Reversing valve and water outlet device

By designing a reversing valve and utilizing the combination of valve core, swing block and elastic element, the problem of large button size in traditional water outlet devices is solved, resulting in a simple appearance and convenient operation of the water outlet device, suitable for one-handed or blind operation.

CN224253116UActive Publication Date: 2026-05-19FOSHAN DAHUI BIO TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FOSHAN DAHUI BIO TECH CO LTD
Filing Date
2025-04-28
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

In traditional water dispensing devices, the seesaw button is relatively large, which affects the simplicity of the device and the ease of operation for users.

Method used

The design employs a reversing valve, which, through the cooperation of the valve core, swing block, elastic element, and pressing assembly, achieves water pattern switching, reduces the pressing operation area, simplifies the structure, and reduces the probability of misoperation.

Benefits of technology

It achieves a simple appearance for the water dispensing device, reduces the space occupied by the buttons, improves the convenience and reliability of operation, is suitable for one-handed or blind operation, and has a compact structure that reduces the number of parts.

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Abstract

The utility model relates to the field of bathroom accessories, and discloses a reversing valve and a water outlet device. The reversing valve comprises a valve body and a valve element which are movably connected, and the valve element is provided with a first limiting part and a second limiting part which are arranged at intervals in the axial direction; the swing block is rotationally connected with the valve element and can abut against any one of the first limiting part and the second limiting part, and a first abutting face, corresponding to the first limiting part, of the swing block intersects with a second abutting face corresponding to the second limiting part; the first elastic piece and the second elastic piece are arranged at the two ends of the path, moving along with the valve element, of the swing block correspondingly and used for abutting against the first abutting face and the second abutting face correspondingly. The pressing assembly is movably arranged in the direction close to or away from the swing block and can abut against any one of the first abutting face and the second abutting face. The water types can be switched only by reciprocating movement of the pressing assembly, a large-area pressing operation surface is not needed, the occupied space of the button is remarkably reduced, and the water outlet device is simpler.
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Description

Technical Field

[0001] This utility model relates to the field of sanitary ware technology, specifically to a reversing valve and a water outlet device. Background Technology

[0002] In the current bathroom equipment industry, users are increasingly demanding multifunctional water outlet devices. Traditional single-function water outlet devices can no longer meet the needs of diverse living scenarios. Therefore, hybrid water outlet devices with multiple water outlet modes are gradually gaining popularity in the market.

[0003] In existing technologies, water outlet devices typically switch water patterns based on the seesaw principle. For example, pressing one end of the seesaw button opens the channel to the showerhead outlet while closing other outlet channels; pressing the other end switches to a jet stream or aerator flow mode. This design utilizes the lever principle, resulting in products with both low production costs and simple, quick operation.

[0004] However, because the seesaw button needs to provide sufficient operating area to ensure the user's pressing accuracy and comfort, the button size is relatively large, which affects the overall simplicity of the water dispensing device. Utility Model Content

[0005] In view of this, the present invention provides a reversing valve and a water outlet device to solve or improve the problem of the large size of the seesaw button in the prior art.

[0006] In a first aspect, this utility model provides a reversing valve, comprising:

[0007] The valve body and valve core are movably connected, and the valve core is provided with a first limiting part and a second limiting part arranged at intervals along the axial direction;

[0008] The swing block is rotatably connected to the valve core and can abut against either the first limiting part or the second limiting part. The swing block has a first abutting surface corresponding to the first limiting part and a second abutting surface corresponding to the second limiting part. The first abutting surface and the second abutting surface intersect.

[0009] The first elastic element and the second elastic element are respectively disposed at both ends of the path along which the swing block moves with the valve core, and are respectively used to abut against the first abutting surface and the second abutting surface;

[0010] The pressing component is movable in a direction close to or away from the swing block and can abut against either the first abutment surface or the second abutment surface.

[0011] In one optional embodiment, the swing block is provided with a receiving groove, one end of the receiving groove passes through the first abutting surface, the other end of the receiving groove passes through the second abutting surface, and the valve core passes through the receiving groove and is rotatably connected to the two side walls of the receiving groove.

[0012] And / or, the swing block is configured as a triangular prism structure, in which two sides of the three sides of the triangular prism structure form the first abutment surface and the second abutment surface respectively, and the other side faces away from the pressing component.

[0013] In one optional embodiment, the valve core is provided with a mounting protrusion that extends along the rotation axis of the swing block, and the two ends of the mounting protrusion protrude from the opposite side walls of the valve core, respectively. The mounting protrusion is disposed in the receiving groove and is rotatably connected to the opposite side walls of the receiving groove.

[0014] In one alternative embodiment, the first elastic element is configured as a spring, and one end of the first elastic element is connected to the valve body, while the other end of the first elastic element is used to abut against the first contact surface.

[0015] And / or, the second elastic element is configured as a spring, and one end of the second elastic element is connected to the valve body, and the other end of the second elastic element is used to abut against the second abutment surface.

[0016] In one optional embodiment, the reversing valve further includes a third elastic element disposed between the valve body and the valve core, which is used to drive the valve core to move in a preset direction.

[0017] In one optional embodiment, the valve body includes a water distribution component, which has an inlet, a first outlet, and a second outlet, with the first outlet and the second outlet respectively located on both axial sides of the inlet.

[0018] The valve core includes a valve stem and a sealing part disposed on the valve stem. The sealing part is movably disposed within the water distribution component and can be selectively moved between the water inlet and the first water outlet or the second water outlet. One end of the valve stem extends out from the water distribution component and is provided with the swing block.

[0019] In one optional embodiment, the water distribution component includes a first pipe body, with the opening at one end of the first pipe body forming the first water outlet, and the water inlet and the second water outlet both located on the side wall of the first pipe body.

[0020] The sealing part is located inside the first pipe body. The valve stem with the swing block extends from the other end of the first pipe body. The valve stem is also provided with a first sealing structure, which is located on the side of the second outlet near the swing block and seals with the inner wall of the first pipe body.

[0021] In one optional embodiment, the valve body further includes a water outlet component, which has a first water outlet channel and a second water outlet channel, wherein the first water outlet channel is connected to the first water outlet and the second water outlet channel is connected to the second water outlet.

[0022] Alternatively, the valve body may further include a second pipe body and a third pipe body arranged in parallel and connected. The second pipe body includes a first pipe section and a second pipe section that are distributed axially and are independent of each other. The end of the first pipe section away from the second pipe section is connected to the first outlet. The side wall of the first pipe section is provided with a first opening. The end of the second pipe section away from the first pipe section is closed. The side wall of the second pipe section is provided with a second opening. One end of the third pipe body is connected to the second outlet, and the other end is connected to the second pipe section.

