Shower faucet
By designing seals with movable switch stem and water pressure differential control in the shower faucet, the existing shower faucets are solved for inconvenient operation and water leakage, achieving better user experience and operational convenience.
Patent Information
- Application Number
- CN202111647103.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-29
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2041-12-29
AI Technical Summary
The pressing switch of the existing shower faucet requires a large pressing pressure, which leads to inconvenient operation and is prone to water leakage after a long time of use.
A shower faucet is designed, which includes a faucet body and a pressing switch assembly. The switch valve stem is movably attached to the faucet body and extends into the mixing area. The switch seal can open or seal the communication port with the movement of the switch valve stem. The direction of the water pressure difference is changed, the pressing pressure is reduced, and the design of the back pressure chamber ensures the sealing state and automatic opening function.
It achieves no water leakage under sealed state, and reduces the pressure of opening the communication port, improving user experience and operation convenience.
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Figure CN116412279B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a shower faucet. Background Art
[0002] A shower faucet is a common shower water outlet device in the field of shower technology. Most existing shower faucets are internally equipped with a cold and hot switch valve core. The cold and hot switch valve core can mix the incoming water from the cold water channel and the hot water channel and then output it for use. After the cold and hot water are mixed, most of them are discharged from different water outlets of the shower faucet through one or more water distributors.
[0003] Alternatively, push switch valve cores are installed at different water outlets to separately control the on-off of the water outlet. For example, in the Chinese utility model patent application No. 201920520307.2, with the patent name of a shower faucet, the faucet body is provided with a number of mixed water outlets, and corresponding push switches are provided at the mixed water outlets. The push switches are used to control the connection or cut-off between the mixed water cavity and the mixed water outlets. The push switch includes a push switch valve core, a push decorative cover, and a decorative ring; the decorative ring and the push decorative cover are embedded on the push switch valve core. When working, press the push cover composed of the decorative ring and the push decorative cover, and the push switch valve core moves in the direction away from the mixed water outlet, and the mixed water cavity is connected to the mixed water outlet. When the push cover composed of the decorative ring and the push decorative cover is pressed again, the push switch valve core moves in the direction of the mixed water outlet, and the push switch valve core abuts against the opening of the mixed water outlet, so that the mixed water cavity is cut off from the mixed water outlet. Preferably, the push switch valve core adopts a light-press magnetic switch valve core, and the push switch valve core is a magnetic pressing structure, so that the product can be easily operated under different pressures.
[0004] However, for this kind of push switch, a relatively large pressing force is required to achieve the switching action, resulting in inconvenient pressing and poor user experience. Moreover, when used for a long time, water leakage is likely to occur. Summary of the Invention
[0005] The present invention provides a shower faucet, which overcomes the deficiencies of the background art. The technical solution adopted by the present invention to solve its technical problems is:
[0006] A shower faucet, which includes a faucet body and a push switch assembly. The faucet body is provided with a mixing area and a water outlet area. The water outlet area is communicated with the mixing area through a communication port. The push switch assembly includes a switch valve stem and a switch seal fixed on the switch valve stem. The switch valve stem is movably installed on the faucet body and extends into the mixing area. The switch seal can open or seal the communication port as the switch valve stem moves.
[0007] When the switch seal seals the communication port, the direction of the water pressure difference acting on the switch valve stem is towards the water outlet area to ensure that the switch seal remains in the sealed state;
[0008] During the process of the switch seal opening the communication port, the direction of the water pressure difference acting on the switch valve stem is towards the mixing area to reduce the pressing force.
[0009] In a preferred embodiment: a first back pressure chamber is provided in the mixing area, a second back pressure chamber is provided in the water outlet area, the switch valve stem sequentially passes through the first back pressure chamber and the communication port and then extends into the second back pressure chamber. The switch valve stem has a first pressure receiving surface facing the first back pressure chamber and a second pressure receiving surface facing the second back pressure chamber. When the switch seal seals the communication port, the area of the first pressure receiving surface is larger than that of the second pressure receiving surface. During the process of the switch seal opening the communication port, the area of the second pressure receiving surface is larger than that of the first pressure receiving surface.
