A wire web drive

By using an adjusting plate and tensioning assembly in the online wire mesh transmission device, the wire routing process is simplified, the use of guide wheels is reduced, losses are decreased, and production efficiency and device reliability are improved.

CN117246841BActive Publication Date: 2026-04-10ZHANGJIAKOU YUANSHI ADVANCED MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-20
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

The existing wire mesh transmission process uses a large number of guide wheels and has a complex wire routing, which leads to increased wire loss and reduced production efficiency.

Method used

A wire mesh transmission device including an adjusting plate, a tensioning assembly, and a set of transition wheels is adopted. By moving the tensioning assembly on the adjusting plate in the second direction, the output end and the input end are aligned in the same straight line in the first direction, reducing the use of guide wheels and simplifying the wire routing.

Benefits of technology

It reduces steel wire loss, improves production efficiency, and enhances the reliability and stability of the wire mesh drive device through the design of centralized tensioning components and transition wheel sets.

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Abstract

The application discloses a wire net transmission device, and belongs to the technical field of steel wire production mechanical equipment. The wire net transmission device comprises at least one group of adjusting plates which are arranged at intervals along a first direction; a plurality of tensioning assemblies which are arranged on the adjusting plates, are used for applying tension to the steel wire, and have output ends for leading out the steel wire; and a transition wheel set which is arranged at intervals with the tensioning assemblies in the first direction and is used for adjusting the threading height of the steel wire. The transition wheel set has input ends for guiding the steel wire. The tensioning assemblies can move relative to the adjusting plates in a second direction, so that the output ends and the input ends are located on the same straight line in the first direction. In this way, the positions of the tensioning assemblies are adjusted by using the adjusting plates, the output ends and the input ends are always located on the same straight line in the first direction, the positions of the tensioning assemblies can be adjusted in time according to the direction of the output of the steel wire after tensioning, the wire guide wheels used in the wire net transmission process are reduced, the steel wire threading is simplified, the steel wire loss is reduced, and the steel wire production efficiency is improved.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of steel wire production machinery and equipment, and particularly relates to a wire mesh transmission device. BACKGROUND

[0002] In the production of steel wire, the steel wire needs to be wound and tensioned in the wire mesh transmission process. The steel wire maintains a relatively fixed cross-sectional shape and size through winding, and maintains constant tension in the transmission process through tensioning, so as to avoid deformation and relaxation of the steel wire and improve the strength and stability in the production process of the steel wire.

[0003] However, in order to achieve the above effects, the existing wire mesh transmission process uses more guide wheels, and the steel wire routing is complex, which increases the steel wire loss and reduces the production efficiency. SUMMARY

[0004] The application provides a wire mesh transmission device to solve the problem that the existing wire mesh transmission process uses more guide wheels, the steel wire routing is complex, which increases the steel wire loss and reduces the production efficiency.

[0005] The technical scheme, the application provides a wire mesh transmission device, which comprises:

[0006] At least one adjusting plate arranged at intervals in a first direction;

[0007] A plurality of tensioning assemblies provided on the adjusting plate and used for applying tension to the steel wire; the tensioning assembly has an output end for leading out the steel wire;

[0008] A transition wheel set arranged at intervals with the tensioning assembly in the first direction and used for adjusting the threading height of the steel wire; the transition wheel set has an input end for guiding the steel wire;

[0009] The tensioning assembly is movable relative to the adjusting plate in a second direction, so that the output end and the input end are located on the same straight line in the first direction; wherein the first direction and the second direction intersect.

[0010] In some embodiments, the tensioning assembly comprises:

[0011] A vertical plate, a support, a tension unit and a first guide wheel, the vertical plate is arranged on the adjusting plate, the support is connected to one end of the vertical plate away from the adjusting plate, the tension unit is arranged on the vertical plate, and the first guide wheel is arranged on the support; the first guide wheel has a first wire inlet end and a first wire outlet end, and the first wire outlet end is the output end.

[0012] In some embodiments, the tensioning assembly further comprises a fifth wire wheel disposed at an end of the vertical plate away from the adjusting plate, the fifth wire wheel having a fifth wire inlet end and a fifth wire outlet end, the fifth wire outlet end being located on the same straight line as the first wire inlet end in a third direction; wherein the third direction, the first direction and the second direction are pairwise intersected.

