Split type transverse moving and leading-up device for galvanized pipe production

By using a split-type transverse guide and locking device with an anti-detachment safety structure, the problem of insufficient synchronization accuracy and adaptability in galvanized pipe production is solved, achieving stable suspension of multiple specifications of pipes and uniform coating, thus improving the overall quality and safety of galvanized pipe production.

CN121653550APending Publication Date: 2026-03-13TIANJIN YOUFA DEZHONG STEEL PIPES CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-12
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

The existing transverse guide device for galvanized pipe production has problems with insufficient synchronization accuracy and poor adaptability, making it difficult to meet the guide requirements of pipes of different lengths, resulting in uneven coating thickness.

Method used

The device employs a split-type transverse guide and lifting mechanism, which uses a guide locking structure and an anti-detachment safety structure to achieve adaptive positioning and locking of the galvanized pipe. By using a motor drive and a wire rope assembly in conjunction with a built-in liquid bladder component, it can achieve stable suspension of pipes of various specifications and uniform coating.

Benefits of technology

It improves the synchronization accuracy and adaptability of the galvanized pipe production process, reduces the problem of uneven coating thickness, ensures stable drawing and coating consistency of pipes of different lengths, avoids clamping damage, and enhances the practicality and safety of the equipment.

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Abstract

The invention discloses a split type transverse moving and upward guiding device for galvanized pipe production, and relates to the field of galvanized pipe production. A preset driving part is installed at the upper end of a preset base body through a motor and a chain wheel, and a bearing butt joint part transversely moves along the upper end of the preset base body; an abutting supporting piece is installed at the lower end of the bearing butt joint piece in a nested mode, and the lower end of the abutting supporting piece is in butt joint with a built-in steel wire rope assembly. According to the split type transverse moving and upward guiding device for galvanized pipe production, the guiding and locking structure is arranged, the end side of a borne workpiece is subjected to self-adaptive extending and positioning treatment through the guiding and locking structure, a positioning method for pipes of multiple specifications is established, and according to the characteristics of galvanized pipes of different lengths in the upward guiding process, the clamping distance and the supporting point position are adjusted, so that the production efficiency is improved. The problem of uneven coating thickness caused by drooping of the long pipe due to self weight is solved, a positioning method suitable for pipes of multiple specifications is developed, the stable operation posture of the pipes is ensured, the coating consistency is improved, and the overall machining quality is ensured.
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Description

Technical Field

[0001] This invention relates to the field of galvanized pipe production technology, specifically to a split-type transverse guide device for galvanized pipe production. Background Technology

[0002] After galvanizing, the galvanized pipe needs to be retrieved by an lifting device. The uniformity of the coating on the inner wall of the galvanized pipe directly affects the service life and performance stability of the product. The traditional transverse lifting system commonly used in the industry has problems such as insufficient synchronization accuracy and poor adaptability, resulting in uneven coating thickness on the inner wall of long pipes.

[0003] For example, the patent with publication number CN217077760U discloses a galvanized pipe post-galvanizing guide device, which includes a workbench, a galvanizing tank above the workbench, a column installed on the surface of the workbench, a horizontal plate installed at the upper end of the column, an adjustment rail inside the horizontal plate, an adjustment rod installed on the inner side of the adjustment rail, an adjustment block installed on the outer side of the adjustment rod, and the adjustment block is also located on the inner side of the adjustment rail. A winding wheel is installed on a servo motor, which is installed on the upper surface of the clamping platform. A drive spring is also connected to the second clamping block, and the drive spring is located on the inner side of the horizontal groove to facilitate the cooperation between the second clamping block and the first clamping block to clamp the steel pipe.

[0004] For example, patent CN212953881U discloses a galvanized pipe lifting device after galvanizing, which includes a base. Vertical plates are fixedly connected to both ends of the top of the base. A horizontal plate is fixedly connected to the top of the two vertical plates. Fixed pulleys are fixedly connected to both ends of the bottom of the horizontal plate. A steel wire rope is sleeved on the outer surface of the two fixed pulleys. A movable pulley is slidably connected to the middle of the steel wire rope. A hook is fixedly connected to the bottom of the movable pulley. The structure is simple and can clamp and lift pipes of different lengths, thereby improving the efficiency of galvanizing.

