Manual and magnetomotive integrated valve element and faucet provided with same
By designing an integrated manual and magnetic valve core, combining manual and electromagnetic control, the problem of complex existing faucet valve core structures is solved. This achieves the integration of solenoid valves and ceramic valve discs, simplifying the structure, reducing costs, and improving user convenience.
Patent Information
- Application Number
- CN202423284911.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-12-30
AI Technical Summary
Existing faucets have complex valve core structures, high manufacturing costs, and are inconvenient for end users to install and maintain, making it difficult to integrate solenoid valves and ceramic valve plates.
A manual and magnetic integrated valve core was designed. A magnetic first valve element was stacked on a second valve element of a ceramic valve plate structure, and a diaphragm was placed between the first and second valve elements to form an integrated valve core. Combining manual and electromagnetic control, the valve core realizes the functions of electromagnetic valve and ceramic flow and temperature regulation.
The simplified valve core structure reduces manufacturing costs, improves user convenience for installation and maintenance, and achieves precise water flow control and throttling effect.
Smart Images

Figure CN223648616U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the sanitary ware industry, and in particular to a manual and magnetic integrated valve core and a faucet equipped with the valve core. Background Technology
[0002] With the rapid advancement of technology, people naturally desire more powerful faucets. Most existing faucets use ceramic discs to regulate water flow and temperature. When touch, sensor, or remote control are needed to control water flow or operation, a solenoid valve is required. However, existing faucets with solenoid valves are complex, costly to manufacture, and inconvenient for end-users to install and maintain. Utility Model Content
[0003] This invention provides a valve core that integrates manual and magnetic operation, which can effectively solve the above problems.
[0004] This utility model is implemented as follows:
[0005] A manual and magnetic integrated valve core, comprising:
[0006] shell;
[0007] It has at least two inlets and one outlet;
[0008] A first valve element is disposed within the housing;
[0009] The second valve is stacked and connected in series with the first valve, and the second valve is in communication with the inlet and the outlet.
[0010] A third valve component, wherein the third valve component is arranged in parallel with the first valve component and is stacked and connected in series with the second valve component; and
[0011] A diaphragm, wherein the diaphragm is connected in series with the second valve and is selectively connected to the first valve or the third valve;
[0012] When the first valve is opened, the first valve is in communication with the second valve; when the third accessory is operated to close the first valve, the second valve is in communication with the third valve.
[0013] As a further improvement, the second valve is connected to the base of the first valve, and the diaphragm is disposed on the base. When the first valve is opened, water flows from the inlet to the second valve, through the gap between the diaphragm and the base, and to the outlet. When the third valve is opened to close the first valve, water flows from the inlet to the second valve, through the gap between the diaphragm and the base, and to the outlet.
[0014] As a further improvement, the third valve and the first valve form a combined structure, the second valve having a moving valve plate and a stationary valve plate, the combined structure connecting the moving valve plate to control the relative rotation of the moving valve plate and the stationary valve plate.
[0015] As a further improvement, a water-passing component is also included, the static valve plate is connected to the water-passing component, the water inlet and the water outlet are provided on the water-passing component, and the water inlet and the water outlet are respectively connected to the water inlet and outlet holes on the static valve plate.
[0016] As a further improvement, the first valve has a body, the base, and a valve housing. The body is provided with a solenoid structure of the first valve and the third valve. The valve housing covers the combined structure formed by the solenoid structure and the third valve. The diaphragm is disposed between the body and the base. The solenoid structure or the three valves are selected to drive the diaphragm and the base to create a gap and communicate with the second valve.
[0017] As a further improvement, the surface of the main body is provided with a first placement hole and a second placement hole, and the surface of the main body is also provided with a first pressure relief channel corresponding to the first placement hole and a second pressure relief channel corresponding to the second placement hole, respectively. The solenoid valve structure is connected to the first placement hole and communicates with the first pressure relief channel, and the third valve is connected to the second placement hole and communicates with the second pressure relief channel.
[0018] As a further improvement, the main body is also provided with a first bracket corresponding to the first placement hole and a second bracket corresponding to the second placement hole. The first bracket fixes the solenoid valve structure, and the second bracket fixes the third valve component.
