A check ball valve

CN224786480UActive Publication Date: 2026-09-22ZHEJIANG DUNAN INTELLIGENT CONTROL TECH CO LTD
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Patent Information

Application Number
CN202522301692.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-30
Publication Date
2026-09-22
Estimated Expiration
2035-10-30

AI Technical Summary

Technical Problem

但是,在相关技术中,止回阀芯直接抵持于其中一个阀座上,即阀座被压缩于阀球和止回阀芯之间,当止回阀芯存在加工误差时,很容易导致阀座的压缩量不足,进而影响阀球与阀座之间的密封配合度,从而导致止回球阀存在内漏的风险

Benefits of technology

[0023]本实用新型提供的止回球阀,通过阀球与第一阀座之间的配合,可实现止回球阀的流体通道的启闭,从而实现对管道中流体流量的控制;通过在流体通道中设置止回阀芯,可保证流体仅能流体通道的进口端流至出口端,从而实现流体在管道中的单向流动。通过设置环状垫片,环状垫片可将集中压力分散到更大的面积上,从而减少局部应力集中,以使第一阀座上受到的作用力更加均匀。通过在流体通道的内壁上设置能与环状垫片螺纹连接的内螺纹段,操作人员可以通过调节环状垫片与流体通道的螺纹连接的位置,来实现对第一阀座的压缩量的调节,且螺纹连接还能实现环状垫片的位置固定,避免发生因止回阀芯存在加工误差导致环状垫片相对阀体发生位移的情况,确保第一阀座和阀球之间的密封效果,避免该止回球阀发生内漏,保证该止回球阀的使用安全性。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to valve piece technical field especially relates to a check ball valve. The check ball valve includes valve body, valve ball subassembly and check valve core, and the valve body has the fluid passage for the fluid flow in, and the inner wall of fluid passage is provided with internal thread section, valve ball subassembly sets up in the fluid passage, and valve ball subassembly includes first valve seat, valve ball and annular gasket, and annular gasket is connected in internal thread section, and first valve seat is located between valve ball and annular gasket, and valve ball rotation sets up in the fluid passage, and cooperate with first valve seat to open and close fluid passage, check valve core is installed in the fluid passage, and is located first valve seat side away from valve ball, and check valve core is configured as only allowing fluid from the import end of fluid passage to its export end. The check ball valve can limit the installation of valve seat, thereby guaranteeing the sealing effect between valve ball and valve seat, avoiding the situation that check ball valve leaks.
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Description

Technical Field

[0001] This utility model relates to the field of valve technology, and in particular to a check ball valve. Background Technology

[0002] A check ball valve is a type of valve that automatically opens and closes by relying on the flow of the medium itself. Its core function is to prevent backflow and ensure unidirectional flow of the medium in the pipeline. Due to its advantages such as simple structure, high efficiency and energy saving, and good reliability, check ball valves are widely used in fluid transportation systems.

[0003] A check ball valve typically includes a main valve body, a check valve body, a valve ball, a valve seat, and a check valve core. The main valve body has a first flow channel, and the check valve body is connected to the outlet of the first flow channel. The valve ball and valve seat are both located in the main valve body, and they cooperate to open and close the first flow channel. The check valve core is installed in the check valve body and can selectively open and close the passage between the first and second flow channels, allowing fluid to flow only from the inlet to the outlet of the first flow channel, preventing backflow. However, in related technologies, the check valve core directly abuts against one of the valve seats, meaning the valve seat is compressed between the valve ball and the check valve core. When there are machining errors in the check valve core, it is easy to cause insufficient compression of the valve seat, which in turn affects the sealing fit between the valve ball and the valve seat, thus leading to the risk of internal leakage in the check ball valve.

[0004] Therefore, there is an urgent need for a check ball valve to solve the above problems. Utility Model Content

[0005] The purpose of this utility model is to provide a check ball valve that can limit the installation of the valve seat, thereby ensuring the sealing effect between the valve ball and the valve seat and preventing internal leakage of the check ball valve.

[0006] To achieve this objective, the present invention adopts the following technical solution:

[0007] A check ball valve, comprising:

[0008] The valve body has a fluid channel for fluid flow, and the inner wall of the fluid channel is provided with an internal thread section.

[0009] A valve ball assembly is disposed in the fluid channel. The valve ball assembly includes a first valve seat, a valve ball, and an annular gasket. The annular gasket is threaded to the internal thread section. The first valve seat is located between the valve ball and the annular gasket. The valve ball is rotatably disposed in the fluid channel and cooperates with the first valve seat to open and close the fluid channel.

