Laser cutting equipment for automobile battery bracket part machining

By designing a laser cutting equipment containing feeding components, the safety hazards and low operating efficiency of manual propulsion feeding in the prior art are solved, and the efficient and stable operation process of automated feeding and cutting processes of automotive battery bracket parts are achieved.

CN120206037APending Publication Date: 2025-06-27CHONGQING HONGXIECHENG AUTO PARTS CO LTD
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Patent Information

Application Number
CN202510415620.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2025-06-27

AI Technical Summary

Technical Problem

When cutting existing laser cutting equipment, ordinary robots cannot be fed with large-length automotive battery bracket parts, and manual pushing and feeding is required, which increases the work content of the operator and poses safety hazards.

Method used

A laser cutting device including a laser cutting machine, a conveyor table and a feed assembly is designed. The feeding assembly includes a lifting frame, a drive plate, a push member, a bidirectional screw, a lifting motor, a driving member and a guide member. Through the coordinated work of these components, the automatic feeding of the parts is realized.

Benefits of technology

It realizes safer and more convenient feeding of automobile battery bracket parts, ensures efficient and stable overall cutting process, and reduces the risk and workload of manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of laser cutting equipment, in particular to laser cutting equipment for automobile battery bracket part machining, which comprises a laser cutting machine, a conveying table and a feeding assembly, the feeding assembly comprises a lifting frame, driving plates, pushing pieces, a two-way lead screw, a lifting motor, a driving component and a guiding component, the lifting frame is slidably installed in the conveying table, the two driving plates are slidably installed on the two sides of the interior of the conveying table correspondingly, the pushing pieces are rotationally installed on the two sides of each driving plate, and the two sides of each pushing piece are rotationally connected with the corresponding driving plate and the lifting frame correspondingly; the two sides of the two-way lead screw are in threaded connection with the two driving plates correspondingly, and the two-way lead screw is rotationally installed in the conveying table. The output shaft of the lifting motor is connected with the two-way lead screw, the driving component is connected with the lifting frame, the guide component is connected with the lifting frame, the automobile battery bracket parts can be fed more safely and conveniently through the arranged components, and therefore it is guaranteed that the whole cutting process is efficient and stable.
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Description

Technical Field

[0001] The present invention relates to the technical field of laser cutting equipment, and particularly relates to a laser cutting equipment for processing automotive battery bracket parts. Background Art

[0002] In order to meet the specific shape and size requirements of automotive battery bracket parts, it is usually necessary to cut the automotive battery bracket parts. However, traditional mechanical cutting has low cutting efficiency and limited cutting accuracy when cutting parts.

[0003] Currently, laser cutting equipment is used. Based on the thermal effect between a high-power density laser beam and the material, through the interaction between the laser and the material, the melting, vaporization or combustion of the material is realized, so as to achieve the purpose of cutting. In this process, the high energy density of the laser beam enables a very fast cutting speed and can achieve extremely high cutting accuracy.

[0004] However, when the existing laser cutting equipment is cutting, for automotive battery bracket parts with a large length, ordinary manipulators cannot be used for feeding. Mostly, manual feeding of the processing material is required. This will not only increase the workload of the operator, but also easily cause collisions with the transmission mechanism during manual feeding, resulting in unnecessary operation accidents, making it impossible to cut the automotive battery bracket parts efficiently and safely during actual operation. Summary of the Invention

[0005] The purpose of the present invention is to provide a laser cutting equipment for processing automotive battery bracket parts, which can feed the automotive battery bracket parts more safely and conveniently through the provided components, so as to ensure the high-efficiency and stability of the entire cutting process.

[0006] To achieve the above purpose, the present invention provides a laser cutting equipment for processing automotive battery bracket parts, including a laser cutting machine and a conveying table. The laser cutting machine is installed on one side of the conveying table, and further includes a feeding component.

