A low-load, high-pressure resistant valve suitable for the coal, petrochemical and wind power industries

Through the design of magnetic coupling components and adjustment components, the leakage problem of ball valves in the coal, petrochemical and wind power industries is solved, the effect of rapid sealing and loss reduction is achieved, and the high-pressure resistance of the valve is improved.

CN119737469BActive Publication Date: 2025-09-09SHANGHAI YUEQIAN ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202510019667.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-07
Publication Date
2025-09-09
Estimated Expiration
2045-01-07

AI Technical Summary

Technical Problem

Existing ball valves have leakage problems in the coal, petrochemical and wind power industries and cannot be quickly sealed, resulting in huge losses.

Method used

The combined design of magnetic coupling components, adjustment components and push-blocking components is adopted to achieve real-time monitoring and automatic blocking of the valve body. The main ball flow channel is quickly closed by the auxiliary ball to reduce leakage loss, and the input end is quickly blocked in case of leakage.

Benefits of technology

It can quickly seal the leak, reduce losses, improve the high pressure resistance and reliability of the valve, and reduce the maintenance frequency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN119737469B_ABST
Patent Text Reader

Abstract

The present invention discloses a low-load, high-pressure resistant valve suitable for the coal, petrochemical and wind power industries, relating to the technical field of ball valves, comprising a valve body and a controller, a magnetic coupling component and an adjusting component being installed on the side of the valve body, a sealing component being installed at the input end of the valve body, a push-and-block component being installed at the output end of the valve body, a main sphere being installed inside the valve body cavity, the main sphere being matched with the magnetic coupling component, an auxiliary sphere being installed inside the main sphere, the auxiliary sphere being matched with the adjusting component, and the driving component being also matched with the push-and-block component, the main sphere and the auxiliary sphere being both capable of controlling the flow, and the push-and-block component being capable of assisting in blocking the valve body, so that the device can reduce the load on the valve body when in use, and can automatically block the pipeline for conveying the medium when needed.
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Description

Technical Field

[0001] The present invention relates to the technical field of ball valves, in particular to a low-load, high-pressure resistant valve suitable for the coal, petrochemical and wind power industries. Background Art

[0002] A ball valve is a valve whose opening and closing part is a sphere. The ball is driven by the valve stem and rotates around the axis of the valve stem. The ball is provided with a channel for the flow of the medium. The medium flows in the channel of the ball, thereby achieving conduction. When the ball rotates to close the channel, it blocks the medium and achieves a blocking effect.

[0003] However, the ball valve can only seal the medium passing through the valve body, and the leakage generated at the connection between the two ends of the ball valve cannot be sealed by the ball valve. Although the leakage can be detected by general detection components and the users and staff can be reminded to perform maintenance, the leakage may continue to expand. Even if it does not expand, long-term leakage will cause more losses. In the coal, petrochemical and wind power industries, when leakage occurs, if it is not quickly sealed, huge losses will occur. Summary of the Invention

[0004] The purpose of the present invention is to provide a low-load, high-pressure resistant valve suitable for the coal, petrochemical and wind power industries, so as to solve the problems raised in the prior art.

[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a low-load, high-pressure resistant valve suitable for the coal, petrochemical and wind power industries, comprising a valve body and a controller, a magnetic coupling component and an adjusting component installed on the side of the valve body, a sealing component installed at the input end of the valve body, a push-blocking component installed at the output end of the valve body, a main sphere installed inside the valve body cavity, the main sphere cooperates with the magnetic coupling component, an auxiliary sphere installed inside the main sphere, the auxiliary sphere cooperates with the adjusting component, the adjusting component also cooperates with the push-blocking component, the main sphere and the auxiliary sphere can both control the flow, and the push-blocking component can assist in blocking the valve body.

[0006] Furthermore, the sealed component includes a fixed plate and a mounting plate, which are respectively installed on the valve body and the external pipe. The fixed plate and the mounting plate are connected by a flange. A flow sensor is installed between the fixed plate and the mounting plate, and the flow sensor is connected to the controller.