[0010] A check valve core, installed in the fluid passage and located on the side of the first valve seat opposite to the valve ball, is configured to allow fluid to flow only from the inlet end to the outlet end of the fluid passage.

[0011] As a preferred embodiment of the check ball valve provided by this utility model, the first valve seat has a first through hole that can communicate with the fluid channel, and the diameter of the first through hole is greater than or equal to the inner diameter of the annular gasket.

[0012] As a preferred embodiment of the check ball valve provided by this utility model, the valve body includes a main valve body and a check valve body, one end of the check valve body extends into the main valve body and is sealed to the main valve body;

[0013] The valve ball is rotatably disposed in the main valve body, the first valve seat, the annular gasket and the check valve core are all installed in the check valve body, and the internal thread section is disposed on the inner wall of the check valve body extending into the main valve body.

[0014] As a preferred embodiment of the check ball valve provided by this utility model, a first limiting step surface is also provided on the inner wall of the end of the check valve body that extends into the main valve body. The first limiting step surface abuts against the annular gasket to limit the screwing depth of the annular gasket.

[0015] As a preferred embodiment of the check ball valve provided by this utility model, a limiting protrusion is provided on the outer periphery of the check valve body, and the outer end face of the side of the main valve body connected to the check valve body is limited and abutted against the limiting protrusion.

[0016] As a preferred embodiment of the check ball valve provided by this utility model, the side of the limiting protrusion away from the main valve body is an inclined surface, and the inclined surface gradually slopes towards the main valve body in a direction away from the axis of the fluid channel.

[0017] As a preferred embodiment of the check ball valve provided by this utility model, the outer periphery of the check valve body is provided with a wrench structure.

[0018] As a preferred embodiment of the check ball valve provided by this utility model, the main valve body includes a valve body and a protruding neck. A through hole is provided on the top of the valve body, and the protruding neck is connected to the valve body and is arranged around the through hole.

[0019] The check ball valve also includes an adjusting assembly, which includes a valve stem and a valve cover. One end of the valve stem passes through the protruding neck and the through hole in sequence and is connected to the valve ball. The valve cover is rotatably fitted on the protruding neck and is connected to the other end of the valve stem.

[0020] As a preferred embodiment of the check ball valve provided by this utility model, the adjusting assembly further includes a magnetic pin and an elastic element. A first locking groove is provided inside the valve cover, and a second locking groove corresponding to the first locking groove is provided on the protruding neck. The magnetic pin is movably disposed in the first locking groove. The two ends of the elastic element abut against the first locking groove and the magnetic pin, respectively. The magnetic pin can partially extend into the second locking groove under the elastic action of the elastic element, and can be completely accommodated in the first locking groove under the action of external magnetic force.

[0021] As a preferred embodiment of the check ball valve provided by this utility model, a second limiting step surface is further provided on the inner wall of the fluid channel, and the end of the check valve core away from the valve ball is limited and abutted against the second limiting step surface.

[0022] The beneficial effects of this utility model are:

[0023] The check ball valve provided by this utility model, through the cooperation between the valve ball and the first valve seat, can realize the opening and closing of the fluid passage of the check ball valve, thereby controlling the fluid flow in the pipeline. By setting a check valve core in the fluid passage, it can be ensured that the fluid can only flow from the inlet end to the outlet end of the fluid passage, thus realizing the unidirectional flow of the fluid in the pipeline. By setting an annular gasket, the annular gasket can distribute concentrated pressure over a larger area, thereby reducing local stress concentration and making the force on the first valve seat more uniform. By setting an internal thread section on the inner wall of the fluid passage that can be threaded to the annular gasket, the operator can adjust the compression of the first valve seat by adjusting the position of the threaded connection between the annular gasket and the fluid passage. The threaded connection can also fix the position of the annular gasket, avoiding the displacement of the annular gasket relative to the valve body due to the machining error of the check valve core, ensuring the sealing effect between the first valve seat and the valve ball, preventing internal leakage of the check ball valve, and ensuring the safe use of the check ball valve. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the structure of the check ball valve provided in this embodiment of the utility model;

[0025] Figure 2 This is a cross-sectional schematic diagram of the check ball valve provided in this embodiment of the utility model;

[0026] Figure 3 This is an exploded schematic diagram of the check ball valve provided in this embodiment of the utility model;

[0027] Figure 4 This is a cross-sectional schematic diagram of the valve body provided in an embodiment of this utility model;

[0028] Figure 5This is a partial exploded view of the main valve body and regulating assembly provided in this embodiment of the utility model;

[0029] Figure 6 This is a schematic diagram of the valve stem structure provided in an embodiment of the present utility model;

[0030] Figure 7 This is a schematic diagram of the valve cover provided in an embodiment of the present invention.

