Splicing device for aluminum floor slabs
The automated splicing of aluminum floor slabs is achieved through the drive and guide components of the support and splicing modules, which solves the cumbersome operation and quality problems caused by manual hammering, and improves splicing efficiency and quality.
Patent Information
- Application Number
- CN202520283225.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2035-02-20
AI Technical Summary
In existing technologies, splicing aluminum floor slabs relies on manual hammering, which is cumbersome, time-consuming, and easily leads to dents and deformation on the aluminum slab surface, affecting quality and service life.
The system employs a support module and a splicing module. A drive assembly is used to move the moving plate toward the fixed plate, clamping the aluminum plate so that the mating parts can fit together. Combined with a guide assembly, it ensures precise movement and avoids manual hammering.
It improves the splicing efficiency and quality of aluminum floor slabs, reduces labor input, ensures consistency in each splicing, avoids inconsistent quality caused by differences in the force and rhythm of manual hammering, and meets the needs of large-scale production.
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Figure CN223670043U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of escalator processing, in particular to a splicing device for an aluminum floor. BACKGROUND
[0002] In modern buildings, escalators are important vertical transportation tools, and aluminum floors are widely used in the manufacturing of various escalators due to their light weight, corrosion resistance and other excellent properties. As an important component of escalators, the demand for aluminum floors is increasing.
[0003] At present, in the processing of escalator aluminum floors, aluminum plate splicing is a key link, which requires the butt joint of one aluminum plate to be spliced in the butt groove of another aluminum plate. The industry generally adopts a knocking method. This traditional splicing method mainly relies on manual operation, and the operator uses a hammer and other tools to repeatedly knock the aluminum plate with a butt joint, so that the splicing parts of the two aluminum plates gradually fit together.
[0004] However, the operation process of repeated manual knocking is complicated and time-consuming, and the worker needs to accurately control the force and position every time, which slows down the splicing speed and greatly reduces the production efficiency of the escalator aluminum floor. In addition, due to the relatively soft nature of the aluminum plate, frequent knocking is likely to leave indentations, deformation and other defects on the surface of the aluminum plate, affecting the appearance quality of the escalator aluminum floor, and may also weaken the structural strength of the aluminum plate to some extent, causing damage to the aluminum plate body, and thus affecting the overall performance and service life of the escalator aluminum floor.
[0005] According to the related technology in the above, the inventor believes that there are defects such as splicing two aluminum plates by manual multiple times, the need for the operator to accurately control the force and position, slow splicing speed, greatly reduced production efficiency of the escalator aluminum floor, and frequent knocking likely to leave indentations, deformation and other defects on the surface of the aluminum plate, affecting the quality and service life of the escalator aluminum floor. CONTENT OF THE UTILITY MODEL
[0006] In order to improve the problem of splicing two aluminum plates by manual multiple times, the need for the operator to accurately control the force and position, slow splicing speed, greatly reduced production efficiency of the escalator aluminum floor, and frequent knocking likely to leave indentations, deformation and other defects on the surface of the aluminum plate, affecting the quality and service life of the escalator aluminum floor, the application provides a splicing device for an aluminum floor.
[0007] The splicing device for an aluminum floor provided by the application adopts the following technical scheme:
[0008] A splicing device for an aluminum floor, comprising a support module and a splicing module arranged on the support module.
[0009] The support module comprises a support frame and a base plate, and the base plate is mounted on the support frame;
[0010] The splicing module comprises a fixed plate and a movable plate, the fixed plate is fixedly mounted on one side of the base plate, the movable plate is movably mounted on the other side of the base plate, a plurality of aluminum plates are located between the fixed plate and the movable plate, a plurality of driving assemblies are arranged on the support module, the driving assemblies are mounted on the side of the movable plate away from the fixed plate, and the driving assemblies drive the movable plate to move towards the fixed plate to splice the aluminum plates.
