A globe valve processing device

By designing the shut-off valve processing equipment for expansion tube assembly, rotating assembly and moving assembly, the existing equipment has solved the problems of single functions and uneven flaring and uneven flaring, and efficient and uniform shut-off valve processing is achieved.

CN120055157BActive Publication Date: 2025-07-22JIANGSU SUYAN VALVE MASCH CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202510542591.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-28
Publication Date
2025-07-22
Estimated Expiration
2045-04-28

AI Technical Summary

Technical Problem

The existing shut-off valve processing equipment has a single function, and it is impossible to perform flaring and close operations at the same time, and the flaring and flaring are uneven, resulting in low processing efficiency.

Method used

A shut-off valve processing equipment is designed, including a expansion tube assembly, a rotating assembly and a moving assembly. Through multiple sets of extrusion plates combined into an annular structure, the shrinking or flaring action is achieved by using motor drive, and the forward and reverse adjustment of the adjustment component is ensured to ensure the uniform action of the extrusion plate.

Benefits of technology

It improves the processing efficiency of the shut-off valve, shortens the operating time, extends the service life of the equipment, and ensures uniformity of the collection and flaring.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120055157B_ABST
    Figure CN120055157B_ABST
Patent Text Reader

Abstract

The present invention relates to the technical field of globe valve processing, and discloses a globe valve processing device, including a housing. An expansion and contraction pipe assembly is installed inside the housing, and an adjustment assembly is installed at one end of the expansion and contraction pipe assembly. A rotation assembly is arranged at one end of the adjustment assembly, and a moving assembly is installed at the top end of the housing. This globe valve processing device realizes the operation of necking or flaring the valve stem pipe inside the globe valve through multiple sets of pressing plates combined into an annular structure. After starting the motor, the motor drives relevant transmission mechanisms, enabling specific parts of the pressing plates to perform flaring and necking actions respectively, improving the processing efficiency. When performing flaring and necking operations, the pressing plates can also rotate synchronously, assisting the pressing parts for necking and flaring to act on the valve stem pipe more evenly, and enhancing the flaring and necking effects.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of globe valve processing, and specifically provides a globe valve processing device. Background Art

[0002] A globe valve, also known as a stop valve, is a commonly used type of valve. A globe valve usually consists of components such as a valve body, a valve cover, a valve stem, a valve core, and a valve seat. The valve body is the main body of the valve and is used to connect pipelines; the valve cover is connected to the valve body and plays a role in sealing and supporting; the valve stem is used to transmit the operating force to control the opening and closing of the valve core; the valve core is a key component of the globe valve, usually in a disc shape or a conical shape, and cooperates with the valve seat to achieve sealing; the valve seat is fixed on the valve body and fits tightly with the valve core to achieve the function of cutting off the medium.

[0003] In the structure of a globe valve, except for the integrally formed valve body, when the valve stem inside it is connected to the valve seat or the valve core, operations such as pipe shrinking or pipe expanding are often required. Through such operations, the diameters of both ends of the valve stem pipe are adjusted to match the size of the valve seat, so as to facilitate subsequent assembly work.

[0004] The prior art with the publication number CN109226545B provides a globe valve processing device. This globe valve processing device includes: a necking device for necking the pipe orifice on the globe valve; a marking device for marking the globe valve; a transfer manipulator disposed between the necking device and the marking device to grab the globe valve processed by the necking device and transfer the globe valve to the marking device for marking by the marking device. The globe valve processing device solves the problem of low processing efficiency of globe valves in the prior art.

[0005] In the above prior art, although the globe valve is necked and marked, it does not involve how to specifically perform necking. And the existing necking devices have relatively single functions and can only perform necking on the pipe part and cannot perform flaring. In the process of processing metal pipes, if flaring is required, the already necked metal pipe often has to be placed in another flaring device, and this process is time-consuming and laborious. In addition, in the processing of necking or flaring by the existing devices, only the pressure plate is used to simply squeeze the pipeline, and there are often problems of uneven necking and flaring.

[0006] It can be seen that a globe valve processing device is needed to solve the problems mentioned in the above background art, that is, the existing necking devices have relatively single functions and cannot simultaneously have the flaring function, and only use the pressure plate to simply squeeze the pipeline, often resulting in problems of uneven necking and flaring. Summary of the Invention

[0007] The purpose of the present invention is to provide a globe valve processing device to solve the problems raised in the above background art.

