Transfer equipment for low-porosity mullite brick production

By designing a transport equipment for low-porous mullite brick production, the drive components are used to automatically adjust the position of the bricks and place them on the transport truck or pallet under the blockage of the cutting structure, the problems of large labor and low efficiency of operators in the prior art are solved, automatic transport is achieved, and production efficiency is improved.

CN222948056UActive Publication Date: 2025-06-06ZHENGZHOU JINXING REFRACTORY MATERIAL CO LTD
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Patent Information

Application Number
CN202421931872.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2025-06-06
Estimated Expiration
2034-08-09

AI Technical Summary

Technical Problem

In the prior art, during the production process of low-porous mullite bricks, the bricks need to be sent to the heat dissipation equipment through the conveyor device for heat dissipation, and then loaded and transferred by the operator, resulting in large labor and low efficiency of the operator.

Method used

Design a transfer equipment for the production of low-porous mullite bricks, which includes equipment base, cutting structure, installation structure and transfer platform. The brick height is adjusted by the first drive assembly, and the second drive assembly promotes the brick to move horizontally, so that it is sent to the other side of the discharge structure, and then blocks it by the discharge structure, so that the bricks are placed on the transfer truck or pallet, reducing manual labor.

Benefits of technology

The equipment can be automatically transported to the transfer platform after the material is cooled. By adjusting the height and level of the drive components, the bricks are automatically transferred to the transfer truck or pallet, which significantly reduces manual operation and improves production efficiency.

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Abstract

The utility model provides transfer equipment for low-porosity mullite brick production, which belongs to the technical field of brick transfer equipment and comprises an equipment base, a blanking structure is fixedly arranged on one side of an upper base surface, a mounting structure is arranged on the other side of the upper base surface, a transfer platform is movably arranged on the mounting structure, and the transfer platform comprises an equipment box body which is vertically and movably arranged. A first driving assembly used for driving the equipment box to move up and down is correspondingly arranged on the lower portion of the equipment box, a bearing plate is horizontally and movably arranged on the upper portion of the equipment box, and a second driving assembly is further arranged in the equipment box. After the materials are cooled, the materials are conveyed to the bearing plate of the material transferring platform from the conveying belt, the height of the materials is adjusted through the first driving assembly, the second driving assembly pushes the materials to horizontally move, and therefore the bricks are conveyed to the other side of the discharging structure; therefore, the bricks can be placed on the transfer trolley or the tray, the manual labor amount is reduced, and the production efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of brick transport equipment, in particular to a transport equipment for producing low-pore mullite bricks. Background Art

[0002] As a high-performance refractory material, low-porosity mullite brick has the characteristics of low porosity and enhances the performance of the device under high temperature environment. The main components are mullite crystals, additives and other components, and then sintered;

[0003] In the prior art, after sintering is completed, in order to improve production efficiency, a conveying device is usually used to send the mullite bricks into a heat dissipation device for heat dissipation, and then the operators load the heat-dissipated bricks for transportation. This is labor-intensive and inefficient for the operators. Therefore, a transportation device for the production of low-pore mullite bricks is proposed to solve this problem. Utility Model Content

[0004] In view of this, the utility model provides a transfer equipment for the production of low-pore mullite bricks. The device can be arranged at the end of the conveying device, and a transfer vehicle or a pallet is placed close to one side of the unloading baffle plate. After the material is cooled, it is transported from the conveyor belt to the supporting plate of the transfer platform, and its height is adjusted by the first drive component, and the second drive component drives it to move horizontally, so that the bricks are sent to the other side of the unloading structure. When the second drive component drives the supporting plate to retreat, the unloading structure blocks the bricks, so that the bricks can be placed on the transfer vehicle or the pallet, thereby reducing manual labor and improving production efficiency.

[0005] In order to solve the above technical problems, the utility model provides a transfer equipment for the production of low-pore mullite bricks, including an equipment base, a feeding structure is fixedly provided on one side of the upper base surface, and a mounting structure is provided on the other side. A material transfer platform is movably provided on the mounting structure. The material transfer platform includes an equipment box body that is movably arranged up and down, and a first driving component for driving the equipment to move up and down is provided at the lower part of the corresponding equipment box body, and a bearing plate is provided at the upper part of the equipment box body for horizontal movement. A second driving component for driving the equipment to move horizontally is also provided in the corresponding equipment box body.

[0006] The mounting structure includes a mounting plate fixed on the upper part of the equipment base, a gantry bracket is fixed on the upper base surface of the mounting plate away from the unloading structure, a set of vertical slides are arranged on the gantry bracket, and limiting sliders corresponding to the vertical slides are arranged on both sides of the equipment box.

