Wire mesh knitting machine with adjustable warp beam position

By designing an adjustable warp beam position in the wire mesh weaving machine and utilizing a tapered groove and screw drive system, the problem of insufficient regularity when the warp thread feed margin is small is solved, achieving higher weaving quality and production efficiency.

CN223718210UActive Publication Date: 2025-12-26HEBEI LANYING TECH CO LTD
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Patent Information

Application Number
CN202520151694.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-22
Publication Date
2025-12-26
Estimated Expiration
2035-01-22

AI Technical Summary

Technical Problem

In existing technology, when the warp yarns of the warp beam have a small allowance, the regularity between the warp yarns decreases, resulting in poor weaving quality.

Method used

Design a metal wire mesh weaving machine with adjustable warp beam position. By setting a tapered groove and a screw transmission system on the warp beam, the sliding and precise position adjustment of the warp beam can be achieved. Combined with worm gear and helical gear transmission, the warp feeding performance is optimized.

Benefits of technology

It significantly improves the regularity and stability of the warp threads during the warp feeding process, and optimizes the weaving quality and production efficiency of the wire mesh.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model relates to the technical field of wire mesh weaving, and provides a wire mesh weaving machine with the position of a warp beam adjustable. The outer wall of the warp beam is provided with a plurality of conical grooves which are sequentially arranged, the conical grooves are used for containing wound warps, the axial direction of the conical grooves is coaxial with that of the warp beam, the warp beam is arranged on the rack in a sliding mode, the sliding direction is the axial direction of the warp beam, and the warp beam is further provided with a first screw hole; and the first screw rod is rotationally arranged on the rack and is in threaded connection with the first screw hole. By means of the technical scheme, the technical problem that in the prior art, when the warp feeding allowance of the warp beam is small, the regularity degree between the warps is reduced is solved.
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Description

TECHNICAL FIELD

[0001] Embodiments of the present disclosure relate to the technical field of wire mesh weaving, in particular to a wire mesh weaving machine with adjustable warp beam position. BACKGROUND

[0002] The wire mesh weaving machine is also known as a mesh weaving machine or a mesh knitting machine, which is a mechanical device that can weave metal wires or plastic wires of various materials into a mesh. It is generally composed of a frame, a warp feeding mechanism, a heald frame, a steel buckle, a beating mechanism, a winding mechanism, etc. During operation, the warp yarns pass through the heald frame and the steel buckle from the warp feeding mechanism to the winding mechanism, and the end is wound on the winding shaft; the heald frame moves up and down and the steel buckle moves forward and backward driven by the crankshaft, and the weft yarns pass through the warp yarns driven by the beating mechanism to complete the mesh weaving; the winding shaft of the winding mechanism rotates to advance the warp yarns and wind the woven mesh on the winding shaft. The core of the warp feeding mechanism is the warp beam, and in the prior art, the warp beam is usually a cylindrical warp beam. When the warp yarn feeding amount is small, the regularity between the warp yarns decreases. SUMMARY

[0003] To overcome the above-mentioned defects, embodiments of the present disclosure provide a wire mesh weaving machine with adjustable warp beam position, which solves the technical problem of reduced regularity between warp yarns when the warp yarn feeding amount is small in the related art.

[0004] According to one aspect, at least one embodiment of the present disclosure provides a wire mesh weaving machine with adjustable warp beam position, comprising:

[0005] a frame;

[0006] a warp beam, the outer wall of the warp beam has a plurality of conical grooves arranged in sequence, the conical grooves are used to accommodate the wound warp yarns, the axial direction of the conical grooves is coaxial with the warp beam, the warp beam is slidingly arranged on the frame, and the sliding direction is along the axial direction of the warp beam, and the warp beam also has a first screw hole;

[0007] a first screw rod, the first screw rod is rotationally arranged on the frame and is threadedly connected with the first screw hole.

[0008] For example, the wire mesh weaving machine with adjustable warp beam position provided by at least one embodiment of the present disclosure further comprises:

[0009] a first worm gear, the first worm gear is arranged on the first screw rod;

[0010] a first worm, the first worm is rotationally arranged on the frame and is engaged with the first worm gear;

[0011] a first hand wheel, the first hand wheel is used to drive the first worm to rotate.

[0012] For example, the warp beam position adjustable wire mesh braiding machine provided by at least one embodiment of the present disclosure further comprises:

[0013] The first bevel gear is arranged on the first worm;

[0014] The second bevel gear is engaged with the first bevel gear, and the first hand wheel is arranged on the second bevel gear.

