High-frequency vibration corrugated pipe with enhanced elasticity

By designing the connection, resistance, support, adjustment and moving structure of high-frequency vibration corrugated pipe, the problems of easy damage and inconvenient installation of the corrugated pipe ends are solved, and convenient maintenance and efficient installation of the corrugated pipe are achieved.

CN120292357AActive Publication Date: 2025-07-11JIANGSU WUXING BELLOWS CO LTD
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Patent Information

Application Number
CN202510796894.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-16
Publication Date
2025-07-11
Estimated Expiration
2045-06-16

AI Technical Summary

Technical Problem

When the existing corrugated pipe is transported in gaseous material, the ends of the existing corrugated pipes are easily damaged, difficult to replace separately, and are inconvenient during installation and movement, especially for coarse corrugated pipes.

Method used

A high-frequency vibration corrugated pipe is designed, including a connecting structure, a resistance structure, a support structure, an adjustment structure, a moving structure and a release structure. Through the combination of these structures, the detachable connection between the corrugated pipe and the flange is achieved, providing additional support and convenient movement.

Benefits of technology

It improves the protection of the end of the bellows, enhances the resistance to high-frequency vibration, facilitates maintenance, replacement and installation, and improves installation efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of corrugated pipes, in particular to an elasticity-enhanced high-frequency vibration corrugated pipe which comprises a corrugated pipe body, a connecting structure is arranged at the end of the corrugated pipe body, an abutting structure is arranged on the inner side of the connecting structure, a supporting structure is arranged on the side face of the corrugated pipe body, and an adjusting structure is arranged in the middle of the supporting structure. A moving structure is arranged on the bottom side of the corrugated pipe body, and a releasing structure is arranged in the middle of the moving structure. The corrugated pipe and the flange plate can be disassembled separately through the connecting structure, maintenance and replacement of the corrugated pipe are facilitated, the end of the corrugated pipe can be effectively protected through the abutting structure, the resisting effect of the corrugated pipe on high-frequency vibration can be improved through the supporting structure, and the service life of the corrugated pipe is prolonged. The supporting effect between the flange plates on the two sides can be adjusted according to different use scenes through the adjusting structure, the corrugated pipe can be conveniently and integrally moved through the moving structure, and a user can conveniently use the supporting legs through the releasing structure.
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Description

Technical Field

[0001] The invention relates to the technical field of bellows, in particular to a high-frequency vibration bellows with enhanced elasticity. Background Art

[0002] Bellows is a common and important mechanical component, often used for vacuum connection, vibration reduction, deformation compensation, etc., and is widely used in vacuum machinery, optical systems, chemical engineering and other fields. At present, the general structure of bellows is based on a series of circular ring structures, with simple functions. Compared with ordinary pipes, bellows have stronger impact resistance. Due to its structural characteristics, bellows can be expanded and contracted to a certain extent.

[0003] However, when the existing bellows are used to transport gaseous materials, in order to fix the bellows, the ends of the bellows need to be pressurized and fixed, making the ends of the bellows usually the most susceptible to damage. At the same time, the existing bellows conveying structure usually has a support frame, and the pipe and the flange at the end are integrated, making it difficult to replace the bellows alone. At the same time, for thicker bellows, it is inconvenient to move them during installation and they are easily damaged during transportation. Summary of the invention

[0004] In view of the problems in the prior art, the present invention provides a high-frequency vibration bellows with enhanced elasticity.

[0005] The technical solution adopted by the present invention to solve its technical problems is: a high-frequency vibration bellows with enhanced elasticity, comprising a bellows body, the end of the bellows body is provided with a connecting structure, the inner side of the connecting structure is provided with a resistance structure, the side of the bellows body is provided with a supporting structure, the middle part of the supporting structure is provided with an adjusting structure, the bottom side of the bellows body is provided with a moving structure, and the middle part of the moving structure is provided with a release structure.