[0011] By adopting the above technical scheme, the support frame is used to bear the weight and force of the base plate and the splicing module on the base plate, the base plate is used to bear the splicing module and the aluminum plates to be spliced, the base plate provides a flat placement platform for the splicing operation of the splicing module, the fixed plate is used as a fixed reference surface for splicing the aluminum plates, the movable plate is used as a dynamic reference surface for splicing the aluminum plates, two aluminum plates or a plurality of aluminum plates are located in the clamping space, the driving assemblies provide power for the movement of the movable plate, the driving assemblies drive the movable plate to move towards the fixed plate, and the aluminum plates located between the fixed plate and the movable plate are pressed to clamp the aluminum plates, so that the connecting pieces of one aluminum plate are matched and spliced into the connecting grooves of another aluminum plate, that is, the splicing parts of the aluminum plates are tightly fitted, and reliable splicing between the aluminum plates is effectively ensured.
[0012] Optionally, a pushing piece for pushing the aluminum plate is arranged on the side of the movable plate close to the fixed plate, and a positioning piece for positioning the aluminum plate is arranged on the side of the fixed plate close to the movable plate.
[0013] By adopting the above technical scheme, the pushing piece can directly contact the aluminum plate and apply a pushing force to promote the movement of the aluminum plate towards the fixed plate, and the positioning piece is used for accurate positioning of the aluminum plate, which can limit the position of the aluminum plate and keep it fixed in the horizontal and vertical directions, thereby providing an accurate reference for subsequent splicing operations.
[0014] Optionally, the support module further comprises a support, which is arranged on the side of the support frame close to the movable plate, and a first mounting seat is arranged on the side of the support close to the movable plate.
[0015] By adopting the above technical scheme, the support provides a mounting basis for the air cylinder, and the first mounting seat provides a connection basis for the fixation of the air cylinder. The first mounting seat cooperates with the support to accurately determine the installation position and direction of the air cylinder.
[0016] Optionally, the driving assembly comprises an air cylinder, one end of the fixed end of the air cylinder is arranged on the support, the other end is mounted on the first mounting seat, and the output end of the air cylinder is drivingly connected with the movable plate.
[0017] By adopting the technical scheme, the cylinder is arranged to provide power for the movement of the moving plate, the output end of the cylinder pushes the moving plate to move stably in the direction of the fixed plate, thereby clamping or loosening the aluminum plates to splice the aluminum plates tightly.
[0018] Optionally, an end of the output end of the cylinder is provided with a connecting plate, and the connecting plate is connected with the moving plate.
[0019] By adopting the technical scheme, the connecting plate is arranged to stably connect the output end of the cylinder and the moving plate together, so that the power output by the cylinder can be effectively transmitted to the moving plate.
[0020] Optionally, a guide assembly is arranged on one side of the driving assembly, the guide assembly comprises a guide column and a second mounting seat, the second mounting seat is arranged on the support, the second mounting seat is arranged on one side of the first mounting seat, one end of the guide column is arranged on the fixed plate, the other end of the guide column penetrates through the moving plate and is arranged on the second mounting seat, and the guide column is located below the aluminum plates.
[0021] By adopting the technical scheme, the guide column limits the moving plate to move along the axial direction of the guide column, the support is arranged to provide a support structure for the installation of the guide column, and the second mounting seat cooperates with the support to stably fix the guide column in the device.
[0022] Optionally, one end of the guide column protrudes from the fixed plate and is provided with a first support, and the other end of the guide column is provided with a second support.
[0023] By adopting the technical scheme, the first support is arranged to fix the guide column, thereby ensuring the stable connection between the guide column and the fixed plate, and the second support cooperates with the first support to stably fix the guide column in the entire device.
[0024] Optionally, a bearing seat is arranged on the guide column, and the bearing seat is arranged on one side of the second mounting seat close to the moving plate.
[0025] By adopting the technical scheme, the bearing seat supports the guide column to some extent, the bearing seat can share part of the force, so that the stress of the guide column is more uniform, thereby avoiding damage due to excessive local stress.
[0026] Optionally, a plurality of reinforcing plates are arranged on one side of the support, and the reinforcing plates are arranged on one side of the fixed plate away from the moving plate.
[0027] By adopting the technical scheme, the plurality of reinforcing plates can further enhance the bearing capacity of the support, thereby preventing the support from deforming due to excessive stress.
[0028] Optionally, the support frame bottom is provided with a placing plate.