[0008] In order to solve the above technical problems, the present invention provides the following technical solutions: a stop valve processing device, comprising a shell, an expansion and contraction tube assembly is installed inside the shell, and an adjustment assembly is installed at one end of the expansion and contraction tube assembly, the adjustment assembly is used to enable the screw tube to be adjusted forward and reverse under the action of the adjustment assembly, thereby performing contraction and expansion actions, a rotating assembly is provided at one end of the adjustment assembly, and a moving assembly is installed at the top of the shell;

[0009] The expansion and contraction tube assembly includes multiple groups of extrusion plates, and a closing plate is arranged on the inner side of one end of the extrusion plate, and a flaring plate is arranged on the outer side of the other end of the extrusion plate, the inner side of the flaring plate is connected with an inner tube through a first hinge frame and a second hinge frame, and a screw tube is arranged at one end of the inner tube, a moving block is arranged on the outer side of the screw tube, and the outer side of the moving block is hinged with a third hinge frame;

[0010] The rotating assembly includes a through shaft, the third hinge frame is penetrated by the through shaft, one end of the through shaft is connected to the inner tube, and a half gear is connected to the outside of the through shaft, and a rotating disk is arranged below the half gear, the rotating disk is provided with half teeth, and a worm is connected below the rotating disk;

[0011] The moving assembly includes a reciprocating displacement block, and a pinion is arranged on one side of the displacement block. The pinion is connected to a clamp through an extension arm, and a rack meshing with the pinion is arranged below the pinion.

[0012] Preferably, the multiple groups of extrusion plates are all arc-shaped structures, and the multiple groups of extrusion plates form a circular ring structure, the first articulated frame and the second articulated frame both include an articulated shaft and a connecting ring, and the connecting ring is fixed to the outside of the inner tube, and the articulated shaft is equidistantly articulated on the outside of the connecting ring, and the other end of the articulated shaft is hinged to the inside of the extrusion plate.

[0013] Preferably, the screw tube rotates on one side of the inner tube, and the interior of the screw tube is hollow, the screw tube is connected to the through shaft through a bearing, a threaded hole matching the screw tube is provided inside the moving block, and the moving block moves outside the screw tube, and hinge seats are provided at both ends of the third articulated frame, and the end of the third articulated frame away from the moving block is hinged to the extrusion plate.

[0014] Preferably, the adjustment assembly includes a rotating block, and a groove is opened inside the rotating block, and a recessed portion is provided on one side of the groove, a forward dial group is provided above the rotating block, and a reverse dial group is provided below the rotating block, the forward dial group and the reverse dial group have the same structure, a connecting tube is connected to the front side of the rotating block, and the rotating block is connected to the screw tube through the connecting tube.

[0015] Preferably, the forward shifting group comprises a central axis, an arc block, an extended axis and a shifting block, wherein the central axis connects the arc block and the extended axis, the shifting block is located at one end of the extended axis, the shifting block matches the groove, and the arc block matches the recessed portion.

[0016] Preferably, a first large gear is connected to the rear side of the forward shifting group, and a transmission gear group is meshed below the first large gear, the transmission gear group includes two small gears, and a second large gear is meshed below the transmission gear group, the second large gear is located on the rear side of the reverse shifting group, and a turbine is provided on the rear side of the second large gear, and a worm is meshed on one side of the turbine.

[0017] Preferably, the half gear includes a connecting ring and incomplete teeth, and the incomplete teeth are arranged on the connecting ring, the connecting ring is installed on the outside of the through shaft, and a protruding shaft is arranged on the connecting ring, the incomplete teeth and the half teeth are meshed, and a paddle plate is arranged inside the rotating disk, and the paddle plate is in contact with the protruding shaft.

[0018] Preferably, a motor is installed at the bottom end of the worm, the rotating assembly and the adjusting assembly are both installed in an installation bin, and the installation bin is located on one side inside the extrusion plate, and a support column is connected to one side of the installation bin.

[0019] Preferably, the moving component includes a mounting shell, and racks are provided at both ends of the outer side of the mounting shell, a screw rod is provided inside the mounting shell, and a displacement block matching the screw rod is provided on the outer side of the screw rod, a through shaft is provided between the displacement block and the pinion, and the through shaft passes through the mounting shell and extends to the outside thereof, and the extension arm is located on the outside of the through shaft.

