Anti-collision ceramic fiber board stacking device

By introducing cleaning components and pallet lifting components into the ceramic fiber board stacking device, the problems of cleaning top impurities and height differences during ceramic fiber board stacking are solved, achieving stable stacking without bumps and extending service life.

CN223949850UActive Publication Date: 2026-02-27NANTONG ENPUR THERMAL ENERGY&TECH CO LTD
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Patent Information

Application Number
CN202520345664.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-03
Publication Date
2026-02-27
Estimated Expiration
2035-03-03

AI Technical Summary

Technical Problem

Existing ceramic fiber board stacking devices cannot simultaneously clean impurities from the top during stacking, resulting in gaps between the top and bottom layers of the ceramic fiber boards, which are prone to damage as the weight increases.

Method used

A collision-resistant ceramic fiberboard stacking device was designed, comprising a pallet lifting assembly and a cleaning assembly. A cleaning screw driven by a power motor drives a cleaning brush to clean impurities on the top, and the pallet height is adjusted by the lifting screw to avoid height differences, ensuring that the top of the ceramic fiberboard is flush with the hopper.

Benefits of technology

It effectively cleans impurities from the top of ceramic fiber boards, preventing damage from impacts, improving stacking stability and safety, and extending service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of ceramic fiber board stacking, and particularly discloses an anti-collision ceramic fiber board stacking device which comprises a stacking bin body, a tray lifting assembly is installed in the stacking bin body, and a cleaning assembly used for cleaning ceramic fiber boards is installed on one side of the tray lifting assembly. An unloading assembly for unloading is mounted on the other side of the tray lifting assembly; the cleaning assembly comprises a cleaning brush, one end of the cleaning brush is connected with a movable sliding block through a screw, and the outer portion of the movable sliding block is slidably connected with a supporting frame. The tray lifting assembly comprises a stacking tray capable of moving in a lifting mode, the sweeping brush is located above the stacking tray, the supporting frame is fixed to the top of the stacking tray, and the interior of a movable sliding block is connected with a sweeping lead screw through a screw sleeve. The top of the ceramic fiber board can be cleaned, and impurities can be prevented from existing between two sets of ceramic fiber boards.
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Description

TECHNICAL FIELD

[0001] The utility model relates to ceramic fiber board stacking technical field especially is related to a kind of anti-collision ceramic fiber board stacking device. BACKGROUND

[0002] Ceramic fiber board uses lightweight ceramic fiber as raw material, can be used at 800-1700 ℃ high temperature environment for a long time, with higher high-temperature resistance, when storing ceramic fiber board, ceramic fiber board is horizontally stacked together, through reasonable stacking and storage mode, the stability and safety of ceramic fiber board can be ensured, and its service life is prolonged.

[0003] The ceramic fiber board is directly put into the stacking box from top to bottom when stacking, and the stacking box has a certain height difference. The ceramic fiber board is brittle, which is easy to be damaged and affects normal use.

[0004] The existing public technical solution, the announcement number CN221342934U discloses a kind of ceramic fiber board stacking device, including control system, lifting frame and support plate conveying frame, lifting frame is equipped with bottom plate, bottom plate is equipped with drive assembly, drive assembly is connected with lead screw, lead screw is rotationally connected in lifting frame, lead screw is connected with lifting platform by nut seat, lifting platform is equipped with trigger assembly, bottom plate is equipped with trigger hole corresponding with trigger assembly, trigger hole is equipped with contact switch, lifting frame's inlet is also equipped with baffle component, drive assembly, contact switch and baffle component are connected with control system. The stacking of ceramic fiber board is realized by gradually descending, which avoids the situation of knocking caused by falling from top to bottom, and ensures the production quality of ceramic fiber board.

[0005] The above technical solution cannot clean the top of the ceramic fiber board synchronously when stacking the ceramic fiber board. If there are impurities on the top of the ceramic fiber board, a gap will be formed between the upper and lower ceramic fiber boards when stacking the upper ceramic fiber board, which cannot be placed horizontally. As the weight of the top increases, the ceramic fiber board is easily damaged. SUMMARY

[0006] The utility model discloses a kind of anti-collision ceramic fiber board stacking devices, can clean the top of the ceramic fiber board, avoid the problem that impurities exist between two groups of ceramic fiber boards to solve the problem proposed in the above background.