[0029] By adopting the above technical scheme, the placing plate provides a placing area for tool boxes and other articles.
[0030] To sum up, the present application has at least one of the following beneficial technical effects:
[0031] 1. The driving assembly drives the moving plate to move towards the fixed plate, applies pressure to the aluminum plate located between the fixed plate and the moving plate, clamps the aluminum plate, and makes the butt joint of one aluminum plate fit into the butt joint groove of another aluminum plate, so that the spliced part of the aluminum plate is tightly fitted, the operator does not need to repeatedly knock the aluminum plate to realize splicing, the manpower investment is reduced, the time required for splicing is greatly shortened, the reliable splicing between the aluminum plates is effectively ensured, the consistency of each splicing is ensured by the stable mechanical driving pressure, the splicing quality is uneven due to the difference in knocking force and rhythm, the splicing efficiency and quality of the aluminum floor are improved, and the large-scale production demand of the aluminum floor of the escalator is met.
[0032] 2. The guide assembly provides accurate guidance for the movement of the moving plate, ensures that the moving plate can move smoothly along the predetermined direction under the driving of the air cylinder, avoids the movement of the moving plate from deviating, shaking or jamming, reduces the problems of too large splicing gap and splicing misalignment of the aluminum plate caused by inaccurate movement of the moving plate, and ensures the overall quality, precision and stability of the splicing of the aluminum plate. BRIEF DESCRIPTION OF DRAWINGS
[0033] Figure 1 is a schematic diagram of the overall structure of the splicing device of the aluminum floor of the embodiment of the present application;
[0034] Figure 2 is a schematic diagram of the structure of the base plate and the splicing module in the splicing device of the aluminum floor of the embodiment of the present application;
[0035] Figure 3 is a schematic diagram of the structure of the driving assembly and the guide assembly in the splicing device of the aluminum floor of the embodiment of the present application.
[0036] MARKED DESCRIPTION:
[0037] 1, support module; 11, support frame; 111, reinforcing plate; 112, placing plate; 12, base plate; 2, splicing module; 21, fixed plate; 211, positioning piece; 22, moving plate; 221, pushing piece; 23, driving assembly; 231, air cylinder; 232, connecting plate; 233, support; 234, first mounting seat; 24, guide assembly; 241, guide column; 242, second mounting seat; 243, first support; 244, bearing seat; 3, aluminum plate. DETAILED DESCRIPTION
[0038] It should be noted that the embodiments in the utility model and the features in the embodiments can be combined with each other without conflict.
[0039] In the description of the utility model, it is to be understood that the orientation or position relationship indicated by the terms "center", "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like is the orientation or position relationship shown in the drawings, and is only for the convenience of describing the utility model and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements indicated must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the utility model. In addition, the terms "first", "second" and the like are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features limited by "first", "second" and the like can explicitly or implicitly include one or more features. In the description of the utility model, the meaning of "a plurality of" is two or more, unless otherwise specified.
[0040] In the description of the utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connection" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected, it can be mechanically connected, or it can be electrically connected, it can be directly connected, or it can be indirectly connected through an intermediate medium, it can be the communication between two elements. For ordinary skilled in the art, the specific meaning of the above terms in the utility model can be understood through specific circumstances.
[0041] The following will be described in detail in combination with the accompanying drawings Figures 1-3 The application will be further described in detail.
[0042] The embodiment of the application discloses a splicing device for aluminum floor slab, referring to Figure 1 The splicing device for aluminum floor slab comprises a supporting module 1 and a splicing module 2 arranged on the supporting module 1. The supporting module 1 comprises a supporting frame 11 and a base plate 12, and the base plate 12 is installed on the supporting frame 11. The splicing module 2 comprises a fixed plate 21 and a moving plate 22, the fixed plate 21 is fixedly installed on one side of the base plate 12, the moving plate 22 is movably installed on the other side of the base plate 12, a plurality of aluminum plates 3 are located between the fixed plate 21 and the moving plate 22, a plurality of driving assemblies 23 are arranged on the supporting module 1, the driving assembly 23 is installed on the side of the moving plate 22 away from the fixed plate 21, and the driving assembly 23 drives the moving plate 22 to move towards the fixed plate 21 to splice the aluminum plates 3.
