Ceramic flat sheet membrane transportation device
By designing a ceramic flat film transport device, the loading frame and transport vehicle can be quickly connected and separated using limiting components and drive components. This solves the problem of the cumbersome process of transferring and transporting ceramic flat film, improves transfer efficiency, and reduces equipment costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-29
- Publication Date
- 2026-03-27
AI Technical Summary
The transfer and transportation process of ceramic flat film during molding, firing and cleaning is cumbersome and the transfer efficiency is low.
A ceramic flat film transport device including a transport trolley and a limiting component was designed. The loading frame and the transport trolley can be quickly assembled and separated through the limiting sleeve, the insertion rod and the drive component, which simplifies the transfer process of ceramic flat film.
This improved the transfer efficiency of ceramic flat sheet membranes, reduced the number of manual handling operations, lowered equipment costs, and achieved a highly efficient transfer process.
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Figure CN224045229U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to ceramic flat sheet membrane processing technical field especially relates to a ceramic flat sheet membrane transport device. BACKGROUND
[0002] Ceramic flat sheet membrane needs to be loaded and transferred by the transport device when transferring between the forming process and the firing process and between the firing process and the cleaning process. After drying and forming, the ceramic flat sheet membrane needs to be carried to the transfer device, then transferred to the sintering furnace, and after sintering, the sintered and formed ceramic flat sheet membrane can be transferred to the cleaning pool side, and then carried to the cleaning pool for cleaning dust and impurities on the surface of the ceramic flat sheet membrane.
[0003] When the ceramic flat sheet membrane is transferred between the drying process and the firing process and between the firing process and the cleaning process, the ceramic flat sheet membrane needs to be manually carried and stacked on the transport device, and before cleaning, the ceramic flat sheet membrane needs to be carried to the cleaning pool. The whole transfer and transportation process is relatively complicated, and the transfer efficiency is relatively low. SUMMARY
[0004] Therefore, the utility model provides a ceramic flat sheet membrane transport device to solve the problem of complicated transfer and transportation process and relatively low transfer efficiency.
[0005] In order to achieve the above purpose, the utility model provides a ceramic flat sheet membrane transport device, which comprises a transport plate car, and further comprises:
[0006] Two limiting components are arranged on the upper surface of the transport plate car and oppositely arranged.
[0007] The limiting component comprises two limiting sleeves.
[0008] The loading part for loading a plurality of ceramic flat sheet membranes comprises a loading frame arranged on the transport plate car and a supporting leg arranged on the outer side of the loading frame. The supporting leg corresponds to the limiting sleeve one by one, so that when the loading part is placed on the transport plate car, the bottom end of the supporting leg extends to the inside of the limiting sleeve.
[0009] The connecting part corresponding to the limiting component comprises:
[0010] The plug rod corresponding to the limiting sleeve is inserted into the slot. The side surface of the supporting leg is provided with a plug slot for the end of the plug rod.
[0011] The driving component for driving the one end of the plug rod to move linearly in the slot.
[0012] Preferably, the driving assembly comprises a sliding sleeve fixed at the opposite ends of two adjacent inserting rods respectively and a sliding block slidingly arranged in the sliding sleeve, a rotating disc is fixed between the bottoms of the two sliding blocks, the bottom of the rotating disc is rotatably arranged on the top of the transport trolley, the rotating disc is deflected to drive the sliding block to rotate synchronously, the relative lateral displacement between the sliding block and the sliding sleeve is caused, and the two sliding sleeves and the inserting rods are pushed to move close to or away from each other.
[0013] Preferably, the positioning member comprises a lever radially fixed to the outside of the rotating disc, one end of the lever is provided with a positioning rod, the top of the transport trolley is provided with two insertion holes, the two insertion holes are located on the path of the circumferential movement of the positioning rod, and the bottom end of the positioning rod is matched with the insertion hole so that the rotating disc is fixed after being deflected at an angle.
[0014] Preferably, the loading part further comprises a plurality of layer plates vertically and parallelly fixed in the loading frame, and a blocking member is arranged between the plurality of layer plates, and the blocking member is used for limiting and fixing the ceramic flat film embryo placed on the top of the layer plate.