[0023] In one optional embodiment, the reversing valve further includes a water inlet component connected to the water inlet, and a mounting portion is provided on the outer wall of the water inlet component. At least one of the first elastic element and the second elastic element is mounted on the mounting portion, and the pressing assembly is mounted on the mounting portion.

[0024] In one alternative embodiment, the pressing assembly includes a button and a fourth elastic element. The button is slidably disposed on the valve body in a direction close to or away from the swing block and can abut against either the first abutting surface or the second abutting surface. The fourth elastic element is used to drive the button to move away from the swing block.

[0025] And / or, the reversing valve further includes a housing, with at least a portion of the valve body disposed within the housing;

[0026] And / or, the rotation axis of the swing block is perpendicular to the axis of the valve core.

[0027] Secondly, this utility model also provides a water outlet device, including the reversing valve as described above.

[0028] The reversing valve provided by this utility model can switch water types simply by pressing the component back and forth, without the need for a large pressing operation surface, which significantly reduces the space occupied by the button and makes the appearance of the water outlet device more concise.

[0029] In addition, users only need to repeatedly press the same position (press component) to cycle through the water type, without having to distinguish the pressing area like a seesaw button, reducing the probability of misoperation, and making it especially suitable for one-handed or blind operation scenarios.

[0030] In addition, the contact surface of the swing block also serves to cooperate with the elastic element, the limiting part, and the pressing component, avoiding the problem of setting up multiple independent parts or structures for different cooperation requirements. This greatly simplifies the overall structure of the directional valve and eliminates the need for additional complex linkage structures to realize the interaction between each component, thus reducing the number of parts in the entire directional valve and making the layout more compact.

[0031] The water outlet device provided by this utility model includes the reversing valve provided by this utility model, and therefore also includes all the advantages of the reversing valve mentioned above. Attached Figure Description

[0032] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0033] Figure 1 A schematic diagram of the structure of a water outlet device provided in an embodiment of this utility model;

[0034] Figure 2 for Figure 1 The exploded view of the initial device shown is shown.

[0035] Figure 3 This is a schematic diagram of the reversing valve provided in an embodiment of the present utility model;

[0036] Figure 4 A schematic diagram of the reversing valve in the first water outlet state provided in an embodiment of this utility model;

[0037] Figure 5 for Figure 4 AA section view in the middle;

[0038] Figure 6 A schematic diagram of the reversing valve in the second water outlet state provided in an embodiment of this utility model;

[0039] Figure 7 for Figure 6 BB section view in the middle;

[0040] Figure 8 This is a schematic diagram of the operation flow of the reversing valve provided in an embodiment of the present utility model;

[0041] Figure 9 A schematic diagram of the valve stem provided in an embodiment of this utility model;

[0042] Figure 10 A schematic diagram of the structure of the swing block provided in an embodiment of this utility model;

[0043] Figure 11 A schematic diagram of the button provided in an embodiment of this utility model;

[0044] Figure 12 A schematic diagram of the plug-in connection between the water distribution component and the water outlet component provided in this embodiment of the utility model;

[0045] Figure 13 This is a schematic diagram of the internal structure of the water distribution component and the water outlet component after they are connected and fitted together, as provided in the embodiment of this utility model.

[0046] Explanation of reference numerals in the attached figures:

[0047] 1. Valve body; 2. Valve core; 201. First limiting part; 202. Second limiting part; 203. Valve stem; 204. Sealing part; 205. First sealing structure; 206. Second sealing structure; 207. Mounting protrusion; 3. Swing block; 301. First abutting surface; 302. Second abutting surface; 303. Receiving groove; 4. First elastic element; 5. Second elastic element; 6. Pressing assembly; 601. Button; 6011. First mating surface; 6012. Second mating surface; 602. Fourth elastic element; 7. Third elastic element; 8. Water distribution component; 801. Water inlet; 802. First water outlet; 803. Second outlet; 804, First pipe body; 8041, First conical surface; 805, First connecting pipe; 806, Second connecting pipe; 9, Outlet component; 901, Second pipe body; 9011, First pipe section; 9012, Second pipe section; 9013, First opening; 9014, Second opening; 9015, Second conical surface; 902, Third pipe body; 10, Inlet component; 1001, Mounting part; 11, Outer shell; 1101, Shell; 1102, Cover plate; 1103, First clearance opening; 1104, Second clearance opening; 12, Flow restrictor; 13, Aerator; 14, Connecting pipe; 15, Connecting joint. Detailed Implementation

[0048] 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 some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0049] The following is combined with Figures 1 to 13 This describes the reversing valve provided in the embodiments of the present invention.

[0050] Specifically, the reversing valve includes a valve body 1, a valve core 2, a swing block 3, a first elastic element 4, a second elastic element 5, and a pressing assembly 6.

[0051] The valve core 2 is movably connected to the valve body 1. For example, the valve core 2 is slidably connected to the valve body 1, and the valve body 1 has an inlet 801 and different outlets. By moving the valve core 2 to different positions, any outlet can be connected to the inlet 801.

[0052] Furthermore, the valve core 2 is provided with a first limiting portion 201 and a second limiting portion 202 arranged axially at intervals. For example, both the first limiting portion 201 and the second limiting portion 202 are configured as limiting protrusions. Optionally, one end of the valve core 2 is disposed inside the flow channel of the valve body 1, and the other end is disposed outside the flow channel of the valve body 1, with both the first limiting portion 201 and the second limiting portion 202 disposed on the portion of the valve core 2 located outside the flow channel of the valve body 1.

[0053] The swing block 3 is rotatably connected to the valve core 2, and the swing block 3 can abut against either the first limiting part 201 or the second limiting part 202. That is, along the axial direction of the valve core 2, the swing block 3 is disposed between the first limiting part 201 and the second limiting part 202, and the swing block 3 can rotate toward either the first limiting part 201 or the second limiting part 202 and abut against it. Optionally, the rotation axis of the swing block 3 intersects with or is not in the same plane as the axis of the valve core 2. For example, the rotation axis of the swing block 3 is perpendicular to the axis of the valve core 2.

[0054] Furthermore, the swing block 3 has a first abutting surface 301 corresponding to the first limiting part 201 and a second abutting surface 302 corresponding to the second limiting part 202. For example, the side of the swing block 3 corresponding to the first limiting part 201 is the first abutting surface 301, and the side of the swing block 3 corresponding to the second limiting part 202 is the second abutting surface 302. The first abutting surface 301 intersects with the second abutting surface 302, or it can be said that the first abutting surface 301 and the second abutting surface 302 are arranged in a V-shape.

