Manufacturing equipment for steel wire framework composite pipe

By using the winding and tension adjustment components of automated equipment, the problems of inconsistent wire tension and springback entanglement caused by manual winding have been solved, achieving efficient and uniform winding and tension control of steel wire skeleton composite pipes, thus improving production quality and efficiency.

CN223849796UActive Publication Date: 2026-01-30SHANGHAI ZHENGYUAN PIPE IND CO LTD
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Patent Information

Application Number
CN202520333368.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2026-01-30
Estimated Expiration
2035-02-28

AI Technical Summary

Technical Problem

In existing technologies, the wire winding operation relies on manual labor, which leads to inconsistent tension of the wires wound on the forming cylinder, resulting in quality defects. Furthermore, the wires may spring back and become entangled after being cut, affecting the quality and cost of the formed semi-finished product.

Method used

Automated equipment is used for wire winding, including a winding assembly, an adjustment assembly, and a tension adjustment assembly. Through the winding drive unit, the adjustment drive unit, and the tension adjustment assembly, the uniform winding and consistent tension of the wire are ensured, and the wire rebound and entanglement are avoided.

Benefits of technology

This technology enables uniform winding and tension control of steel wire reinforced composite pipes, reducing quality defects, improving production efficiency and material utilization, and lowering labor costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses manufacturing equipment for a steel wire framework composite pipe, the manufacturing equipment is used for winding a preset amount of steel wires on a winding bobbin, the manufacturing equipment comprises an equipment body, a winding assembly and a position adjusting assembly, the equipment body comprises a workbench and a material carrying shaft, the workbench forms a material conveying space, and the material carrying shaft is arranged in the material conveying space; the material loading shaft is rotatably connected to the material conveying space of the workbench so as to load the bobbins, the material winding assembly comprises a material winding driving unit and a winding component, the winding component is rotatably installed on the material winding driving unit, and the material loading shaft is rotatably connected to the material conveying space of the workbench so as to load the bobbins. The winding component forms a first winding area and a second winding area in the circumferential direction in the axial direction and used for winding the steel wire, the position adjusting assembly comprises a position adjusting driving unit and a driving table, and the driving table is movably connected to the position adjusting driving unit and used for adjusting the position of the steel wire. And the guiding component is arranged to guide the steel wire to be wound from the first winding area to the second winding area gradually in the axial direction of the winding component, so that winding of the steel wire is completed.
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Description

TECHNICAL FIELD

[0001] The utility model relates to steel wire framework composite pipe manufacturing technical field, concretely relates to the manufacturing equipment for steel wire framework composite pipe. BACKGROUND

[0002] Steel wire framework composite pipe is a kind of new high-tech product with high pressure resistance and excellent flexibility, it is used in long distance buried water supply, gas pipeline system and other aspects.In the steel wire framework composite pipe before forming, steel wire framework composite pipe semi-finished product needs to be made first, i.e., steel wire is wound regularly on two forming barrels that are stacked and fixed, then steel skeleton part is sleeved on the position of forming barrel where steel wire is wound, and finally semi-finished product is made by injection molding technology.

[0003] At present, steel wire winding operation is mostly completed by manual operation, but the strength of manual winding steel wire is uncontrollable, so that the tension of steel wire wound on forming barrel is inconsistent, and then after injection molding operation is completed, the formed semi-finished product is extremely likely to have quality defect problem, resulting in material waste and cost increase.

[0004] In addition, the steel wire used for winding operation is mostly unloaded from the wire loading barrel, and the steel wire wound on a single wire loading barrel can be used for winding operation of multiple batches of forming barrels.When the steel wire is cut off after completing a winding operation, if the steel wire is in tension before being cut off, the steel wire may rebound and entangle together at the moment of being cut off, so that the cut position of the steel wire needs to be manually reconfirmed before the next winding operation starts. SUMMARY

[0005] To solve the above technical problems and achieve at least one advantage of the utility model, the utility model provides a manufacturing equipment for steel wire framework composite pipe, which comprises:

[0006] An equipment body, which comprises a workbench and a material loading shaft, the workbench forms a material conveying space, and the material loading shaft is rotatably connected to the material conveying space of the workbench to load the wire drum;

[0007] A winding assembly, which comprises a winding drive unit and a winding member, wherein the winding drive unit is installed on the workbench, and the winding drive unit is rotatably installed on the winding member, the winding member forms a first winding area and a second winding area in the axial direction at the circumferential position, respectively, for winding the steel wire material;

[0008] The position adjusting assembly comprises a position adjusting driving unit and a driving table, wherein the position adjusting driving unit is mounted on the worktable, the driving table is movably connected to the position adjusting driving unit, and when the position adjusting driving unit drives the driving table to move, the driving table is arranged to guide the steel wire material to be wound from the first winding area to the second winding area along the axial direction of the winding member.

