Aluminum alloy cell shell processing burring equipment
Technical Field
The utility model relates to the technical field of processing equipment of battery cell shells, in particular to processing deburring equipment of an aluminum alloy battery cell shell.
Background
The aluminum alloy battery cell shell is an important external protection component of battery cell equipment, so that the battery cell can be prevented from being damaged by external force to cause faults or safety problems, meanwhile, a part of battery cell shell can be additionally provided with a heat dissipation structure, a certain heat dissipation effect can be achieved when the battery cell is protected, more burrs can be generally existed in the production and processing process of the battery cell shell due to forging process reasons, the follow-up processing and assembly are affected, and therefore, after forging is completed, the surface of the battery cell shell is required to be polished and burrs are removed.
Most of the existing battery cell shell deburring equipment can only polish one side, needs to be manually turned over and adjust positions so as to polish and deburr the rest surfaces, and is very inconvenient and low in efficiency.
In order to solve the problems, an improvement is made, and an aluminum alloy cell shell processing deburring device is provided.
Disclosure of utility model
In order to solve the technical problems, the utility model provides the following technical scheme:
the utility model provides aluminum alloy cell shell processing deburring equipment which comprises a conveying device and a turnover device, wherein the conveying device consists of two conveying components, the two conveying components are completely symmetrical in structure, transmission roll shafts are arranged at the left end and the right end between the two conveying components, a polishing rod is movably arranged above the middle part of the conveying device, equipment tables are arranged in the middle of the front face and the back face of the conveying device, and the two turnover devices are respectively fixedly connected with the top surfaces of the equipment tables on the front face and the back face of the conveying device through bolts.
As a preferable technical scheme of the utility model, the conveying assembly comprises a side plate and a conveyor belt, wherein a base plate is fixedly welded at the top of the inner surface of the side plate, driving wheels are arranged on the left side and the right side of the base plate, and the two driving wheels are respectively connected with the left end and the right end of the inner surface of the side plate in a rotating way.
As a preferable technical scheme of the utility model, the left end and the right end of the conveyor belt are sleeved on the surfaces of the two driving wheels, the middle part of the inner surface of the conveyor belt is contacted with the top surface of the backing plate, limiting blocks are fixedly arranged on the surface of the conveyor belt at equal intervals, and the top end of the middle part of the side plate is provided with an operation port which is aligned with the equipment platform.
As a preferable technical scheme of the utility model, the left end of the back of the conveying device is fixedly provided with a gear reduction box and a first motor, the gear reduction box and the first motor are fixedly connected with a side plate of the conveying assembly through bolts, a rotating shaft of the first motor is in transmission connection with a transmission wheel at the left end of the conveying assembly through the gear reduction box, and the front end and the rear end of two transmission roll shafts are respectively and coaxially fixedly connected with two transmission wheels at the left end and two transmission wheels at the right end of the conveying device.
As a preferable technical scheme of the utility model, the equipment tables are fixedly welded with the side plates, the left ends of the top surfaces of the two equipment tables are fixedly provided with first electric telescopic rods through bolts, the tops of the first electric telescopic rods are provided with beam tables, the front ends and the rear ends of the bottom surfaces of the beam tables are respectively fixedly connected with the two first electric telescopic rods through screws, the right ends of the top surfaces of the beam tables are fixedly welded with transverse plates, the right sides of the transverse plates are fixedly provided with first electric guide rails through bolts, and the lengths of the first electric guide rails are larger than the distance between the two conveying components.
As a preferable technical scheme of the utility model, the right side of the electric sliding block of the first electric guide rail is fixedly connected with the polishing rod through a screw, the top of the polishing rod is fixedly provided with the second motor, the bottom of the polishing rod is rotatably provided with the disc-shaped hairbrush, and the top rotating shaft of the disc-shaped hairbrush is coaxially and fixedly connected with the rotating shaft of the second motor.
As a preferable technical scheme of the utility model, the turnover device comprises a second electric guide rail, the top surface of an electric sliding block of the second electric guide rail is fixedly provided with a second electric telescopic rod through a screw, the top of the second electric telescopic rod is fixedly provided with a platform through a screw, one end of the top surface of the platform, which is close to the conveying device, is fixedly welded with a bearing seat, one end of the top surface of the platform, which is far away from the conveying device, is fixedly provided with a third motor through a screw, and one surface of the bearing seat, which faces towards the conveying device, is rotatably provided with a guide rail seat.