[0055] It is understandable that the first abutting surface 301 intersecting the second abutting surface 302 means that the first abutting surface 301 and the second abutting surface 302 directly intersect, or that the extended surfaces of the first abutting surface 301 and the second abutting surface 302 intersect.

[0056] The first elastic element 4 and the second elastic element 5 are respectively disposed at both ends of the path along which the swing block 3 moves with the valve core 2. The first elastic element 4 and the second elastic element 5 are respectively used to abut against the first abutment surface 301 and the second abutment surface 302. Specifically, the first elastic element 4 is located at the first end of the path along which the swing block 3 moves with the valve core 2 and is disposed opposite to the first abutment surface 301, and the second elastic element 5 is located at the second end of the path along which the swing block 3 moves with the valve core 2 and is disposed opposite to the second abutment surface 302.

[0057] The pressing component 6 is movable in a direction approaching or moving away from the swing block 3, and can abut against either the first abutment surface 301 or the second abutment surface 302. It is understood that the end where the first abutment surface 301 and the second abutment surface 302 intersect is located on the side of the swing block 3's rotation axis closer to the pressing component 6. Optionally, the moving path of the pressing component 6, the rotation axis of the swing block 3, and the axis of the valve core 2 are all perpendicular to each other.

[0058] In this embodiment, reference is made to Figure 8 As shown in Figure A, assuming that when the valve core 2 is in the first working position, the directional valve is in the first conducting state, the first contact surface 301 of the swing block 3 is in a disengaged state from the first elastic member 4, and the second contact surface 302 is in contact with the second elastic member 5, causing the swing block 3 to deflect away from the second elastic member 5, and the second contact surface 302 is facing the pressing component 6.

[0059] Further, refer to Figure 8 As shown in B, if the pressing component 6 is driven towards the direction of the swing block 3, the pressing component 6 will abut against the second contact surface 302. Since the first contact surface 301 abuts against the first limiting part 201, the swing block 3 can no longer rotate. Thus, under the action of the pressing component 6, the valve core 2 can be driven to move to the second working position through the swing block 3, so that the reversing valve is switched to the second conduction state.

[0060] In the second conduction state, refer to Figure 8 As shown in C, the second elastic element 5 is disengaged from the second abutment surface 302, the first elastic element 4 abuts against the first abutment surface 301, and after the pressing component 6 is reset, the first elastic element 4 drives the swing block 3 to deflect away from the first elastic element 4, and the first abutment surface 301 faces the pressing component 6.

[0061] Further, refer to Figure 8As shown in Figure D, if the pressing component 6 is driven towards the swing block 3, the pressing component 6 abuts against the first contact surface 301. Since the second contact surface 302 abuts against the second limiting part 202, the swing block 3 can no longer rotate. Therefore, under the action of the pressing component 6, the valve core 2 can be driven to move towards the first working position through the swing block 3, so that the reversing valve switches to the first conducting state. Figure 8 As shown in E.

[0062] In this embodiment, the first contact surface 301 and the second contact surface 302 of the swing block 3 respectively abut against the first limiting part 201 and the second limiting part 202 of the valve core 2, so that the swing block 3 can drive the valve core 2 to move when it is subjected to the force of the pressing component 6.

[0063] like Figure 8 As shown, the first elastic element 4 and the second elastic element 5 can abut against the first contact surface 301 and the second contact surface 302. After the valve core 2 moves into place and switches to the target water type, the elastic element can drive the swing block 3 to deflect to the other side, so that the other contact surface of the swing block 3 faces the pressing component 6, preparing for the next water type switch and ensuring that the pressing component 6 can continuously and stably drive the valve core 2 to perform water type switching operation.

[0064] With this setup, the water type can be switched simply by pressing component 6 back and forth, eliminating the need for a large pressing surface and significantly reducing the space occupied by button 601, making the water outlet device look more concise.

[0065] In addition, users only need to repeatedly press the same position (i.e., press component 6) to cycle through the water type, without having to distinguish the pressing area like the seesaw button 601, reducing the probability of misoperation, and is especially suitable for one-handed operation or blind operation scenarios.

[0066] In addition, the contact surface of the swing block 3 also serves to cooperate with the elastic element, the limiting part, and the pressing component 6, avoiding the problem of setting up multiple independent parts or structures for different cooperation requirements. This greatly simplifies the overall structure of the directional valve and eliminates the need for additional complex linkage structures to realize the interaction between each component, thus reducing the number of parts in the entire directional valve and making the layout more compact.

[0067] In some embodiments provided by this utility model, the swing block 3 is provided with a receiving groove 303, one end of the receiving groove 303 penetrates through the first abutment surface 301, and the other end of the receiving groove 303 penetrates through the second abutment surface 302. The valve core 2 passes through the receiving groove 303 and is rotatably connected to the two side walls of the receiving groove 303.

[0068] In this embodiment, the design of the receiving groove 303 utilizes the space inside the swing block 3, allowing the valve core 2 to be rationally arranged within the swing block 3, effectively saving space and making the overall structure of the reversing valve more compact. This compact spatial layout helps to better integrate the reversing valve in the water outlet device, reducing the space occupied by other components, and improving the overall design flexibility and aesthetics of the water outlet device.

[0069] Furthermore, the receiving groove 303 tightly connects the valve core 2 and the swing block 3, increasing the connection strength and stability between them. This reduces the possibility of components loosening, falling off, or being damaged due to unstable connections, thus improving the structural reliability and service life of the entire directional valve.

[0070] In addition, inserting the valve core 2 into the receiving groove 303 of the swing block 3 during the assembly process is a relatively simple and easy-to-operate method, which is conducive to improving assembly efficiency and reducing assembly difficulty.

[0071] refer to Figure 10 As shown, in some embodiments provided by this utility model, the swing block 3 is configured as a triangular prism structure. Among the three sides of the triangular prism structure, two sides form a first abutting surface 301 and a second abutting surface 302, respectively, and the other side faces away from the pressing component 6.

[0072] In this embodiment, the triangular prism is a relatively simple geometric shape, which is relatively easy to process and manufacture, thus reducing production costs. At the same time, this structure can realize the setting of multiple functional surfaces in a limited space, making the structure of the swing block 3 more compact, which is conducive to the miniaturization design of the entire reversing valve and meets the space compactness requirements of the water outlet device.

