Dustproof gate valve
By combining the housing, swing arm, sliding valve plate and actuator, the airtight effect of the gate valve is achieved by using sealing ring and elastic element, which solves the problem of dust entry, simplifies the structure and optimizes the operation mode, and achieves the dustproof effect.
Patent Information
- Application Number
- CN202520440376.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2025-02-12
- Filing Date
- 2025-03-13
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2035-03-13
AI Technical Summary
Existing gate valves are prone to dust entering the valve when opened in dusty environments. Existing dustproof gate valves have complex structures and their operation methods can be optimized.
It adopts a combination structure of housing, swing arm, sliding valve plate and actuator, and uses sealing ring and elastic element to achieve airtight effect. The cooperation between roller group and swing arm realizes the sealing when the valve port is opened and closed, and prevents dust from entering.
It effectively prevents dust from entering the valve when it is opened and closed, simplifies the structure and optimizes the operation, and maintains the dustproof effect without the need for a dustproof tube.
Smart Images

Figure CN223839776U_ABST
Abstract
Description
Technical Field
[0001] This work relates to gate valves, specifically a type of dustproof gate valve. Background Technology
[0002] Taiwan Patent No. TW I551798, corresponding to US Patent No. 9,464,721, discloses a gate valve with a locking function. This patent mainly uses an actuator to drive a rocker arm, which in turn drives a slide to move. When the rocker arm moves to the second locking position, the valve on the slide closes its valve port, achieving the effect of locking the valve at the same time as closing.
[0003] However, if the technology mentioned above is used in a relatively dirty environment, such as an environment with a lot of dust, it can achieve the effect of sealing and blocking dust when closed, but when opened, since the valve is away from the valve port and the valve port is connected to the internal space of the gate valve, dust will easily enter the inside of the gate valve through the valve port and contaminate the internal components of the gate valve.
[0004] Taiwan Patent No. TW I716250, corresponding to the US Patent No. US 11,112,012 B2, discloses a gate valve with a dustproof function. This patent mainly uses a dustproof tube (illustrated as 41) to block the gap between the valve port and the gate valve body when the valve is opened, thereby preventing dust from easily entering the interior of the gate valve.
[0005] However, although the aforementioned cases represent prior art applied for by the applicant in this case, their structures could be further simplified. For example, the dustproof effect could be achieved without using a dustproof tube. Furthermore, the simplified structure could also result in different operating states, thus becoming the issue that this case seeks to address. Utility Model Content
[0006] The main purpose of this invention is to propose a dustproof gate valve that can maintain its dustproof effect when opened without using a dustproof pipe.
[0007] To achieve the above objectives, this invention proposes a dustproof gate valve, comprising: a housing having a first plate and a second plate, and an accommodating space located between the first plate and the second plate within the housing; the first plate having a through-hole first valve port; two swing arms, parallel to each other and each pivotally mounted within the housing at one end, the remaining portions of the two swing arms located within the accommodating space; the other ends of the two swing arms being located on both sides of a movable ring, the movable ring forming a second valve port, and being movably mounted on the second plate in a manner that allows it to be separated from or moved toward the first plate; the first valve port and the second valve port facing each other; and the movable ring and the second plate being in an airtight relationship; the portion of the movable ring facing the first plate having a... The contact surface has a sealing ring, and multiple elastic elements are provided between the movable ring and the second plate. The elastic restoring force causes the movable ring to move