Manual and magnetomotive integrated valve element and faucet provided with same

By designing an integrated manual and magnetic valve core, combining ceramic valve discs and solenoid valve structures, and using a diaphragm to control water flow, the problem of complex structure and inconvenient maintenance of existing faucets is solved, achieving the effect of simple manufacturing and convenient installation.

CN223708639UActive Publication Date: 2025-12-23XIAMEN OLT SCI & TECH ELECTRONICS DEVING
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Patent Information

Application Number
CN202423284944.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2025-12-23
Estimated Expiration
2034-12-30

AI Technical Summary

Technical Problem

Existing faucets have complex structures, high costs associated with configuring solenoid valves, and are inconvenient for end users to install and maintain.

Method used

Design a valve core that integrates manual and magnetic operation, combining ceramic valve discs and solenoid valve structure. Manual and electromagnetic control are achieved through an actuation structure, and water flow is controlled by a diaphragm, simplifying the valve core structure.

Benefits of technology

It combines the functions of solenoid valve and ceramic flow and temperature regulation, with a simple structure, easy manufacturing, reduced manufacturing costs, and improved ease of installation and maintenance for users.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a manual and magnetomotive integrated valve core and a faucet equipped with the valve core, which comprise a shell, at least two water inlets, a water outlet, and a first valve piece, a second valve piece and an actuating structure which are arranged in the shell, the first valve piece and the second valve piece are overlapped and connected in series, and the actuating structure is arranged in the shell. The first valve piece and the actuating structure are arranged in an overlapped mode. When the first valve piece is opened, the first valve piece is communicated with the second valve piece; when the first valve piece is closed, the actuating structure drives the first valve piece to be opened, and the first valve piece is communicated with the second valve piece. The first valve piece or the actuating structure is selectively controlled to be communicated with the second valve piece, even if the valve is closed, it can be ensured that the actuating structure is pressed to be communicated with the second valve piece through the diaphragm, and it is ensured that the valve element can be normally used; the faucet is simple in structure and easy to manufacture, the manufacturing cost of the faucet is optimized, and installation and maintenance of a terminal user are convenient and fast.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the field of bathroom, especially a hand and magnetic motion integrated valve core and faucet installed with the valve core. BACKGROUND

[0002] Most of the valve cores of the existing faucets are ceramic valve plate structures, which are used to adjust the water outlet size and water outlet temperature. When it is required to control the water flow or switch by touch, induction or remote control, an electromagnetic valve needs to be configured. The existing faucet structure with the electromagnetic valve is very complex, the manufacturing cost is high, and the terminal user is inconvenient to install and maintain. SUMMARY

[0003] The utility model provides a hand and magnetic motion integrated valve core, can effectively solve the above -mentioned problem.

[0004] The utility model is realized as follows:

[0005] A hand and magnetic motion integrated valve core, comprising:

[0006] A shell;

[0007] At least two water inlet ports and one water outlet port;

[0008] A first valve piece, which is arranged in the shell;

[0009] A second valve piece, which is overlapped and connected in series with the first valve piece, and is in communication with the water inlet port and the water outlet port;

[0010] An actuating structure, which is arranged in the first valve piece; and

[0011] A diaphragm, which is connected in series with the second valve piece and is opened and closed by the first valve piece;

[0012] When the first valve piece is opened, the first valve piece is in communication with the second valve piece; when the first valve piece is closed, the actuating structure drives the first valve piece to open, and the first valve piece is in communication with the second valve piece.

[0013] As a further improvement, the second valve is connected to a base of the first valve, the diaphragm is arranged on the base, the shaft of the actuating structure is arranged in the same axial direction as the first valve and the base, and the shaft of the second valve, the first valve is opened or the actuating structure drives the first valve to open to pass through the gap between the diaphragm and the base, when the first valve is opened, the water flow from the water inlet to the second valve through the diaphragm to the water outlet, when the first valve is closed, the actuating structure drives the first valve to open, the water flow from the water inlet to the second valve through the diaphragm to the water outlet.

[0014] As a further improvement, the first valve has a body, a magnetic valve structure, and an actuated structure, the diaphragm is arranged between the body and the base, the magnetic valve structure is arranged outside the body, the actuated structure is arranged inside the body, the actuating structure is arranged at the end of the actuated structure away from the diaphragm, and the magnetic valve structure or the actuating structure is selected to drive the actuated structure to drive the diaphragm to pass through the gap between the diaphragm and the base and the second valve.