[0031] In the picture:

[0032] 10. Valve body; 101. Fluid passage; 1011. Inlet end; 1012. Outlet end; 11. Main valve body; 111. Valve body; 1110. First flow channel; 1111. Third limiting step surface; 1112. Through hole; 112. Protruding neck; 1121. Second locking groove; 1122. Guide groove; 12. Check valve body; 120. Second flow channel; 121. Wrench structure; 122. Second limiting step surface; 123. Limiting protrusion; 13. First seal;

[0033] 20. Adjusting assembly; 21. Valve stem; 211. Insertion end; 212. Second limiting hole; 22. Valve cover; 221. First limiting hole; 222. Second insertion groove; 223. First locking groove; 224. Fixing hole; 225. Weight reduction groove; 226. Fixing end; 23. Limiting pin; 24. Magnetic pin; 25. Elastic element; 26. Guide pin;

[0034] 30. Valve ball assembly; 31. First valve seat; 310. First through hole; 32. Second valve seat; 320. Second through hole; 33. Valve ball; 331. Third through hole; 332. First insertion groove; 34. Annular gasket;

[0035] 40. Check valve core; 401. Second seal;

[0036] 51. Fourth sealing element; 52. Third sealing element. Detailed Implementation

[0037] The embodiments of this utility model are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar parts or parts having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.

[0038] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection or a detachable connection; a mechanical connection or an electrical connection; a direct connection or an indirect connection through an intermediate medium; or the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0039] In the description of this utility model, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0040] like Figures 1-2 As shown, this embodiment provides a check ball valve, which includes a valve body 10, a valve ball assembly 30, and a check valve core 40. The valve body 10 has a fluid channel 101 for fluid flow, and the inner wall of the fluid channel 101 is provided with an internal thread section. The valve ball assembly 30 is disposed in the fluid channel 101 and includes a first valve seat 31, a valve ball 33, and an annular gasket 34. The annular gasket 34 is threaded to the internal thread section. The first valve seat 31 is located between the valve ball 33 and the annular gasket 34. The valve ball 33 is rotatably disposed in the fluid channel 101 and cooperates with the first valve seat 31 to open and close the fluid channel 101. The check valve core 40 is installed in the fluid channel 101 and is located on the side of the first valve seat 31 away from the valve ball 33. The check valve core 40 is configured to allow fluid to flow only from the inlet end 1011 to the outlet end 1012 of the fluid channel 101.

[0041] Specifically, such as Figure 2 and Figure 3As shown, the valve ball 33 has a third through hole 331, and the first valve seat 31 has a first through hole 310. When the valve ball 33 rotates to the point where the third through hole 331 intersects with the first through hole 310 of the first valve seat 31, and the pressure difference between the inlet end 1011 and the outlet end 1012 of the fluid passage 101 is large, the check valve core 40 can be opened. The check ball valve is in the open state, and fluid can flow from the inlet end 1011 to the outlet end 1012 of the fluid passage 101. As the valve ball 33 rotates, the range of intersection between the third through hole 331 and the first through hole 310 of the first valve seat 31 also changes, and the fluid flow rate through the fluid passage 101 also changes, thereby realizing the control of the pipeline flow rate. When the pressure difference between the inlet end 1011 and the outlet end 1012 of the fluid passage 101 is small and insufficient to open the check valve core 40, the check ball valve is in the first closed state. When the valve ball 33 rotates to the point where the third through hole 331 is misaligned with the first through hole 310 of the first valve seat 31, the check ball valve is in the second closed state. Furthermore, when the fluid pressure at the outlet end 1012 is high, the check valve core 40 closes, thereby preventing backflow and achieving unidirectional flow of fluid in the pipeline.

[0042] In some embodiments, the first valve seat 31 is an annular rubber pad, which can fit tightly with the valve ball 33 through its own deformation, thereby achieving a sealing and resisting relationship between the two. Furthermore, the use of rubber material for the first valve seat 31 can reduce the wear between the two when the valve ball 33 rotates, thereby extending the service life of the check ball valve.