[0006] Specifically, the connection structure includes a mounting seat, and the two ends of the corrugated tube body are respectively sleeved with a mounting seat, the side of the mounting seat is fixedly connected with a flange, the inner side of the mounting seat is provided with a first thread groove, the inner side of the first thread groove is slidably connected with a pushing ring, the side of the pushing ring is a sloped structure, a sealing gasket is provided on the inner side of the mounting seat, the sloped side surface of the pushing ring conflicts with the sealing gasket, the mounting seat is threadedly connected with a threaded gear ring through the first thread groove, and the side surface of the threaded gear ring conflicts with the pushing ring.

[0007] Specifically, an adjusting rod is rotatably connected to the side of the mounting seat, a gear is fixedly connected to the adjusting rod, a tooth groove is provided on the side of the threaded gear ring, and the threaded gear ring is meshed with the gear through the tooth groove.

[0008] Specifically, the interference structure includes a support tube, the inner side of the bellows body is slidably connected with the support tube, both ends of the bellows body are respectively provided with matching grooves, and both sides of the support tube are engaged with the bellows body through the matching grooves.

[0009] Specifically, the side of the mounting seat is rotatably connected to an adjusting screw, the end of the adjusting screw is threadedly connected to a resistance block, the resistance block is slidably connected to the mounting seat, a connecting groove is provided on the side of the support tube, and the side of the resistance block is in resistance to the support tube.

[0010] Specifically, the supporting structure includes a support rod, and a plurality of support rods are vertically arranged on the side of the flange. One end of the support rod is fixedly connected to the flange by a first nut, and the other end of the support rod is a square structure. The square end of the support rod is provided with an adjusting sleeve, and a telescopic groove is provided on the inner side of the adjusting sleeve. The square end of the support rod is slidably connected to the adjusting sleeve through the telescopic groove, and a first spring is fixedly connected between the support rod and the adjusting sleeve, and the ends of the adjusting sleeves correspondingly arranged at both ends of the corrugated tube body conflict with each other.

[0011] Specifically, the adjustment structure includes a connecting frame, a ring-shaped connecting frame is provided in the middle part of the corrugated tube body, a threaded sleeve is rotatably connected to the inner side of the connecting frame, a second thread groove is opened on the inner side of the threaded sleeve, and the thread directions on both sides of the second thread groove are arranged in opposite directions, and the adjustment sleeve is threadedly connected to the connecting frame through the second thread groove.

[0012] Specifically, the movable structure includes a second shaft block, two second shaft blocks are provided on the side of the flange, the second shaft block is fixed to the flange by a second nut, the end of the second shaft block is rotatably connected to a supporting foot, a limiting groove is provided on the inner side of the supporting foot, the supporting foot is slidably connected to a connecting rod through the limiting groove, the side of the connecting frame is slidably connected to the first shaft block, the end of the connecting rod is rotatably connected to the first shaft block, a third spring is fixedly connected between the two first shaft blocks located on the same side, and the side of the supporting foot is rotatably connected to a pulley.

[0013] Specifically, a clamping rod is slidably connected to the inner side of the connecting rod, a second spring is fixedly connected between the end of the clamping rod and the connecting rod, and a clamping groove is provided on the bottom side of the supporting foot.

[0014] Specifically, the release structure includes a locking rod, a locking rod is slidably connected to the inner side of the first shaft block, a fourth spring is fixedly connected between the locking rod and the first shaft block, the end of the locking rod is a sloped structure, the sloped end of the locking rod is engaged with the end of the supporting foot, the side of the connecting frame is slidably connected to the release rod, the release rod is a "Y"-shaped structure, a sloped groove is provided on the side of the locking rod, and the two ends of the release rod are slidably connected to the two locking rods on both sides through the sloped grooves.

[0015] The beneficial effects of the present invention are: (1) The high-frequency vibration bellows with enhanced elasticity described in the present invention has a connection structure at the end of the bellows body, and a resistance structure is provided on the inner side of the connection structure. The bellows and the flange can be distinguished and disassembled through the connection structure, which is convenient for the maintenance and replacement of the bellows. The end of the bellows can be effectively protected by the resistance structure.