[0007] The feeding assembly includes a lifting frame, a driving plate, a pushing member, a bidirectional lead screw, a lifting motor, a driving component, and a guiding component. The lifting frame is slidably installed in the conveying table. Two driving plates are respectively slidably installed on both sides inside the conveying table. The pushing member is rotatably installed on both sides of each driving plate, and both sides of the pushing member are respectively rotationally connected to the driving plate and the lifting frame. The two sides of the bidirectional lead screw are respectively threadedly connected to the two driving plates, and the bidirectional lead screw is rotatably installed in the conveying table. The output shaft of the lifting motor is connected to the bidirectional lead screw, and the lifting motor is fixedly installed on one side of the conveying table. The driving component is connected to the lifting frame and is used to guide the movement of the processing parts above the conveying table. The guiding component is connected to the lifting frame and is used to guide the moving direction of the processing parts above the conveying table.

[0008] Among them, the driving component includes a mounting bracket, a driving roller, and a rotating component. The mounting bracket is fixedly installed on the lifting frame. The driving roller is rotatably installed on the mounting bracket. The rotating component is connected to the mounting bracket and is used to drive the driving roller.

[0009] Among them, the guiding component includes a fixed bracket, a rolling column, an adjusting frame, a guiding column, and an adjusting component. The fixed bracket is fixedly installed on the lifting frame. The rolling column is rotatably installed on the fixed bracket. Two adjusting frames are slidably installed on both sides of the fixed bracket. The guiding column is rotatably installed on each adjusting frame. The adjusting component is connected to the fixed bracket and is used to drive the two adjusting frames.

[0010] Among them, the rotating component includes a driving gear, an intermediate gear, a rotating gear, and a rotating motor. The driving gear is fixedly installed on one side of the driving roller. The intermediate gear meshes with the driving gear and is rotatably installed on one side of the mounting bracket. The rotating gear meshes with the intermediate gear and is rotatably installed on one side of the mounting bracket. The output shaft of the rotating motor is connected to the rotating gear, and the rotating motor is fixedly installed on one side of the mounting bracket.

[0011] Among them, the adjusting component includes a double-headed threaded rod, a sleeved gear, a driving gear, and a driving motor. The two sides of the double-headed threaded rod are respectively threadedly connected to the two adjusting frames, and the double-headed threaded rod is rotatably installed on the fixed bracket. The sleeved gear is fixedly sleeved on the double-headed threaded rod. The driving gear meshes with the sleeved gear and is rotatably installed on the fixed bracket. The output shaft of the driving motor is connected to the driving gear, and the driving motor is fixedly installed on one side of the fixed bracket.

[0012] Among them, the feeding assembly further includes a guide rail bracket, a pushing box, a pushing screw, a pushing motor and a clamping member. The guide rail bracket is fixedly installed on one side of the conveying table; the pushing box is slidably connected to the guide rail bracket and is slidably installed on one side of the conveying table; the pushing screw is threadedly connected to the pushing box and is rotatably installed on one side of the guide rail bracket; the output shaft of the pushing motor is connected to the pushing screw, and the pushing motor is fixedly installed on one side of the guide rail bracket; the clamping member is connected to the pushing box and is used for clamping the end of the part to be processed and completing subsequent pushing and feeding.

[0013] Among them, the clamping member includes a rotating frame, a rotating motor, a movable bracket, a lifting bracket, an adjusting component and a clamping component. The rotating frame is rotatably installed on one side of the pushing box; the output shaft of the rotating motor is connected to the rotating frame, and the rotating motor is fixedly installed on one side of the pushing box; the movable bracket is slidably installed on the rotating frame; the lifting bracket is slidably installed on the movable bracket; the adjusting component is connected to the rotating frame and is used for driving the movable bracket and the lifting bracket; two groups of the clamping components are respectively connected to the rotating frame and the lifting bracket and are used for clamping the processing part.