[0019] As a further improvement, the third valve has a button assembly, a sealing structure, and an elastic structure disposed between the button assembly and the sealing structure. The button assembly is operated to cause the sealing structure to selectively block or open the second pressure relief channel, and the elastic structure drives the button assembly to operate.
[0020] As a further improvement, the solenoid valve structure is electrically connected.
[0021] A faucet equipped with the aforementioned manual and magnetic integrated valve core includes a main body, at least two inlet pipes and one outlet pipe, a handle and a press cover. The manual and magnetic integrated valve core is disposed within the main body. The inlet pipes are connected to the inlet, the outlet pipe is connected to the outlet, the handle is inserted and fixed to the combined structure, and the press cover abuts against the third valve component.
[0022] The beneficial effects of this utility model are as follows: By stacking the magnetically driven first valve element on the ceramic valve plate structure of the second valve element, and placing a diaphragm between the first and second valve elements, an integrated valve core is formed. This allows for the use of only one valve core to achieve both solenoid valve and ceramic flow and temperature regulation functions. By placing a manually operated third valve element in parallel with the first valve element on the second valve element of the ceramic valve plate structure, it can be ensured that when closing the third valve element affects its use, pressure can be released by manually pressing the third valve element to allow water flow through the diaphragm into the first valve element, enabling the valve core to function normally. Alternatively, pressing the third valve element will close the first valve element, opening the gap between the second valve element and the diaphragm. Whether controlled by the solenoid valve of the first valve element or manually by the third valve element, water flow must pass through the diaphragm, ensuring that the water flow in the integrated valve core is limited and precisely controlled, achieving a throttling effect. Its structure is simple, easy to manufacture, optimizes faucet manufacturing costs, and facilitates installation and maintenance for end users. Attached Figure Description
[0023] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained from these drawings without creative effort.
[0024] Figure 1 This is a structural flowchart of an embodiment of the present utility model.
[0025] Figure 2 This is an isometric view of the structure of an embodiment of this utility model.
[0026] Figure 3 This is a structural cross-sectional view of an embodiment of the present utility model.
[0027] Figure 4 This is an exploded view of the structure of an embodiment of this utility model.
[0028] Figure 5 This is an exploded view of the structure of the first valve component according to an embodiment of the present utility model.
[0029] Figure 6This is an exploded view of the structure of the third valve component in an embodiment of this utility model.
[0030] Figure 7 This is a schematic diagram of water flow and pressure relief of the first valve component according to an embodiment of the present invention.
[0031] Figure 8 This is a schematic diagram of water flow and pressure relief of the third valve component according to an embodiment of the present invention.
[0032] Figure 9 This is an isometric view of the base of an embodiment of this utility model.
[0033] Figure 10 This is the structural isometric view of the body of the embodiment of this utility model. Figure 1 .
[0034] Figure 11 This is the structural isometric view of the body of the embodiment of this utility model. Figure 2 .
[0035] Figure 12 This is an isometric view of the diaphragm structure according to an embodiment of the present invention.
[0036] Figure 13 This is an isometric view of the valve housing according to an embodiment of the present invention.
[0037] Figure 14 This is a structural diagram of an embodiment of the present invention applied to a faucet.
[0038] Figure 15 This is an exploded view of the structure of a faucet according to an embodiment of this utility model.
