High-pressure composite pipe shunt winding auxiliary device

The automatic reeling of high-pressure composite pipes is achieved through mechanized lifting and translation devices, which solves the problem of low manual control accuracy, improves the uniformity of reeling and production efficiency, reduces the risk of scratches, and meets the requirements of modern production.

CN223342093UActive Publication Date: 2025-09-16XIAN SITONG PIPE IND
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Patent Information

Application Number
CN202422945883.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-09-16
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

In the existing high-pressure composite pipe reeling process, the manually controlled winch-assisted reeling has low accuracy, resulting in uneven and unsightly winding, and easily causing scratches on the pipe wall, affecting production efficiency and quality.

Method used

A high-pressure composite pipe reeling auxiliary device is designed. It adopts a mechanized lifting device and a translation device. Through the controller, it can achieve precise adjustment and automatic reeling of the high-pressure composite pipe, replacing manual operation.

Benefits of technology

It improves the accuracy and uniformity of roll separation, reduces the risk of tube wall scratches, improves production efficiency and quality, and meets the needs of modern production.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223342093U_ABST
Patent Text Reader

Abstract

A high-pressure composite pipe roll-dividing auxiliary device comprises a horizontally-arranged cross beam, a pair of parallel and corresponding stand columns are arranged at the two ends of the cross beam and are both vertically arranged in the mode of being perpendicular to the cross beam, the two ends of the cross beam are connected to the stand columns on the corresponding sides respectively, and an auxiliary groove in sliding connection is formed in the upper portion of the cross beam. A lifting device corresponding to the stand column and a translation device corresponding to the auxiliary groove are arranged at the end part of the cross beam; and a controller which can be externally connected with a control device is arranged on each of the lifting device and the translation device. According to the high-pressure composite pipe dividing and winding device, the accuracy, compactness, uniformity and flatness of dividing and winding are improved, more time and labor are saved, and the dividing and winding efficiency and dividing and winding quality of high-pressure composite pipes are improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of pipe processing equipment, and in particular relates to a device for assisting high-pressure composite pipe coiling. Background Art

[0002] High-pressure composite pipes are produced continuously during production and need to be delivered in lengths ranging from 50 to several hundred meters according to customer requirements. Therefore, the long lengths of high-pressure composite pipes need to be cut and reeled during the production process. After the high-pressure composite pipe is coated, it is first wound onto an "H"-shaped take-up reel. The reel is then reeled onto multiple corresponding reels in an "I" shape, making the reels more convenient to transport. During the reeling process, the "H"-shaped winding state of the high-pressure composite pipe needs to be transformed into an "I"-shaped winding state. In this process, since the high-pressure composite pipe itself cannot adjust the winding height, the traditional method is to set a winch between the take-up reel and the reel. The winch lifts the high-pressure composite pipe in the middle position of the take-up reel and the reel through a rope, and manually adjusts the height of the winch through a button during the reeling process, so that the reeled high-pressure composite pipe is evenly wound on the reel. However, this method of using manual visual judgment has low accuracy and is prone to loose winding, unevenness, and unevenness. In addition, the high-pressure composite pipe is prone to collision with the reel, which may cause scratches on its outer wall. The high-pressure composite pipe reeled in this way not only has low winding aesthetics, which does not meet the needs of modern production, but is also time-consuming and labor-intensive, and has low efficiency, which seriously affects the quality and efficiency of high-pressure composite pipe production. Utility Model Content

[0003] The utility model aims to provide a high-pressure composite pipe reeling auxiliary device to solve the technical problem that the existing high-pressure composite pipe reeling auxiliary device is not only low in accuracy but also affects its quality and efficiency.

[0004] In order to achieve the above purpose, the specific technical solutions of the present utility model are as follows:

[0005] A high-pressure composite pipe coiling auxiliary device includes a horizontally arranged crossbeam, with a pair of parallel and corresponding columns provided at both ends of the crossbeam, both of which are vertically arranged perpendicular to the crossbeam, the two ends of the crossbeam are respectively connected to the columns on the corresponding sides, a slidably connected auxiliary groove is provided above the crossbeam, and the ends of the crossbeam are provided with a lifting device corresponding to the column and a translation device corresponding to the auxiliary groove, and the lifting device and the translation device are both provided with a controller that can be externally controlled.