[0014] Among them, the adjusting component includes a movable lead screw, a movable motor, a lifting lead screw and a lifting motor. The movable lead screw is threadedly connected to the movable bracket and is rotatably installed on the rotating frame; the output shaft of the movable motor is connected to the movable lead screw, and the movable motor is fixedly installed on one side of the rotating frame; the lifting lead screw is threadedly connected to the lifting bracket and is rotatably installed on one side of the movable bracket; the output shaft of the lifting motor is connected to the lifting lead screw, and the lifting motor is fixedly installed on one side of the movable bracket.

[0015] Among them, the clamping component includes a clamping frame, a clamping plate, a clamping mating lead screw and a clamping motor. Two clamping frames are respectively fixedly installed on the rotating frame and the lifting bracket; two clamping plates are slidably installed on each clamping frame; the clamping mating lead screw is rotatably installed on each clamping frame, and both sides of the clamping mating lead screw are threadedly connected to the corresponding two clamping plates respectively; the output shaft of the clamping motor is connected to the clamping mating lead screw, and the clamping motor is fixedly installed on one side of the clamping frame.

[0016] A laser cutting device for processing automobile battery bracket parts according to the present invention, the laser cutting machine is provided with a blanking inclined table for rapid blanking, so that after the parts are cut, the parts can be dropped and collected through the provided inclined table. The laser cutting machine is arranged on one side of the conveying table, and the end of the conveying table is matched with the feeding port of the laser cutting machine;

[0017] The lifting frame matches the sliding grooves arranged inside the conveying table. At the same time, a plurality of guide posts for guiding the lifting frame are also arranged inside the conveying table. The two driving plates slidably installed at the bottom of the conveying table are connected to the connecting bosses arranged at the bottom of the lifting frame through the arranged pushing members. Both sides where the pushing members are connected can rotate. The two driving plates are driven by the bidirectional lead screw, and the bidirectional lead screw is driven by the lifting motor. The thread directions on both sides of the bidirectional lead screw are opposite. When the bidirectional lead screw rotates, the two driving plates on both sides will move inwards or outwards synchronously. Then, through the synchronous movement of the two driving plates on both sides and in cooperation with the pushing members, the lifting frame can be driven to slide up and down. In this way, by using the movement of the lifting frame, the matching height of the driving member and the guiding member at the top of the lifting frame can be changed, so that the guiding height of the parts to be guided can be adjusted. By adjusting the guiding height of the parts, the parts can be matched with the clamping members arranged on the side of the pushing box, and then the clamping members can clamp the parts. After that, through the movement of the pushing box on the conveying table, the stable and rapid feeding of the parts is completed, realizing the more safe and convenient feeding of the automotive battery bracket parts through the arranged components, thus ensuring the high-efficiency and stability of the entire cutting process. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art.

[0019] Figure 1 It is a schematic structural diagram of the laser cutting equipment for processing automotive battery bracket parts of the present invention.

[0020] Figure 2 It is of the present invention Figure 1 Enlarged view of part A.

[0021] Figure 3 It is a schematic structural diagram of the installation of the driving screw of the present invention.

[0022] Figure 4 It is a schematic structural diagram of the installation of the rotating motor of the present invention.

[0023] Figure 5 It is a schematic sectional view of the conveying table of the present invention.

[0024] Figure 6 It is a schematic structural diagram of the guiding member of the present invention.

[0025] Figure 7 It is a schematic structural diagram of the installation of the sleeved gear of the present invention.

[0026] Figure 8 It is a schematic diagram of the installation structure of the driving gear of the present invention.

[0027] Figure 9 It is a schematic diagram of the installation structure of the clamping and cooperating lead screw of the present invention.

