Oxygen-free copper rod cutting device

By setting a positioning plate and a movable cutting assembly in the oxygen-free copper rod cutting device, combined with the combination of a driving motor and a screw, the problem of inconsistency in the cutting in the prior art is solved, high-precision cutting is achieved, and product consistency and quality are improved.

CN222944965UActive Publication Date: 2025-06-06SUZHOU JIULING GUANGYU TECH CO LTD
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Patent Information

Application Number
CN202422102622.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-29
Publication Date
2025-06-06
Estimated Expiration
2034-08-29

AI Technical Summary

Technical Problem

The existing oxygen-free copper rod cutting device is difficult to ensure the consistent distance of each push during the cutting process, resulting in a difference in the length of the copper rod after cutting, affecting the consistency and quality of the product.

Method used

An oxygen-free copper rod cutting device is designed to ensure the consistent position of each cutting and improve the accuracy of the cutting size by providing a positioning plate and a movable cutting assembly. The device also adopts a combination of a driving motor and a screw to achieve high-precision left and right movement and adjust the accuracy of the cutting assembly spacing.

Benefits of technology

Through the coordination of the positioning plate and the cutting assembly, the consistency of each cutting position is achieved, cutting accuracy and product consistency and quality are improved, while reducing waste of raw materials due to unqualified dimensions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an oxygen-free copper rod cutting device. The oxygen-free copper rod cutting device comprises a cutting table, the cutting table comprises a working table, a guide rail base is further arranged at the side end of the working table, a cutting assembly is arranged in the guide rail base, the cutting assembly comprises a moving base installed in the guide rail base, and the moving base is connected into the guide rail base in a penetrating mode through a lead screw; a hydraulic cylinder is further arranged on the moving seat, the piston end of the hydraulic cylinder is connected with a cutting blade, a positioning assembly is arranged below the cutting blade, the positioning assembly comprises a lower plate installed on the workbench, upper plates are symmetrically arranged above the lower plate, and the lower plate and the upper plates are clamped to form a containing cavity; and positioning notches are symmetrically distributed on the two sides in an array manner. In the positioning assembly, the consistency of cutting positions every time can be ensured through the positioning plate and the movable cutting assembly, so that the accuracy of the cutting size is improved, and the consistency and quality of products are ensured.
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Description

Technical Field

[0001] The utility model relates to the technical field of tools for processing oxygen-free copper rods, in particular to an oxygen-free copper rod cutting device. Background Art

[0002] Due to the different processes for producing copper rods, the oxygen content and appearance of the produced copper rods are different. The copper rods produced by Shangyin, if the process is proper, the oxygen content is below 20ppm, which is called oxygen-free copper rods. Oxygen-free copper rods are pure copper that does not contain oxygen or any deoxidizer residues. Oxygen-free copper rods need to be cut during the processing.

[0003] The prior art discloses an oxygen-free copper rod cutting device, which has a base, and two supporting legs are fixedly connected to the left and right lower ends of the base, a pad is fixedly connected to the left upper end of the base, and a straightening device is fixedly connected to the middle upper end of the pad. By setting the straightening device, the oxygen-free copper rod can be straightened, thereby facilitating the cutting of the oxygen-free copper rod.

[0004] However, this device still has some defects. During actual cutting, this device is pushed to the cutting area manually and continuously during segmented cutting. However, it is difficult to ensure that the distance of each push is completely consistent through manual operation. This may lead to differences in the length of the copper rod after cutting, affecting the consistency and quality of the product.

[0005] Therefore, it is necessary to provide an oxygen-free copper rod cutting device to solve the above technical problems. Utility Model Content

[0006] In view of the above situation, in order to overcome the defects of the prior art, the utility model provides an oxygen-free copper rod cutting device which can ensure that the position of each cutting is consistent by providing a positioning plate, thereby improving the accuracy of the cutting size and ensuring the consistency and quality of the product.

[0007] In order to achieve the above purpose, the technical solution adopted by the utility model is as follows:

[0008] The oxygen-free copper rod cutting device comprises: a cutting table, the cutting table comprises a workbench, a guide rail seat is also provided at the side end of the workbench, a cutting assembly is provided in the guide rail seat, the cutting assembly comprises a moving seat installed in the guide rail seat, the moving seat is connected to the guide rail seat through a screw rod, a hydraulic cylinder is also provided on the moving seat, a cutting blade is connected to the piston end of the hydraulic cylinder, a positioning assembly is provided below the cutting blade, the positioning assembly comprises a lower plate installed on the workbench, an upper plate is symmetrically provided above the lower plate, the two are engaged to form a placement cavity, and positioning cuts are symmetrically distributed in an array on both.

