Numerical control full-automatic bus machining center
The fixing, transmission, lifting and pressing mechanisms of the CNC fully automatic busbar machining center have solved the problem of fixing busbars of different diameters during busbar machining, achieving efficient busbar cutting and fixing effects.
Patent Information
- Application Number
- CN202421498639.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-27
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-06-27
AI Technical Summary
Existing busbar processing technology is not convenient for quickly fixing busbars of different diameters, resulting in reduced practicality.
The CNC fully automatic busbar machining center, which includes a fixing mechanism, a transmission mechanism, a drive mechanism, a lifting mechanism, and a pressing mechanism, uses a drive mechanism to drive the transmission mechanism to fix busbars of different sizes and specifications. The lifting mechanism assists the cutting mechanism in cutting, and the pressing mechanism assists in fixing the cutting point of the busbar, thereby improving the cutting quality.
It enables rapid fixing and high-quality cutting of busbars of different specifications and sizes, improving the practicality of busbar processing and cutting effect.
Smart Images

Figure CN223531317U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of busbar processing, and in particular to a CNC fully automatic busbar processing center. Background Technology
[0002] A busbar is a shared pathway through which multiple devices are connected in parallel branches. In different fields, busbars have different applications and functions. Copper alloy busbars are a major type of copper processed material. Copper busbars have high mechanical properties, good electrical and thermal conductivity, excellent corrosion resistance, electroplating and brazing properties, beautiful metallic luster, and good forming and processing performance. Therefore, various power transmission and transformation equipment and electrical equipment made from them have been widely used in the power industry.
[0003] Existing busbar processing technologies, such as the prior art with application number CN201822169369.1, include a body, grinding components, a recycling box, an outlet pipe, a water pump, a mounting base, an outlet pipe, a rotating shaft, a sealing plate, a clamping nut, a slot, and a mounting shell. By removing the filter screen from one mounting base for cleaning, the other mounting base continues to supply water to the outlet pipe, making filter screen cleaning convenient.
[0004] However, existing technology is not convenient for quickly fixing busbars of different diameters, which reduces its practicality. Utility Model Content
[0005] To solve the above-mentioned technical problems, this utility model provides a CNC fully automatic busbar machining center that facilitates the fixing and cutting of busbars of different specifications and sizes, thereby improving the cutting quality.
[0006] This utility model discloses a fully automatic CNC busbar machining center, including a cutting mechanism; it also includes a fixing mechanism, two sets of transmission mechanisms, a drive mechanism, a lifting mechanism, and two sets of pressing mechanisms. The transmission mechanism is installed inside the fixing mechanism, the drive mechanism is installed inside the fixing mechanism, the lifting mechanism is installed on the fixing mechanism, the cutting mechanism is installed on the lifting mechanism, and the pressing mechanism is installed on the lifting mechanism. The drive mechanism drives the transmission mechanism to drive the fixing mechanism to fix busbars of different specifications and sizes. The lifting mechanism assists the cutting mechanism in cutting the busbars, and the pressing mechanism assists in pressing the two ends of the busbar cutting points. The driving mechanism drives the transmission mechanism to drive the fixing mechanism to fix busbars of different specifications and sizes, the lifting mechanism assists the cutting mechanism in cutting the busbars, and the pressing mechanism assists in pressing the two ends of the busbar cutting points, thereby improving the cutting quality.
[0007] Preferably, the fixing mechanism includes a fixing box, four sliding plates, four push rods, and four fixing plates. The fixing box is provided with fixing grooves and cutting grooves. The four sliding plates are slidably installed inside the fixing box. The four sliding plates are installed in pairs at both ends of the cutting grooves. The four push rods are installed on the four sliding plates and slidably installed on the side walls of the fixing grooves. The four fixing plates are installed on the other ends of the four push rods. By opening the drive mechanism, the drive transmission mechanism drives the sliding plates to slide inside the fixing box, and then pushes the fixing plates through the push rods to fix the busbars of different specifications and sizes.
