Pillar aluminum bus cutting and milling machine tool
By designing an integrated milling machine tool for cutting aluminum busbars with columns, including a milling device, a cross saw, and a vertical saw, the problems of large workload and long construction period caused by multiple hoisting operations in existing technologies have been solved, and efficient processing of aluminum busbars with columns has been achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- THE ELEVENTH METALLURGICAL CONSTR GRP
- Filing Date
- 2025-05-09
- Publication Date
- 2026-05-29
AI Technical Summary
In existing technologies, the processing of aluminum busbar columns requires multiple hoistings to different equipment for cutting and milling, resulting in a large workload and a long construction period.
Design a column aluminum busbar cutting and milling machine tool, including a busbar fixing frame, a support frame and a moving platform, integrating a milling device, a cross saw and a vertical saw, which can complete the cutting and milling of column aluminum busbars on the same machine tool, and realize the processing of multiple column aluminum busbars through the moving platform.
The cutting and milling processes of the aluminum busbar columns can be completed on the same machine tool, reducing the amount of hoisting work and shortening the construction cycle.
Smart Images

Figure CN224294887U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of sawing and milling devices, specifically a column aluminum busbar cutting and milling machine tool. Background Technology
[0002] As conductors that supply current to aluminum electrolysis cells, aluminum busbars in aluminum electrolysis cells have complex structures, are numerous, and require a large amount of processing work.
[0003] Currently, the technical method for processing aluminum busbar columns involves hoisting a single aluminum busbar to a large sawing machine for cutting, then hoisting it to a small sawing machine for further cutting, and finally hoisting it to a milling machine to mill the contact surface. However, this method involves a large amount of hoisting work and a long construction period. To address the shortcomings of existing technology, there is an urgent need for a milling machine for cutting aluminum busbar columns. Summary of the Invention
[0004] The purpose of this utility model is to provide a column aluminum busbar cutting and milling machine tool to address the shortcomings of existing technology.
[0005] In order to achieve the above-mentioned objectives of this utility model, the following technical solution is adopted:
[0006] A column-mounted aluminum busbar cutting and milling machine includes a busbar fixing frame for supporting and clamping multiple aluminum busbars to be processed; a support frame arranged parallel to the busbar fixing frame at intervals; and a moving platform on which a milling device, a cross saw, and a vertical saw are mounted and installed on the top of the support frame, and can move along the length extension direction of the support frame.
[0007] Furthermore, the column aluminum busbar cutting and milling machine tool of this utility model also includes an electrical control cabinet, which is installed on the mobile platform and electrically connected to the mobile platform, the milling device, the cross saw, and the vertical saw.
[0008] Furthermore, the busbar fixing frame includes support legs, multiple support legs are arranged in parallel with straight alignment and intervals, and adjacent support legs are connected by a first crossbeam and a second crossbeam that are vertically parallel and spaced apart; clamping angle steel, the clamping angle steel is parallel and spaced apart with the second crossbeam and connected by multiple clamping bolts, the multiple clamping bolts being spaced apart and parallel; supporting wedges, multiple supporting wedges are installed in parallel and spaced apart on one side of the first crossbeam, and the multiple supporting wedges are located above the clamping angle steel; and a third crossbeam, the third crossbeam is located below the clamping angle steel and is installed on the side of the multiple support legs, and multiple stops are installed in parallel and spaced apart along the length direction on the top of the third crossbeam.
[0009] Furthermore, the mobile platform includes a support platform, the bottom of which is slidably mounted on the top of a support frame; a reducer, which has an output shaft that passes downward through the support platform and is connected to a gear transmission; a rack and pinion guide, which is mounted on the top side of the support frame and meshes with the gear for transmission; and a platform drive motor, which is mounted on the support platform and is connected to the reducer for transmission.
[0010] Furthermore, the vertical saw includes a vertical saw drive motor and a vertical saw drive shaft, which is mounted on the moving platform via at least one bearing unit, with one end extending toward the busbar fixing frame and extending out of the moving platform to be drivenly connected to the first saw blade, and the other end being drivenly connected to the vertical saw drive motor, wherein the first saw blade is mounted vertically.
[0011] Furthermore, the cross saw includes a mounting frame; a first sliding table, the first sliding table being mounted on the side of the mounting frame; a cross saw drive motor, the cross saw drive motor having a cross saw output shaft and being mounted on the first sliding table via a motor frame; and a second saw blade, the second saw blade being horizontally mounted on the cross saw output shaft.