[0020] Compared with the prior art, the beneficial effects achieved by the present invention are:

[0021] First, the present invention realizes the shrinking or expanding operation of the valve stem tube inside the stop valve through the shell, expansion and contraction tube assembly and rotating assembly provided, through multiple groups of extrusion plates combined into an annular structure. After starting the motor, the motor drives the relevant transmission mechanism, so that the specific parts of the extrusion plate can respectively perform the expansion and shrinking actions, thereby improving the processing efficiency. When performing the expansion and shrinking operations, the extrusion plate can also rotate synchronously, and the extrusion parts that assist in shrinking and expanding act more evenly on the valve stem tube, thereby improving the expansion and shrinking effects.

[0022] Secondly, the present invention realizes that the entire device is driven by a motor through the setting of the adjustment component. The addition of the adjustment component enables the screw tube to be adjusted in forward and reverse directions under its action, thereby performing shrinking and expanding actions. The operator does not need to repeatedly adjust the direction of the motor, thereby extending the service life of the device to a certain extent.

[0023] Thirdly, through the arranged moving component in the present invention, when it is necessary to perform necking and flaring on the pipe orifices respectively, the valve pipe can be clamped and transported by using a fixture. During the transportation process, under the action of the specific structure of the moving component, the fixture clamping the valve pipe will flip, so as to reverse the orifice part of the valve pipe, which is convenient for the other end of the extrusion plate (the end for flaring or necking) to process the valve pipe, making the connection between the necking and flaring actions smooth, reducing the operation difficulty, and shortening the time consumption between the two actions. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 is a schematic structural diagram of the present invention;

[0025] Figure 2 is a cross-sectional view of the present invention;

[0026] Figure 3 is a schematic structural diagram of the moving component of the present invention;

[0027] Figure 4 is a disassembled schematic diagram of the moving component of the present invention;

[0028] Figure 5 is a disassembled diagram of the internal structure of the housing of the present invention;

[0029] Figure 6 is a schematic structural diagram of the extrusion plate of the present invention;

[0030] Figure 7 is a schematic structural diagram of the pipe expanding and shrinking component, adjusting component, and rotating component of the present invention;

[0031] Figure 8 is a partial schematic structural diagram of the pipe expanding and shrinking component of the present invention;

[0032] Figure 9 is a schematic structural diagram of the connection between the moving block and the third hinge bracket of the present invention;

[0033] Figure 10 is a partial schematic structural diagram of the adjusting component of the present invention;

[0034] Figure 11 is a disassembled diagram of the rotating component of the present invention;

[0035] Figure 12 is a schematic structural diagram of the rotating component of the present invention.

[0036] Among them: 1. Shell; 2. Expander and shrinker tube assembly; 201. Extrusion plate; 202. Closing plate; 203. Expander plate; 204. First hinge frame; 205. Second hinge frame; 206. Inner tube; 207. Screw tube; 208. Moving block; 209. Third hinge frame; 3. Adjustment assembly; 301. Rotating block; 3011. Groove; 3012. Concave part; 302. Forward toggle group; 3021. Center axis; 3022. Arc block; 3023. Extension axis; 3024. Toggle block; 303. Reverse toggle driving group; 304, connecting pipe; 305, first large gear; 306, transmission gear group; 307, second large gear; 308, turbine; 4, rotating assembly; 401, through shaft; 402, half gear; 403, protruding shaft; 404, rotating disk; 405, half teeth; 406, paddle; 407, worm; 408, motor; 5, moving assembly; 501, mounting shell; 502, rack; 503, lead screw; 504, displacement block; 505, pinion; 506, extension arm; 507, fixture. DETAILED DESCRIPTION

[0037] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.

[0038] See also Figures 1-9 A stop valve processing device includes a shell 1, an expansion and contraction tube assembly 2 is installed inside the shell 1, a rotating assembly 4 is arranged at one end of an adjusting assembly 3, the expansion and contraction tube assembly 2 includes a plurality of extrusion plates 201, and a closing plate 202 is arranged on the inner side of one end of the extrusion plate 201, and an expansion plate 203 is arranged on the outer side of the other end of the extrusion plate 201, and an inner tube 206 is connected to the inner side of the expansion plate 203 through a first hinge frame 204 and a second hinge frame 205, and one end of the inner tube 206 is arranged A screw tube 207 is provided, a moving block 208 is provided on the outside of the screw tube 207, and a third articulated frame 209 is hinged on the outside of the moving block 208, the third articulated frame 209 is penetrated by a through shaft 401, the other end of the through shaft 401 is connected to the inner tube 206, and a half gear 402 is connected to the outside of the through shaft 401, and a rotating disk 404 is provided below the half gear 402, the rotating disk 404 is provided with half teeth 405, and a worm 407 is connected below the rotating disk 404.