[0043] It should be noted that the specific structure of the check valve core 40 and its one-way check function are technologies well known to those skilled in the art. This embodiment will not elaborate on the specific structure and working principle of the check valve core 40.

[0044] The check ball valve provided in this embodiment, through the cooperation between the valve ball 33 and the first valve seat 31, can realize the opening and closing of the fluid passage 101 of the check ball valve, thereby controlling the flow rate of the fluid in the pipeline; by setting the check valve core 40 in the fluid passage 101, it can be ensured that the fluid can only flow from the inlet end 1011 to the outlet end 1012 of the fluid passage 101, thereby realizing the unidirectional flow of the fluid in the pipeline. By setting the annular gasket 34, the annular gasket 34 can distribute the concentrated pressure over a larger area, thereby reducing local stress concentration and making the force on the first valve seat 31 more uniform. By providing an internal thread section on the inner wall of the fluid channel 101 that can be threadedly connected to the annular gasket 34, the operator can adjust the compression of the first valve seat 31 by adjusting the position of the threaded connection between the annular gasket 34 and the fluid channel 101. The threaded connection can also fix the position of the annular gasket 34, preventing displacement of the annular gasket 34 relative to the valve body 10 due to machining errors in the check valve core 40. This ensures the sealing effect between the first valve seat 31 and the valve ball 33, prevents internal leakage of the check ball valve, and guarantees the safety of the check ball valve in use.

[0045] Understandably, when the actual axial length of the check valve core 40 is greater than the initial design length, the check valve core 40 will press the first valve seat 31 more tightly against the valve ball 33, resulting in the actual compression of the first valve seat 31 being greater than its designed compression. In this case, the seal between the first valve seat 31 and the valve ball 33 is tighter, and this situation will not cause internal leakage in the check ball valve. When the actual axial length of the check valve core 40 is less than the initial design length, the first valve seat 31 can be accurately installed in the valve body 10 under the limiting action of the annular gasket 34, so that the actual compression of the first valve seat 31 is approximately equal to its designed compression, thereby ensuring a good sealing effect between the first valve seat 31 and the valve ball 33 and avoiding internal leakage in the check ball valve. In other words, the aforementioned "machining error of the check valve core 40" specifically refers to the situation where the actual axial length of the check valve core 40 is less than the initial design length.

[0046] In some embodiments, the annular gasket 34 is made of a hard material to facilitate the machining of external threads on its outer periphery. Optionally, the hard material includes, but is not limited to, hard alloys, stainless steel, titanium alloys, etc. Hard materials have the advantages of high structural strength, good dimensional stability, and corrosion resistance, which can maintain long-term sealing performance and reduce the risk of leakage in the check ball valve.

[0047] like Figure 4 and combined Figure 2As shown, the valve body 10 includes a main valve body 11 and a check valve body 12. One end of the check valve body 12 extends into the main valve body 11 and is sealed to the main valve body 11. The valve ball 33 is rotatably disposed in the main valve body 11. The first valve seat 31, the annular gasket 34, and the check valve core 40 are all installed in the check valve body 12. The internal thread section is disposed on the inner wall of the end of the check valve body 12 that extends into the main valve body 11.

[0048] Specifically, the main valve body 11 has a first flow channel 1110, and the check valve body 12 has a second flow channel 120. The first flow channel 1110 and the second flow channel 120 are connected to form the aforementioned fluid passage 101. The end of the first flow channel 1110 away from the check valve body 12 forms an inlet end 1011, and the end of the second flow channel 120 away from the main valve body 11 forms an outlet end 1012. The valve ball 33 cooperates with the first valve seat 31 to open and close the first flow channel 1110, and the check valve core 40 is used to selectively open and close the passage between the first flow channel 1110 and the second flow channel 120.

[0049] In some embodiments, the check valve body 12 is threaded onto the main valve body 11. The threaded connection has the advantages of simple structure, tight connection, and convenient assembly and disassembly.

[0050] In some embodiments, a first sealing element 13 is provided between the main valve body 11 and the check valve body 12 to achieve a sealed connection between the main valve body 11 and the check valve body 12, preventing fluid leakage from the gap between them, thereby ensuring the safety of the check ball valve in use. The first sealing element 13 is a rubber sealing ring, which has good sealing effect, is easy to assemble, and is low in cost.