[0015] For example, the warp beam position adjustable wire mesh braiding machine provided by at least one embodiment of the present disclosure further comprises:

[0016] The dismounting guide part is arranged on the rack in sliding mode, and the sliding direction is along the axial direction of the warp beam, and after sliding, the dismounting guide part is in abutment or abutment cancellation with the warp beam;

[0017] The elastic member is arranged at one end on the rack and at the other end on the dismounting guide part, and provides a force for the dismounting guide part to abut against the warp beam.

[0018] For example, the warp beam position adjustable wire mesh braiding machine provided by at least one embodiment of the present disclosure further comprises:

[0019] The second screw rod is arranged on the rack in rotating mode, and the second screw rod is threadedly connected with the second screw hole;

[0020] The second hand wheel is arranged on the second screw rod.

[0021] For example, the warp beam position adjustable wire mesh braiding machine provided by at least one embodiment of the present disclosure further comprises:

[0022] The bracket is arranged on the rack in lifting and sliding mode, and is located below the warp beam and has a third screw hole;

[0023] The third screw rod is arranged on the rack in rotating mode and is threadedly connected with the third screw hole;

[0024] The third hand wheel is used for driving the third screw rod to rotate.

[0025] For example, the warp beam position adjustable wire mesh braiding machine provided by at least one embodiment of the present disclosure further comprises:

[0026] The second worm wheel is arranged on the third screw rod;

[0027] The second worm rod is arranged on the rack in rotating mode and is engaged with the second worm wheel, and the third hand wheel is used for driving the second worm rod to rotate.

[0028] For example, at least one embodiment of this disclosure provides a wire mesh weaving machine with adjustable warp beam position, which further includes:

[0029] A third helical gear, wherein the third helical gear is disposed on the second worm;

[0030] A fourth helical gear meshes with the third helical gear, and the third handwheel is mounted on the fourth helical gear.

[0031] For example, at least one embodiment of this disclosure provides a wire mesh weaving machine with an adjustable warp beam position, wherein the warp beam includes:

[0032] A sliding part, which is slidably disposed on the frame;

[0033] Side plate, the side plate being disposed on the sliding part;

[0034] The main shaft is rotatably mounted on the side plate, and the tapered groove is formed on the main shaft.

[0035] For example, at least one embodiment of this disclosure provides a wire mesh weaving machine with adjustable warp beam position, which further includes:

[0036] A guide shaft is disposed on the frame and located above the warp shaft.

[0037] The beneficial effects of the embodiments disclosed herein are as follows:

[0038] This disclosure significantly improves the regularity and stability of the warp threads during the warp feeding process, optimizing the weaving quality of the wire mesh. The warp threads are wound within the tapered groove of the warp beam, and the warp thread position is adjusted by rotating the first screw to drive the warp beam to slide. Through the special structure and adjustable design of the warp beam, the warp feeding performance of the wire mesh weaving machine is improved, thereby increasing product quality and production efficiency. Attached Figure Description

[0039] To more clearly illustrate the technical solutions in the embodiments of this disclosure, the accompanying drawings used in the description of the embodiments of this disclosure will be briefly introduced below. Obviously, the drawings described below are merely some exemplary embodiments of this disclosure. For those skilled in the art, other drawings can be obtained based on the content of the exemplary embodiments of this disclosure and these drawings without any creative effort.

[0040] Figure 1 This is a schematic diagram of the structure of a metal wire mesh weaving machine from one perspective in one embodiment of the present disclosure;

[0041] Figure 2 for Figure 1 A magnified schematic diagram of part A in the middle;

[0042] Figure 3 For Figure 1 Local enlarged structure diagram of B in the embodiment;

[0043] Figure 4 For Figure 1 Another perspective structure diagram of the wire mesh braider in the embodiment of

[0044] Figure 5 For Figure 4 Local enlarged structure diagram of C in the embodiment;

[0045] Figure 6 For Figure 1 Top view structure diagram of the wire mesh braider in the embodiment of

[0046] Figure 7 For Figure 6 D-D section view structure diagram in the embodiment;

[0047] In the figure: rack-1, warp beam-2, conical groove-201, first screw hole-202, sliding part-203, side plate-204, main shaft-205, first screw-3, first worm wheel-4, first worm-5, first hand wheel-6, first helical gear-7, second helical gear-8, disassembly guide part-9, second screw hole-901, elastic member-10, second screw-11, second hand wheel-12, bracket-13, third screw hole-1301, third screw-14, third hand wheel-15, second worm wheel-16, second worm-17, third helical gear-18, fourth helical gear-19, guide shaft-20. DETAILED DESCRIPTION

[0048] The present disclosure will be further described below in conjunction with the drawings and embodiments. It can be understood that the specific embodiments described herein are only used to explain the present disclosure, but not to limit the present disclosure.