[0007] The material discharge structure comprises a group of columns symmetrically arranged on the equipment base, two columns are provided with corresponding through holes, and the two columns are detachably provided with material discharge baffles, which are arranged in the through holes.

[0008] The first driving assembly includes a first driving device fixedly arranged at the lower part of the equipment box. The conveying end of the first driving device is transmission-connected to a transmission device box arranged on one side thereof. A group of first transmission shafts are provided on the transmission device box. The other ends of the two first transmission shafts are transmission-connected to a first elevator assembly arranged on the lower base surface of the equipment box. A group of second elevator assemblies are also fixedly provided on the lower base surface of the equipment box. A second transmission shaft is provided between the first elevator assembly and the second elevator assembly on the same side. A plurality of mounting holes are provided on the mounting plate corresponding to the first elevator assembly and the second elevator assembly.

[0009] The second driving component includes a guide slider fixed on one side of the lower base surface of the supporting plate, and a driving screw for driving the movement is provided in the corresponding equipment box. A supporting hole for supporting the rotation of the driving screw is opened on the equipment box, and a bearing assembly is provided in the supporting hole. One end of the driving screw passes through the bearing assembly at this end and is transmission-connected to the second driving device arranged on the equipment box. In addition, a group of guide slide bars are also provided in the equipment box on both sides of the driving screw, and the guide slider is provided with a sliding hole matching the guide slide bar and a threaded through hole matching the driving screw.

[0010] The driving screw is vertically arranged with the unloading baffle. In addition, a group of slots are opened on the side base surface of the equipment box near one end of the unloading baffle. Roller structures are rotatably arranged in both slots, and the rolling direction of the roller structure is consistent with the moving direction of the load-bearing plate.

[0011] The beneficial effects of the above technical solution of the utility model are as follows:

[0012] 1. After the material is cooled, it is transported from the conveyor belt to the carrying plate of the transfer platform, and its height is adjusted by the first drive component, and the second drive component drives it to move horizontally, so that the bricks are sent to the other side of the unloading structure. When the second drive component drives the carrying plate back, the unloading structure blocks the bricks, so that the bricks can be placed on the transfer vehicle or pallet, thereby reducing manual labor and improving production efficiency.

[0013] 2. The device is arranged at the end of the conveying device, and a transfer vehicle or a pallet is placed near the side of the unloading baffle. After the bricks move to the end of the conveying device, they continue to move to the carrying plate. The first driving device of the first driving assembly outputs power to the transmission device box, and the transmission device box transmits power to the first transmission shaft, so that the first transmission shaft drives the first elevator assembly to operate, and the second transmission shaft drives the second elevator assembly to operate synchronously with the first elevator assembly, so that the equipment box and the carrying plate move up and down. Further, the bricks on the carrying plate are driven by the second driving device, that is, the driving screw drives the guide slider to move horizontally on the guide slider, so that the bricks are transferred to the outside of the column, and further, the operator inserts the unloading baffle into the two through holes to block the bricks. When the second driving device drives the carrying plate to retreat, the bricks can be transferred to the transfer vehicle or the pallet.

[0014] 3. A group of slots are provided on the side base of the equipment box near one end of the unloading baffle. Roller structures are rotatably provided in the two slots. The rolling direction of the roller structure is consistent with the moving direction of the load-bearing plate. When the load-bearing plate slides, the roller structure can greatly reduce the friction between the load-bearing plate and the equipment box, thereby extending the service life of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the main structure of a transfer device for producing low-porosity mullite bricks according to the utility model;

[0016] Figure 2 This is a schematic diagram of the main structure of the utility model from another perspective;

[0017] Figure 3 This is a bottom-sectional view of the equipment box position of the utility model.

[0018] Explanation of the reference numerals: 1. Equipment base; 2. Material unloading structure; 21. Column; 211. Through hole; 22. Material unloading baffle; 3. Mounting structure; 31. Mounting plate; 311. Mounting hole; 32. Gantry bracket; 321. Vertical slideway; 4. Material transfer platform; 41. Equipment box; 411. Limit slider; 412. Support hole; 413. Bearing assembly; 414. Slot; 415. Roller structure; 42. First drive assembly; 421. First drive device; 422. Transmission equipment box; 423. First transmission shaft; 424. First elevator assembly; 425. Second elevator assembly; 426. Second transmission shaft; 43. Load-bearing plate; 44. Second drive assembly; 441. Guide slider; 4411. Slide hole; 4412. Threaded through hole; 442. Drive screw; 443. Second drive device; 444. Guide slide. DETAILED DESCRIPTION

[0019] In order to make the purpose, technical scheme and advantages of the embodiment of the utility model clearer, the following will be combined with the appended drawings of the embodiment of the utility model. Figure 1-3 , the technical scheme of the embodiment of the utility model is clearly and completely described. Obviously, the described embodiment is a part of the embodiment of the utility model, not all of the embodiments. Based on the described embodiment of the utility model, all other embodiments obtained by ordinary technicians in this field belong to the scope of protection of the utility model.