[0012] Furthermore, the milling device includes a second sliding table; a milling drive motor, which is mounted on the second sliding table via a motor frame; and a milling arm, with milling cutters mounted at both ends of the milling arm and connected to the milling drive motor for transmission.
[0013] Furthermore, the column aluminum busbar cutting and milling machine tool of this utility model also includes a loading platform, which is extended and installed on the side near the busbar fixing frame.
[0014] Furthermore, the loading platform includes a platform frame with multiple columns distributed and installed at the bottom of the platform frame; a staircase with the staircase installed at one or both ends of the platform frame; and a guardrail with the guardrail installed on the side of the platform frame away from the busbar fixing frame.
[0015] Furthermore, the support frame includes a base plate with base rods installed on both sides of its bottom; linear guides with two parallel linear guides spaced apart installed above the base plate, each linear guide being connected to the base plate by multiple uprights, and support plates installed between adjacent uprights, wherein two symmetrical uprights on both sides of the base plate are connected by bottom cross braces, and adjacent bottom cross braces are connected by bottom diagonal braces; a top cross brace, with two symmetrical support plates on both sides of the base plate connected by a top cross brace; and limiting baffles, with limiting baffles installed at both ends of each linear guide.
[0016] The advancements of this invention compared to the prior art are as follows:
[0017] This invention enables the simultaneous processing of multiple aluminum busbar columns, allowing the cutting process to be completed on a single machine tool, and also enabling the milling of the required conductive surfaces of the aluminum busbar columns. Specifically, during the cutting and milling process, a vertical saw is used to process the vertical plane of the aluminum busbar column; a horizontal saw is used to process the horizontal plane; and a milling device is used to mill the required conductive surfaces to the desired depth. A moving platform can drive the vertical saw, horizontal saw, and milling device to move along the top of the support frame, thus enabling the processing of multiple aluminum busbar columns installed on the busbar fixing frame. Attached Figure Description
[0018] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. In all the drawings, similar elements or parts are generally identified by similar reference numerals. In the drawings, the elements or parts are not necessarily drawn to scale.
[0019] Figure 1 This is a schematic diagram of the structure of a column aluminum busbar cutting and milling machine tool according to the present invention;
[0020] Figure 2 This is a schematic diagram of the busbar fixing frame in this utility model;
[0021] Figure 3 This is a schematic diagram of the structure of the mobile platform in this utility model.
[0022] Figure 4 This is a schematic diagram of the vertical saw in this utility model;
[0023] Figure 5 This is a schematic diagram of the cross saw structure in this utility model;
[0024] Figure 6 This is a schematic diagram of the milling device in this utility model;
[0025] Figure 7 This is a schematic diagram of the electrical control cabinet in this utility model;
[0026] Figure 8 This is a schematic diagram of the supporting frame in this utility model;
[0027] Figure 9 This is a schematic diagram of the material loading platform in this utility model;
[0028] The numbers in the diagram and the names of their corresponding components are as follows:
[0029] 1-Feeding platform, 101-Column, 102-Platform frame, 103-Platform plate, 104-Vertical bar, 105-Horizontal bar, 106-Baffle, 107-Stair beam, 108-Stair tread;
[0030] 2-Busbar fixing frame, 201-Base plate, 202-Support column, 203-First crossbeam, 204-Second crossbeam, 205-Reinforcing rib, 206-Supporting wedge, 207-Clamping angle steel, 208-Clamping bolt, 209-Third crossbeam, 210-Stop block;
[0031] 3-Support frame, 301-Base plate, 302-Reinforcing rib, 303-Supporting upright plate, 304-Bottom horizontal brace, 305-Bottom diagonal brace, 306-Top horizontal brace, 307-Rack and pinion guide rail, 308-Linear guide rail, 309-Upright pole, 310-Limiting baffle, 311-Reinforcing rib, 312-Reinforcing rib;
[0032] 4-Mobile platform, 401-First support platform, 402-Support column, 403-Second support platform, 404-Baffle, 405-Platform drive motor, 407-First belt, 408-First driven pulley, 409-First belt protective cover, 410-Reducer, 411-Output shaft, 412-Herringbone groove, 413-L-shaped groove;
[0033] 5-Vertical saw, 501-Vertical saw drive motor, 502-Second drive wheel, 503-Second belt, 504-Second driven wheel, 505-Second belt guard, 506-Bearing unit, 507-First saw blade, 508-Vertical saw drive shaft;
[0034] 6-Cross saw, 601-Cross saw drive motor, 602-Second saw blade, 603-Protective cover, 604-First motor frame, 605-First lead screw, 606-Sliding table, 607-Mounting bracket;
[0035] 7-Milling device, 701-Milling drive motor, 702-Milling arm, 703-Milling cutter, 704-Second motor frame, 705-Second lead screw, 706-Sliding table;
[0036] 8-Electrical control cabinet, 801-Mounting frame, 802-Cabinet body, 803-Primary and secondary electrical equipment. Detailed Implementation
[0037] To enable those skilled in the art to better understand the technical solutions in this application, the technical solutions of this utility model will be clearly and completely described below in conjunction with the accompanying drawings and embodiments. Obviously, the described embodiments are only a part of the embodiments in this application. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this application.