[0007] Furthermore, the magnetic coupling assembly includes a support plate, which is installed on the valve body, and a main valve motor is installed on the support plate. The support plate is connected to the main valve motor through multiple groups of cylinders, and a drive disk is installed at the output end of the main valve motor. A mating disk is installed between the support plates, and a mating screw is installed at the other end of the mating disk. The other end of the mating screw is connected to the main sphere, and a screw groove is opened on the main sphere, and the mating screw is connected to the screw groove.

[0008] Furthermore, the driving disk is composed of multiple groups of magnets, and the matching disk is also composed of multiple groups of magnets. The magnets on the driving disk are respectively installed on the driving disk in a staggered manner, and the magnets on the matching disk are also respectively installed on the matching disk itself in a staggered manner.

[0009] The magnets on the driving disk have the N poles of half of the magnets facing the mating disk, and the S poles of the other half of the magnets facing the mating disk;

[0010] The magnets on the matching disk have half of their N poles facing the driving disk, and the other half of their S poles facing the driving disk.

[0011] Furthermore, when the mating screw rotates forward: the main ball rotates along with the mating screw;

[0012] When the mating screw is reversed, the mating screw will separate from the main ball.

[0013] Furthermore, the adjustment component includes an inclined block, and adjustment motors are respectively installed on both sides of the inclined block. One group of the adjustment motors cooperates with the auxiliary sphere, and the other group of the adjustment motors cooperates with the pushing and blocking component.

[0014] Furthermore, an adjusting screw is installed on the bottom surface of the valve body, and the other end of the adjusting screw is connected to the auxiliary ball through the main ball. The auxiliary ball is also provided with a screw groove, and the adjusting screw is connected to the screw groove on the auxiliary ball. The other end of the adjusting screw is connected to a set of adjusting motors;

[0015] When the adjusting screw rotates forward, the auxiliary ball rotates along with the adjusting screw.

[0016] When the adjusting screw is reversed, the adjusting screw will separate from the auxiliary sphere.

[0017] Furthermore, the push-blocking assembly includes multiple groups of limiting sleeves and drive rings, the drive rings are installed on the outside of the valve body output end through bearings, one group of the adjusting motor output ends are connected to the drive rings, the drive rings are composed of multiple groups of magnets, the limiting sleeves are installed equidistantly at the valve body output end, and multiple groups of the limiting sleeves are respectively equipped with push rods, the push rods are connected to the limiting sleeves through threads, and the push rods are composed of multiple groups of magnets.

[0018] Furthermore, the magnets on the driving ring cooperate with the magnets on the push rod, and the north poles of half of the magnets on the driving ring face the push rod, while the south poles of the other half of the magnets face the push rod;

[0019] The magnets on the push rod have N poles of half of the magnets facing the driving ring, and S poles of the other half of the magnets facing the driving ring.

[0020] Furthermore, the controller is installed outside the valve body, and a control panel is installed above the controller.

[0021] Compared with the prior art, the present invention has the following beneficial effects:

[0022] 1. When the valve body is in use, it can monitor the status of the connection at both ends of the valve body in real time, and then perform different operations under different states. In specific use, when leakage occurs at the valve body connection, the controller can quickly block the input end pipe for maintenance or replacement;

[0023] 2. When the valve body is opened and closed, the input end can be closed by the main ball. However, during the closing process of the ball valve, some gas or liquid will enter the flow channel of the main ball through the gap of the main ball flow channel. Then, when the main ball completely closes the valve body, the liquid or gas will remain in the flow channel of the main ball when it is closed, thereby increasing the load of the main ball. The device can first block the main ball flow channel through the auxiliary ball when closing, quickly block it, and rotate the main ball at the same time. Even if some gas still enters the main ball flow channel through the gap, the remaining liquid or flow can be discharged at this time.