[0051] In some embodiments, a limiting protrusion 123 is provided on the outer periphery of the check valve body 12. The outer end face of the side of the main valve body 11 connected to the check valve body 12 abuts against the limiting protrusion 123 to limit the installation of the check valve body 12 and the main valve body 11, so as to avoid the compression of the first valve seat 31 due to excessive or insufficient screwing depth between the check valve body 12 and the main valve body 11, thereby further ensuring the sealing effect between the first valve seat 31 and the valve ball 33.

[0052] In some embodiments, the side of the limiting protrusion 123 facing away from the main valve body 11 is a slope, which gradually slopes towards the main valve body 11 from the direction away from the fluid channel 101. This design can reduce the amount of material used in the limiting protrusion 123 while ensuring the limiting effect of the limiting protrusion 123 on the main valve body 11, thereby reducing the material cost of the check valve body 12.

[0053] like Figure 1 and Figure 2As shown, a wrench structure 121 is provided on the outer periphery of the check valve body 12 to facilitate the operator to apply force to the check valve body 12 using disassembly tools, thereby realizing the quick disassembly and assembly of the check valve body 12 and the main valve body 11.

[0054] In some embodiments, the diameter of the first through hole 310 of the first valve seat 31 is greater than or equal to the inner diameter of the annular gasket 34, so that the first valve seat 31 is completely abutted by the annular gasket 34, further ensuring the uniformity of the force on the first valve seat 31 along its own circumferential direction.

[0055] In some embodiments, a first limiting step surface (not shown in the figure) is provided on the inner wall of the end of the check valve body 12 that extends into the main valve body 11. The first limiting step surface abuts against the annular gasket 34 to limit the screwing depth of the annular gasket 34, so as to prevent the annular gasket 34 from being screwed too deep and coming out of the internal thread section, thereby realizing the quick and accurate installation of the annular gasket 34 and the check valve body 12.

[0056] In other embodiments, a first annular limiting groove is provided on the inner wall of the check valve body 12 extending into the main valve body 11. A first limiting ring is detachably installed in the first annular limiting groove. The end of the check valve core 40 facing away from the first valve seat 31 is limited and abutted against the first limiting ring. This design can also achieve the above-mentioned effect.

[0057] like Figure 2 and Figure 4 As shown, the inner wall of the fluid channel 101 (specifically the second flow channel 120) is also provided with a second limiting step surface 122, and the end of the check valve core 40 facing away from the first valve seat 31 is limited and abutted against the second limiting step surface 122. That is to say, the check valve core 40 is axially limited between the annular gasket 34 and the second limiting step surface 122, thereby achieving precise installation of the check valve core 40.

[0058] In other embodiments, a second annular limiting groove is provided on the inner wall of the fluid channel 101 (specifically the second flow channel 120), and a second limiting ring is detachably installed in the second annular limiting groove. The end of the check valve core 40 facing away from the first valve seat 31 is limited and abutted against the second limiting ring. This design can also achieve the above-mentioned effect.

[0059] In some embodiments, a second seal 401 is provided between the check valve core 40 and the inner wall of the fluid passage 101. The second seal 401 ensures the sealing performance between the outer periphery of the check valve core 40 and the check valve body 12, preventing fluid leakage from the gap between the check valve core 40 and the check valve body 12, further ensuring the safety of the check ball valve. The second seal 401 is a rubber sealing ring, which provides good sealing performance, is easy to assemble, and is low in cost.

[0060] like Figure 2 and Figure 3 As shown, the valve ball assembly 30 also includes a second valve seat 32. The first valve seat 31 and the second valve seat 32 are located on both sides of the valve ball 33, and both are in sealing fit with the valve ball 33. Specifically, the second valve seat 32 has a second through hole 320. As the valve ball 33 rotates, when one end of the third through hole 331 of the valve ball 33 is directly opposite to the first through hole 310 of the first valve seat 31, the other end of the third through hole 331 of the valve ball 33 is directly opposite to the second through hole 320 of the second valve seat 32. At this time, the fluid flow of the check ball valve is at its maximum. When one end of the third through hole 331 of the valve ball 33 is completely misaligned from the first through hole 310 of the first valve seat 31, the other end of the third through hole 331 of the valve ball 33 is also completely misaligned from the second through hole 320 of the second valve seat 32. At this time, the check ball valve is in the second closed state, and the fluid flow is zero. By setting a first valve seat 31 and a second valve seat 32 that can simultaneously seal and cooperate with the valve ball 33, the uniformity of force on the valve ball 33 can be ensured, thereby achieving a good sealing effect.