towards the first plate. A sliding valve plate has a plate body and two roller groups respectively disposed on both sides of the plate body and moving with the plate body. Each roller group has multiple plate rollers for rolling against the first plate, and each of the two roller groups has an arm roller for rolling against the two swing arms respectively. A driver is disposed on either the first plate or the second plate. The driver is connected to the sliding valve plate and drives the sliding valve plate to move within the accommodating space, thereby causing the two roller groups to move relative to the two swing arms. Each of the two swing arms has a pressing flange and a flange formed by the pressing flange. The flange recess forms a closing positioning groove and an opening positioning groove, allowing the arm rollers of the two roller assemblies to roll against or into them. The closing positioning groove is located between the opening positioning groove and the movable ring. When the arm rollers of the two roller assemblies roll into the opening positioning groove, the plate is not located between the movable ring and the first plate, and the multiple elastic members keep the movable ring pressed against the first plate, with the sealing ring abutting against the first plate to achieve a seal. At this time, the first valve port and the second valve port are connected, allowing gas to pass through, but the gas will not enter the accommodating space due to the sealing relationship of the sealing ring. When the arm rollers of the two roller assemblies roll against the flange but do not roll into the opening or closing positioning groove... The two rollers press the two swing arms together to make them swing, thereby forcing the movable ring to overcome the elastic force of the multiple elastic members and move the movable ring away from the first plate, thus creating a gap between the movable ring and the first plate, allowing the plate to enter. When the two rollers roll into the closing positioning groove, the plate enters between the movable ring and the first plate and completely covers the first valve port. The multiple elastic members keep the movable ring pressed against the plate and the sealing ring abuts against the plate to complete the seal. At this time, the first valve port and the second valve port are separated by the plate and cannot communicate with each other, so gas cannot pass through. Moreover, due to the sealing relationship of the sealing ring, gas will not enter the accommodating space through the second valve port.
[0008] Therefore, this invention achieves an airtight effect by using the sealing ring to press against the first plate, which can effectively prevent dust and maintain the dustproof effect when opened without the need for a dustproof tube, thus achieving the aforementioned purpose of this invention. Attached Figure Description
[0009] Figure 1 This is a perspective view of the first preferred embodiment of the invention.
[0010] Figure 2 This is a partially cutaway perspective view of the first preferred embodiment of the invention.
[0011] Figure 3 This is a top view of the internal structure of the first preferred embodiment of the invention, showing the internal state after the shell has been removed.
[0012] Figure 4 for Figure 3 The partial cross-sectional view mainly shows the arc-shaped concave part of the plate.
[0013] Figure 5 For along Figure 3 Sectional view along section line 5-5.
[0014] Figure 6 For along Figure 3 Sectional view along section line 6-6.
[0015] Figure 7 for Figure 6 A magnified view of a portion of the image.
[0016] Figure 8 This is a schematic diagram of the action of the first preferred embodiment of the present invention, and its perspective is similar. Figure 5 .
[0017] Figure 9 for Figure 8 A magnified view of a portion of the image.
[0018] Figure 10 This is another schematic diagram of the action of the first preferred embodiment of the present invention, with a similar perspective. Figure 5 .
[0019] Figure 11 for Figure 10 A magnified view of a portion of the image.
[0020] Figure 12 This is a perspective view of another embodiment of the first preferred embodiment of this invention.
[0021] Figure 13 This is a perspective view of the second preferred embodiment of the invention.
[0022] Figure 14 For along Figure 13 Sectional view along section line 14-14.
