Magnesium carbonaceous castable suppression vibration forming device
Technical Field
The utility model relates to the technical field of forming devices, in particular to a magnesium-carbon castable pressing vibration forming device.
Background
Along with the rapid development of the steel industry, the demand of refractory materials is also increasing, wherein the magnesia carbon bricks for steelmaking are the refractory materials with the largest usage, the magnesia carbon refractory materials mainly adopt mechanical press molding, and the magnesia raw materials generate strength under the combination of resin.
The utility model provides a forming device for processing magnesia carbon bricks, which has the bulletin number of CN217144328U and comprises a supporting plate, wherein an operation plate, two fixing seats and two vertical plates are fixedly arranged on the top side of the supporting plate, the two fixing seats and the two vertical plates are symmetrically arranged, the top sides of the two vertical plates are fixedly provided with the same transverse plate, the top sides of the transverse plates are fixedly provided with air cylinders, and the output ends of the air cylinders are fixedly provided with fixing plates. The utility model has reasonable structural design and simple operation, can rapidly mold magnesia carbon brick raw materials, is convenient for replacing the mould, reduces the workload of workers, has good use effect and is worth popularizing.
In the process of realizing the utility model, the inventor finds that at least the following problems exist in the technology, and the forming device in the patent does not have the function of automatic blanking in the use process, so that the material adding efficiency is lower, and the production efficiency of the forming device is reduced.
Disclosure of utility model
The utility model aims to provide a magnesium carbon castable pressing vibration forming device which has the advantage of improving production efficiency, and solves the problem that the material adding efficiency is low due to the fact that the forming device does not have an automatic blanking function in the using process, so that the production efficiency of the forming device is reduced.
In order to achieve the purpose, the magnesium carbon castable pressing vibration forming device comprises a workbench, four corners of the top of the workbench are fixedly connected with support columns, the tops of the support columns are fixedly connected with a top plate, the tops of the top plates are fixedly connected with hydraulic cylinders, the bottoms of the hydraulic cylinders penetrate through the tops of the top plates and extend to the lower portion of the top plates, the bottoms of the hydraulic cylinders are fixedly connected with mounting plates, the bottoms of the mounting plates are fixedly connected with lifting plates, the bottoms of the lifting plates are fixedly connected with pressing plates, the tops of the workbench are fixedly connected with a shell, the rear ends of the shell are fixedly connected with a first motor, the output ends of the first motor are fixedly connected with threaded rods, one side of each threaded rod far away from the first motor penetrates through an inner cavity of the shell, the surfaces of the threaded rods are in threaded connection with threaded sleeves, the surfaces of the threaded sleeves are fixedly connected with connecting blocks, the tops of the connecting blocks are fixedly connected with vibrating tables, the rear ends of the working tables are fixedly connected with bottom plates, two sides of the tops of the bottom plates are fixedly connected with supporting plates, the tops of the supporting plates are fixedly connected with workbin, the top ends of the supporting plates are fixedly connected with a workbin, the first motor is fixedly connected with the bottom bin, the second motor is fixedly connected with the bottom bin, the output bin is fixedly connected with the bottom bin is connected with the bottom bin, and is fixedly connected with the bottom bin, and the bottom bin is fixedly connected with the bottom bin, and is connected with the bottom bin.
Preferably, both sides of the inner cavity of the shell are fixedly connected with limiting rods, and the surfaces of the limiting rods are in sliding connection with the connecting blocks.
Preferably, both sides of the bottom of the inner cavity of the material box are fixedly connected with inclined plates, and one side of each inclined plate extends to one side of the material discharging hopper.
Preferably, four corners of the bottom of the top plate are fixedly connected with slide bars, and the surfaces of the slide bars are in sliding connection with the lifting plate.
Preferably, a controller is fixedly connected to the right side of the surface of the workbench, and the controller is electrically connected with the first motor and the second motor respectively through wires.
Preferably, the bottom of workstation fixedly connected with supporting seat, the bottom of supporting seat is provided with the anti-skidding line.
Preferably, a valve is arranged on the surface of the blanking hopper, and the valve is an electromagnetic blanking valve.
Compared with the prior art, the utility model has the following beneficial effects:
1. According to the utility model, materials are placed in the material box, the second motor is started through the controller, the screw rod is driven to rotate by the second motor, the materials in the material box are mixed and stirred by the screw rod, the first motor is started through the controller, the threaded rod is driven to rotate by the first motor, the threaded rod is driven to drive the threaded sleeve to move, the threaded sleeve drives the connecting block to move, the connecting block drives the vibrating table to move to the lower part of the blanking hopper, after the valve is opened, the materials enter the vibrating table, after being vibrated and leveled, the first motor resets, the first motor moves to the lower part of the pressing plate, the hydraulic cylinder is started to drive the mounting plate to descend, the mounting plate drives the lifting plate to descend, and the pressing plate is used for pressing and forming the materials in the vibrating table, so that the production efficiency of the forming device can be improved.
Drawings
FIG. 1 is a schematic diagram of the structure of the present utility model;
FIG. 2 is a schematic cross-sectional view of the internal structure of the housing of the present utility model;
FIG. 3 is a schematic cross-sectional view of the internal structure of the bin of the utility model;
fig. 4 is a schematic front view of the structure of the present utility model.
The device comprises a workbench, a 2, a support column, a 3, a top plate, a 4, a hydraulic cylinder, a 5, a mounting plate, a 6, a lifting plate, a 7, a pressing plate, a 8, a shell, a 9, a first motor, a 10, a threaded rod, a 11, a threaded sleeve, a 12, a connecting block, a 13, a vibrating table, a 14, a bottom plate, a 15, a support plate, a 16, a material box, a 17, a second motor, a 18, a screw rod, a 19, a blanking hopper, a 20, a limiting rod, a 21, an inclined plate, a 22, a slide rod, a 23, a controller, a 24 and a valve.