[0015] As a further improvement, the first valve has a base, a body, a magnetic valve structure, and an actuated structure, the diaphragm is arranged between the body and the base, the magnetic valve structure is arranged outside the body, the actuated structure is arranged inside the body, the actuating structure is arranged at the end of the actuated structure away from the diaphragm, and the magnetic valve structure or the actuating structure is selected to drive the actuated structure to drive the diaphragm to pass through the gap between the diaphragm and the base and the second valve.

[0016] As a further improvement, the cross section of the body is in the shape of a "T", the "T" shape structure is provided with a placing hole, the actuated structure is arranged in the placing hole, the magnetic valve structure is arranged at the lower end of the "T" shape structure, and the magnetic valve structure is electrically connected to drive the actuated structure to move relative to the diaphragm.

[0017] As a further improvement, the actuated structure has a cover, a sealing member arranged in the cover, and a magnetically attractable member, when the magnetic valve structure is opened, the magnetic valve structure drives the magnetically attractable member to drive the sealing member away from the diaphragm, when the magnetic valve structure is closed, the sealing member is close to the diaphragm to block the gap between the diaphragm and the base.

[0018] As a further improvement, the actuating structure has a button assembly and a resilient structure arranged between the button assembly and the actuated structure, when the magnetic valve structure is closed, the button assembly is operated to drive the actuated structure to drive the sealing member away from the diaphragm to form a gap between the diaphragm and the base, and the resilient structure drives the button assembly to wait for the operation.

[0019] As a further improvement, the surface of the diaphragm is provided with a pressure relief hole, and the water flow passes through the gap between the base and the diaphragm, and the gas pressure is discharged from the pressure relief hole.

[0020] As a further improvement, the second valve has a dynamic valve plate and a static valve plate that are overlapped with each other, and the first valve is connected to the dynamic valve plate to control the relative rotation of the dynamic valve plate and the static valve plate.

[0021] As a further improvement, a water passing member is further included, the static valve plate is connected to the water passing member, the water inlet and the water outlet are arranged on the water passing member, and the water inlet and the water outlet are respectively communicated with the water inlet and outlet holes on the static valve plate.

[0022] A faucet provided with the manual and magnetic integrated valve core includes a main body, at least two water inlet pipes and a water outlet pipe, and a handle and a pressing cover, the manual and magnetic integrated valve core is arranged in the main body, the water inlet pipe is connected to the water inlet, the water outlet pipe is connected to the water outlet, the handle is inserted and fixed on the first valve, and the pressing cover abuts against the actuating structure.

[0023] The utility model discloses a manual and magnetic integrated valve core, which comprises a first valve, a diaphragm, a second valve and an actuating structure, the first valve is arranged on the second valve, the diaphragm is arranged between the first valve and the second valve, and the actuating structure is arranged on the first valve. BRIEF DESCRIPTION OF DRAWINGS

[0024] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the drawings used in the embodiments will be briefly introduced as follows. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be considered as a limitation to the scope, and other related drawings can be obtained by those skilled in the art without creative effort.

[0025] Figure 1 is a structural flow chart of the embodiment of the present application.

[0026] Figure 2 is an isometric view of the embodiment of the present application.

[0027] Figure 3 is a sectional view of the embodiment of the present application.

[0028] Figure 4 is an exploded view of the embodiment of the present application.

[0029] Figure 5 is an exploded view of the first valve of the embodiment of the present application.

[0030] Figure 6 is an exploded view of the actuated structure of the embodiment of the present application.

[0031] Figure 7 is an isometric view of the base of the embodiment of the present application.

[0032] Figure 8 is an isometric view of the body of the embodiment of the present application.

[0033] Figure 9 is an isometric view of the diaphragm of the embodiment of the present application.

[0034] Figure 10 is an isometric view of the valve housing of the embodiment of the present application.

[0035] Figure 11 is a structural view of the embodiment of the present application applied to a faucet.

[0036] Figure 12 is an exploded view of the embodiment of the present application applied to a faucet.