[0015] Preferably, the blocking member comprises a T-shaped groove arranged at the boundary between the layer plate and the transport trolley and a limiting stop rod vertically inserted into the plurality of T-shaped grooves from top to bottom.
[0016] Preferably, the plurality of T-shaped grooves are coaxial in the vertical direction, and the cross section of the limiting stop rod is matched with the T-shaped groove.
[0017] Preferably, the transport device further comprises two lifting lugs oppositely fixed on the top of the loading frame, and an isosceles triangle is formed by the top of the loading frame and the lifting lugs in the vertical direction.
[0018] Preferably, the axis of the sliding sleeve and the axis of the inserting rod are perpendicular to each other in the horizontal plane, and the axis of the inserting rod is consistent with one of the radial lines of the rotating disc.
[0019] The utility model discloses the beneficial effects of:
[0020] The utility model discloses the setting of connecting portion can realize the quick assembly or separation between loading frame and transport trolley, only needs when the embryo of ceramic flat film is made, the ceramic flat film is placed on the loading frame, so as to be convenient for the whole loading frame of full load to be placed in the sintering furnace or cleaning pool, does not need to move ceramic flat film many times, improves the transfer efficiency of ceramic flat film, and through the detachable design between transport trolley and loading frame, can use the relatively less transport trolley cooperation quantity relatively more loading frame, can efficiently transfer ceramic flat film, and can reduce equipment cost investment. DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or prior art description. Obviously, the drawings in the following description are only a part of the present application, and other drawings can also be obtained by those skilled in the art without creative labor on the basis of these drawings.
[0022] Figure 1 Schematic diagram of the present application Figure 1 ;
[0023] Figure 2 Schematic diagram of the present application Figure 2 ;
[0024] Figure 3 Schematic diagram of the present application Figure 3 ;
[0025] Figure 4 Schematic diagram of the present application Figure 4 ;
[0026] Figure 5 Schematic diagram of the present application Figure 5 .
[0027] Marked as:
[0028] 1, transport plate car; 2, limiting assembly; 21, limiting sleeve; 3, loading part; 31, loading frame; 32, supporting leg; 33, partition plate; 34, blocking piece; 341, T-shaped groove; 342, limiting stop rod; 4, connecting part; 41, insertion rod; 42, through slot; 43, insertion slot; 5, driving assembly; 51, sliding sleeve; 52, sliding block; 53, rotating disc; 54, positioning piece; 541, pull rod; 542, through hole; 543, positioning rod; 544, insertion hole; 6, lifting lug. Specific implementation
[0029] In order to make the purpose, technical scheme and advantages of the present application more clear, the following will further illustrate the present application in detail with specific examples.
[0030] It should be noted that, unless otherwise defined, technical or scientific terms used in the present application should be understood as their common meanings to those skilled in the art to which the present application belongs. The terms "first", "second" and similar words used in the present application do not represent any order, quantity or importance, but are only used to distinguish different components. The terms "include" or "contain" and similar words mean that the elements or objects before the word cover the elements or objects listed after the word and their equivalents, without excluding other elements or objects. The terms "connect" or "connected" and similar words are not limited to physical or mechanical connections, but can include electrical connections, whether direct or indirect. "Up", "down", "left", "right" and the like are only used to represent relative positional relationships, which may change accordingly when the absolute position of the described object changes.
[0031] As shown in Figures 1 to 5 A ceramic flat sheet membrane conveying device, comprising a conveying trolley 1, the conveying device further comprising:
[0032] Two limiting assemblies 2 are arranged on the upper surface of the conveying trolley 1 and opposite to each other.
[0033] The limiting assembly 2 comprises two limiting sleeves 21.
[0034] A loading part 3 for loading a plurality of ceramic flat sheet membranes, comprising a loading rack 31 arranged on the conveying trolley 1 and a supporting leg 32 arranged on the outer side of the loading rack 31, the supporting leg 32 corresponds to the limiting sleeve 21 one by one, so that when the loading part 3 is placed on the conveying trolley 1, the bottom end of the supporting leg 32 extends to the inside of the limiting sleeve 21.