[0006] The top end of the lifting bridge is connected to the lifting bridge by a threaded cantilever cam, and the bottom end of the lifting bridge is connected to the lifting bridge by a threaded cantilever cam.

[0007] Furthermore, the auxiliary groove includes a bottom plate arranged above the beam column, and a corresponding pair of baffles are provided on the left and right sides of the bottom plate. The side edges of the bottom plate are fixedly connected to the bottom ends of the inner side surfaces of the corresponding side baffles. A pair of transverse sliding grooves corresponding to the transverse guide rails of the crossbeam and a connecting plate corresponding to the translation device are provided below the bottom plate. The top ends of the two are connected to the bottom surface of the bottom plate, wherein the connecting plate is arranged between the two transverse sliding grooves, and the lower end of the connecting plate passes through between the two beam columns and is connected to the translation device below them.

[0008] Furthermore, a corresponding roller is provided between the two baffles above the auxiliary trough bottom plate, and both ends of the roller are respectively connected to the inner side surfaces of the corresponding side baffles, and the front and rear ends of the baffles are provided with extension plates that extend outward.

[0009] Furthermore, the translation device is arranged on the front side of the column, and includes a lead screw arranged between two guide plates under the crossbeam, a corresponding nut is provided on the lead screw, and its top end is correspondingly connected to the bottom end of the connecting plate of the auxiliary groove, and a pair of second bearing seats corresponding to the inner sides of the guide plates corresponding to the two ends of the lead screw are provided, and the second bearing seats are rotatably connected to the lead screw, and a translation motor corresponding to the lead screw is provided on the outer side of the guide plate, and the corresponding end of the lead screw passes through the corresponding side guide plate and is correspondingly connected to the output shaft of the translation motor, and the outer end of the translation motor is provided with a corresponding controller, which is the second controller.

[0010] Furthermore, a corresponding second coupling is provided between the lead screw and the translation motor, and is mounted on the outer side of the guide plate on the corresponding side of the translation motor.

[0011] Furthermore, the lifting device is arranged on the rear side of the column, and includes a lifting motor arranged on the outside of the guide plate, a driving shaft corresponding to the lifting motor is provided between the two guide plates, the corresponding end of the driving shaft passes through the corresponding side guide plate and is connected to the output shaft of the lifting motor, a first bearing seat corresponding to the driving shaft is provided on the outside of the guide plate on the other side opposite to the lifting motor, the corresponding end of the driving shaft passes through the corresponding side guide plate and is rotatably connected to the first bearing seat, a pair of gears corresponding to the two racks on the two columns are provided at both ends of the driving shaft on the inner sides of the two guide plates, and a controller corresponding to it is provided at the outer end of the lifting motor, which is the first controller.

[0012] Furthermore, a corresponding first coupling is provided between the lifting motor and the drive shaft, and the first coupling is provided on the outer surface of the guide plate on the corresponding side of the lifting motor.

[0013] Furthermore, a corresponding base is provided at the bottom end of the column, the bottom end of the column is fixedly connected to the top surface of the base, corresponding reinforcing ribs are provided between the column and the base, and multiple reinforcing ribs are evenly distributed around the column in a circumferential direction.

[0014] The utility model discloses a high-pressure composite pipe reeling auxiliary device which replaces traditional manual reeling with a mechanical device, thereby improving the precision, tightness, uniformity and flatness of reel winding, making the wound reel more beautiful and more in line with the needs of modern production, and saving time and labor, thereby improving the reeling efficiency and reeling quality of the high-pressure composite pipe, thereby improving the overall production quality of the high-pressure composite pipe and increasing the production efficiency, which can generate higher economic benefits. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 It is a structural diagram of the utility model;

[0016] Figure 2 For this utility model Figure 1 Left view of;

[0017] Figure 3 For this utility model Figure 1 Right view;

[0018] Figure 4 For this utility model Figure 1 A top view of

[0019] Figure 5 It is a three-dimensional diagram of the utility model;

