Processing machine tool for nuclear magnetic resonance copper bar

By introducing a combined design of the first telescopic shaft, positioning pressure plate and positioning block into the copper strip processing machine tool, the problem of the lack of high-precision positioning of the copper strip processing machine tool is solved, and the high-precision positioning and stable transportation of the copper strip are achieved, the processing efficiency is improved, and the applicability of the nuclear magnetic resonance is met.

CN223235768UActive Publication Date: 2025-08-19JIANGYIN XIMO COMPOSITE MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202422024505.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-21
Publication Date
2025-08-19
Estimated Expiration
2034-08-21

AI Technical Summary

Technical Problem

The existing copper strip processing machine tools lack high-precision positioning effect, resulting in the reduction of the accuracy and efficiency of copper strips during processing, and cannot meet the applicability of nuclear magnetic resonance.

Method used

A processing machine tool for nuclear magnetic resonance copper rows is designed, using a combination of the first telescopic shaft, positioning pressure plate and positioning block. Through the close positioning of the positioning pressure plate and the conveyor belt surface, the small area contact between the moving rod and the T-shaped slide chute is combined to ensure the stability of the copper row during transportation, and precise cutting is achieved through infrared detectors and T-shaped mobile devices.

Benefits of technology

The accuracy and efficiency of copper rows during processing are improved, the copper rows meet the applicability of nuclear magnetic resonance are ensured, the high-precision positioning and stable transportation of copper rows are achieved, and the processing efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a nuclear magnetic resonance copper bar machine tool which comprises a working machine table, a supporting stand and a supporting moving plate, a first telescopic shaft is arranged on the inner side of the middle of the supporting moving plate, a positioning pressing plate is arranged at the bottom end of the first telescopic shaft, and a positioning block is arranged on the surface of the bottom of the positioning pressing plate. Through the arrangement of the first telescopic shaft, a positioning pressing plate and a positioning block, by means of the downward pressure of the first telescopic shaft, the positioning block and the surface of a copper bar on the surface of the conveying belt are tightly positioned through the positioning pressing plate, and the precision and efficiency of the copper bar in the machining process are improved; the copper bars can meet the nuclear magnetic resonance applicability, and through the arranged moving rods, the bottom ends of the moving rods and the inner side surfaces of the T-shaped sliding grooves form a small-area contact state, so that the copper bars can continue to keep a stable positioning effect with the positioning blocks in the conveying process of the surfaces of the conveying belts.
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Description

Technical Field

[0001] The utility model relates to the technical field of copper busbar processing, in particular to a machine tool for processing nuclear magnetic resonance copper busbars. Background Art

[0002] Copper busbar is a conductive material made of copper alloy, usually with a rectangular or circular cross-section. It is widely used in the electronics, electrical, communications, automotive and other industries for conductive connection, heat dissipation, shielding and other occasions.

[0003] The current copper busbar processing machine tools lack high-precision positioning effects, resulting in reduced accuracy and efficiency of the copper busbar during the processing process, making the copper busbar unable to meet the applicability of nuclear magnetic resonance. Utility Model Content

[0004] The purpose of the utility model is to provide a nuclear magnetic resonance copper busbar processing machine tool, which can solve the problem that the current copper busbar processing machine tool lacks high-precision positioning effect, improve the accuracy and efficiency of the copper busbar during the processing process, and make the copper busbar meet the applicability of nuclear magnetic resonance.

