Automatic stainless steel wire drawing equipment

By introducing transmission and guide structures into the stainless steel wire drawing equipment and using the blank limit plate and push plate to automatically adjust the steel position, the problem of manual adjustment during the conveyor belt loading process is solved, the automatic loading of stainless steel wire drawing is realized, and manpower consumption is reduced.

CN223353881UActive Publication Date: 2025-09-19SHIBO (JIANGSU) INTELLIGENT MFG CO LTD
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Patent Information

Application Number
CN202422225934.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-11
Publication Date
2025-09-19
Estimated Expiration
2034-09-11

AI Technical Summary

Technical Problem

In the existing stainless steel wire drawing process, the conveyor belt requires the operator to adjust the position of the steel blank at any time to prevent displacement, resulting in insufficient automation and high manpower consumption.

Method used

Automated stainless steel wire drawing equipment is used, including a transmission box, a load-bearing frame, a control panel, a transmission structure, a guide structure and a feeding structure. The blank limit plate and the telescopic sleeve are used to correct the position of the steel material. The push plate is combined to automatically push the steel material for wire drawing, thereby realizing automatic loading.

Benefits of technology

It effectively prevents steel from shifting during movement, reduces human intervention, improves the automation level of the loading process, and reduces manpower consumption.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses automatic stainless steel wire drawing equipment, which relates to the technical field of stainless steel wire drawing and comprises a transmission case and a bearing frame, the bearing frame is mounted on the upper wall surface of the transmission case, two feeding ports are formed in the bearing frame, a control panel is mounted on the bearing frame, a transmission structure is connected to the transmission case, and the transmission structure is connected to the transmission case. The outer wall face of the transmission structure is sleeved with a guide structure, and a feeding structure is installed on the upper wall face of the transmission structure. The wire drawing machine has the advantages that when a control system of the push plate detects that the steel conveying frame moves to a set position through a control panel, the push plate penetrates through the guide limiting groove along the feeding frame to push a steel blank to the guide table for wire drawing, after wire drawing is finished, an operator takes down the steel blank on the guide table after wire drawing is finished, the push plate is reset, and the steel blank is pushed to the set position. The problems that automation of feeding through a conveying belt is insufficient, and manpower consumption is large are solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of stainless steel wire drawing, in particular to an automated stainless steel wire drawing device. Background Art

[0002] Surface brushing is a surface treatment method that forms lines on the surface of the workpiece by grinding the product to achieve a decorative effect. Since surface brushing can reflect the texture of the metal material, it has been loved by more and more users and is being used more and more widely.

[0003] The existing stainless steel wire drawing process is loaded via a conveyor belt, which requires an operator to adjust the position of the steel blank at any time to prevent the steel blank from shifting during movement, which would affect the loading process. Loading via a conveyor belt is not sufficiently automated and consumes a lot of manpower. Utility Model Content

[0004] The technical problem to be solved by the utility model is that the existing stainless steel wire drawing is loaded through a conveyor belt, which requires an operator to adjust the position of the steel blank at any time to prevent the steel blank from being displaced during movement, thereby affecting the loading process. The loading through the conveyor belt is not sufficiently automated and consumes a lot of manpower.

[0005] In order to solve the above technical problems, the technical solution of the present invention is an automated stainless steel wire drawing equipment, including a transmission box and a load-bearing frame, the load-bearing frame is installed on the upper wall of the transmission box, the load-bearing frame is provided with two feeding ports, the load-bearing frame is installed with a control panel, the transmission box is connected with a transmission structure, the outer wall of the transmission structure is provided with a guide structure, and the upper wall of the transmission structure is provided with a feeding structure; as a further solution of the present invention: the transmission structure includes: a transmission support frame, a threaded rod, two transmission guide rods and a steel material conveying frame; the transmission support frame is installed on the upper wall of the transmission box, the threaded rod is connected to the transmission box through the transmission support frame, and the two transmission guide rods They are respectively connected to the transmission box through a transmission support frame, and the steel material conveying frame is sleeved on the outer wall of the threaded rod and the two transmission guide rods; as a further solution of the utility model: the guide structure includes: a guide fixing frame, a plurality of telescopic rods, a plurality of telescopic sleeves, a plurality of return springs, two blank limiting plates and a guide limiting groove; the guide fixing frame is installed on the inner wall surface of the load-bearing frame, a plurality of the telescopic rods are respectively installed on the inner wall surface of the guide fixing frame, a plurality of the telescopic sleeves are respectively sleeved on the outer wall surfaces of the plurality of telescopic rods, a plurality of the return springs are respectively sleeved on the outer wall surfaces of the plurality of telescopic rods, the two blank limiting plates are respectively installed on the inner wall surfaces of the plurality of telescopic sleeves, and the guide limiting groove is opened on the upper end surface of the guide fixing frame.