[0020] Figure 6 This is a state diagram for the use of the utility model;

[0021] Explanation of the marks in the figure: 1. Horizontal beam; 11. Beam column; 12. Horizontal guide rail; 13. Guide plate; 14. Vertical slide; 2. Vertical column; 21. Column; 22. Vertical guide rail; 23. Rack; 24. Base; 25. Reinforcement rib; 3. Auxiliary groove; 31. Bottom plate; 32. Baffle; 33. Horizontal slide; 34. Connecting plate; 35. Roller; 36. Extension plate; 4. Lifting device; 41. Lifting motor; 42. Drive shaft; 43. First bearing seat; 44. Gear; 5. Translation device; 51. Translation motor; 52. Screw; 53. Nut; 54. Second bearing seat; 6. Controller; 61. First controller; 62. Second controller; 7. Take-up reel; 8. Reel; 9. High-pressure composite pipe. DETAILED DESCRIPTION

[0022] In order to better understand the purpose, structure and function of the present invention, the following is a further detailed description of a high-pressure composite pipe coiling auxiliary device of the present invention in conjunction with the accompanying drawings.

[0023] like Figure 1-6 As shown, the utility model high-pressure composite pipe winding auxiliary device includes a crossbeam 1, a column 2 and an auxiliary groove 3, wherein the crossbeam 1 is arranged horizontally, and a corresponding pair of columns 2 are provided at both ends of the crossbeam 1, the two columns 2 are perpendicular to the crossbeam 1, and the two are vertically parallel to each other, and the two ends of the crossbeam 1 are respectively connected to the columns 2 on the corresponding sides, and the auxiliary groove 3 is arranged above the crossbeam 1, and its bottom surface and the top surface of the crossbeam 1 are in contact with each other, and the two are slidably connected. The end of the crossbeam 1 is provided with a lifting device 4 corresponding to the column 2 and a translation device 5 corresponding to the auxiliary groove 3. The crossbeam 1 can move up and down along the column 2 under the action of the lifting device 4, thereby driving the auxiliary groove 3 to move up and down, and the auxiliary groove 3 can move left and right along the crossbeam 1 under the action of the translation device 5. When in use, the high-pressure composite pipe 9 is between the two columns 2 The auxiliary groove 3 passes through the top of the crossbeam 1 in the middle, and its lower end is framed in the auxiliary groove 3. With the cooperation of the crossbeam 1, the auxiliary groove 3 can drive the high-pressure composite pipe 9 above it to move freely up, down, left and right between the two columns 2 through the action of the lifting device 4 and the translation device 5, so that the auxiliary device can adapt to a variety of high-pressure composite pipes 9 of different models and specifications, and assist in more smooth, regular and safe roll division. The lifting device 4 and the translation device 5 are each provided with a corresponding controller 6, and the controller 6 is provided with a corresponding signal transceiver. The controller 6 can be externally connected to a corresponding control device through the signal transceiver, such as a mobile phone, tablet or computer, and the parameters of the controller 6 associated with the lifting device 4 and the translation device 5 can be preset through the external control device, thereby making the auxiliary device more convenient and intelligent.