[0023] In the attached figures, the following labels are used:
[0024] 10: Dustproof gate valve
[0025] 11: Shell
[0026] 12: First board
[0027] 121: First valve port
[0028] 13: First flange
[0029] 16: Second board
[0030] 17: Second flange
[0031] 19: Storage space
[0032] 191: Sidewall
[0033] 21: Arm Swing
[0034] 211: Pressure Edge
[0035] 22: Close the positioning slot
[0036] 24: Open the positioning slot
[0037] 25: Activity Ring
[0038] 251: Second valve port
[0039] 26: Contact surface
[0040] 261: Sealing ring
[0041] 27: Elastic component
[0042] 31: Sliding valve plate
[0043] 32:Plate body
[0044] 321: Arc-shaped concave part
[0045] 323: Drive slide
[0046] 34: Roller Set
[0047] 341: Plate Roller
[0048] 342: Arm Roller
[0049] 343: Side Roller
[0050] 41: Driver
[0051] 42: Knob
[0052] 44: Linkage boom
[0053] 441: Slider
[0054] S: Gap
[0055] 121': First valve port
[0056] 13': First flange
[0057] 17': Second flange
[0058] 251': Second valve port
[0059] 10'': Dustproof gate valve
[0060] 12'': First board
[0061] 121'': First valve port
[0062] 122'': Dating surface
[0063] 25'': Activity ring
[0064] 261'': Sealing ring Detailed Implementation
[0065] To illustrate the technical features of this invention in detail, the following preferred embodiments are provided with accompanying drawings:
[0066] like Figures 1 to 7 As shown, this invention describes a dustproof gate valve 10 using a first preferred embodiment, which mainly consists of a housing 11, two swing arms 21, a sliding valve plate 31, and a driver 41, wherein:
[0067] The housing 11 has a first plate 12 and a second plate 16, and a receiving space 19 is located between the first plate 12 and the second plate 16 within the housing 11. The first plate 12 has a through first valve port 121. In this first embodiment, the first plate 12 has a first flange 13, and the first valve port 121 is formed on the first flange 13. The second plate 16 has a second flange 17.
[0068] The two swing arms 21 are parallel to each other and each is pivotally mounted within the housing 11 with one end rotatably. The remaining portions of the two swing arms 21 are located within the accommodating space 19. The other ends of the two swing arms 21 are located on both sides of a movable ring 25. The movable ring 25 forms a second valve port 251 and is movably mounted on the second flange 17 in a manner that allows it to move away from or towards the first plate 12. The first valve port 121 and the second valve port 251 face each other, and the movable ring 25 and the second flange 17 are in an airtight relationship. The portion of the movable ring 25 facing the first plate 12 has an abutment surface 26, on which a sealing ring 261 is provided. A plurality of elastic elements 27 are provided between the movable ring 25 and the second flange 17. In this first embodiment, a spring is used as an example. Its elastic restoring force causes the movable ring 25 to move towards the first plate 12. In this first embodiment, both the first valve port 121 and the second valve port 251 are circular through holes.
[0069] The sliding valve plate 31 has a plate body 32 and two roller assemblies 34 respectively disposed on both sides of the plate body 32 and moving together with the plate body 32. Each roller assembly 34 has multiple plate rollers 341 for rolling against the first plate 12, and each of the two roller assemblies 34 has an arm roller 342 for rolling against the two swing arms 21 respectively. The arm rollers 342 of each roller assembly 34 are located between the first plate 12 and the two swing arms 21. In this first embodiment, the plate body 32 has an arc-shaped recess 321 recessed inward from one edge, and the arc-shaped recess 321 faces the first valve port 121.
[0070] The actuator 41, located on the first plate 12, is connected to the sliding valve plate 31 and drives the sliding valve plate 31 to move within the accommodating space 19, thereby causing the two roller assembly 34 to move relative to the two swing arms 21. In this first embodiment, the actuator 41 has a knob 42 and a connecting arm 44. The plate 32 has a drive groove 323. The outer end of the connecting arm 44 has a slider 441 located within the drive groove 323. The knob 42 is operated to drive the outer end of the connecting arm 44 to perform a circular motion. The slider 441 moves along the drive groove 323, acting on the groove wall of the drive groove 323, thereby moving the plate 32. This structure allows the user to manually operate the knob 42 to actuate the plate 32. However, the aforementioned actuator 41 can also be replaced by a pneumatic device such as an air compressor, or an electric device such as a motor in conjunction with a screw, depending on the requirements. Since this can be directly understood from the existing known technology, it is not required to show it in the figure.