[0020] like Figure 1-3 As shown:

[0021] The present embodiment provides a transfer device for the production of low-pore mullite bricks, including an equipment base 1, a material unloading structure 2 is fixedly provided on one side of the upper base surface, and a mounting structure 3 is provided on the other side. A material transfer platform 4 is movably provided on the mounting structure 3. The material transfer platform 4 includes an equipment box 41 movably arranged up and down, and a first driving component 42 for driving the equipment box 41 to move up and down is provided at the lower part of the corresponding equipment box 41, and a bearing plate 43 is horizontally movably provided at the upper part of the equipment box 41. A second driving component 44 for driving the equipment box to move horizontally is also provided in the corresponding equipment box 41.

[0022] When in use, the device is arranged at the end of the conveying device, and a transfer vehicle or a pallet is placed near the side of the unloading baffle plate 22. After the bricks move to the end of the conveying device, they continue to move to the carrying plate 43. The first driving device 421 of the first driving assembly 42 outputs power to the transmission device box 422, and the transmission device box 422 transmits power to the first transmission shaft 423, so that the first transmission shaft 423 drives the first elevator assembly 424 to operate, and at the same time, the second transmission shaft 426 drives the second elevator assembly 425 and the first elevator assembly 426 to operate. Parts 424 operate synchronously, so that the equipment box 41 and the carrying plate 43 move up and down, and the bricks on the carrying plate 43 are further driven by the second driving device 443, that is, the driving screw 442 drives the guide slider 441 to move horizontally on the guide slider 444, so that the bricks are transferred to the outside of the column 21, and the operator further inserts the unloading baffle 22 into the two through holes 211 to block the bricks. When the second driving device 443 drives the carrying plate 43 to retreat, the bricks can be transferred to the transfer vehicle or pallet.

[0023] like Figure 1 , 2As shown in Figure 3, the mounting structure 3 includes a mounting plate 31 fixed on the upper part of the equipment base 1, and a gantry bracket 32 ​​is fixedly provided on the upper base surface of the mounting plate 31 away from the unloading structure 2. A group of vertical slides 321 are provided on the gantry bracket 32, and limit sliders 411 corresponding to the vertical slides 321 are provided on both sides of the equipment box 41. The limit sliders 411 are slidably set in the vertical slides 321. When the second driving device 443 drives the bearing plate 43 to retreat, the limit slider 411 cooperates with the gantry bracket 32 ​​to effectively withstand the force.

[0024] like Figure 1 , 2 As shown, the material unloading structure 2 includes a group of columns 21 symmetrically arranged on the equipment base 1, and two columns 21 are provided with corresponding through holes 211. The two columns 21 are detachably provided with unloading baffles 22, and the unloading baffles 22 are arranged in the through holes 211. In addition, the two columns 21 can also be provided with a reinforcing support structure to enhance their stability.

[0025] like Figure 2 As shown, the first driving assembly 42 includes a first driving device 421 fixedly arranged at the lower part of the equipment box 41, the conveying end of the first driving device 421 is transmission-connected to a transmission device box 422 arranged on one side thereof, a group of first transmission shafts 423 are provided on the transmission device box 422, the other ends of the two first transmission shafts 423 are transmission-connected to a first elevator assembly 424 arranged on the lower base surface of the equipment box 41, a group of second elevator assemblies 425 are also fixedly provided on the lower base surface of the equipment box 41, a second transmission shaft 426 is provided between the first elevator assembly 424 and the second elevator assembly 425 on the same side, a plurality of mounting holes 311 are provided on the mounting plate 31 corresponding to the first elevator assembly 424 and the second elevator assembly 425, the mounting holes 311 are arranged corresponding to the sleeve structures of the first elevator assembly 424 and the second elevator assembly 425, so that the sleeve structure is fixed in the mounting hole 311, and then as the output end of the elevator rotates, the lifting action can be completed.

[0026] like Figure 3As shown, the second driving component 44 includes a guide slider 441 fixed on one side of the lower base surface of the supporting plate 43, and a driving screw 442 for driving the same is provided in the corresponding equipment box 41, and a supporting hole 412 for supporting the driving screw 442 to rotate is opened on the equipment box 41, and a bearing assembly 413 is provided in the supporting hole 412, and one end of the driving screw 442 passes through the bearing assembly 413 at the end and is transmission-connected with the second driving device 443 arranged on the equipment box 41, and in addition, a group of guide slide bars 444 are also provided in the equipment box 41 on both sides of the driving screw 442, and a sliding hole 4411 matching the guide slide bar 444 and a threaded through hole 4412 matching the driving screw 442 are provided on the guide slider 441, and the driving screw 442 passes through the threaded through hole 4412 and is driven to rotate by the second driving device 443, so that the guide slider 441 drives the supporting plate 43 to move horizontally.