[0028] In the figure: 101 - laser cutting machine, 102 - conveying table, 103 - lifting frame, 104 - driving plate, 105 - pushing member, 106 - bidirectional lead screw, 107 - lifting motor, 201 - mounting bracket, 202 - driving roller, 203 - driving gear, 204 - intermediate gear, 205 - rotating gear, 206 - rotating motor, 301 - fixing bracket, 302 - rolling column, 303 - adjusting frame, 304 - guiding column, 305 - double-headed threaded rod, 306 - sleeved gear, 307 - driving gear, 308 - driving motor, 401 - guide rail bracket, 402 - pushing box, 403 - pushing screw, 404 - pushing motor, 501 - rotating frame, 502 - rotating motor, 503 - movable bracket, 504 - lifting bracket, 505 - movable lead screw, 506 - movable motor, 507 - lifting lead screw, 508 - lifting motor, 509 - clamping frame, 510 - clamping plate, 511 - clamping and cooperating lead screw, 512 - clamping motor. Detailed implementation manners

[0029] The embodiments of the present invention will be described in detail below. The examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to explain the present invention and should not be construed as a limitation to the present invention.

[0030] In the description of the present invention, it should be understood that the meaning of "a plurality of" is two or more unless otherwise specifically defined.

[0031] Please refer to Figures 1 to 9, the present invention provides a laser cutting device for processing automotive battery bracket parts: including a laser cutting machine 101, a conveying table 102 and a feeding component. The feeding component includes a lifting frame 103, a driving plate 104, a pushing member 105, a bidirectional lead screw 106, a lifting motor 107, a driving component and a guiding component. The driving component includes a mounting bracket 201, a driving roller 202 and a rotating component. The guiding component includes a fixed bracket 301, a rolling column 302, an adjusting frame 303, a guiding column 304 and an adjusting component. The rotating component includes a driving gear 203, an intermediate gear 204, a rotating gear 205 and a rotating motor 206. The adjusting component includes a double-headed threaded rod 305, a sleeved gear 306, a driving gear 307 and a driving motor 308. Through the foregoing solution, the problem that existing laser cutting devices cannot use ordinary manipulators for feeding when cutting automotive battery bracket parts with larger lengths is solved. Mostly, manual feeding of processing materials is required. This not only increases the work content of operators but also easily causes collisions with the transmission mechanism during manual feeding, resulting in unnecessary operation accidents, making it impossible to efficiently and safely cut automotive battery bracket parts during actual operation.

[0032] Further, the laser cutting machine 101 is installed on one side of the conveying table 102. The lifting frame 103 is slidably installed in the conveying table 102. Two driving plates 104 are respectively slidably installed on both sides inside the conveying table 102. The pushing member 105 is rotatably installed on both sides of each driving plate 104. Both sides of the pushing member 105 are respectively rotatably connected to the driving plate 104 and the lifting frame 103. The bidirectional lead screw 106 is respectively threadedly connected to the two driving plates 104. The bidirectional lead screw 106 is rotatably installed in the conveying table 102. The output shaft of the lifting motor 107 is connected to the bidirectional lead screw 106. The lifting motor 107 is fixedly installed on one side of the conveying table 102. The driving component is connected to the lifting frame 103 for guiding the movement of the processing parts above the conveying table 102. The guiding component is connected to the lifting frame 103 for guiding the moving direction of the processing parts above the conveying table 102.

[0033] Further, the laser cutting machine 101 is provided with a blanking inclined table for rapid blanking, so that the parts can be dropped and collected through the provided inclined table after being cut. The laser cutting machine 101 is installed on one side of the conveying table 102. The end of the conveying table 102 is matched with the feeding port of the laser cutting machine 101.

[0034] The lifting frame 103 matches the sliding grooves provided inside the conveying table 102. At the same time, a plurality of guide posts for guiding the lifting frame 103 are also provided inside the conveying table 102. The two driving plates 104 slidably mounted at the bottom of the conveying table 102 are connected to the connecting bosses provided at the bottom of the lifting frame 103 through the provided pushing member 105. Both sides where the pushing member 105 is connected can rotate. The two driving plates 104 are driven by the bidirectional lead screw 106, and the bidirectional lead screw 106 is driven by the lifting motor 107. The thread directions on both sides of the bidirectional lead screw 106 are opposite. When the bidirectional lead screw 106 rotates, the two driving plates 104 on both sides will move inwards or outwards synchronously. Then, through the synchronous movement of the two driving plates 104 and the cooperation of the pushing member 105, the lifting frame 103 can be driven to slide up and down. In this way, by using the movement of the lifting frame 103, the matching height of the driving member and the guiding member at the top of the lifting frame 103 can be changed, so that the guiding height of the parts to be guided can be adjusted.