[0073] refer to Figure 10 As shown, optionally, adjacent sides of the triangular prism are connected by rounded corners. Rounded corners allow for even stress distribution at the joint, reducing stress concentration and improving the structural strength and service life of the oscillating block 3. Furthermore, the rounded corner design prevents sharp edges from scratching operators or other parts in contact with it.

[0074] refer to Figure 10 As shown, in some embodiments provided by this utility model, the receiving groove 303 also extends through the side of the swing block 3 away from the pressing component 6.

[0075] In this embodiment, the receiving groove 303 is provided through, so that the swing block 3 can freely adjust its position and angle within a larger range, thereby reducing the mechanical interference problems that may occur between the swing block 3 and the valve core 2, so as to avoid the operation problems or even failures caused by friction or jamming between components, and make the operation of the entire reversing valve smoother and more reliable.

[0076] In addition, this through-type structure allows for processing from multiple directions during the manufacturing process, reducing the processing difficulty of the swing block 3, improving processing efficiency, and also helping to ensure processing accuracy.

[0077] In addition, the receiving groove 303 extends through this side, allowing the valve core 2 to be directly inserted into the receiving groove 303 from the side away from the pressing component 6, providing more operating space and making the installation process more convenient and smooth.

[0078] refer to Figure 9 As shown, in some embodiments of this utility model, the valve core 2 is provided with a mounting protrusion 207, which extends along the rotation axis of the swing block 3, and both ends of the mounting protrusion 207 protrude from the opposite side walls of the valve core 2. Further, the mounting protrusion 207 is disposed in the receiving groove 303 and is rotatably connected to the opposite side walls of the receiving groove 303.

[0079] Specifically, the mounting protrusion 207 is provided with a through hole extending along the extension direction of the mounting protrusion 207. The two ends of the mounting protrusion 207 are respectively facing the two side walls of the receiving groove 303. Both side walls of the receiving groove 303 are provided with connecting holes coaxially arranged with the through hole. By passing a pin through the connecting hole and the through hole, the mounting protrusion 207 can be rotatably connected to the receiving groove 303.

[0080] In this embodiment, the mounting protrusion 207 extends along the rotation axis of the swing block 3, with both ends protruding from the opposite side walls of the valve core 2. This increases the contact area and connection points between the valve core 2 and the swing block 3, making the rotation smoother. The mounting protrusion 207 can better withstand various forces during rotation, reduce swaying and offset, and ensure the rotation accuracy of the swing block 3 around the valve core 2, thereby improving the working stability and reliability of the entire directional valve.

[0081] refer to Figure 3 As shown, in some embodiments provided by this utility model, the first elastic element 4 is configured as a spring, and one end of the first elastic element 4 is connected to the valve body 1, while the other end of the first elastic element 4 is used to abut against the first abutting surface 301.

[0082] In this embodiment, the spring can directly abut against the swing block 3 without the need for other components, making the entire reversing valve structure simpler. This reduces the number of parts, thus reducing the connections and coordination between them, lowering structural complexity, improving product stability and reliability, and facilitating manufacturing and assembly.

[0083] Optionally, the valve body 1 is provided with a fixing post for installing the first elastic element 4. One end of the first elastic element 4 is fitted onto the fixing post, and the other end is used to abut against the first contact surface 301.

[0084] In this embodiment, the fixing column provides an accurate installation position for the first elastic element 4, ensuring that one end of the spring can be precisely fixed on the valve body 1, so that the spring will not deviate or shake during operation, and ensuring that the spring force can be accurately applied to the first contact surface 301, thereby improving the stability and reliability of the entire reversing valve operation.

[0085] In some embodiments provided by this utility model, the second elastic member 5 is configured as a spring, and one end of the second elastic member 5 is connected to the valve body 1, while the other end of the second elastic member 5 is used to abut against the second abutment surface 302.

[0086] In this embodiment, the spring can directly abut against the swing block 3 without the need for other components, making the entire reversing valve structure simpler. This reduces the number of parts, thus reducing the connections and coordination between them, lowering structural complexity, improving product stability and reliability, and facilitating manufacturing and assembly.

[0087] Optionally, the valve body 1 is provided with a fixing post for installing the second elastic member 5. One end of the second elastic member 5 is fitted onto the fixing post, and the other end is used to abut against the second abutment surface 302.

[0088] In this embodiment, the fixing column provides an accurate installation position for the second elastic element 5, ensuring that one end of the spring can be precisely fixed on the valve body 1, so that the spring will not deviate or shake during operation, and ensuring that the spring force can be accurately applied to the second abutment surface 302, thereby improving the stability and reliability of the entire reversing valve operation.

[0089] refer to Figures 3-7 as well as Figures 12-13 As shown, in some embodiments provided by this utility model, the valve body 1 includes a water distribution component 8, which has an inlet 801, a first outlet 802, and a second outlet 803. The first outlet 802 and the second outlet 803 are respectively located on both axial sides of the inlet 801. It can be understood that the inlet 801, the first outlet 802, and the second outlet 803 are interconnected.

[0090] Accordingly, the valve core 2 includes a valve stem 203 and a sealing portion 204 disposed on the valve stem 203. The sealing portion 204 may be a piston. The sealing portion 204 is movably disposed within the water distribution member 8 and can be selectively moved between the water inlet 801 and the first water outlet 802 or the second water outlet 803. One end of the valve stem 203 extends out from the water distribution member 8 and is provided with a swing block 3.

[0091] In this embodiment, reference is made to Figure 4As shown, assuming that when the valve core 2 is in the first working position, the sealing part 204 is located between the inlet 801 and the second outlet 803, the sealing part 204 separates the inlet 801 and the second outlet 803, so that when water is entering through the inlet 801, the water entering through the inlet 801 can be discharged through the first outlet 802.

[0092] Similarly, when the pressing component 6 drives the valve core 2 to move to the second working position through the swing block 3, the sealing part 204 is located between the water inlet 801 and the first water outlet 802. The sealing part 204 separates the water inlet 801 from the first water outlet 802, so that when water is entering through the water inlet 801, the water entering through the water inlet 801 is discharged through the second water outlet 803.

[0093] With this configuration, by moving the sealing part 204 within the water distribution member 8, the inlet 801 can be selectively separated from the first outlet 802 or the second outlet 803, thereby enabling the switching of different water flow paths.

[0094] refer to Figures 12-13 As shown, in some embodiments provided by this utility model, the water distribution component 8 includes a first pipe body 804, with a first outlet 802 formed at one end of the first pipe body 804, and an inlet 801 and a second outlet 803 both located on the side wall of the first pipe body 804.