[0008] Preferably, the transmission mechanism includes a threaded rod, a guide rod, a threaded plate, and two connecting rods. The threaded rod is rotatably mounted inside the fixed box, the guide rod is mounted inside the fixed box, and the threaded plate is slidably mounted on the guide rod. The threaded plate is threadedly engaged with the threaded rod. One end of each of the two connecting rods is rotatably mounted on the threaded plate, and the other end of each connecting rod is mounted on two sliding plates. The two sets of transmission mechanisms are located at both ends of the groove. By opening the drive mechanism, the threaded rod is driven to rotate, and then the threaded plate is driven to slide on the guide rod through the threaded relationship. In turn, the connecting rods drive the two sliding plates to slide inside the fixed box, and then the push rod pushes the fixed plate to fix the busbars of different specifications and sizes.
[0009] Preferably, the drive mechanism includes two turbines, a worm gear, and a fixed motor. The two turbines are mounted on two threaded rods, and the worm gear is rotatably mounted on the inner wall of the turbines, meshing with the turbines. The fixed motor is mounted on the outer wall of the fixed box, and the output end of the fixed motor is connected to the worm gear. By turning on the fixed motor, the worm gear is driven to rotate, and then the threaded rod is driven to rotate through the meshing relationship. Then, the threaded plate is driven to slide on the guide rod through the threaded relationship. In turn, the two sliding plates are driven to slide in the fixed box through the connecting rod. Finally, the fixed plate is pushed by the push rod to fix the busbars of different specifications and sizes.
[0010] Preferably, the lifting mechanism includes a lifting frame, a lifting plate, a lead screw, and a lifting motor. The lifting frame is installed on the top surface of the fixed box, the lifting plate is slidably installed on the lifting frame, and a mounting bracket is provided on the side wall of the lifting frame. The lead screw is rotatably installed on the mounting bracket and is threadedly engaged with the lifting plate. The lifting motor is installed on the mounting bracket, and the output end of the lifting motor is connected to the lifting plate. By turning on the lifting motor, the lead screw is driven to rotate, and then the lifting plate is driven to slide on the lifting frame through the meshing relationship, thereby assisting the cutting mechanism in lifting and cutting the busbar.
[0011] Preferably, the cutting mechanism includes a protective cover, a cutting blade, and a cutting motor. The protective cover is mounted on the lifting plate, the cutting blade is rotatably mounted inside the protective cover, and the cutting motor is mounted on the lifting plate. The output end of the cutting motor is connected to the cutting motor. By turning on the cutting motor, the cutting blade is driven to rotate, thereby cutting the busbar through the cutting blade.
[0012] Preferably, the pressing mechanism includes a bracket, a slide rod, a pressing block, a limiting plate, and a spring. The bracket is mounted on the lifting plate, the slide rod is slidably mounted on the bracket, the pressing block and the limiting plate are mounted at both ends of the slide rod, and the spring connects the limiting plate and the bracket. Two sets of pressing mechanisms are mounted on both sides of the cutting mechanism. By turning on the lifting motor, the lead screw is driven to rotate, and then the lifting plate is driven to slide downward on the lifting frame through the meshing relationship. The pressing block contacts the busbar, and then the slide rod slides on the bracket, which causes the spring to extend. The elasticity of the spring causes the two pressing blocks to fix the two ends of the cutting point of the busbar, improving the cutting quality. By turning on the cutting motor, the cutting blade is driven to rotate, and then the cutting blade cuts the busbar.
[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: the driving mechanism drives the transmission mechanism to drive the fixing mechanism to fix busbars of different specifications and sizes, the lifting mechanism assists the cutting mechanism to cut the busbars, and the pressing mechanism assists in pressing the two ends of the busbar cutting point, thereby improving the cutting quality. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the first isometric structure of this utility model;
[0015] Figure 2 This is a schematic diagram of the second isometric structure of this utility model;
[0016] Figure 3 This is a front view sectional isometric structural schematic diagram of this utility model;
[0017] Figure 4 This is a side view sectional isometric structural schematic diagram of this utility model;
[0018] Figure 5 This is a side view sectional structural schematic diagram of this utility model;
[0019] Figure 6 This is a top-view cross-sectional axonometric structural schematic diagram of this utility model;
[0020] The attached diagram is labeled as follows: 01, fixing mechanism; 11, fixing box; 12, sliding plate; 13, push rod; 14, fixing plate; 02, transmission mechanism; 21, threaded rod; 22, guide rod; 23, threaded plate; 24, connecting rod; 03, drive mechanism; 31, turbine; 32, worm gear; 33, fixed motor; 04, lifting mechanism; 41, lifting frame; 42, lifting plate; 43, lead screw; 44, lifting motor; 05, cutting mechanism; 51, protective cover; 52, cutting blade; 53, cutting motor; 06, pressing mechanism; 61, bracket; 62, sliding rod; 63, pressing block; 64, limiting plate; 65, spring. Detailed Implementation
[0021] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete.