[0024] 3. When leakage occurs at the connection points at both ends of the valve body or the flow rate changes drastically, the magnetic coupling component of the valve body can drive the mating screw to separate the mating screw from the main ball and the valve body. At the same time, the adjusting component will drive the adjusting screw to separate the adjusting screw from the auxiliary ball, the main ball and the valve body. After that, the adjusting component will drive the pushing and blocking component to push the loosened main ball so that the main ball can press against the external feed pipe, thereby sealing the pipeline. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is a schematic structural diagram of the present invention as a whole;

[0026] Figure 2 It is a schematic diagram of the inverted structure of the present invention as a whole;

[0027] Figure 3 It is a structural schematic diagram of a part of the valve body of the present invention;

[0028] Figure 4 This is a schematic diagram of the split structure of the driving disc and the matching disc of the present invention;

[0029] Figure 5 It is a schematic structural diagram of the present invention;

[0030] Figure 6 Schematic diagram of the coordination structure of the main sphere and the auxiliary sphere of the present invention;

[0031] Figure 7 This is a schematic diagram of the disassembled structure of the sealed component of the present invention;

[0032] Figure 8 For the present invention Figure 2 Enlarged diagram of point "A" in the figure.

[0033] In the figure: 1. Valve body; 11. Main sphere; 12. Auxiliary sphere; 2. Magnetic coupling assembly; 21. Support plate; 22. Main valve motor; 23. Drive disk; 24. Matching disk; 25. Matching screw; 3. Adjustment assembly; 31. Bevel block; 32. Adjustment motor; 33. Adjustment screw; 4. Sealing assembly; 41. Fixing plate; 42. Mounting plate; 5. Push-block assembly; 51. Limit sleeve; 52. Drive ring; 53. Push rod; 6. Controller. DETAILED DESCRIPTION

[0034] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0035] Example: Figures 1-8 As shown, the present invention provides a low-load, high-pressure resistant valve technical solution suitable for the coal, petrochemical and wind power industries, including a valve body 1 and a controller 6, characterized in that: a magnetic coupling component 2 and an adjusting component 3 are installed on the side of the valve body 1, a sealing component 4 is installed at the input end of the valve body 1, and a push-blocking component 5 is installed at the output end of the valve body 1. A main ball 11 is installed inside the cavity of the valve body 1, and the main ball 11 cooperates with the magnetic coupling component 2. An auxiliary ball 12 is installed inside the main ball 11, and the auxiliary ball 12 cooperates with the adjusting component 3. The adjusting component 3 also cooperates with the push-blocking component 5. The main ball 11 and the auxiliary ball 12 can both control the flow rate, and the push-blocking component 5 can assist in blocking the valve body 1;

[0036] Therefore, when the device is in use, it can be applied to the coal petrochemical and wind power industries through the valve body 1. When the valve body 1 transmits liquid or gas, it can automatically block the transmission of the input end in case of leakage, so as to generate more losses before maintenance. In specific use, the input end of the valve body 1 is reinforced by the sealing component 4, and the push-blocking component 5 of the device can seal the leakage caused by aging at the connection of the valve body 1, thereby reducing the leakage consumption caused by aging when the staff arrives for maintenance. In normal operation, the valve body 1 can adjust the main ball 11 through the magnetic coupling component 2, and can adjust the auxiliary ball 12 through the adjustment component 3, and at the same time adjust the component 3 can also drive the plugging assembly 5. The main sphere 11 and the auxiliary sphere 12 are respectively provided with flow channels, and the auxiliary sphere 12 is installed in the flow channel of the main sphere 11. At the same time, the main sphere 11 and the auxiliary sphere 12 are concentrically arranged together. Therefore, when the device is blocking liquid or gas, even if the main sphere 11 is completely closed, the flow channel of the main sphere 11 can be blocked by quickly rotating the auxiliary sphere 12. Then, by rotating the main sphere 11, the liquid or gas remaining in the flow channel can be discharged. Therefore, when the device is in use, it can speed up the closing process and reduce the liquid or gas flowing into the flow channel during closing. In addition, it can block the input pipe if leakage occurs at the connection.