[0024] The crossbeam 1 includes a beam column 11, which is arranged in pairs on the front side of the column 2. The two corresponding beam columns 11 are located in the same horizontal plane and are parallel to each other. A cross guide rail 12 corresponding to the auxiliary groove 3 is provided on the beam column 11. The cross guide rail 12 is arranged horizontally, and its bottom end is fixed on the top surface of the beam column 11. The two cross guide rails 12 on the corresponding two beam columns 11 are parallel to each other. The auxiliary groove 3 is slidably connected to the crossbeam 1 through the cross guide rail 12. A certain gap is provided between the two beam columns 11. The bottom end of the auxiliary groove 3 passes through the gap between the two beam columns 11 and is connected to the translation device 5. The beam column 11 A pair of corresponding guide plates 13 are provided at both ends of the beam column 11. The two ends of the beam column 11 are respectively connected to the guide plates 13 on the corresponding sides. In this embodiment, the guide plates 13 are provided below the beam column 11. The bottom surfaces of the two ends of the beam column 11 are connected to the front of the top surface of the corresponding side guide plates 13. The translation device 5 is installed at the outer front end of the guide plate 13 on one side of the beam column 11. The rear end of the guide plate 13 extends backward to the rear side of the column 2. The column 2 is provided on the inner side of the corresponding side guide plate 13. The beam column 11 is connected to the corresponding side column 2 through the guide plate 13. The column 2 includes a column body 21. The column 21 has a The outer side is provided with a corresponding vertical guide rail 22 and a rack 23, which are vertically parallel and corresponding to each other and are fixedly mounted on the outer surface of the column 21. The rack 23 corresponds to the lifting device 4. The lifting device 4 drives the guide plate 13 to move up and down along the column 21 by engaging with the rack 23. In order to maintain the balance of the auxiliary device, the lifting device 4 and the translation device 5 are respectively arranged on the opposite sides of the column 2. In this embodiment, the translation device 5 is arranged at the front side end of the outer side of the guide plate 13 on the right side of the beam 1, located in front of the column 2, and the lifting device 4 is arranged on the beam 1 opposite thereto. The rear end of the outer side of the left guide plate 13 is located on the rear side of the column 2, and the corresponding rack 23 is arranged at the rear end of the outer side of the column 21. In this way, the auxiliary device has better stability and is not easy to tip over, which can assist in more evenly rolling the high-pressure composite pipe 9. The vertical guide rail 22 corresponds to the guide plate 13 and is arranged on the outer side of the column 21 in front of the rack 23. The inner sides of the two guide plates 13 are provided with vertical slide grooves 14 corresponding to the corresponding side vertical guide rails 22. The vertical guide rails 22 and the vertical slide grooves 14 cooperate with each other to provide a guiding effect for the up and down movement of the guide plate 13.

[0025] Furthermore, a corresponding base 24 is provided at the bottom end of the column 2, and the bottom end of the column 21 is fixedly connected to the top surface of the base 24. The column 2 is fixedly installed to the outside through the base 24. The setting of the base 24 increases the external connection area of ​​the column 2, making its bearing capacity greater while increasing the stability of its external connection. Corresponding reinforcing ribs 25 are provided between the column 2 and the base 24. Multiple reinforcing ribs 25 are evenly distributed around the column 21 in the circumferential direction, and the inner circle thereof is connected to the outer wall of the column 21, and the bottom end thereof is connected to the upper end surface of the base 24. The setting of the reinforcing ribs 25 makes the connection between the column 21 and the base 24 more firm and stable.

[0026] The auxiliary trough 3 includes a bottom plate 31 provided above the beam column 11, and a pair of baffles 32 are provided on the left and right sides of the bottom plate 31. The side edges of the bottom plate 31 are connected to the bottom ends of the inner sides of the corresponding side baffles 32. The two are integrally formed and fixedly connected. When in use, the high-pressure composite pipe 9 passes between the two baffles 32 above the bottom plate 31. The bottom plate 31 and the baffle 32 cooperate with each other to provide a guide for the high-pressure composite pipe 9 passing through. A pair of horizontal slides corresponding to the horizontal guide rails 12 of the crossbeam 1 are provided below the bottom plate 31. The groove 33 and the connecting plate 34 corresponding to the translation device 5, the top ends of the transverse sliding groove 33 and the connecting plate 34 are connected to the bottom surface of the base plate 31, wherein the connecting plate 34 is arranged between the two transverse sliding grooves 33, and the lower end of the connecting plate 34 passes through between the two beams 11 and extends downward therefrom, and is connected to the corresponding translation device 5 below the beam 11. When in use, through the cooperation of the transverse sliding groove 33, the connecting plate 34 can drive the various components above it to slide left and right along the transverse guide rail 12 on the beam 1 under the action of the translation device 5.