[0009] According to an embodiment of the present application, the winding driving unit comprises a winding driving member and a driving member, wherein the winding driving member is mounted on the worktable, and the winding driving member is arranged to drive the driving member, the winding member is connected to the driving member.

[0010] According to an embodiment of the present application, the winding member extends outwardly from the radial direction to form a step, the step is arranged between the first winding area and the second winding area, and the winding member is arranged with at least one mounting portion near the first winding area in the circumferential direction to connect the steel framework, and the winding member is further arranged with a first connecting portion near the first winding area and a second connecting portion near the second winding area in the circumferential direction to fixedly connect the two end portions of the steel wire material.

[0011] According to an embodiment of the present application, the winding member comprises a first winding member and a second winding member, wherein the first winding member is detachably connected to the second winding member to form the winding member, the first winding member is synchronously rotatably connected to the winding driving unit, the first winding member forms the first winding area from the middle position, the first winding member is arranged to extend outwardly from the radial direction to form a first step at the end portion connected to the second winding member, the second winding member forms the second winding area from the middle position, the second winding member is arranged to extend outwardly from the radial direction to form a second step at the end portion connected to the first winding member, and when the first winding member is connected to the second winding member, the projection of the second step in the same axial direction as the first step remains coincident.

[0012] According to an embodiment of the present application, the position adjusting driving unit comprises a position adjusting driving member and a position adjusting transmission member, wherein the position adjusting driving member is mounted on the worktable, and the position adjusting driving member is arranged to drive the position adjusting transmission member, the driving table is connected to the position adjusting transmission member.

[0013] According to the utility model one embodiment, the position adjusting transmission component includes screw rod, moving block and guide rail, wherein the screw rod is rotatably connected to the position adjusting driving part, and the screw rod is arranged to extend in the direction parallel to the moving direction of the driven table, the moving block is arranged to be threadedly connected with the screw rod, and the moving block is movably connected to the guide rail, and the moving block is further connected to the driven table, the guide rail is connected to the workbench, and the guide rail extends in the direction parallel to the moving direction of the driven table to form a limiting groove, and the limiting groove is used to limit the moving mode of the moving block.

[0014] According to the utility model one embodiment, the equipment body further includes a plurality of material conveying components, each of the material conveying components includes a fixing block, a material limiting frame and a material rolling piece, wherein the bottom of the fixing block is connected to the driven table, the material limiting frame is installed on the top of the fixing block, and the both ends of the material limiting frame are arranged to extend in the direction parallel to the radial direction of the fixing block, so that the material limiting frame forms an opening through which the steel wire material passes, and the material rolling piece is arranged in the opening, and the material rolling piece is rotatably connected between the both ends of the material limiting frame.

[0015] According to the utility model one embodiment, the equipment for manufacturing the steel wire framework composite pipe further includes at least one material clamping component, each of the material clamping components includes a fixed clamping block, a movable clamping block and a plurality of clamping moving pieces, wherein the fixed clamping block is connected to the driven table, the movable clamping block is arranged at a predetermined position opposite to and spaced from the fixed clamping block to form a clamping channel with the fixed clamping block through which the steel wire material passes, each of the clamping moving pieces is movably connected to the fixed clamping block and the movable clamping block, and each of the clamping moving pieces is at least partially located in the clamping channel, so that when the clamping moving pieces move on the fixed clamping block and the movable clamping block, the movable clamping block is arranged to be close to and away from the fixed clamping block to adjust the size of the clamping channel.

[0016] According to the utility model one embodiment, the equipment for manufacturing the steel wire framework composite pipe further includes a tensioning adjusting assembly, the tensioning adjusting assembly includes a first adjusting component, the first adjusting component includes an abutting block, at least one guide column, a sliding block and at least one elastic piece, wherein the abutting block is connected to the driven table, the guide column is connected to the abutting block at a predetermined position away from the end of the driven table, the sliding block is movably connected to the guide column, and a passageway is formed in the sliding block to allow the steel wire material to move, the elastic piece is arranged between the abutting block and the sliding block, and the both ends of the elastic piece abut against the abutting block and the sliding block respectively.