[0038] Example 1:
[0039] like Figure 1-9 As shown in the figure, this embodiment of an aluminum busbar cutting and milling machine tool includes a busbar fixing frame 2, a support frame 3, and a moving platform 4. The busbar fixing frame 2 is used to support and clamp multiple aluminum busbars to be processed; the support frame 3 is arranged parallel to the busbar fixing frame 2 at intervals; the moving platform 4 is equipped with a milling device 7, a cross saw 6, and a vertical saw 5, and is installed on the top of the support frame 3, and can move along the length extension direction of the support frame 3.
[0040] To facilitate unified power distribution, an electrical control cabinet 8 is added. The electrical control cabinet 8 is installed on the mobile platform 4 and is electrically connected to the mobile platform 4, the milling device 7, the cross saw 6, and the vertical saw 5.
[0041] The electrical control cabinet 8 can provide the same power to the mobile platform 4, milling device 7, cross saw 6, and vertical saw 5.
[0042] like Figure 7 As shown, the electrical control cabinet 8 is installed on the mobile platform 4 via the mounting frame 801, and the cabinet body 802 of the electrical control cabinet 8 is equipped with one or two electrical devices.
[0043] Understandably, the forward, backward, and stop movements of the mobile platform, the rotation and stop of the vertical saw blade, the rotation and stop of the horizontal saw blade, and the rotation and stop of the milling device are all controlled by operating the electrical control cabinet.
[0044] In some alternative embodiments, one structure for the busbar fixing frame is provided. For example... Figure 2 As shown, the busbar fixing frame 2 includes support legs, clamping angle steel 207, supporting wedges 206, and a third crossbeam 209. Multiple support legs are arranged in parallel with straight alignment, and adjacent support legs are connected by vertically parallel first crossbeams 203 and second crossbeams 204. The clamping angle steel 207 and the second crossbeam 204 are parallel and spaced apart, and connected by multiple clamping bolts 208, which are spaced apart and parallel. Multiple supporting wedges 206 are installed parallel and spaced apart on one side of the first crossbeam 203, and these wedges 206 are located above the clamping angle steel 207. The third crossbeam 209 is located below the clamping angle steel 207 and is installed on the side of the multiple support legs. Multiple stops 210 are installed parallel and spaced apart along the length of the top of the third crossbeam 209.
[0045] One structure of the support leg includes a support column 202 and a base plate 201, with the support column 202 vertically mounted on the base plate 201.
[0046] To enhance the load-bearing capacity of the supporting wedge 206, a reinforcing rib 205 is added. The supporting wedge 206 is installed at an angle on the side of the first crossbeam 203. One side of the reinforcing rib 205 is connected to the supporting wedge 206, and the other side is installed on the first crossbeam 203. The reinforcing rib enhances the load-bearing capacity of the supporting wedge. The supporting wedge is used to support the aluminum busbar columns installed on the busbar fixing frame.
[0047] One structure of the clamp bolt 208 includes a flat washer, a spring washer, a nut, and a screw. During installation, one end of the screw is fixedly installed on the second crossbeam 204, and the other end extends outward from the second crossbeam 204, through which the flat washer and spring washer are threaded together before being connected to the nut.
[0048] Understandably, there is a gap between the clamp angle steel 207 and the second crossbeam, which facilitates the passage of the column aluminum busbar between the clamp angle steel and the second crossbeam. Then, the clamp bolts are used to press the clamp angle steel onto the column aluminum busbar, so that the clamp angle steel and the second crossbeam can clamp and fix the column aluminum busbar.