[0043] The support module 1 in the device serves as a support structure as a whole, and the splicing module 2 is arranged on the support module 1 and used for splicing the aluminum plates 3, without the need for an operator to repeatedly knock the aluminum plates 3 to enable the two aluminum plates 3 to be spliced. The support frame 11 is used to bear the weight and force of the base plate 12 and the splicing module 2 on the base plate 12. The base plate 12 is arranged to bear the splicing module 2 and the aluminum plates 3 to be spliced. The base plate 12 provides a flat placement platform for the splicing operation of the splicing module 2, so that the aluminum plates 3 to be spliced are kept horizontal and stable during the splicing process, facilitating accurate splicing operation.
[0044] The fixed plate 21 in the splicing module 2 serves as a fixed reference surface for the splicing of the aluminum plates 3, and the movable plate 22 serves as a dynamic reference surface for the splicing of the aluminum plates 3. The fixed plate 21 and the movable plate 22 together constitute an adjustable clamping space in which two aluminum plates 3 or multiple aluminum plates 3 are adjusted to appropriate positions and subjected to splicing operation, i.e., the splicing of aluminum plates 3 of different sizes and quantities can be achieved. The position change of the movable plate 22 can guide and control the splicing process of the aluminum plates 3, ensuring that the aluminum plates 3 can be spliced in a predetermined manner and with a predetermined accuracy, thereby ensuring the overall quality and performance of the aluminum floor.
[0045] The driving assembly 23 provides power for the movement of the movable plate 22. The driving assembly 23 drives the movable plate 22 to move towards the fixed plate 21, applies pressure to the aluminum plates 3 located between the fixed plate 21 and the movable plate 22, clamps the aluminum plates 3, and enables the butt joint of one aluminum plate 3 to be fitted into the butt joint groove of another aluminum plate 3, i.e., the splicing parts of the aluminum plates 3 are tightly fitted, effectively ensuring reliable splicing between the aluminum plates 3 and preventing the aluminum plates 3 from being loose or having gaps after splicing, thereby improving the firmness of splicing.
[0046] In the device, multiple driving assemblies 23 can be arranged to collectively drive the movable plate 22 to move towards the fixed plate 21, so as to more effectively clamp and splice the aluminum plates 3, and enable the splicing parts of the aluminum plates 3 to be tightly fitted. The device does not require an operator to repeatedly knock the aluminum plates 3 to achieve splicing. Instead, the driving assembly 23 drives the movable plate 22 to move towards the fixed plate 21, applies pressure to the aluminum plates 3, clamps the aluminum plates 3, and enables the splicing parts of the aluminum plates 3 to be tightly fitted. This reduces the labor input and greatly shortens the time required for splicing, effectively ensures reliable splicing between the aluminum plates 3, and ensures the consistency of each splicing through stable mechanical driving pressure, thereby avoiding the situation that the splicing quality is uneven due to differences in the knocking force and rhythm of the operator, improving the splicing efficiency and quality of the aluminum floor, and meeting the large-scale production demand of the aluminum floor of the escalator.
[0047] Reference Figure 1 and Figure 2A pushing piece 221 is arranged on the mobile plate 22 near the fixed plate 21, which can directly contact and apply a pushing force to the aluminum plate 3, so as to move the aluminum plate 3 to the fixed plate 21, and ensure that the aluminum plate 3 can accurately reach the splicing position. The arrangement of the pushing piece 221 helps to more effectively clamp the aluminum plate 3 between the fixed plate 21 and the mobile plate 22, especially for larger or heavier aluminum plates 3, the clamping force can be more evenly transmitted, preventing the aluminum plate 3 from being skewed or inaccurate during splicing, thereby improving the accuracy and quality of splicing.