[0037] like Figure 1 and Figure 7 As shown, in this embodiment, specifically, the sealing component 4 includes a fixing plate 41 and a mounting plate 42, the fixing plate 41 and the mounting plate 42 are respectively mounted on the valve body 1 and the external pipe, the fixing plate 41 and the mounting plate 42 are connected by a flange, a flow sensor is installed between the fixing plate 41 and the mounting plate 42, and the flow sensor is connected to the controller 6;

[0038] When in use, the sealing component 4 of the device can reinforce the connection at the input end of the valve body 1. Since half of the connection between the valve body 1 and the pipeline is exposed to the outside, it will be exposed to external wind and rain for a long time, which will cause aging of the pipeline and the connection. Then, the fixing plate 41 and the mounting plate 42 of the sealing component 4 can be used to reinforce the input end of the valve body 1 and reduce the loss of the connection caused by the outside world. At the same time, the sealing component 4 of the device can also detect the flow at the input end of the valve body 1. By detecting the flow and the change in the flow, the closing state of the valve body 1 can be known. At the same time, when a leak occurs, the flow rate will still change, and the leak can also be detected.

[0039] like Figure 1-Figure 4 and Figure 6As shown, in this embodiment, specifically, the magnetic coupling assembly 2 includes a support plate 21, the support plate 21 is mounted on the valve body 1, a main valve motor 22 is mounted on the support plate 21, the support plate 21 is connected to the main valve motor 22 through multiple groups of cylinders, a drive disk 23 is installed at the output end of the main valve motor 22, a matching disk 24 is installed between the support plates 21, a matching screw 25 is installed at the other end of the matching disk 24, the other end of the matching screw 25 is connected to the main sphere 11, a screw groove is opened on the main sphere 11, and the matching screw 25 is connected to the screw groove;

[0040] When the magnetic coupling component 2 of the device is in use, it can drive the mating disc 24 in a state of zero contact with the mating disc 24, and because the mating disc 24 is connected to the main ball 11 through the mating screw 25, when the mating disc 24 rotates, it will drive the main ball 11 to rotate, and the main valve motor 22 of the device is connected to the support plate 21 through the cylinder, and when the device is in use, the cylinder can drive the main valve motor 22 to move up and down, so that the main valve motor 22 is close to or away from the support plate 21, thereby enabling the driving of the main valve motor 22 The disk 23 approaches or moves away from the mating disk 24. When the driving disk 23 moves away from the mating disk 24, the magnetic connection between the driving disk 23 and the mating disk 24 is weak. When the mating screw 25 is separated from the main sphere 11, the driving disk 23 will attract the mating disk 24 to separate the mating screw 25 from the outside of the valve body 1. When the driving disk 23 approaches the mating disk 24, the magnetic connection between the driving disk 23 and the mating disk 24 will be stronger, which can drive the mating disk 24 to rotate, thereby driving the main sphere 11 to rotate, and then changing the closing and opening of the valve body 1.

[0041] like Figure 4 As shown, in this embodiment, specifically, the driving disk 23 is composed of multiple groups of magnets, and the matching disk 24 is also composed of multiple groups of magnets. The magnets on the driving disk 23 are respectively staggered and installed on the driving disk 23, and the magnets on the matching disk 24 are also respectively staggered and installed on the matching disk 24 itself;

[0042] The magnets on the driving disk 23 have their N poles facing the mating disk 24 on half of the magnets, and their S poles facing the mating disk 24 on the other half of the magnets;

[0043] The magnets on the mating disk 24 have half of their N poles facing the driving disk 23 and the other half of their S poles facing the driving disk 23;

[0044] The driving disk 23 and the matching disk 24 of the device are both composed of multiple groups of magnets. The magnets on the driving disk 23 are arranged in an interlaced manner, and the magnetic pole directions of the magnets arranged in an interlaced manner are also arranged in an interlaced manner; at the same time, the magnets on the matching disk 24 of the device are also arranged in an interlaced manner. The arrangement of the magnets and the arrangement of the magnetic poles are similar to those of the driving disk 23. Therefore, when the driving disk 23 and the matching disk 24 are relative to each other, because the magnetic pole directions and the arrangement directions of the magnets are interlaced, the magnetic connection between the driving disk 23 and the matching disk 24 will be stronger, so that when the driving disk 23 drives the matching disk 24, because the magnetic connection between the two is stronger, when the driving disk 23 is combined with the driving disk 23 and approaches the matching disk 24, the matching disk 24 can match the rotation of the driving disk 23 and rotate, thereby driving the main sphere 11 to rotate.