[0049] The third crossbeam 209 supports the aluminum busbar of the column, preventing it from falling downwards and ensuring its stable installation on the busbar fixing frame. The baffle 210 on the third crossbeam blocks the aluminum busbar, preventing it from sliding.
[0050] It should be noted that, as Figure 1 As shown, the aluminum busbar is installed at an angle on the busbar fixing frame.
[0051] In some alternative embodiments, one architecture of the mobile platform is provided. For example... Figure 3 As shown, the mobile platform 4 includes a support platform, a reducer 410, a rack and pinion guide rail 307, and a platform drive motor 405. The bottom of the support platform is slidably mounted on the top of the support frame 3; the reducer 410 has an output shaft 411, which passes downward through the support platform and is connected to a gear (not shown in the figure) for transmission; the rack and pinion guide rail 307 is mounted on the top side of the support frame 3 and meshes with the gear for transmission; the platform drive motor 405 is mounted on the support platform and is connected to the reducer 410 for transmission.
[0052] The support platform includes a first support platform 401, a second support platform 403, and support columns 402. The first support platform 401 and the second support platform 403 are connected by multiple support columns 402. The number of support columns 402 can be 3 or 4.
[0053] The first support platform can be used to mount the vertical saw 5. The second support platform can be used to mount the cross saw 6 and the milling device 7.
[0054] It should be noted that the gear is installed at the bottom of the support platform and is used to mesh and drive with the rack guide rail installed on the side of the support frame.
[0055] A transmission connection between a platform drive motor and a reducer is provided, comprising a first driving wheel, a first belt 407, and a first driven wheel 408. The platform drive motor has an output shaft, the first driving wheel is fitted onto the output shaft and connected via a key, and the first driven wheel 408 is fitted onto the input shaft of the reducer and connected via a key. The first driving wheel and the first driven wheel 408 are connected via the first belt 407. In use, the platform drive motor drives the output shaft to rotate, which in turn drives the first driving wheel to rotate. The first driving wheel, via the first belt 407, drives the first driven wheel 408 to rotate, which in turn drives the input shaft of the reducer to rotate. The input shaft then drives the reducer to operate, and the output shaft 411 of the reducer drives a gear to rotate. The gear meshes with a rack and pinion guide, allowing the gear to move along the length of the rack and pinion guide, thereby moving the support platform.
[0056] To protect the first belt, a first belt protective cover 409 is installed. One end of the first belt protective cover 409 is fitted onto the first belt 407, and the other end is mounted on the support platform. The first belt protective cover can cover the first belt and prevent it from being exposed.
[0057] In some alternative embodiments, one structure of the vertical saw is provided. For example... Figure 4 As shown, the vertical saw 5 includes a vertical saw drive motor 501 and a vertical saw drive shaft 508. The vertical saw drive shaft 508 is mounted on the moving platform 4 via at least one bearing unit 506, and one end extends toward the busbar fixing frame 2 and extends out of the moving platform 4 to be drivenly connected to the first saw blade 507, and the other end is drivenly connected to the vertical saw drive motor 501. The first saw blade 507 is mounted vertically.
[0058] The number of bearing units 506 mounted on the vertical saw drive shaft can be 1, 2, or 3. In this example, two bearing units 506 are installed, with the two bearing units 506 spaced apart on the vertical saw drive shaft.
[0059] A transmission connection between the vertical saw drive motor 501 and the vertical saw drive shaft 508 includes the addition of a second drive wheel 502, a second belt 503, and a second driven wheel 504. The output shaft of the vertical saw drive motor 501 is connected to the second drive wheel 502, the second drive wheel 502 is fitted onto the output shaft and connected via a key, the second driven wheel 504 is fitted onto the vertical saw drive shaft 508 and connected via a key, and the second drive wheel 502 and the second driven wheel 504 are connected via the second belt 503.
[0060] To protect the second belt, a second belt protective cover 505 is installed. One end of the second belt protective cover 505 is fitted onto the second belt, and the other end is installed on the first support platform 401. The second belt protective cover covers the second belt, preventing it from being exposed.