[0013] In some embodiments, the tensioning unit comprises a swing lever, a motor, a fourth wire wheel and a plurality of limiting columns; the swing lever has a first end and a second end oppositely disposed along the third direction, the motor is connected to the first end, the fourth wire wheel is connected to the second end, and the limiting columns are oppositely disposed on both sides of the swing lever along the second direction;

[0014] wherein the fourth wire wheel has a fourth wire inlet end and a fourth wire outlet end, the fourth wire outlet end and the fifth wire inlet end are located on the same straight line in the second direction; the motor can drive the swing lever to swing so as to make the fourth wire wheel move back and forth in the second direction.

[0015] In some embodiments, the swing lever has a swing angle range a with the third direction when swinging, satisfying: 0≤a≤20°.

[0016] In some embodiments, the adjusting plate comprises:

[0017] a body, a plurality of second through holes are formed in the body; wherein the plurality of second through holes are arranged along the second direction, the vertical plate is connected to different groups of the second through holes, so that the vertical plate can move relative to the adjusting plate in the second direction.

[0018] In some embodiments, a plurality of first through holes are further formed in the body; wherein the vertical plate is connected to the body through the first through holes.

[0019] In some embodiments, the size of the first through hole along the first direction is greater than the size along the second direction, so that the vertical plate can relatively displace with the body along the first direction within the range of the first through hole.

[0020] In some embodiments, the transition wheel set comprises:

[0021] a first transition wheel set, the first transition wheel set comprising a plurality of second wire wheels arranged along the second direction; the second wire wheels have second wire inlet ends and second wire outlet ends, the second wire inlet ends being the input ends;

[0022] A second transition wheel set includes a plurality of sixth wire guide wheels arranged along a second direction; the sixth wire guide wheels have sixth wire in ends and sixth wire out ends, the second wire out ends and the sixth wire in ends are located on the same straight line in the third direction.

[0023] In some embodiments, along the second direction, between two adjacent groups of the second through holes, there is a fourth size L4, between two adjacent second wire guide wheels, there is a fifth size L5, between two adjacent sixth wire guide wheels, there is a sixth size L6, the wire mesh transmission device satisfies: L4=L5=L6.

[0024] In some embodiments, further comprising:

[0025] A base, the body is arranged on the base:

[0026] A plurality of limiting plates are arranged on the base along the first direction; the limiting plates include a blocking part and a connecting part, the blocking part abuts against one end of the body, and the connecting part is connected with the base.

[0027] In some embodiments, along the first direction, the first through holes have a first size L1, the body has a second size L2, and the limiting plates have a third size L3, and the wire mesh transmission device satisfies: L1+L2≤L3.

[0028] In some embodiments, the adjusting plate further includes a mounting plate arranged at one end of the body away from the base;

[0029] The wire mesh transmission device further includes a third wire guide wheel, the third wire guide wheel is connected with the mounting plate; the third wire guide wheel has a third wire in end and a third wire out end, the third wire out end and the fourth wire in end are located on the same straight line in the second direction.

[0030] Beneficial effects: Compared with the prior art, the wire mesh transmission device provided by the embodiment of the application comprises: at least one set of adjustment plates arranged at intervals in a first direction; a plurality of tensioning assemblies arranged on the adjustment plates and used for applying tension to the steel wire; the tensioning assembly has an output end for leading out the steel wire; a transition wheel set is arranged at intervals with the tensioning assembly in the first direction and used for adjusting the threading height of the steel wire; the transition wheel set has an input end for guiding the steel wire into; the tensioning assembly is movable relative to the adjustment plate in a second direction, so that the output end and the input end are located on the same straight line in the first direction; wherein the first direction and the second direction intersect. In this way, the position of the tensioning assembly is adjusted by using the adjustment plate, so that the output end and the input end are always located on the same straight line in the first direction, the position of the tensioning assembly can be adjusted in time according to the direction of the output of the steel wire after tensioning, the guide wheel used in the wire mesh transmission process is reduced, the steel wire routing is simplified, the steel wire loss is reduced, and the steel wire production efficiency is improved. BRIEF DESCRIPTION OF DRAWINGS

[0031] The technical solutions and other beneficial effects of the application will become apparent through the following detailed description of the specific embodiments of the application in combination with the accompanying drawings.

[0032] Figure 1 A structural schematic diagram of the wire mesh transmission device provided by the embodiment of the application is shown in the figure.