[0049] In order to make the drawing simple, only the parts related to the disclosure are shown in each drawing, which does not represent the actual structure of the product. In addition, in order to make the drawing simple and easy to understand, in some drawings, only one of the parts with the same structure or function is shown, or only one of them is marked. In this paper, "one" not only means "only one", but also means "more than one", and "several" includes "two" and "more than two".

[0050] In this document, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connecting" should be understood in a broad sense, for example, can be fixed connection, can also be detachable connection, or integrally connected; can be mechanical connection, can also be electrical connection; can be directly connected, can also be indirectly connected through an intermediate medium, can be internal communication of two elements. For those skilled in the art, the specific meaning of the above terms in the present disclosure can be understood according to the specific circumstances.

[0051] In the present disclosure, unless otherwise explicitly specified and limited, the first feature "on" or "under" the second feature can include that the first and second features are in direct contact, or that the first and second features are not in direct contact but are in contact through another feature between them. Moreover, the first feature "on", "above" and "above" the second feature includes that the first feature is directly above and obliquely above the second feature, or only indicates that the first feature is higher in horizontal height than the second feature. The first feature "under", "below" and "below" the second feature includes that the first feature is directly below and obliquely below the second feature, or only indicates that the first feature is lower in horizontal height than the second feature.

[0052] In the description of the present embodiment, the terms "up", "down", "left", "right" and other orientation or position relationships are based on the orientation or position relationships shown in the drawings, and are only for the convenience of description and simplification of operation, 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, and therefore cannot be understood as a limitation on the present disclosure.

[0053] In addition, in the description of the present application, the terms "first", "second" and the like are only used to distinguish the description and cannot be understood as indicating or implying relative importance.

[0054] As Figures 1-7 shown, it shows a warp position adjustable wire screen weaving machine in an embodiment of the present disclosure, which comprises a rack 1, the outer wall of a warp beam 2 has a plurality of taper grooves 201 arranged in sequence, the taper grooves 201 are used to accommodate the wound warp, the axial direction of the taper grooves 201 is coaxial with the warp beam 2, the warp beam 2 is slidingly arranged on the rack 1, and the sliding direction is along the axial direction of the warp beam 2, the warp beam 2 also has a first screw hole 202; a first screw rod 3 is rotationally arranged on the rack 1 and is threadedly connected with the first screw hole 202.

[0055] In the warp position adjustable wire mesh braider: first is the frame 1, as the support structure of the whole device. The outer wall of the warp beam 2 has a plurality of sequentially arranged tapered grooves 201, which are used to neatly accommodate the wound warp. Since the axis of the tapered groove 201 is coaxial with the warp beam 2, the warp can be better kept in order when it is wound in the tapered groove 201. The warp beam 2 can slide along its own axis on the frame 1, and the position and tension of the warp can be adjusted by sliding. The first screw hole 202 is also provided on the warp beam 2. The first screw rod 3 is rotatably mounted on the frame 1 and is threadedly connected with the first screw hole 202 of the warp beam 2.

[0056] In actual work, for example, when the warp is sent to a small amount, the warp beam 2 will slide along the axis by rotating the first screw rod 3 due to the threaded transmission. In this way, the position of the warp can be adjusted, so that the warp can always maintain a good degree of order, thereby ensuring the smooth progress of the braiding work.

[0057] The advantages of this design are: first, the design of the tapered groove 201 can better fix and arrange the warp, reducing the chaos of the warp. Second, the slidable adjustment function of the warp beam 2 can timely deal with the problems caused by the change of the warp amount, improving the braiding quality and efficiency.

[0058] For example, during a long braiding process, even if the warp gradually decreases, the order of the warp can be maintained by adjusting the position of the warp beam 2, ensuring the stable quality of the mesh braiding.

