A wire mesh processing coiler

By designing the winding mechanism and separation components of the wire mesh processing roller, the problem of the wire mesh being difficult to disassemble was solved, enabling convenient disassembly and stable conveying of the wire mesh and improving processing efficiency.

CN224547561UActive Publication Date: 2026-07-24HEBEI YILPINA METAL PRODUCTS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HEBEI YILPINA METAL PRODUCTS CO LTD
Filing Date
2025-08-21
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

Existing wire mesh processing and rolling machines make it difficult to remove the rolled wire mesh from the drum after processing.

Method used

A wire mesh processing roll-up device is designed, comprising a rolling mechanism and a housing. The surface of the rotating drum is provided with a through groove for holding the front end of the wire mesh. It is equipped with a separation component including a bracket and a circular retaining ring. The smooth disassembly of the wire mesh is assisted by an arc-shaped groove and a sliding mechanism. Combined with a limiting mechanism and a transmission mechanism, smooth processing operation is ensured.

Benefits of technology

It enables convenient disassembly of the wire mesh after it is rolled up, avoids jamming during the conveying process, and improves processing efficiency and stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to metal wire net processing technical field, concretely is a kind of metal wire net processing coiler, including coiling mechanism and shell, coiling mechanism includes rotating drum, and the surface of rotating drum is horizontally provided with through slot, and one end of rotating drum passes through the bearing on shell and is connected with first motor shaft, and one connecting rod is horizontally fixed in rotating drum, and separating assembly including support and circular baffle ring is equipped on coiling mechanism, circular baffle ring is sleeved in both ends of rotating drum, and circular baffle ring bottom is vertically fixed on support, and first arc-shaped recess is equipped in horizontal direction in the connecting place of support upper end and circular baffle ring, and second arc-shaped recess is horizontally provided in the lower end of shell above rotating drum, and first arc-shaped recess and second arc-shaped recess correspond to each other, and pulley is fixed in the bottom of support, and through the setting of through slot and circular baffle ring, metal wire net is clamped in through slot during use, and after processing coiling, the metal wire net roll processed can be taken down through circular baffle ring, and it is convenient to disassemble after metal wire net coiling.
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Description

Technical Field

[0001] This utility model relates to the field of metal wire mesh processing technology, and in particular to a metal wire mesh rolling device. Background Technology

[0002] As is well known, wire mesh is a collective term for metal and wire mesh. It can be woven into meshes of different shapes, densities, and specifications as needed. Wire mesh is a traditional industrial product in my country, playing an important role in many fields such as scientific research, production, and daily life. Currently, wire mesh rolling machines are widely used in various metal processing plants. Rolling wire mesh helps reduce the space occupied by the mesh and also facilitates its preservation.

[0003] However, after processing, some wire mesh rollers make it difficult to remove the rolled wire mesh from the drum.

[0004] Therefore, this utility model provides a metal wire mesh processing and rolling device. Utility Model Content

[0005] To overcome the shortcomings of existing technologies and solve the problems mentioned in the background art, a metal wire mesh processing and rolling device is proposed.

[0006] The technical solution adopted by this utility model to solve its technical problem is as follows: a metal wire mesh processing and rolling device, including a rolling mechanism and a housing. The rolling mechanism includes a rotating drum for driving the metal wire mesh to roll. A through groove is horizontally opened on the surface of the rotating drum for holding the front end of the metal wire mesh. One end of the rotating drum passes through a bearing on the housing and is connected to a first motor shaft. The rotating drum is started by the first motor. A connecting rod is horizontally fixed in the rotating drum. The rolling mechanism is provided with a separation component. The separation component includes a bracket and a circular retaining ring. The circular retaining ring is sleeved on both ends of the rotating drum. The bottom of the circular retaining ring is vertically fixed on the bracket. The processed metal wire mesh can be separated from the rotating drum through the circular retaining ring. A first arc-shaped groove is horizontally provided at the connection between the upper end of the bracket and the circular retaining ring. A second arc-shaped groove is horizontally opened at the lower end of the housing above the rotating drum. The first arc-shaped groove and the second arc-shaped groove correspond vertically. The corresponding first arc-shaped groove and the second arc-shaped groove can assist the metal wire mesh to be processed into and disassembled more smoothly. A pulley is fixed at the bottom of the bracket to facilitate the disassembly of the metal wire mesh after it is rolled.

[0007] Preferably, a sliding mechanism is provided below the separation component. A second motor is fixed to one side of the bottom of the bracket. The output rod of the second motor is fixedly connected to a gear. A long platform is horizontally fixed at the lower end of the outer shell. A grooved track is provided in the middle of the long platform. Slots are symmetrically provided on the long platform on both sides of the grooved track. A pulley on one side of the lower end of the bracket is set in the grooved track. The grooved track can restrict the movement of the pulley. A rack is provided horizontally at the upper end of the slot. The gear meshes with the rack. The gear drives the bracket to move on the rack. A limit block is vertically fixed at one end of the rack at the upper end of the long platform. Bosses are provided on both sides of the lower end of the bracket. The bosses can form a sliding structure with the slots in the long platform. The limit blocks can limit the movement of the separation component.