[0048] A positioning piece 211 is arranged on the fixed plate 21 near the mobile plate 22, which is used for positioning the aluminum plate 3. When the aluminum plate 3 is placed on one side of the fixed plate 21, the positioning piece 211 can limit the position of the aluminum plate 3, so that it remains fixed in the horizontal and vertical directions, providing an accurate reference for subsequent splicing operations. Through the positioning piece 211, it can be ensured that each aluminum plate 3 is in the correct position before splicing, so that multiple aluminum plates 3 can be accurately spliced together according to the design requirements to form a complete aluminum floor. The existence of the positioning piece 211 greatly improves the accuracy and consistency of splicing, reducing problems such as poor splicing caused by position deviation of the aluminum plate 3. The positioning piece 211 and the pushing piece 221 cooperate with each other, the pushing piece 221 can push the aluminum plate 3 into position, and the positioning piece 211 can serve as a reference for the aluminum plate 3 to fix its position, together ensuring the smooth progress of the aluminum plate 3 splicing process and the reliability of the splicing quality.
[0049] The support module 1 further comprises a support 233 arranged on the support frame 11 near the mobile plate 22, and a first mounting seat 234 is arranged on the support 233 near the mobile plate 22. The driving assembly 23 comprises a gas cylinder 231, one end of which is fixed to the support 233, and the other end is mounted on the first mounting seat 234. The support 233 provides a mounting base for the gas cylinder 231, and the first mounting seat 234 provides a connection base for the fixation of the gas cylinder 231. The first mounting seat 234 cooperates with the support 233 to accurately determine the installation position and direction of the gas cylinder 231, ensuring that the gas cylinder 231 can stably drive the mobile plate 22 during work, avoiding power transmission problems caused by loose connection. The arrangement of the gas cylinder 231 provides power for the movement of the mobile plate 22. When the gas cylinder 231 is started, its output end will stretch and retract, pushing the mobile plate 22 to move stably in the direction of the fixed plate 21, thereby clamping or releasing the aluminum plate 3, making the aluminum plate 3 splice tightly, realizing efficient and accurate splicing of the aluminum plate 3. The precise control ability of the gas cylinder 231 can adjust the size of the output force and the speed of movement according to different aluminum plates 3 and splicing requirements, ensuring the quality and efficiency of the aluminum plate 3 splicing.
[0050] A connecting plate 232 is installed at the end of the output end of the air cylinder 231, and the connecting plate 232 is connected with the moving plate 22. The connecting plate 232 stably connects the output end of the air cylinder 231 with the moving plate 22, so that the power output by the air cylinder 231 can be effectively transmitted to the moving plate 22. In addition, the connecting plate 232 can disperse and transmit the force applied by the air cylinder 231. Since the force point of the output end of the air cylinder 231 is relatively concentrated, the connecting plate 232 can uniformly disperse the force output by the air cylinder 231 to the moving plate 22, so as to avoid deformation or damage of the moving plate 22 due to uneven force, and improve the accuracy and efficiency of splicing of the aluminum plate 3. In addition, the connecting plate 232 can also play a buffering role to a certain extent. When the output end of the air cylinder 231 suddenly moves, it can buffer part of the impact force, reduce the damage to the moving plate 22, and prolong the service life of the moving plate 22.
[0051] With reference to Figure 1 and Figure 3 A guide assembly 24 is installed on one side of the driving assembly 23. The guide assembly 24 includes a guide column 241 and a second mounting seat 242. The second mounting seat 242 is arranged on the support 233 and is arranged on one side of the first mounting seat 234. One end of the guide column 241 is installed on the fixed plate 21, and the other end penetrates through the moving plate 22 and is installed on the second mounting seat 242. The guide column 241 is located below the aluminum plate 3. The guide assembly 24 provides accurate guidance for the movement of the moving plate 22, ensures that the moving plate 22 can move stably along the predetermined direction under the driving of the air cylinder 231, avoids deviation, shaking or jamming of the moving plate 22 during movement, reduces problems such as too large splicing gap and splicing misalignment of the aluminum plate 3 caused by inaccurate movement of the moving plate 22, and ensures the overall quality, accuracy and stability of splicing of the aluminum plate 3.