[0059] In terms of technical effects, the order and stability of the warp during the warp feeding process are significantly improved, and the braiding quality of the wire mesh is optimized. Overall working principle: the warp is wound in the tapered groove 201 of the warp beam 2, and the position of the warp is adjusted by rotating the first screw rod 3 to drive the warp beam 2 to slide. Overall technical effect: through the special structure and adjustable design of the warp beam 2, the warp feeding performance of the wire mesh braider is improved, and the product quality and production efficiency are improved.

[0060] In some examples, a first worm gear 4 is also included, which is arranged on the first screw rod 3; a first worm 5 is rotatably arranged on the frame 1 and is in meshing engagement with the first worm gear 4; and a first hand wheel 6 is used to drive the first worm 5 to rotate.

[0061] In the wire mesh braider: the first worm gear 4 is mounted on the first screw rod 3, the first worm 5 is rotatably arranged on the frame 1 and is in meshing engagement with the first worm gear 4. The first hand wheel 6 is used to drive the first worm 5 to rotate. In actual operation, for example, when it is necessary to adjust the position of the warp beam 2, the operator rotates the first hand wheel 6 to drive the first worm 5 to rotate. Due to the meshing relationship between the first worm 5 and the first worm gear 4, the first worm gear 4 is rotated, thereby driving the first screw rod 3 to rotate.

[0062] The advantages of this design are: first, through the transmission of the worm gear, a larger transmission ratio can be achieved, making it easier and more accurate for the operator to adjust the rotation of the first screw rod 3, thereby more accurately controlling the position of the warp beam 2. Second, using the self-locking property of the worm gear, after adjusting the position of the warp beam 2, the first screw rod 3 can be effectively prevented from reversing, ensuring the stability of the position of the warp beam 2.

[0063] For example, in the case of high weaving precision requirements, this fine adjustment mechanism can meet the demand for precise adjustment of the tension and position of the warp.

[0064] In terms of technical effects, the accuracy and stability of the position adjustment of the warp beam 2 are significantly improved, which helps to improve the weaving quality of the metal wire mesh. Overall working principle: The operator turns the first hand wheel 6 to drive the first worm 5 to rotate the first worm gear 4, thereby rotating the first screw rod 3 and adjusting the position of the warp beam 2. Overall technical effect: By introducing the transmission structure of the first worm gear 4, the first worm 5 and the first hand wheel 6, the operation convenience and precision control of the position adjustment of the warp beam 2 are optimized, and the performance and adaptability of the weaving machine are enhanced.

[0065] In some examples, a first bevel gear 7 is also included, which is arranged on the first worm 5; a second bevel gear 8 is engaged with the first bevel gear 7, and the first hand wheel 6 is arranged on the second bevel gear 8.

[0066] In the metal wire mesh weaving machine, the first bevel gear 7 is installed on the first worm 5, the second bevel gear 8 is engaged with the first bevel gear 7, and the first hand wheel 6 is installed on the second bevel gear 8. In actual use, for example, when the position of the warp beam 2 needs to be adjusted, the operator turns the first hand wheel 6 to drive the second bevel gear 8 to rotate. Due to the engagement relationship between the second bevel gear 8 and the first bevel gear 7, the first bevel gear 7 rotates in turn, thereby driving the first worm 5 to rotate. The first worm 5 drives the first screw rod 3 to rotate through the engagement with the first worm gear 4, thereby adjusting the position of the warp beam 2.

[0067] The advantages of this design are: first, through the transmission of the bevel gear, the transmission direction can be changed, making it easier for the operator to operate at a more convenient position and angle. Second, the bevel gear transmission has high carrying capacity and transmission efficiency, which can ensure the stability and reliability of the transmission.

[0068] For example, in the case of limited space or restricted operating position, by changing the transmission direction, the operation components can be more reasonably arranged, improving the comfort and convenience of operation.

[0069] Technical effect: further optimize the convenience of operation and the reliability of transmission, provide a stronger guarantee for accurate adjustment of the position of the warp beam 2. Overall working principle: the operator rotates the first hand wheel 6, which in turn drives the second bevel gear 8, the first bevel gear 7, the first worm 5, the first worm gear 4 and the first screw 3 to rotate, finally realizing the position adjustment of the warp beam 2. Overall technical effect: by introducing the first bevel gear 7 and the second bevel gear 8, the transmission structure of the warp beam 2 position adjustment is improved, and the flexibility of operation and the overall performance of the equipment are improved.