[0007] To achieve the above object, the utility model provides the following technical scheme: a kind of anti-collision ceramic fiber board stacking device, including stacking bin, the inside of the stacking bin is installed with tray lifting assembly, one side of the tray lifting assembly is installed with the cleaning assembly for cleaning ceramic fiber board, the other side of the tray lifting assembly is installed with the unloading assembly for unloading.

[0008] The cleaning assembly comprises a cleaning brush, one end of the cleaning brush is connected with a moving slider through a screw, and the outer part of the moving slider is slidingly connected with a support frame.

[0009] The tray lifting assembly comprises a stackable tray that can be lifted and moved, and the cleaning brush is located above the stackable tray, and the support frame is fixed on the top of the stackable tray.

[0010] Preferably, the inner part of the moving slider is connected with a cleaning lead screw through a wire sleeve, and the end of the cleaning lead screw is detachably connected with a power motor, and a motor connecting key is arranged at the connecting position of the power motor and the cleaning lead screw.

[0011] Preferably, a through hole matched with the motor connecting key is formed in the end surface of the cleaning lead screw, and the cleaning assembly further comprises a front cover body detachably connected with the stackable bin body through a screw.

[0012] Preferably, the power motor is slidingly installed in the inner part of the front cover body, and a limiting sliding groove is arranged at the connecting position of the power motor and the front cover body, and a magnetic shell is arranged on the outer part of the power motor and is attracted to the support frame.

[0013] Preferably, the unloading assembly comprises an unloading cylinder fixed on one side of the stackable bin body, and an unloading push plate is installed at the telescopic end of the unloading cylinder.

[0014] Preferably, the tray lifting assembly further comprises a lifting slider fixed on one side of the stackable tray, and a lifting sliding groove is formed at the connecting position of the lifting slider and the stackable bin body.

[0015] Preferably, a lifting lead screw is connected with the inner part of the lifting slider through a wire sleeve, and the top end surface of the stackable tray at the lowest point is lower than the bottom end surface of the unloading push plate.

[0016] Compared with the prior art, the utility model has the advantages that:

[0017] 1. The cleaning assembly can drive the cleaning lead screw to rotate under the action of the power motor, so as to drive the cleaning brush to move and clean the top surface of the ceramic fiber plate placed on the top of the stackable tray.

[0018] 2. The tray lifting assembly can adjust the height of the stackable tray, so that the top end of the ceramic fiber plate is flush with the top of the stackable bin body, thereby avoiding the collision of the ceramic fiber plate caused by the height difference when the ceramic fiber plate is stacked. BRIEF DESCRIPTION OF DRAWINGS

[0019] In order to more clearly illustrate the specific embodiments of the present application or the technical solutions in the prior art, the following will briefly introduce the drawings needed to be used in the specific embodiments or the prior art description, obviously, the drawings described in the following are some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.

[0020] Figure 1 It is the overall structural view of the present application;

[0021] Figure 2 It is the structural schematic view of the front cover body of the present application;

[0022] Figure 3 It is the internal structure schematic view of the stacking warehouse body of the present application Figure 1 It is the enlarged view of A in the figure;

[0023] Figure 4 It is the internal structure schematic view of the stacking warehouse body of the present application

[0024] Explanation of reference signs:

[0025] 1, stacking warehouse body;2, tray lifting assembly;201, lifting chute;202, lifting slider;203, lifting screw;204, stacking tray;3, unloading assembly;301, unloading cylinder;302, unloading push plate;4, cleaning assembly;401, front cover body;402, limiting sliding groove;403, power motor;404, motor connecting key;405, support frame;406, cleaning screw;407, cleaning brush;408, moving slider. Specific embodiments

[0026] The technical solutions in the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application, obviously, the described embodiments are only some embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application.

[0027] The present application provides a technical solution:

[0028] Please refer to Figures 1 to 4 A ceramic fiber board stacking device for preventing bumping, comprising a stacking warehouse body 1, a tray lifting assembly 2 is installed inside the stacking warehouse body 1, a cleaning assembly 4 for cleaning ceramic fiber boards is installed on one side of the tray lifting assembly 2, and an unloading assembly 3 for unloading is installed on the other side of the tray lifting assembly 2;

[0029] The cleaning assembly 4 comprises a cleaning brush 407, one end of the cleaning brush 407 is connected with a moving slider 408 through a screw, and the outside of the moving slider 408 is slidingly connected with a support frame 405; the tray lifting assembly 2 comprises a stackable tray 204 which can be lifted and moved, and the cleaning brush 407 is located above the stackable tray 204, and the support frame 405 is fixed on the top of the stackable tray 204.