[0009] Preferably, a slide groove is further provided in the guide rail seat, and a connecting plate is further provided at one end of the guide rail seat, a driving motor is further provided on the connecting plate, and an output end of the driving motor is connected to the screw rod.

[0010] Preferably, a plurality of connection blocks are further provided on the end side of the upper plate, and the connection blocks at the center of the upper plate are connected through threaded rods provided on the adjustment plate.

[0011] Preferably, guide rods are further provided at both ends of the adjustment plate, and the guide rods provided at both ends are sleeve-connected with the connection blocks provided at both ends of the upper plate.

[0012] Preferably, a positioning plate is further provided at the lower end of the lower plate, and a positioning hole is also provided at the lower end of the adjustment plate. Both the lower plate and the adjustment plate are detachably mounted on the workbench by positioning bolts.

[0013] Preferably, a collecting plate is further provided in the bottom cavity formed by the lower plate and the positioning plate, and the collecting plate can be installed in the bottom cavity formed by the lower plate and the positioning plate in a pull-out manner.

[0014] Compared with the prior art, the utility model has the following beneficial effects:

[0015] (1) The utility model uses a plurality of parts in the positioning assembly to cooperate with each other, and the positioning plate and the movable cutting assembly can ensure that the position of each cutting is consistent, thereby improving the accuracy of the cutting size and ensuring the consistency and quality of the product. At the same time, accurate cutting can reduce the waste of raw materials caused by unqualified sizes and improve the utilization rate of materials;

[0016] (2) The utility model uses a driving motor and a screw rod in cooperation. In actual use, the combination of the screw rod and the driving motor can achieve high-precision left and right movement, thereby achieving the adjustment of the spacing accuracy of the cutting assembly. Compared with manually adjusting the cutting assembly, the driving motor and the positioning plate can achieve accurate cutting of the cutting assembly;

[0017] (3) The utility model can realize the clamping and fixing of the oxygen-free copper rod by cooperating with the upper plate and the lower plate, and thus avoid the shaking of the oxygen-free copper rod during cutting, thereby improving the cutting accuracy. At the same time, through the coordinated use of the adjustment plate and the threaded rod, the upper and lower distances between the upper plate and the lower plate can be adjusted, thereby realizing the placement of oxygen-free copper rods of different models. At the same time, the threaded rod drives the upper plate to be squeezed downward, thereby clamping the oxygen-free copper rods of different models, thereby ensuring the stability of the oxygen-free copper rod during cutting, and at the same time improving the applicability of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1The overall structural diagram of the oxygen-free copper rod cutting device provided by the utility model;

[0019] Figure 2 A schematic diagram of the structure of the oxygen-free copper rod cutting device provided by the utility model from a first perspective;

[0020] Figure 3 A schematic diagram of the connection structure between the upper plate and the lower plate of the oxygen-free copper rod cutting device provided by the utility model;

[0021] Figure 4 This is a schematic structural diagram of a cutting assembly of an oxygen-free copper rod cutting device provided by the utility model.

[0022] Among them, the names corresponding to the figure numbers are: 100, cutting table; 101, workbench; 102, guide rail seat; 103, connecting plate; 200, positioning assembly; 201, lower plate; 202, positioning plate; 203, upper plate; 204, placement cavity; 205, positioning incision; 206, connecting block; 207, adjustment plate; 208, threaded rod; 209, guide rod; 210, collecting plate; 300, cutting assembly; 301, support arm; 302, hydraulic cylinder; 303, connecting bolt; 304, cutting blade; 305, moving seat; 306, screw rod; 307, driving motor. DETAILED DESCRIPTION

[0023] The present invention is further described below in conjunction with the accompanying drawings and embodiments. The present invention includes but is not limited to the following embodiments.

[0024] First embodiment:

[0025] like Figure 1-4As shown, the oxygen-free copper rod cutting device provided by the utility model includes: a cutting table 100, the cutting table 100 includes a workbench 101, a guide rail seat 102 is further provided at the side end of the workbench 101, a cutting assembly 300 is provided in the guide rail seat 102, the cutting assembly 300 includes a moving seat 305 installed in the guide rail seat 102, the moving seat 305 is connected to the guide rail seat 102 through a screw rod 306, a support arm 301 is provided on the moving seat 305, a hydraulic cylinder 302 is provided on the support arm 301, a cutting blade 304 is connected to the piston end of the hydraulic cylinder 302, a positioning assembly 200 is provided below the cutting blade 304, the positioning assembly 200 includes a lower plate 201 installed on the workbench 101, an upper plate 203 is symmetrically provided above the lower plate 201, and the two are engaged to form a release The upper plate 203 and the lower plate 201 have positioning cutouts 205 arranged in a symmetrical array. In actual use, the staff moves the entire oxygen-free copper rod from the placement cavity 204 formed by the upper plate 203 and the lower plate 201, limits the oxygen-free copper rod through the placement cavity 204 formed by the upper plate 203 and the lower plate 201, and then starts the power supply, starts the hydraulic cylinder 302 and the cutting blade 304. Since the cutting device is connected to the connecting bolt 303 arranged at the output end of the hydraulic cylinder 302, the cutting blade 304 is driven downward by the hydraulic cylinder 302. At this time, the cutting blade 304 is cut off in the positioning cutouts 205 arranged by the upper plate 203 and the lower plate 201, and then the screw rod 306 is adjusted to cooperate with the positioning cutouts 205 arranged in an array, so as to position and cut the entire oxygen-free copper rod.