[0008] Preferably, a limiting mechanism is provided at one end of the long platform. The limiting mechanism includes a limiting groove and a pin. A limiting groove is provided at the end of the slot, and a limiting hole is provided on the protrusion. The limiting hole and the limiting groove are positioned correspondingly and have the same diameter. The pin passes through the limiting hole and the limiting groove. This limiting mechanism can fix the separation component and the outer shell to prevent displacement when the winding machine is working, ensuring smooth operation of the winding process.

[0009] Preferably, a transmission mechanism is provided on one side of the winding mechanism. The transmission mechanism includes a main transmission cylinder, a driven transmission cylinder, and a conveyor belt. One end of the main transmission cylinder is fixedly connected to the output rod of a third motor. The third motor is fixed on the outer casing. The main transmission cylinder is started by turning on the third motor. The driven transmission cylinder is slightly higher than the main transmission cylinder. The conveyor belt wraps around and connects the main transmission cylinder and the driven transmission cylinder. Since the driven transmission cylinder is slightly higher than the main transmission cylinder, the metal wire mesh can be ensured to move normally on the conveyor belt under the action of gravity, avoiding abnormal phenomena such as jamming during the transmission process.

[0010] Preferably, a flattening roller is provided directly above the drive cylinder. The height between the flattening roller and the drive cylinder is the same as the thickness of the wire mesh. The flattening roller and the drive cylinder operate together to ensure the flatness of the wire mesh. One end of the flattening roller is connected to the output rod of the fourth motor. The fourth motor is horizontally fixed on the outer casing. The surface of the flattening roller is covered with a rubber anti-slip layer to ensure normal feeding of the wire mesh, increase transmission tension, and help the wire mesh to be smoother and more stable during transmission.

[0011] Preferably, the housing is equipped with a control console with operation buttons that can directly control the transmission speed and direction of the winding machine motor. This ensures versatility in use, facilitates the processing and winding of metal wire mesh, and allows for timely responses to emergencies.

[0012] The beneficial effects of this utility model are as follows: With the setting of through slots and circular retaining rings, the wire mesh is conveyed to the through slots and locked in place during use. After being processed into a roll, the processed wire mesh roll can be removed through the circular retaining rings, which facilitates the disassembly of the wire mesh after it has been rolled up.

[0013] The arrangement of slots, bosses, grooved tracks, pulleys, gears, and racks ensures that the bosses and slots, grooved tracks and pulleys, gears and racks cooperate with each other, thereby ensuring the movement of the separation components and limiting the size of the movement of the separation components according to the limit blocks. Attached Figure Description

[0014] The present invention will be further described below with reference to the accompanying drawings.

[0015] Figure 1 This is the front perspective view of this utility model; Figure 2 This is a partial view of the present invention; Figure 3 This is a partial structural schematic diagram of the present invention; Figure 4 This is a cross-sectional view of the limiting mechanism in this utility model; Figure 5 This is a side view, cross-sectional perspective view, and perspective view of this utility model; Figure 6 This is a side perspective view of the present invention; Legend: 1. Coiling mechanism; 2. Separation assembly; 3. Housing; 4. Sliding mechanism; 5. Limiting mechanism; 6. Transmission mechanism; 7. Control console; 11. Rotary drum; 12. Through groove; 13. First motor; 14. Connecting rod; 21. Bracket; 22. Circular retaining ring; 23. First arc-shaped groove; 24. Second arc-shaped groove; 25. Pulley; 41. Second motor; 42. Gear; 43. Rack; 44. Limiting block; 45. Boss; 46. Slot; 47. Groove track; 48. Long platform; 51. Limiting hole; 52. Limiting groove; 53. Pin; 61. Main transmission drum; 62. Third motor; 63. Slave transmission drum; 64. Conveyor belt; 65. Flattening roller; 66. Fourth motor; 67. Rubber anti-slip layer; 71. Control button. Detailed Implementation

[0016] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.

[0017] Specific implementation examples are given below.