[0030] The inside of the moving slider 408 is connected with a cleaning lead screw 406 through a wire sleeve, and the distal end of the cleaning lead screw 406 is detachably connected with a power motor 403, and the connection between the power motor 403 and the cleaning lead screw 406 is provided with a motor connecting key 404, the distal end surface of the cleaning lead screw 406 is provided with a through hole matched with the motor connecting key 404, the cleaning assembly 4 further comprises a front cover body 401 which is detachably connected with the stackable bin 1 through a screw, the power motor 403 is slidingly installed in the inside of the front cover body 401, and the connection between the power motor 403 and the front cover body 401 is provided with a limiting sliding groove 402, and the outside of the power motor 403 is provided with a magnetic shell which is adsorbed on the support frame 405.

[0031] By adopting the above technical scheme, when the stackable tray 204 moves downward, the support frame 405 on the stackable tray 204 can drive the magnetic shell of the power motor 403 to slide downward synchronously, so that the power motor 403 and the cleaning lead screw 406 can descend synchronously, the motor connecting key 404 is inserted into the through hole of the cleaning lead screw 406, the power output end of the power motor 403 drives the cleaning lead screw 406 to rotate through the motor connecting key 404, which drives the moving slider 408 to slide in the inside of the support frame 405, thereby driving the cleaning brush 407 to move, so as to clean the top surface of the ceramic fiber plate placed on the top of the stackable tray 204, and the length of the cleaning lead screw 406 can be greater than the length of the stackable tray 204, so that the impurities can fall into the inside of the front cover body 401.

[0032] Specifically, as shown in Figure 4 The unloading assembly 3 comprises an unloading cylinder 301 fixed on one side of the stackable bin 1, and the telescopic end of the unloading cylinder 301 is installed with an unloading push plate 302, and the tray lifting assembly 2 further comprises a lifting slider 202 fixed on one side of the stackable tray 204, and the connection between the lifting slider 202 and the stackable bin 1 is provided with a lifting sliding groove 201, the inside of the lifting slider 202 is connected with a lifting lead screw 203 through a wire sleeve, and the top end surface of the stackable tray 204 at the lowest point is lower than the bottom end surface of the unloading push plate 302.

[0033] By adopting the above technical scheme, when it is necessary to unload the ceramic fiber plates stacked on the top of the stacking tray 204, the screws on the front cover body 401 are disassembled, so that the front cover body 401 is separated from the stacking bin body 1, the lifting screw 203 is rotated, the wire sleeve on the lifting screw 203 is moved to the lowest point, so that the lifting sliding block 202 slides on the lifting sliding groove 201, and the stacking tray 204 is driven to move to the lowest point. At this time, since the top end surface of the stacking tray 204 at the lowest point is lower than the bottom end surface of the unloading push plate 302, after the unloading cylinder 301 is started, the unloading push plate 302 can be pushed to move towards the front cover body 401, so as to push the ceramic fiber plates on the stacking tray 204 outwards. When the ceramic fiber plates are stacked, the lifting screw 203 is rotated, the wire sleeve on the lifting screw 203 is moved to the lowest point, so that the lifting sliding block 202 slides on the lifting sliding groove 201, and the stacking tray 204 is driven to move to the highest point. At this time, the stacking tray 204 is flush with the top of the stacking bin body 1, and the ceramic fiber plates can be placed above the stacking tray 204. Then, the stacking tray 204 is lowered, and the top end of the ceramic fiber plates is always flush with the top of the stacking bin body 1, so as to avoid the ceramic fiber plates from being knocked due to height difference when the ceramic fiber plates are stacked.