[0006] As a further solution of the present invention: the feeding structure includes: a feeding rack, a push plate and a guide platform; the feeding rack is installed on the upper wall of the transmission support frame, the push plate is connected to the wire drawing pushing system and is installed on the inner wall of the feeding rack, and the guide platform is installed on the front wall of the guide fixing frame.

[0007] As a further solution of the present invention: the outer wall surfaces of the two transmission guide rods are respectively sleeved with buffer springs.

[0008] As a further solution of the present invention: a plurality of steel blanks are installed on the upper wall of the steel material conveying rack.

[0009] As a further solution of the present invention: the lower wall surfaces of the two blank limiting plates are respectively provided with an inclination angle.

[0010] The utility model adopts the above technical solution and has the following advantages compared with the prior art:

[0011] When the steel material conveyor rack drives several steel blanks to move upward, several steel blanks enter the two blank limiting plates, and the positions of the several steel blanks are corrected by the inclination angles respectively opened on the lower walls of the two blank limiting plates. According to the sizes of the several steel blanks, the two blank limiting plates respectively drive several telescopic sleeves to extend and retract along several telescopic rods to prevent several steel blanks from being displaced during movement and affecting the loading process. This solves the problem of existing stainless steel wire drawing loading, which requires operators to adjust the positions of the steel blanks at any time through conveyor belt loading to prevent the steel blanks from being displaced during movement and affecting the loading process.

[0012] When the control system of the push plate detects through the control panel that the steel material conveyor rack has moved to the set position, the push plate passes through the guide limit groove along the feed rack and pushes the steel blank to the guide table for drawing. After the drawing is completed, the operator removes the steel blank on the guide table and resets the push plate, which solves the problem of insufficient automation and high manpower consumption in feeding through the conveyor belt. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 This is a structural diagram of an automated stainless steel wire drawing device in an embodiment of the present utility model;

[0014] Figure 2 This is a schematic diagram of the transmission structure of an automated stainless steel wire drawing device in an embodiment of the present utility model;

[0015] Figure 3 This is a schematic diagram of a guide structure of an automated stainless steel wire drawing device in an embodiment of the present utility model;

[0016] Figure 4 This is a schematic diagram of the feeding structure of an automated stainless steel wire drawing equipment in an embodiment of the present utility model.

[0017] In the figure: 1. Transmission box; 2. Load-bearing frame; 3. Loading port; 4. Control panel; 5. Transmission support frame; 6. Threaded rod; 7. Transmission guide rod; 8. Steel material conveying frame; 9. Guide fixing frame; 10. Telescopic rod; 11. Telescopic sleeve; 12. Return spring; 13. Blank limit plate; 14. Guide limit groove; 15. Feeding frame; 16. Push plate; 17. Guide platform; 18. Buffer spring; 19. Steel blank. DETAILED DESCRIPTION

[0018] The following further describes specific embodiments of the present invention in conjunction with the accompanying drawings. It should be noted that the descriptions of these embodiments are intended to aid understanding of the present invention and do not constitute limitations on the present invention. Furthermore, the technical features involved in the various embodiments of the present invention described below may be combined with one another as long as they do not conflict with one another.

[0019] Example 1, please refer to Figures 1-4 An automated stainless steel wire drawing device includes a transmission box 1 and a load-bearing frame 2. The load-bearing frame 2 is installed on the upper wall of the transmission box 1. The load-bearing frame 2 has two loading ports 3. A control panel 4 is installed on the load-bearing frame 2. A transmission structure is connected to the transmission box 1. The outer wall of the transmission structure is provided with a guide structure. A feeding structure is installed on the upper wall of the transmission structure.