[0071] Each of the two swing arms 21 has a pressing edge 211, and a closing positioning groove 22 and an opening positioning groove 24 formed by the recess of the pressing edge 211, allowing the arm rollers 342 of the two roller assemblies 34 to roll into or against the groove. The closing positioning groove 22 is located between the opening positioning groove 24 and the movable ring 25. In this first embodiment, the bottom of both the opening positioning groove 24 and the closing positioning groove 22 is set to be arc-shaped, which facilitates the arm rollers 342 to fit in shape after rolling in. This not only allows the arm rollers 342 to be at their maximum depth after rolling in, but also makes it easier for the arm rollers 342 to roll out.
[0072] When the arm roller 342 of the two roller assembly 34 rolls into the opening positioning groove 24, the plate 32 is not located between the movable ring 25 and the first plate 12, and the plurality of elastic members 27 keep the movable ring 25 pressed against the first flange 13 of the first plate 12, and the sealing ring 261 abuts against the first flange 13 to complete the seal. At this time, the first valve port 121 and the second valve port 251 are connected, allowing gas to pass through, but gas or dust will not enter the accommodating space 19 due to the sealing relationship of the sealing ring 261.
[0073] When the arm roller 342 of the second roller group 34 rolls against the pressure edge 211 and does not roll into the opening positioning groove 24 or the closing positioning groove 22, the arm roller 342 of the second roller group 34 presses down on the two swing arms 21 by rolling against the pressure edge 211, thereby forcing the movable ring 25 to overcome the elastic force of the multiple elastic members 27 and move the movable ring 25 away from the first plate 12, thereby forming a gap S between the movable ring 25 and the first plate 12, which allows the plate body 32 to enter.
[0074] When the arm roller 342 of the second roller group 34 rolls into the closing positioning groove 22, the plate 32 enters between the movable ring 25 and the first plate 12 and completely covers the first valve port 121. The multiple elastic members 27 keep the movable ring 25 pressed against the plate 32 and complete the sealing by the sealing ring 261 against the plate 32. At this time, the first valve port 121 and the second valve port 251 are separated by the plate 32 and do not communicate with each other, so gas cannot pass through. Moreover, gas will not enter the accommodating space 19 through the second valve port 251 due to the sealing relationship of the sealing ring 261.
[0075] In this first embodiment, the first plate 12 and the second plate 16 are combined to form two side walls 191 located on both sides of the accommodating space 19, and each roller assembly 34 further has multiple side rollers 343 for rolling against the two side walls 191. This structure facilitates the two roller assemblies 34 in stabilizing the sliding valve plate 31 within the accommodating space 19 by means of the multiple side rollers 343. However, the aforementioned multiple side rollers 343 can also be omitted. For example, when an air compressor or screw motor is used as the actuator 41 (not shown in the figure), since the actuator 41 itself has directional properties during driving, the rolling guidance of the multiple side rollers 343 is not required.
[0076] The structure of this first embodiment has been described above. Next, the operational state of this first embodiment will be described.
[0077] like Figures 1 to 7 As shown, the display shows the open state. At this time, the arm roller 342 of the two roller assembly 34 is located within the open positioning groove 24. The sealing ring 261 abuts against the first flange 13 to form a seal. The plate 32 is located within the accommodating space 19 but does not enter between the movable ring 25 and the first plate 12. The first valve port 121 communicates with the second valve port 251, allowing gas (not shown) to pass through. However, due to the sealing relationship between the sealing ring 261 and the first flange 13, the gas will not enter the accommodating space 19. Therefore, a dustproof effect is achieved in the open state. The arc-shaped recess 321 of the plate 32 does not interfere with the first flange 13, but allows some structures on both sides of the plate 32 to be closer to the first valve port 121, thereby shortening the overall required stroke of the plate 32 and reducing the overall structural length. However, the arc-shaped recess 321 may be omitted, depending on actual needs.