[0033] Figure 2 A structural schematic diagram of the wire mesh transmission device provided by the embodiment of the application is shown in the figure. Figure 1 An enlarged schematic diagram of the A area in the figure.

[0034] Figure 3 An enlarged schematic diagram of the A area in the figure. Figure 1 An enlarged schematic diagram of the A area in the figure.

[0035] Figure 4 A structural schematic diagram of the tensioning assembly in the embodiment of the application is shown in the figure.

[0036] Figure 5 A structural schematic diagram of the tensioning assembly in the embodiment of the application is shown in the figure. Figure 3 An enlarged schematic diagram of the B area in the figure.

[0037] Figure 6 A structural schematic diagram of the transition wheel set in the embodiment of the application is shown in the figure.

[0038] Figure 7 A structural schematic diagram of the adjustment plate in the embodiment of the application is shown in the figure.

[0039] Figure 8 A schematic diagram of the routing path of a steel wire in the embodiment of the application is shown in the figure.

[0040] 100 - base; 200 - adjusting plate; 210 - body; 211 - first through hole; 212 - second through hole; 220 - mounting plate; 230 - third wire wheel; 231 - third wire inlet end; 232 - third wire outlet end; 300 - tensioning assembly; 310 - vertical plate; 320 - bracket; 330 - tension unit; 331 - swing lever; 3311 - first end; 3312 - second end; 332 - motor; 333 - fourth wire wheel; 3331 - fourth wire inlet end; 3332 - fourth wire outlet end; 334 - limiting post; 340 - first wire wheel; 341 - first wire inlet end; 342 - first wire outlet end; 350 - fifth wire wheel; 351 - fifth wire inlet end; 352 - fifth wire outlet end; 360 - output end; 400 - transition wheel set; 410 - input end; 420 - first transition wheel set; 421 - second wire wheel; 4211 - second wire inlet end; 4212 - second wire outlet end; 430 - second transition wheel set; 431 - sixth wire wheel; 4311 - sixth wire inlet end; 4312 - sixth wire outlet end; 500 - limiting plate; 510 - gear part; 520 - connecting part; X - first direction; Y - second direction; Z - third direction. DETAILED DESCRIPTION

[0041] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.

[0042] In the description of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected", "connected" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected or can communicate with each other; it can be directly connected, or indirectly connected through an intermediate medium, or the internal communication of two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances. In the description of the present application, the meaning of "multiple" is two or more than two, unless otherwise explicitly specified and limited. In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can explicitly or implicitly include one or more features.

[0043] The following disclosure provides many different embodiments, or examples, for implementing different structures of the present application. For the purpose of simplifying the present disclosure, certain examples of components and arrangements are described herein. These are, of course, merely examples and are in no way limiting of the present application.

[0044] In the production of steel wire, it is necessary to wind and tension the steel wire in the process of wire net transmission. The steel wire maintains a relatively fixed cross-sectional shape and size through winding, and maintains a constant tension in the transmission process through tensioning, thereby avoiding deformation and relaxation of the steel wire and improving the strength and stability in the production process of the steel wire.

[0045] However, the applicant finds that in order to achieve the above effects, the existing wire guide wheels used in the wire net transmission process are more, the steel wire routing is complex, which leads to increased steel wire loss and reduced production efficiency. In addition, the existing wire guide wheels are mostly suspended on the frame of the machine, which has poor stability and is easy to shake in the suspended manner, making it difficult to ensure the coplanarity of the wire guide wheels. At the same time, the wire guide wheels installed in this way are installed at a high position and are far away from the bottom surface of the machine, which is not convenient for the operator to thread the steel wire. In addition, the wire tension stability obtained by the wire guide wheels installed in this way is poor, and the tension is not constant.