[0005] For example, the patent with publication number CN208328082U discloses a galvanized pipe drawing device, which includes a frame and magnetic rollers sequentially installed on the frame. The frame is provided with a robot, a straightening arm and an external blowing mechanism from the inlet end to the outlet end. The outlet end of the frame is provided with a horizontal internal blowing structure. The internal blowing mechanism includes an internal blowing rod and a cylinder connected to the internal blowing rod. The frame is placed at an inclination, with its inlet end at a low position and its outlet end at a high position. It is provided with an arc-shaped straightening part at its top corner to ensure the galvanizing quality and is suitable for drawing various types of steel pipes out of the hot-dip galvanizing bath.

[0006] Most of the existing technologies mentioned above improve the overall structure. However, existing galvanized pipe production transverse transfer and lifting devices have problems such as insufficient synchronization accuracy and poor adaptability during operation. Domestic galvanized pipe processes generally face technical bottlenecks in the transverse transfer and lifting stage. Most existing technologies still use fixed or simple split transverse transfer mechanisms, which are difficult to adapt to the lifting requirements of pipes of different lengths. There is a lack of systematic exploration of the intrinsic relationship between the synchronization of the transverse transfer mechanism and the uniformity of the coating. The adaptability to special specifications of pipes is still limited. Summary of the Invention

[0007] The purpose of this invention is to provide a split-type transverse guide device for galvanized pipe production, in order to solve the problems mentioned in the background art, such as insufficient synchronization accuracy and poor adaptability. The domestic galvanized pipe process generally faces technical bottlenecks in the transverse guide stage, and most existing technologies still use fixed or simple split transverse mechanisms, which are difficult to adapt to the guide requirements of pipes of different lengths.

[0008] To achieve the above objectives, the present invention provides the following technical solution:

[0009] A split-type transverse guide device for galvanized pipe production includes a preset base. A preset drive component is mounted on the upper end of the preset base via a motor and sprocket. The preset drive component is connected to a load-bearing docking component via the motor. The load-bearing docking component moves laterally along the upper end of the preset base. A stop support component is nested at the lower end of the load-bearing docking component, and a built-in steel wire rope assembly is connected to the lower end of the stop support component. The built-in steel wire rope assembly runs through the interior of the load-bearing docking component. A limit reservation component is nested on the outer side of the stop support component, and the upper end of the limit reservation component is connected to the end of the built-in steel wire rope assembly. A guide locking structure is provided between the limit reservation component and the stop support component, which adaptively extends and positions the end of the supported workpiece.

[0010] Furthermore, the guide locking structure is provided with a built-in liquid storage bladder component, which is connected to the inside of the bearing docking member. The upper end of the built-in liquid storage bladder component is connected to the lower end of the limiting reserved member. A docking supply flexible tube is connected through the outer side of the built-in liquid storage bladder component, and the docking supply flexible tube passes through the inner side of the bearing docking member. A limiting docking member is nested on the inner side of the upper end of the limiting reserved member. A built-in transverse liquid bladder component is bonded and connected between the limiting docking member and the limiting reserved member. The built-in transverse liquid bladder component is connected to the end of the docking supply flexible tube.

[0011] Furthermore, a reset spring is fixedly connected to the outer side of the limiting reserved component, and the reset spring is connected to the bearing docking component. An auxiliary extension component is nested on the outer side of the bearing docking component, and a transverse corrugated reserved liquid bladder assembly is bonded and connected between the auxiliary extension component and the bearing docking component. A reserved supply hose is connected to the outer side of the transverse corrugated reserved liquid bladder assembly, and the reserved supply hose passes through the inner side of the bearing docking component and is connected to the interior of the built-in liquid storage bladder component.