[0027] Furthermore, the auxiliary trough 3 is also provided with a corresponding roller 35, which is arranged between the two baffles 32 above its bottom plate 31, and its two ends are respectively connected to the inner side surfaces of the corresponding side baffles 32. During operation, the bottom end of the high-pressure composite pipe 9 is pressed on the roller 35, and the roller 35 rotates as the high-pressure composite pipe 9 passes above. The front and rear ends of the baffle 32 are provided with extension plates 36 that are extended outward. The extension plates 36 and the roller 35 cooperate with each other to provide buffering protection for the high-pressure composite pipe 9 to prevent it from damaging its outer wall when passing through the auxiliary trough 3.

[0028] The lifting device 4 is provided at the rear side of the column 2, and includes a lifting motor 41. The lifting motor 41 is provided on the outer side of the guide plate 13 on the left side of the corresponding beam 1. A drive shaft 42 corresponding to the lifting motor 41 is provided between the two guide plates 13 on the rear side of the column 2. The left end of the drive shaft 42 corresponds to the lifting motor 41. The output shaft of the lifting motor 41 passes through the corresponding guide plate 13 and is connected to the corresponding end of the drive shaft 42. The lifting motor 41 provides a rotational force for the drive shaft 42. A drive shaft 42 corresponding to the drive shaft 42 is provided on the outer side of the guide plate 13 on the right side of the beam 1. The first bearing seat 43, the right end of the drive shaft 42 is its tail end, and its tail end passes through the guide plate 13 and is connected to the first bearing seat 43, and the two are rotatably connected. The guide plate 13 on the right side of the beam 1 provides support for the tail end of the drive shaft 42 through the first bearing seat 43. The two ends of the drive shaft 42 inside the two guide plates 13 are provided with a pair of gears 44 that respectively mesh with the two racks 23 on the two columns 2. The gear 44 is fixedly mounted on the drive shaft 42, and rotates with the rotation of the drive shaft 42. When it rotates, it engages with the corresponding rack 23. The meshing can drive the drive shaft 42 to move up and down along the column 2, thereby driving the beam 1 to move up and down relative to the column 2 through the guide plate 13. When the direction of rotation of the drive shaft 42 is different, the direction of engagement of the gear 44 and the rack 23 is different, thereby causing the lifting device 4 to drive the beam 1 to move in different directions. In this embodiment, when the drive motor rotates forward, the drive shaft 42 drives the gear 44 to rotate forward synchronously, and the gear 44 gradually meshes above the rack 23, thereby driving the guide plate 13 to move above the column 2 through the drive shaft 42. When the driving motor rotates in the opposite direction, the driving shaft 42 drives the gear 44 to rotate in the opposite direction synchronously, and the gear 44 gradually engages with the rack 23, thereby driving the guide plate 13 to move downward to the column 2 through the driving shaft 42, thereby realizing the up and down movement of the beam 1 relative to the column 2 under the action of the driving motor. The corresponding controller 6 is provided at the outer end of the lifting motor 41, which is the first controller 61. The parameters of the first controller 61 can be preset through an external control device, thereby controlling the movement of the auxiliary slot 3 in the vertical direction.

[0029] Furthermore, a corresponding first coupling is provided between the lifting motor 41 and the drive shaft 42. The first coupling is provided on the outer surface of the guide plate 13 on the corresponding side of the lifting motor 41. Its outer end is connected to the lifting motor 41, and its inner end is connected to the corresponding end of the drive shaft 42. When the lifting motor 41 is started, it drives the drive shaft 42 to rotate through the first coupling. The setting of the first coupling makes the connection between the lifting motor 41 and the drive shaft 42 safer and more stable.