[0022] Example 1
[0023] like Figures 1 to 6 As shown, a CNC fully automatic busbar machining center includes a cutting mechanism 05, a fixing mechanism 01, two sets of transmission mechanisms 02, a drive mechanism 03, a lifting mechanism 04, and two sets of pressing mechanisms 06. The transmission mechanism 02 is installed inside the fixing mechanism 01, the drive mechanism 03 is installed inside the fixing mechanism 01, the lifting mechanism 04 is installed on the fixing mechanism 01, the cutting mechanism 05 is installed on the lifting mechanism 04, and the pressing mechanism 06 is installed on the lifting mechanism 04.
[0024] The drive mechanism 03 drives the transmission mechanism 02 to drive the fixing mechanism 01 to fix the busbars of different specifications and sizes. The lifting mechanism 04 assists the cutting mechanism 05 in cutting the busbars. The pressing mechanism 06 assists in pressing the two ends of the busbar cutting point.
[0025] The fixing mechanism 01 includes a fixing box 11, four sliding plates 12, four push rods 13 and four fixing plates 14. The fixing box 11 is provided with fixing grooves and cutting grooves. The four sliding plates 12 are slidably installed in the fixing box 11. The two ends of the cutting grooves are installed in pairs of the four sliding plates 12. The four push rods 13 are installed on the four sliding plates 12. The four push rods 13 are slidably installed on the side wall of the fixing groove. The four fixing plates 14 are installed on the other end of the four push rods 13.
[0026] The transmission mechanism 02 includes a threaded rod 21, a guide rod 22, a threaded plate 23, and two connecting rods 24. The threaded rod 21 is rotatably mounted inside the fixed box 11, the guide rod 22 is mounted inside the fixed box 11, the threaded plate 23 is slidably mounted on the guide rod 22, and the threaded plate 23 is threadedly engaged with the threaded rod 21. One end of the two connecting rods 24 is rotatably mounted on the threaded plate 23, and the other end of the two connecting rods 24 is mounted on two sliding plates 12. The two sets of transmission mechanisms 02 are located at both ends of the groove.
[0027] The drive mechanism 03 includes two turbines 31, a worm gear 32, and a fixed motor 33. The two turbines 31 are mounted on two threaded rods 21. The worm gear 32 is rotatably mounted on the inner wall of the turbines 31. The turbines 31 mesh with the worm gear 32. The fixed motor 33 is mounted on the outer wall of the fixed box 11. The output end of the fixed motor 33 is connected to the worm gear 32.
[0028] By turning on the fixed motor 33, the worm gear 32 is driven to rotate, and then the threaded rod 21 is driven to rotate through the meshing relationship. Then, the threaded plate 23 is driven to slide on the guide rod 22 through the threaded relationship. Then, the two sliding plates 12 are driven to slide in the fixed box 11 through the connecting rod 24. Then, the fixed plate 14 is pushed by the push rod 13 to fix the busbars of different specifications and sizes. The lifting mechanism 04 assists the cutting mechanism 05 in cutting the busbars, and the pressing mechanism 06 assists in pressing the two ends of the busbar cutting point to improve the cutting quality.
[0029] Example 2
[0030] like Figure 2 As shown, a CNC fully automatic busbar machining center includes a cutting mechanism 05, a fixing mechanism 01, two sets of transmission mechanisms 02, a drive mechanism 03, a lifting mechanism 04, and two sets of pressing mechanisms 06. The transmission mechanism 02 is installed inside the fixing mechanism 01, the drive mechanism 03 is installed inside the fixing mechanism 01, the lifting mechanism 04 is installed on the fixing mechanism 01, the cutting mechanism 05 is installed on the lifting mechanism 04, and the pressing mechanism 06 is installed on the lifting mechanism 04.