[0078] like Figures 8 to 9 The diagram illustrates the process of transitioning from the open state to the closed state. At this time, the user operates the actuator 41, forcing the sliding valve plate 31 to move. The arm roller 342 of the two roller assembly 34 rolls out of the open positioning groove 24 and abuts against the pressure flange 211, but has not yet entered the closed positioning groove 22. Therefore, the two swing arms 21 are forced to swing, causing the movable ring 25 to overcome the restoring elastic force of the multiple elastic elements 27 and move away from the first flange 13. A gap S is formed between the movable ring 25 and the first flange 13, allowing the plate 32 to enter.
[0079] like Figures 10 to 11As shown, the display indicates the closed state. At this time, the arm roller 342 of the two roller assembly 34 is located within the closed positioning groove 22, and the plate 32 is positioned between the movable ring 25 and the first flange 13, completely covering the first valve port 121. The multiple elastic members 27 push the movable ring 25 to cause the sealing ring 261 to abut against the plate 32. This effectively closes the first valve port 121. At this time, the first valve port 121 and the second valve port 251 are blocked by the plate 32 and cannot communicate, preventing gas from passing through. Similarly, due to the sealing relationship of the sealing ring 261, gas will not enter the accommodating space 19 through the second valve port 251.
[0080] To switch from the off state to the on state, simply reverse the steps described above.
[0081] In the aforementioned operation, the rolling contact relationship between the arm roller 342 of the two roller assembly 34 and the opening positioning groove 24, closing positioning groove 22, and pressure edge 211 of the two swing arms 21 plays a crucial role. When the arm roller 342 rolls against the pressure edge 211, it forces the two swing arms 21 downwards (towards...). Figure 9 (Taking the direction as an example) the swinging motion, but when the arm roller 342 is located in the opening positioning groove 24 or the closing positioning groove 22, its depth is used to prevent the two swing arms 21 from being pressed downward, thereby allowing the multiple elastic elements 27 to push the movable ring 25 up so that its sealing ring 261 abuts against the first flange 13 or the plate 32 to form an airtight relationship.
[0082] As can be seen from the above, when the first embodiment is opened, the sealing ring 261 can abut against the first flange 13 to form an airtight effect, which can effectively prevent dust. It can maintain the dust prevention effect when opened without the need to use a dustproof tube, thus solving the problems encountered in the prior art.
[0083] In the aforementioned first embodiment, both the first flange 13 and the second flange 17 are circular. However, they can also be made into other shapes as needed, for example, such as... Figure 12 The first flange 13' and the second flange 17' shown are rectangular, which makes the first valve port 121' and the second valve port 251' rectangular, i.e., rectangular perforations. At this time, the movable ring (not shown in the figure) is also rectangular.
[0084] like Figures 13 to 14 As shown, this invention describes a dustproof gate valve 10'' using a second preferred embodiment, which is generally the same as the aforementioned first embodiment, except that:
[0085] The first plate 12'' does not have the first flange as in the first embodiment, but instead directly forms the first valve port 121'' and a mating surface 122''. When the movable ring 25'' abuts against the first plate 12'', the sealing ring 261'' abuts against the mating surface 122'' to produce a sealing effect, thereby providing a dustproof effect.
[0086] The aforementioned structure of this second embodiment can still provide a dustproof effect when the first flange is not required.
[0087] The remaining structure and effects of this second embodiment are the same as those of the aforementioned first embodiment, and will not be described again.
[0088] Of course, there may be other embodiments of this utility model. Without departing from the spirit and essence of this utility model, those skilled in the art can make various corresponding changes and modifications based on this utility model, but these corresponding changes and modifications should all fall within the protection scope of the claims of this utility model.