[0026] By using a plurality of parts in the positioning assembly 200 in coordination, and by providing a positioning plate 202 and a movable cutting assembly 300, it is possible to ensure that the position of each cutting is consistent, thereby improving the accuracy of the cutting size and ensuring the consistency and quality of the product. At the same time, precise cutting can reduce the waste of raw materials due to unqualified sizes and improve the utilization rate of materials.

[0027] Second embodiment:

[0028] like Figure 1 , Figure 4 As shown, a slide groove is also provided in the guide rail seat 102, and a connecting plate 103 is also provided at one end of the guide rail seat 102, and a driving motor 307 is also provided on the connecting plate 103, and the output end of the driving motor 307 is connected to the screw rod 306. In actual use, the driving of the driving motor 307 is controlled by starting the power supply, and the rotation of the driving motor 307 drives the rotation of the screw rod 306. Through the rotation of the screw rod 306, the overall left and right movement of the cutting assembly 300 is further realized, and in conjunction with the positioning incision 205, the positioning cutting of the entire oxygen-free copper rod can be realized.

[0029] By using the drive motor 307 in conjunction with the screw rod 306, in actual use, the combination of the screw rod 306 and the drive motor 307 can achieve high-precision left and right movement, thereby achieving adjustment of the spacing accuracy of the cutting component 300. Compared with manually adjusting the cutting component 300, the cooperation between the drive motor 307 and the positioning cutout 205 can achieve precise cutting of the cutting component 300.

[0030] Third embodiment:

[0031] like Figure 2-3 As shown, a plurality of connecting blocks 206 are further provided on the end side of the upper plate 203. The connecting block 206 at the center of the upper plate 203 is connected through a threaded rod 208 provided on the adjusting plate 207. In actual use, since the types of oxygen-free copper rods are different in actual production, the threaded rod 208 provided on the adjusting plate 207 is screwed to drive the connecting block 206 to move up and down within the range of travel provided by the threaded rod 208. Since the connecting block 206 is welded to the upper plate 203, the upper plate 203 is driven to move up and down. By adjusting the distance between the upper plate 203 and the lower plate 201, oxygen-free copper rods of different types can be placed.

[0032] By cooperating with the upper plate 203 and the lower plate 201, the oxygen-free copper rod can be clamped and fixed. By clamping and fixing the oxygen-free copper rod, the shaking of the oxygen-free copper rod can be avoided during cutting, thereby improving the cutting accuracy. At the same time, by cooperating with the adjustment plate 207 and the threaded rod 208, the upper and lower distances between the upper plate 203 and the lower plate 201 can be adjusted, thereby realizing the placement of oxygen-free copper rods of different models. At the same time, the threaded rod 208 drives the upper plate 203 to be squeezed downward, thereby clamping the oxygen-free copper rods of different models, thereby ensuring the stability of the oxygen-free copper rod during cutting, and improving the applicability of the device.

[0033] Fourth embodiment:

[0034] like Figure 3 As shown, guide rods 209 are also provided at both ends of the adjustment plate 207, and the guide rods 209 provided at both ends are sleeved and connected with the connecting blocks 206 provided at both ends of the upper plate 203. In actual use, when the threaded rod 208 is rotated to drive the upper plate 203 to move up and down, the connecting blocks 206 provided at both ends of the upper plate 203 move up and down on the guide rods 209 provided at both ends of the adjustment plate 207.

[0035] By using the guide rod 209 in conjunction with the connecting block 206, the guide rod 209 and the connecting block 206 can provide a stable guiding effect, ensuring the stability and linearity of the upper plate 203 during the up and down movement, reducing deviation or swing, and thus achieving a stable clamping of the oxygen-free copper rod by the upper plate 203.