[0061] In some embodiments, the inner wall of the main valve body 11 is provided with a third limiting step surface 1111, and the end of the second valve seat 32 facing away from the valve ball 33 is limited and abutted against the third limiting step surface 1111. That is, the second valve seat 32 is compressed between the third limiting step surface 1111 and the valve ball 33, thereby ensuring a good sealing effect between the second valve seat 32 and the valve ball 33.

[0062] It needs to be explained that, such as Figure 2 As shown, in this embodiment, the check valve core 40 is installed downstream of the valve ball assembly 30. In other embodiments, the check valve core 40 can also be installed upstream of the valve ball assembly 30, achieving the same check function. When the check valve core 40 is installed downstream of the valve ball assembly 30, Figure 2 The valve seat located on the right side (i.e., near the inlet end 1011) is the first valve seat 31, and the valve seat located on the left side (i.e., near the outlet end 1012) is the second valve seat 32; when the check valve core 40 is installed upstream of the valve ball assembly 30, Figure 2 The valve seat located on the left side (i.e., near the outlet end 1012) is the first valve seat 31, and the valve seat located on the right side (i.e., near the inlet end 1011) is the second valve seat 32.

[0063] Figure 5 and combined Figure 2 , Figure 3As shown, the check ball valve also includes an adjusting assembly 20. The main valve body 11 includes a valve body 111 and a protruding neck 112. A through hole 1112 is provided on the top of the valve body 111. The protruding neck 112 is connected to the valve body 111 and surrounds the through hole 1112. A first flow channel 1110 is formed inside the valve body 111. The adjusting assembly 20 includes a valve stem 21 and a valve cover 22. One end of the valve stem 21 passes through the protruding neck 112 and the through hole 1112 in sequence and is connected to the valve ball 33. The valve cover 22 is rotatably fitted on the protruding neck 112 and is connected to the other end of the valve stem 21. Rotating the valve cover 22 can drive the valve stem 21 to rotate synchronously, thereby realizing the rotation of the valve ball 33 to open and close the fluid channel 101.

[0064] In some embodiments, the valve stem 21 and the valve ball 33 are interlocked to ensure that the valve ball 33 can rotate synchronously with the valve stem 21. Specifically, as shown in... Figure 3 and Figure 6 As shown, in this embodiment, the valve stem 21 is provided with a plug end 211, and the valve ball 33 is provided with a first plug groove 332 that mates with the plug end 211. In other embodiments, the plug end 211 can also be provided on the valve ball 33, and the first plug groove 332 can be provided on the valve stem 21, achieving the same effect.

[0065] In some embodiments, the valve stem 21 is inserted into the valve cover 22 to ensure that the valve stem 21 rotates synchronously with the valve cover 22. Specifically, as shown in... Figures 5-7 As shown, in this embodiment, a second insertion groove 222 is provided inside the valve cover 22, and the end of the valve stem 21 facing away from the valve ball 33 is inserted into the second insertion groove 222, thereby achieving a fixed connection between the valve stem 21 and the valve cover 22. In other embodiments, the second insertion groove 222 can also be provided on the valve stem 21, and an insertion protrusion that can be inserted and cooperate with the second insertion groove 222 can be provided inside the valve cover 22, which can achieve the same effect.

[0066] Continue as Figures 5-7 and combined Figure 2 As shown, the adjustment assembly 20 also includes a limiting pin 23. The valve cover 22 is provided with a first limiting hole 221, and the valve stem 21 is provided with a second limiting hole 212 corresponding to the first limiting hole 221. The limiting pin 23 is sequentially inserted into the first limiting hole 221 and the second limiting hole 212 to limit the installation between the valve cover 22 and the protruding neck 112, so as to prevent the valve cover 22 from coming off along the axial direction of the protruding neck 112 during rotation, which would affect the position adjustment of the valve ball 33.

[0067] In some embodiments, at least one fourth seal 51 is provided between the valve stem 21 and the protruding neck 112 to ensure the sealing between the two, thereby preventing fluid in the first flow channel 1110 from leaking between the valve stem 21 and the protruding neck 112. It should be noted that the fourth seal 51 is an O-ring. O-rings have a simple structure, low price, corrosion resistance, and good sealing effect.