[0030] The translation device 5 is arranged on the front side of the column 2, which includes a translation motor 51 and a screw 52, ​​wherein the screw 52 is arranged between the two guide plates 13 below the beam 1, and a corresponding nut 53 is sleeved on the screw 52, ​​and its top is connected to the auxiliary slot 3. In this embodiment, the bottom end of the connecting plate 34 of the auxiliary slot 3 is fixedly connected to the top of the nut 53, and the nut 53 can move left and right with the rotation of the screw 52, ​​and then drive the auxiliary slot 3 to move left and right along the beam 1 through the connecting plate 34. A corresponding pair of second bearing seats 54 are provided at both ends of the screw 52, ​​and the two second bearing seats 54 are rotatably connected to the screw 52. The two second bearing seats 54 are respectively installed on the inner sides of the corresponding side guide plates 13, and the screw 52 is installed on the guide plate 13 through the second bearing seat 54. The translation motor 51 is arranged between the beam 1 and the lifting The outer side of the right guide plate 13 opposite to the motor 41 corresponds to the lead screw 52. The right end of the lead screw 52 passes through the guide plate 13 on the corresponding side and is connected to the output shaft of the translation motor 51. The translation motor 51 provides power for the rotation of the lead screw 52. In this embodiment, when the translation motor 51 rotates forward, the lead screw 52 rotates forward synchronously, and the nut 53 drives the auxiliary slot 3 to move toward the left end of the beam 1 through the connecting plate 34. When the translation motor 51 rotates reversely, the lead screw 52 rotates reversely synchronously, and the nut 53 drives the auxiliary slot 3 to move toward the right end of the beam 1 through the connecting plate 34. The corresponding controller 6 is provided at the outer end of the translation motor 51. This is the second controller 62. The parameters of the second controller 62 can be preset through an external control device, thereby controlling the horizontal movement of the auxiliary slot 3.

[0031] Furthermore, a corresponding second coupling is provided between the screw 52 and the translation motor 51. The second coupling is installed on the outer side of the guide plate 13 on the corresponding side of the translation motor 51. The outer end thereof is connected to the translation motor 51, and the inner end thereof is connected to the corresponding end of the screw 52. When the translation motor 51 is started, it drives the screw 52 to rotate through the second coupling. The setting of the second coupling makes the connection between the translation motor 51 and the screw 52 safer and more stable.

[0032] When in use, the high-pressure composite pipe reeling auxiliary device of the present invention is arranged between the take-up drum 7 of the high-pressure composite pipe 9 and the corresponding reeling drum 8. First, it is necessary to adjust the auxiliary slot 3 according to the specifications of the reeling high-pressure composite roll. Specifically, the first step is to start the lifting motor 41 to make it rotate in the opposite direction, and the driving shaft 42 drives the guide plate 13 to move downwardly to the bottom of the column 2 through the corresponding engagement of the gear 44 and the rack 23, and then drives the auxiliary slot 3 to move downwardly to the bottom of the column 2 through the crossbeam 1 until its vertical position corresponds to the high-pressure composite roll; the second step is to adjust the horizontal position of the auxiliary slot 3 through the translation motor 51 until the horizontal position of the auxiliary slot 3 corresponds to the high-pressure composite roll; then, the staff pulls out the free end of the high-pressure composite pipe 9 on the take-up drum 7, makes it pass through the auxiliary slot 3 and then fix it in the lowest position of the reeling drum 8. At the same time, according to the specifications of the reeling high-pressure composite roll, the parameters of the lifting device 4 and translation device 5 are preset through the external control device of the controller 6, and The auxiliary device is set to a state of linkage with the sub-reel 8 and the take-up reel 7. At this time, the sub-reel 8 can be started, the sub-reel 8 rotates, and the high-pressure composite pipe 9 is wound during the rotation. When the high-pressure composite pipe 9 wound on the sub-reel 8 is wound one circle, the lifting motor 41 starts automatically, and the two gears 44 on the drive shaft 42 respectively mesh and roll toward the top of the corresponding rack 23, so that the guide plate 13 drives the auxiliary groove 3 to move upward through the crossbeam 1. The auxiliary groove 3 lifts the high-pressure composite pipe 9 above it by a composite pipe outer diameter height and then stops. The high-pressure composite pipe 9 wound on the sub-reel disc 8 rises and performs the next circle of winding. In this way, the auxiliary groove 3 is lifted several times to the top of the sub-reel disc 8. The first layer of the reeling is completed, and then it is changed to start from the upper end of the sub-reel disc 8 to carry out the second layer of reeling winding downwards. This reciprocating cycle is repeated until the reeling is required. The staff controls the sub-reel disc 8 to stop rotating and cuts the high-pressure composite pipe 9, and the reeling operation is completed. In the above-mentioned rolling, for high-pressure composite pipes 9 of different specifications, the height to which the auxiliary groove 3 needs to be lifted and the distance to move left and right can be entered into the controller 6 in advance according to its early test parameters. When setting the parameters of the controller 6, the corresponding parameters are selected according to the diameter of the high-pressure composite pipe 9 material to be rolled, which saves time and effort.

