body (212) around the central axis of the water inlet channel (216). The space between adjacent guide plates (214) and the bottom wall of the upper seat body (211) form the slow flow channel (213). A placement groove (217) for installing the first magnet (22) is provided on the top of the upper seat body (211), and a top plate (219) is detachably installed at the notch of the placement groove (217).
3. A water-passing assembly for a smart toilet according to claim 2, characterized in that: The guide plate (214) is arc-shaped.
4. According to claim 2, a water supply assembly for a smart toilet is characterized in that: A diverter block (215) is provided at a position of the bottom of the lower seat body (212) relative to the upper port of the water inlet channel (216), and the diverter block (215) is arranged in a cone shape.
5. A water-passing assembly for a smart toilet according to claim 2, characterized in that: An annular groove (218) is provided at the bottom of the lower seat body (212), and a second magnet (23) is installed in the annular groove (218).
6. A water-passing assembly for an intelligent toilet according to claim 5, characterized in that: The valve body (1) comprises a main body (11) and a cover plate (12); the first water outlet pipe (14) is arranged on the cover plate (12); the water passage chamber (111) is located at the upper end of the main body (11); the cover plate (12) is detachably connected to the upper end of the cover plate (12) to cover the water passage chamber (111); a plurality of abutment plates (121) are arranged at the bottom of the cover plate (12); when the cover plate (12) is installed on the main body (11), the plurality of abutment plates (121) abut against the top plate (219) and make the bottom of the seat body (21) pressed against the bottom wall of the water passage chamber (111).
7. A water-passing assembly for an intelligent toilet according to claim 6, characterized in that: A waterproof gasket (220) is also installed at the bottom of the lower seat (212), and the waterproof gasket (220) covers the annular groove (218).
8. The water-passing assembly for a smart toilet according to claim 1, characterized in that: It also comprises a second water outlet pipe (15), wherein the second water outlet pipe (15) is arranged on the valve body (1), and the second water outlet pipe (15) is connected to the water inlet pipe (13).
Citation Information
Patent Citations
Double-control type closestool flushing device
CN217000008U