[0052] The guide column 241 is the main component of the guide assembly 24 and is the track for the movement of the moving plate 22. One end of the guide column 241 is fixed on the fixed plate 21, and the other end penetrates through the moving plate 22 and is installed on the second mounting seat 242, so that the moving plate 22 can only move along the axial direction of the guide column 241. At the same time, the guide column 241 can also bear a certain lateral force. When the moving plate 22 is moved and is interfered by external force, the guide column 241 can disperse and transmit these forces, so as to ensure the stable movement of the moving plate 22. The guide column 241 makes the movement of the moving plate 22 more stable and smooth, and improves the reliability of the splicing process of the aluminum plate 3. Since the guide column 241 is located below the aluminum plate 3 and can serve as a support for the aluminum plate 3, it will not affect the splicing operation of the aluminum plate 3, and can effectively guide the moving plate 22 to ensure that the aluminum plate 3 can be accurately aligned and attached during splicing.
[0053] In the present application, the mobile plate 22 is provided with a through hole, which can be used for the movement of the mobile plate 22 on the guide column 241. The guide column 241 is arranged in a gap with the through hole, which facilitates the smooth movement of the mobile plate 22.
[0054] The support 233 provides a support structure for the installation of the guide column 241. The second mounting seat 242 cooperates with the support 233 to firmly fix the guide column 241 in the device, while providing a certain buffer and adjustment space for the guide column 241. When the mobile plate 22 generates a certain impact force on the guide column 241 during movement, the second mounting seat 242 can absorb part of the energy, reducing the impact on the guide column 241 and the entire device.
[0055] The guide column 241 extends out of the fixed plate 21 at one end and is provided with a first support 243, and the other end is provided with a second support. The first support 243 can fix the guide column 241, ensuring the stable connection of the guide column 241 with the fixed plate 21. It can enhance the support strength of the guide column 241 at this end, so that the guide column 241 will not loosen or fall off from the fixed plate 21 when bearing the force of the mobile plate 22. In addition, the first support 243 can also protect the guide column 241 to some extent, reducing the impact of external factors on the connection part of the guide column 241 and the fixed plate 21. The stable guide column 241 helps to improve the stability and working efficiency of the entire splicing device, reducing the maintenance and adjustment work due to the loosening of the guide column 241. The second support cooperates with the first support 243 to stably install the guide column 241 in the entire device, ensuring the efficient splicing operation of the entire device.
[0056] The guide column 241 is provided with a bearing seat 244, which is installed on the side of the second mounting seat 242 close to the mobile plate 22. The bearing seat 244 supports the guide column 241 to some extent. When the guide column 241 bears the weight and movement force of the mobile plate 22, the bearing seat 244 can share part of the force, making the force on the guide column 241 more uniform, avoiding damage due to excessive local stress.
[0057] The support frame 11 is provided with a plurality of reinforcing plates 111 on one side. The reinforcing plates 111 are arranged on the side of the fixed plate 21 away from the mobile plate 22. The plurality of reinforcing plates 111 can further enhance the bearing capacity of the support frame 11. When the aluminum plate 3 is spliced, the mobile plate 22 moves towards the fixed plate 21, exerting pressure on the aluminum plate 3. The fixed plate 21 will be subjected to a counterforce and will be transmitted to the support frame 11. The reinforcing plates 111 can share this part of the force, preventing the support frame 11 from deforming due to excessive stress, and can strengthen the strength of the connection part of the support frame 11 and the fixed plate 21, making the entire support module 1 more stable.
[0058] The bottom of the support frame 11 is provided with a placing plate 112, which provides a placing area for tools and other articles, and facilitates the operator to take the articles at any time during debugging, installation or maintenance.
[0059] The embodiment of the application is a splicing device for aluminum floor panels: the aluminum panel 3 to be spliced is placed between the fixed plate 21 and the moving plate 22, on the guide assembly 24, and the position of the aluminum panel 3 is adjusted; the air cylinder 231 is started, the output end of the air cylinder 231 is extended, the moving plate 22 is driven to move along the guide column 241 towards the fixed plate 21 through the connecting plate 232, and in the moving process, the guide column 241 and the bearing seat 244 ensure that the moving plate 22 moves stably and accurately. With the movement of the moving plate 22, the aluminum panel 3 is gradually clamped, the splicing part of the aluminum panel 3 is tightly fitted, and the splicing operation of the aluminum panel 3 is completed; after splicing is completed, the output end of the air cylinder 231 is retracted, and the moving plate 22 is driven to return to the initial position. The operator can take down the spliced aluminum panel 3 for subsequent processing, and then place a new aluminum panel 3 for the next round of splicing work. The device realizes automatic splicing of the aluminum panel 3, can accurately and stably apply pressure to the aluminum panel 3, makes the splicing part of the aluminum panel 3 uniformly stressed and tightly fitted, avoids the situation that the splicing quality is uneven due to the difference in manual knocking force and rhythm, and the spliced aluminum panel 3 has higher flatness and precision and better splicing quality.