[0033] The high-pressure composite pipe reeling auxiliary device of the present invention realizes automatic adjustment of the reeling of the high-pressure composite pipe 9 through the mutual cooperation of various mechanical components, so that the reeled high-pressure composite pipe 9 is wound more tightly and more evenly. Compared with manual reeling, it reduces the possibility of uneven winding of the high-pressure composite pipe 9 during operation, thereby causing scratches on the outer wall. When the auxiliary groove 3 lifts the high-pressure composite pipe 9 for reeling, the rolling friction between the roller 35 and the high-pressure composite pipe 9 reduces the damage rate of the high-pressure composite pipe 9 during the reeling process. Through the cooperation of the translation device 5, the left and right movement of the auxiliary groove 3 is realized. When reeling, its horizontal position can be automatically adjusted according to the needs of the high-pressure composite pipe 9 to ensure the strength of the reeling. Compared with manual reeling, it reduces the possibility of loose winding of the high-pressure composite pipe 9 during operation. As mentioned above, the use of the high-pressure composite pipe reeling auxiliary device of the present invention improves the automation level of the reeling of the high-pressure composite pipe 9, makes its reeling efficiency higher, and thus makes the production quality and efficiency of the high-pressure composite pipe 9 higher.

[0034] It is understood that the present invention is described by way of certain embodiments, and those skilled in the art will appreciate that various changes or equivalent substitutions may be made to these features and embodiments without departing from the spirit and scope of the present invention. Furthermore, under the guidance of the present invention, these features and embodiments may be modified to suit specific circumstances and materials without departing from the spirit and scope of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are intended to be protected by the present invention.

Claims

1. A high-pressure composite pipe coiling auxiliary device, characterized in that: The invention comprises a horizontally arranged crossbeam (1), a pair of parallel corresponding upright posts (2) are provided at both ends of the crossbeam (1), both of which are vertically arranged perpendicular to the crossbeam (1), the two ends of the crossbeam (1) are respectively connected to the upright posts (2) on the corresponding sides, an auxiliary groove (3) that can be slidably connected is provided above the crossbeam (1), a lifting device (4) corresponding to the upright posts (2) and a translation device (5) corresponding to the auxiliary groove (3) are provided at the end of the crossbeam (1), and a controller (6) that can be externally connected to a control device is provided on both the lifting device (4) and the translation device (5).

2. The high-pressure composite pipe reeling auxiliary device according to claim 1, characterized in that: The crossbeam (1) is arranged on the front side of the column (2), and includes a pair of beams (11) located in the same horizontal plane and parallel to each other. The beams (11) are provided with a transverse guide rail (12) corresponding to the auxiliary groove (3), and the bottom end thereof is fixed on the top surface of the beam (11). The two transverse guide rails (12) on the two corresponding beams (11) are parallel to each other. The auxiliary groove (3) is slidably connected to the crossbeam (1) through the transverse guide rail (12). A certain gap is provided between the two beams (11). The bottom end of the auxiliary groove (3) passes through the gap and is connected to the translation device (5). A pair of corresponding guide plates (13) are provided at both ends of the beam (11). The ends are respectively connected to the top ends of the corresponding side guide plates (13), the rear ends of the guide plates (13) extend backward to the rear side of the column (2), the column (2) is arranged on the inner side of the corresponding side guide plates (13), the column (2) includes a column (21), and the outer surface of the column (21) is provided with vertically parallel corresponding vertical guide rails (22) and racks (23), wherein the rack (23) corresponds to the lifting device (4), and is provided on the outer surface of the column (21) corresponding to the lifting device (4), the vertical guide rail (22) corresponds to the guide plate (13), and the inner sides of the two guide plates (13) are provided with vertical slide grooves (14) corresponding to the corresponding side vertical guide rails (22).