[0045] like Figure 6 As shown, in this embodiment, specifically, when the mating screw 25 rotates forward: the main ball 11 rotates along with the mating screw 25;

[0046] When the mating screw 25 is reversed, the mating screw 25 will be separated from the main ball 11;

[0047] When the mating screw 25 of the device rotates forward, the end of the mating screw 25 rests against the bottom of the screw groove. When the mating screw 25 rotates again, the forward direction is blocked, and when the mating screw 25 rotates, it can drive the main sphere 11 to rotate; when the mating screw 25 is reversed, the mating screw 25 will slowly separate from the main sphere 11, and at the same time, the mating screw 25 will gradually rise, so that the mating disk 24 and the driving disk 23 gradually approach each other. The device will only reverse the mating screw 25 when leakage occurs at the connection of the valve body 1, so that the mating screw 25 can be separated from the valve body 1, and then cooperate with the push-blocking component 5 to seal the pipeline at the input end.

[0048] like Figure 2 and Figure 8 As shown, in this embodiment, specifically, the adjustment component 3 includes an inclined block 31, and adjustment motors 32 are respectively installed on both sides of the inclined block 31. One group of the adjustment motors 32 cooperates with the auxiliary sphere 12, and the other group of the adjustment motors 32 cooperates with the push-blocking component 5;

[0049] When in use, the adjusting component 3 of the device can act on the auxiliary sphere 12 and the pushing component 5 respectively, and the inclined block 31 included in the adjusting component 3 can support the two groups of adjusting motors 32 to limit the position of the adjusting motors 32.

[0050] like Figure 6As shown, in this embodiment, specifically, an adjusting screw 33 is installed on the bottom surface of the valve body 1, and the other end of the adjusting screw 33 is connected to the auxiliary ball 12 through the main ball 11. The auxiliary ball 12 is also provided with a screw groove, and the adjusting screw 33 is connected to the screw groove on the auxiliary ball 12. The other end of the adjusting screw 33 is connected to a set of adjusting motors 32;

[0051] When the adjusting screw 33 rotates forward, the auxiliary ball 12 rotates along with the adjusting screw 33.

[0052] When the adjusting screw 33 is reversed, the adjusting screw 33 will be separated from the auxiliary ball 12;

[0053] When a group of adjusting motors 32 in the adjusting assembly 3 drives the adjusting screw 33, the adjusting screw 33 can drive the auxiliary ball 12 to rotate because the output end is against the bottom of the screw groove, so that the auxiliary ball 12 can change the direction of the flow channel, so that the auxiliary ball 12 can block the flow channel in the main ball 11. When the adjusting screw 33 is reversed, it will move along the screw groove to the outside of the main ball 11 and the valve body 1 until the main ball 11 is separated from the valve body 1, and then the separated main ball 11 is connected to the pipe connected to the input end of the valve body 1.

[0054] like Figure 2 and Figure 5 As shown, in this embodiment, specifically, the push-blocking assembly 5 includes multiple groups of limiting sleeves 51 and drive rings 52. The drive ring 52 is installed on the outside of the output end of the valve body 1 through a bearing. The output end of one group of the regulating motor 32 is connected to the drive ring 52. The drive ring 52 is composed of multiple groups of magnets. The limiting sleeves 51 are equidistantly installed on the output end of the valve body 1. The multiple groups of limiting sleeves 51 are respectively equipped with push rods 53. The push rods 53 are connected to the limiting sleeves 51 through threads. The push rods 53 are composed of multiple groups of magnets.