[0046] Therefore, the embodiments of the present application provide a wire net transmission device, please refer to Figure 1 and Figure 2 , Figure 1 schematically illustrates the structure of the wire net transmission device provided by the embodiments of the present application; Figure 2 schematically illustrates Figure 1An enlarged schematic view of the middle A area. The wire mesh transmission device in the embodiment of the present application comprises: at least one set of adjustment plates 200 arranged at intervals along a first direction X, a plurality of tensioning assemblies 300, and a transition wheel set 400. The tensioning assembly 300 is arranged on the adjustment plate 200 and used to apply tension to the steel wire. The tensioning assembly 300 has an output end 360 for leading out the steel wire. The transition wheel set 400 is arranged at intervals with the tensioning assembly 300 along the first direction X and used to adjust the threading height of the steel wire. The transition wheel set 400 has an input end 410 for guiding in the steel wire. In the present application, the tensioning assembly 300 can move relative to the adjustment plate 200 along a second direction Y so that the output end 360 and the input end 410 are located on the same straight line along the first direction X. The first direction X and the second direction Y intersect. When the output direction of the steel wire changes after being tensioned, the position of the tensioning assembly 300 on the adjustment plate 200 needs to be adjusted in time, so that the transmission of the steel wire between the output end 360 and the input end 410 can be realized without the need to add other wire guide wheels, thereby reducing the wire guide wheels used in the wire mesh transmission process, simplifying the steel wire routing, reducing the steel wire loss, and improving the steel wire production efficiency. In addition, the above structure can be used to arrange a plurality of tensioning assemblies 300 at intervals along the first direction X, so that a plurality of steel wires can be arranged at the same time, the spacing between the wires in the wire mesh transmission device is smaller, and the internal space of the wire mesh transmission device is saved.

[0047] Please refer again to Figure 1 、 Figure 2 and Figure 3 , Figure 3 illustrates Figure 1An enlarged schematic diagram of region A from another angle. In some embodiments, the tensioning assembly 300, as the main device for providing tension in this application, includes a vertical plate 310, a bracket 320, a tension unit 330, and a first guide wheel 340. The vertical plate 310 is disposed on the adjusting plate 200, the bracket 320 is connected to the end of the vertical plate 310 away from the adjusting plate 200, the tension unit 330 is disposed on the vertical plate 310, and the first guide wheel 340 is disposed on the bracket 320. The first guide wheel 340 has a first inlet end 341 and a first outlet end 342, the first outlet end 342 being an output end 360. Through the above structure, the fifth guide wheel 350 required for the change of the steel wire's routing direction and the fourth guide wheel 333 that provides tension to the steel wire are all integrated on the vertical plate 310. The first guide wheel 340, where the output end 360 is located, is set on the bracket 320, making the structure concentrated and compact. This facilitates the adjustment of the tension unit to provide tension to the steel wire. The tension of the fourth guide wheel 333 is equal in magnitude and balanced in force, providing relatively stable tension to the steel wire. In this way, the steel wire routing process and the tension establishment process are both concentrated on the tensioning component 300. The overall structure of the wire mesh transmission device is compact, reducing the space occupied by the wire mesh transmission device, improving the transmission efficiency of the steel wire, and further improving the reliability and stability of the wire mesh transmission device.

[0048] Please refer to it again. Figure 2 , Figure 3 and Figure 8 , Figure 8 This diagram illustrates the wire routing path of a steel wire in an embodiment of this application. In some embodiments, the tensioning assembly 300 further includes a fifth guide wheel 350, disposed at the end of the upright plate 310 away from the adjusting plate 200. The fifth guide wheel 350 has a fifth inlet end 351 and a fifth outlet end 352. The fifth outlet end 352 and the first inlet end 341 are located on the same straight line in the third direction Z; wherein the third direction Z, the first direction X, and the second direction Y intersect each other. Using only the fifth guide wheel 350, the steel wire is turned from the tension unit 330 into the first guide wheel 340, simplifying the steel wire turning path, reducing material loss during steel wire transmission, reducing energy consumption caused by transmission, and thus further improving the reliability of the wire mesh transmission device.

[0049] Please refer to it again. Figure 2 , Figure 3 and Figure 8In some embodiments, the tension unit 330 comprises a swing rod 331, a motor 332, a fourth wire wheel 333, and a plurality of limiting columns 334; the swing rod 331 has a first end 3311 and a second end 3312 oppositely arranged along the third direction Z, the motor 332 is connected to the first end 3311, the fourth wire wheel 333 is connected to the second end 3312, and the limiting columns 334 are oppositely arranged on both sides of the swing rod 331 along the second direction Y; wherein the fourth wire wheel 333 has a fourth wire inlet end 3331 and a fourth wire outlet end 3332, and the fourth wire outlet end 3332 and the fifth wire inlet end 351 are located on the same straight line in the second direction Y; the motor 332 can drive the swing rod 331 to swing, so that the fourth wire wheel 333 moves back and forth in the second direction Y. In this way, after the steel wire is subjected to tension by the fourth wire wheel 333, it is output from the fourth wire outlet end 3332 and directly enters the fifth wire inlet end 351 without passing through other wire wheels, further simplifying the steel wire turning path, reducing material loss in the steel wire transmission process, reducing energy consumption caused by transmission, and improving the reliability of the wire mesh transmission device.