[0039] In this embodiment, the device makes a group of motors start to cause a certain displacement of multiple sets of extrusion plates 201 simultaneously. The annular structure formed by the multiple sets of extrusion plates 201 forms an expansion or contraction action. Then, by placing the valve pipe at the end of the extrusion plate 201, the purpose of flaring or necking the pipe can be achieved. For example, by placing the port of the valve pipe inside the necking plate 202, when the extrusion plate 201 squeezes inward, it will use multiple sets of necking plates 202 to squeeze the pipe orifice together to make it smaller. The flaring action is to place one end of the valve pipe outside the flaring plate 203, and the action of the extrusion plate 201 drives the flaring plate 203 to expand outward, thereby expanding the end of the valve pipe. The necking and flaring actions can only be performed on metal pipes because metal has a certain deformability. A metal pipe suitable for the size of this device can be selected for processing. In this device, support equipment can be added outside the installation bin, and at the same time, a set of support equipment is connected to the tail of the inner pipe 206 through a bearing. The support equipment is connected to it through a clamp. When installing the valve pipe, the clamp is disconnected, and the entire device is fixed by relying on the support equipment at the other end.

[0040] Specifically, multiple sets of extrusion plates 201 are all arc-shaped structures, and multiple sets of extrusion plates 201 form a circular ring structure. The first hinge frame 204 and the second hinge frame 205 both include a hinge shaft and a connecting ring, and the connecting ring is fixed on the outside of the inner pipe 206, and the hinge shafts are evenly hinged on the outside of the connecting ring, and the other ends of the hinge shafts are hinged on the inside of the extrusion plate 201.

[0041] In this embodiment, the extrusion plate 201, the necking plate 202, and the flaring plate 203 are all made of high-strength metal materials with high hardness and suitable for extruding metal to avoid deformation when extruding the valve pipe. The first hinge frame 204, the second hinge frame 205, and the third hinge frame 209 connected to the extrusion plate 201, as well as the hinge seats connected to the hinge frames, are also made of metal with strong compressive capacity. The extrusion plate 201 is provided in multiple sets, preferably eight sets or more. The more the number, the closer the formed arc approaches a circle, and the better the flaring or necking effect.

[0042] Specifically, the lead screw pipe 207 rotates on one side of the inner pipe 206, and the inside of the lead screw pipe 207 is hollow. The lead screw pipe 207 is connected to the through shaft 401 through a bearing. A threaded hole matching the lead screw pipe 207 is provided inside the moving block 208, and the moving block 208 moves outside the lead screw pipe 207. Hinge seats are provided at both ends of the third hinge frame 209, and the end of the third hinge frame 209 far from the moving block 208 is hinged to the extrusion plate 201.

[0043] In this embodiment, the rotating screw tube 207 drives the moving block 208 forward or backward, thereby driving the extrusion plate 201 to move. When the moving block 208 moves forward or backward, it will drive the third articulated frame 209 to tilt at different positions, thereby driving the extrusion plate 201 to move. The screw tube 207 rotates on one side of the inner tube 206 through a bearing, and the through shaft 401 penetrates the screw tube 207 and is directly connected to the inner tube 206. A bearing is provided between the screw tube 207 and the through shaft 401, so the rotation of the screw tube 207 will not affect the through shaft 401. The rings in the second articulated frame 205 and the first articulated frame 204 are fixed to the inner tube 206, so when the inner tube 206 rotates, it will drive the outer extrusion plate 201 to rotate, and the valve tube is clamped by the clamp 507 at this time, so the valve tube will not rotate, and the inner expansion and contraction mechanism will rotate.

[0044] Specifically, the half gear 402 includes a connecting ring and incomplete teeth, and the incomplete teeth are arranged on the connecting ring. The connecting ring is installed on the outside of the through shaft 401, and a protruding shaft 403 is arranged on the connecting ring. The incomplete teeth and the half teeth 405 are meshed with each other. A paddle plate 406 is arranged inside the rotating disk 404, and the paddle plate 406 is in contact with the protruding shaft 403.