[0005] In order to achieve the above-mentioned purpose, a processing machine tool for nuclear magnetic resonance copper busbar is provided, comprising a working machine, a supporting frame and a supporting movable plate, a first telescopic shaft is provided on the inner side of the middle portion of the supporting movable plate, a positioning pressure plate is provided at the bottom end of the first telescopic shaft, a positioning block is provided on the bottom surface of the positioning pressure plate, a driving device is provided on the top end of the first telescopic shaft, moving rods are provided on both sides of the bottom surface of the supporting movable plate, T-shaped slide grooves are provided on both sides of the top surface of the working machine, driving shafts are provided at both ends of the inner side of the working machine, and a conveying shaft is provided on the outer surface of the driving shaft. Belt, a control panel is provided on one side of the outside of the work machine, pillars are provided on the four sides of the bottom surface of the work machine, an inclined baffle and a storage groove are respectively provided on the upper end surface of the inner side of the work machine, infrared detectors are provided on the upper two end surfaces of the inner side of the work machine, T-shaped sliders are provided on both sides of the bottom end of the support frame, a T-shaped moving groove is provided on the upper inner surface of the support frame, a T-shaped moving device is provided inside the T-shaped moving groove, a second telescopic shaft is provided at the bottom end of the T-shaped moving device, and a cutting blade is provided at the bottom end of the second telescopic shaft.

[0006] The top end of the first telescopic shaft forms an electrical control effect with the driving device through the inner side of the middle portion of the supporting shift plate, and the positioning pressure plate is fixedly connected to the bottom end of the first telescopic shaft.

[0007] The positioning block is made of hard rubber with a rough surface. The positioning block is a hemispherical structure. The positioning block is fixedly connected to the bottom surface of the positioning pressure plate. The positioning block is adjusted to the distance from the conveyor belt surface through the first telescopic shaft and the driving device.

[0008] The moving rod is fixedly connected to the two side surfaces of the bottom of the supporting moving plate, the bottom end of the moving rod is in a spherical structure, the T-shaped slide groove is recessed and connected with the two side surfaces of the top of the working machine, and the bottom end of the moving rod forms a small area contact state with the inner surface of the T-shaped slide groove.

[0009] The surface of the conveyor belt is in a rough granular state. The conveyor belt is movably connected to the inner side of the working machine through the outer surface support of the driving shaft to form a limited movable state. The control panel is fixedly connected to the driving device, driving shaft and infrared detector through the outer side of the working machine to form an electrical control effect.

[0010] The inclined baffle is fixedly connected to the upper inner surface of the working machine below one side of the conveyor belt, the storage groove is connected to the upper inner surface of the working machine, the four surrounding surfaces of the bottom of the working machine are fixedly connected to the pillars, and the infrared detector is electrically controlled and connected to the T-shaped moving device.

[0011] Both sides of the bottom end of the support frame are fixedly connected to the T-shaped slider, and the outer surface of the T-shaped slider is made of rubber material. The support frame is connected to the top of the working machine through the tight contact between the T-shaped slider and the T-shaped slide groove to form a position adjustment state, and the T-shaped movable groove is engaged with the inner upper surface of the support frame in a recessed connection, and the T-shaped movable device forms a position moving state with the inside of the T-shaped movable groove through the control panel.

[0012] The second telescopic shaft forms a lifting state with the conveyor belt surface through the infrared detector and the T-shaped moving device, and the cutting blade forms a high-speed rotation connection with the bottom end of the second telescopic shaft through the control panel.

[0013] The beneficial effects of the utility model are:

[0014] By providing the first telescopic shaft, positioning pressure plate and positioning block, the downward pressure of the first telescopic shaft is utilized to enable the positioning block to be tightly positioned with the surface of the copper bar on the conveyor belt surface through the positioning pressure plate, thereby improving the accuracy and efficiency of the copper bar during the processing process, and enabling the copper bar to meet the applicability of nuclear magnetic resonance. Furthermore, by providing the moving rod, a small-area contact state is formed between the bottom end of the moving rod and the inner surface of the T-shaped slide groove, which facilitates the copper bar to continue to maintain a stable positioning effect with the positioning block during transportation on the conveyor belt surface. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 The utility model is a structural schematic diagram of a nuclear magnetic resonance copper busbar processing machine tool.

[0016] Figure 2 This is a structural schematic diagram of a nuclear magnetic resonance copper busbar processing machine tool according to the present invention from another angle.