[0010] In a preferred embodiment: the switch valve stem is provided with a first pressure receiving block and a second pressure receiving block, and an installation groove for installing the switch seal is formed between the first pressure receiving block and the second pressure receiving block. The side surface of the first pressure receiving block away from the installation groove is the first pressure receiving surface. A first partial pressure receiving surface is provided on the side surface of the first pressure receiving block close to the installation groove. A second partial pressure receiving surface is provided on the side of the second pressure receiving block away from the installation groove. And the area of the first pressure receiving surface is larger than that of the first partial pressure receiving surface, and the sum of the areas of the first partial pressure receiving surface and the second partial pressure receiving surface is larger than the area of the first pressure receiving surface.
[0011] In a preferred embodiment: when the switch seal seals the communication port, the second pressure receiving block extends from the mixing area into the second back pressure chamber and is isolated from the mixing area, the second partial pressure receiving surface is not pressurized, and the first partial pressure receiving surface serves as the second pressure receiving surface; during the process of the switch seal opening the communication port, both the first pressure receiving block and the second pressure receiving block are located in the mixing area, the first partial pressure receiving surface and the second partial pressure receiving surface are pressurized simultaneously, and the sum of the first partial pressure receiving surface and the second partial pressure receiving surface serves as the second pressure receiving surface.
[0012] In a preferred embodiment: the area of the first pressure receiving surface does not exceed 2 times the area of the first partial pressure receiving surface.
[0013] In a preferred embodiment: the sum of the first partial pressure receiving surface and the second partial pressure receiving surface does not exceed 2 times the area of the first pressure receiving surface.
[0014] In a preferred embodiment: an opening is provided on the side of the first back pressure chamber facing the communication port, the first pressure receiving surface faces the opening of the first back pressure chamber, and a through hole communicating the first back pressure chamber with the mixing area is provided on the wall of the first back pressure chamber; both the first partial pressure receiving surface and the second partial pressure receiving surface face the communication port.
[0015] In a preferred embodiment: the push switch assembly also includes a switch elastic member, which is clamped between the switch valve stem and the wall of the first back pressure chamber. When water does not enter the mixing zone, the switch elastic member presses against the switch valve stem to drive the switch sealing member to seal the connecting port.
[0016] In a preferred embodiment: the push switch assembly further comprises a seesaw button, which is swingably mounted on the faucet body and transmission-connected to the switch valve stem.
[0017] In a preferred embodiment, there are a plurality of water outlet areas, and the number of the push switch assembly groups is the same as the number of the water outlet areas and corresponds one to one.
[0018] In a preferred embodiment: the faucet body is further provided with a cold water inlet area and a hot water inlet area both connected to the mixing area, and is further provided with a temperature control valve core, which is installed in the mixing area.
[0019] Compared with the background technology, this technical solution has the following advantages:
[0020] 1. When the switch seal seals the connection port, the water pressure difference direction of the switch valve stem is toward the water outlet area to ensure that the switch seal remains in a sealed state; when the switch seal opens the connection port, the water pressure difference direction of the switch valve stem is toward the mixing area to reduce the pressing force. Therefore, when the switch seal seals the connection port, the switch seal can always remain in a sealed state, and no matter how long it is used, there will be no water leakage; when the switch seal opens the connection port, the switch valve stem is affected by the water pressure difference and is subjected to a force to leave the connection port. At this time, you only need to apply force by hand to move the switch seal away from the connection port, and the switch valve stem can automatically move away from the connection port to reduce the opening force, which is convenient to press and provides a good user experience.
[0021] 2. The first back pressure chamber can store water pressure. Whether in the open state or the closed state, the water pressure stored in the first back pressure chamber can continuously apply water pressure to the first pressure surface. The second back pressure chamber is set to apply water pressure to the second pressure surface only in the open state. In the closed state, the second back pressure chamber has no water pressure, and the second pressure surface is not subject to water pressure. Therefore, the pressure area of the second pressure surface is different in the open and closed states. This structural design is ingenious, simple, and low-cost, and can be achieved by only setting a cavity in the faucet body.
[0022] 3. The area of the first pressure-bearing surface is no more than twice the area of the first sub-pressure-bearing surface, that is, in the closed state, the water pressure difference on the switch valve stem is small, and no large external force is required to overcome the effect of the water pressure difference during the process of opening the connecting port, and the operability is good.
[0023] 4. The sum of the first partial pressure-receiving surface and the second partial pressure-receiving surface does not exceed twice the area of the first pressure-receiving surface. That is, in the open state, the water pressure difference acting on the switch valve stem is small, and a large external force is not required to overcome the water pressure difference during the process of closing the communication port, so the operability is good.