Claims
1. A dustproof gate valve, comprising: A housing having a first plate and a second plate, and having an accommodating space located between the first plate and the second plate, the first plate having a through first valve port; Two swing arms, parallel to each other and pivotally mounted at one end of each arm within the housing, with the remaining portions of the two swing arms located within the accommodating space. The other ends of the two swing arms are located on both sides of a movable ring, which forms a second valve port and is movably mounted on the second plate in a manner that allows it to move away from or towards the first plate. The first valve port and the second valve port face each other, and the movable ring and the second plate are in an airtight relationship. The portion of the movable ring facing the first plate has an abutting surface with a sealing ring on it. Multiple elastic elements are provided between the movable ring and the second plate, and their elastic restoring force causes the movable ring to move towards the first plate. A sliding valve plate has a plate body and two roller sets respectively disposed on both sides of the plate body and moving with the plate body. Each roller set has multiple plate rollers for rolling against the first plate, and each of the two roller sets has an arm roller for rolling against the two swing arms respectively; and A driver is provided on one of the first plate or the second plate. The driver is connected to the sliding valve plate and is used to drive the sliding valve plate to move within the accommodating space, thereby causing the two roller groups to move relative to the two swing arms. Its features are: Both swing arms have a pressing edge, and a closing positioning groove and an opening positioning groove formed by the recess of the pressing edge, so that the arm rollers of the two roller assemblies can roll against or roll into them. The position of the closing positioning groove is between the opening positioning groove and the movable ring. When the arm roller of the two roller group rolls into the opening positioning groove, the plate is not located between the movable ring and the first plate, and the multiple elastic members keep the movable ring pushing against the first plate and the sealing ring against the first plate to complete the sealing. At this time, the first valve port and the second valve port are connected and gas can pass through, but the gas will not enter the accommodating space due to the sealing relationship of the sealing ring. When the arm roller of the two roller group rolls against the pressure edge and does not roll into the opening positioning groove or the closing positioning groove, the arm roller of the two roller group presses the two swing arms to swing, thereby forcing the movable ring to overcome the elastic force of the multiple elastic elements and move the movable ring away from the first plate, thereby forming a gap between the movable ring and the first plate, which allows the plate body to enter. When the arm roller of the two roller assembly rolls into the closing positioning groove, the plate enters between the movable ring and the first plate and completely covers the first valve port. The multiple elastic members keep the movable ring pressed against the plate and the sealing ring presses against the plate to complete the seal. At this time, the first valve port and the second valve port are separated by the plate and do not communicate with each other, so gas cannot pass through. Moreover, due to the sealing relationship of the sealing ring, gas will not enter the accommodating space through the second valve port.
2. The dustproof gate valve according to claim 1, characterized in that: The driver has a knob and a linkage arm. The plate has a drive groove. The outer end of the linkage arm has a slider located in the drive groove. The knob is operated to drive the outer end of the linkage arm to perform a circular motion. The slider moves along the drive groove to act on the groove wall of the drive groove, thereby driving the plate to move.
3. The dustproof gate valve according to claim 1, characterized in that: The first valve port and the second valve port are circular through holes. The plate body has an arc-shaped recessed part from one edge inward, and the arc-shaped recessed part faces the first valve port.
4. The dustproof gate valve according to claim 1, characterized in that: The first valve port and the second valve port are rectangular through holes.
5. The dustproof gate valve according to claim 1, characterized in that: The first plate has a first flange, and the first valve port is formed on the first flange. When the arm roller of the two roller group rolls into the opening positioning groove, the plurality of elastic elements hold the movable ring against the first flange and complete the sealing by means of the sealing ring.
6. The dustproof gate valve according to claim 1, characterized in that: The second plate has a second flange, and the movable ring is movably disposed on the second flange and maintains an airtight relationship with the second flange.
7. The dustproof gate valve according to claim 1, characterized in that: The first plate and the second plate together form two side walls located on both sides of the accommodating space, and each roller assembly further has multiple side rollers for rolling against the two side walls.
8. The dustproof gate valve according to claim 1, characterized in that: The bottom of both the opening and closing positioning slots is arc-shaped.
Citation Information
Patent Citations
Dustproof gate valve
US11112012B2
Gate valve with secure sealing mechanism
US9464721B2