[0035] Further, the mounting bracket 201 is fixedly mounted on the lifting frame 103; the driving roller 202 is rotatably mounted on the mounting bracket 201; the rotating member is connected to the mounting bracket 201 and is used to drive the driving roller 202.

[0036] Further, the driving gear 203 is fixedly mounted on one side of the driving roller 202; the intermediate gear 204 meshes with the driving gear 203 and is rotatably mounted on one side of the mounting bracket 201; the rotating gear 205 meshes with the intermediate gear 204 and is rotatably mounted on one side of the mounting bracket 201; the output shaft of the rotating motor 206 is connected to the rotating gear 205, and the rotating motor 206 is fixedly mounted on one side of the mounting bracket 201.

[0037] When this embodiment is in use, corresponding driving rollers 202 and their corresponding components are provided at the front and rear sections of the lifting frame 103 to facilitate the support and guidance of both the front and rear sides of the parts. The driving rollers 202 provided at the front and rear sections of the lifting frame 103 are supported by the mounting brackets 201 installed on both sides. A driving gear 203 is fixedly mounted on the side of each driving roller 202. The driving gear 203 is matched with the rotating gear 205 through the provided intermediate gear 204, and the rotating gear 205 is driven by the rotating motor 206.

[0038] When the rotation motor 206 drives the rotation gear 205 to rotate, the rotation gear 205 can drive the drive gear 203 and the drive roller 202 through the intermediate gear 204, so as to drive the parts placed on the surface of the drive roller 202 to move back and forth through the rotation of the drive roller 202.

[0039] Further, the fixed bracket 301 is fixedly installed on the lifting frame 103; the rolling column 302 is rotatably installed on the fixed bracket 301; two adjustment frames 303 are slidably installed on both sides of the fixed bracket 301; a guide column 304 is rotatably installed on each adjustment frame 303; the adjustment component is connected to the fixed bracket 301 and is used to drive the two adjustment frames 303.

[0040] Further, both sides of the double-headed threaded rod 305 are respectively threadedly connected to the two adjustment frames 303, and the double-headed threaded rod 305 is rotatably installed on the fixed bracket 301; the sleeved gear 306 is fixedly sleeved on the double-headed threaded rod 305; the drive gear 307 meshes with the sleeved gear 306 and is rotatably installed on the fixed bracket 301; the output shaft of the drive motor 308 is connected to the drive gear 307, and the drive motor 308 is fixedly installed on one side of the fixed bracket 301.

[0041] When this embodiment is in use, the fixed bracket 301 is fixedly arranged on the top of the lifting frame 103, the fixed bracket 301 is arranged on one side of the lifting frame 103 close to the feeding port of the laser cutting machine 101, the rolling column 302 is rotatably installed on the fixed bracket 301, and the supporting surfaces of the rolling column 302 and the two drive rollers 202 are on the same horizontal plane. Two adjustment frames 303 are also slidably installed on the side of the fixed bracket 301, and a guide column 304 is rotatably installed on each adjustment frame 303. By arranging the two adjustment frames 303 and the guide columns 304, the left and right sides of the parts can be limited, ensuring the stability of the feeding route of the parts during cutting and preventing the parts from shifting during the feeding process;

[0042] The two adjustment frames 303 are driven by the double-headed threaded rod 305, and the double-headed threaded rod 305 is driven by the drive motor 308 in cooperation with the sleeved gear 306 and the drive gear 307. The structure of the double-headed threaded rod 305 is similar to that of the bidirectional lead screw 106, and both drive the two side plates in opposite directions through the threads with opposite helix directions on both sides, so as to realize the position adjustment of the two adjustment frames 303, so that the user can adjust the clamping distance of the guide according to the actual size of the processed parts;

[0043] The driving of the driving roller 202 and the double-headed threaded rod 305 adopts a gear transmission method mainly to change the installation position of the motor. By arranging the corresponding motor inside or outside the plate member, the top groove space of the conveying table 102 occupied by the lifting of the entire driving member and the guiding member can be avoided, making the entire structure more compact.