[0012] Furthermore, when the abutting support moves to contact the inner side of the upper end of the pipe, the continuously rising bearing docking member will cooperate with the pre-stressed abutting support on the inner side to move downward. The abutting support, through the built-in steel wire rope assembly, drives the limiting reserved member to form a traction structure, and the limiting reserved member applies pressure to the contacting built-in liquid storage bladder component simultaneously. The built-in liquid storage bladder component forms a supply operation to the interior of the built-in transverse liquid bladder component through the docking supply flexible tube. The expansion of the built-in transverse liquid bladder component pushes the outer limiting docking member to move laterally.

[0013] Furthermore, during the process of the built-in liquid storage bladder component being pressurized, the supply work is simultaneously formed to the interior of the transverse corrugated pre-reserved liquid bladder assembly through the reserved supply hose, and the expansion of the transverse corrugated pre-reserved liquid bladder assembly pushes the outer auxiliary extension component to move outward for support.

[0014] Furthermore, the inner side of the abutting support is provided with an anti-detachment safety structure, which assists in locking the bearing workpiece to prevent it from falling off. The anti-detachment safety structure is provided with a built-in abutting member, which is nested and connected along the inner side of the middle end of the bearing docking member. The inner end of the built-in abutting member is bonded to a reserved built-in liquid bladder, which is connected to the inner side of the middle end of the bearing docking member.

[0015] Furthermore, a vertically reserved liquid bladder assembly is bonded to the inner side of the upper end of the abutment support, and a friction limiting elastic component is connected to the upper end of the vertically reserved liquid bladder assembly. A built-in supply hose passes through the lower end of the friction limiting elastic component, and the end of the built-in supply hose is connected to the interior of the reserved built-in liquid bladder.

[0016] Furthermore, during the process of the built-in abutment member being subjected to force, pressure is simultaneously applied to the reserved built-in liquid bladder on the inner side, and the reserved built-in liquid bladder is supplied to the vertical reserved liquid bladder assembly inside the abutment support member through the built-in supply hose.

[0017] Furthermore, during the expansion of the vertically reserved liquid bladder assembly under force, the upper friction limiting elastic component is pushed upward by force, and the friction limiting elastic component moves vertically along the inner side of the upper end of the contact support member.

[0018] Compared with the prior art, the beneficial effects of the present invention are:

[0019] This galvanized pipe production split-type transverse guide device is equipped with a guide locking structure. This structure adaptively extends and positions the workpiece end, and a pre-set motor structure lifts the bearing docking component upwards. This pre-stresses the contact support component on the surface of the bearing docking component, causing it to move downwards in conjunction with the built-in wire rope assembly, which in turn drives the limit pre-positioning component to move vertically. Simultaneously, the limit pre-positioning component applies pressure to the contacting built-in liquid storage bladder component, causing the built-in liquid storage bladder component to supply liquid to the built-in transverse liquid storage bladder component through the docking supply flexible tube. This causes the built-in transverse liquid storage bladder component to expand, pushing the outer limit docking component laterally. The movement of the limiting and connecting parts allows the limiting and reserved parts to move downwards, thereby laterally positioning the upper end of the contacting galvanized pipe while simultaneously performing auxiliary adaptive locking. This eliminates the need for additional locking structures and avoids the clamping damage defects caused by conventional point positioning locking methods. A positioning method for multi-specification pipes is established, taking into account the characteristics of galvanized pipes of different lengths during the lead-in process. By adjusting the clamping spacing and support points, the problem of uneven coating thickness caused by the sagging of long pipes due to their own weight is reduced. A positioning method suitable for multi-specification pipes is developed to ensure stable operation, improve coating consistency, and guarantee overall processing quality.

[0020] Furthermore, during the downward pressure exerted on the built-in liquid storage bladder component by the limit retainer, it will simultaneously supply liquid to the interior of the transverse corrugated liquid storage bladder assembly through the reserved supply hose. This allows the transverse corrugated liquid storage bladder assembly to expand and push the two sets of auxiliary extension components to move outward along the inner upper wall of the galvanized pipe, thereby increasing the bearing area on the inner side of the galvanized pipe, ensuring the stability of its suspension, avoiding easy occurrence of unstable center of gravity and tilting, and improving the practicality of the device.