[0037] In the drawings:

[0038] 1, housing;

[0039] 2, first valve; 21, valve housing; 211, cavity; 212, first through hole; 213, second through hole; 214, fixing groove; 22, magnetic valve structure;

[0040] 23, actuating structure; 231, button body; 232, magnetic block; 233, rotating disc; 234, fourth elastic member; 235, button;

[0041] 24, body; 241, second mounting hole; 242, second mounting part; 243, placing hole;

[0042] 25, third elastic member; 26, top sheet; 27, diaphragm; 271, mounting position; 272, top hole; 273, first pressure relief hole;

[0043] 28, base; 281, second water passage; 282, second water passage; 283, second positioning block; 284, cavity; 285, first mounting hole; 286, first mounting part; 287, fixed block; 29, actuated structure; 291, sealing member; 292, lower cover body; 293, upper cover body; 294, upper magnetically attractable member; 295, lower magnetically attractable member; 296, first elastic member; 297, second elastic member;

[0044] 3, second valve member; 31, static valve plate; 311, water inlet hole; 312, water outlet hole; 313, first positioning groove; 32, dynamic valve plate; 321, first water passage; 322, first water passage; 323, second positioning groove;

[0045] 4, third valve member; 51, first sealing gasket; 52, second sealing gasket;

[0046] 6, water passage member; 61, water inlet; 62, water outlet; 63, first sealing groove; 64, first positioning block;

[0047] 7, pressing cover; 8, handle; 9, main body. DETAILED DESCRIPTION

[0048] In order to make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the technical scheme of the embodiments of the present application will be described clearly and completely below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are some embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed present application, but only represents selected embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0049] In the description of the utility model, the terms "first", "second" are only used for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can explicitly or implicitly include one or more features. In the description of the utility model, the meaning of "multiple" is two or more than two, unless otherwise specifically limited.

[0050] Referring to Figures 1-4 As shown in the figure, a manual and magnetic integrated valve core, including shell 1, first valve 2 and second valve 3 arranged in the shell 1, and a water passing piece 6, the first valve 2 and the second valve 3 are superimposed and placed in the shell 1, the water passing piece 6 is arranged outside the shell 1 and is in close contact with the second valve 3. The first valve 2 and the second valve 3 are arranged in series, the first valve 2 is opened when the first valve 2 is connected to the second valve 3. The first valve 2 is provided with an actuating structure 23, the actuating structure 23 is connected with the first valve 2 in series, when the first valve 2 is closed, the first valve 2 is closed and cannot be communicated with the second valve 3, press the actuating structure 23 to drive the first valve 2 to open to communicate with the second valve 3.

[0051] Reference Figure 4 As shown in the figure, the water passing piece 6 is provided with at least two water inlets 61 and a water outlet 62, and a third valve 4 is arranged on each water inlet 61. In this embodiment, the water passing piece 6 is provided with two water inlets 61 and a water outlet 62, and the third valve 4 is a check valve, which prevents water flow from flowing back in the opposite direction. The water passing piece 6 is provided with a first sealing groove 63 on the surface close to the second valve 3, the first sealing groove 63 is arranged around the water inlet 61 and the water outlet 62, and a first sealing pad 51 is arranged on the first sealing groove 63. The second valve 3 is arranged in close contact with the water passing piece 6, and the first sealing pad 51 seals the two. The surface of the water passing piece 6 close to the second valve 3 is also provided with a plurality of first positioning blocks 64, and the second valve 3 is provided with positioning grooves corresponding to the first positioning blocks 64, the first positioning blocks 64 are arranged in the positioning grooves, and the second valve 3 is fixed with the water passing piece 6.