[0031] The drive mechanism 03 drives the transmission mechanism 02 to drive the fixing mechanism 01 to fix the busbars of different specifications and sizes. The lifting mechanism 04 assists the cutting mechanism 05 in cutting the busbars. The pressing mechanism 06 assists in pressing the two ends of the busbar cutting point.
[0032] The lifting mechanism 04 includes a lifting frame 41, a lifting plate 42, a lead screw 43, and a lifting motor 44. The lifting frame 41 is installed on the top surface of the fixed box 11. The lifting plate 42 is slidably installed on the lifting frame 41. A mounting bracket is provided on the side wall of the lifting frame 41. The lead screw 43 is rotatably installed on the mounting bracket. The lead screw 43 is threadedly engaged with the lifting plate 42. The lifting motor 44 is installed on the mounting bracket. The output end of the lifting motor 44 is connected to the lifting plate 42.
[0033] The cutting mechanism 05 includes a protective cover 51, a cutting blade 52, and a cutting motor 53. The protective cover 51 is mounted on the lifting plate 42, the cutting blade 52 is rotatably mounted inside the protective cover 51, and the cutting motor 53 is mounted on the lifting plate 42. The output end of the cutting motor 53 is connected to the cutting motor 53.
[0034] The pressing mechanism 06 includes a bracket 61, a slide rod 62, a pressing block 63, a limiting plate 64, and a spring 65. The bracket 61 is mounted on the lifting plate 42, the slide rod 62 is slidably mounted on the bracket 61, the pressing block 63 and the limiting plate 64 are mounted at both ends of the slide rod 62, and the spring 65 connects the limiting plate 64 and the bracket 61. Two sets of pressing mechanisms 06 are mounted on both sides of the cutting mechanism 05.
[0035] The drive mechanism 03 drives the transmission mechanism 02 to drive the fixing mechanism 01 to fix the busbars of different specifications and sizes. The lifting motor 44 is turned on to drive the lead screw 43 to rotate. Then, through the meshing relationship, the lifting plate 42 slides down on the lifting frame 41. The pressing block 63 contacts the busbar, and the sliding rod 62 slides on the bracket 61, which causes the spring 65 to extend. The elasticity of the spring 65 fixes the two pressing blocks 63 at both ends of the cutting point of the busbar, improving the cutting quality. The cutting motor 53 is turned on to drive the cutting blade 52 to rotate, and the cutting blade 52 cuts the busbar.
[0036] like Figures 1 to 6 As shown, this utility model discloses a fully automatic CNC busbar machining center. During operation, the fixed motor 33 drives the worm gear 32 to rotate, which in turn drives the threaded rod 21 to rotate via meshing. The threaded plate 23 then slides on the guide rod 22 via the threaded connection, and the connecting rod 24 drives two sliding plates 12 to slide within the fixed box 11. The push rod 13 then pushes the fixed plate 14 to fix busbars of different sizes. The lifting motor 44 drives the lead screw 43 to rotate, which in turn drives the lifting plate 42 to slide downwards on the lifting frame 41 via meshing. The pressing block 63 contacts the busbar, causing the sliding rod 62 to slide on the bracket 61, thus extending the spring 65. The elasticity of the spring 65 fixes the two pressing blocks 63 at both ends of the busbar cutting point, improving the cutting quality. Finally, the cutting motor 53 drives the cutting blade 52 to rotate, and the cutting blade 52 cuts the busbar.
[0037] The fixed motor 33, lifting motor 44 and cutting motor 53 of this utility model are purchased from the market. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.
[0038] The main function achieved by this utility model is to facilitate the fixing and cutting of busbars of different specifications and sizes during the busbar processing process, thereby improving the cutting quality.