[0035] A connecting part 4 corresponding to the limiting assembly 2, the connecting part 4 comprises:
[0036] A plug rod 41 corresponding to the limiting sleeve 21, the plug rod 41 is inserted into the through slot 42 arranged on the side surface of the corresponding limiting sleeve 21, and the side surface of the supporting leg 32 is provided with a plug slot 43 for allowing the end of the plug rod 41 to enter.
[0037] A driving assembly 5 for driving the one end of the plug rod 41 to move linearly in the through slot 42.
[0038] Only one layer of ceramic flat sheet membrane blank needs to be placed in the loading rack 31 after forming, and only the hoisting loading rack 31 needs to be operated when transferring between the processes of firing, cleaning, drying and the like, without the need for piece-by-piece transfer, improving the transfer efficiency, and the detachable installation between the loading rack 31 and the conveying trolley 1, only the operation of the driving assembly 5 can make the plug rod 41 inserted into the plug slot 43 on the supporting leg 32 to complete the fixed connection, or make the plug rod 41 separated from the plug slot 43 on the supporting leg 32 to complete the disassembly, which is simple and efficient.
[0039] As Figure 1 , Figure 2 and Figure 4 shown, the drive assembly 5 includes a sliding sleeve 51 fixed to the opposite ends of the two adjacent insertion rods 41 respectively and a sliding block 52 slidingly arranged in the sliding sleeve 51, the axis of the sliding sleeve 51 is perpendicular to the axis of the insertion rod 41 in the horizontal plane, the axis of the insertion rod 41 is consistent with one of the radial lines of the rotating disc 53, the bottom of the rotating disc 53 is rotatably arranged on the top of the transport trolley 1, the rotating disc 53 is deflected to drive the synchronous rotation of the sliding block 52, the relative transverse displacement between the sliding block 52 and the sliding sleeve 51 occurs, and the two sliding sleeves 51 and the insertion rods 41 are pushed to approach or move away from each other, the loading rack 31 is fixedly installed on the transport trolley 1 or separated from the transport trolley 1, only need to push the rotating disc 53 to deflect by a fixed angle in the clockwise or counterclockwise direction, so that the relative displacement between the sliding block 52 and the sliding sleeve 51 in the axial direction of the sliding sleeve 51 occurs, and the insertion rod 41 is pushed to insert into the insertion slot 43 on the supporting leg 32 in the axial direction of the insertion rod 41, so that the fixed connection relationship between the loading rack 31 and the transport trolley 1 is locked, or the insertion rod 41 is pulled and one end thereof is separated from the insertion slot 43 on the supporting leg 32, so that the fixed connection relationship between the transport trolley 1 and the loading rack 31 is released, the operation process is simple and fast, and the operation is easy.
[0040] As Figure 4 shown, the positioning member 54 includes a lever 541 fixedly arranged on the outside of the rotating disc 53 in the radial direction, one end of the lever 541 penetrates a positioning rod 542, the top of the transport trolley 1 is provided with two insertion holes 543, the two insertion holes 543 are located on the circumferential movement path of the positioning rod 542, and the bottom end of the positioning rod 542 is matched with the insertion hole 543, so that the rotating disc 53 is fixed after being deflected by a fixed angle, after the rotating disc 53 is deflected by a fixed angle in the clockwise or counterclockwise direction, the positioning rod 542 on the lever 541 corresponds to and is inserted into one of the insertion holes 543, so that the circumferential degree of freedom of the rotating disc 53 is limited, and the fixed connection state or the disassembly state between the loading rack 31 and the transport trolley 1 is locked.
[0041] As Figure 3 and Figure 5 shown, the loading part 3 further includes a plurality of layer plates 33 vertically and parallelly fixed in the loading rack 31, the adjacent three boundaries of the layer plate 33 are uniformly provided with limiting strips, and a blocking member 34 is arranged between the plurality of layer plates 33 and located at the boundary of the layer plate 33 which is not provided with the limiting strip, and the blocking member 34 is used for limiting and fixing the ceramic flat film embryo placed on the top of the layer plate 33.