[0020] The transmission structure includes: a transmission support frame 5, a threaded rod 6, two transmission guide rods 7 and a steel material conveying frame 8; the transmission support frame 5 is installed on the upper wall of the transmission box 1, the threaded rod 6 is connected to the transmission box 1 through the transmission support frame 5, and the two transmission guide rods 7 are respectively connected to the transmission box 1 through the transmission support frame 5, and the steel material conveying frame 8 is sleeved on the outer wall of the threaded rod 6 and the two transmission guide rods 7; the guide structure includes: a guide fixing frame 9, a number of telescopic rods 10, a number of telescopic sleeves 11, a number of return springs 12, two blank limiting plates 13 and a guide limiting groove 14; the guide fixing frame 9 is installed on the inner wall of the load-bearing frame 2, a number of telescopic rods 10 are respectively installed on the inner wall of the guide fixing frame 9, a number of telescopic sleeves 11 are respectively sleeved on the outer wall of a number of telescopic rods 10, a number of return springs 12 are respectively sleeved on the outer wall of a number of telescopic rods 10, two blank limiting plates 13 are respectively installed on the inner wall of a number of telescopic sleeves 11, and the guide limiting groove 14 is opened on the upper end surface of the guide fixing frame 9.

[0021] See also Figure 2 The outer walls of the two transmission guide rods 7 are respectively provided with buffer springs 18 . In this embodiment, the buffer springs 18 share the pressure exerted on the threaded rod 6 by the steel material conveying rack 8 .

[0022] See also Figure 4A plurality of steel blanks 19 are installed on the upper wall of the steel material conveying rack 8.

[0023] See also Figure 3 The lower wall surfaces of the two blank limiting plates 13 are respectively provided with an inclination angle. In this embodiment, the positions of the plurality of steel blanks 19 are corrected by the inclination angles respectively provided on the lower wall surfaces of the two blank limiting plates 13.

[0024] In this embodiment, when the steel material conveying rack 8 drives a number of steel blanks 19 to move upward, the number of steel blanks 19 enter the two blank limiting plates 13, and the positions of the number of steel blanks 19 are corrected by the inclination angles respectively opened on the lower wall surfaces of the two blank limiting plates 13. According to the sizes of the number of steel blanks 19, the two blank limiting plates 13 respectively drive the number of telescopic sleeves 11 to extend and retract along the number of telescopic rods 10 to prevent the number of steel blanks 19 from being displaced during movement, thereby affecting the loading process.

[0025] Specifically, the operator controls the rotation cycle and rotation time of the threaded rod 6 according to the thickness of the steel blank 19 through the control panel 4. First, a number of steel blanks 19 are placed on the steel conveying rack 8 through the two loading ports 3. Then, the threaded rod 6 is started. The threaded rod 6 drives the steel conveying rack 8 to move upward along the two transmission guide rods 7. The buffer spring 18 shares the pressure of the threaded rod 6 on the steel conveying rack 8. When the steel conveying rack 8 drives the steel blanks 19 to move upward, the steel blanks 19 enter the two blank limiting plates 13 and pass through the two blank limiting plates 13. The inclination angles respectively opened on the lower wall surface correct the positions of several steel blanks 19. According to the sizes of several steel blanks 19, the two blank limit plates 13 respectively drive several telescopic sleeves 11 to extend and retract along several telescopic rods 10 to prevent several steel blanks 19 from being displaced during movement, affecting the loading process. When the steel conveyor rack 8 moves to the set position and the last steel blank 19 is loaded, the several reset springs 12 drive the two blank limit plates 13 to reset through the several telescopic sleeves 11. At the same time, the threaded rod 6 rotates in the opposite direction to drive the steel conveyor rack 8 to reset, waiting for the operator to load again.

[0026] Example 2, please refer to Figure 4 The feeding structure includes: a feeding rack 15, a push plate 16 and a guide platform 17; the feeding rack 15 is installed on the upper wall of the transmission support frame 5, the push plate 16 is connected to the wire drawing pushing system, and is installed on the inner wall of the feeding rack 15, and the guide platform 17 is installed on the front wall of the guide fixing frame 9.