[0027] like Figure 1 , 3 As shown, the driving screw 442 is vertically arranged to the unloading baffle 22. In addition, a group of slots 414 are provided on the side base surface of the equipment case 41 near one end of the unloading baffle 22. Roller structures 415 are rotatably provided in the two slots 414. The rolling direction of the roller structure 415 is consistent with the moving direction of the supporting plate 43. Therefore, when the supporting plate 43 slides, the roller structure 415 can greatly reduce the friction between the supporting plate 43 and the equipment case 41, thereby extending the service life of the equipment.

[0028] In addition, it should be noted that in the description of the present invention, unless otherwise clearly specified and limited, the terms "installation", "connection" and "connection" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be indirectly connected through an intermediate medium, or it can be the internal communication of two components. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood according to the specific circumstances.

[0029] The above is a preferred embodiment of the present invention. It should be pointed out that, for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as the protection scope of the present invention.

Claims

1. A transfer equipment for producing low-pore mullite bricks, characterized by: The device comprises an equipment base (1), a material unloading structure (2) is fixedly provided on one side of the upper base surface, and a mounting structure (3) is provided on the other side; a material transfer platform (4) is movably provided on the mounting structure (3); the material transfer platform (4) comprises an equipment case (41) movably arranged in an up-and-down manner; a first driving component (42) for driving the equipment to move in an up-and-down manner is provided at the lower part of the equipment case (41); a bearing plate (43) is movably provided at the upper part of the equipment case (41); and a second driving component (44) for driving the equipment to move in an up-and-down manner is provided in the corresponding equipment case (41).

2. The low-pore mullite brick production transfer equipment according to claim 1, characterized in that: The mounting structure (3) comprises a mounting plate (31) fixed to the upper part of the equipment base (1); a gantry bracket (32) is fixedly provided on the upper base surface of the mounting plate (31) away from the unloading structure (2); a group of vertical slideways (321) are provided on the gantry bracket (32); and limiting sliding blocks (411) corresponding to the vertical slideways (321) are provided on both sides of the equipment box (41).

3. A transfer device for producing low-pore mullite bricks as claimed in claim 2, characterized in that: The material unloading structure (2) comprises a group of columns (21) symmetrically arranged on the equipment base (1), two of the columns (21) are provided with mutually corresponding through holes (211), and the two columns (21) are detachably provided with material unloading baffles (22), and the material unloading baffles (22) are arranged in the through holes (211).

4. The low-porosity mullite brick production transfer equipment according to claim 3, characterized in that: The first driving assembly (42) comprises a first driving device (421) fixedly arranged at the lower part of the equipment box (41); the conveying end of the first driving device (421) is drivingly connected to a transmission device box (422) arranged on one side thereof; a group of first transmission shafts (423) are provided on the transmission device box (422); the other ends of the two first transmission shafts (423) are drivingly connected to a first elevator assembly (424) arranged on the lower base surface of the equipment box (41); a group of second elevator assemblies (425) are also fixedly arranged on the lower base surface of the equipment box (41); a second transmission shaft (426) is provided between the first elevator assembly (424) and the second elevator assembly (425) on the same side; and a plurality of mounting holes (311) are provided on the mounting plate (31) corresponding to the first elevator assembly (424) and the second elevator assembly (425).

5. The low-pore mullite brick production transfer equipment according to claim 4, characterized in that: The second driving component (44) includes a guide slider (441) fixed to one side of the lower base surface of the supporting plate (43); a driving screw (442) for driving the driving screw (442) to move is provided in the corresponding device housing (41); a supporting hole (412) for supporting the driving screw (442) to rotate is provided on the device housing (41); a bearing assembly (413) is provided in the supporting hole (412); one end of the driving screw (442) passes through the bearing assembly (413) at the end and is transmission-connected to the second driving device (443) arranged on the device housing (41); in addition, a group of guide sliders (444) are provided in the device housing (41) on both sides of the driving screw (442); a sliding hole (4411) matching the guide slider (444) and a threaded through hole (4412) matching the driving screw (442) are provided on the guide slider (441).

6. A transfer device for producing low-pore mullite bricks as claimed in claim 5, characterized in that: The driving screw (442) is arranged perpendicularly to the unloading baffle (22). In addition, a group of slots (414) are provided on the side base surface of the equipment box (41) near one end of the unloading baffle (22). Roller structures (415) are rotatably provided in both of the slots (414). The rolling direction of the roller structures (415) is consistent with the moving direction of the supporting plate (43).