[0050] Please refer to Figure 4 , and refer to Figure 8 , Figure 4 The structure of the tension assembly in the embodiments of the present application is shown, and in some embodiments, the swing of the tension unit 330 through the swing rod 331 causes friction between the fourth wire wheel 333 and the steel wire, thereby converting the kinetic energy of the swing of the swing rod 331 into the tension applied to the steel wire. Further, in order to make the applied tension controllable, the swing rod 331 has a swing angle range a with the third direction Z when it swings, which satisfies: 0≤a≤20°. For example, a can be one of the values 0, 1°, 2°, 3°, 4°, 5°, 6°, 7°, 8°, 9°, 10°, 11°, 12°, 13°, 14°, 15°, 16°, 17°, 18°, 19°, 20° or a range value between any two of them. The larger the value of a, the greater the tension applied to the steel wire. In addition, it should be understood that the swing rod 331 can swing left and right, and regardless of whether the swing rod 331 swings left or right, the swing angle range a is the angle between the swing rod 331 and the third direction Z when it swings.

[0051] Please refer to Figure 2 , Figure 3 and Figure 7 , Figure 7 The structure of the adjusting plate in the embodiments of the present application is shown; in some embodiments, the adjusting plate 200 comprises a body 210; wherein a plurality of second through holes 212 are arranged along the second direction Y, and the vertical plate 310 is connected to different groups of second through holes 212 to enable the vertical plate 310 to move relative to the adjusting plate 200 in the second direction Y.

[0052] Please refer to Figure 7In some embodiments, a plurality of first through holes 211 are formed on the body 210; the vertical plate 310 is connected to the body 210 through the first through holes 211; in this way, the flexibility of the tensioning assembly 300 in adjusting the adjusting plate 200 is increased, and the reliability and applicability of the tensioning assembly 300 are improved to meet different steel wire transmission direction requirements.

[0053] Further, referring again to Figure 5 In some embodiments, the size of the first through hole 211 along the first direction X is greater than the size along the second direction Y, so that the vertical plate 310 is relatively displaced with the body 210 along the first direction X within the range of the first through hole 211. In this way, the adjusting plate 200 can be fine-tuned and moved within the range of the first through hole 211, and the flexibility of the adjusting plate 200 in adjusting is improved.

[0054] Please refer to Figure 1 , Figure 6 and Figure 8 , Figure 6 illustrates a structure schematic diagram of the transition wheel set in the embodiments of the present application. In some embodiments, the transition wheel set 400 includes a first transition wheel set 420 and a second transition wheel set 430; the first transition wheel set 420 includes a plurality of second wire guide wheels 421 arranged along the second direction Y; the second transition wheel set 430 includes a plurality of sixth wire guide wheels 431 arranged along the second direction Y. The second wire guide wheel 421 has a second wire inlet end 4211 and a second wire outlet end 4212, wherein the second wire inlet end 4211 is the input end 410; the sixth wire guide wheel 431 has a sixth wire inlet end 4311 and a sixth wire outlet end 4312, and the second wire outlet end 4212 and the sixth wire inlet end 4311 are located on the same straight line in the third direction Z. In this way, the steel wire is output from the first wire outlet end 342, then enters the second wire inlet end 4211, and then is output through the second wire outlet end 4212, then enters the sixth wire inlet end 4311, and finally is output from the sixth wire outlet end 4312. In this way, the output direction of the steel wire is lowered through the second transition wheel set 430, so that the output height of the steel wire is reduced, and the threading of the steel wire is facilitated.

[0055] Please refer to Figure 6 and Figure 7In some embodiments, along the second direction Y, the fourth size L4 is between two adjacent groups of second through holes 212, the fifth size L5 is between two adjacent second wire wheels 421, and the sixth size L6 is between two adjacent sixth wire wheels 431. The wire mesh transmission device satisfies: L4=L5=L6. In this way, when the tensioning assembly 300 is displaced on the body 210 by the fourth size L4, the next second wire wheel 421 according to the fifth size L5 in the first transition wheel group 420 and the next sixth wire wheel 431 according to the sixth size L6 in the second transition wheel group 430 can be corresponded to. Thus, the output end 360 and the input end 410 are always located on the same straight line in the first direction X, the wire wheels used in the wire mesh transmission process are reduced, the steel wire routing is simplified, the steel wire loss is reduced, and the steel wire production efficiency is improved.