[0095] Accordingly, refer to Figures 4-7 As shown, the sealing part 204 is provided inside the first pipe body 804, and the valve stem 203 with the swing block 3 extends from the other end of the pipe opening of the first pipe body 804. The valve stem 203 is also provided with a first sealing structure 205, which is located on the side of the second outlet 803 near the swing block 3 and is sealed with the inner wall of the first pipe body 804.

[0096] In this embodiment, reference is made to Figure 4 and Figure 5 As shown, when the valve core 2 is in the first working position, the sealing part 204 is located between the water inlet 801 and the second water outlet 803. The sealing part 204 separates the water inlet 801 and the second water outlet 803, so that when water is entering through the water inlet 801, the water entering through the water inlet 801 can be discharged through the first water outlet 802.

[0097] refer to Figure 6 and Figure 7As shown, when the valve core 2 moves to the second working position, the sealing part 204 is located between the inlet 801 and the first outlet 802. The sealing part 204 separates the inlet 801 from the first outlet 802, so that when water is entering through the inlet 801, the water entering through the inlet 801 is discharged through the second outlet 803. Simultaneously, since the second outlet 803 has a first sealing structure 205 on the side near the swing block 3, water can be prevented from being discharged from the end of the first pipe body 804 away from the first outlet 802.

[0098] In this embodiment, the water distribution component 8 adopts the structure of a first pipe body 804, which has a simple and regular shape and is easy to manufacture and process. The inlet 801 and the second outlet 803 are located on the side wall of the first pipe body 804, while the first outlet 802 is located at the pipe opening at one end of the first pipe body 804. This layout makes full use of the pipe space, making the entire device more compact and suitable for installation in limited spaces.

[0099] In addition, a first sealing structure 205 is provided on the valve stem 203 and is located on the side of the second outlet 803 near the swing block 3. It is sealed and cooperates with the inner wall of the first pipe body 804, which can effectively prevent water from leaking from the pipe opening of the first pipe body 804 away from the first outlet 802.

[0100] Optionally, the first sealing structure 205 is a sealing ring, and a flange for installing the sealing ring can be provided on the valve stem 203. The outer circumferential surface of the flange is provided with an annular groove for installing the sealing ring.

[0101] refer to Figures 3-7 as well as Figures 12-13 As shown, in some embodiments provided by this utility model, the valve body 1 further includes a water outlet component 9, which includes a second pipe body 901 and a third pipe body 902 arranged side by side and connected to each other. In other words, the second pipe body 901 and the third pipe body 902 constitute the main part of the water outlet component 9. For example, the second pipe body 901 and the third pipe body 902 are arranged side by side in the horizontal direction.

[0102] Among them, reference Figure 13 As shown, the second pipe body 901 includes a first pipe segment 9011 and a second pipe segment 9012 that are distributed along the axial direction and are independent of each other. For example, a partition is provided inside the second pipe body 901 to divide the second pipe body 901 into the first pipe segment 9011 and the second pipe segment 9012 along the axial direction.

[0103] The end of the first pipe section 9011 away from the second pipe section 9012 is connected to the first outlet 802. For example, the first pipe section 9011 is coaxially arranged and inserted with the first pipe body 804, and the side wall of the first pipe section 9011 is provided with a first opening 9013.

[0104] The second pipe segment 9012 is closed at the end away from the first pipe segment 9011, and a second opening 9014 is provided on the side wall of the second pipe segment 9012. Optionally, the first opening 9013 and the second opening 9014 are located on opposite sides of the second pipe body 901, for example, referring to... Figure 4 As shown, when the second tube 901 is arranged horizontally, the first opening 9013 faces downward and the second opening 9014 faces upward. Optionally, the axis of the first opening 9013 and the axis of the second opening 9014 both intersect the axis of the second tube 901.

[0105] One end of the third pipe body 902 is connected to the second outlet 803, and the other end of the third pipe body 902 is connected to the second pipe section 9012.

[0106] In this embodiment, reference is made to Figure 4 and Figure 5 As shown, when the valve core 2 is in the first working position, water flows out from the first outlet 802. The water flowing out from the first outlet 802 enters the first pipe section 9011 of the second pipe body 901 and flows out through the first opening 9013 on the side wall of the first pipe section 9011.

[0107] When the valve core 2 is in the second working position, water flows out of the second outlet 803. The water flowing out of the second outlet 803 flows out through the third pipe body 902, the second pipe section 9012 of the second pipe body 901, and the second opening 9014 in sequence.

[0108] This configuration ensures that both the first opening 9013 and the second opening 9014 are located on the second pipe body 901, and the two openings are relatively close in the axial direction of the second pipe body 901. This results in a small difference in the water outlet position of the water outlet device, meaning that the water outflow position is relatively concentrated regardless of whether the valve core 2 is in the first working position or the second working position.

[0109] Furthermore, for users, there is no need to move the water container significantly or change their posture during use, making it easy to collect water from different openings, thus improving the convenience of use.

[0110] In addition, the first opening 9013 and the second opening 9014 can be located on the opposite side walls of the second pipe body 901. This design can provide users with different water flow experiences.

[0111] For example, one opening can provide a gentle spray for washing your face or rinsing items, while the other opening can provide a concentrated jet of water for handwashing or other operations requiring a stronger flow, enriching the user experience. Alternatively, in some applications, one opening can direct water upwards for rinsing, while the other directs water downwards for everyday use, meeting diverse water needs.

[0112] Optionally, the first tube 804 is coaxially inserted into the second tube 901, and the third tube 902 is arranged side-by-side on one side of the second tube 901 and connected to the second tube 901. (Reference) Figures 1-3 As shown, the arrangement direction of the second pipe 901 and the third pipe 902 can intersect with the thickness direction of the water outlet device, thereby helping to reduce the size of the water outlet device in the thickness direction. For example, the arrangement direction of the second pipe 901 and the third pipe 902 can be perpendicular to the thickness direction of the water outlet device.

[0113] This horizontal arrangement makes the device's overall shape flatter, better fitting the shape of the hand. For example, when a user holds the water dispenser, their palm can naturally wrap around it, and their fingers can comfortably rest on the surface. The device is not too thick, preventing the palm from being unable to fully grip it or the fingers from extending unnaturally, thus providing a more comfortable grip experience.

[0114] Furthermore, its thinness allows users to hold the device without needing to exert excessive force, keeping their hand muscles relatively relaxed. This reduces hand fatigue during prolonged use, especially in situations requiring frequent use of the water dispenser, such as washing hands or vegetables; this design helps alleviate hand strain.

[0115] In addition, in some scenarios with high space requirements, such as small bathrooms and compact kitchen sinks, a smaller thickness allows the water outlet device to better adapt to the limited space, without taking up too much installation space due to excessive thickness, thus improving space utilization.