[0018] like Figures 1 to 6As shown in the figure, a wire mesh processing and winding device according to an embodiment of the present invention includes a winding mechanism 1 and a housing 3. The winding mechanism 1 includes a rotating drum 11 for driving the wire mesh to be wound. A through groove 12 is horizontally opened on the surface of the rotating drum 11 for holding the front end of the wire mesh. One end of the rotating drum 11 passes through a bearing on the housing 3 and is connected to the shaft of a first motor 13. The first motor 13 starts the rotating drum to work. A connecting rod 14 is horizontally fixed in the rotating drum 11. The winding mechanism 1 is provided with a separation component 2. The separation component 2 includes a bracket 21 and a circular retaining ring 22. The circular retaining ring 22 is sleeved on both ends of the rotating drum 11. The bottom of the ring 22 is vertically fixed to the bracket 21. The processed wire mesh can be separated from the rotating drum 11 through the circular retaining ring 22. The upper end of the bracket 21 is provided with a first arc-shaped groove 23 in the horizontal direction at the connection between it and the circular retaining ring 22. The lower end of the outer shell 3 above the rotating drum 11 is provided with a second arc-shaped groove 24 in the horizontal direction. The first arc-shaped groove 23 and the second arc-shaped groove 24 correspond vertically. The corresponding first arc-shaped groove 23 and the second arc-shaped groove 24 can help the wire mesh to be processed into rolls more smoothly. The bottom of the bracket 21 is fixed with a pulley 25 to facilitate the disassembly of the wire mesh after it is rolled up. A sliding mechanism 4 is provided below the separation component 2.A second motor 41 is fixed to one side of the bottom of the bracket 21. The output rod of the second motor 41 is fixedly connected to the gear 42. A long platform 48 is horizontally fixed at the lower end of the outer shell 3. A grooved track 47 is provided in the middle of the long platform 48. Slots 46 are symmetrically provided on the long platforms 48 on both sides of the grooved track 47. A pulley 25 on one side of the lower end of the bracket 21 is set in the grooved track 47, which can restrict the movement of the pulley 25. A rack 43 is provided horizontally at the upper end of the long platform 48. The gear 42 meshes with the rack 43, and the gear 42 drives the bracket 21 to move on the rack 43. A limit block 44 is vertically fixed at one end of the rack 43 at the upper end of the slot 46. The lower end of component 21 has protrusions 45 on both sides. These protrusions 45 can form a sliding structure with the slots 46 in the long platform 48. A limiting block 44 restricts the movement of the separating component 2. A limiting mechanism 5 is provided on one side of the long platform 48. The limiting mechanism 5 includes a limiting groove 52 and a pin 53. A limiting groove 52 is provided at the end of the slot 46. A limiting hole 51 is provided on the protrusion 45. The limiting hole 51 corresponds to the limiting groove 52 and has the same diameter. The pin 53 passes through the limiting hole 51 and the limiting groove 52. This limiting mechanism 5 can fix the separating component 2 and the outer shell 3 to prevent displacement during the winding process, ensuring smooth winding operation. A transmission mechanism 6 is provided on one side of the winding mechanism 1. The transmission mechanism 6 includes a main transmission cylinder 61, a driven transmission cylinder 63, and a conveyor belt 64. One end of the main transmission cylinder 61 is fixedly connected to the output rod of a third motor 62, which is fixed to the outer casing. Turning on the third motor 62 starts the movement of the main transmission cylinder 61. The driven transmission cylinder 63 is slightly higher than the main transmission cylinder 61. The conveyor belt 64 wraps around and connects the main transmission cylinder 61 and the driven transmission cylinder 63. Because the driven transmission cylinder 63 is slightly higher than the main transmission cylinder 61, gravity ensures the normal movement of the wire mesh on the conveyor belt, preventing jamming or other abnormalities during transmission. A flattening roller 65 is located directly above the driven transmission cylinder 63, and the height between the flattening roller 65 and the driven transmission cylinder 63 is equal to that of the main transmission cylinder 61. The wire mesh has a uniform thickness. The flattening roller 65 and the drive cylinder 63 operate together to ensure the flatness of the wire mesh. One end of the flattening roller 65 is connected to the output rod of the fourth motor 66, which is horizontally fixed to the outer casing. The surface of the flattening roller 65 is covered with a rubber anti-slip layer 67 to ensure normal feeding of the wire mesh, increase transmission tension, and help the wire mesh to be smoother and more stable during transmission. The outer casing is equipped with a control console 7, which has operation buttons 71. The operation buttons 71 can directly control the transmission speed and direction of the winding machine motor, ensuring versatility in use, facilitating wire mesh processing and winding, and ensuring timely response to emergencies.