[0016] (2) The high-frequency vibration bellows with enhanced elasticity described in the present invention has a support structure on the side of the bellows body, and an adjustment structure in the middle of the support structure. The support structure can provide additional support for the bellows as a whole, thereby improving the bellows' resistance to high-frequency vibrations. The support effect between the flanges on both sides can be adjusted according to different usage scenarios through the adjustment structure.

[0017] (3) The high-frequency vibration bellows with enhanced elasticity described in the present invention has a movable structure on the bottom side of the bellows body, and a release structure in the middle of the movable structure. The movable structure can facilitate the movement of the entire bellows to improve installation efficiency, and the release structure can facilitate the user to use the support feet. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The present invention is further described below in conjunction with the accompanying drawings and embodiments.

[0019] Figure 1 A schematic diagram of the overall structure provided by the present invention; Figure 2 It is a schematic diagram of the connection structure between the bellows body and the flange of the present invention; Figure 3 for Figure 2 A schematic diagram of the enlarged structure of part A shown; Figure 4 for Figure 2 The enlarged structural diagram of part B is shown; Figure 5 It is a schematic diagram of the connection structure of the corrugated pipe body and the connecting frame of the present invention; Figure 6 for Figure 5 The enlarged structural diagram of the C part shown; Figure 7 Schematic diagram of the connection structure between the corrugated pipe body and the support cylinder of the present invention; Figure 8 Schematic diagram of the connection structure between the flange and the support rod of the present invention; Figure 9 is Figure 8 Schematic diagram of the enlarged structure of part D shown in; Figure 10 is Figure 8 Schematic diagram of the enlarged structure of part E shown in; Figure 11 Schematic diagram of the connection structure between the support feet and the connecting rod of the present invention; Figure 12 Schematic diagram of the connection structure between the flange and the support feet of the present invention; Figure 13 is Figure 12 Schematic diagram of the enlarged structure of part F shown in.

[0020] In the figure: 1. Corrugated pipe body; 2. Connection structure; 201. Mounting seat; 202. Flange; 203. Adjusting rod; 204. Gear; 205. Threaded gear ring; 206. Tooth groove; 207. First thread groove; 208. Pushing ring; 209. Sealing gasket; 3. Contact structure; 301. Support cylinder; 302. Adjusting screw; 303. Contact block; 304. Connection groove; 305. Matching groove; 4. Support structure; 401. Support rod; 402. First nut; 403. First spring; 404. Adjusting sleeve; 405. Telescopic groove; 5. Adjusting structure; 501. Connection frame; 502. Threaded sleeve; 503. Second thread groove; 6. Moving structure; 601. Support feet; 602. Second nut; 603. Connecting rod; 604. Engaging rod; 605. Second spring; 606. Engaging groove; 607. Pulley; 608. First shaft block; 609. Third spring; 610. Limiting groove; 611. Second shaft block; 7. Release structure; 701. Release rod; 702. Locking rod; 703. Inclined groove; 704. Fourth spring. Detailed implementation manners

[0021] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.

[0022] Such as Figure 1 , Figure 6 , Figure 13As shown, a high-frequency vibration bellows with enhanced elasticity described in the present invention includes a bellows body 1, a connecting structure 2 is provided at the end of the bellows body 1, a resistance structure 3 is provided on the inner side of the connecting structure 2, a supporting structure 4 is provided on the side of the bellows body 1, an adjusting structure 5 is provided in the middle of the supporting structure 4, a moving structure 6 is provided on the bottom side of the bellows body 1, and a release structure 7 is provided in the middle of the moving structure 6.