3. The high-pressure composite pipe reeling auxiliary device according to claim 2, characterized in that: The auxiliary groove (3) includes a bottom plate (31) arranged above the beam column (11), a pair of corresponding baffles (32) are provided on the left and right sides of the bottom plate (31), the side edges of the bottom plate (31) are fixedly connected to the bottom ends of the inner side surfaces of the corresponding side baffles (32), and a pair of transverse sliding grooves (33) corresponding to the transverse guide rails (12) of the cross beam (1) and a connecting plate (34) corresponding to the translation device (5) are provided below the bottom plate (31), the top ends of the two transverse sliding grooves (33) are connected to the bottom surface of the bottom plate (31), wherein the connecting plate (34) is provided between the two transverse sliding grooves (33), and the lower end of the connecting plate (34) passes through between the two beam columns (11) and is connected to the translation device (5) below them.

4. The high-pressure composite pipe reeling auxiliary device according to claim 3, characterized in that: A corresponding roller (35) is provided between the two baffles (32) above the bottom plate (31) of the auxiliary tank (3), and both ends of the roller (35) are respectively connected to the inner side surface of the corresponding side baffle (32). The front and rear ends of the baffle (32) are both provided with extension plates (36) that are expanded outwards thereof.

5. The high-pressure composite pipe reeling auxiliary device according to claim 3, characterized in that: The translation device (5) is arranged on the front side of the column (2), and includes a lead screw (52) between two guide plates (13) below the crossbeam (1). A corresponding nut (53) is sleeved on the lead screw (52), and its top end is correspondingly connected to the bottom end of the connecting plate (34) of the auxiliary groove (3). A pair of second bearing seats (54) corresponding to the two ends of the lead screw (52) are provided on the inner side of the guide plates (13). The second bearing seats (54) are rotatably connected to the lead screw (52). A translation motor (51) corresponding to the lead screw (52) is provided on the outer side of the guide plate (13). The corresponding end of the lead screw (52) passes through the corresponding side guide plate (13) and is correspondingly connected to the output shaft of the translation motor (51). The outer end of the translation motor (51) is provided with a corresponding controller (6), which is the second controller (62).

6. The high-pressure composite pipe reeling auxiliary device according to claim 5, characterized in that: A corresponding second coupling is provided between the lead screw (52) and the translation motor (51), and is mounted on the outer side of the guide plate (13) corresponding to the translation motor (51).

7. The high-pressure composite pipe reeling auxiliary device according to claim 2, characterized in that: The lifting device (4) is arranged on the rear side of the column (2), and includes a lifting motor (41) arranged on the outside of the guide plate (13). A driving shaft (42) corresponding to the lifting motor (41) is provided between the two guide plates (13). The corresponding end of the driving shaft (42) passes through the corresponding side guide plate (13) and is correspondingly connected to the output shaft of the lifting motor (41). A first bearing seat (43) corresponding to the driving shaft (42) is provided on the outside of the guide plate (13) on the other side opposite to the lifting motor (41). The corresponding end of the driving shaft (42) passes through the corresponding side guide plate (13) and is rotatably connected to the first bearing seat (43). A pair of gears (44) are provided at both ends of the driving shaft (42) on the inner sides of the two guide plates (13) and are respectively engaged with the two racks (23) on the two columns (2). The outer end of the lifting motor (41) is provided with a controller (6) corresponding to it, which is the first controller (61).

8. The high-pressure composite pipe reeling auxiliary device according to claim 7, characterized in that: A corresponding first coupling is provided between the lifting motor (41) and the drive shaft (42), and the first coupling is provided on the outer surface of the guide plate (13) corresponding to the lifting motor (41).

9. The high-pressure composite pipe reeling auxiliary device according to claim 2, characterized in that: The bottom end of the column (2) is provided with a corresponding base (24), the bottom end of the column (21) is fixedly connected to the top surface of the base (24), and corresponding reinforcing ribs (25) are provided between the column (2) and the base (24), and a plurality of reinforcing ribs (25) are evenly distributed around the column (21) in a circumferential direction.