[0039] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A CNC fully automatic busbar machining center, comprising a cutting mechanism (05); characterized in that, It also includes a fixing mechanism (01), two sets of transmission mechanisms (02), a drive mechanism (03), a lifting mechanism (04), and two sets of pressing mechanisms (06). The transmission mechanism (02) is installed inside the fixing mechanism (01), the drive mechanism (03) is installed inside the fixing mechanism (01), the lifting mechanism (04) is installed on the fixing mechanism (01), the cutting mechanism (05) is installed on the lifting mechanism (04), and the pressing mechanism (06) is installed on the lifting mechanism (04). The driving mechanism (03) drives the transmission mechanism (02) to drive the fixing mechanism (01) to fix the busbars of different specifications and sizes. The lifting mechanism (04) assists the cutting mechanism (05) in cutting the busbars. The pressing mechanism (06) assists in pressing the two ends of the busbar cutting point.
2. The CNC fully automatic busbar machining center as described in claim 1, characterized in that, The fixing mechanism (01) includes a fixing box (11), four sliding plates (12), four push rods (13) and four fixing plates (14). The fixing box (11) is provided with a fixing groove and a cutting groove. The four sliding plates (12) are slidably installed in the fixing box (11). The four sliding plates (12) are installed in pairs at both ends of the cutting groove. The four push rods (13) are installed on the four sliding plates (12). The four push rods (13) are slidably installed on the side wall of the fixing groove. The four fixing plates (14) are installed on the other end of the four push rods (13).
3. The CNC fully automatic busbar machining center as described in claim 2, characterized in that, The transmission mechanism (02) includes a threaded rod (21), a guide rod (22), a threaded plate (23), and two connecting rods (24). The threaded rod (21) is rotatably mounted inside the fixed box (11), the guide rod (22) is mounted inside the fixed box (11), the threaded plate (23) is slidably mounted on the guide rod (22), and the threaded plate (23) is threadedly engaged with the threaded rod (21). One end of the two connecting rods (24) is rotatably mounted on the threaded plate (23), and the other end of the two connecting rods (24) is mounted on two sliding plates (12). The two sets of transmission mechanisms (02) are located at both ends of the groove.
4. The CNC fully automatic busbar machining center as described in claim 3, characterized in that, The drive mechanism (03) includes two turbines (31), a worm gear (32) and a fixed motor (33). The two turbines (31) are mounted on two threaded rods (21). The worm gear (32) is rotatably mounted on the inner wall of the turbine (31). The turbine (31) meshes with the worm gear (32). The fixed motor (33) is mounted on the outer wall of the fixed box (11). The output end of the fixed motor (33) is connected to the worm gear (32).
5. A CNC fully automatic busbar machining center as described in claim 2, characterized in that, The lifting mechanism (04) includes a lifting frame (41), a lifting plate (42), a lead screw (43), and a lifting motor (44). The lifting frame (41) is installed on the top surface of the fixed box (11). The lifting plate (42) is slidably installed on the lifting frame (41). A mounting bracket is provided on the side wall of the lifting frame (41). The lead screw (43) is rotatably installed on the mounting bracket. The lead screw (43) is threadedly engaged with the lifting plate (42). The lifting motor (44) is installed on the mounting bracket. The output end of the lifting motor (44) is connected to the lifting plate (42).
6. A CNC fully automatic busbar machining center as described in claim 5, characterized in that, The cutting mechanism (05) includes a protective cover (51), a cutting blade (52) and a cutting motor (53). The protective cover (51) is mounted on the lifting plate (42). The cutting blade (52) is rotatably mounted inside the protective cover (51). The cutting motor (53) is mounted on the lifting plate (42). The output end of the cutting motor (53) is connected to the cutting motor (53).
7. A CNC fully automatic busbar machining center as described in claim 5, characterized in that, The pressing mechanism (06) includes a bracket (61), a slide rod (62), a pressing block (63), a limiting plate (64), and a spring (65). The bracket (61) is mounted on the lifting plate (42), the slide rod (62) is slidably mounted on the bracket (61), the pressing block (63) and the limiting plate (64) are mounted on both ends of the slide rod (62), and the spring (65) connects the limiting plate (64) and the bracket (61). The two sets of pressing mechanisms (06) are mounted on both sides of the cutting mechanism (05).
Citation Information
Patent Citations
Bus arc machining center
CN209304238U