[0023] Specifically, Figure 1 , Figure 2 , Figure 3 , Figure 8 , Figure 12 As shown, the connection structure 2 includes a mounting seat 201, and the two ends of the corrugated tube body 1 are respectively sleeved with a mounting seat 201, and the side of the mounting seat 201 is fixedly connected with a flange 202, and the inner side of the mounting seat 201 is provided with a first thread groove 207, and the inner side of the first thread groove 207 is slidably connected with a pushing ring 208, and the side of the pushing ring 208 is a bevel structure, and the inner side of the mounting seat 201 is provided with a sealing gasket 209, and the pushing ring 208 is The oblique side surface conflicts with the sealing gasket 209, the mounting seat 201 is threadedly connected with a threaded gear ring 205 through a first thread groove 207, the side surface of the threaded gear ring 205 conflicts with the pushing ring 208, the side surface of the mounting seat 201 is rotatably connected with an adjusting rod 203, the adjusting rod 203 is fixedly connected with a gear 204, the side surface of the threaded gear ring 205 is provided with a tooth groove 206, and the threaded gear ring 205 is meshed with the gear 204 through the tooth groove 206; A mounting seat 201 is provided at each end of the bellows body 1. A flange 202 is fixed on the mounting seat 201 for mounting the bellows. In order to facilitate the disassembly and replacement of the bellows, a threaded gear ring 205 is provided on the inner side of the mounting seat 201. When the user rotates the adjustment rod 203, the gear 204 on the adjustment rod 203 drives the threaded gear ring 205 to start rotating through the tooth groove 206. The inner side of the threaded gear ring 205 is threadedly connected to the mounting seat 201. As the threaded gear ring 205 rotates, the threaded gear ring 205 is rotated. 5 will push the pushing ring 208 toward the sealing gasket 209. Through the inclined structure on the side of the pushing ring 208, the pushing ring 208 will squeeze the sealing gasket 209 in the first thread groove 207 inward until the connection is sealed by the sealing gasket 209. At the same time, since the bellows is squeezed and sealed between the bellows and the mounting gasket through the sealing gasket 209, the user can quickly install and disassemble the bellows body 1, the mounting seat 201 and the flange 202, which is convenient for cleaning and maintenance of the bellows.

[0024] Specifically, Figure 1 , Figure 2 , Figure 3 ,Figure 5 , Figure 6 , Figure 7 As shown in Figure 7 , the abutting structure 3 includes a support cylinder 301. The support cylinder 301 is slidably connected to the inner side of the corrugated tube body 1. Matching grooves are respectively formed at both ends of the corrugated tube body 1. Both sides of the support cylinder 301 are engaged with the corrugated tube body 1 through the matching grooves. An adjusting screw 302 is rotatably connected to the side surface of the mounting seat 201. The end of the adjusting screw 302 is threadedly connected with an abutting block 303. The abutting block 303 is slidably connected between the abutting block 303 and the mounting seat 201. A connecting groove is formed in the side surface of the support cylinder 301. The side surface of the abutting block 303 abuts against the support cylinder 301; In order to improve the durability of the end of the corrugated tube, a support cylinder 301 is provided inside the end of the corrugated tube. The support cylinder 301 can support and reinforce the end of the corrugated tube. At the same time, the support cylinder 301 is connected through the matching groove formed at the end of the corrugated tube, so that the connection position between the support cylinder 301 and the corrugated tube is fixed. Adjusting screws 302 are provided on both sides of the mounting seat 201. When the adjusting screw 302 rotates, the abutting block 303 will slide inside the mounting seat 201, and then abut and limit the support cylinder 301 to ensure that the overall length of the corrugated tube will not change after disassembly and assembly, and thus ensure the overall telescopic performance of the corrugated tube. On the other hand, the side surface of the abutting block 303 is a bevel structure, which can ensure the proper installation of the mounting seat 201 in cooperation with the connecting groove on the support cylinder 301. Through the supporting effect of the support cylinder 301, the service life of the corrugated tube can be effectively improved.