[0070] In some examples, a dismounting guide 9 is also included, which is slidingly arranged on the rack 1 and slides in the axial direction of the warp beam 2, and after sliding, it is in abutment or out of abutment with the warp beam 2; the elastic member 10 acts on one end of the rack 1 and the other end of the dismounting guide 9, providing a force for the dismounting guide 9 to abut against the warp beam 2.

[0071] In the present wire mesh braider: the dismounting guide 9 can slide on the rack 1 in the axial direction of the warp beam 2. In the normal working state, the dismounting guide 9 is in abutment with the warp beam 2 under the action of the elastic member 10. When it is necessary to dismount or replace the warp beam 2, the dismounting guide 9 is slid to make it out of abutment with the warp beam 2, providing convenience for the dismounting operation of the warp beam 2. One end of the elastic member 10 is connected to the rack 1, and the other end is connected to the dismounting guide 9, always providing a force for the dismounting guide 9 to abut against the warp beam 2.

[0072] In actual work, for example, during equipment operation, the dismounting guide 9 maintains contact with the warp beam 2 under the thrust of the elastic member 10, providing certain guidance and support for the warp beam 2, which helps the warp beam 2 to run stably.

[0073] When it is necessary to maintain or replace the warp beam 2, the operator overcomes the elastic force of the elastic member 10 and slides the dismounting guide 9 to a suitable position so that it is no longer in contact with the warp beam 2, thereby smoothly dismounting the warp beam 2 from the rack 1.

[0074] The advantages of this design are: first, the cooperation of the dismounting guide 9 and the elastic member 10 can enhance the stability and working accuracy of the warp beam 2 during equipment operation. Second, when it is necessary to dismount the warp beam 2, the dismounting operation can be quickly and conveniently realized, improving the maintenance efficiency of the equipment.

[0075] For example, in long-term continuous production, the stability of the warp beam 2 can be effectively ensured, and the weaving quality problems caused by the shaking or deviation of the warp beam 2 can be reduced. At the same time, during equipment maintenance, the time and labor cost for dismounting the warp beam 2 can be saved.

[0076] The technical effect is that the stability of the device operation and the convenience of the maintenance are significantly improved. The overall working principle is that, in normal operation, the elastic member 10 pushes the disassembly guide part 9 to abut against the warp beam 2 to provide guidance and support; in disassembly, the sliding disassembly guide part 9 overcomes the force of the elastic member 10 to realize the disassembly of the warp beam 2. The overall technical effect is that, by arranging the disassembly guide part 9 and the elastic member 10, the working stability and disassemblability of the warp beam 2 are optimized, and the comprehensive performance of the braiding machine is improved.

[0077] In some examples, the disassembly guide part 9 has a second threaded hole 901, and further comprises a second screw rod 11, which is rotationally arranged on the rack 1 and is in threaded connection with the second threaded hole 901; a second hand wheel 12 is arranged on the second screw rod 11.

[0078] In the metal wire braiding machine, the disassembly guide part 9 has a second threaded hole 901. The second screw rod 11 is rotationally arranged on the rack 1 and is in threaded connection with the second threaded hole 901. The second hand wheel 12 is mounted on the second screw rod 11.

[0079] In actual operation, for example, when the disassembly guide part 9 needs to be slid, the operator rotates the second hand wheel 12 to drive the second screw rod 11 to rotate. Due to the threaded connection between the second screw rod 11 and the second threaded hole 901, the disassembly guide part 9 slides along the rack 1 in the specified direction.

[0080] The advantages of this design are: first, through the threaded transmission of the screw rod and the threaded hole, accurate linear motion control can be realized to ensure the accurate and reliable sliding position of the disassembly guide part 9. Second, the operator controls by rotating the second hand wheel 12, which is simple and labor-saving, and the position of the disassembly guide part 9 can be stopped and adjusted at any time as needed.

[0081] For example, in the case of high accuracy requirement for the position of the disassembly guide part 9, this design can meet the requirement, and also facilitates the operator to operate flexibly in different working scenarios.

[0082] The technical effect is that the accuracy and convenience of the sliding control of the disassembly guide part 9 are significantly improved. The overall working principle is that the operator rotates the second hand wheel 12 to drive the second screw rod 11 to rotate, so that the disassembly guide part 9 slides along the rack 1 through threaded transmission. The overall technical effect is that, by arranging the second screw rod 11 and the second hand wheel 12, the sliding control mechanism of the disassembly guide part 9 is improved, and the operation performance and adaptability of the device are improved.