[0027] In this embodiment, when the control system of the push plate 16 detects through the control panel 4 that the steel material conveying rack 8 has moved to the set position, the push plate 16 pushes the steel blank 19 along the feed rack 15 through the guide limit groove 14 to the guide table 17 for wire drawing. After the wire drawing is completed, the operator removes the steel blank 19 on the guide table 17 after wire drawing, and the push plate 16 is reset.

[0028] Specifically, when the control system of the push plate 16 detects through the control panel 4 that the steel material conveying rack 8 has moved to the set position, the push plate 16 pushes the steel blank 19 along the feed rack 15 through the guide limit groove 14 to the guide table 17 for wire drawing. After the wire drawing is completed, the operator removes the steel blank 19 on the guide table 17 after wire drawing, and the push plate 16 is reset. The threaded rod 6 rotates again to push the remaining steel blank 19 upward. When the steel blank 19 reaches the guide limit groove 14, the above process is repeated to achieve automation.

[0029] The embodiments of the present invention are described in detail above with reference to the accompanying drawings, but the present invention is not limited to the described embodiments. It is apparent to those skilled in the art that various changes, modifications, substitutions, and variations to these embodiments may be made without departing from the principles and spirit of the present invention, and these changes and modifications still fall within the scope of protection of the present invention.

Claims

1. An automated stainless steel wire drawing device, comprising a transmission box (1) and a load-bearing frame (2), characterized in that: The load-bearing frame (2) is installed on the upper wall of the transmission box (1), the load-bearing frame (2) is provided with two feeding ports (3), a control panel (4) is installed on the load-bearing frame (2), a transmission structure is connected to the transmission box (1), a guide structure is provided on the outer wall of the transmission structure, and a feeding structure is installed on the upper wall of the transmission structure; The transmission structure comprises: a transmission support frame (5), a threaded rod (6), two transmission guide rods (7) and a steel material conveying frame (8); The transmission support frame (5) is mounted on the upper wall of the transmission box (1), the threaded rod (6) is connected to the transmission box (1) through the transmission support frame (5), the two transmission guide rods (7) are respectively connected to the transmission box (1) through the transmission support frame (5), and the steel material conveying frame (8) is sleeved on the outer wall of the threaded rod (6) and the two transmission guide rods (7); The guide structure comprises: a guide fixing frame (9), a plurality of telescopic rods (10), a plurality of telescopic sleeves (11), a plurality of return springs (12), two blank limiting plates (13) and a guide limiting groove (14); The guide fixing frame (9) is mounted on the inner wall surface of the load-bearing frame (2), the plurality of telescopic rods (10) are respectively mounted on the inner wall surface of the guide fixing frame (9), the plurality of telescopic sleeves (11) are respectively sleeved on the outer wall surfaces of the plurality of telescopic rods (10), the plurality of return springs (12) are respectively sleeved on the outer wall surfaces of the plurality of telescopic rods (10), the two blank limiting plates (13) are respectively mounted on the inner wall surfaces of the plurality of telescopic sleeves (11), and the guide limiting groove (14) is opened on the upper end surface of the guide fixing frame (9).

2. The automated stainless steel wire drawing equipment according to claim 1, characterized in that: The feeding structure comprises: a feeding frame (15), a push plate (16) and a guide platform (17); The feeding rack (15) is mounted on the upper wall of the transmission support frame (5), the pushing plate (16) is connected to the wire drawing pushing system and is mounted on the inner wall of the feeding rack (15), and the guiding platform (17) is mounted on the front wall of the guide fixing frame (9).

3. The automated stainless steel wire drawing equipment according to claim 1, characterized in that: The outer wall surfaces of the two transmission guide rods (7) are respectively provided with buffer springs (18).

4. The automated stainless steel wire drawing equipment according to claim 1, characterized in that: A plurality of steel blanks (19) are installed on the upper wall surface of the steel material conveying rack (8).

5. The automated stainless steel wire drawing equipment according to claim 1, characterized in that: The lower wall surfaces of the two blank limiting plates (13) are respectively provided with an inclination angle.