[0021] Furthermore, an anti-detachment safety structure is provided. This structure provides auxiliary anti-detachment locking for the workpiece. During the movement of the galvanized pipe's inner upper wall suspended by the load-bearing docking part, if a unilateral angular tilt occurs, the corresponding angled internal contact component will move along the inner side of the load-bearing docking part, simultaneously pressurizing the reserved internal liquid bladder. This allows the reserved internal liquid bladder to supply fluid to the vertical reserved liquid bladder assembly through the internal supply hose. This, in turn, cooperates with the expanded vertical reserved liquid bladder assembly to push the friction limiting elastic component upward, thus providing auxiliary locking and correction for the tilted workpiece's inner upper wall, further ensuring its safe transmission quality. Attached Figure Description

[0022] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0023] Figure 2 This is a schematic diagram of the three-dimensional structure of the pre-designed substrate of the present invention;

[0024] Figure 3 This is a schematic diagram of the three-dimensional structure of the bearing docking component of the present invention in half section.

[0025] Figure 4 For the present invention Figure 3 A magnified schematic diagram of the central part of the structure;

[0026] Figure 5 This is a schematic diagram of the three-dimensional structure of the limiting docking component of the present invention in half section.

[0027] Figure 6 This is a three-dimensional structural diagram of the contact support member of the present invention;

[0028] Figure 7 This is a three-dimensional structural diagram of the built-in transverse liquid bladder component of the present invention;

[0029] Figure 8 This is a schematic diagram of the three-dimensional structure of the supply hose reserved for this invention;

[0030] Figure 9 This is a three-dimensional structural diagram of the vertical pre-reserved liquid bladder assembly of the present invention;

[0031] Figure 10 This is a three-dimensional structural diagram of the transverse corrugated pre-reserved liquid bladder assembly of the present invention.

[0032] In the diagram: 1. Pre-set base; 2. Anti-collision support; 3. Built-in steel wire rope assembly; 4. Limiting reserved component; 5. Built-in liquid storage bladder component; 6. Connecting supply flexible tube; 7. Built-in transverse liquid bladder component; 8. Limiting docking component; 9. Return spring; 10. Reserved supply hose; 11. Transverse corrugated reserved liquid bladder assembly; 12. Auxiliary extension component; 13. Built-in anti-collision component; 14. Reserved built-in liquid bladder; 15. Built-in supply hose; 16. Vertical reserved liquid bladder assembly; 17. Friction limiting elastic component; 18. Bearing docking component. Detailed Implementation

[0033] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0034] Example 1: Please refer to Figures 1-10This invention provides the following technical solution: a split-type transverse guiding device for galvanized pipe production. To address the problems of insufficient synchronization accuracy and poor adaptability during operation, and the fact that domestic galvanized pipe processes generally face technical bottlenecks in the transverse guiding stage, with most existing technologies still employing fixed or simple split-type transverse guiding mechanisms, this invention discloses a device comprising: a preset drive component mounted on the upper end of a preset base 1 via a motor and a sprocket; the preset drive component being connected to a bearing docking member 18 via the motor; and the bearing docking member 18 moving along the preset base 1... The upper end moves laterally; the lower end of the bearing docking part 18 is nested with an abutting support 2, and the lower end of the abutting support 2 is connected to a built-in steel wire rope assembly 3, and the built-in steel wire rope assembly 3 runs through the interior of the bearing docking part 18. The outer side of the abutting support 2 is nested with a limit reservation part 4, and the upper end of the limit reservation part 4 is connected to the end of the built-in steel wire rope assembly 3. A guide locking structure is provided between the limit reservation part 4 and the abutting support 2, and the end of the bearing workpiece is adaptively extended and positioned by the guide locking structure.