[0061] During operation, the vertical saw drive motor 501 drives the output shaft to rotate, which in turn drives the second drive wheel 502 to rotate. The second drive wheel 502 drives the second driven wheel 504 to rotate via the second belt. The second driven wheel 504 drives the vertical saw drive shaft 508 to rotate, which in turn drives the first saw blade 507 to rotate. The first saw blade can then cut and process the aluminum busbar of the column.
[0062] In some alternative embodiments, one structure of the cross-saw is provided. For example... Figure 5 As shown, the cross saw 6 includes a mounting frame, a first sliding table 606, a cross saw drive motor 601, and a second saw blade 602. The first sliding table 606 is mounted on the side of the mounting frame; the cross saw drive motor 601 has a cross saw output shaft and is mounted on the first sliding table 606 via a first motor bracket 604; the second saw blade 602 is horizontally mounted on the cross saw output shaft.
[0063] The first sliding table 606 can drive the first motor frame 604 to move, and the first motor frame 604 drives the cross saw drive motor 601 to move.
[0064] To protect the second saw blade, a protective cover 603 is added. For example... Figure 5 As shown, the protective cover 603 has an open arc-shaped structure, which allows the second saw blade to extend out of the protective cover for cutting.
[0065] The protective cover 603 can be installed on the end face of the cross saw drive motor.
[0066] One structure of the mounting bracket includes multiple mounting columns 607, which are installed in parallel at intervals on a support platform.
[0067] In some alternative embodiments, one structure of the milling apparatus is provided. For example... Figure 6 As shown, the milling device 7 includes a second sliding table 706, a milling drive motor 701, and a milling arm 702. The milling drive motor 701 is mounted on the second sliding table 706 via a second motor frame 704; milling cutters 703 are mounted at both ends of the milling arm 702 and are connected to the milling drive motor 701 for transmission.
[0068] The milling drive motor 701 is adjustable via the second sliding table 706. During milling, the milling drive motor can be moved towards the column aluminum busbar via the second sliding table, thereby adjusting the machining distance between the milling cutter on the milling arm and the column aluminum busbar.
[0069] During operation, the milling drive motor 701 drives the milling arm 702 to rotate, and the milling arm 702 in turn drives the milling cutter 703 to rotate.
[0070] It should be noted that the first and second sliding stages are commonly used existing sliding stages. Manual sliding stages can be selected. The sliding stage includes a lead screw, a guide rail, a slider, and a base. The guide rail is mounted on the base, one end of the slider is slidably mounted on the guide rail, and the lead screw passes through the other end of the slider, with a threaded connection between the lead screw and the slider. After passing through the slider, the lead screw is rotatably connected to the base. Turning the first lead screw 605 and the second lead screw 705 drives the slider to move along the guide rail, which in turn moves the second motor frame mounted on it.
[0071] In some optional embodiments, a loading platform 1 is added to facilitate the installation of the aluminum busbar column onto the busbar fixing frame. The loading platform 1 extends and is installed on the side closest to the busbar fixing frame 2. When hoisting the aluminum busbar column onto the busbar fixing frame, the operator can stand on the loading platform, which facilitates the hoisting of the aluminum busbar column. The loading platform provides an operating platform for the operator to perform the hoisting.
[0072] In some alternative embodiments, one structure of the loading platform is provided. For example... Figure 9 As shown, the loading platform 1 includes a platform frame 102, stairs, and guardrails. Multiple columns 101 are installed at the bottom of the platform frame 102; stairs are installed at one or both ends of the platform frame 102; and guardrails are installed on the side of the platform frame 102 away from the busbar fixing frame 2.
[0073] The platform frame can accommodate the required number of stairs; therefore, one or two stairs can be installed, etc. The stairs provide easy access for operators to climb the platform frame.
[0074] One structure of the staircase includes stair beams 107 and stair treads 108. Two stair beams 107 are arranged parallel to each other at intervals, and multiple stair treads 108 are installed parallel to each other at intervals between the two stair beams 107. The stair treads and stair beams are installed at an angle.
[0075] One structure of the guardrail includes vertical bars 104, horizontal bars 105, and baffles 106. Multiple vertical bars 104 are installed parallel to each other at intervals along one side of the platform frame 103. The multiple vertical bars 104 are connected by parallel horizontal bars 105 at vertical intervals. Baffles 106 are installed at the bottom of the multiple vertical bars. Baffles 106 prevent items on the top of the platform frame from falling downwards.