[0042] The blocking member 34 includes a T-shaped groove 341 arranged at the boundary of the layer plate 33 and the transport trolley 1 and a limiting stop rod 342 vertically penetrating into the plurality of T-shaped grooves 341 from top to bottom.
[0043] The several T-shaped grooves 341 are coaxial in the vertical direction, and the cross section of the limiting stopper 342 matches the T-shaped groove 341. Through the cooperation of the limiting stopper 342 and the three limiting strips on the top of the partition plate 33, the ceramic flat plate membrane embryo is limited and fixed on the top of the partition plate 33, so as to avoid the position deviation of the ceramic flat plate membrane embryo on the top of the partition plate 33 in the multiple transfer process of the loading rack 31, and affect the integrity of the ceramic flat plate membrane embryo.
[0044] As shown in Figure 1 , Figure 3 and Figure 5 , the transport device further comprises two lifting lugs 6 fixed on the top of the loading rack 31. The lifting lugs 6 and the top of the loading rack 31 form an isosceles triangle in the vertical direction. In this way, when the loading rack 31 is lifted, the loading rack 31 can maintain uniform gravity distribution when moving in the air, avoiding tilting or large amplitude swinging, and affecting the stability of the ceramic flat plate membrane embryo.
[0045] Working principle: after all the ceramic flat plate membrane embryo bodies are placed on the top of all the partition plates 33 inside the loading frame 31, the limiting stop rod 342 is sequentially inserted into the T-shaped slot 341 on all the partition plates 33 from top to bottom, and cooperates with the three limiting strips on the top of the partition plates 33 to limit the freedom degree of the ceramic flat plate membrane embryo body in the horizontal direction, then the loading frame 31 is stably hoisted to the top of the transport plate car 1 through the two lifting lugs 6 on the top of the loading frame 31 by using a lifting arm or a truss, the supporting leg 32 is corresponded with the limiting sleeve 21, and the supporting leg 32 is inserted into the inside of the limiting sleeve 21, then the positioning rod 542 is pulled out from one of the insertion holes 543, and the rotating disc 53 is pushed in the direction of the pointer to deflect a certain angle, so that the positioning rod 542 is corresponded with the other insertion hole 543 and is inserted into the inside, in the rotating process of the rotating disc 53, the sliding block 52 is synchronously moved in the circumferential direction, so that the sliding block 52 and the sliding sleeve 51 are relatively displaced in the axial direction of the sliding sleeve 51, so that the one end of the insertion rod 41 is pushed into the insertion slot 43 on the supporting leg 32 in the axial direction of the insertion rod 41, so that the fixed connection state between the loading frame 31 and the transport plate car 1 is locked, then the transport plate car 1 is pushed to transfer the loading frame 31 and the ceramic flat plate membrane embryo bodies carried in the inside to the next process; when it is needed to separate the loading frame 31 and the transport plate car 1, the positioning rod 542 is pulled out from one of the insertion holes 543, and the rotating disc 53 is pushed in the direction opposite to the direction of the pointer to deflect a certain angle, so that the positioning rod 542 is corresponded with the other insertion hole 543 and is inserted into the inside, in the rotating process of the rotating disc 53, the sliding block 52 is synchronously moved in the circumferential direction, so that the sliding block 52 and the sliding sleeve 51 are relatively displaced in the axial direction of the sliding sleeve 51, so that the one end of the insertion rod 41 is pulled out from the insertion slot 43 on the supporting leg 32 in the axial direction of the insertion rod 41, the fixed connection state between the loading frame 31 and the transport plate car 1 is released, so that the loading frame 31 is stably hoisted from the transport plate car 1 through the two lifting lugs 6 on the top of the loading frame 31 by using a lifting arm or a truss, so as to be sent into a sintering furnace or a cleaning pool or a drying site.
[0046] Those skilled in the art will understand that the above discussion of any embodiment is only exemplary and is not intended to imply that the scope (including claims) of the present application is limited to these examples; under the idea of the present application, the above embodiments or technical features in different embodiments can also be combined, the steps can be implemented in any order, and there are many other changes of different aspects of the present application as described above, which are not provided in details for the sake of brevity.