[0035] The guide locking structure is equipped with a built-in liquid reservoir component 5, which is connected to the inside of the bearing docking member 18. The upper end of the built-in liquid reservoir component 5 is connected to the lower end of the limiting reserved component 4. A docking supply flexible tube 6 is connected through the outer side of the built-in liquid reservoir component 5, and the docking supply flexible tube 6 passes through the inner side of the bearing docking member 18. A limiting docking member 8 is nested inside the upper end of the limiting reserved component 4. A built-in transverse liquid reservoir component 7 is bonded and connected between the limiting docking member 8 and the limiting reserved component 4. The built-in transverse liquid reservoir component 7 is connected to the end of the docking supply flexible tube 6. A return spring 9 is fixedly connected to the outer side of the limiting reserved component 4, and the return spring 9 is connected to the bearing docking member 18. The bearing docking member 18 An auxiliary extension member 12 is nested on the outer side of the device, and a transverse corrugated pre-reserved liquid bladder assembly 11 is bonded and connected between the auxiliary extension member 12 and the bearing docking member 18. A pre-reserved supply hose 10 is connected to the outer side of the transverse corrugated pre-reserved liquid bladder assembly 11, and the pre-reserved supply hose 10 passes through the inner side of the bearing docking member 18. The pre-reserved supply hose 10 is interconnected with the interior of the built-in liquid bladder component 5. When the contact support member 2 moves to contact the inner side of the upper end of the pipe, the continuously raised bearing docking member 18 will cooperate with the pre-stressed contact support member 2 to move downward. The contact support member 2 drives the limiting pre-reserved member 4 through the built-in steel wire rope assembly 3 to form a traction structure, and the limiting pre-reserved member 4 applies pressure to the contacted built-in liquid bladder component 5 simultaneously. 5. Supply is initiated by the flexible supply tube 6 to the interior of the built-in transverse liquid bladder component 7. The expansion of the built-in transverse liquid bladder component 7 pushes the outer limiting docking component 8 to move laterally. During the pressurization of the built-in liquid bladder component 5, supply is simultaneously initiated by the reserved supply hose 10 to the interior of the transverse corrugated reserved liquid bladder assembly 11. The expansion of the transverse corrugated reserved liquid bladder assembly 11 pushes the outer auxiliary extension component 12 to move outward for support. When the galvanized pipe needs to be lifted, it is only necessary to start the preset drive component at the upper end of the preset base 1, so that it drives the bearing docking component 18 to move to both sides of the upper end wall of the galvanized pipe through the sprocket transmission structure. Then, the preset motor structure can lift the bearing docking component 18 to move upward, thereby allowing the surface of the bearing docking component 18 to move upward. The supporting member 2 is pre-stressed, thus cooperating downwards with the built-in wire rope assembly 3 to drive the limiting reserved member 4 to move vertically in sync. At the same time, the limiting reserved member 4 applies pressure to the contacting built-in liquid storage bladder member 5, causing the built-in liquid storage bladder member 5 to supply the built-in transverse liquid bladder member 7 through the connecting supply flexible tube 6. This causes the built-in transverse liquid bladder member 7 to expand, pushing the outer limiting connecting member 8 to move laterally. As the limiting reserved member 4 moves downwards, the limiting connecting member 8 laterally positions the upper end of the contacting galvanized pipe while simultaneously providing auxiliary adaptive locking. This eliminates the need for additional locking structures and avoids the clamping damage defects caused by conventional point positioning locking methods. A positioning method for multi-specification pipes is established, taking into account the characteristics of galvanized pipes of different lengths during the lead-in process.Simultaneously, by adjusting the clamping spacing and support points, the problem of uneven coating thickness caused by the sagging of long pipes due to their own weight is reduced. A positioning method suitable for multiple pipe specifications is developed. During the downward pressure exerted on the internal liquid storage bladder component 5 by the limiting pre-reserved component 4, it simultaneously supplies liquid to the interior of the transverse corrugated pre-reserved liquid bladder assembly 11 through the pre-reserved supply hose 10. This causes the transverse corrugated pre-reserved liquid bladder assembly 11 to expand, pushing the two sets of auxiliary extension components 12 outward along the inner upper wall of the galvanized pipe, thereby increasing the bearing area on the inner side of the galvanized pipe and ensuring its suspension stability.