As a preferable technical scheme of the utility model, a rotating shaft of the outer surface of the guide rail seat is coaxially and fixedly connected with a rotating shaft of the third motor, a bidirectional threaded rod is arranged in the guide rail seat, the top end and the bottom end of the bidirectional threaded rod are respectively and rotatably connected with the top surface and the bottom surface of the inner wall of the guide rail seat, two sliding blocks are arranged in the guide rail seat and are respectively and reversely threaded with two sections of threaded ends of the bidirectional threaded rod, a fourth motor is fixedly arranged on the top surface of the outer surface of the guide rail seat, the rotating shaft of the fourth motor is coaxially and fixedly connected with the bidirectional threaded rod, the two sliding blocks are contacted with the inner wall of the guide rail seat, a top supporting plate is fixedly welded on one surface of the two sliding blocks facing the conveying device, and rubber anti-skid pads are fixedly arranged at the tail ends of the opposite surfaces of the two top supporting plates.
The aluminum alloy battery cell shell processing deburring equipment has the beneficial effects that the electric cell shell grabbing and overturning are realized through the operation port of the conveying device by adding the top support frame driven by the motor, the bearing, the guide rail and the electric telescopic rod under the position of the hairbrush equipment for polishing and deburring, so that the battery cell shell can be automatically overturned in the processing process of deburring, the manpower is liberated, and the processing efficiency of polishing and deburring is greatly improved.
Drawings
The accompanying drawings are included to provide a further understanding of the utility model and are incorporated in and constitute a part of this specification, illustrate the utility model and together with the embodiments of the utility model, serve to explain the utility model. In the drawings:
FIG. 1 is a schematic structural view of an aluminum alloy cell shell processing deburring device of the present utility model;
Fig. 2 is a left side schematic view of an aluminum alloy cell shell processing deburring device according to the present utility model;
FIG. 3 is a schematic cross-sectional view of an aluminum alloy cell shell processing deburring apparatus of the present utility model;
fig. 4 is a schematic structural diagram of a turnover device of the deburring equipment for processing the aluminum alloy battery cell shell;
In the figure, 1, a conveying device; 2, a conveying assembly, 3, a side plate, 4, a base plate, 5, a driving wheel, 6, a conveying belt, 7, an operation port, 8, a gear reduction box, 9, a driving roll shaft, 10, an equipment table, 11, a first electric telescopic rod, 12, a transverse plate, 13, a first electric guide rail, 14, a polishing rod, 15, a turnover device, 16, a second electric guide rail, 17, a second electric telescopic rod, 18, a bearing seat, 19, a guide rail seat, 20, a bidirectional threaded rod, 21 and a top support plate.
Detailed Description
The preferred embodiments of the present utility model will be described below with reference to the accompanying drawings, it being understood that the preferred embodiments described herein are for illustration and explanation of the present utility model only, and are not intended to limit the present utility model.
The embodiment is as shown in figures 1-4, the aluminum alloy battery cell shell processing deburring equipment comprises a conveying device 1 and a turnover device 15, wherein the conveying device 1 consists of two conveying components 2, the structures of the two conveying components 2 are completely symmetrical, a transmission roller shaft 9 is arranged at the left end and the right end between the two conveying components 2, a polishing rod 14 is movably arranged above the middle part of the conveying device 1, equipment tables 10 are arranged in the middle parts of the front side and the back side of the conveying device 1, the turnover device 15 is two in total, and the equipment tables are fixedly connected with the top surfaces of the equipment tables 10 on the front side and the back side of the conveying device 1 through bolts respectively.
The conveying assembly 2 comprises a side plate 3 and a conveyor belt 6, a base plate 4 is fixedly welded at the top of the inner surface of the side plate 3, driving wheels 5 are arranged on the left side and the right side of the base plate 4, and the two driving wheels 5 are respectively connected with the left end and the right end of the inner surface of the side plate 3 in a rotating mode.
The left and right ends of the conveyor belt 6 are sleeved on the surfaces of the two driving wheels 5, the middle part of the inner surface of the conveyor belt 6 is contacted with the top surface of the backing plate 4, limiting blocks are fixedly arranged on the surface of the conveyor belt 6 at equal intervals, an operation opening 7 is formed in the top end of the middle part of the side plate 3, and the operation opening 7 is aligned with the equipment table 10.