[0036] Fifth embodiment:

[0037] like Figure 2-3 As shown, a positioning plate 202 is also provided at the lower end of the lower plate 201, and a positioning hole is also provided at the lower end of the adjustment plate 207. The lower plate 201 and the adjustment plate 207 are both detachably mounted on the workbench 101 by positioning bolts. During actual installation, it is only necessary to align the positioning plate 202 with the through hole provided on the lower plate 201, and the two can be fixed to the workbench 101 by the positioning bolts. The adjustment plate 207 can be fixed to the end side of the upper plate 203 by the positioning holes and positioning bolts provided on the adjustment plate 207.

[0038] By using the positioning plate 202 , the positioning assembly 200 can be detachably installed on the workbench 101 . The detachable installation can facilitate subsequent replacement of different positioning assemblies 200 for different products.

[0039] Sixth embodiment:

[0040] like Figure 2 As shown, a collecting plate 210 is further provided in the bottom cavity formed by the lower plate 201 and the positioning plate 202. The collecting plate 210 can be installed in the bottom cavity formed by the lower plate 201 and the positioning plate 202 in a pull-out manner. In actual use, since some debris will be generated when cutting the oxygen-free copper rod, the collecting plate 210 is further provided in the bottom cavity formed by the lower plate 201 and the positioning plate 202. The debris generated during cutting can be collected to prevent the accumulation of debris on the workbench 101. At the same time, the pull-out collecting plate 210 facilitates the subsequent staff to clean up the debris.

[0041] In actual use, the staff will place the entire oxygen-free copper rod from the placement cavity 204 formed by the upper plate 203 and the lower plate 201, limit the oxygen-free copper rod through the placement cavity 204 formed by the upper plate 203 and the lower plate 201, and then start the power supply, start the hydraulic cylinder 302 and the cutting blade 304. Since the cutting device is connected to the connecting bolt 303 provided at the output end of the hydraulic cylinder 302, the cutting blade 304 is driven downward by the hydraulic cylinder 302. At this time, the cutting blade 304 is cut off in the positioning cut 205 provided by the upper plate 203 and the lower plate 201, and then the screw rod 306 is adjusted to cooperate with the positioning cut 205 distributed in the array, so as to position and cut the entire oxygen-free copper rod.

[0042] The above embodiment is only one of the preferred implementation modes of the present utility model and should not be used to limit the protection scope of the present utility model. Any changes or modifications that are made to the main design concept and spirit of the present utility model without any substantive significance, as long as the technical problems solved are still consistent with the present utility model, should be included in the protection scope of the present utility model.

Claims

1. An oxygen-free copper rod cutting device, characterized in that: include: A cutting table (100), the cutting table (100) comprising a workbench (101), a guide rail seat (102) being further arranged at a side end of the workbench (101), a cutting assembly (300) being arranged in the guide rail seat (102), the cutting assembly (300) comprising a movable seat (305) installed in the guide rail seat (102), the movable seat (305) being connected to the guide rail seat (102) via a screw rod (306), and a support arm (301) being arranged on the movable seat (305), The support arm (301) is provided with a hydraulic cylinder (302), the piston end of the hydraulic cylinder (302) is connected to a cutting blade (304), a positioning assembly (200) is provided below the cutting blade (304), the positioning assembly (200) comprises a lower plate (201) mounted on the workbench (101), an upper plate (203) is symmetrically provided above the lower plate (201), the two are engaged to form a placement cavity (204), and positioning cutouts (205) are symmetrically distributed in an array on both.

2. The oxygen-free copper rod cutting device according to claim 1, characterized in that: A slide groove is also provided in the guide rail seat (102), and a connecting plate (103) is also provided at one end of the guide rail seat (102). A driving motor (307) is also provided on the connecting plate (103), and an output end of the driving motor (307) is connected to the lead screw (306).

3. The oxygen-free copper rod cutting device according to claim 1, characterized in that: A plurality of connection blocks (206) are also provided on the end side of the upper plate (203), and the connection block (206) at the center of the upper plate (203) is connected through a threaded rod (208) provided on the adjustment plate (207).

4. The oxygen-free copper rod cutting device according to claim 3, characterized in that: Guide rods (209) are also provided at both ends of the adjustment plate (207), and the guide rods (209) provided at both ends are sleeved and connected to the connection blocks (206) provided at both ends of the upper plate (203).

5. The oxygen-free copper rod cutting device according to claim 1, characterized in that: A positioning plate (202) is also provided at the lower end of the lower plate (201), and a positioning hole is also provided at the lower end of the adjustment plate (207). Both the lower plate (201) and the adjustment plate (207) are detachably mounted on the workbench (101) via positioning bolts.

6. The oxygen-free copper rod cutting device according to claim 5, characterized in that: A collecting plate (210) is also provided in the bottom cavity formed by the lower plate (201) and the positioning plate (202); the collecting plate (210) can be installed in a drawable manner in the bottom cavity formed by the lower plate (201) and the positioning plate (202).