[0017] According to the utility model one embodiment, the tensioning adjusting assembly still includes second adjusting member, the second adjusting member includes movable arm, connecting frame, spring back spare and a plurality of rolling piece, wherein the movable arm rotatably connected in the connecting frame, the connecting frame is connected in the workstation, and the connecting frame sets fixed part on the movable arm's rotation path, the fixed part is located movable arm's below, the spring back spare is arranged on the movable arm's rotation path, and one end of the spring back spare abuts movable arm, the other end abuts the fixed part of connecting frame, at least one part of the rolling piece is rotatably connected in the movable arm's end away from the connecting frame, and with the movable arm forms passageway in common, to supply the steel wire material passes through, and at least another part of the rolling piece is rotatably connected in the fixed part's front end, and with the fixed part forms bend in common, to supply the steel wire material passes through. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 The utility model discloses a stereogram of the manufacturing equipment for steel wire skeleton composite pipe.

[0019] Figure 2 The utility model discloses a structural schematic view of one place in the tensioning adjusting assembly in the manufacturing equipment for steel wire skeleton composite pipe.

[0020] Figure 3 For Figure 1 The sectional view of the material winding assembly in the manufacturing equipment for steel wire skeleton composite pipe is shown.

[0021] Figure 4 For Figure 3 The partial structural schematic view of the material winding assembly is shown.

[0022] Figure 5 For Figure 1 The structural schematic view of another place in the tensioning adjusting assembly in the manufacturing equipment for steel wire skeleton composite pipe is shown.

[0023] Figure 6 For Figure 1 The enlarged view of A in the manufacturing equipment for steel wire skeleton composite pipe is shown.

[0024] Figure 7 For Figure 4 The structural schematic view of another embodiment of the winding member in the material winding assembly is shown. DETAILED DESCRIPTION

[0025] The following description is used to disclose the present application so that those skilled in the art can implement the present application. The preferred embodiments in the following description are only examples, and other obvious modifications can be thought of by those skilled in the art. The basic principles defined in the following description can be applied to other embodiments, modifications, improvements, equivalents and other technical solutions without departing from the spirit and scope of the present application.

[0026] Those skilled in the art should understand that in the disclosure of the present application, the orientation or positional relationship indicated by the terms "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like are based on the orientation or positional relationship shown in the drawings, which are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, therefore the above terms cannot be understood as a limitation of the present application.

[0027] It can be understood that the term "one" should be understood as "at least one" or "one or more", that is, in one embodiment, the number of one element can be one, and in another embodiment, the number of the element can be multiple, and the term "one" cannot be understood as a limitation on the number.

[0028] Reference Figures 1 to 7 A manufacturing device for steel wire skeleton composite pipe according to a preferred embodiment of the present application will be described in detail below, which is used to wind a predetermined amount of steel wire material 92 on a wire drum 91, and make a steel skeleton 93 be sleeved on the outside of the area where the steel wire material 92 is wound, and the manufacturing device for steel wire skeleton composite pipe comprises a device body 10, a winding assembly 20 and a positioning assembly 30, wherein the device body 10 comprises a workbench 11, a material loading shaft 12 and at least one material passing shaft 13, the workbench 11 forms a material transmission space 1101 for installing the material loading shaft 12 and the material passing shaft 13. The material loading shaft 12 is rotatably connected to the material transmission space 1101 of the workbench 11, and the material loading shaft 12 is arranged to load the wire drum 91. Each material passing shaft 13 is rotatably connected to a predetermined position adjacent to the material loading shaft 12 in the material transmission space 1101.

[0029] It can be understood that the winding assembly 20 is arranged to wind a predetermined length of the steel wire material 92 on the wire drum 91, and when the steel wire material 92 is pulled and moved by the winding assembly 20 on the material passing shaft 13, the material passing shaft 13 gradually tends to rotate to adjust the tension of the steel wire material 92.

[0030] In a preferred embodiment, the worktable 11 comprises a first part 111 and a second part 112, wherein the first part 111 is arranged to form the material transferring space 1101, and the material carrying shaft 12 and the material passing shaft 13 are rotatably connected to the first part 111, and the first part 111 is arranged adjacent to and spaced apart from the second part 112.

[0031] Specifically, the material winding assembly 20 comprises a material winding driving unit 21 and a winding member 22, wherein the material winding driving unit 21 is mounted on the worktable 11 of the equipment body 10, and the material winding driving unit 21 is rotatably mounted on the winding member 22. The winding member 22 is axially provided with a first winding area 2201 and a second winding area 2202 at circumferential positions, and when the winding member 22 is driven by the material winding driving unit 21, the first winding area 2201 and the second winding area 2202 are arranged to wind the steel wire material 92.