[0024] 5. When the mixing area is not filled with water, the switch elastic member abuts against the switch valve stem to drive the switch seal to seal the communication port, avoiding water leakage when water suddenly enters the mixing area.
[0025] 6. The seesaw button is swingably mounted on the faucet body and is drivingly connected to the switch valve stem, which not only has good operability but also is more labor-saving. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The present invention will be further described below with reference to the drawings and embodiments.
[0027] Figure 1 FIG. shows a perspective exploded view of a shower faucet according to a preferred embodiment.
[0028] Figure 2 FIG. shows a transverse sectional view of a shower faucet according to a preferred embodiment.
[0029] Figure 3 FIG. shows a longitudinal sectional view of a shower faucet according to a preferred embodiment.
[0030] Figure 4 FIG. shows a sectional view of a shower faucet according to a preferred embodiment at the pressing switch assembly, at this time the communication port is in a closed state.
[0031] Figure 5 FIG. shows a front view of a switch valve stem according to a preferred embodiment.
[0032] Figure 5-1 FIG. shows an A-A sectional view of a switch valve stem according to a preferred embodiment.
[0033] Figure 5-2 FIG. shows a B-B sectional view of a switch valve stem according to a preferred embodiment.
[0034] Figure 6 FIG. shows a sectional view of a shower faucet according to a preferred embodiment at the pressing switch assembly, at this time the communication port is in an open state.
[0035] Figure 7 FIG. shows a front view of a switch valve stem according to a preferred embodiment.
[0036] Figure 7-1 FIG. shows a schematic diagram of the equivalent area of the second pressure-receiving surface during the opening process of the communication port according to a preferred embodiment.
[0037] Figure 7-2 The B-B sectional view schematic diagram of the switch valve stem of a preferred embodiment is shown.
[0038] Figure 8 The three-dimensional schematic diagram of the switch valve stem of a preferred embodiment is shown. Detailed implementation manners
[0039] In the claims, the description and the above-mentioned drawings of the present invention, unless otherwise clearly defined, when using terms such as "first", "second" or "third", etc., are for distinguishing different objects, rather than for describing a specific order.
[0040] In the claims, the description and the above-mentioned drawings of the present invention, unless otherwise clearly defined, for orientation terms, when using terms such as "center", "lateral", "longitudinal", "horizontal", "vertical", "top", "bottom", "inner", "outer", "upper", "lower", "front", "rear", "left", "right", "clockwise", "counterclockwise", etc. to indicate the orientation or position relationship are based on the orientation and position relationship shown in the drawings, and are only for facilitating the description of the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, so it cannot be understood as limiting the specific protection scope of the present invention.
[0041] In the claims, the description and the above-mentioned drawings of the present invention, unless otherwise clearly defined, when using terms such as "fixed connection" and "fixedly connected", should be understood in a broad sense, that is, any connection method without displacement relationship and relative rotation relationship between the two, that is to say, it includes non-detachable fixed connection, detachable fixed connection, being integrated as one body and being fixedly connected through other devices or elements.
[0042] In the claims, the description and the above-mentioned drawings of the present invention, when using terms such as "comprising", "having" and their variants, are intended to mean "including but not limited to".
[0043] Please refer to Figures 1 to 8 , a preferred embodiment of a shower faucet, said shower faucet comprising a faucet body 10 and a push switch assembly.
[0044] The faucet body 10 is provided with a mixing area 11 and a water outlet area 12, and the water outlet area 12 is communicated with the mixing area 11 through a communication port 13. In this embodiment, there are two water outlet areas 12, such as a hand-held shower water outlet area and a faucet water outlet area, and the outlets of the two water outlet areas 12 are respectively located on the upper and lower sides of the faucet body 10. As Figure 1 shown, the number of groups of the push switch assembly is the same as the number of the water outlet areas 12 and they correspond one by one.
[0045] As Figure 2As shown, the faucet body 10 is further provided with a cold water inlet area 14 and a hot water inlet area 15 that are both connected to the mixing area 11, and a temperature control valve core 16 is additionally provided. The temperature control valve core 16 is installed in the mixing area 11. Specifically, the temperature control valve core 16 is fixed on the faucet body 10 through a temperature control gland 17, and the valve shaft of the temperature control valve core 16 is driven to rotate by a temperature control knob 18.