Detailed Description
The following description of the embodiments of the present utility model will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present utility model, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
Referring to fig. 1-4, a vibration molding device for pressing magnesium carbon castable comprises a workbench 1, wherein four corners of the top of the workbench 1 are fixedly connected with a support column 2, the top of the support column 2 is fixedly connected with a top plate 3, the top of the top plate 3 is fixedly connected with a hydraulic cylinder 4, the bottom of the hydraulic cylinder 4 penetrates through the top of the top plate 3 and extends to the lower part of the top plate 3, the bottom of the hydraulic cylinder 4 is fixedly connected with a mounting plate 5, the bottom of the mounting plate 5 is fixedly connected with a lifting plate 6, the bottom of the lifting plate 6 is fixedly connected with a pressing plate 7, the top of the workbench 1 is fixedly connected with a shell 8, the rear end of the shell 8 is fixedly connected with a first motor 9, the output end of the first motor 9 is fixedly connected with a threaded rod 10, one side of the threaded rod 10 away from the first motor 9 penetrates into the inner cavity of the shell 8, the surface of the threaded rod 10 is in threaded connection with a threaded sleeve 11, the surface of the threaded sleeve 11 is fixedly connected with a connecting block 12, the top of the connecting block 12 is fixedly connected with the vibrating table 13, the rear end of the workbench 1 is fixedly connected with the bottom plate 14, two sides of the top of the bottom plate 14 are fixedly connected with the supporting plate 15, the top of the supporting plate 15 is fixedly connected with the feed box 16, the top of the feed box 16 is fixedly connected with the second motor 17, the output end of the second motor 17 is fixedly connected with the screw rod 18, the bottom of the screw rod 18 penetrates through the inner cavity of the feed box 16, the bottom of the feed box 16 is communicated with the blanking hopper 19, the second motor 17 is started by the controller 23, the screw rod 18 drives the screw rod 18 to rotate, the screw rod 18 mixes and stirs the materials in the feed box 16, the first motor 9 is started by the controller 23, the first motor 9 drives the threaded rod 10 to rotate, the threaded rod 10 drives the threaded sleeve 11 to move, the threaded sleeve 11 drives the connecting block 12 to move, connecting block 12 drives shaking table 13 and removes to the below of hopper 19 under, opens behind the valve 24, and the material gets into shaking table 13's inside, after vibration flattening, first motor 9 resets, removes it to the below of clamp plate 7, through starting pneumatic cylinder 4, pneumatic cylinder 4 drives mounting panel 5 and descends, and mounting panel 5 drives lifter plate 6 and descends, and lifter plate 6 drives clamp plate 7 and descends, carries out compression moulding to the material of shaking table 13 inside through clamp plate 7, and then can improve forming device's production efficiency.
Both sides of the inner cavity of the shell 8 are fixedly connected with a limiting rod 20, and the surface of the limiting rod 20 is in sliding connection with the connecting block 12.
Through above-mentioned technical scheme, through setting up gag lever post 20, can carry out spacingly to connecting block 12, stability when having guaranteed connecting block 12 and moving.
Inclined plates 21 are fixedly connected to two sides of the bottom of the inner cavity of the feed box 16, and one side of each inclined plate 21 extends to one side of the discharging hopper 19.
Through above-mentioned technical scheme, through setting up inclined plate 21, can improve unloading efficiency, avoid the material to appear blocking up the phenomenon.
Slide bars 22 are fixedly connected to four corners of the bottom of the top plate 3, and the surfaces of the slide bars 22 are in sliding connection with the lifting plate 6.
Through above-mentioned technical scheme, through setting up slide bar 22, can carry out spacingly to lifter plate 6, stability when having guaranteed lifter plate 6 and remove.
The right side of the surface of the workbench 1 is fixedly connected with a controller 23, and the controller 23 is respectively and electrically connected with the first motor 9 and the second motor 17 through wires.
Through above-mentioned technical scheme, through setting up controller 23, can control the start-stop of first motor 9 and second motor 17 to reach the purpose that conveniently controls.
The bottom fixedly connected with supporting seat of workstation 1, the bottom of supporting seat is provided with the anti-skidding line.
Through above-mentioned technical scheme, through setting up the supporting seat, can support workstation 1, guaranteed the holistic stability of workstation 1.
The surface of the blanking hopper 19 is provided with a valve 24, and the valve 24 is an electromagnetic blanking valve.
Through above-mentioned technical scheme, through setting up valve 24, can be used for controlling the closure of hopper 19 down, reach the purpose of convenient unloading.
When the vibrating machine is used, materials are placed into the feed box 16, the second motor 17 is started through the controller 23, the second motor 17 drives the screw rod 18 to rotate, the screw rod 18 mixes and stirs the materials in the feed box 16, the first motor 9 is started through the controller 23, the first motor 9 drives the threaded rod 10 to rotate, the threaded rod 10 drives the threaded sleeve 11 to move, the threaded sleeve 11 drives the connecting block 12 to move, the connecting block 12 drives the vibrating table 13 to move to the lower side of the blanking hopper 19, after the valve 24 is opened, the materials enter the vibrating table 13, after vibration leveling, the first motor 9 resets, the materials are moved to the lower side of the pressing plate 7, the hydraulic cylinder 4 is started, the hydraulic cylinder 4 drives the mounting plate 5 to descend, the mounting plate 5 drives the lifting plate 6 to descend, the lifting plate 6 drives the pressing plate 7 to descend, and the materials in the vibrating table 13 are subjected to compression molding through the pressing plate 7.
Although embodiments of the present utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made therein without departing from the principles and spirit of the utility model, the scope of which is defined in the appended claims and their equivalents.