[0047] The present application is intended to cover all such alterations, modifications, and variations of the application that are within the scope of the appended claims. Accordingly, any and all such alterations, modifications, equivalents, improvements and the like are intended to be encompassed by the present application.
Claims
1. A ceramic flat sheet membrane transport device comprising a transport trolley (1), characterized in that, The transportation device further comprises: Two limiting assemblies (2) arranged oppositely on the upper surface of the transportation trolley (1); The limiting assembly (2) comprises two limiting sleeves (21); A loading part (3) for loading ceramic flat sheet membranes, which comprises a loading rack (31) arranged on the transportation trolley (1) and a supporting leg (32) arranged outside the loading rack (31), the supporting leg (32) corresponds to the limiting sleeve (21) one by one, so that when the loading part (3) is placed on the transportation trolley (1), the bottom end of the supporting leg (32) extends into the limiting sleeve (21); A connecting part (4) corresponding to the limiting assembly (2), the connecting part (4) comprises: A plug rod (41) corresponding to the limiting sleeve (21), the plug rod (41) is inserted into the through slot (42) arranged on the side surface of the corresponding limiting sleeve (21), and the side surface of the supporting leg (32) is provided with an insertion slot (43) for allowing the end of the plug rod (41) to enter; A driving assembly (5) for driving the one end of the plug rod (41) to move linearly in the through slot (42).
2. The ceramic flat sheet membrane transport apparatus of claim 1, wherein, The driving assembly (5) comprises a sliding sleeve (51) fixed to the opposite ends of two adjacent plug rods (41) respectively and a sliding block (52) slidingly arranged in the sliding sleeve (51), a rotating disc (53) is fixed between the bottoms of the two sliding blocks (52), the bottom of the rotating disc (53) is rotatably arranged on the top of the transportation trolley (1), the rotating disc (53) is deflected to drive the sliding block (52) to rotate synchronously, so that the relative transverse displacement between the sliding block (52) and the sliding sleeve (51) occurs, and the two sliding sleeves (51) and plug rods (41) are pushed to move close to or away from each other, and a positioning member (54) is arranged between the rotating disc (53) and the transportation trolley (1).
3. The ceramic flat sheet membrane transport apparatus of claim 2, wherein, The positioning member (54) comprises a lever (541) fixed to the outside of the rotating disc (53) in the radial direction, one end of the lever (541) is provided with a positioning rod (542), and the top of the transportation trolley (1) is provided with two insertion holes (543), the two insertion holes (543) are located on the path of the circumferential movement of the positioning rod (542), and the bottom end of the positioning rod (542) is matched with the insertion hole (543) to fix the rotating disc (53) after the rotating disc (53) is deflected at an angle.
4. The ceramic flat sheet membrane transport apparatus of claim 1, wherein, The loading part (3) further comprises a plurality of partition plates (33) vertically and parallelly fixed in the loading rack (31), and a blocking member (34) is arranged between the plurality of partition plates (33), and the blocking member (34) is used for limiting and fixing the ceramic flat sheet membrane embryo placed on the top of the partition plate (33).
5. The ceramic flat sheet membrane transport apparatus of claim 4, wherein, The blocking member (34) comprises a T-shaped groove (341) arranged at the boundary between the partition plate (33) and the transportation trolley (1) and a limiting stop rod (342) vertically inserted into the plurality of T-shaped grooves (341) from top to bottom.
6. The ceramic flat sheet membrane transport apparatus of claim 5, wherein, The plurality of T-shaped grooves (341) are coaxial in the vertical direction, and the cross section of the limiting stop rod (342) is matched with the T-shaped groove (341).
7. The ceramic flat sheet membrane transport apparatus of claim 1, wherein, The transport device further comprises two lifting lugs (6) fixed oppositely on the top of the loading frame (31), and an isosceles triangle is formed vertically between the lifting lugs (6) and the top of the loading frame (31).
8. The ceramic flat sheet membrane transport apparatus of claim 2, wherein, The axis of the sliding sleeve (51) is perpendicular to the axis of the inserting rod (41) in a horizontal plane, and the axis of the inserting rod (41) is consistent with one of the diameters of the rotating disc (53).