[0025] Specifically, as Figure 1 , Figure 4 , Figure 5 , Figure 8 shown, the support structure 4 includes a support rod 401. A plurality of support rods 401 are vertically provided on the side surface of the flange 202. One end of the support rod 401 is fixedly connected to the flange 202 through a first nut 402. The other end of the support rod 401 is a square structure. An adjusting sleeve 404 is provided at the square end of the support rod 401. A telescopic groove 405 is formed inside the adjusting sleeve 404. The square end of the support rod 401 is slidably connected to the adjusting sleeve 404 through the telescopic groove 405. A first spring 403 is fixedly connected between the support rod 401 and the adjusting sleeve 404. The ends of the adjusting sleeves 404 corresponding to both ends of the corrugated tube body 1 abut against each other; Due to the structural characteristics of the corrugated pipe, under the service condition of high-frequency vibration, in order to avoid damage to the corrugated pipe under high-frequency vibration, a plurality of support rods 401 are provided between the flange plates 202 at both ends. The support rods 401 are fixed to the flange plates 202 through the first nuts 402. An adjusting sleeve 404 is provided between the support rods 401 on both sides. Through the first spring 403 arranged between the adjusting sleeve 404 and the support rods 401, a certain supporting effect can be provided for the mounting seats 201 on both sides, thereby reducing the influence of the deformation of the corrugated pipe during vibration. At the same time, through the supporting action of the support rods 401, the corrugated pipe body 1 can also be prevented from bending, maintaining a straight state, and ensuring the conveying efficiency of the material.

[0026] Specifically, as Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 8 , Figure 10 , Figure 12 , Figure 13 shown, the adjusting structure 5 includes a connecting frame 501. A ring-shaped connecting frame 501 is provided in the middle of the corrugated pipe body 1. A threaded sleeve 502 is rotatably connected to the inner side of the connecting frame 501. A second thread groove 503 is provided inside the threaded sleeve 502. The thread directions on both sides of the second thread groove 503 are set in opposite directions. The adjusting sleeve 404 is threadedly connected to the connecting frame 501 through the second thread groove 503; Two mutually abutted adjusting sleeves 404 are threadedly connected with a threaded sleeve 502. The threaded sleeve 502 is connected to the connecting frame 501 in the middle of the corrugated pipe body 1 by threaded connection. The user can rotate the threaded sleeve 502 to adjust the supporting effect of the support rod 401, which is convenient for the use of the corrugated pipe in different scenarios. The thread directions on both sides of the threaded sleeve 502 are opposite, so that when the threaded sleeve 502 rotates, the two adjusting sleeves 404 will move in opposite directions, which is convenient for operation.

[0027] Specifically, as Figure 1 , Figure 9 , Figure 10 , Figure 11 , Figure 12 , Figure 13As shown, the moving structure 6 includes a second shaft block 611. Two second shaft blocks 611 are provided on the side surface of the flange 202. The second shaft block 611 is fixed to the flange 202 by a second nut 602. A support foot 601 is rotatably connected to the end of the second shaft block 611. A limiting groove 610 is formed inside the support foot 601. The support foot 601 is slidably connected to a connecting rod 603 through the limiting groove 610. A first shaft block 608 is slidably connected to the side surface of the connecting frame 501. The end of the connecting rod 603 is rotatably connected to the first shaft block 608. A third spring 609 is fixedly connected between two first shaft blocks 608 on the same side. A pulley 607 is rotatably connected to the side surface of the support foot 601. A clamping rod 604 is slidably connected to the inside of the connecting rod 603. A second spring 605 is fixedly connected between the end of the clamping rod 604 and the connecting rod 603. A clamping groove 606 is formed on the bottom side of the support foot 601; A support foot 601 is provided at the bottom side of the corrugated pipe body 1. The end of the support foot 601 rotates on the second shaft block 611, and a connecting rod 603 rotates on the first shaft block 608 on the connecting frame 501. When the support foot 601 rotates downward, the end of the connecting rod 603 will slide along the limiting groove 610 until the connecting rod 603 moves perpendicular to the support foot 601. At this time, the clamping rod 604 inside the connecting rod 603 will be engaged with the clamping groove 606 formed on the support foot 601. When multiple support feet 601 are all in the extended state, the pulley 607 on the side surface of the support foot 601 will be in direct contact with the ground, used for supporting and moving the whole device. Through the sliding of the pulley 607, it is convenient to install and fix the corrugated pipe in common areas. When it is necessary to retract the support foot 601 for support, just slide the clamping rod 604.