[0052] Further, referring to Figure 4As shown, the second valve piece 3 comprises a static valve plate 31 and a dynamic valve plate 32 which is rotatably attached to the static valve plate 31. The first valve piece 2 is connected to the dynamic valve plate 32 to control the relative rotation between the dynamic valve plate 32 and the static valve plate 31. In this embodiment, the static valve plate 31 is arranged on the water passing piece 6, and the dynamic valve plate 32 is arranged on the first valve piece 2. The static valve plate 31 is provided with water inlet holes 311 and water outlet holes 312 corresponding to the water inlet 61 and the water outlet 62, and the dynamic valve plate 32 is provided with a first water passing hole 321 and a first water passing hole 322, both of which pass through the upper and lower surfaces of the dynamic valve plate 32. The first water passing hole 321 is selectively corresponding to one or more water inlet holes 311, and the first water passing hole 322 is corresponding to the water outlet hole 312. The first valve piece 2 is provided with a second sealing groove (not shown) on the surface close to the second valve piece 3, and a second sealing pad 52 is arranged in the second sealing groove. The second sealing pad 52 seals the gap between the first water passing hole 321 and the first water passing hole 322, so that water cannot flow through the gap between the first valve piece 2 and the second valve piece 3 to the first water passing hole 321 and the first water passing hole 322. In this embodiment, the static valve plate 31 is provided with a plurality of first positioning grooves 313 corresponding to the first positioning block 64, so that the static valve plate 31 is fixed on the water passing piece 6. The dynamic valve plate 32 is provided with a plurality of second positioning grooves 323, and the first valve piece 2 is provided with a plurality of second positioning blocks 283 on the surface close to the second valve piece 3. The second positioning blocks 283 correspond to the second positioning grooves 323, so that the dynamic valve plate 32 is fixed on the first valve piece 2. In this embodiment, the static valve plate 31 and the dynamic valve plate 32 are made of ceramic material.

[0053] Further, with reference to Figure 5 As shown, the first valve piece 2 comprises a base 28, a body 24 arranged above the base 28, a diaphragm 27 arranged between the body 24 and the base 28, a top plate 26 arranged on the diaphragm 27, a magnetic valve structure 22 and an actuating structure 23 arranged at one end of the body 24 away from the base 28, and a valve shell 21 arranged at one end of the body 24 away from the base 28. An actuating structure 29 is arranged in the body 24, and the base 28 is provided with a second water passing hole 281 and a second water passing hole 282 corresponding to the first water passing hole 321 and the first water passing hole 322. The base 28 is connected to the second valve piece 3. With reference to Figure 3As shown, when the magnetic valve structure 22 is opened, water flows from the first water passing hole 321 to the second water passing hole 281, and pushes open the diaphragm 27, and then flows to the second water passing hole 282 and the first water passing hole 322 in sequence, while the water pressure is released through the pressure release hole of the diaphragm 27 at one end of the body 24. If the magnetic valve structure 22 cannot be opened, the pressure is collected at the diaphragm 27, so that the water flow cannot push open the diaphragm 27 to pass through. When the magnetic valve structure 22 is closed, the magnetic valve structure 22 cannot be opened to release the pressure, and the actuating structure 23 is pressed to drive the actuated structure 29 to drive the diaphragm 27, the pressure at the diaphragm 27 is released from the pressure release hole of the diaphragm 27, and the water flow flows out of use from the first water passing hole 321 to the second water passing hole 281, and pushes open the diaphragm 27, and then flows to the second water passing hole 282 and the first water passing hole 322 in sequence.

[0054] Specifically, referring to Figure 7 As shown, the base 28 is provided with a cavity 284 towards one side of the body 24, a second water passing hole 282 is provided in the middle of the cavity 284, a plurality of second water passing holes 281 are arranged around the second water passing hole 282, and a first mounting portion 286 with a first mounting hole 285 is protruded from the middle of the cavity 284. Referring to Figure 8 As shown, the surface of the body 24 towards one side of the base 28 is provided with a second mounting portion 242 with a second mounting hole 241. Referring to Figure 9 As shown, the diaphragm 27 is provided with a mounting position 271 around the circumference, a top hole 272 in the middle, and a first pressure release hole 273 on the side, and the diaphragm 27 is provided with a second pressure release hole (not shown) corresponding to the first pressure release hole 273. The base 28 and the body 24 are arranged in close contact, the first mounting portion 286 and the second mounting portion 242 correspond to each other, the mounting position 271 is accommodated in the first mounting portion 286 and the second mounting portion 242, the top sheet 26 is clamped in the top hole 272, one end is accommodated in the second water passing hole 282, and the other end abuts against the actuated structure 29. When the water flow pushes open the diaphragm 27 to flow through the second water passing hole 282, the actuated structure 29 is away from the diaphragm 27, and when there is no water flow, the actuated structure 29 drives the diaphragm 27 to block the second water passing hole 282. Specifically, the diaphragm 27 is made of rubber material.