[0045] In this embodiment, in addition to the incomplete teeth, a blank portion is also provided on the outer side of the connecting ring, and in addition to the half teeth 405, a blank portion is also provided on the rotating disk 404. When the blank portion on the half gear 402 contacts the blank portion on the rotating disk 404, the half gear 402 will not rotate, so the half gear 402 will only rotate intermittently, which is convenient for cooperating with the extrusion plate 201 to expand or shrink the mouth and then rotate after the action is finalized. If the half gear 402 needs to rotate all the time, that is, the expansion, shrinking and rotation actions are performed simultaneously, the teeth of the half gear 402 and the half teeth 405 can be set to complete teeth, so that the half gear 402 and the rotating disk 404 are always in a meshing state.

[0046] Specifically, a motor 408 is installed at the bottom end of the worm 407, and the rotating assembly 4 and the adjusting assembly 3 are both installed in the installation bin, and the installation bin is located on one side inside the extrusion plate 201, and a support column is connected to one side of the installation bin.

[0047] In this embodiment, the motor 408 is arranged on the outside of the installation bin. The motor 408 can be a servo motor. A controller is installed in the device, which can directly control the operation of electronic components in the device to achieve corresponding functions. The through shaft 401 passes through between the first large gear 305 and the second large gear 307, then passes through the rotating block 301 and the connecting tube 304, and then enters the interior of the screw tube 207, and finally connects with the inner tube 206.

[0048] Please refer to Figures 2-4 , a globe valve processing device, and a moving component 5 is installed at the top of the outer shell 1.

[0049] In this embodiment, the mounting shell 501 is installed at the top of the outer shell 1, and the fixture 507 is located at the end of the pressing plate 201, facilitating the clamping of the valve pipe. After clamping the valve pipe with the fixture 507, the valve pipe and the fixture 507 are flipped together by displacement and gears. Otherwise, the transportation path will be blocked. Rotation will cause the fixture 507 and the valve pipe to be above the mounting shell 501, and the transportation path will not be blocked. When reaching the other end of the mounting shell 501, continue to flip, causing the valve pipe to flip 180 degrees, aligning the pipe orifice at the other end with one end of the pressing plate 201, facilitating the flaring or necking operation of the other end of the valve pipe.

[0050] Specifically, the moving component 5 includes a displacement block 504 that reciprocates, and a pinion 505 is provided on one side of the displacement block 504. The pinion 505 is connected to a fixture 507 through an extension arm 506, and a rack 502 meshing with the pinion 505 is provided below the pinion 505.

[0051] In this embodiment, a motor is installed at one end of the lead screw 503, which can be a forward and reverse motor and is controlled and driven by a controller installed in the device. Starting the motor will drive the displacement block 504 to move. The movement of the displacement block 504 will drive the pinion 505 to move. During the movement of the pinion 505, it contacts the rack 502 and meshes, so it will flip as it continues to move, thereby driving the extension arm 506 and the fixture 507 to flip together.

[0052] Specifically, the moving component 5 includes a mounting shell 501, and racks 502 are provided at both ends of the outer side of the mounting shell 501. A lead screw 503 is provided inside the mounting shell 501, and a displacement block 504 matching the lead screw 503 is provided on the outer side of the lead screw 503. A through shaft is provided between the displacement block 504 and the pinion 505, and the through shaft penetrates the mounting shell 501 and extends to its outer side. The extension arm 506 is located on the outer side of the through shaft. A mechanism to prevent reverse rotation can be provided at the connection between the through shaft between the displacement block 504 and the pinion 505 and the displacement block 504 to avoid reverse rotation after clamping and rotation. Also, the friction between the extension arm 506 and the through shaft can be increased so that the extension arm 506 can only rotate when the pinion 505 contacts the rack 502 and cannot rotate due to the gravity of the valve pipe.

[0053] In this embodiment, on the outer side of the outer shell 1, a set of conveyor belts can be installed at the middle position of the end of the extrusion plate 201. If the valve pipe only needs to be processed at one end, the clamping can be released at the middle position of the installation shell 501, and the valve pipe can be dropped onto the conveyor belt to complete the processing. The position of the rack 502 can be set at the protruding edge of the installation shell 501 to facilitate the release of the valve pipe clamped by the fixture 507 and make it fall onto the belt conveyor normally.