[0028] Specifically, as Figure 1 、 Figure 10 、 Figure 13 shown, the release structure 7 includes a locking rod 702. The locking rod 702 is slidably connected to the inside of the first shaft block 608. A fourth spring 704 is fixedly connected between the locking rod 702 and the first shaft block 608. The end of the locking rod 702 is in an inclined surface structure. The inclined surface end of the locking rod 702 is engaged with the end of the support foot 601. A release rod 701 is slidably connected to the side surface of the connecting frame 501. The release rod 701 is in a "Y" shape. An inclined surface groove 703 is formed on the side surface of the locking rod 702. The two ends of the release rod 701 are respectively slidably connected to two locking rods 702 on both sides through the inclined surface groove 703; When it is necessary to release the support foot 601, a release lever 701 is provided on the side of the connecting frame 501. When the release lever 701 slides, the end of the release lever 701 will pull the two locking levers 702 inward through the inclined plane groove 703. The inclined plane end of the locking lever 702 is used to position the horizontal state of the support foot 601. When the locking lever 702 retracts, the support foot 601 can be directly screwed out for supporting the whole device. A third spring 609 is connected between the first shaft blocks 608 on both sides to ensure that the end of the support foot 601 also has a good anti-vibration effect.

[0029] When the present invention is in use, first, an installation seat 201 is provided at each end of the corrugated pipe body 1. A flange 202 is fixed on the installation seat 201 for installing the corrugated pipe. To facilitate the disassembly and replacement of the corrugated pipe, a threaded gear ring 205 is provided inside the installation seat 201. When the user rotates the adjusting rod 203, the gear 204 on the adjusting rod 203 will drive the threaded gear ring 205 to start rotating through the tooth groove 206. The inner side of the threaded gear ring 205 is threadedly connected to the installation seat 201. As the threaded gear ring 205 rotates, the side surface of the threaded gear ring 205 will push the push ring 208 towards the sealing gasket 209. Through the inclined surface structure on the side surface of the push ring 208, the push ring 208 will squeeze the sealing gasket 209 in the first threaded groove 207 towards the inside until the connection is sealed by the sealing gasket 209. At the same time, since the corrugated pipe seals the corrugated pipe and the installation gasket through the sealing gasket 209, the user can quickly install and disassemble the corrugated pipe body 1, the installation seat 201, and the flange 202, which is convenient for the cleaning and maintenance of the corrugated pipe. To improve the durability of the end of the corrugated pipe, a support cylinder 301 is provided inside the end of the corrugated pipe. The support cylinder 301 can support and reinforce the end of the corrugated pipe. At the same time, the support cylinder 301 is connected through a mating groove opened at the end of the corrugated pipe, so that the connection position between the support cylinder 301 and the corrugated pipe remains fixed. Adjusting screws 302 are provided on both sides of the installation seat 201. When the adjusting screws 302 rotate, the abutting blocks 303 will slide inside the installation seat 201, and then abut and limit the support cylinder 301 to ensure that the overall length of the corrugated pipe does not change after disassembly and assembly, and thus ensure the overall telescopic performance of the corrugated pipe. On the other hand, the side surface of the abutting block 303 is an inclined surface structure, which, in cooperation with the connection groove on the support cylinder 301, can ensure the proper installation of the installation seat 201. Through the supporting effect of the support cylinder 301, the service life of the corrugated pipe can be effectively improved. Due to the structural characteristics of the corrugated pipe, under the use conditions of high-frequency vibration, to avoid the corrugated pipe being damaged under high-frequency vibration, a plurality of support rods 401 are provided between the flanges 202 at both ends. The support rods 401 are fixed to the flanges 202 through first nuts 402. An adjusting sleeve 404 is provided between the support rods 401 on both sides. Through the first spring 403 provided between the adjusting sleeve 404 and the support rods 401, a certain supporting effect can be provided for the installation seats 201 on both sides, thereby reducing the influence of the deformation of the corrugated pipe during vibration. At the same time, through the supporting effect of the support rods 401, the corrugated pipe body 1 can also be prevented from bending and kept in a straight state to ensure the conveying efficiency of the material. A threaded sleeve 502 is threadedly connected to two mutually abutting adjusting sleeves 404. The threaded sleeve 502 is connected to the connecting frame 501 in the middle of the corrugated pipe body 1 by threaded connection. The user can rotate the threaded sleeve 502 to adjust the supporting effect of the support rods 401, which is convenient for the use of the corrugated pipe in different scenarios.The thread directions on both sides of the threaded sleeve 502 are opposite. When the threaded sleeve 502 rotates, the two adjusting sleeves 404 will move in opposite directions, which is convenient for operation. Support feet 601 are provided at the bottom side of the corrugated pipe body 1. The end of the support foot 601 rotates on the second shaft block 611, and a connecting rod 603 rotates on the first shaft block 608 on the connecting frame 501. When the support foot 601 rotates towards the bottom side, the end of the connecting rod 603 will slide along the limiting groove 610 until the connecting rod 603 moves to be perpendicular to the support foot 601. At this time, the engaging rod 604 inside the connecting rod 603 will engage with the engaging groove 606 opened on the support foot 601. When multiple support feet 601 are all in the screwed-out state, the pulleys 607 on the side of the support foot 601 will be in direct contact with the ground, which is used to support and move the whole device. Through the sliding of the pulleys 607, it is convenient to install and fix the corrugated pipe in common areas. When it is necessary to retract the support feet 601 for support, just slide the engaging rod 604. When it is necessary to release the support feet 601, a release rod 701 is provided on the side of the connecting frame 501. When the release rod 701 slides, the end of the release rod 701 will pull the two locking rods 702 inwards through the inclined plane groove 703. The inclined plane ends of the locking rods 702 are used to position the horizontal state of the support feet 601. When the locking rods 702 retract, the support feet 601 can be directly screwed out for supporting the whole device. A third spring 609 is connected between the first shaft blocks 608 on both sides to ensure that the ends of the support feet 601 also have good anti-vibration effects.,