[0068] In some embodiments, a third sealing element 52 is provided between the valve cover 22 and the protruding neck 112 to ensure the sealing performance between the valve cover 22 and the protruding neck 112. The third sealing element 52 serves two purposes: firstly, it ensures a stable fit between the valve cover 22 and the protruding neck 112 through its elastic force; secondly, it works in conjunction with the fourth sealing element 51 to provide a double seal between the regulating assembly 20 and the main valve body 11, further ensuring the sealing performance and operational safety of the check ball valve.

[0069] like Figure 2 , Figure 5 and Figure 7 As shown, the adjustment assembly 20 also includes a magnetic pin 24 and an elastic element 25. A first locking groove 223 is provided in the valve cover 22, and a second locking groove 1121 corresponding to the first locking groove 223 is provided on the protruding neck 112. The magnetic pin 24 is movably disposed in the first locking groove 223. The two ends of the elastic element 25 abut against the first locking groove 223 and the magnetic pin 24 respectively. The magnetic pin 24 can partially extend into the second locking groove 1121 under the elastic action of the elastic element 25, and can be completely accommodated in the first locking groove 223 under the action of external magnetic force.

[0070] Specifically, when no external magnetic force is applied, the magnetic pin 24 extends partially into the second locking groove 1121 under the elastic action of the elastic element 25. That is, the magnetic pin 24 is simultaneously housed in both the first locking groove 223 and the second locking groove 1121, thus locking the valve cover 22 to the main valve body 11. At this time, the valve cover 22 cannot rotate relative to the main valve body 11, thereby ensuring the anti-theft capability of the check ball valve. When an external magnetic force is applied, the magnetic pin 24 overcomes the elastic action of the elastic element 25 and is fully housed in the first locking groove 223. At this time, the valve cover 22 can rotate freely relative to the main valve body 11, simultaneously driving the valve stem 21 and the valve ball 33 to rotate, thereby controlling the fluid flow rate.

[0071] In some embodiments, there are two second locking slots 1121, each spaced circumferentially along the neck 112. When one of the second locking slots 1121 is directly opposite the first locking slot 223, the check ball valve is in the open state; when the other second locking slot 1121 is directly opposite the first locking slot 223, the check ball valve is in the second closed state. This design further ensures the safety of the check ball valve, meaning that it has a locking function regardless of its state.

[0072] In some embodiments, the adjusting assembly 20 further includes a guide pin 26, a fixing hole 224 is provided in the valve cover 22, and a guide groove 1122 is provided on the top surface of the protruding neck 112. One end of the guide pin 26 is fixed in the fixing hole 224, and the other end of the guide pin 26 is guided and fitted in the guide groove 1122. The guide groove 1122 extends circumferentially along the protruding neck 112, and the central angle of the guide groove 1122 is equal to the central angle between the two second locking grooves 1121. When the valve cover 22 rotates relative to the main valve body 11 until the guide pin 26 abuts against one side of the guide groove 1122, one of the second locking grooves 1121 is directly opposite the first locking groove 223; when the valve cover 22 rotates relative to the main valve body 11 until the guide pin 26 abuts against the other side of the guide groove 1122, the other second locking groove 1121 is directly opposite the first locking groove 223. By setting the guide pin 26 and the guide groove 1122, the rotation of the valve cover 22 can be reminded to be in place. That is, when the guide pin 26 abuts against a certain groove wall of the guide groove 1122, the valve cover 22 is rotated into place. At this time, the external magnetic attraction can be canceled, and the magnetic pin 24 can be inserted into the corresponding second locking groove 1121 under the elastic action of the elastic element 25, so as to realize the locking function of the check ball valve.

[0073] In some embodiments, the check ball valve also includes a magnetic key (not shown), which provides external magnetic force to the magnetic pin 24, and the operator can rotate the magnetic key to rotate the valve cover 22.

[0074] In some embodiments, a fixed end 226 is provided on the top of the valve cover 22, and a fixing groove is provided on the magnetic key to engage with the fixed end 226, thereby achieving a fixed connection between the valve cover 22 and the magnetic key, and ensuring that the valve cover 22 can rotate synchronously with the magnetic key. In this embodiment, the cross-sectional shape of the fixed end 226 is a pentagonal structure, and the shape of the fixing groove is adapted to the shape of the fixed end 226. In other embodiments, the cross-sectional shape of the fixed end 226 can also be set as a non-circular structure such as a triangle, quadrilateral, hexagon, or ellipse. This embodiment does not limit this, as long as it ensures that the valve cover 22 and the magnetic key can be fixedly connected and that relative rotation between the two is avoided.