[0116] Optionally, the second pipe body 901 and the third pipe body 902 are designed as a single integrated structure. This integrated structure eliminates the connection gap between the two pipe bodies, reduces weak points, and makes the entire water outlet device more robust and durable. The manufacturing process of the integrated structure is relatively simple, requiring no complex assembly processes, thus reducing production steps and costs.

[0117] Optionally, refer to Figure 13 As shown, the inner wall of the first pipe body 804 is provided with a first conical surface 8041. The first conical surface 8041 is located between the water inlet 801 and the second water outlet 803, and the flared end of the first conical surface 8041 faces the sealing part 204. The first conical surface 8041 is used to seal with the sealing part 204.

[0118] In this embodiment, when the sealing part 204 is subjected to water pressure, it will fit more tightly against the first conical surface 8041, effectively preventing water from the inlet 801 from leaking into the second outlet 803 when the sealing part 204 is in the position of blocking the second outlet 803, ensuring that the water flows along the designed path and improving the water flow control accuracy of the reversing valve.

[0119] Optionally, refer to Figure 13 As shown, the inner wall of the second pipe body 901 is provided with a second conical surface 9015. The second conical surface 9015 is located between the water inlet 801 and the first water outlet 802, and the flared end of the second conical surface 9015 faces the sealing part 204. The second conical surface 9015 is used to seal with the sealing part 204.

[0120] In this embodiment, when the sealing part 204 is subjected to water pressure, it will fit more tightly against the second conical surface 9015, effectively preventing water from the inlet 801 from leaking into the first outlet 802 when the sealing part 204 is in the position of blocking the first outlet 802, ensuring that the water flows along the designed path and improving the water flow control accuracy of the reversing valve.

[0121] In some embodiments provided by this utility model, the water distribution component 8 further includes a first connecting pipe 805 and a second connecting pipe 806.

[0122] The first connecting pipe 805 is connected to the second outlet 803, for example, the first connecting pipe 805 is perpendicular to the first pipe body 804. One end of the second connecting pipe 806 is connected to the first connecting pipe 805, and the other end of the second connecting pipe 806 is connected to the third pipe body 902. For example, the second connecting pipe 806 is perpendicular to the first connecting pipe 805.

[0123] In this embodiment, the first connecting pipe 805 and the second connecting pipe 806 can effectively guide the water flow smoothly from the second outlet 803 into the third pipe body 902. In addition, the first connecting pipe 805 and the second connecting pipe 806 not only serve a connecting function, but also provide additional support for the entire water distribution component 8, enhancing the stability and strength of the overall structure.

[0124] In some embodiments provided by this utility model, the reversing valve further includes a third elastic element 7.

[0125] The third elastic element 7 is disposed between the valve body 1 and the valve core 2, and is used to drive the valve core 2 to move in a preset direction. For example, the third elastic element 7 can be used to drive the valve core 2 to move from the second working position to the first working position, and of course, it can also be used to drive the valve core 2 to move from the first working position to the second working position.

[0126] In this embodiment, reference is made to Figures 4-8 As shown, the example of the third elastic element 7 driving the valve core 2 to move from the second working position to the first working position is introduced. The reverse can be deduced in the same way.

[0127] When the valve core 2 is in the first working position, the first abutting surface 301 of the swing block 3 is disengaged from the first elastic member 4, and the second abutting surface 302 abuts against the second elastic member 5, with the second abutting surface 302 facing the pressing assembly 6. The sealing part 204 is located between the water inlet 801 and the second water outlet 803 to separate the water inlet 801 and the second water outlet 803, allowing water from the water inlet 801 to be discharged through the first water outlet 802.

[0128] When the pressing assembly 6 drives the valve core 2 to move to the second working position via the swing block 3, the second elastic member 5 disengages from the second abutment surface 302, and the first elastic member 4 abuts against the first abutment surface 301. After the pressing assembly 6 resets, the first elastic member 4 drives the swing block 3 to rotate away from the first elastic member 4. The sealing part 204 is located between the water inlet 801 and the first water outlet 802, separating the water inlet 801 from the first water outlet 802. Water from the water inlet 801 is discharged through the second water outlet 803.

[0129] At this time, since the sealing part 204 is subjected to water pressure on the side near the second outlet 803, it can provide the valve core 2 with a driving force to resist the third elastic element 7, preventing the valve core 2 from moving to the first working position under the action of the third elastic element 7.

[0130] Furthermore, if the pressing component 6 is driven again towards the direction of the swing block 3, the pressing component 6 will abut against the first contact surface 301, and the valve core 2 can be driven to move to the first working position by the swing block 3, so that the reversing valve switches to the first conducting state.

[0131] Furthermore, even if the valve core 2 is not driven to the first working position by the pressing assembly 6, after the water source is turned off, the pressure on the side of the sealing part 204 near the second outlet 803 disappears, and the third elastic member 7 can drive the valve core 2 to move to the first working position. After the valve core 2 reaches the first working position, the second elastic member 5 abuts against the second contact surface 302, causing the swing block 3 to swing away from the second elastic member 5 so that the second contact surface 302 faces the pressing assembly 6, so as to facilitate the next water type switching.

[0132] This setting allows the reversing valve to automatically switch to the default water mode after each use, making it more convenient to use.

[0133] For example, when valve core 2 is in the first working position, water flows out from the first opening 9013 and the first outlet 802 is set downwards. When valve core 2 is in the second working position, water flows out from the second opening 9014 and the second opening 9014 is set upwards. During use, no matter which outlet is in which water is flowing out and the water is turned off, valve core 2 can be reset to the first working position so that water flows out from the downward-facing first opening 9013 when the water is turned on again, thus preventing water from flowing directly from the second opening 9014 and wetting the user's clothes.

[0134] Optionally, the third elastic element 7 is configured as a spring. Optionally, the third elastic element 7 can be disposed within the flow channel of the valve body 1, for example, referring to... Figures 4-7 As shown, the third elastic element 7 is disposed in the first pipe section 9011 of the second pipe body 901, and the valve body 1 extends from the first pipe body 804 into the first pipe section 9011 and abuts against the third elastic element 7.

[0135] In this embodiment, the third elastic element 7 is disposed in the flow channel of the valve body 1, such as in the first pipe section 9011 of the second pipe body 901, which makes full use of the internal space of the valve body 1 and makes the overall structure more compact.