[0054] Please refer to Figures 5-12 , a stop valve processing device, and one end of the expansion and contraction pipe assembly 2 is provided with an adjustment assembly 3.

[0055] In this embodiment, the setting of the adjustment assembly 3 can not only make the lead screw pipe 207 rotate forward and backward independently, but also due to the special shape of the rotating block 301, the rotating block 301 will stay for a period of time after being toggled and rotated once. This period of time can be coordinated with the intermittent time of the rotating assembly 4, and the whole extrusion plate 201 can be rotated by using the staying time to achieve a better coordination effect.

[0056] Specifically, the adjustment assembly 3 includes a rotating block 301, and a groove 3011 is opened inside the rotating block 301, and a recessed portion 3012 is provided on one side of the groove 3011. A forward toggling group 302 is arranged above the rotating block 301, and a reverse toggling group 303 is arranged below the rotating block 301. The forward toggling group 302 and the reverse toggling group 303 have the same structure. A connecting pipe 304 is connected to the front side of the rotating block 301, and the rotating block 301 is connected to the lead screw pipe 207 through the connecting pipe 304.

[0057] In this embodiment, when the rotating block 301 is toggled and rotated once, the second large gear 307 will complete one rotation, and the moving block 208 will complete one forward or backward movement. A vertical plate is arranged at the rear side of the rotating block 301, and the vertical plate is located inside the installation bin. The rotating block 301 rotates on one side of the vertical plate, and the forward toggling group 302 and the reverse toggling group 303 are also located on one side of the vertical plate. The first large gear 305, the transmission gear group 306 and the second large gear 307 are located on the other side of the vertical plate. A shaft is arranged between the first large gear 305 and the forward toggling group 302, and a shaft is arranged between the second large gear 307 and the reverse toggling group 303. The shaft penetrates the vertical plate and rotates inside it. The transmission gear group 306 is arranged on the same side as the first large gear 305 and the second large gear 307, but the transmission gear group 306 is not located exactly in the middle of the first large gear 305 and the second large gear 307, but on one side. The middle position is reserved for the penetration shaft 401, and the penetration shaft 401 penetrates the vertical plate.

[0058] Specifically, the forward shifting group 302 includes a central axis 3021, an arc block 3022, an extended axis 3023 and a shifting block 3024, the central axis 3021 connects the arc block 3022 and the extended axis 3023, the shifting block 3024 is located at one end of the extended axis 3023, and the shifting block 3024 matches the groove 3011, and the arc block 3022 matches the recessed portion 3012.

[0059] In this embodiment, after the shift block 3024 in the forward shifting group 302 contacts the groove 3011, the rotation of the forward shifting group 302 will cause the shift block 3024 to shift the rotating block 301 to rotate as a whole. After rotating to a certain angle, the shift block 3024 moves away from the groove 3011, and the arc block 3022 contacts the recessed portion 3012. Since the arc block 3022 is convex and the recessed portion 3012 is recessed, it is just in contact and will not drive the rotating block 301 to rotate. The rotating block 301 shifted by the shift block 3024 rotates another group of groove 3011 openings to a position close to the shift block of the reverse shifting group 303 below. When the shift block of the reverse shifting group 303 rotates, it will enter the interior of the groove 3011 and drive the rotating block 301 to reverse, repeating the rotation process of the forward shifting group 302.

[0060] Specifically, the rear side of the forward shifting group 302 is connected to the first large gear 305, and a transmission gear group 306 is meshed below the first large gear 305. The transmission gear group 306 includes two groups of small gears, and a second large gear 307 is meshed below the transmission gear group 306. The second large gear 307 is located on the rear side of the reverse shifting group 303, and a turbine 308 is provided on the rear side of the second large gear 307, and a worm 407 is meshed on one side of the turbine 308.

[0061] In this embodiment, the meshing of the turbine 308 and the worm 407 can prevent reverse rotation, thereby avoiding the second large gear 307, the rotating block 301 and the screw tube 207 from reversing under pressure, which can make the device operate better.