[0034] Working principle: when the ceramic fiber plate is stacked, the rotating lifting screw 203 moves the sleeve on the lifting screw 203 to the lowest point, so that the lifting slider 202 slides on the lifting sliding groove 201, and the stacking tray 204 is moved to the highest point, at this time the stacking tray 204 is flush with the top of the stacking bin body 1, the ceramic fiber plate can be placed above the stacking tray 204, the power output end of the power motor 403 drives the cleaning screw 406 to rotate through the motor connecting key 404, which drives the moving slider 408 to slide in the support frame 405, thereby driving the cleaning brush 407 to move and clean the top surface of the ceramic fiber plate placed on the top of the stacking tray 204. Then the stacking tray 204 is lowered, always keeping the top end of the ceramic fiber plate flush with the top of the stacking bin body 1, so as to avoid the height difference between the ceramic fiber plates during stacking, which causes the ceramic fiber plates to collide. When the stacking tray 204 moves downward, the support frame 405 on the stacking tray 204 can drive the magnetic shell of the power motor 403 to slide synchronously, so that the power motor 403 and the cleaning screw 406 are lowered synchronously. When it is necessary to unload the ceramic fiber plates stacked on the top of the stacking tray 204, the screws on the front cover body 401 are disassembled, so that the front cover body 401 is separated from the stacking bin body 1. By rotating the lifting screw 203, the sleeve on the lifting screw 203 is moved to the lowest point, so that the lifting slider 202 slides on the lifting sliding groove 201, and the stacking tray 204 is moved to the lowest point. At this time, since the top end surface of the stacking tray 204 is lower than the bottom end surface of the unloading push plate 302 when the stacking tray 204 is at the lowest point, after the unloading cylinder 301 is started, the unloading push plate 302 can be pushed to move towards the front cover body 401, thereby pushing the ceramic fiber plates on the stacking tray 204 outwards.

[0035] Finally, it should be pointed out that: the above embodiments are only used to illustrate the technical solutions of the present application, and not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or make equivalent replacement for part or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.

Claims

1. A knock-resistant ceramic fiber board stacking device comprising a stacking bin body (1), characterized in that: The inside of the stacking warehouse body (1) is provided with a tray lifting assembly (2), one side of the tray lifting assembly (2) is provided with a cleaning assembly (4) for cleaning the ceramic fiber plate, and the other side of the tray lifting assembly (2) is provided with a discharging assembly (3) for discharging. The cleaning assembly (4) comprises a cleaning brush (407), one end of the cleaning brush (407) is connected with a moving sliding block (408) through a screw, and the outer side of the moving sliding block (408) is slidably connected with a supporting frame (405). The tray lifting assembly (2) comprises a stackable tray (204) which can be lifted and moved, and the cleaning brush (407) is located above the stackable tray (204), and the supporting frame (405) is fixed on the top of the stackable tray (204).

2. The anti-collision ceramic fiber board stacking device of claim 1, wherein: The inside of the moving sliding block (408) is connected with a cleaning lead screw (406) through a wire sleeve, and the distal end of the cleaning lead screw (406) is detachably connected with a power motor (403), and the connecting part of the power motor (403) and the cleaning lead screw (406) is provided with a motor connecting key (404).

3. A ceramic fiber board stacker apparatus according to claim 2, wherein: The distal end surface of the cleaning lead screw (406) is provided with a through hole matched with the motor connecting key (404), and the cleaning assembly (4) further comprises a front cover body (401) which is detachably connected with the stacking warehouse body (1) through a screw.

4. A ceramic fiber board stacker according to claim 3, wherein: The power motor (403) is slidably installed in the inside of the front cover body (401), and the connecting part of the power motor (403) and the front cover body (401) is provided with a limiting sliding groove (402), and the outer side of the power motor (403) is provided with a magnetic shell which is adsorbed on the supporting frame (405).

5. A ceramic fiber board stacker as defined in claim 4, wherein: The discharging assembly (3) comprises a discharging cylinder (301) fixed on one side of the stacking warehouse body (1), and the telescopic end of the discharging cylinder (301) is provided with a discharging push plate (302).

6. A ceramic fiber board stacker apparatus according to claim 5, wherein: The tray lifting assembly (2) further comprises a lifting sliding block (202) fixed on one side of the stackable tray (204), and the connecting part of the lifting sliding block (202) and the stacking warehouse body (1) is provided with a lifting sliding groove (201).

7. A ceramic fiber board stacker apparatus of claim 6, wherein: The inside of the lifting sliding block (202) is connected with a lifting lead screw (203) through a wire sleeve, and the top end surface of the stackable tray (204) when being at the lowest point is lower than the bottom end surface of the discharging push plate (302). The inside of the moving sliding block (408) is connected with a cleaning lead screw (406) through a wire sleeve, and the distal end of the cleaning lead screw (406) is detachably connected with a power motor (403), and the connecting part of the power motor (403) and the cleaning lead screw (406) is provided with a motor connecting key (404).

Citation Information

Patent Citations

  • Ceramic fiber board stacking device

    CN221342934U