[0036] Example 2: Based on Example 1, to address the challenges of adapting to the requirements of drawing up pipes of different lengths, the lack of systematic exploration into the intrinsic relationship between the synchronization of the transverse movement mechanism and the uniformity of the coating, and the limitations in adaptability to pipes of special specifications, an anti-detachment safety structure is also disclosed. The specific structure is as follows:

[0037] The inner side of the contact support 2 is provided with an anti-detachment safety structure, which provides auxiliary anti-detachment locking treatment for the load-bearing workpiece;

[0038] The anti-detachment safety structure is equipped with a built-in abutment 13, which is nested and connected to the inner side of the middle of the bearing docking member 18. A reserved built-in liquid bladder 14 is bonded to the inner end of the built-in abutment 13, and the reserved built-in liquid bladder 14 is connected to the inner side of the middle of the bearing docking member 18. A vertical reserved liquid bladder assembly 16 is bonded to the inner side of the upper end of the abutment support member 2, and a friction limiting elastic member 17 is connected to the upper end of the vertical reserved liquid bladder assembly 16. A built-in supply hose 15 passes through the lower end of the friction limiting elastic member 17, and the end of the built-in supply hose 15 is connected to the interior of the reserved built-in liquid bladder 14. During the process of the built-in abutment 13 being subjected to force, pressure is simultaneously applied to the inner reserved built-in liquid bladder 14, and the reserved built-in liquid bladder 14 supplies pressure to the interior of the abutment support member 2 through the built-in supply hose 15. The liquid-retaining bladder assembly 16 is supplied. During the expansion of the vertical liquid-retaining bladder assembly 16 under force, it pushes the upper friction limiting elastic component 17 to move upward under force. The friction limiting elastic component 17 moves vertically along the inner side of the upper end of the abutment support 2. During the movement of the inner upper wall of the galvanized pipe suspended by the bearing docking component 18, if a unilateral angle tilt occurs, the corresponding angle-pressed built-in abutment component 13 will move along the inner side of the bearing docking component 18, thereby simultaneously pressurizing the reserved built-in liquid bladder 14. The reserved built-in liquid bladder 14 is supplied to the vertical liquid-retaining bladder assembly 16 through the built-in supply hose 15. This, in conjunction with the expansion of the vertical liquid-retaining bladder assembly 16 under force, pushes the friction limiting elastic component 17 to move upward vertically, thereby providing auxiliary locking and abutment correction treatment for the inner side of the upper wall of the workpiece in the tilted state.

[0039] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0040] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A split-type transverse guide device for galvanized pipe production, comprising a preset base (1), wherein a preset drive component is mounted on the upper end of the preset base (1) via a motor and a sprocket, and the preset drive component is connected to a bearing docking member (18) via the motor, the bearing docking member (18) moving laterally along the upper end of the preset base (1); characterized in that: The lower end of the bearing docking member (18) is nested with an abutting support member (2), and the lower end of the abutting support member (2) is connected to a built-in steel wire rope assembly (3). The built-in steel wire rope assembly (3) passes through the interior of the bearing docking member (18). The outer side of the abutting support member (2) is nested with a limiting reserved member (4), and the upper end of the limiting reserved member (4) is connected to the end of the built-in steel wire rope assembly (3). A guide locking structure is provided between the limiting reserved member (4) and the abutting support member (2). The workpiece end side is adaptively extended and positioned by the guide locking structure.

2. The split-type transverse guide device for galvanized pipe production according to claim 1, characterized in that: The guide locking structure is provided with a built-in liquid storage bladder component (5), and the built-in liquid storage bladder component (5) is connected to the inside of the bearing docking member (18). The upper end of the built-in liquid storage bladder component (5) is connected to the lower end of the limiting reserved member (4). The outer side of the built-in liquid storage bladder component (5) is connected to the docking supply flexible tube (6), and the docking supply flexible tube (6) passes through the inner side of the bearing docking member (18). The upper inner side of the limiting reserved member (4) is nested with a limiting docking member (8), and the limiting docking member (8) and the limiting reserved member (4) are bonded together with a built-in transverse liquid bladder component (7). The built-in transverse liquid bladder component (7) is connected to the end of the docking supply flexible tube (6).