[0046] In this embodiment, a first back pressure chamber 101 is arranged in the mixing area 11, and a second back pressure chamber 102 is arranged in the water outlet area 12. Specifically, as Figure 4 shown, the second back pressure chamber 102 is located at the starting end of the water outlet area 12, and the second back pressure chamber 102 is connected to the mixing area 11 through the communication port 13. Moreover, the first back pressure chamber 101 and the second back pressure chamber 102 are respectively located on both sides of the communication port 13, and there is also a movable space 103 between the communication port 13 and the first back pressure chamber 101.
[0047] In this embodiment, an opening 104 is arranged on one side of the first back pressure chamber 101 facing the communication port 13, and a perforation 102 connecting the first back pressure chamber 101 and the mixing area 11 is arranged on the chamber wall of the first back pressure chamber 101. Specifically, as Figure 4 shown, the opening 104 is arranged on the left side of the first back pressure chamber 101, and a relief hole 106 is also arranged on the right side of the first back pressure chamber 101 for the subsequent switch valve rod to pass through.
[0048] The pressing switch assembly includes a switch valve rod 20 and a switch seal 30 fixedly connected to the switch valve rod 20. The switch valve rod 20 is movably installed on the faucet body 10 and extends into the mixing area 11. The switch seal 30 can open or seal the communication port 13 as the switch valve rod 20 moves; when the switch seal 30 seals the communication port 13, the direction of the water pressure difference received by the switch valve rod 20 is towards the water outlet area 12 to ensure that the switch seal 30 remains in the sealed state; during the process of the switch seal 30 opening the communication port 13, the direction of the water pressure difference received by the switch valve rod 20 is towards the mixing area 11 to reduce the pressing force.
[0049] In this embodiment, the switch seal 30 is located in the movable space 103. The switch valve rod 20 sequentially passes through the first back pressure chamber 101 and the communication port 13 and then extends into the second back pressure chamber 102. The switch valve rod 20 has a first pressure receiving surface 21 facing the first back pressure chamber 101 and a second pressure receiving surface facing the second back pressure chamber. When the switch seal 30 seals the communication port 13, the area of the first pressure receiving surface 21 is larger than the area of the second pressure receiving surface. During the process of the switch seal 30 opening the communication port 13, the area of the second pressure receiving surface is larger than the area of the first pressure receiving surface 21.
[0050] In this embodiment, the switch valve stem 20 is provided with a first pressure-receiving block 22 and a second pressure-receiving block 23, and an installation groove 24 for installing the switch seal 30 is formed between the first pressure-receiving block 22 and the second pressure-receiving block 23. One side of the first pressure-receiving block 22 away from the installation groove 24 is the first pressure-receiving surface 21. One side of the first pressure-receiving block 22 close to the installation groove 24 is provided with a first sub-pressure-receiving surface 25. One side of the second pressure-receiving block 23 away from the installation groove 24 is provided with a second sub-pressure-receiving surface 26. And the area of the first pressure-receiving surface 21 is larger than the area of the first sub-pressure-receiving surface 25, and the sum of the areas of the first sub-pressure-receiving surface 25 and the second sub-pressure-receiving surface 26 is larger than the area of the first pressure-receiving surface 21.
[0051] In this embodiment, when the switch seal 30 seals the communication port 13, the second pressure-receiving block 23 extends from the mixing area into the second back pressure chamber 102 and is isolated from the mixing area 11. The second sub-pressure-receiving surface 26 is not pressured, and the first sub-pressure-receiving surface 25 serves as the second pressure-receiving surface. When the switch seal 30 opens the communication port 13, both the first pressure-receiving block 22 and the second pressure-receiving block 23 are located in the mixing area 11. The first sub-pressure-receiving surface 25 and the second sub-pressure-receiving surface 26 are pressured simultaneously, and the sum of the first sub-pressure-receiving surface 25 and the second sub-pressure-receiving surface 26 serves as the second pressure-receiving surface.