[0039] In the picture:
[0040] 1. Outer shell;
[0041] 2. First valve component; 21. Valve housing; 211. Cavity; 212. First through hole; 213. Second through hole; 214. Fixing groove; 22. Solenoid valve structure;
[0042] 23. Third valve component; 231. Sealing block; 232. Moving component; 233. First magnetic block; 234. Moving shell; 2340. Second elastic component; 235. Shell; 2350. Third elastic component; 236. Second magnetic block; 237. Turntable; 2370. Fourth elastic component; 238. Button; 239. Button body;
[0043] 24. Body; 241. Second mounting hole; 242. Second mounting part; 243. First placement hole; 2430. First bracket; 244. Second placement hole; 2440. Second bracket; 245. First pressure relief channel; 246. Third pressure relief channel; 247. Second pressure relief channel; 248. Fourth pressure relief channel;
[0044] 25. First elastic element; 26. Top plate; 27. Diaphragm; 271. Mounting position; 272. Top hole; 273. First pressure relief hole;
[0045] 28. Base; 281. Second water passage hole; 282. Second water flow hole; 283. Second positioning block; 284. Cavity; 285. First mounting hole; 286. First mounting part; 287. Fixing block;
[0046] 3. Second valve component; 31. Stationary valve plate; 311. Water inlet hole; 312. Water outlet hole; 313. First positioning groove; 32. Moving valve plate; 321. First water passage hole; 322. First water through hole; 323. Second positioning groove;
[0047] 4. Fourth valve component; 51. First sealing gasket; 52. Second sealing gasket;
[0048] 6. Water passage component; 61. Water inlet; 62. Water outlet; 63. First sealing groove; 64. First positioning block;
[0049] 7. Press-down cap; 8. Handle; 9. Main body. Detailed Implementation
[0050] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this utility model, not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without creative effort are within the scope of protection of this utility model. Therefore, the following detailed description of the embodiments of this utility model provided in the accompanying drawings is not intended to limit the scope of the claimed utility model, but merely represents selected embodiments of this utility model. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without creative effort are within the scope of protection of this utility model.
[0051] In the description of this utility model, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0052] Reference Figures 1-4As shown, a manual and magnetic integrated valve core includes a housing 1, a first valve element 2 and a second valve element 3 disposed within the housing 1, and a water-passing element 6. The first valve element 2 and the second valve element 3 are stacked and disposed within the housing 1, and the water-passing element 6 is disposed outside the housing 1 and is fitted against the second valve element 3. The first valve element 2 and the second valve element 3 are connected in series. When the first valve element 2 is electrically connected, the first valve element 2 is opened to communicate with the second valve element 3. A third valve 23 is provided on the first valve 2. The third valve 23 is arranged in parallel with the first valve 2 and overlapped and connected in series with the second valve 3. When the first valve 2 is open, the first valve 2 and the second valve 3 are in communication. When the first valve 2 is closed, the first valve 2 is closed and cannot be in communication with the second valve 3. Pressing the third valve 23 connects it to the second valve 3. Alternatively, when the third valve 23 is operated to drive the first valve 2 to close, the second valve 3 is in communication with the third valve 23.
[0053] refer to Figure 4 As shown, the water-passing component 6 is provided with at least two inlets 61 and one outlet 62, and a fourth valve 4 is provided on each inlet 61. In this embodiment, the water-passing component 6 is provided with two inlets 61 and one outlet 62, and the fourth valve 4 is a check valve, which prevents water from flowing back in the opposite direction. A first sealing groove 63 is recessed on the surface of the water-passing component 6 near the second valve 3. The first sealing groove 63 is arranged around the inlets 61 and the outlet 62, and a first sealing gasket 51 is provided on the first sealing groove 63. The second valve 3 is fitted into the water-passing component 6, and the first sealing gasket 51 provides a sealing fit between the two. A plurality of first positioning blocks 64 are also protruding on the surface of the water-passing component 6 near the second valve 3. The second valve 3 is provided with positioning grooves corresponding to the first positioning blocks 64. The first positioning blocks 64 are disposed in the positioning grooves, and the second valve 3 is fixed to the water-passing component 6.
[0054] Further, refer to Figure 4As shown, the second valve component 3 includes a movable valve plate 32 and a stationary valve plate 31, with the movable valve plate 32 rotatably fitted against the stationary valve plate 31. The third valve component 23 and the first valve component 2 form a combined structure, which connects the movable valve plate 32 to control the relative rotation of the movable valve plate 32 and the stationary valve plate 31. In this embodiment, the stationary valve plate 31 is disposed on the water-passing component 6, and the movable valve plate 32 is disposed on the first valve component 2. The stationary valve plate 31 is provided with an inlet hole 311 and an outlet hole 312 corresponding to the inlet 61 and the outlet 62, respectively. The moving valve plate 32 is provided with a first through hole 321 and a first through hole 322. The first through hole 321 and the first through hole 322 both penetrate the upper and lower surfaces of the moving valve plate 32. The first through hole 321 may selectively correspond to one or more inlet holes 311, and the first through hole 322 is provided corresponding to the outlet hole 312. A second sealing groove (not shown) is recessed on the surface of the first valve member 2 near the second valve member 3. A second sealing gasket 5252 is provided in the second sealing groove. The second sealing gasket 52 seals the space between the first through hole 321 and the first through hole 322, preventing water from flowing through the gap between the first valve member 2 and the second valve member 3 into the first through hole 321 and the first through hole 322. In this embodiment, the stationary valve plate 31 is provided with a plurality of first positioning grooves 313 corresponding to the first positioning block 64, so that the stationary valve plate 31 is fixed to the water passage component 6; the moving valve plate 32 is provided with a plurality of second positioning grooves 323, and a plurality of second positioning blocks 283 are provided on the surface of the first valve component 2 near the second valve component 3, the second positioning blocks 283 corresponding to the second positioning grooves 323, so that the moving valve plate 32 is fixed to the first valve component 2. In this embodiment, both the stationary valve plate 31 and the moving valve plate 32 are made of ceramic material.