[0075] It should be noted that magnetic keys are a technology well known to those skilled in the art, and the specific structure of the magnetic key will not be described in detail in this embodiment.

[0076] In some embodiments, the valve cover 22 is also provided with a weight reduction groove 225, which can reduce the weight of the check ball valve and improve its ease of use; on the other hand, it can also save material costs.

[0077] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.

Claims

1. A check ball valve, characterized in that, include: The valve body (10) has a fluid channel (101) for fluid flow, and the inner wall of the fluid channel (101) is provided with an internal thread section. A valve ball assembly (30) is disposed in the fluid channel (101). The valve ball assembly (30) includes a first valve seat (31), a valve ball (33), and an annular gasket (34). The annular gasket (34) is threaded to the internal thread section. The first valve seat (31) is located between the valve ball (33) and the annular gasket (34). The valve ball (33) is rotatably disposed in the fluid channel (101) and cooperates with the first valve seat (31) to open and close the fluid channel (101). A check valve core (40) is installed in the fluid passage (101) and located on the side of the first valve seat (31) away from the valve ball (33). The check valve core (40) is configured to allow fluid to flow only from the inlet end (1011) of the fluid passage (101) to its outlet end (1012).

2. The check ball valve according to claim 1, characterized in that, The first valve seat (31) has a first through hole (310) that can communicate with the fluid channel (101), and the diameter of the first through hole (310) is greater than or equal to the inner diameter of the annular gasket (34).

3. The check ball valve according to claim 1, characterized in that, The valve body (10) includes a main valve body (11) and a check valve body (12). One end of the check valve body (12) extends into the main valve body (11) and is sealed to the main valve body (11). The valve ball (33) is rotatably disposed in the main valve body (11), the first valve seat (31), the annular gasket (34) and the check valve core (40) are all installed in the check valve body (12), and the internal thread section is disposed on the inner wall of the check valve body (12) extending into the main valve body (11).

4. The check ball valve according to claim 3, characterized in that, The inner wall of the check valve body (12) extending into the main valve body (11) is also provided with a first limiting step surface, which abuts against the annular gasket (34) to limit the screwing depth of the annular gasket (34).

5. The check ball valve according to claim 3, characterized in that, The outer periphery of the check valve body (12) is provided with a limiting protrusion (123), and the outer end face of the side of the main valve body (11) connected to the check valve body (12) is limited and abutted against the limiting protrusion (123).

6. The check ball valve according to claim 5, characterized in that, The limiting protrusion (123) is inclined on the side away from the main valve body (11), and the inclined surface gradually slopes towards the main valve body (11) in a direction away from the axis of the fluid channel (101).

7. The check ball valve according to claim 3, characterized in that, The outer periphery of the check valve body (12) is provided with a lever structure (121).

8. The check ball valve according to claim 3, characterized in that, The main valve body (11) includes a valve body (111) and a protruding neck (112). The valve body (111) has a through hole (1112) at its top. The protruding neck (112) is connected to the valve body (111) and is arranged around the through hole (1112). The check ball valve also includes an adjustment assembly (20), which includes a valve stem (21) and a valve cover (22). One end of the valve stem (21) passes through the protruding neck (112) and the through hole (1112) in sequence and is connected to the valve ball (33). The valve cover (22) is rotatably fitted on the protruding neck (112) and is connected to the other end of the valve stem (21).

9. The check ball valve according to claim 8, characterized in that, The adjustment assembly (20) further includes a magnetic pin (24) and an elastic element (25). A first locking groove (223) is provided in the valve cover (22), and a second locking groove (1121) corresponding to the first locking groove (223) is provided on the protruding neck (112). The magnetic pin (24) is movably disposed in the first locking groove (223). The two ends of the elastic element (25) abut against the first locking groove (223) and the magnetic pin (24) respectively. The magnetic pin (24) can partially extend into the second locking groove (1121) under the elastic action of the elastic element (25), and can be completely accommodated in the first locking groove (223) under the action of external magnetic force.

10. The check ball valve according to any one of claims 1 to 9, characterized in that, The inner wall of the fluid channel (101) is also provided with a second limiting step surface (122), and the end of the check valve core (40) away from the valve ball (33) is limited and abutted against the second limiting step surface (122).