[0076] In some alternative embodiments, one structure of the support frame is provided. For example... Figure 8As shown, the support frame 3 includes a base plate 301, linear guide rails 308, top cross braces 306, and limiting baffles 301. Base rods 311 are installed on both sides of the bottom of the base plate 301; two parallel linear guide rails 308 are installed at intervals on the top of the base plate 301, each linear guide rail 308 being connected to the base plate 301 by multiple uprights 309, and supporting uprights 303 are installed between adjacent uprights 309. Two symmetrical uprights on both sides of the base plate 301 are connected by bottom cross braces 304, and adjacent bottom cross braces 304 are connected by bottom diagonal braces 305; the two symmetrical supporting uprights 303 on both sides of the base plate 301 are connected by top cross braces 306; and limiting baffles 301 are installed at both ends of each linear guide rail 308.
[0077] like Figure 8 As shown, a rack guide 307 is mounted on the side of a linear guide corresponding to the gear used on the mobile platform. One side of the bottom of the first support platform 401 has an "L"-shaped groove 413, and the other side has a herringbone-shaped groove 412. The herringbone-shaped groove 412 is slidably connected to the linear guide on which the rack guide is mounted. Figure 3 As shown, the "V"-shaped groove fits onto the linear guide rail, preventing the "V"-shaped slide from touching the rack guide rail. The other linear guide rail is slidably connected to the "L"-shaped slide 413.
[0078] Limiting baffles 310 are installed at both ends of the linear guide rail, which can prevent the moving platform from slipping.
[0079] Multiple bottom crossbars 304 and multiple bottom diagonal braces 305 can enhance the load-bearing capacity of the base plate.
[0080] A top cross brace 306 is installed between two symmetrical support plates 303 on both sides of the base plate. The top cross brace 306 can limit the distance between the two linear guide rails and prevent the moving platform from shaking when sliding on the two linear guide rails.
[0081] The working principle of this utility model is as follows:
[0082] Install this utility model on a foundation that meets the requirements, hoist the aluminum busbar to be processed onto the busbar fixing frame 2, and fix the aluminum busbar.
[0083] Adjust the installation position of the vertical saw 5 so that the outer vertical plane of the first saw blade 507 of the vertical saw 5 is located at the vertical plane of the column aluminum busbar cutting.
[0084] The first sliding table 606 drives the horizontal saw drive motor 601 to move, and the second saw blade 602 moves accordingly. When the cutting depth of the second saw blade 602 meets the cutting size requirements, the first sliding table is stopped, the saw drive motor 601 and the second saw blade 602 stop moving, and the horizontal cutting depth during the processing of the column aluminum busbar is fixed.
[0085] The second sliding table 706 drives the milling drive motor 701 to move, and the milling arm 702 follows. The milling arm drives the milling cutter 703 to move. When the milling dimensions and the resulting conductive surface dimensions meet the requirements, the second sliding table is stopped, and the milling drive motor 701 and the milling arm 702 stop moving. The milling depth and conductive surface during the machining of the column aluminum busbar are then determined.
[0086] The electrical control cabinet 8 controls the movement of the mobile platform 4 along the top of the support frame 3. The electrical control cabinet 8 controls the rotation of the vertical saw drive motor 501 of the vertical saw 5, which drives the second drive wheel 502 to rotate. The second belt 503 drives the second driven wheel 504 to rotate, and the first saw blade 507 rotates accordingly. With the movement of the mobile platform 4, the aluminum busbar to be processed can be cut vertically. The electrical control cabinet 8 controls the rotation of the cross saw drive motor 601 of the cross saw 6. The cross saw drive motor 601 drives the second saw blade 602 to rotate. With the movement of the mobile platform 4, the aluminum busbar to be processed can be cut horizontally, and the aluminum block falls off after cutting. The electrical control cabinet 8 controls the rotation of the milling drive motor 701 of the milling device 7. The milling drive motor 701 drives the milling arm 702 to rotate, and the milling arm 702 drives the milling cutter 703 mounted on it to rotate. With the movement of the mobile platform 4, the aluminum busbar to be processed can be milled.
[0087] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A column aluminum busbar cutting and milling machine tool, characterized in that: include Busbar fixing frame (2), the busbar fixing frame (2) is used to support and clamp multiple aluminum busbars to be processed; Support frame (3), wherein the support frame (3) and the busbar fixing frame (2) are arranged parallel to each other at intervals; and The mobile platform (4) is equipped with a milling device (7), a cross saw (6), and a vertical saw (5), and is mounted on the top of the support frame (3), and can move along the length extension direction of the support frame (3).