[0017] Figure 3 The utility model is a structural schematic diagram of a support and shift plate of a machine tool for processing nuclear magnetic resonance copper busbars.

[0018] Figure 4 This is a structural perspective view of a support frame of a machine tool for processing nuclear magnetic resonance copper bars according to the present invention.

[0019] Figure 5 The utility model is a side perspective view of a machine tool for processing nuclear magnetic resonance copper busbars.

[0020] Legend:

[0021] 1. Workbench; 2. Support frame; 3. T-shaped slide; 4. Support shift plate; 5. Conveyor belt; 6. Control panel; 7. Pillar; 8. Inclined baffle; 9. Storage slot; 10. Drive unit; 11. First telescopic axis; 12. Positioning plate; 13. Positioning block; 14. Moving rod; 15. T-shaped slider; 16. T-shaped moving groove; 17. T-shaped moving unit; 18. Second telescopic axis; 19. Cutting blade; 20. Drive shaft; 21. Infrared detector. DETAILED DESCRIPTION

[0022] Reference Figure 1-5 The embodiment of the present invention is a machine tool for processing nuclear magnetic resonance copper bars, which includes a working machine 1, a supporting frame 2 and a supporting movable plate 4. A first telescopic shaft 11 is provided on the inner side of the middle of the supporting movable plate 4, a positioning pressure plate 12 is provided at the bottom end of the first telescopic shaft 11, a positioning block 13 is provided on the bottom surface of the positioning pressure plate 12, a driving device 10 is provided on the top of the first telescopic shaft 11, moving rods 14 are provided on both sides of the bottom surface of the supporting movable plate 4, T-shaped slide grooves 3 are provided on both sides of the top surface of the working machine 1, a driving shaft 20 is provided at both ends of the inner side of the working machine 1, and a transmission shaft 20 is provided on the outer surface of the driving shaft 20. A conveyor belt 5 is provided, a control panel 6 is provided on one side of the outside of the working machine 1, pillars 7 are provided on all four surfaces of the bottom of the working machine 1, an inclined baffle 8 and a storage groove 9 are provided on the upper inner end surface of the working machine 1, infrared detectors 21 are provided on the upper inner end surfaces of the working machine 1, T-shaped sliders 15 are provided on both sides of the bottom end of the supporting frame 2, a T-shaped moving groove 16 is provided on the upper inner surface of the supporting frame 2, a T-shaped moving device 17 is provided inside the T-shaped moving groove 16, a second telescopic shaft 18 is provided at the bottom end of the T-shaped moving device 17, and a cutting blade 19 is provided at the bottom end of the second telescopic shaft 18.