[0044] Preferably, the feeding assembly provided by the present invention further includes a guide rail bracket 401, a pushing box 402, a pushing screw 403, a pushing motor 404 and a clamping member. The clamping member includes a rotating frame 501, a rotating motor 502, a movable bracket 503, a lifting bracket 504, a moving component and a clamping component. The moving component includes a movable screw rod 505, a movable motor 506, a lifting screw rod 507 and a lifting motor 508. The clamping component includes a clamping frame 509, a clamping plate 510, a clamping mating screw rod 511 and a clamping motor 512.

[0045] Further, the guide rail bracket 401 is fixedly installed on one side of the conveying table 102; the pushing box 402 is slidably connected to the guide rail bracket 401 and is slidably installed on one side of the conveying table 102; the pushing screw 403 is threadedly connected to the pushing box 402 and is rotatably installed on one side of the guide rail bracket 401; the output shaft of the pushing motor 404 is connected to the pushing screw 403, and the pushing motor 404 is fixedly installed on one side of the guide rail bracket 401; the clamping member is connected to the pushing box 402 and is used for clamping the end of the part to be processed and completing subsequent pushing and feeding.

[0046] During the use of this embodiment, the guide rail bracket 401 is fixed on the side of the conveying table 102. At the same time, a guiding boss provided on the other side of the conveying table 102 where the guide rail bracket 401 is installed is used to cooperate with the bottom frame of the pushing box 402. The pushing box 402 is provided with two frames. One frame cooperates with the guiding boss of the conveying table 102, and the other frame cooperates with the guide rail bracket 401. A threaded hole for cooperating with the pushing screw 403 is provided on the frame of the pushing box 402 that cooperates with the guide rail bracket 401. The pushing screw 403 is driven by the pushing motor 404, thereby realizing the driving of the pushing box 402. So that after the clamping member on the side of the pushing box 402 clamps the processing part, the stable feeding of the processing part can be realized through the movement of the pushing box 402.

[0047] Further, the rotating frame 501 is rotatably installed on one side of the pushing box 402; the output shaft of the rotating motor 502 is connected to the rotating frame 501, and the rotating motor 502 is fixedly installed on one side of the pushing box 402; the movable bracket 503 is slidably installed on the rotating frame 501; the lifting bracket 504 is slidably installed on the movable bracket 503; the adjusting member is connected to the rotating frame 501 and is used to drive the movable bracket 503 and the lifting bracket 504; the two clamping members are respectively connected to the rotating frame 501 and the lifting bracket 504 and are used to clamp the machined parts.

[0048] Further, the movable lead screw 505 is threadedly connected to the movable bracket 503 and is rotatably installed on the rotating frame 501; the output shaft of the movable motor 506 is connected to the movable lead screw 505, and the movable motor 506 is fixedly installed on one side of the rotating frame 501; the lifting lead screw 507 is threadedly connected to the lifting bracket 504 and is rotatably installed on one side of the movable bracket 503; the output shaft of the lifting motor 508 is connected to the lifting lead screw 507, and the lifting motor 508 is fixedly installed on one side of the movable bracket 503.

[0049] Further, the two clamping frames 509 are respectively fixedly installed on the rotating frame 501 and the lifting bracket 504; two clamping plates 510 are slidably installed on each clamping frame 509; the clamping cooperation lead screw 511 is rotatably installed on each clamping frame 509, and both sides of the clamping cooperation lead screw 511 are threadedly connected to the corresponding two clamping plates 510; the output shaft of the clamping motor 512 is connected to the clamping cooperation lead screw 511, and the clamping motor 512 is fixedly installed on one side of the clamping frame 509.