[0062] When in use, it is necessary to connect an external power supply, which provides electrical energy for the device so that the device can operate normally. First, the valve tube that needs to be expanded or shrunk is clamped using the clamp 507, and then the motor 408 is started. The motor 408 drives the worm 407 to rotate, and the worm 407 drives the rotating disk 404 and the turbine 308 to rotate. The rotation of the turbine 308 drives the second large gear 307 to rotate, and the second large gear 307 drives the first large gear 305 to rotate through the meshing transmission gear set 306. At the same time, the second large gear 307 also drives the reverse dial set 303 on the front side to rotate, and the first large gear 305 drives the forward dial set 302 on the front side to rotate. Due to the existence of the transmission gear set 306, the directions of the first large gear 305 and the second large gear 307 are opposite, that is, the directions of the forward dial set 302 and the reverse dial set 303 are opposite. On the contrary, when the forward toggle group 302 rotates, the rotating block 301 will be driven to rotate through the toggle block 3024, and when the reverse toggle group 303 rotates, the rotating block 301 will be driven to rotate in the reverse direction through the toggle block on one side thereof, and the rotating block 301 will drive the screw tube 207 to rotate through the front connecting tube 304. When the screw tube 207 rotates forward, the moving block 208 on its outer side will move forward, and when the screw tube 207 rotates reversely, the moving block 208 on its outer side will move backward, and the movement of the moving block 208 will drive the inclination angle of the third articulated frame 209 to change, so that the extrusion plate 201 at one end of the third articulated frame 209 is displaced to a certain position, and the extrusion plates 201 of the multiple groups of circular arc structures expand and contract with each other, so that the closing plate 202 or the expanding plate 203 at the end is used to expand and shrink the valve tube;

[0063] The rotation of the worm 407 will also drive the rotating disk 404 to rotate. When the toggle piece 406 rotates to the bottom of the half gear 402, the toggle piece 406 will contact the protruding shaft 403, thereby toggling the half gear 402 to rotate. At this time, the teeth of the rotating half gear 402 are in contact and mesh with the half teeth 405, so that the half gear 402 continues to rotate. The rotation of the half gear 402 will drive the through shaft 401 to rotate, and the through shaft 401 will drive the inner tube 206 to rotate. When the inner tube 206 rotates, it will drive the extrusion plate 201 to rotate, so as to cooperate with the expansion and contraction actions, so that the extrusion plate 201 rotates as a whole after the expansion and contraction are finalized, so that the expansion and contraction shapes are more uniform.

[0064] After the flaring or necking action at one end of the valve tube is completed, the lead screw 503 is started to rotate, so that the displacement block 504 drives the fixture 507 and the valve tube to move. During the movement, the small gear 505 will contact and mesh with the rack 502, and thus rotate. The rotation of the small gear 505 will drive the fixture 507 and the valve tube to rotate together, which can make the valve tube better transported. When it is transported to the other end of the installation shell 501, rotate it once more, so that the valve tube flips and descends. At this time, the pipe orifice facing the pressing plate 201 is swapped, which is convenient for processing the unprocessed pipe orifice. Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present application. The scope of the present application is defined by the appended claims and their equivalents.

Claims

1. A globe valve processing device, comprising a housing (1), characterized in that: Inside the housing (1), a telescopic pipe assembly (2) is installed, and one end of the telescopic pipe assembly (2) is provided with an adjustment assembly (3). The adjustment assembly (3) is used to make the screw pipe rotate forward and backward under its action, so as to perform the actions of shrinking and expanding the opening. One end of the adjustment assembly (3) is provided with a rotation assembly (4), and a moving assembly (5) is installed at the top of the housing (1). The telescopic pipe assembly (2) includes multiple groups of pressing plates (201). Inside the inner side of one end of the pressing plate (201), a closing plate (202) is provided. Outside the other end of the pressing plate (201), a flaring plate (203) is provided. Inside the flaring plate (203), an inner pipe (206) is connected through a first hinge bracket (204) and a second hinge bracket (205). One end of the inner pipe (206) is provided with a screw pipe (207). Outside the screw pipe (207), a moving block (208) is provided. Outside the moving block (208), a third hinge bracket (209) is hinged. The rotation assembly (4) includes a through shaft (401). The third hinge bracket (209) is penetrated by the through shaft (401). One end of the through shaft (401) is connected to the inner pipe (206). Outside the through shaft (401), a semi-gear (402) is connected. Below the semi-gear (402), a rotating disc (404) is provided. On the rotating disc (404), semi-teeth (405) are provided. Below the rotating disc (404), a worm (407) is connected. The moving assembly (5) includes a displacement block (504) that reciprocates. On one side of the displacement block (504), a small gear (505) is provided. The small gear (505) is connected to a clamp (507) through an extension arm (506). Below the small gear (505), a rack (502) that meshes with it is provided.