[0055] Further, refer to Figure 5 As shown, the first valve 2 includes a base 28, a body 24 disposed above the base 28, a diaphragm 27 disposed between the body 24 and the base 28, a top plate 26 disposed on the diaphragm 27, a solenoid valve structure 22 and a third valve 23 disposed at the end of the body 24 away from the base 28, and a valve housing 21 covering the end of the body 24 away from the base 28. The base 28 is provided with a second water inlet 281 and a second water outlet 282 corresponding to the first water inlet 321 and the first water outlet 322. The base 28 is connected to the second valve 3. (Refer to...) Figure 7As shown, when the solenoid valve structure 22 is open, water flows from the first water passage 321 through the second water passage 281, pushing open the diaphragm 27 and flowing sequentially to the second water passage 282 and the first water passage 322. Simultaneously, water pressure is released to one end of the body 24 through the pressure relief hole of the solenoid valve structure 22, and the third valve component 23 is blocked. If the pressure relief hole of the solenoid valve structure 22 is not open, pressure accumulates at the diaphragm 27, preventing water from pushing open the diaphragm 27 and passing through. (Refer to...) Figure 8 As shown, when the solenoid valve structure 22 is closed, the pressure relief hole of the solenoid valve structure 22 cannot be opened and pressure cannot be released. Pressing the third valve member 23 opens the pressure relief hole of the third valve member 23, and the pressure at the diaphragm 27 is released from the pressure relief hole of the third valve member 23. The water flows from the first water passage 321 through the second water passage 281 to push open the diaphragm 27 and flows sequentially to the second water passage 282 and the first water passage 322 before flowing out for use.
[0056] Specifically, refer to Figure 9 As shown, the base 28 has a cavity 284 on the side facing the body 24. A second water passage hole 282 is formed through the center of the cavity 284. A plurality of second water passage holes 281 are spaced around the second water passage hole 282. Simultaneously, a first mounting portion 286 with a first mounting hole 285 protrudes from the center of the cavity 284. (Reference) Figure 10 As shown, a second mounting portion 242 with a second mounting hole 241 is provided on the surface of the body 24 facing the base 28. (Refer to...) Figure 12 As shown, the diaphragm 27 has a mounting position 271 around its periphery, a top hole 272 in its center, and a first pressure relief hole 273 on its side. The top plate 26 has a second pressure relief hole (not shown) corresponding to the first pressure relief hole 273. The base 28 and the body 24 are fitted together, with the first mounting portion 286 and the second mounting portion 242 corresponding to each other. The mounting position 271 is accommodated within the first mounting portion 286 and the second mounting portion 242. Simultaneously, the top plate 26 is engaged with the top hole 272, with one end placed within the second water passage hole 282, and the other end having a first elastic element 25 disposed between the top plate 26 and the second mounting hole 241. When water flows through the diaphragm 27 and passes through the second water passage 282, the first elastic element 25 is compressed. When no water flows through, the elastic force of the first elastic element 25 drives the top plate 26 to move the diaphragm 27 to block the second water passage 282. Specifically, the diaphragm 27 is made of rubber.