[0056] Please refer again to Figure 3 and Figure 5 , Figure 5 illustrates an enlarged view of the B region in Figure 3 In some embodiments, the base 100 and the plurality of limiting plates 500 are further included; the body 210 is arranged on the base 100; the limiting plates 500 are arranged on the base 100 along the first direction X; the limiting plates 500 include the stop portion 510 and the connecting portion 520, the stop portion 510 abuts against one end of the body 210, and the connecting portion 520 is connected with the base 100. Through the arrangement of the limiting plates 500, the tension unit 330 can be installed on the base 100 through the adjusting plate 200, the structural stability of the wire mesh transmission device is improved, and the coplanarity of the various wire wheels is better ensured.

[0057] Please refer again to Figure 5 and Figure 7 In some embodiments, along the first direction X, the first size L1 is of the first through hole 211, the second size L2 is of the body 210, and the third size L3 is of the limiting plate 500. The wire mesh transmission device satisfies: L1+L2≤L3. In this way, when the body 210 is adjusted in the first through hole 211, the body 210 will not slide out of the range of the limiting plate 500, and the stability of the wire mesh transmission device is further improved.

[0058] Please refer again to Figure 2 , Figure 3 and Figure 8The adjusting plate 200 further comprises a mounting plate 220 arranged at one end of the body 210 away from the base 100. The wire transmission device further comprises a third wire guide wheel 230 connected with the mounting plate 220; the third wire guide wheel 230 has a third wire input end 231 and a third wire output end 232. Due to the arrangement of the body 210 and the base 100, the third wire output end 232 and the fourth wire input end 3331 are located on the same straight line in the second direction Y. The steel wire is input into the wire transmission device from the third wire input end 231, and then output through the third wire output end 232 and directly input into the fourth wire input end 3331. The tension unit 330 applies tension to the steel wire, further simplifies the turning path of the steel wire, reduces material loss in the transmission process of the steel wire, reduces energy consumption caused by transmission, and improves the reliability of the wire transmission device.

[0059] Further, to realize the movement of the tension assembly 300, in some embodiments, a sliding rail (not shown in the figure) can be arranged on the body 210, so that the tension assembly 300 can move relative to the adjusting plate 200 in the second direction Y through the sliding rail. Thus, through the front and back staggered arrangement of the plurality of tension assemblies 300 in the first direction X, a plurality of steel wires are arranged at the same time, so that the wire spacing in the wire transmission device is smaller, and the space inside the wire transmission device is saved.

[0060] Compared with the prior art, the wire transmission device provided by the embodiment of the application comprises: at least one set of adjusting plates 200 arranged at intervals in a first direction X, a plurality of tension assemblies 300, and a transition wheel set 400. The tension assembly 300 is arranged on the adjusting plate 200 and is used to apply tension to the steel wire; the tension assembly 300 has an output end 360 for leading out the steel wire. The transition wheel set 400 is arranged at intervals with the tension assembly 300 in the first direction X and is used to adjust the threading height of the steel wire; the transition wheel set 400 has an input end 410 for guiding the steel wire. The tension assembly 300 can move relative to the adjusting plate 200 in a second direction Y, so that the output end 360 and the input end 410 are located on the same straight line in the first direction X; wherein the first direction X and the second direction Y intersect. In this way, by using the adjusting plate 200 to adjust the position of the tension assembly 300, the output end 360 and the input end 410 are always located on the same straight line in the first direction X, the position of the tension assembly 300 can be adjusted in time according to the direction of the output of the steel wire after tensioning, the wire guide wheel used in the wire transmission process is reduced, the wire routing of the steel wire is simplified, the steel wire loss is reduced, and the production efficiency of the steel wire is improved.

[0061] The above describes in detail the wire mesh transmission device provided by the embodiments of the present application, and the principles and implementation manners of the present application are described by using specific examples. The above embodiment description is only used to help understand the technical solutions of the present application and the core ideas thereof. Those skilled in the art should understand that the technical solutions recorded in the foregoing embodiments can be modified, or some technical features thereof can be replaced equivalently, and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.