[0050] When this embodiment is in use, the rotating frame 501 rotates on the side of the pushing box 402 through the rotating motor 502. The movable bracket 503 is slidably installed on the side of the rotating frame 501, and the lifting bracket 504 is slidably installed on the movable bracket 503. The movable bracket 503 is driven by the provided movable lead screw 505 and the movable motor 506, so that the movable bracket 503 can move left and right on the side of the rotating frame 501. The lifting bracket 504 is driven by the provided lifting lead screw 507 and the lifting motor 508, so that the lifting bracket 504 can move up and down on the movable bracket 503;

[0051] The clamping bracket 509 is fixed to the side of the rotating bracket 501, and the clamping bracket 509 is also fixed to the side of the lifting bracket 504. Two clamping plates 510 are slidably arranged on each clamping bracket 509. The corresponding two clamping plates 510 are driven by the clamping cooperation lead screw 511 and the clamping motor 512. The thread structure and driving principle of the clamping cooperation lead screw 511 are the same as those of the bidirectional lead screw 106. They both drive the corresponding side plates by setting threads with opposite thread directions on both sides, and then clamp the parts through the two clamping plates 510 arranged on the side of the corresponding clamping bracket 509.

[0052] During actual processing, the user can adjust the clamping direction by rotating the rotating bracket 501 according to the actual shape and size of the processed parts, and then adjust the matching position of the clamping bracket 509 arranged on the lifting bracket 504 by moving the movable bracket 503 and the lifting bracket 504, so as to perform corresponding clamping and limiting on different types of parts, making the actual operation more flexible and convenient.

[0053] The above-disclosed are only one or more preferred embodiments of the present application, and the scope of rights of the present application cannot be limited thereby. Those of ordinary skill in the art can understand all or part of the processes of implementing the above embodiments, and the equivalent changes made according to the claims of the present application still fall within the scope covered by the present application.

Claims

1. A laser cutting device for processing automobile battery bracket parts, comprising a laser cutting machine and a conveying platform, wherein the laser cutting machine is installed on one side of the conveying platform, characterized in that: Also included is a feed assembly; The feeding assembly includes a lifting frame, a driving plate, a pushing member, a bidirectional screw rod, a lifting motor, a driving component and a guiding component. The lifting frame is slidably installed in the conveying platform, and the two driving plates are respectively slidably installed on both sides of the conveying platform. The pushing members are rotatably installed on both sides of each driving plate, and the two sides of the pushing member are respectively rotatably connected with the driving plate and the lifting frame, and the two sides of the bidirectional screw rod are respectively threadedly connected with the two driving plates, and the bidirectional screw rod is rotatably installed in the conveying platform; the output shaft of the lifting motor is connected with the bidirectional screw rod, and the lifting motor is fixedly installed on one side of the conveying platform. The driving component is connected with the lifting frame for guiding the processing parts above the conveying platform to move, and the guide component is connected with the lifting frame for guiding the moving direction of the processing parts above the conveying platform.

2. The laser cutting equipment for processing automobile battery bracket parts according to claim 1, characterized in that: The driving component includes a mounting bracket, a driving roller and a rotating component. The mounting bracket is fixedly mounted on the lifting frame; the driving roller is rotatably mounted on the mounting bracket; and the rotating component is connected to the mounting bracket for driving the driving roller.

3. The laser cutting equipment for processing automobile battery bracket parts according to claim 1, characterized in that: The guide member includes a fixed bracket, a rolling column, an adjustment frame, a guide column and an adjustment component. The fixed bracket is fixedly mounted on the lifting frame; the rolling column is rotatably mounted on the fixed bracket; two adjustment frames are slidably mounted on both sides of the fixed bracket; the guide column is rotatably mounted on each adjustment frame; the adjustment component is connected to the fixed bracket for driving the two adjustment frames.