2. The column aluminum busbar cutting and milling machine tool according to claim 1, characterized in that: It also includes an electrical control cabinet (8), which is installed on the mobile platform (4) and electrically connected to the mobile platform (4), the milling device (7), the cross saw (6), and the vertical saw (5).
3. The column aluminum busbar cutting and milling machine tool according to claim 1, characterized in that: The busbar fixing frame (2) includes Support legs, multiple support legs are arranged in a straight line with intervals and parallel, and adjacent support legs are connected by a first crossbeam (203) and a second crossbeam (204) that are vertically parallel and spaced apart; The clamping angle steel (207) is parallel and spaced with the second crossbeam (204) and connected by multiple clamping bolts (208), which are spaced and parallel. Supporting wedges (206) are installed in parallel at intervals on one side of the first crossbeam (203), and the supporting wedges (206) are located above the clamp angle steel (207). as well as The third crossbeam (209) is located below the clamp angle steel (207) and is installed on the side of multiple support legs. Multiple stops (210) are installed at intervals along the length direction on the top of the third crossbeam (209).
4. The column aluminum busbar cutting and milling machine tool according to claim 1, characterized in that: The mobile platform (4) includes A support platform, the bottom of which is slidably mounted on the top of the support frame (3); The reducer (410) is provided with an output shaft (411), which passes downward through the support platform and is connected to the gear transmission. A rack and pinion guide (307) is mounted on the top side of the support frame (3) and is connected to the gear for transmission. A platform drive motor (405) is mounted on a support platform and is connected to a reducer (410) for transmission.
5. The column aluminum busbar cutting and milling machine tool according to claim 1, characterized in that: The vertical saw (5) includes Vertical saw drive motor (501); and The vertical saw drive shaft (508) is mounted on the moving platform (4) via at least one bearing unit (506), with one end extending toward the busbar fixing frame (2) and extending out of the moving platform (4) to be connected to the first saw blade (507) in a transmission connection, and the other end being connected to the vertical saw drive motor (501). The first saw blade (507) is mounted vertically.
6. The column aluminum busbar cutting and milling machine tool according to claim 1, characterized in that: The cross saw (6) includes a mounting bracket; A first sliding table (606) is mounted on the side of the mounting bracket; A cross-saw drive motor (601), the cross-saw drive motor (601) having a cross-saw output shaft, and mounted on a first sliding table (606) via a first motor frame (604); and The second saw blade (602) is horizontally mounted on the output shaft of the cross saw.
7. The column aluminum busbar cutting and milling machine tool according to claim 1, characterized in that: The milling device (7) includes Second sliding stage (706); A milling drive motor (701) is mounted on a second sliding table (706) via a second motor frame (704); as well as A milling arm (702) is provided, with milling cutters (703) mounted at both ends and connected to a milling drive motor (701) for transmission.
8. The column aluminum busbar cutting and milling machine tool according to any one of claims 1-7, characterized in that: It also includes a loading platform (1), which is installed on one side near the busbar fixing frame (2).
9. The column aluminum busbar cutting and milling machine tool according to claim 8, characterized in that: The loading platform (1) includes Platform frame (102), with multiple columns (101) distributed and installed at the bottom of the platform frame (102); Staircase, wherein the staircase is installed at one or both ends of the platform frame (102); and The guardrail is installed on the side of the platform frame (102) away from the busbar fixing frame (2).
10. The column aluminum busbar cutting and milling machine tool according to claim 8, characterized in that: The support frame (3) includes A base plate (301) is provided, and base rods (311) are installed on both sides of the bottom of the base plate (301); Linear guide rail (308): Two parallel linear guide rails (308) are installed on the top of the base plate (301). Each linear guide rail (308) is connected to the base plate (301) by multiple uprights (309). A support plate (303) is installed between adjacent uprights (309). Two symmetrical uprights on both sides of the base plate (301) are connected by bottom cross braces (304). Adjacent bottom cross braces (304) are connected by bottom diagonal braces (305). A top horizontal brace (306) is provided, and the two symmetrical support plates (303) on both sides of the base plate (301) are connected by the top horizontal brace (306); and Limiting baffles (310) are installed at both ends of each linear guide rail (308).