[0032] It is understood by those skilled in the art that the material winding driving unit 21 is started to drive the winding member 22 to rotate, so that the steel wire material 92 is sequentially wound on the first winding area 2201 and the second winding area 2202 along the axial direction of the winding member 22, so that the winding member 22 completes the operation of winding the steel wire material 92.

[0033] Preferably, the material winding driving unit 21 is mounted on the second part 112 of the worktable 11.

[0034] Preferably, the material winding driving unit 21 comprises a material winding driving member 211 and a driving member 212, wherein the material winding driving member 211 is mounted on the second part 112 of the worktable 11, and the material winding driving member 211 is drivingly mounted on the driving member 212. The winding member 22 is connected to the driving member 212, so that when the material winding driving member 211 drives the driving member 212, the winding member 22 is driven to rotate, so that the steel wire material 92 is gradually wound on the first winding area 2201 and the second winding area 2202.

[0035] It should be noted that the material winding driving member 211 is implemented as a driving motor. The driving member 212 includes but is not limited to a gear transmission device.

[0036] Preferably, the winding member 22 is formed with a step 221 extending radially outwardly from the unitary portion, the step 221 being disposed between the first winding region 2201 and the second winding region 2202, and the winding member 22 is provided with at least one mounting portion 222 disposed in the vicinity of the first winding region 2201 in the circumferential direction to connect the steel framework 93, and the winding member 22 is further provided with a first connecting portion 223 disposed in the vicinity of the first winding region 2201 in the circumferential direction to fixedly connect the winding initial end portion of the steel wire 92, and in addition, the winding member 22 is further provided with a second connecting portion 224 disposed in the vicinity of the second winding region 2202 in the circumferential direction to fixedly connect the cut end portion of the steel wire 92.

[0037] In another embodiment, the winding member 22 comprises a first winding part 221 and a second winding part 222, wherein the first winding part 221 is detachably connected to the second winding part 222 to form the winding member 22, and the first winding part 221 is synchronously rotatably connected to the material winding driving unit 21, and the first winding part 221 is formed with the first winding region 2201 at a middle position, and in addition, the first winding part 221 is formed with a first step 2211 extending radially outwardly from the unitary portion at the end portion connected to the second winding part 222. The second winding part 222 is formed with the second winding region 2202 at a middle position.

[0038] It can be understood that, due to the blocking effect of the first step 2211, after the steel wire 92 is wound by a predetermined amount, it is difficult for the steel wire 92 to be directly wound on the second winding region 2202, and therefore, the position adjusting assembly 30 can adjust the winding position of the steel wire 92 so that the steel wire 92 is partially guided to the second winding region 2202 and gradually wound on the second winding region 2202 following the axial direction of the first winding part 221 to complete the winding operation of the steel wire 92 on the first winding region 2201 and the second winding region 2202.

[0039] In a preferred embodiment, as shown in Figure 3 and Figure 4As shown, the first winding member 221 has a first passage 22101, and the first winding member 221 is provided with a connecting portion 2212 in the first passage 22101, and a connecting hole 22102 communicated with the first passage 22101 and penetrating through the connecting portion 2212. The second winding member 222 has a second passage 22201, and the second winding member 222 is provided with a connected portion 2221 in the second passage 22201, and a connected hole 22202 communicated with the second passage 22201 and penetrating through the connected portion 2221, and when the first winding member 221 is connected with the second winding member 222, the connecting hole 22102 is arranged to be communicated with the connected hole 22202 and coaxial.

[0040] It is worth mentioning that the connecting hole 22102 and the connected hole 22202 are both implemented as threaded holes, so that when the connecting hole 22102 is communicated with the connected hole 22202 and coaxial, a connecting tool such as a bolt can be simultaneously passed through the connecting hole 22102 and the connected hole 22202 to connect the first winding member 221 and the second winding member 222.

[0041] Preferably, the cross-sectional diameter of the first step 2211 is gradually increased from the direction close to the second winding member 222 to form an arc-shaped guide slope for the position adjusting assembly 30 to guide the steel wire material 92 to move to the second winding area 2202 of the second winding member 222.

[0042] Preferably, the first winding member 221 is provided with a bearing portion 2213 having a mounting hole slot at a position close to the first winding area 2201 to clamp the steel framework 93, so that the steel framework 93 is fixed, and in addition, the first winding member 221 is further provided with a material portion 2214 adjacent to the bearing portion 2213, the material portion 2214 is arranged to fix the starting end of the steel wire material 92, so that the steel wire material 92 can be wound on the first winding member 221.