[0055] Specifically, referring to Figure 8As shown, the body 24 is in a "T" shape structure, the "T" shape structure is provided with a placing hole 243, the actuated structure 29 is arranged in the placing hole 243, the magnetic valve structure 22 is arranged at the lower end of the "T" shape structure, the magnetic valve structure 22 is electrically connected to drive the actuated structure 29 to move relative to the diaphragm 27; the actuating structure 23 is arranged at the end of the actuated structure 29 away from the body, when the magnetic valve structure 22 is closed, the actuating structure 23 can drive the actuated structure 29 to open, so that the actuated structure 29 moves relative to the diaphragm 27.

[0056] Specifically, referring to Figure 10 As shown, the valve shell 21 has a cavity 211, the valve shell 21 covers the first valve 2 and accommodates the magnetic valve structure 22 and the actuated structure 29 in the cavity 211. The side wall of the cavity 211 is provided with a first through hole 212, and the surface of the cavity 211 is provided with a second through hole 213, the button of the actuating structure 23 passes through the second through hole 213 for pressing operation. The side wall of the base 28 is provided with a plurality of fixing blocks 287, and the side wall of the valve shell 21 is provided with a plurality of fixing grooves 214 corresponding to the fixing blocks 287, the valve shell 21 is fixedly connected with the base 28 by clamping the fixing grooves 214 with the fixing blocks 287.

[0057] Further, the actuated structure 29 has a cover body, a sealing member 291 and a magnetically attractable member arranged in the cover body, when the magnetic valve structure 22 is opened, the magnetic valve structure 22 drives the magnetically attractable member to drive the sealing member 291 away from the diaphragm 27; when the magnetic valve structure 22 is closed, the sealing member 291 is close to the diaphragm 27 to block the gap between the diaphragm 27 and the base 28. In this embodiment, referring to Figure 6 As shown, the actuated structure 29 includes a lower cover body 292, an upper cover body 293, an upper magnetically attractable member 294 arranged between the upper cover body 293 and the lower cover body 292, and a lower magnetically attractable member 295 arranged in the lower cover body 292, the lower magnetically attractable member 295 is provided with a counterbore at one end close to the upper magnetically attractable member 294, a first elastic member 296 is arranged in the counterbore between the upper magnetically attractable member 294 and the lower magnetically attractable member 295 to drive the actuated structure 29, the sealing member 291 is arranged at one end of the lower magnetically attractable member 295 close to the diaphragm 27, and a second elastic member 297 is sleeved on the upper cover body 293, and one end of the second elastic member 297 abuts against the top surface of the placing hole.

[0058] Further, referring to Figure 5As shown, the actuating structure 23 has a button assembly, and a third elastic member 25 arranged between the button assembly and the body 24. After the magnetic valve structure 22 is closed, the button assembly 23 is operated to drive the actuated structure 29 to move the sealing member 291 away from the top sheet 26, so that a gap is formed between the diaphragm 27 and the base 28, water flows through the gap between the diaphragm 27 and the base 28, pressure is released from the pressure relief hole of the diaphragm 27, and at the same time, the third elastic member 25 is ready to drive the button assembly to operate.

[0059] Specifically, referring to Figure 5 As shown, the button assembly includes a button body 231, a rotating disc 233 movably arranged in the button body 231, a magnetic block 232 and a fourth elastic member 234 arranged in the rotating disc 233, and a button 235 arranged at one end of the rotating disc 233 away from the magnetic block 232. The third elastic member 25 is arranged between the body 24 and the rotating disc 233 to drive the rotating disc 233 to move. When the button 235 is manually pressed, the actuating structure 23 drives the actuated structure 29 to move to the side of the button assembly, the sealing member 291 moves away from the top sheet 26 and the lower magnetic member 295 to compress the first elastic member 296, the second elastic member 297 is compressed by the actuated structure 29, and at the same time, the third elastic member 25 is compressed. At this time, the rotating disc 233 is driven to move to reset the button 235, and the magnetic block 232 pushes the fourth elastic member 234 to prepare for the next pressing action. In the present application, the first elastic member 296, the second elastic member 297, the third elastic member 25, and the fourth elastic member 234 are all springs, and springs of different specifications are used according to the corresponding structures. Sealing rings are arranged at the positions of adjacent parts that need to be sealed, which is a conventional structure and will not be described in detail here.