2. The processing equipment for a globe valve according to claim 1, characterized in that: Multiple groups of the pressing plates (201) are all arc-shaped structures, and multiple groups of pressing plates (201) form an annular structure. The first hinge bracket (204) and the second hinge bracket (205) both include a hinge shaft and a connecting ring. The connecting ring is fixed outside the inner pipe (206), and the hinge shafts are evenly hinged outside the connecting ring. The other end of the hinge shaft is hinged inside the pressing plate (201).

3. The processing equipment for a globe valve according to claim 1, characterized in that: The screw pipe (207) rotates on one side of the inner pipe (206), and the inside of the screw pipe (207) is hollow. Between the screw pipe (207) and the through shaft (401), a bearing is used for connection. Inside the moving block (208), a threaded hole matching the screw pipe (207) is provided, and the moving block (208) moves outside the screw pipe (207). At both ends of the third hinge bracket (209), hinge seats are provided. The end of the third hinge bracket (209) far from the moving block (208) is hinged to the pressing plate (201).

4. The processing equipment for a globe valve according to claim 1, characterized in that: The adjustment assembly (3) comprises a rotating block (301), wherein a groove (3011) is provided inside the rotating block (301), and a recessed portion (3012) is provided on one side of the groove (3011); a forward shifting group (302) is provided above the rotating block (301), and a reverse shifting group (303) is provided below the rotating block (301); the forward shifting group (302) and the reverse shifting group (303) have the same structure; a connecting tube (304) is connected to the front side of the rotating block (301), and the rotating block (301) is connected to the screw tube (207) via the connecting tube (304).

5. The processing equipment for a globe valve according to claim 4, characterized in that: The positive shifting group (302) comprises a central axis (3021), an arc block (3022), an extended axis (3023) and a shifting block (3024); the central axis (3021) connects the arc block (3022) and the extended axis (3023); the shifting block (3024) is located at one end of the extended axis (3023); the shifting block (3024) matches the groove (3011); and the arc block (3022) matches the recessed portion (3012).

6. The processing equipment for a globe valve according to claim 5, characterized in that: The rear side of the forward shifting group (302) is connected to a first large gear (305), and a transmission gear group (306) is meshed below the first large gear (305). The transmission gear group (306) includes two small gears, and a second large gear (307) is meshed below the transmission gear group (306). The second large gear (307) is located at the rear side of the reverse shifting group (303), and a turbine (308) is provided at the rear side of the second large gear (307). A worm (407) is meshed on one side of the turbine (308).

7. An on-off valve processing device according to claim 1, characterized in that: The half gear (402) comprises a connecting ring and incomplete teeth, wherein the incomplete teeth are arranged on the connecting ring, the connecting ring is installed on the outside of the through shaft (401), and a protruding shaft (403) is arranged on the connecting ring, the incomplete teeth and the half teeth (405) are meshed, and a paddle (406) is arranged inside the rotating disk (404), and the paddle (406) is in contact with the protruding shaft (403).

8. The processing equipment for a globe valve according to claim 1, characterized in that: A motor (408) is installed at the bottom end of the worm (407), and the rotating assembly (4) and the adjusting assembly (3) are both installed in an installation bin, and the installation bin is located on one side inside the extrusion plate (201), and one side of the installation bin is connected to a support column.

9. A stop valve processing device according to claim 1, characterized in that: The moving assembly (5) comprises a mounting shell (501), and racks (502) are arranged at both ends of the outer side of the mounting shell (501), a screw rod (503) is arranged inside the mounting shell (501), and a displacement block (504) matching the screw rod (503) is arranged on the outer side of the screw rod (503), a through shaft is arranged between the displacement block (504) and the pinion (505), and the through shaft passes through the mounting shell (501) and extends to the outer side thereof, and the extension arm (506) is located on the outer side of the through shaft.

Citation Information

Patent Citations

  • Gate valve processing equipment

    CN109226545B

  • Heavy-caliber steel tube flaring / necking die set and forming process

    CN106825274A

  • Automobile exhaust pipe end necking and flaring device

    CN212598410U