[0023] The top of the first telescopic shaft 11 forms an electrical control effect with the driving device 10 through the inner side of the middle of the supporting shift plate 4, and the positioning pressure plate 12 is fixedly connected to the bottom end of the first telescopic shaft 11. Through the setting of the first telescopic shaft 11 and the driving device 10, the positioning pressure plate 12 can be adjusted to the surface distance of the conveyor belt 5. The positioning block 13 is made of hard rubber with a rough surface. The positioning block 13 is a hemispherical structure. The positioning block 13 is fixedly connected to the bottom surface of the positioning pressure plate 12. The positioning block 13 is adjusted to the surface distance of the conveyor belt 5 through the first telescopic shaft 11 and the driving device 10. The hemispherical structure of the hard rubber with a rough surface can be used to enhance the friction of the surface above the copper busbar placed above the conveyor belt 5. The moving rod 14 and The two side surfaces of the bottom of the support moving plate 4 are fixedly connected, the bottom end of the moving rod 14 is in a spherical structure state, the T-shaped slide 3 is engaged with the two side surfaces of the top of the working machine 1 and is recessed, and the bottom end of the moving rod 14 forms a small area contact state with the inner surface of the T-shaped slide 3. By setting the moving rod 14, the bottom end of the moving rod 14 is in a spherical structure state, which can reduce the contact area between the bottom of the moving rod 14 and the inner surface of the T-shaped slide 3, which can facilitate the transportation of the copper bar on the surface of the conveyor belt 5. The surface of the conveyor belt 5 is in a rough particle state. The conveyor belt 5 is supported and movably connected to the inner side of the working machine 1 through the outer surface of the driving shaft 20 to form a limited movable state. The control panel 6 is fixedly connected to the driving device 10, the driving shaft 20 and the infrared detector 21 respectively through the outer side of the working machine 1. An electrical control effect is formed. By setting up the conveyor belt 5, the conveyor belt 5 with a surface in a rough granular state can be used to improve the friction between the copper bar and the surface of the conveyor belt 5, and enhance the stability of the copper bar between the conveyor belt 5 and the positioning block 13. The inclined baffle 8 is fixedly connected to the upper end surface of the inner side of the working machine 1 below one side of the conveyor belt 5. The storage groove 9 is connected to the upper end surface of the inner side of the working machine 1. The surrounding surfaces of the bottom of the working machine 1 are fixedly connected to the pillar 7. The infrared detector 21 is electrically controlled and connected to the T-shaped moving device 17. The infrared detector 21 is set up to detect the copper bar that is about to leave the surface of the conveyor belt 5. The cutting blade 19 can be quickly cut and accelerated by the T-shaped moving device 17 and the second telescopic shaft 18. To achieve the desired working effect, both sides of the bottom end of the support frame 2 are fixedly connected to the T-shaped slider 15, and the outer surface of the T-shaped slider 15 is made of rubber material. The support frame 2 is closely connected to the top of the working machine 1 through the T-shaped slider 15 and the T-shaped slide 3 to form a position adjustment state. The T-shaped movable groove 16 is recessed and connected with the inner upper surface of the support frame 2. The T-shaped movable device 17 forms a position moving state with the inside of the T-shaped movable groove 16 through the control panel 6. By setting the T-shaped slider 15, the T-shaped slider 15 made of rubber material on the outer surface can enhance the close contact and moving effect between the T-shaped slider 15 and the T-shaped slide 3. The second telescopic shaft 18 forms a lifting state between the infrared detector 21 and the T-shaped movable device 17 and the surface of the conveyor belt 5.The cutting blade 19 is connected to the bottom end of the second telescopic shaft 18 through the control panel 6 to form a high-speed rotation connection.

[0024] During operation, the copper bar is placed on the surface of the conveyor belt 5. Through the control panel 6, first, the driving device 10 is started to realize the lowering of the first telescopic shaft 11, and then the infrared detector 21 is started to detect the front end of the copper bar. The front end signal of the copper bar detected by the infrared detector 21 is transmitted to the T-shaped moving device 17, and then the second telescopic shaft 18 drives the cutting blade 19 to contact and cut the surface of the copper bar on the surface of the conveyor belt 5. The processed copper bar can be collected by the storage groove 9.

Claims

1. A machine tool for processing nuclear magnetic resonance copper busbars, characterized by: The invention comprises a working machine (1), a supporting frame (2) and a supporting shift plate (4), wherein a first telescopic shaft (11) is provided on the inner side of the middle of the supporting shift plate (4), a positioning pressure plate (12) is provided on the bottom end of the first telescopic shaft (11), a positioning block (13) is provided on the bottom surface of the positioning pressure plate (12), a driving device (10) is provided on the top of the first telescopic shaft (11), moving rods (14) are provided on both sides of the bottom surface of the supporting shift plate (4), T-shaped slide grooves (3) are provided on both sides of the top surface of the working machine (1), a driving shaft (20) is provided on both ends of the inner side of the working machine (1), a conveyor belt (5) is provided on the outer surface of the driving shaft (20), and the working machine (1) A control panel (6) is provided on one side of the outside, pillars (7) are provided on all four sides of the bottom of the working machine (1), an inclined baffle (8) and a storage groove (9) are provided on the upper inner end surface of the working machine (1), infrared detectors (21) are provided on both ends of the upper inner end surface of the working machine (1), T-shaped sliders (15) are provided on both sides of the bottom end of the supporting frame (2), a T-shaped movable groove (16) is provided on the upper inner surface of the supporting frame (2), a T-shaped movable device (17) is provided inside the T-shaped movable groove (16), a second telescopic shaft (18) is provided at the bottom end of the T-shaped movable device (17), and a cutting blade (19) is provided at the bottom end of the second telescopic shaft (18).