[0043] Preferably, the second winding member 222 is arranged to integrally extend radially outward to form a second step 2222 at the end connected with the first winding member 221, and when the first winding member 221 is connected with the second winding member 222, the second step 2222 is arranged to keep coincident with the projection of the first step 2211 in the same axial direction.

[0044] As preferred, the cross-sectional diameter of the first step 2211 is configured to gradually increase from the direction close to the second winding member 222 to form an arc-shaped guiding slope, and the cross-sectional diameter of the second step 2222 is configured to gradually increase from the direction close to the first winding member 221 to form an arc-shaped material passing slope, for guiding the steel wire material 92 to move toward the second winding area 2202 of the second winding member 222 by the position adjusting assembly 30.

[0045] Preferably, the second winding member 222 is provided with a fixing portion 2223 close to the second winding area 2202 to fix the cut end of the steel wire material 92.

[0046] Preferably, the winding assembly 20 further comprises a support table 23, and as preferred, the support table 23 is connected to the second part 112 of the workbench 11, and the support table 23 forms a mounting cavity 2301 for mounting the winding driving unit 21. Specifically, the winding driving member 211 is arranged in the mounting cavity 2301.

[0047] Specifically, the position adjusting assembly 30 comprises a position adjusting driving unit 31 and a driving table 32, wherein the position adjusting driving unit 31 is mounted on the second part 112 of the workbench 11. The driving table 32 is movably connected to the position adjusting driving unit 31, and the driving table 32 is arranged to guide the steel wire material 92 to gradually wind from the first winding area 2201 to the second winding area 2202 along the axial direction of the winding member 22.

[0048] It can be understood that when the first winding area 2201 is wound with a predetermined amount of the steel wire material 92, the position adjusting driving unit 31 drives the driving table 32 to move along the direction parallel to the axial direction of the winding member 22, so that the steel wire material 92 is driven to move along the axial direction of the winding member 22 to the second winding area 2202, and then when the winding member 22 is driven by the winding driving unit 21, the steel wire material 92 is gradually wound on the second winding area 2202.

[0049] It is worth mentioning that the position adjusting driving unit 31 includes but is not limited to a telescopic driving device. In one embodiment, the position adjusting driving unit 31 is provided as a telescopic cylinder, which is provided with a telescopic end configured to move along the axial direction of the winding member 22, and the driving table 32 is connected to the telescopic end of the telescopic cylinder, so that when the telescopic cylinder drives the telescopic end to extend or retract, the driving table 32 is driven to move along the extension or retraction direction of the telescopic end. Thus, after the first winding area 2201 is wound with a predetermined amount of the steel wire material 92, the steel wire material 92 can be guided by the driving table 32 to move to the second winding area 2202.

[0050] In another embodiment, the position adjusting driving unit 31 includes a position adjusting driving member 311 and a position adjusting transmission member 312, wherein the position adjusting driving member 311 is mounted to the second part 112 of the workbench 11, and the position adjusting driving member 311 is drivingly connected to the position adjusting transmission member 312. The driving table 32 is connected to the position adjusting transmission member 312. It is worth mentioning that in this embodiment, the position adjusting driving member 311 is implemented as a motor with a gear drive structure.

[0051] In a specific example, as shown in Figure 2 The position adjusting transmission member 312 includes a screw rod 3121, a moving block 3122, and a guide rail 3123, wherein the screw rod 3121 is rotatably connected to the position adjusting driving member 311, and the screw rod 3121 is configured to extend along a direction parallel to the moving direction of the driving table 32. The moving block 3122 is threadedly connected to the screw rod 3121, and the moving block 3122 is movably connected to the guide rail 3123, and the moving block 3122 is further connected to the driving table 32. The guide rail 3123 is connected to the second part 112 of the workbench 11, and the guide rail 3123 extends along a direction parallel to the moving direction of the driving table 32 to form a limiting groove 312301, which is used to limit the movement mode of the moving block 3122.

[0052] It can be understood that when the position adjusting driving member 311 drives the screw rod 3121 to rotate, the moving block 3122 moves along the extension direction of the limiting groove 312301 due to the limiting effect of the limiting groove 312301, so that the driving table 32 is driven to move along the moving direction of the moving block 3122, thereby guiding the steel wire material 92 to be partially located in the second winding area 2202.

[0053] Preferably, the device body 10 further comprises a belt driving unit 14, which is installed on the first part 111 of the workbench 11, and the material carrying shaft 12 is synchronously connected to the belt driving unit 14.