[0060] Referring to Figure 11 and Figure 12As shown, the manual and magnetic integrated valve core is installed in the faucet, the faucet has a main body 9, two water inlet pipes and a water outlet pipe, and a handle 8 and a pressing cover 7, the valve core is arranged in the main body 9, the two water inlet pipes are connected to the water inlets 61, the water outlet pipe is connected to the water outlet 62, the handle 8 is inserted into the first through hole 212, the handle 8 is controlled, the first valve element 2 is driven, the moving valve plate 32 is rotated relative to the static valve plate 31, and the water outlet size and the water outlet temperature are adjusted. A hole position is formed in the surface of the handle 8, the pressing cover 7 is arranged in the hole position and abuts against the button 234, when the pressing cover 7 is pressed, the pressing cover 7 drives the button 234 to control the actuating structure 23 to drive the actuated structure 29.

[0061] The above only describes the preferred embodiments of the present application and is not used to limit the present application. For those skilled in the art, the present application can be variously changed and modified. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A valve core that integrates manual and magnetic operation, characterized in that, include: shell; 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. An actuating structure, wherein the actuating structure is stacked on top of the first valve member; and A diaphragm, wherein the diaphragm is connected in series with the second valve and is opened and closed by the first valve; When the first valve is open, the first valve is in communication with the second valve; when the first valve is closed, the actuation structure drives the first valve to open, and the first valve is in communication with the second 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; the shaft of the actuation structure is aligned with the axial direction of the first valve, the base, and the second valve, and the first valve is opened or the actuation structure drives the first valve to open to pass through the gap between the diaphragm and the base; when the first valve is opened, water flows from the inlet to the second valve, through the diaphragm, and to the outlet; When the first valve is closed, the actuation structure drives the first valve to open, and the water flows from the inlet to the second valve, through the diaphragm, and to the outlet.

3. The manual and magnetic integrated valve core according to claim 2, characterized in that, The first valve has a body, a solenoid valve structure, and an actuated structure. The diaphragm is disposed between the body and the base. The solenoid valve structure is disposed outside the body, and the actuated structure is disposed inside the body. The actuating structure is disposed at the end of the actuated structure away from the diaphragm. The solenoid valve structure or the actuating structure is selected to drive the actuated structure to move the diaphragm, so that water flows through the gap between the diaphragm and the base and communicates with the second valve.

4. The manual and magnetic integrated valve core according to claim 3, characterized in that, The cross-section of the body is T-shaped, and the T-shaped structure has a placement hole. The actuated structure is located in the placement hole, and the magnetic valve structure is located at the lower end of the T-shaped structure. The magnetic valve structure is electrically connected to drive the actuated structure to move relative to the diaphragm.

5. The manual and magnetic integrated valve core according to claim 3, characterized in that, The actuated structure has a cover, a sealing element and a magnetically attached element disposed in the cover. When the magnetic valve structure is open, the magnetic valve structure drives the magnetically attached element to move the sealing element away from the diaphragm. When the magnetic valve structure is closed, the sealing element moves closer to the diaphragm and seals the gap between the diaphragm and the base.

6. The manual and magnetic integrated valve core according to claim 5, characterized in that, The actuation structure has a button assembly and an elastic structure disposed between the button assembly and the actuated structure. When the solenoid valve structure is closed, the button assembly is operated to cause the actuated structure to move the seal away from the diaphragm, thereby creating a gap between the diaphragm and the base. The elastic structure drives the button assembly to wait for the operation.

7. The manual and magnetic integrated valve core according to claim 3, characterized in that, The surface of the diaphragm is provided with pressure relief holes, through which water flows and air pressure is discharged.

8. The manual and magnetic integrated valve core according to claim 2, characterized in that, The second valve has a moving valve plate and a stationary valve plate that overlap each other, and the first valve is connected to the moving valve plate to control the relative rotation of the moving valve plate and the stationary valve plate.

9. The manual and magnetic integrated valve core according to claim 8, 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.

10. A faucet equipped with an integrated manual and magnetic valve core as described in any one of claims 1 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 first valve, and the press cover abuts against the actuation structure.