The left end of the back of the conveying device 1 is fixedly provided with a gear reduction box 8 and a first motor, the gear reduction box 8 and the first motor are fixedly connected with a side plate 3 of the conveying assembly 2 through bolts, a rotating shaft of the first motor is in transmission connection with a transmission wheel 5 at the left end of the conveying assembly 2 through the gear reduction box 8, the front end and the rear end of two transmission roller shafts 9 are respectively and coaxially fixedly connected with the two transmission wheels 5 at the left end and the two transmission wheels 5 at the right end of the conveying device 1, the right motor drives the transmission wheel 5 of one conveying assembly 2 to rotate, the transmission roller shafts 9 drive the transmission wheel 5 of the other conveying assembly 2, and then synchronous operation of the two conveying assemblies 2 is realized, two ends of a cube-shaped battery cell shell can be supported on the transmission belts 6 of the two conveying assemblies 2 for transportation, and the limiting blocks can separate the battery cell shells and prevent sliding.
The equipment table 10 is fixedly welded with the side plates 3, the left ends of the top surfaces of the two equipment tables 10 are respectively provided with a first electric telescopic rod 11 through bolts, the top of each first electric telescopic rod 11 is provided with a beam table, the front end and the rear end of the bottom surface of each beam table are respectively fixedly connected with the two first electric telescopic rods 11 through screws, the right end of the top surface of each beam table is fixedly welded with a transverse plate 12, the right side of each transverse plate 12 is fixedly provided with a first electric guide rail 13 through bolts, and the length of each first electric guide rail 13 is larger than the interval between the two conveying components 2.
The electric slider right side of first electric guide 13 passes through screw fixed connection with pole 14 that polishes, and the top fixed mounting of pole 14 that polishes has the second motor, and the bottom rotation of pole 14 that polishes is provided with the disc brush, and the coaxial fixed connection of the top pivot of disc brush and the pivot of second motor, when the cell shell moved to operation mouth 7 positions, the lift of pole 14 was polished in first electric guide 13 control, and the second motor control disc brush rotates, polishes the burring to the cell shell surface.
The turnover device 15 comprises a second electric guide rail 16, a second electric telescopic rod 17 is fixedly arranged on the top surface of an electric sliding block of the second electric guide rail 16 through a screw, a platform is fixedly arranged on the top of the second electric telescopic rod 17 through the screw, a bearing seat 18 is fixedly welded at one end, close to the conveying device 1, of the top surface of the platform, a third motor is fixedly arranged at one end, far away from the conveying device 1, of the top surface of the platform, and a guide rail seat 19 is rotatably arranged on one surface, facing the conveying device 1, of the bearing seat 18.
The rotating shaft of the outer surface of the guide rail seat 19 is fixedly connected with the rotating shaft of the third motor coaxially, a bidirectional threaded rod 20 is arranged in the guide rail seat 19, the top end and the bottom end of the bidirectional threaded rod 20 are respectively and rotatably connected with the top surface and the bottom surface of the inner wall of the guide rail seat 19, two sliding blocks are arranged in the guide rail seat 19 and are respectively and rotatably connected with two sections of reverse threaded ends of the bidirectional threaded rod 20, a fourth motor is fixedly arranged on the top surface of the outer surface of the guide rail seat 19, the rotating shaft of the fourth motor is fixedly connected with the bidirectional threaded rod 20, the two sliding blocks are contacted with the inner wall of the guide rail seat 19, a supporting plate 21 is fixedly welded on one surface of the two sliding blocks facing the conveying device 1, rubber anti-slip pads are fixedly arranged at the tail ends of the opposite surfaces of the two supporting plates 21, after single-sided polishing is completed, the second electric telescopic rod 17 adjusts the height of the supporting plate 21, the second electric guide rail 16 moves the supporting plate 21 into the cavity of the electric core shell, then the third motor drives the bidirectional threaded rod 20 to rotate, the two supporting plates 21 are controlled to be mutually spread until the supporting plates 21 of the electric core shell is fixed, the electric core shell is turned over, the electric core shell is continuously, and the electric core shell is turned over, and the electric core shell is continuously, and the electric core shell is turned over.
It should be noted that the above-mentioned embodiments are merely preferred embodiments of the present utility model, and the present utility model is not limited thereto, but may be modified or substituted for some of the technical features thereof by those skilled in the art. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present utility model should be included in the protection scope of the present utility model.