[0055] When in use, another set of adjustment motors 32 on the adjustment component 3 can drive the drive ring 52 to rotate. Because the drive ring 52 and the push rod 53 cooperate with each other, when the drive ring 52 rotates, it will drive the push rod 53 to rotate together. However, because the push rod 53 is limited by the limiting sleeve 51, the push rod 53 will move in the output direction of the limiting sleeve 51 under the limitation of the limiting sleeve 51 until the push rod 53 contacts the separated main ball 11 and pushes the main ball 11 to the input end of the valve body 1, thereby blocking the external pipeline.

[0056] like Figure 2 and Figure 5 As shown, in this embodiment, specifically, the magnets on the drive ring 52 cooperate with the magnets on the push rod 53. The north poles of half of the magnets on the drive ring 52 face the push rod 53, and the south poles of the other half of the magnets face the push rod 53.

[0057] The magnets on the push rod 53 have half of their N poles facing the drive ring 52 and the other half of their S poles facing the drive ring 52;

[0058] Because the drive ring 52 and the push rod 53 are both composed of multiple groups of magnets, when the drive ring 52 rotates, it will drive the push rod 53 to rotate together, so that the push rod 53 can move in the direction limited by the limiting sleeve 51, and then the push rod 53 pushes the detached main ball 11 to press against the input end.

[0059] like Figure 1 As shown, in this embodiment, specifically, the controller 6 is installed outside the valve body 1, and a control panel is installed above the controller 6;

[0060] Therefore, when the device is in use, the various accessories of the valve body 1 can be controlled by the controller 6, and the staff can operate and repair the valve body 1 through the control panel.

[0061] Working principle: When the device is in use, it can be applied to coal petrochemical and wind power industries through the valve body 1. When the valve body 1 transmits liquid or gas, it can automatically block the transmission of the input end in case of leakage, so as to generate more losses before maintenance. When in use, the input end of the valve body 1 is reinforced by the sealing component 4, and the push-blocking component 5 of the device can seal the leakage caused by aging at the connection of the valve body 1, thereby reducing the leakage consumption caused by aging when the staff arrives for maintenance. In normal operation, the valve body 1 can adjust the main ball 11 through the magnetic coupling component 2, and can adjust the auxiliary ball 12 through the adjustment component 3, and adjust the valve body 1 at the same time. The node component 3 can also drive the pushing and blocking component 5. The main sphere 11 and the auxiliary sphere 12 are respectively provided with flow channels, and the auxiliary sphere 12 is installed in the flow channel of the main sphere 11. At the same time, the main sphere 11 and the auxiliary sphere 12 are concentrically arranged together. Therefore, when the device blocks liquid or gas, even if the main sphere 11 is completely closed, the flow channel of the main sphere 11 can be blocked by quickly rotating the auxiliary sphere 12. Then, by rotating the main sphere 11, the liquid or gas remaining in the flow channel can be discharged. Therefore, when the device is in use, it can speed up the closing and reduce the liquid or gas flowing into the flow channel during closing, and can block the input pipe after leakage occurs at the connection.

[0062] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

Claims

1. A low-load, high-pressure resistant valve suitable for the coal, petrochemical, and wind power industries, comprising a valve body (1) and a controller (6), characterized in that: The valve body (1) is provided with a magnetic coupling component (2) and an adjusting component (3) on its side, the valve body (1) input end is provided with a sealing component (4), the valve body (1) output end is provided with a blocking component (5), the valve body (1) cavity is provided with a main sphere (11), the main sphere (11) cooperates with the magnetic coupling component (2), the main sphere (11) is provided with an auxiliary sphere (12), the auxiliary sphere (12) cooperates with the adjusting component (3), the adjusting component (3) also cooperates with the blocking component (5), the main sphere (11) and the auxiliary sphere (12) can both control the flow rate, and the blocking component (5) can assist in blocking the valve body (1); The magnetic coupling assembly (2) includes a support plate (21), the support plate (21) is mounted on the valve body (1), a main valve motor (22) is mounted on the support plate (21), the support plate (21) is connected to the main valve motor (22) through multiple groups of cylinders, a drive disk (23) is mounted on the output end of the main valve motor (22), a matching disk (24) is mounted between the support plates (21), a matching screw (25) is mounted on the other end of the matching disk (24), the other end of the matching screw (25) is connected to the main sphere (11), a screw groove is provided on the main sphere (11), and the matching screw (25) is connected to the screw groove; The regulating assembly (3) includes an inclined block (31), and regulating motors (32) are respectively installed on both sides of the inclined block (31). One group of regulating motors (32) cooperates with the auxiliary sphere (12), and the other group of regulating motors (32) cooperates with the pushing and blocking assembly (5). An adjusting screw (33) is installed on the bottom surface of the valve body (1), and the other end of the adjusting screw (33) is connected to the auxiliary sphere (12) through the main sphere (11). The auxiliary sphere (12) is also provided with a screw groove, and the adjusting screw (33) is connected to the screw groove on the auxiliary sphere (12). The other end of the adjusting screw (33) is connected to a set of adjusting motors (32); When the adjusting screw (33) rotates forward, the auxiliary sphere (12) rotates along with the adjusting screw (33); When the adjusting screw (33) is reversed, the adjusting screw (33) will be separated from the auxiliary sphere (12).