2. The machine tool for processing a nuclear magnetic resonance copper busbar according to claim 1, wherein: The top end of the first telescopic shaft (11) forms an electrical control effect with the driving device (10) through the inner side of the middle portion of the supporting shift plate (4), and the positioning pressure plate (12) is fixedly connected to the bottom end of the first telescopic shaft (11).

3. The machine tool for processing a nuclear magnetic resonance copper busbar according to claim 2, wherein: The positioning block (13) is made of a hard rubber material with a rough surface. The positioning block (13) is a hemispherical structure. The positioning block (13) is fixedly connected to the bottom surface of the positioning pressure plate (12). The positioning block (13) is in an adjustable state with respect to the surface of the conveyor belt (5) through the first telescopic shaft (11) and the driving device (10).

4. The machine tool for processing nuclear magnetic resonance copper busbars according to claim 1, wherein: The moving rod (14) is fixedly connected to the two side surfaces of the bottom of the supporting shift plate (4), the bottom end of the moving rod (14) is in a spherical structure, the T-shaped slide groove (3) is engaged with the two side surfaces of the top of the working machine (1) in a recessed manner, and the bottom end of the moving rod (14) forms a small area contact state with the inner surface of the T-shaped slide groove (3).

5. The machine tool for processing nuclear magnetic resonance copper busbar according to claim 1, characterized in that: The surface of the conveyor belt (5) is in a rough granular state. The conveyor belt (5) is supported and movably connected to the inner side of the working machine (1) through the outer surface of the driving shaft (20) to form a limited movable state. The control panel (6) is fixedly connected to the driving device (10), the driving shaft (20) and the infrared detector (21) through the outer side of the working machine (1) to form an electrical control effect.

6. The machine tool for processing nuclear magnetic resonance copper busbars according to claim 1, characterized in that: The inclined baffle (8) is fixedly connected to the upper inner surface of the working machine (1) below one side of the conveyor belt (5), the receiving groove (9) is connected to the upper inner surface of the working machine (1), the surrounding surfaces of the bottom of the working machine (1) are fixedly connected to the support (7), and the infrared detector (21) is electrically controlled and connected to the T-shaped moving device (17).

7. The machine tool for processing nuclear magnetic resonance copper busbars according to claim 1, characterized in that: Both sides of the bottom end of the support frame (2) are fixedly connected to the T-shaped slider (15), and the outer surface of the T-shaped slider (15) is made of rubber material. The support frame (2) is connected to the top of the working machine (1) through the tight contact between the T-shaped slider (15) and the T-shaped slide groove (3) to form a position adjustment state. The T-shaped movable groove (16) is connected to the inner upper surface of the support frame (2) in an embedded recessed manner. The T-shaped movable device (17) forms a position movement state with the inside of the T-shaped movable groove (16) through the control panel (6).

8. The machine tool for processing nuclear magnetic resonance copper busbars according to claim 1, characterized in that: The second telescopic shaft (18) forms a lifting state with the surface of the conveyor belt (5) through the infrared detector (21) and the T-shaped moving device (17), and the cutting blade (19) forms a high-speed rotation connection with the bottom end of the second telescopic shaft (18) through the control panel (6).