[0136] Further, refer to Figure 4 and Figure 6 As shown, the valve stem 203 is also provided with a second sealing structure 206, which can be a sealing ring. The second sealing structure 206 is located on the portion of the valve stem 203 located inside the first pipe section 9011. The second sealing structure 206 is always located on the side of the first opening 9013 away from the sealing part 204, and it seals against the inner wall of the first pipe section 9011. The third elastic element 7 is located on the side of the second sealing structure 206 away from the first opening 9013, and it abuts against the end face of the valve stem 203.

[0137] In this embodiment, when water is flowing out of the first opening 9013, due to the sealing effect of the second sealing structure 206, water will not enter the space where the third elastic element 7 is located through the second sealing structure 206. This can prevent the third elastic element 7 from contacting water, prevent the third elastic element 7 from rusting and corroding due to long-term contact with water, thereby extending its service life, ensuring the stability and reliability of the performance of the third elastic element 7, and enabling it to continuously provide a stable driving force for the valve core 2.

[0138] Of course, the third elastic element 7 can also be located outside the flow channel of the valve body 1 to facilitate the installation and replacement of the third elastic element 7. The third elastic element 7 can be a spring.

[0139] In some embodiments provided by this utility model, the reversing valve further includes an aerator 13, which is connected to the first opening 9013.

[0140] In this embodiment, the aerator 13 enables the water flow to fully mix with air, causing the water to flow out in a foamy manner. This water flow is gentler and does not splash everywhere, effectively preventing water from splashing onto the user or the surrounding environment, thus improving the user experience. Because the aerator 13 mixes water and air, the actual water consumption is relatively reduced for the same water flow requirement. By incorporating air, a certain degree of water conservation is achieved without affecting the performance.

[0141] In some embodiments of this utility model, the reversing valve further includes a flow restrictor 12, which is disposed within the third pipe body 902. The addition of the flow restrictor 12 can precisely control the water flow rate through the reversing valve, ensuring a stable and uniform water flow output from the outlet, and reducing water consumption while ensuring water demand.

[0142] In some embodiments provided by this utility model, the reversing valve further includes a water inlet 10, which is connected to a water inlet 801. The outer wall of the water inlet 10 is provided with a mounting portion 1001. At least one of the first elastic member 4 and the second elastic member 5 is mounted on the mounting portion 1001, and the pressing component 6 is mounted on the mounting portion 1001.

[0143] In this embodiment, the water inlet 10 can be designed with a specific internal channel or flow guiding structure to ensure that the water flow can enter the water inlet 801 smoothly and efficiently.

[0144] By setting an installation part 1001 on the outer wall of the inlet component 10, the relevant components are concentrated in one position, making the structure of the reversing valve more compact, the layout of each component reasonable, effectively utilizing space, and reducing the overall volume and space occupied by the reversing valve.

[0145] Mounting section 1001 provides clear mounting positions and fixing methods for the first elastic element 4, the second elastic element 5, and the pressing assembly 6, making the installation of these components more convenient. When assembling the directional valve, workers can quickly install each component onto mounting section 1001, reducing adjustment and positioning time during installation, improving assembly efficiency, and facilitating large-scale production and manufacturing.

[0146] The mounting section 1001 and the water inlet component 10 are an integral structure or tightly connected, which can improve the overall strength of the two and thus provide stable support for the components installed on the mounting section 1001.

[0147] Optionally, the mounting part 1001 is configured as a groove-shaped structure with an opening at the top. At least a portion of each of the first elastic member 4, the second elastic member 5, the swing block 3, and the pressing assembly 6 is disposed inside the groove-shaped structure.

[0148] In this embodiment, the groove structure enables precise positioning of each component. Each component is installed within the groove, its position relatively fixed, reducing shaking or displacement during operation and ensuring accurate relative positional relationships. This, in turn, makes the directional valve's operation more reliable and precise, improving its operational stability and accuracy.

[0149] The slotted structure effectively utilizes space, allowing multiple components to be compactly arranged within it. Compared to distributed installation, this method reduces the overall size of the directional valve, making the structure more compact and facilitating its installation and use in equipment or systems with varying space requirements.

[0150] In some embodiments provided by this utility model, the pressing component 6 includes a button 601 and a fourth elastic element 602.

[0151] The button 601 is slidably disposed on the valve body 1 in the direction of approaching or moving away from the swing block 3, and can selectively abut against either the first abutting surface 301 or the second abutting surface 302. For example, the valve body 1 is provided with a guide post or guide groove or other guide structure, and the button 601 is slidably connected to the guide structure.

[0152] The fourth elastic element 602 is used to drive the button 601 to move away from the swing block 3. Optionally, the fourth elastic element 602 is disposed between the valve body 1 and the button 601, for example, the fourth elastic element 602 is a spring.

[0153] In this embodiment, the user can slide the button 601 on the valve body 1 by simply pressing it, so as to make contact with different contact surfaces and trigger the corresponding action. The operation is intuitive, convenient and easy for the user to master.

[0154] The fourth elastic element 602 enables the button 601 to automatically reset after being pressed. When the user presses the button 601 to complete the operation, the fourth elastic element 602 drives the button 601 to move away from the swing block 3, returning the button 601 to its initial position, ready for the next operation. This automatic reset function not only facilitates continuous operation for the user but also ensures that the button 601 maintains a stable position when not in use, preventing accidental actions due to accidental touches.

[0155] Optionally, the button 601 is provided with a first mating surface 6011 and a second mating surface 6012. The first mating surface 6011 is used to abut against the first abutting surface 301, and the second mating surface 6012 is used to abut against the second abutting surface 302. Accordingly, the first mating surface 6011 and the second mating surface 6012 are arranged in a V-shape.

[0156] This design increases the contact area between button 601 and swing block 3. The larger contact area makes the force distribution between button 601 and the contact surface more uniform, which can effectively avoid wear, deformation or damage caused by excessive local pressure. This enhances the stability and reliability of the contact, ensures that button 601 and the contact surface maintain good contact during long-term use, and improves the durability and service life of the directional valve.

[0157] In some embodiments provided by this utility model, the reversing valve further includes a housing 11, and at least a portion of the valve body 1 is disposed within the housing 11.

[0158] In this embodiment, the outer shell 11 can provide physical protection for the valve body 1, protecting it from external environmental factors such as dust, moisture, corrosive substances, and mechanical impacts, thereby reducing the probability of component damage and failure and extending the service life of the valve body 1.

[0159] In addition, the housing 11 can encapsulate the internal structure of the reversing valve, making the overall appearance more regular and beautiful, and improving the visual effect of the product.