[0052] Preferably, the area of the first pressure-receiving surface 21 does not exceed 2 times the area of the first sub-pressure-receiving surface 25; the sum of the first sub-pressure-receiving surface 25 and the second sub-pressure-receiving surface 26 does not exceed 2 times the area of the first pressure-receiving surface 21. That the area of the first pressure-receiving surface 21 does not exceed 2 times the area of the first sub-pressure-receiving surface 25 means that, in the closed state, the water pressure difference received by the switch valve stem 20 is small, and a large external force is not required to overcome the water pressure difference during the process of opening the communication port 13, and the operability is good. Similarly, that the sum of the first sub-pressure-receiving surface 25 and the second sub-pressure-receiving surface 26 does not exceed 2 times the area of the first pressure-receiving surface 21 means that, in the open state, the water pressure difference received by the switch valve stem 20 is small, and a large external force is not required to overcome the water pressure difference during the process of closing the communication port 13, and the operability is good.
[0053] In this embodiment, the first pressure-receiving surface 21 faces the opening of the first back pressure chamber 101, and both the first sub-pressure-receiving surface 25 and the second sub-pressure-receiving surface 26 face the communication port 13.
[0054] In this embodiment, the push switch assembly further includes a switch elastic member 40. The switch elastic member 40 is clamped between the switch valve stem 20 and the wall of the first back pressure chamber 101. When the mixing area 11 is not filled with water, the switch elastic member 40 abuts against the switch valve stem 20 to drive the switch seal 30 to seal the communication port 13.
[0055] In this embodiment, the push switch assembly further includes a seesaw button 50, which is movably connected to the faucet body 10 and is drivingly connected to the switch valve stem 20. As Figure 6 shown, an annular groove 27 is provided at the right end of the switch valve stem 20, and the annular groove 27 is snapped into the top end of the seesaw button 50. Pressing the seesaw button 50 can drive the switch valve stem 20 to move. Moreover, the push switch assembly further includes a button decorative cover 60, which is covered outside the seesaw button 50. As Figure 1 shown, two seesaw buttons 50 are connected by the same rotating shaft 51, and the two switch valve stems 20 are also arranged side by side left and right.
[0056] As Figure 4 shown, the switch seal 30 seals the communication port 13 and is in a closed state. At this time, the area of the first pressure receiving surface 21 is the Figure 5-2 shown annular region. The second pressure receiving block 23 is located in the second back pressure chamber 102, and at this time, there is no water flow in the second back pressure chamber 102. That is, the second sub-pressure receiving surface 26 of the second pressure receiving block 23 is not subjected to water pressure. The first sub-pressure receiving surface 25 is located in the mixing zone 11, and the area of the first sub-pressure receiving surface 25 is the Figure 5-1 shown annular region, which is also the area of the second pressure receiving surface. Since the area of the first pressure receiving surface 21 is larger than the area of the first sub-pressure receiving surface 25, under the same pressure, the direction of the water pressure difference acting on the switch valve stem 20 is towards the communication port 13. Through the action of this water pressure difference, the switch seal 30 can be maintained in this closed state.
[0057] As Figure 6 shown, when it is necessary to open the communication port 13 to allow water to flow out from the water outlet area 12, only need to press the lower end of the seesaw button 50, then the upper end of the seesaw button 50 tilts to the right, driving the switch valve stem 20 to move to the right. The switch seal 30 leaves the communication port 13, and the second back pressure chamber 102 is connected to the mixing zone 11, and the pressures of the two are the same. At this time, the area of the first pressure receiving surface 21 is the Figure 7-2 shown annular region. The area of the second pressure receiving surface includes the equivalent area of the projection of the second pressure receiving block 23 at C-C in Figure 7 , that is, the middle circular region in Figure 7-1 , the area of the second sub-pressure receiving surface 26; the area of the second pressure receiving surface also includes the exposed area of the first pressure receiving block 22 at A-A, that is, the outer annular region in Figure 7-1 , the area of the first sub-pressure receiving surface 25; thus, the area of the second pressure receiving surface is Figure 7-1The sum of the area of the middle circular region and the area of the outer annular region in , the area of the second pressure-receiving surface is greater than the area of the first pressure-receiving surface 21. The direction of the water pressure difference acting on the switch valve stem 20 is towards the seesaw button 50. After applying an opening force to the switch valve stem 20, the switch valve stem 20 can automatically continue to open the communication port 13 under the action of the water pressure difference, with reliable operation and good user experience.