[0083] In some examples, the bracket 13 is further included, which is slidably raised and lowered on the frame 1 and located below the warp beam 2, and has a third screw hole 1301; the third screw rod 14 is rotatably arranged on the frame 1 and threadedly connected with the third screw hole 1301; and the third hand wheel 15 is used to drive the third screw rod 14 to rotate.

[0084] In the metal wire mesh braiding machine, the bracket 13 is slidably raised and lowered on the frame 1 and located below the warp beam 2, and has a third screw hole 1301; the third screw rod 14 is rotatably arranged on the frame 1 and threadedly connected with the third screw hole 1301 of the bracket 13; and the third hand wheel 15 is used to drive the third screw rod 14 to rotate.

[0085] In actual operation, for example, when the height of the bracket 13 needs to be adjusted, the operator rotates the third hand wheel 15 to drive the third screw rod 14 to rotate. Due to the threaded transmission, the bracket 13 is raised or lowered along the frame 1.

[0086] The design has the advantages that: first, the height of the bracket 13 can be flexibly adjusted according to the actual working condition of the warp beam 2 to provide better support and assistance for the warp beam 2; and second, the hand wheel drives the screw rod, which is simple and intuitive to operate and can achieve precise height adjustment.

[0087] For example, when different specifications of the warp beam 2 are replaced, the height of the bracket 13 can be adjusted to support the warp beam 2 and complete the replacement of the warp beam 2, thereby improving the versatility and applicability of the equipment.

[0088] In terms of technical effects, the flexibility and accuracy of the height adjustment of the bracket 13 are significantly improved, which helps to optimize the working performance of the equipment. The overall working principle is that the operator rotates the third hand wheel 15 to drive the third screw rod 14 to rotate, thereby causing the bracket 13 to be raised and lowered on the frame 1 through threaded transmission. The overall technical effect is that the bracket 13, the third screw rod 14 and the third hand wheel 15 cooperate to effectively adjust the height of the bracket 13, thereby enhancing the adaptability and stability of the equipment.

[0089] In some examples, the second worm gear 16 is further included, which is arranged on the third screw rod 14; the second worm 17 is rotatably arranged on the frame 1 and engaged with the second worm gear 16; and the third hand wheel 15 is used to drive the second worm 17 to rotate.

[0090] In the metal wire mesh braiding machine, the second worm gear 16 is installed on the third screw rod 14, the second worm 17 is rotatably arranged on the frame 1 and engaged with the second worm gear 16, and the third hand wheel 15 is used to drive the second worm 17 to rotate.

[0091] In actual operation, for example, when the height of the bracket 13 needs to be adjusted, the operator rotates the third hand wheel 15 to drive the second worm 17 to rotate. Due to the meshing of the second worm 17 and the second worm gear 16, the second worm gear 16 rotates, thereby driving the third screw 14 to rotate.

[0092] The advantages of this design are: first, through the transmission of the worm gear, a larger transmission ratio can be achieved, making it easier and more accurate for the operator to adjust the rotation of the third screw 14, thereby more accurately controlling the lifting height of the bracket 13. Second, using the self-locking feature of the worm gear, after adjusting the height of the bracket 13, it can effectively prevent accidental rotation of the third screw 14, ensuring the stability of the height of the bracket 13.

[0093] For example, in the case of high precision requirements for the height of the bracket 13, this transmission method can meet the demand, ensuring the stable support of the bracket 13 to the warp beam 2 during weaving.

[0094] In terms of technical effects, the accuracy and stability of the height adjustment of the bracket 13 are significantly improved, which helps to improve the working quality of the braiding machine. Overall working principle: the operator rotates the third hand wheel 15 to drive the second worm 17 to rotate the second worm gear 16, thereby rotating the third screw 14 to adjust the height of the bracket 13. Overall technical effect: by introducing the second worm gear 16 and the second worm 17, the transmission structure of the height adjustment of the bracket 13 is optimized, improving the performance and reliability of the equipment.

[0095] In some examples, a third bevel gear 18 is also included, which is arranged on the second worm 17; a fourth bevel gear 19 is engaged with the third bevel gear 18, and the third hand wheel 15 is arranged on the fourth bevel gear 19.

[0096] In the present metal wire mesh braiding machine: the third bevel gear 18 is installed on the second worm 17, the fourth bevel gear 19 is engaged with the third bevel gear 18, and the third hand wheel 15 is arranged on the fourth bevel gear 19.