[0030] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, it is intended to embrace all changes falling within the meaning and scope of the equivalent elements of the claims in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed rights involved.

[0031] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A high-frequency vibration bellows with enhanced elasticity, characterized in that, The invention comprises a bellows body (1), wherein a connection structure (2) is provided at the end of the bellows body (1), a resistance structure (3) is provided on the inner side of the connection structure (2), a support structure (4) is provided on the side of the bellows body (1), an adjustment structure (5) is provided in the middle of the support structure (4), a moving structure (6) is provided on the bottom side of the bellows body (1), and a release structure (7) is provided in the middle of the moving structure (6); The connection structure (2) comprises a mounting seat (201), and the two ends of the corrugated tube body (1) are respectively sleeved with a mounting seat (201), and the side of the mounting seat (201) is fixedly connected to a flange (202), and the inner side of the mounting seat (201) is provided with a first thread groove (207), and the inner side of the first thread groove (207) is slidably connected to a pushing ring (208), and the side of the pushing ring (208) is an inclined surface structure, and the inner side of the mounting seat (201) is provided with a sealing gasket (209), and the inclined side of the pushing ring (208) is in conflict with the sealing gasket (209), and the mounting seat (201) is threadedly connected to a threaded gear ring (205) through the first thread groove (207), and the side of the threaded gear ring (205) is in conflict with the pushing ring (208).

2. The high-frequency vibration corrugated pipe with enhanced elasticity according to claim 1, wherein: The side of the mounting seat (201) is rotatably connected to an adjusting rod (203), the adjusting rod (203) is fixedly connected to a gear (204), a tooth groove (206) is provided on the side of the threaded gear ring (205), and the threaded gear ring (205) is meshed with the gear (204) via the tooth groove (206).