[0019] Working principle: During use, the wire mesh is placed between the driven cylinder 63 and the flattening roller 65. The fourth motor 66 and the third motor 62 are activated via the control button 71 on the control panel 7, starting the flattening roller 65 and the main driven cylinder 61. The main driven cylinder 61 drives the conveyor belt 64, moving together with the driven cylinder 63. The wire mesh is conveyed forward via the conveyor belt 64, and the front end of the wire mesh is inserted into the through groove 12 of the rotating drum 11. The first motor 13 is activated again via the control button 71 on the control panel 7, starting the rotating drum 11. The wire mesh moves along the first arc-shaped groove 23, passes through the second arc-shaped groove 24, and is rolled up around the rotating drum 11. After processing, the first motor 13 and the third motor 62 are turned off via the control panel 7, and the wire mesh is then bound. After the wire mesh roll is finished, pull out the pin 53 of the fixing limit groove 52 and the limiting hole 51. Turn on the second motor 41 through the operation button 71 on the control panel 7. The gear 42 rotates clockwise on the rack 43, which drives the bracket 21 fixed to the gear 42 to move. The pulley 25 fixed on the bracket 21 assists in the movement. The circular retaining ring 22 fixed on the bracket 21 moves together. When the gear 42 rotates to the rack 43, it will be stopped by the limiting block 44. The circular retaining ring 22 pushes the wire mesh away from the rotating drum 11 and falls onto the first arc-shaped groove 23. After the wire mesh roll is removed, start the second motor 41 through the control panel 7. The gear 42 rotates counterclockwise on the rack 43, which drives the bracket 21 to reset. After inserting the pin 53, the machine returns to normal.

[0020] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A wire mesh processing coiler, comprising a coiling mechanism (1) and a housing (3), characterized in that, The winding mechanism (1) includes a rotating drum (11), and a through groove (12) is horizontally opened on the surface of the rotating drum (11). One end of the rotating drum (11) passes through the bearing on the outer shell (3) and is connected to the shaft of the first motor (13). A connecting rod (14) is horizontally fixed in the rotating drum (11). The winding mechanism (1) is provided with a separation component (2). The separation component (2) includes a bracket (21) and a circular retaining ring (22). The circular retaining ring (22) is sleeved on both ends of the rotating drum (11). The bottom of the circular retaining ring (22) is vertically fixed on the bracket (21). The upper end of the bracket (21) is connected to the circular retaining ring (22) in the horizontal direction, and the lower end of the outer shell (3) above the rotating drum (11) is horizontally opened with a second arc-shaped groove (24). The first arc-shaped groove (23) and the second arc-shaped groove (24) correspond vertically. A pulley (25) is fixed at the bottom of the bracket (21).

2. The wire mesh forming machine according to claim 1, characterized in that, The separation component (2) is provided with a sliding mechanism (4) below it. A second motor (41) is fixed on one side of the bottom of the bracket (21). The output rod of the second motor (41) is fixedly connected to the gear (42). A long platform (48) is fixed horizontally at the lower end of the outer shell (3). A grooved track (47) is provided in the middle of the long platform (48). Slots (46) are symmetrically provided on the long platform (48) on both sides of the grooved track (47). A pulley (25) on one side of the lower end of the bracket (21) is set in the grooved track (47). A rack (43) is provided horizontally at the upper end of the long platform (48). The gear (42) meshes with the rack (43). A limit block (44) is vertically fixed at one end of the rack (43) at the upper end of the slot (46). A boss (45) is provided on both sides of the lower end of the bracket (21). The boss (45) can form a sliding structure with the slot (46) in the long platform (48).

3. A wire mesh processing and rolling device according to claim 2, characterized in that, The long platform (48) is provided with a limiting mechanism (5) at one end. The limiting mechanism (5) includes a limiting groove (52) and a pin (53). The end of the slot (46) is provided with a limiting groove (52). The boss (45) is provided with a limiting hole (51). The limiting hole (51) and the limiting groove (52) are positioned correspondingly and have the same diameter. The pin (53) passes through the limiting hole (51) and the limiting groove (52).

4. A wire mesh processing and rolling device according to claim 3, characterized in that, The winding mechanism (1) is provided with a transmission mechanism (6) on one side. The transmission mechanism (6) includes a main transmission cylinder (61), a driven cylinder (63) and a conveyor belt (64). One end of the main transmission cylinder (61) is fixedly connected to the output rod of the third motor (62). The third motor (62) is fixed on the outer shell (3). The driven cylinder (63) is slightly higher than the main transmission cylinder (61). The conveyor belt (64) wraps around and connects the main transmission cylinder (61) and the driven cylinder (63).

5. A wire mesh forming machine according to claim 4, characterized in that, A flattening roller (65) is provided directly above the drive cylinder (63). The height between the flattening roller (65) and the drive cylinder (63) is the same as the thickness of the metal wire mesh. One end of the flattening roller (65) is connected to the output rod of the fourth motor (66). The fourth motor (66) is horizontally fixed on the outer shell (3). The surface of the flattening roller (65) is covered with a rubber anti-slip layer (67).

6. A wire mesh forming machine according to claim 5, characterized in that, The outer casing (3) is equipped with a control console (7) with operation buttons (71).