[0097] In actual use, for example, the operator rotates the third hand wheel 15 to drive the fourth bevel gear 19 to rotate. Due to the meshing relationship between the fourth bevel gear 19 and the third bevel gear 18, the third bevel gear 18 rotates, thereby driving the second worm 17 to rotate.

[0098] The advantages of this design are: first, through the transmission of the bevel gear, the transmission direction can be changed, making it more convenient and reasonable for the operator to operate, improving the comfort and convenience of operation. Second, the bevel gear transmission has high carrying capacity and transmission efficiency, which can ensure the stability and reliability of the transmission.

[0099] For example, when the space layout is limited or to adapt to the operation habits of the operator, the transmission direction can be changed through the bevel gear to better meet the actual needs.

[0100] In terms of technical effects, the convenience of operation and the reliability of transmission are further optimized, providing a more powerful guarantee for accurately adjusting the height of the bracket 13. Overall working principle: the operator rotates the third hand wheel 15, which in turn drives the fourth bevel gear 19, the third bevel gear 18, the second worm 17, the second worm gear 16 and the third screw 14 to rotate, finally realizing the height adjustment of the bracket 13. Overall technical effect: by introducing the third bevel gear 18 and the fourth bevel gear 19, the transmission structure of the bracket 13 height adjustment is improved, and the flexibility of operation and the overall performance of the equipment are improved.

[0101] In some examples, the warp beam 2 includes a sliding part 203 slidingly arranged on the rack 1, a side plate 204 arranged on the sliding part 203, and a main shaft 205 rotatably arranged on the side plate 204, and the tapered groove 201 is formed on the main shaft 205.

[0102] In the present wire mesh braiding machine, the warp beam 2 is composed of the sliding part 203, the side plate 204 and the main shaft 205.

[0103] The sliding part 203 can slide on the rack 1 to adjust the position of the warp beam 2 as a whole. The side plate 204 is installed on the sliding part 203 to support and connect. The main shaft 205 is rotatably arranged on the side plate 204 for winding the warp, and the tapered groove 201 is formed on the main shaft 205.

[0104] In actual work, for example, when the tension or position of the warp needs to be adjusted, the position of the warp beam 2 is changed by sliding the sliding part 203 on the rack 1. The main shaft 205 rotates stably under the support of the side plate 204 to ensure the smooth delivery of the warp.

[0105] The advantages of this design are: first, the sliding part 203 makes the position adjustment of the warp beam 2 more flexible and accurate. Second, the cooperation of the side plate 204 and the main shaft 205 ensures the stability and reliability of the warp winding and delivery.

[0106] For example, when dealing with different braiding requirements and warp specifications, the position of the warp beam 2 and the rotation state of the main shaft 205 can be quickly and accurately adjusted to improve the braiding efficiency and quality.

[0107] Technical effect: significantly improves the adjustment performance and working stability of the warp beam 2. Overall working principle: adjust the position of the warp beam 2 by sliding the sliding part 203 on the rack 1, and the side plate 204 supports the main shaft 205 to rotate stably, realizing the orderly delivery of the warp. Overall technical effect: the structure design of the warp beam 2 optimizes the warp delivery function of the metal wire braiding machine, and improves the comprehensive performance and adaptability of the equipment.

[0108] In some examples, a guide shaft 20 is also included, which is arranged on the rack 1 and above the warp beam 2.

[0109] In the metal wire braiding machine, the guide shaft 20 is installed on the rack 1 and above the warp beam 2. During the actual braiding process, for example, after the warp is delivered from the warp beam 2, it will pass through the guide shaft 20 above. The guide shaft 20 can guide and constrain the warp, ensuring that the warp is delivered according to the predetermined path and direction, reducing the entanglement and confusion of the warp.

[0110] The advantages of this design are: first, it effectively regulates the delivery path of the warp, improving the orderliness and stability of the braiding process. Second, it reduces braiding failures and quality problems caused by chaotic warp routing.

[0111] For example, when braiding at high speed or processing complex braiding patterns, the guide shaft 20 can better ensure the accurate delivery of the warp, improving braiding efficiency and product quality.

[0112] Technical effect: significantly improves the accuracy and stability of warp delivery, optimizing the braiding effect. Overall working principle: after the warp is delivered from the warp beam 2, it continues to be delivered along the path specified by the guide shaft 20 to realize a stable and orderly braiding process. Overall technical effect: by setting the guide shaft 20, the warp delivery system of the metal wire braiding machine is further improved, enhancing the reliability of the equipment and the braiding quality.