3. The high-frequency vibration corrugated pipe with enhanced elasticity according to claim 1, characterized in that: The interference structure (3) comprises a support tube (301), the inner side of the bellows body (1) is slidably connected to the support tube (301), both ends of the bellows body (1) are respectively provided with matching grooves (305), and the two sides of the support tube (301) are engaged with the bellows body (1) via the matching grooves (305).

4. The high-frequency vibration bellows with enhanced elasticity according to claim 3, characterized in that: The side surface of the mounting seat (201) is rotatably connected to an adjusting screw (302), the end of the adjusting screw (302) is threadedly connected to a resistance block (303), the resistance block (303) and the mounting seat (201) are slidably connected, and a connecting groove (304) is provided on the side surface of the support tube (301), and the side surface of the resistance block (303) and the support tube (301) are in resistance.

5. A high-frequency vibrating corrugated pipe with enhanced elasticity according to claim 1, characterized in that: The support structure (4) includes support rods (401). A plurality of support rods (401) are vertically provided on the side surface of the flange (202). One end of the support rod (401) is fixedly connected to the flange (202) through a first nut (402). The other end of the support rod (401) is of a square structure. An adjusting sleeve (404) is provided at the square end of the support rod (401). A telescopic groove (405) is formed inside the adjusting sleeve (404). The square end of the support rod (401) is slidably connected to the adjusting sleeve (404) through the telescopic groove (405). A first spring (403) is fixedly connected between the support rod (401) and the adjusting sleeve (404). The ends of the adjusting sleeves (404) corresponding to both ends of the corrugated pipe body (1) are in contact with each other.

6. The high-frequency vibration corrugated pipe with enhanced elasticity according to claim 5, characterized in that: The adjusting structure (5) includes a connecting frame (501). An annular connecting frame (501) is provided in the middle of the corrugated pipe body (1). A threaded sleeve (502) is rotatably connected inside the connecting frame (501). A second threaded groove (503) is formed inside the threaded sleeve (502). The thread directions on both sides of the second threaded groove (503) are set in opposite directions. The adjusting sleeve (404) is threadedly connected to the connecting frame (501) through the second threaded groove (503).

7. The high-frequency vibration corrugated pipe with enhanced elasticity according to claim 6, characterized in that: The moving structure (6) includes second shaft blocks (611). Two second shaft blocks (611) are provided on the side surface of the flange (202). The second shaft blocks (611) are fixedly connected to the flange (202) through second nuts (602). A support foot (601) is rotatably connected to the end of the second shaft block (611). A limiting groove (610) is formed inside the support foot (601). A connecting rod (603) is slidably connected to the support foot (601) through the limiting groove (610). A first shaft block (608) is slidably connected to the side surface of the connecting frame (501). The end of the connecting rod (603) is rotatably connected to the first shaft block (608). A third spring (609) is fixedly connected between the two first shaft blocks (608) on the same side. A pulley (607) is rotatably connected to the side surface of the support foot (601).

8. The high-frequency vibration corrugated pipe with enhanced elasticity according to claim 7, characterized in that: A clamping rod (604) is slidably connected inside the connecting rod (603). A second spring (605) is fixedly connected between the end of the clamping rod (604) and the connecting rod (603). A clamping groove (606) is formed on the bottom side of the support foot (601).

9. A high-frequency vibration bellows with enhanced elasticity according to claim 7, characterized in that: The release structure (7) includes a locking rod (702). The locking rod (702) is slidably connected to the inner side of the first shaft block (608). A fourth spring (704) is fixedly connected between the locking rod (702) and the first shaft block (608). The end of the locking rod (702) has an inclined surface structure, and the inclined surface end of the locking rod (702) is engaged with the end of the support foot (601). A release rod (701) is slidably connected to the side surface of the connecting frame (501). The release rod (701) has a "Y" - shaped structure. An inclined surface groove (703) is formed on the side surface of the locking rod (702). The two ends of the release rod (701) are respectively slidably connected to the two locking rods (702) on both sides through the inclined surface grooves (703).

Citation Information

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