3. The galvanized pipe production split-type transverse guide device according to claim 2, characterized in that: A reset spring (9) is fixedly connected to the outer side of the limiting reserved part (4), and the reset spring (9) and the bearing docking part (18) are connected to each other. An auxiliary extension part (12) is nested on the outer side of the bearing docking part (18), and a transverse corrugated reserved liquid bladder assembly (11) is bonded and connected between the auxiliary extension part (12) and the bearing docking part (18). A reserved supply hose (10) is connected to the outer side of the transverse corrugated reserved liquid bladder assembly (11), and the reserved supply hose (10) passes through the inner side of the bearing docking part (18), and the reserved supply hose (10) is connected to the interior of the built-in liquid storage bladder component (5).

4. The galvanized pipe production split-type transverse guide device according to claim 3, characterized in that: When the contact support (2) moves to contact the inner side of the upper end of the pipe fitting, the continuously raised bearing docking part (18) will cooperate with the inner pre-stressed contact support (2) to move downward. The contact support (2) drives the limiting reserved part (4) to form a traction structure through the built-in steel wire rope assembly (3), and the limiting reserved part (4) applies pressure to the contacting built-in liquid storage bladder component (5) at the same time. The built-in liquid storage bladder component (5) forms a supply operation to the interior of the built-in transverse liquid bladder component (7) through the docking supply flexible tube (6). The expansion of the built-in transverse liquid bladder component (7) pushes the outer limiting docking part (8) to move laterally.

5. The galvanized pipe production split-type transverse guide device according to claim 4, characterized in that: During the process of being compressed, the built-in liquid storage bladder component (5) simultaneously forms a supply operation to the interior of the transverse corrugated reserved liquid bladder assembly (11) through the reserved supply hose (10). The expansion of the transverse corrugated reserved liquid bladder assembly (11) pushes the outer auxiliary extension component (12) to move outward for support.

6. The split-type transverse guide device for galvanized pipe production according to claim 3, characterized in that: The inner side of the abutting support member (2) is provided with an anti-detachment safety structure, which is used to assist in locking the load-bearing workpiece to prevent it from falling off. The anti-detachment safety structure is provided with a built-in abutment (13), and the built-in abutment (13) is nested and connected along the inner side of the middle end of the bearing docking member (18). The inner end of the built-in abutment (13) is bonded and connected with a reserved built-in liquid bladder (14), and the reserved built-in liquid bladder (14) is connected to the inner side of the middle end of the bearing docking member (18).

7. The split-type transverse guide device for galvanized pipe production according to claim 6, characterized in that: The upper inner side of the contact support (2) is bonded with a vertical reserved liquid bladder assembly (16), and the upper end of the vertical reserved liquid bladder assembly (16) is connected to a friction limiting elastic component (17), and the lower end of the friction limiting elastic component (17) is penetrated by a built-in supply hose (15), and the end of the built-in supply hose (15) is connected to the interior of the reserved built-in liquid bladder (14).

8. The galvanized pipe production split-type transverse guide device according to claim 7, characterized in that: During the process of the built-in contact member (13) being subjected to force, it simultaneously applies pressure to the reserved built-in liquid bladder (14) on the inner side, and the reserved built-in liquid bladder (14) supplies the liquid to the vertical reserved liquid bladder assembly (16) inside the contact support member (2) through the built-in supply hose (15).

9. The galvanized pipe production split-type transverse guide device according to claim 8, characterized in that: During the expansion of the vertical pre-reserved liquid bladder assembly (16) under force, the friction limiting elastic component (17) at the upper end is pushed upward under force, and the friction limiting elastic component (17) moves vertically along the inner side of the upper end of the contact support (2).

Citation Information

Patent Citations

  • Galvanized pipe draws device

    CN208328082U

  • Galvanized pipe leading-up device

    CN212953881U

  • Galvanized pipe leading-up device after galvanization

    CN217077760U