2. A low-load, high-pressure resistant valve suitable for the coal, petrochemical, and wind power industries according to claim 1, characterized in that: The sealing assembly (4) includes a fixing plate (41) and a mounting plate (42), wherein the fixing plate (41) and the mounting plate (42) are respectively mounted on the valve body (1) and the external pipe, wherein the fixing plate (41) and the mounting plate (42) are connected via a flange, and a flow sensor is mounted between the fixing plate (41) and the mounting plate (42), and the flow sensor is connected to the controller (6).

3. A low-load, high-pressure resistant valve suitable for the coal, petrochemical, and wind power industries according to claim 2, characterized in that: The driving disk (23) is composed of multiple groups of magnets, and the matching disk (24) is also composed of multiple groups of magnets. The magnets on the driving disk (23) are respectively installed on the driving disk (23) in an interlaced manner, and the magnets on the matching disk (24) are also respectively installed on the matching disk (24) itself in an interlaced manner; The magnets on the driving disk (23) have N poles of half of the magnets facing the mating disk (24) and S poles of the other half of the magnets facing the mating disk (24); The magnets on the matching disk (24) have N poles of half of the magnets facing the driving disk (23), and S poles of the other half of the magnets facing the driving disk (23).

4. A low-load, high-pressure resistant valve suitable for the coal, petrochemical, and wind power industries according to claim 3, characterized in that: When the mating screw (25) rotates forward, the main ball (11) rotates along with the mating screw (25); When the mating screw (25) is reversed, the mating screw (25) will be separated from the main sphere (11).

5. A low-load, high-pressure resistant valve suitable for the coal, petrochemical, and wind power industries according to claim 4, characterized in that: The push-blocking assembly (5) comprises a plurality of groups of limiting sleeves (51) and a driving ring (52), wherein the driving ring (52) is mounted on the outside of the output end of the valve body (1) through a bearing, and a group of the output end of the regulating motor (32) is connected to the driving ring (52), and the driving ring (52) is composed of a plurality of groups of magnets. The limiting sleeves (51) are equidistantly mounted on the output end of the valve body (1), and a plurality of groups of the limiting sleeves (51) are respectively provided with push rods (53) therein, and the push rods (53) are connected to the limiting sleeves (51) through threads, and the push rods (53) are composed of a plurality of groups of magnets.

6. A low-load, high-pressure resistant valve suitable for the coal, petrochemical, and wind power industries according to claim 5, characterized in that: The magnets on the driving ring (52) cooperate with the magnets on the push rod (53), and the north poles of half of the magnets on the driving ring (52) face the push rod (53), while the south poles of the other half of the magnets face the push rod (53); The magnets on the push rod (53) have N poles of half of the magnets facing the drive ring (52), and S poles of the other half of the magnets facing the drive ring (52).

7. A low-load, high-pressure resistant valve suitable for the coal, petrochemical, and wind power industries according to claim 6, characterized in that: The controller (6) is installed outside the valve body (1), and a control panel is installed above the controller (6).

Citation Information

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