[0057] Specifically, refer to Figure 11As shown, the surface of the body 24 away from the base 28 has a first placement hole 243 and a second placement hole 244. The solenoid valve structure 22 is disposed on the first placement hole 243, and the third valve component 23 is disposed on the second placement hole 244. In this embodiment, a first pressure relief channel 245 is formed between the first placement hole 243 and the second mounting hole 241, and a third pressure relief channel 246 is formed on the side wall of the body 24 from the first placement hole 243. The first pressure relief channel 245 and the third pressure relief channel 246 can be pressure-relieving by opening the solenoid valve structure 22. A second pressure relief channel 247 is formed between the second placement hole 244 and the second mounting hole 241, and a fourth pressure relief channel 248 is formed on the bottom surface of the body 24 from the second placement hole 244. The second pressure relief channel 247 and the fourth pressure relief channel 248 can be pressure-relieving by opening the third valve component 23. Furthermore, the third pressure relief channel 246 and the fourth pressure relief channel 248 cannot communicate with the second mounting hole 241. In this embodiment, a first bracket 2430 protrudes from the surface of the first placement hole 243 away from the base 28, and the solenoid valve structure 22 is fixed on the first bracket 2430; a second bracket 2440 protrudes from the surface of the second placement hole 244 away from the base 28, and the third valve component 23 is fixed on the second bracket 2440.
[0058] Specifically, refer to Figure 13 As shown, the valve housing 21 has a cavity 211, which covers the solenoid valve structure 22 and the third valve component 23, and houses the solenoid valve structure 22 and the third valve component 23 within the cavity 211. A first through hole 212 is formed on the side wall of the cavity 211, and a second through hole 213 is formed on the surface of the cavity 211. The button of the third valve component 23 passes through the second through hole 213 for easy pressing operation. The side wall of the base 28 is provided with multiple fixing blocks 287, and the side wall of the valve housing 21 is provided with multiple fixing grooves 214 corresponding to the fixing blocks 287. The valve housing 21 is fixedly connected to the base 28 by the fixing blocks 287 engaging with the fixing grooves 214.
[0059] Furthermore, the third valve component 23 has a button assembly, a sealing structure, and an elastic structure disposed between the button assembly and the sealing structure. Operating the button assembly 23 causes the sealing structure to selectively block or allow passage through the second pressure relief channel 247, and the elastic structure drives the button assembly to operate. In this embodiment, refer to... Figure 6As shown, the third valve component 23 includes a housing 235, a movable shell 234 movably disposed within the housing 235, a second elastic member 2340, a movable member 232 disposed on the movable shell 234, a sealing block 231 fixed on the movable member 232, a first magnetic block 233 disposed within the movable shell 234 and abutting against the movable member 232, a third elastic member 2350 sleeved outside the housing 235, and a button assembly abutting against one end of the third elastic member 2350. The housing 235 is inserted into the second placement hole 244. When the button assembly is pressed, the third elastic member 2350 is compressed between the button assembly and the housing 235 and pushes the housing 235 against the surface of the second placement hole 244. The movable shell 234 drives the movable member 232 and the sealing block 231 to move. The sealing block 231 seals the fourth pressure relief channel 248.
[0060] Specifically, refer to Figure 6 As shown, the button assembly includes a button body 239, a turntable 237 movably disposed within the button body 239, a second magnetic block 236 and a fourth elastic element 2370 disposed within the turntable 237, and a button 238 disposed at one end of the turntable 237 away from the second magnetic block 236. The third elastic element 2350 is disposed between the housing 235 and the turntable 237 to drive the turntable 237 to move. When button 238 is manually pressed, the third valve 23 is opened, the sealing block 231 moves away from the surface of the fourth pressure relief channel 248, pushes the movable part 232 upward, and causes the movable shell 234 to compress the second elastic element 2340. Simultaneously, the shell 235 moves upward under the action of the second elastic element 2340. At this time, the shell 235 drives the third elastic element 2350, which in turn drives the turntable 237 to move, thus resetting button 238. The second magnetic block 236 simultaneously pushes the fourth elastic element 2370, preparing it for the next pressing action. In this embodiment, the button body 239 can be configured as a detection switch. The detection switch is used to detect whether it is manually pressed. When manually pressed, the third valve 23 is closed. The detection switch can be a limit switch, a Hall sensor, etc. In this invention, the first elastic element 25, the second elastic element 2340, the third elastic element 2350, and the fourth elastic element 2370 are all springs, with different specifications of springs used depending on the corresponding structure. Sealing elements are provided at adjacent parts where sealing is required; this is a conventional structure and will not be described in detail here.