[0054] It is to be noted that the belt driving unit 14 drives the material carrying shaft 12 to reduce the pressure of the material winding assembly 20 winding the steel wire 92, so that the wire drum 91 rotates to adapt to the winding operation of the material winding assembly 20, so as to prevent the steel wire 92 from being excessively pulled due to the winding operation, thereby causing serious deformation.

[0055] Preferably, the device body 10 further comprises a plurality of material conveying members 15, each of which preferably comprises a fixed block 151, a material limiting frame 152, and a material rolling member 153. The bottom of the fixed block 151 is connected to the belt driving table 32. The material limiting frame 152 is installed on the top of the fixed block 151, and the two ends of the material limiting frame 152 are arranged to extend in a direction radially parallel to the fixed block 151, so that the material limiting frame 152 forms a through opening 15201 for the steel wire 92 to pass through. The material rolling member 153 is arranged in the through opening 15201 and is rotatably connected between the two ends of the material limiting frame 152, so that when the material winding assembly 20 winds the steel wire 92, the steel wire 92 is subjected to reduced friction due to the rotation of the material rolling member 153.

[0056] Further, the device for manufacturing the steel wire framework composite pipe further comprises at least one material clamping member 40, which is used to clamp the cut end of the steel wire 92 after the first winding area 2201 and the second winding area 2202 of the winding assembly 22 are wound with a predetermined amount of the steel wire 92, and the steel wire 92 is cut off.

[0057] In particular, each of the material clamping members 40 comprises a fixed clamping block 41, a movable clamping block 42, and a plurality of clamping moving members 43. The fixed clamping block 41 is connected to the belt driving table 32. The movable clamping block 42 is arranged at a predetermined position opposite and spaced from the fixed clamping block 41 to form a clamping channel 401 with the fixed clamping block 41 for the steel wire 92 to pass through. Each of the clamping moving members 43 is movably connected to the fixed clamping block 41 and the movable clamping block 42, and each of the clamping moving members 43 is at least partially located in the clamping channel 401, so that when the clamping moving members 43 move between the fixed clamping block 41 and the movable clamping block 42, the movable clamping block 42 is arranged close to and away from the fixed clamping block 41 to adjust the size of the clamping channel 401.

[0058] It can be understood that the channel 401 is used for the movement of the steel wire 92, and before the steel wire 92 is cut off, the clamping member 43 is driven to move simultaneously on the fixed clamping block 41 and the movable clamping block 42, so that the movable clamping block 42 can be close to the fixed clamping block 41, thereby the channel 401 is reduced, and thus the fixed clamping block 41 and the movable clamping block 42 can clamp the steel wire 92 after the steel wire 92 is cut off, so that the cut-off position of the steel wire 92 is located at a predetermined position for the next winding operation.

[0059] Preferably, each of the clamping members 43 is provided as a bolt.

[0060] Further, the steel wire skeleton composite pipe manufacturing equipment further comprises a tension adjusting assembly 50, which is used to adjust the tension of the steel wire 92 during the winding process.

[0061] Preferably, the tension adjusting assembly 50 comprises a first adjusting member 51, and preferably, the first adjusting member 51 comprises an abutting block 511, at least one guide column 512, a sliding block 513 and at least one elastic member 514, wherein the abutting block 511 is connected to the driving table 32. The guide column 512 is connected to a predetermined position of the end of the abutting block 511 away from the driving table 32. The sliding block 513 is movably connected to the guide column 512, and a passageway 51301 is formed inside the sliding block 513 for the movement of the steel wire 92. The elastic member 514 is arranged between the abutting block 511 and the sliding block 513, and the two ends of the elastic member 514 abut against the abutting block 511 and the sliding block 513 respectively to form elastic force.

[0062] It can be understood that due to the traction of the winding assembly 20 winding the steel wire 92, the steel wire 92 continuously pushes and presses the sliding block 513 during the movement of the steel wire 92 in the passageway 6201, so that the sliding block 513 moves on the guide column 512, and due to the elastic force of the elastic member 514, the steel wire 92 is pushed back by the elastic member 514 after each time pushing and pressing the sliding block 513 to move the sliding block 513 on the guide column 512 by a distance, so that the part of the steel wire 92 passing through the sliding block 513 is repeatedly swung back and forth along the axial direction of the guide column 512 by the sliding block 513, thereby the steel wire 92 is adjusted to be tensioned and can be used for winding.

[0063] In a preferred embodiment, as shown in the figure, the number of the guide columns 512 is provided as two, and the elastic member 514 is arranged between the two guide columns 512, so that the movement mode of the sliding block 513 can be more stably limited.