[0113] It should be noted that the above examples are only used to illustrate the technical solutions of the present disclosure and are not limiting. Although the present disclosure has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present disclosure can be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present disclosure, which should be covered by the scope of the claims of the present disclosure.

Claims

1. A wire mesh braiding machine with adjustable beam position, characterized in that, Comprising: a rack (1); a warp beam (2), the outer wall of the warp beam (2) has a plurality of tapering grooves (201) arranged in sequence, the tapering grooves (201) are used to accommodate the wound warp, the axial direction of the tapering grooves (201) is coaxial with the warp beam (2), the warp beam (2) is slidingly arranged on the rack (1), and the sliding direction is along the axial direction of the warp beam (2), the warp beam (2) also has a first screw hole (202); a first screw rod (3), the first screw rod (3) is rotationally arranged on the rack (1) and is threadedly connected with the first screw hole (202).

2. A wire mesh braiding machine with adjustable beam position according to claim 1, characterized in that, Further comprising: a first worm wheel (4), the first worm wheel (4) is arranged on the first screw rod (3); a first worm (5), the first worm (5) is rotationally arranged on the rack (1) and is in meshing engagement with the first worm wheel (4); a first hand wheel (6), the first hand wheel (6) is used to drive the first worm (5) to rotate.

3. A wire mesh braiding machine with adjustable beam position according to claim 2, characterized in that Further comprising: a first helical gear (7), the first helical gear (7) is arranged on the first worm (5); a second helical gear (8), the second helical gear (8) is in meshing engagement with the first helical gear (7), and the first hand wheel (6) is arranged on the second helical gear (8).

4. A wire mesh braiding machine with adjustable beam position according to claim 1, characterized in that, Further comprising: a dismounting guide (9), the dismounting guide (9) is slidingly arranged on the rack (1) and the sliding direction is along the axial direction of the warp beam (2), and after sliding, the dismounting guide (9) is in abutment or out of abutment with the warp beam (2); a resilient member (10), one end of the resilient member (10) acts on the rack (1) and the other end acts on the dismounting guide (9), thereby providing a force for the dismounting guide (9) to abut against the warp beam (2).

5. A wire mesh braiding machine with adjustable beam position according to claim 4, characterized in that The dismounting guide (9) has a second screw hole (901), and further comprising: a second screw rod (11), the second screw rod (11) is rotationally arranged on the rack (1), and the second screw rod (11) is threadedly connected with the second screw hole (901); a second hand wheel (12), the second hand wheel (12) is arranged on the second screw rod (11).

6. A wire mesh braiding machine with adjustable beam position according to claim 5, characterized in that Further comprising: a bracket (13), the bracket (13) is liftingly and slidingly arranged on the rack (1) and is located below the warp beam (2), and has a third screw hole (1301); a third screw rod (14), the third screw rod (14) is rotationally arranged on the rack (1) and is threadedly connected with the third screw hole (1301); a third hand wheel (15), the third hand wheel (15) is used to drive the third screw rod (14) to rotate.

7. A wire mesh braiding machine with adjustable beam position according to claim 6, characterized in that Further comprising: a second worm wheel (16), the second worm wheel (16) is arranged on the third screw rod (14); a second worm (17), the second worm (17) is rotationally arranged on the rack (1) and is in meshing engagement with the second worm wheel (16), and the third hand wheel (15) drives the second worm (17) to rotate.

8. A wire mesh braiding machine with adjustable beam position according to claim 7, characterized in that Further comprising: a third helical gear (18), the third helical gear (18) is arranged on the second worm (17); A fourth bevel gear (19) is engaged with the third bevel gear (18), and the third hand wheel (15) is arranged on the fourth bevel gear (19).

9. A wire mesh braiding machine with adjustable beam position according to any of claims 1 to 8, characterized in that, The warp beam (2) comprises: A sliding part (203) is slidingly arranged on the frame (1); A side plate (204) is arranged on the sliding part (203); A main shaft (205) is rotatably arranged on the side plate (204), and the conical groove (201) is formed on the main shaft (205).

10. A wire mesh braiding machine with adjustable beam position according to any one of claims 1 to 8, characterized in that, Further comprising: A guide shaft (20) is arranged on the frame (1) and above the warp beam (2).