4. The laser cutting equipment for processing automobile battery bracket parts according to claim 2, characterized in that: The rotating component includes a driving gear, an intermediate gear, a rotating gear and a rotating motor. The driving gear is fixedly mounted on one side of the driving roller; the intermediate gear is meshed with the driving gear and is rotatably mounted on one side of the mounting bracket; the rotating gear is meshed with the intermediate gear and is rotatably mounted on one side of the mounting bracket; the output shaft of the rotating motor is connected to the rotating gear, and the rotating motor is fixedly mounted on one side of the mounting bracket.

5. The laser cutting equipment for processing automobile battery bracket parts according to claim 3, characterized in that: The adjustment component includes a double-headed threaded rod, a sleeve gear, a driving gear and a driving motor. The two sides of the double-headed threaded rod are respectively threadedly connected to the two adjustment frames, and the double-headed threaded rod is rotatably mounted on the fixed bracket; the sleeve gear is fixedly sleeved on the double-headed threaded rod; the driving gear is meshed with the sleeve gear and is rotatably mounted on the fixed bracket; the output shaft of the driving motor is connected to the driving gear, and the driving motor is fixedly mounted on one side of the fixed bracket.

6. The laser cutting equipment for processing automobile battery bracket parts according to claim 1, characterized in that: The feeding assembly also includes a guide rail bracket, a pushing box, a pushing screw, a pushing motor and a clamping member. The guide rail bracket is fixedly installed on one side of the conveying platform; the pushing box is slidably connected to the guide rail bracket and is slidably installed on one side of the conveying platform; the pushing screw is threadedly connected to the pushing box and is rotatably installed on one side of the guide rail bracket; the output shaft of the pushing motor is connected to the pushing screw, and the pushing motor is fixedly installed on one side of the guide rail bracket; the clamping member is connected to the pushing box, and is used to clamp the end of the part to be processed and complete the subsequent pushing and feeding.

7. The laser cutting equipment for processing automobile battery bracket parts according to claim 6, characterized in that: The clamping component includes a rotating frame, a rotating motor, a movable bracket, a lifting bracket, an adjusting component and a clamping component. The rotating frame is rotatably installed on one side of the pushing box; the output shaft of the rotating motor is connected to the rotating frame, and the rotating motor is fixedly installed on one side of the pushing box; the movable bracket is slidably installed on the rotating frame; the lifting bracket is slidably installed on the movable bracket; the adjusting component is connected to the rotating frame for driving the movable bracket and the lifting bracket; two groups of the clamping components are respectively connected to the rotating frame and the lifting bracket for clamping the processed parts.

8. The laser cutting equipment for processing automobile battery bracket parts according to claim 7, characterized in that: The mobilizing component includes a movable screw rod, a movable motor, a lifting screw rod and a lifting motor, wherein the movable screw rod is threadedly connected to the movable bracket and is rotatably mounted on the rotating frame; The output shaft of the movable motor is connected to the movable screw rod, and the movable motor is fixedly installed on one side of the rotating frame; the lifting screw rod is threadedly connected to the lifting bracket and rotatably installed on one side of the movable bracket; the output shaft of the lifting motor is connected to the lifting screw rod, and the lifting motor is fixedly installed on one side of the movable bracket.

9. The laser cutting equipment for processing automobile battery bracket parts according to claim 7, characterized in that: The clamping component includes a clamping frame, a clamping plate, a clamping matching screw and a clamping motor, and the two clamping frames are respectively fixedly mounted on the rotating frame and the lifting frame; two clamping plates are slidably mounted on each of the clamping frames; the clamping matching screw is rotatably mounted on each of the clamping frames, and the two sides of the clamping matching screw are respectively threadedly connected to the corresponding two clamping plates; the output shaft of the clamping motor is connected to the clamping matching screw, and the clamping motor is fixedly mounted on one side of the clamping frame.