[0064] In a variant, the number of the guide posts 512 is two, and the number of the elastic members 613 is also two, and one of the elastic members 613 is connected to one of the guide posts 512 in a sleeved manner.

[0065] Preferably, the elastic member 514 is implemented by a spring.

[0066] Further, the tension adjusting assembly 50 further comprises a second adjusting member 52, which is used to adjust the tension of the steel wire 92 after the steel wire 92 is separated from the wire drum 91. In addition to the first adjusting member 51 adjusting the tension of the steel wire 92, the steel wire 92 is more convenient to be wound.

[0067] Specifically, the second adjusting member 52 comprises a movable arm 521, a connecting frame 522, a resilient member 523 and a plurality of rolling members 524, wherein the movable arm 521 is rotatably connected to the connecting frame 522. The connecting frame 522 is connected to the first part 111 of the workbench 11, and the connecting frame 522 is provided with a fixed part 5211 in the rotation path of the movable arm 521, and the fixed part 5211 is located below the movable arm 521. The resilient member 523 is arranged in the rotation path of the movable arm 521, and one end of the resilient member 523 abuts against the movable arm 521, and the other end abuts against the fixed part 5211 of the connecting frame 522. At least part of the rolling members 524 are rotatably connected to the end of the movable arm 521 away from the connecting frame 522, and form a channel with the movable arm 521 to pass the steel wire 92, and at least another part of the rolling members 524 are rotatably connected to the front end of the fixed part 5211, and form a curve with the fixed part 5211 to pass the steel wire 92.

[0068] It can be understood that the steel wire 92 passes through the curve and the passage in turn during the winding movement of the steel wire 92, when the steel wire 92 with over-tightness passes through the passage, the rolling member 524 connected to the movable arm 521 is pressed to make the movable arm 521 rotate to the position close to the fixed part 5211, and then the tension strength of the part of the steel wire 92 passing through the passage is relieved, at this time, the elastic member 523 is strongly pressed to deform to generate elastic force, when the steel wire 92 with under-tightness passes through the passage, the elastic member 523 gradually recovers to make the movable arm 521 gradually recover to the original position under the action of the elastic force, so that the tension strength of the steel wire 92 is increased, thus the steel wire 92 with under-tightness is adjusted to be tight.

[0069] Preferably, the elastic member 523 is implemented to include a torsion spring. Each rolling member 524 is implemented to be a roller.

[0070] Those skilled in the art should understand that the above description and the embodiments of the utility model shown in the drawings are only examples and do not limit the utility model. The advantages of the utility model have been completely and effectively realized. The function and structural principle of the utility model have been shown and explained in the embodiments, and the embodiments of the utility model can be any deformation or modification without departing from the principle.

Claims

1. An apparatus for manufacturing a steel wire reinforced composite pipe for winding a predetermined amount of steel wire material around a bobbin, characterized by, The manufacturing equipment for the steel wire framework composite pipe comprises: an equipment body, which comprises a workbench and a material carrying shaft, the workbench forms a material conveying space, and the material carrying shaft is rotatably connected to the material conveying space of the workbench to load the wire drum; a winding assembly, which comprises a winding drive unit and a winding member, wherein the winding drive unit is mounted to the workbench, and the winding drive unit rotatably mounts the winding member, the winding member forms a first winding area and a second winding area in axial direction respectively at circumferential positions for winding the steel wire material; a position adjusting assembly, which comprises a position adjusting drive unit and a driving table, wherein the position adjusting drive unit is mounted to the workbench, the driving table is movably connected to the position adjusting drive unit, and when the position adjusting drive unit drives the driving table to move, the driving table is arranged to guide the steel wire material to be wound from the first winding area to the second winding area along the axial direction of the winding member.

2. The manufacturing apparatus for a steel wire reinforced composite pipe according to claim 1, wherein The winding drive unit comprises a winding drive member and a driving member, wherein the winding drive member is mounted to the workbench, and the winding drive member drivingly mounts the driving member, and the winding member is connected to the driving member.

3. The manufacturing apparatus for a steel wire reinforced composite pipe according to claim 2, wherein The winding member integrally extends outwardly from the radial direction to form a step, the step is arranged between the first winding area and the second winding area, and the winding member is provided with at least one mounting portion at a position close to the first winding area in the circumferential direction to connect the steel framework, and the winding member is further provided with a first connecting portion at a position close to the first winding area and a second connecting portion at a position close to the second winding area in the circumferential direction to fixedly connect two end portions of the steel wire material.