[0061] Reference Figure 14 and Figure 15As shown, the manual and magnetic integrated valve core is installed inside the faucet. The faucet has a main body 9, two inlet pipes and one outlet pipe, a handle 8 and a press cover 7. The valve core is located in the main body 9. The two inlet pipes are connected to the inlet 61, and the outlet pipe is connected to the outlet 62. The handle 8 is inserted into the first through hole 212. By operating the handle 8, the first valve component 2 is driven to rotate the moving valve plate 32 relative to the stationary valve plate 31, thereby adjusting the water flow rate and water temperature. A hole is formed on the surface of the handle 8. The press cover 7 is located in the hole and abuts against the button 238. When the press cover 7 is pressed, it drives the button 238 to control the third valve component 23.
[0062] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A valve core that integrates manual and magnetic operation, characterized in that, include: shell; It has at least two inlets and one outlet; A first valve element is disposed within the housing; The second valve is stacked and connected in series with the first valve, and the second valve is in communication with the inlet and the outlet. A third valve component, wherein the third valve component is arranged in parallel with the first valve component and is stacked and connected in series with the second valve component; and A diaphragm, wherein the diaphragm is connected in series with the second valve and is selectively connected to the first valve or the third valve; When the first valve is opened, the first valve is in communication with the second valve; when the third valve is operated to close the first valve, the second valve is in communication with the third valve.
2. The manual and magnetic integrated valve core according to claim 1, characterized in that, The second valve is connected to the base of the first valve, and the diaphragm is disposed on the base. When the first valve is opened, water flows from the inlet to the second valve and then through the gap between the diaphragm and the base to the outlet. When the third valve is opened, causing the first valve to close, water flows from the inlet to the second valve, through the gap between the diaphragm and the base, and to the outlet.
3. The manual and magnetic integrated valve core according to claim 2, characterized in that, The third valve and the first valve form a combined structure. The second valve has a moving valve plate and a stationary valve plate. The combined structure connects the moving valve plate to control the relative rotation of the moving valve plate and the stationary valve plate.
4. The manual and magnetic integrated valve core according to claim 3, characterized in that, It also includes a water passage component, the static valve plate is connected to the water passage component, the water inlet and the water outlet are provided on the water passage component, and the water inlet and the water outlet are respectively connected to the water inlet and outlet holes on the static valve plate.
5. The manual and magnetic integrated valve core according to claim 3, characterized in that, The first valve has a body, a base, and a valve housing. The body is provided with a solenoid structure and a third valve. The valve housing covers the combined structure formed by the solenoid structure and the third valve. The diaphragm is disposed between the body and the base. The solenoid structure or the three valves can be used to drive the diaphragm and the base to create a gap and communicate with the second valve.
6. The manual and magnetic integrated valve core according to claim 5, characterized in that, The surface of the main body is provided with a first placement hole and a second placement hole, and the surface of the main body is also provided with a first pressure relief channel corresponding to the first placement hole and a second pressure relief channel corresponding to the second placement hole. The solenoid valve structure is connected to the first placement hole and communicates with the first pressure relief channel, and the third valve is connected to the second placement hole and communicates with the second pressure relief channel.
7. The manual and magnetic integrated valve core according to claim 6, characterized in that, The main body is also provided with a first bracket corresponding to the first placement hole and a second bracket corresponding to the second placement hole. The first bracket fixes the solenoid valve structure and the second bracket fixes the third valve component.
8. The manual and magnetic integrated valve core according to claim 6, characterized in that, The third valve has a button assembly, a sealing structure, and an elastic structure disposed between the button assembly and the sealing structure. The button assembly is operated to cause the sealing structure to selectively block or open the second pressure relief channel, and the elastic structure drives the button assembly to operate.
9. The manual and magnetic integrated valve core according to claim 5, characterized in that, The solenoid valve structure is electrically connected.
10. A faucet equipped with an integrated manual and magnetic valve core as described in any one of claims 3 to 9, characterized in that, It includes a main body, at least two inlet pipes and one outlet pipe, a handle and a press cover. The manual and magnetic integrated valve core is disposed in the main body. The inlet pipe is connected to the inlet, the outlet pipe is connected to the outlet, the handle is inserted and fixed to the combined structure, and the press cover abuts against the third valve component.