[0160] Optionally, the outer casing 11 is provided with a first clearance opening 1103 at a position corresponding to the first opening 9013, so that water discharged from the first opening 9013 can be discharged through the first clearance opening 1103. The outer casing 11 is provided with a second clearance opening 1104 at a position corresponding to the second opening 9014, so that water discharged from the second opening 9014 can be discharged through the second clearance opening 1104.

[0161] Optionally, the housing 11 includes a housing 1101 and a cover plate 1102. The housing 1101 has an opening, and the cover plate 1102 closes to the opening. The valve body 1 can be connected to the cover plate 1102 or the housing 1101 by threaded fasteners. The cover plate 1102 can be connected to the housing 11 by screwing or snap-fitting.

[0162] In some embodiments provided by this utility model, the reversing valve further includes a connecting pipe 14 and a connecting joint 15. One end of the connecting pipe 14 is connected to the water inlet 10, and the other end is connected to the connecting joint 15. The connecting joint 15 can be connected to a tap water pipeline.

[0163] In this embodiment, during actual production and installation, the position, angle, or shape of the valve body 1 may deviate from the design due to factors such as manufacturing processes. The buffering and adjustment function of the connecting pipe 14 allows for compensation of these errors within a certain range without the need for complex corrections to the valve body 1 or the pipeline, greatly improving the success rate and efficiency of installation and reducing the costs incurred due to installation failures caused by errors.

[0164] This utility model embodiment also provides a water outlet device.

[0165] Specifically, the water outlet device includes the directional valve described above. It should be noted that the water outlet device includes the directional valve, and therefore also includes all the advantages of the directional valve mentioned above. The water outlet device can be a pull-out head.

[0166] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by the appended claims.

Claims

1. A reversing valve, characterized in that, include: The valve body (1) and valve core (2) are movably connected. The valve core (2) is provided with a first limiting part (201) and a second limiting part (202) arranged at intervals along the axial direction. The swing block (3) is rotatably connected to the valve core (2) and can abut against either the first limiting part (201) or the second limiting part (202). The swing block (3) has a first abutting surface (301) corresponding to the first limiting part (201) and a second abutting surface (302) corresponding to the second limiting part (202). The first abutting surface (301) and the second abutting surface (302) intersect. The first elastic element (4) and the second elastic element (5) are respectively provided at both ends of the path along which the swing block (3) moves with the valve core (2), and are respectively used to abut against the first abutting surface (301) and the second abutting surface (302); The pressing component (6) is movable in a direction close to or away from the swing block (3) and can abut against either the first abutting surface (301) or the second abutting surface (302).

2. The reversing valve according to claim 1, characterized in that, The swing block (3) is provided with a receiving groove (303), one end of the receiving groove (303) passes through the first abutment surface (301), the other end of the receiving groove (303) passes through the second abutment surface (302), the valve core (2) passes through the receiving groove (303) and is rotatably connected to the two side walls of the receiving groove (303); And / or, the swing block (3) is configured as a triangular prism structure, in which two sides of the three sides of the triangular prism structure form the first abutment surface (301) and the second abutment surface (302) respectively, and the other side faces away from the pressing component (6).

3. The reversing valve according to claim 2, characterized in that, The valve core (2) is provided with a mounting protrusion (207), which extends along the rotation axis of the swing block (3), and the two ends of the mounting protrusion (207) protrude from the opposite side walls of the valve core (2). The mounting protrusion (207) is located in the receiving groove (303) and is rotatably connected to the opposite side walls of the receiving groove (303).

4. The reversing valve according to claim 1, characterized in that, The first elastic element (4) is configured as a spring, and one end of the first elastic element (4) is connected to the valve body (1), and the other end of the first elastic element (4) is used to abut against the first contact surface (301); And / or, the second elastic element (5) is configured as a spring, and one end of the second elastic element (5) is connected to the valve body (1), and the other end of the second elastic element (5) is used to abut against the second abutment surface (302).

5. The reversing valve according to claim 1, characterized in that, The reversing valve also includes a third elastic element (7), which is disposed between the valve body (1) and the valve core (2) and is used to drive the valve core (2) to move in a preset direction.

6. The reversing valve according to any one of claims 1-5, characterized in that, The valve body (1) includes a water distribution component (8), which is provided with an inlet (801), a first outlet (802) and a second outlet (803). The first outlet (802) and the second outlet (803) are respectively located on both sides of the axial direction of the inlet (801). The valve core (2) includes a valve stem (203) and a sealing part (204) provided on the valve stem (203). The sealing part (204) is movably provided in the water distribution member (8) and can be selectively moved between the water inlet (801) and the first water outlet (802) or the second water outlet (803). One end of the valve stem (203) extends out from the water distribution member (8) and is provided with the swing block (3).

7. The reversing valve according to claim 6, characterized in that, The water distribution component (8) includes a first pipe body (804), the pipe opening at one end of the first pipe body (804) forms the first water outlet (802), and the water inlet (801) and the second water outlet (803) are both provided on the side wall of the first pipe body (804). The sealing part (204) is located inside the first pipe body (804). The valve stem (203) with the swing block (3) extends from the other end of the first pipe body (804). The valve stem (203) is also provided with a first sealing structure (205). The first sealing structure (205) is located on the side of the second outlet (803) near the swing block (3) and is sealed to the inner wall of the first pipe body (804).

8. The reversing valve according to claim 6, characterized in that, The valve body (1) also includes a second pipe body (901) and a third pipe body (902) arranged in parallel and connected to each other; The second pipe body (901) includes a first pipe section (9011) and a second pipe section (9012) that are distributed along the axial direction and are independent of each other. The end of the first pipe section (9011) away from the second pipe section (9012) is connected to the first outlet (802). The side wall of the first pipe section (9011) is provided with a first opening (9013). The end of the second pipe section (9012) away from the first pipe section (9011) is closed. The side wall of the second pipe section (9012) is provided with a second opening (9014). One end of the third pipe (902) is connected to the second outlet (803), and the other end is connected to the second pipe section (9012).

9. The reversing valve according to any one of claims 1-5, characterized in that, The pressing assembly (6) includes a button (601) and a fourth elastic element (602). The button (601) is slidably disposed on the valve body (1) in a direction close to or away from the swing block (3), and can abut against either the first abutting surface (301) or the second abutting surface (302). The fourth elastic element (602) is used to drive the button (601) to move away from the swing block (3). And / or, the reversing valve further includes a housing (11), with at least a portion of the valve body (1) disposed within the housing (11); And / or, the rotation axis of the swing block (3) is perpendicular to the axis of the valve core (2).

10. A water outlet device, characterized in that, Includes the directional valve as described in any one of claims 1-9.