4. The manufacturing apparatus for a steel wire reinforced composite pipe according to claim 2, wherein The winding member comprises a first winding member and a second winding member, wherein the first winding member is detachably connected to the second winding member to form the winding member, the first winding member is synchronously rotatably connected to the winding drive unit, the first winding member forms the first winding area from a middle position, the first winding member integrally extends outwardly from the radial direction at an end portion connected to the second winding member to form a first step, the second winding member forms the second winding area from a middle position, the second winding member integrally extends outwardly from the radial direction at an end portion connected to the first winding member to form a second step, and when the first winding member is connected to the second winding member, the second step is arranged to keep coinciding with a projection of the first step in the same axial direction.

5. The manufacturing apparatus for a steel wire reinforced composite pipe according to claim 3 or 4, characterized by The position adjusting drive unit comprises a position adjusting drive member and a position adjusting transmission member, wherein the position adjusting drive member is mounted to the workbench, and the position adjusting drive member drivingly mounts the position adjusting transmission member, and the driving table is connected to the position adjusting transmission member.

6. The apparatus for manufacturing a steel wire fabric composite pipe according to claim 5, wherein The position adjusting transmission member comprises a screw rod, a moving block and a guide rail, wherein the screw rod is rotatably connected to the position adjusting driving member, and the screw rod is arranged to extend in a direction parallel to the moving direction of the belt table, the moving block is threadedly connected to the screw rod, and the moving block is movably connected to the guide rail, and the moving block is further connected to the belt table, the guide rail is connected to the workbench, and the guide rail extends in a direction parallel to the moving direction of the belt table to form a limiting channel, and the limiting channel is used to limit the moving mode of the moving block.

7. The apparatus for manufacturing a steel wire fabric composite pipe according to claim 6, wherein The device body further comprises a plurality of material conveying members, each of which comprises a fixed block, a material limiting frame and a material rolling piece, wherein the bottom of the fixed block is connected to the belt table, the material limiting frame is mounted on the top of the fixed block, and the two end portions of the material limiting frame are arranged to extend in a direction parallel to the radial direction of the fixed block, so that the material limiting frame forms an opening through which the steel wire material passes, and the material rolling piece is arranged in the opening and rotatably connected between the two end portions of the material limiting frame.

8. The apparatus for manufacturing a steel wire fabric composite pipe according to claim 7, wherein The manufacturing device for the steel wire framework composite pipe further comprises at least one material clamping member, each of which comprises a fixed clamping block, a movable clamping block and a plurality of clamping moving pieces, wherein the fixed clamping block is connected to the belt table, the movable clamping block is arranged at a predetermined position opposite and spaced from the fixed clamping block to form a clamping channel through which the steel wire material passes, each of the clamping moving pieces is movably connected to the fixed clamping block and the movable clamping block, and each of the clamping moving pieces is at least partially located in the clamping channel, so that when the clamping moving pieces move between the fixed clamping block and the movable clamping block, the movable clamping block is arranged to approach and move away from the fixed clamping block to adjust the size of the clamping channel.

9. The apparatus for manufacturing a steel wire fabric composite pipe according to claim 8, wherein The manufacturing device for the steel wire framework composite pipe further comprises a tensioning adjusting assembly, and the tensioning adjusting assembly comprises a first adjusting member, the first adjusting member comprises an abutting block, at least one guide column, a sliding block and at least one elastic piece, wherein the abutting block is connected to the belt table, the guide column is connected to the abutting block at a predetermined position away from the end portion of the belt table, the sliding block is movably connected to the guide column, and the sliding block forms a passageway inside to allow the steel wire material to move, the elastic piece is arranged between the abutting block and the sliding block, and the two end portions of the elastic piece abut against the abutting block and the sliding block, respectively.

10. The apparatus for manufacturing a steel wire fabric composite pipe according to claim 9, wherein The tension adjusting assembly further comprises a second adjusting member, the second adjusting member comprising a movable arm, a connecting frame, a resilient member and a plurality of rolling members, wherein the movable arm is rotatably connected to the connecting frame, the connecting frame is connected to the workbench, and the connecting frame is provided with a fixed portion on the rotation path of the movable arm, the fixed portion being below the movable arm, the resilient member is provided on the rotation path of the movable arm, one end of the resilient member abutting against the movable arm, and the other end abutting against the fixed portion of the connecting frame, at least a part of the rolling members are rollably connected to the end of the movable arm away from the connecting frame, and form a channel with the movable arm for the steel wire to pass through, and at least another part of the rolling members are rollably connected to the front end of the fixed portion, and form a curve with the fixed portion for the steel wire to pass through.