Claims

1. A wire web drive, characterized in that, The adjusting plate (200) comprises a body (210) having a plurality of second through holes (212) arranged along a second direction (Y). The tensioning assembly (300) is provided on the adjusting plate (200) and used for applying a tensioning force to the steel wire. The tensioning assembly (300) has an output end (360) for leading out the steel wire. The transition wheel set (400) is arranged in the first direction (X) and used for adjusting the threading height of the steel wire. The first direction (X) and the second direction (Y) intersect.

2. The wire web drive of claim 1, wherein, The fifth guide wheel (350) is arranged at the end of the stand (310) away from the adjusting plate (200).

3. The wire web drive of claim 2, wherein, The fifth guide wheel (350) has a fifth wire inlet end (351) and a fifth wire outlet end (352). The third direction (Z), the first direction (X) and the second direction (Y) intersect pairwise.

4. The wire web drive of claim 3, wherein, The tension unit (330) comprises a swing rod (331), a motor (332), a fourth wire wheel (333) and a plurality of limiting columns (334); the swing rod (331) has a first end (3311) and a second end (3312) oppositely arranged along the third direction (Z), the motor (332) is connected to the first end (3311), the fourth wire wheel (333) is connected to the second end (3312), and the limiting columns (334) are arranged on both sides of the swing rod (331) along the second direction (Y); The fourth wire wheel (333) has a fourth wire inlet end (3331) and a fourth wire outlet end (3332), and the fourth wire outlet end (3332) and the fifth wire inlet end (351) are located on the same straight line in the second direction (Y); the motor (332) can drive the swing rod (331) to swing, so that the fourth wire wheel (333) moves back and forth in the second direction (Y).

5. The wire web drive of claim 4, wherein, The swing rod (331) has a maximum angle α when swinging, and satisfies: 0≤α≤20°.

6. The wire web drive of claim 4, wherein, The body (210) is further provided with a plurality of first through holes (211); wherein the stand (310) is connected with the body (210) through the first through hole (211).

7. The wire web drive of claim 6, wherein, The size of the first through hole (211) along the first direction (X) is greater than the size along the second direction (Y), so that the stand (310) is relatively displaced with the body (210) along the first direction (X) within the range of the first through hole (211).

8. The wire web drive of claim 3, wherein, The transition wheel set (400) comprises: The first transition wheel set (420) comprises a plurality of second wire wheels (421) arranged along the second direction (Y); the second wire wheel (421) has a second wire inlet end (4211) and a second wire outlet end (4212), and the second wire inlet end (4211) is the input end (410); The second transition wheel set (430) comprises a plurality of sixth wire wheels (431) arranged along the second direction (Y); the sixth wire wheel (431) has a sixth wire inlet end (4311) and a sixth wire outlet end (4312), and the second wire outlet end (4212) and the sixth wire inlet end (4311) are located on the same straight line in the third direction (Z).

9. The wire web drive of claim 8, wherein, Along the second direction (Y), the fourth size L4 is between two adjacent groups of second through holes (212), the fifth size L5 is between two adjacent second wire wheels (421), and the sixth size L6 is between two adjacent sixth wire wheels (431), and the wire mesh transmission device satisfies: L4=L5=L6.

10. The wire web drive of claim 6, wherein, Further comprising: The body (210) is arranged on the base (100): A plurality of limiting plates (500) are arranged on the base (100) in the first direction (X); the limiting plate (500) comprises a blocking part (510) and a connecting part (520), the blocking part (510) is in abutment with one end of the body (210), and the connecting part (520) is connected with the base (100).

11. The wire web drive of claim 10, wherein, In the first direction (X), the first through hole (211) has a first size L1, the body (210) has a second size L2, and the limiting plate (500) has a third size L3, and the wire mesh transmission device satisfies: L1+L2≤L3.

12. The wire web drive of claim 10, wherein, The adjusting plate (200) further comprises a mounting plate (220), which is arranged at one end of the body (210) away from the base (100); The wire mesh transmission device further comprises a third wire wheel (230), which is connected with the mounting plate (220); the third wire wheel (230) has a third wire inlet end (231) and a third wire outlet end (232), and the third wire outlet end (232) and the fourth wire inlet end (3331) are located on the same straight line in the second direction (Y).

Citation Information

Patent Citations

  • Cable hanging bracket capable of controlling cable spacing and used for power construction

    CN215497999U

  • Centralized tension control platform for steel wire production

    CN218950676U