[0058] The above is only a preferred embodiment of the present invention, and thus the scope of implementation of the present invention cannot be limited thereby. That is, equivalent changes and modifications made according to the scope of the present invention patent and the content of the specification should still fall within the scope covered by the present invention.
Claims
1. Shower faucet, characterized in that: the shower faucet includes a faucet body and a push switch assembly. The faucet body is provided with a mixing area and a water outlet area, and the water outlet area is communicated with the mixing area through a communication port. The push switch assembly includes a switch valve rod and a switch seal fixedly connected to the switch valve rod. The switch valve rod is movably installed in the faucet body and extends into the mixing area. The switch seal can open or seal the communication port as the switch valve rod moves; when the switch seal seals the communication port, the direction of the water pressure difference received by the switch valve rod is towards the water outlet area to ensure that the switch seal remains in the sealed state; during the process of the switch seal opening the communication port, the direction of the water pressure difference received by the switch valve rod is towards the mixing area to reduce the pressing force; a first back pressure chamber is arranged in the mixing area, a second back pressure chamber is arranged in the water outlet area, the switch valve rod sequentially passes through the first back pressure chamber and the communication port and then extends into the second back pressure chamber. The switch valve rod has a first pressure receiving surface facing the first back pressure chamber and a second pressure receiving surface facing the second back pressure chamber. When the switch seal seals the communication port, the area of the first pressure receiving surface is larger than that of the second pressure receiving surface. During the process of the switch seal opening the communication port, the area of the second pressure receiving surface is larger than that of the first pressure receiving surface; the switch valve rod is provided with a first pressure receiving block and a second pressure receiving block, and an installation groove for installing the switch seal is formed between the first pressure receiving block and the second pressure receiving block. The side surface of the first pressure receiving block away from the installation groove is the first pressure receiving surface, a first partial pressure receiving surface is arranged on the side surface of the first pressure receiving block close to the installation groove, a second partial pressure receiving surface is arranged on the side of the second pressure receiving block away from the installation groove, and the area of the first pressure receiving surface is larger than that of the first partial pressure receiving surface. The sum of the areas of the first partial pressure receiving surface and the second partial pressure receiving surface is larger than the area of the first pressure receiving surface; when the switch seal seals the communication port, the second pressure receiving block extends from the mixing area into the second back pressure chamber and is isolated from the mixing area, the second partial pressure receiving surface is not pressurized, and the first partial pressure receiving surface serves as the second pressure receiving surface; during the process of the switch seal opening the communication port, both the first pressure receiving block and the second pressure receiving block are located in the mixing area, the first partial pressure receiving surface and the second partial pressure receiving surface are simultaneously pressurized, and the sum of the first partial pressure receiving surface and the second partial pressure receiving surface serves as the second pressure receiving surface.
2. The shower faucet according to claim 1, characterized in that: the area of the first pressure receiving surface does not exceed 2 times the area of the first partial pressure receiving surface.
3. The shower faucet according to claim 1, characterized in that: the sum of the first partial pressure receiving surface and the second partial pressure receiving surface does not exceed 2 times the area of the first pressure receiving surface.
4. The shower faucet according to claim 1, characterized in that: an opening is arranged on one side of the first back pressure chamber facing the communication port, the first pressure receiving surface faces the opening of the first back pressure chamber, and a through hole communicating the first back pressure chamber with the mixing area is arranged on the wall of the first back pressure chamber; both the first partial pressure receiving surface and the second partial pressure receiving surface face the communication port.
5. The shower faucet according to claim 4, characterized in that: The push switch assembly also includes a switch elastic member, which is sandwiched between the switch valve stem and the wall of the first back pressure chamber. When no water enters the mixing zone, the switch elastic member presses against the switch valve stem to drive the switch sealing member to seal the connecting port.
6. The shower faucet according to any one of claims 1 to 5, Features: The push switch assembly also includes a seesaw button, which is swingably mounted on the faucet body and is transmission-connected to the switch valve stem.
7. The shower faucet according to claim 6, Features: There are a plurality of water outlet areas, and the number of the push switch assembly groups is the same as the number of the water outlet areas and corresponds one to one.
8. The shower faucet according to claim 1, Features: The faucet body is also provided with a cold water inlet area and a hot water inlet area both connected to the mixing area, and is further provided with a temperature control valve core, which is installed in the mixing area.
Citation Information
Patent Citations
Shower faucet
CN209909237U
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CN216951809U