[0060] The above are preferred embodiments of the application, and do not limit the protection scope of the application, so: any equivalent changes made according to the structure, shape, principle of the application should be covered within the protection scope of the application.
Claims
1. A splicing device for splicing aluminium panels (3) of an aluminium floor, characterized in that: The support module (1) and the splicing module (2) arranged on the support module (1) are arranged on the support module (1). The support module (1) comprises a support frame (11) and a base plate (12), and the base plate (12) is installed on the support frame (11). The splicing module (2) comprises a fixed plate (21) and a moving plate (22), the fixed plate (21) is fixedly installed on one side of the base plate (12), the moving plate (22) is movably installed on the other side of the base plate (12), a plurality of aluminum plates (3) are located between the fixed plate (21) and the moving plate (22), and a plurality of drive assemblies (23) are arranged on the support module (1), the drive assembly (23) is installed on the side of the moving plate (22) away from the fixed plate (21), and the drive assembly (23) drives the moving plate (22) to move towards the fixed plate (21) to splice the aluminum plate (3).
2. The splicing device for an aluminum floor panel according to claim 1, wherein: A pushing piece (221) for pushing the aluminum plate (3) is arranged on one side of the moving plate (22) close to the fixed plate (21), and a positioning piece (211) for positioning the aluminum plate (3) is arranged on one side of the fixed plate (21) close to the moving plate (22).
3. The splicing device for aluminum floor panels according to claim 1, characterized in that: The support module (1) further comprises a support (233), the support (233) is arranged on one side of the support frame (11) close to the moving plate (22), and a first mounting seat (234) is arranged on one side of the support (233) close to the moving plate (22).
4. The splicing device for aluminum floor panels according to claim 3, characterized in that: The drive assembly (23) comprises a gas cylinder (231), one end of the fixed end of the gas cylinder (231) is arranged on the support (233), the other end is installed on the first mounting seat (234), and the output end of the gas cylinder (231) is drivingly connected with the moving plate (22).
5. The splicing device for aluminum floor panels according to claim 4, characterized in that: A connecting plate (232) is installed on the end of the output end of the gas cylinder (231), and the connecting plate (232) is connected with the moving plate (22).
6. The splicing device for aluminum floor panels according to claim 4, characterized in that: A guide assembly (24) is installed on one side of the drive assembly (23), the guide assembly (24) comprises a guide column (241) and a second mounting seat (242), the second mounting seat (242) is arranged on the support (233), the second mounting seat (242) is arranged on one side of the first mounting seat (234), one end of the guide column (241) is installed on the fixed plate (21), the other end penetrates through the moving plate (22) and is installed on the second mounting seat (242), and the guide column (241) is located below the aluminum plate (3).
7. The splicing device for aluminum floor panels according to claim 6, characterized in that: One end of the guide column (241) protrudes from the fixed plate (21) and is provided with a first support (243), and the other end is provided with a second support.
8. The splicing device for aluminum floor panels according to claim 6, characterized in that: A bearing seat (244) is sleeved on the guide column (241), and the bearing seat (244) is installed on one side of the second mounting seat (242) close to the moving plate (22).
9. The splicing device for aluminum floor panels according to claim 1, characterized in that: A plurality of reinforcing plates (111) are installed on one side of the support frame (11), and the reinforcing plates (111) are arranged on the side of the fixed plate (21) away from the moving plate (22).
10. The splicing device for aluminum floor panels according to claim 1, characterized in that: The support frame (11) is provided with a placing plate (112) at the bottom.