Laminated slab abutted seam processing device

By designing a stacked plate joint processing device with the adjustment mechanism and the docking processing mechanism, the existing devices are solved by the difficulty of adapting to stacked plates of different specifications and the lack of automated cleaning, and an efficient and automated splicing and cleaning process is achieved.

CN119981427APending Publication Date: 2025-05-13SINOHYRDO ENG BUREAU 3 CO LTD
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Patent Information

Application Number
CN202510381868.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

The existing stacked plate joint processing devices are difficult to flexibly adapt to stacked plates of different specifications, and lack automated cleaning functions, resulting in low construction efficiency and unstable splicing quality.

Method used

A composite plate joint processing device including an adjustment mechanism and a docking processing mechanism is designed. The adjustment mechanism realizes the adaptation of stacked plates of different specifications through side rails, power components and screw drives; the docking processing mechanism realizes automatic cleaning and splicing through electric push rods and cleaning brush discs.

Benefits of technology

The device can quickly and automatically complete the splicing of the laminated plates, and improve the splicing quality and construction efficiency through the automated cleaning function, adapting to the needs of the laminated plates of different specifications.

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Abstract

The invention relates to the technical field of laminated slab abutted seam treatment, in particular to a laminated slab abutted seam treatment device which comprises a base, supporting legs are fixedly mounted at the four corners of the top of the base, and a top frame is fixedly mounted at the tops of the supporting legs. In the aspect of adaptability, an adjusting handrail can be rotated according to the width of a laminated slab, a part is driven to move so as to adjust the distance between clamping sets, the position of an anti-skid clamping plate can be changed by screwing a mounting screw rod, the device adapts to laminated slabs with different thicknesses, various specification requirements are flexibly met, the splicing process is efficient and automatic, a first motor drives a synchronous wheel to drive a lead screw to rotate, and the splicing efficiency is improved. And meanwhile, during splicing, a series of components are driven to work cooperatively by means of operation of a motor, a splicing gap is brushed, cleaned and polished, the two processing assemblies are symmetrical and staggered after butt joint, the process is simplified, the processing efficiency is improved, overall use is convenient and fast, and great popularization value is achieved.
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Description

Technical Field

[0001] The present application relates to the technical field of processing joints of laminated plates, and in particular to a device for processing joints of laminated plates. Background Art

[0002] As prefabricated buildings are booming, ensuring building quality and construction efficiency has become the core concern of the industry. Among them, the treatment of joints in composite panels, as a key process, plays a decisive role in ensuring the integrity and waterproof performance of the floor structure. The quality of the joint treatment between prefabricated composite panels is directly related to whether the entire floor system can bear force in a coordinated manner, and effectively resist water penetration, avoiding a series of problems caused by leakage, such as reduced structural durability and damage to interior decoration.

[0003] In the prior art, the prestressed ribbed composite plate joint mold matching device and method disclosed in the Chinese patent with announcement number "CN110206299B" has certain innovation. The device constructs a basic frame through the first frame plate and the second frame plate, and the bottom support base ensures the stability of the device; two mutually symmetrical guide rods accurately guide the movement of the first template and the second template; the template is driven by a telescopic cylinder, and the joint matching of the composite plate is realized in cooperation with the seam matching mechanism. In conventional construction scenarios, it can indeed simplify the joint matching process, improve work efficiency, and show strong practical application value.

[0004] However, as prefabricated buildings develop in the direction of diversification and refinement, the limitations of this device are gradually highlighted. On the one hand, facing the trend of diversified specifications of composite panels, such as thickness ranging from the common 60 mm to 120 mm, and width ranging from 600 mm to 1800 mm, its fixed-specification templates and joint mechanisms are difficult to adapt to the splicing needs of composite panels of different sizes through simple adjustment, resulting in frequent replacement of a whole set of molds during construction, seriously hindering the construction progress and increasing manpower and time costs. On the other hand, in the process of composite panel docking, cleaning the debris on the edge of the outer surface of the docking is an important prerequisite for ensuring the quality of splicing. The current construction standards clearly require that the interface bonding strength at the joint must reach 1.5 MPa or more, while the device lacks the automatic cleaning function before docking. Relying on manual cleaning is not only complicated, but also very easy to cause the bonding strength to fail to meet the standard due to incomplete cleaning, which buries hidden dangers for the waterproof performance of the floor slab and is difficult to meet the increasingly stringent construction quality requirements. Based on this, a new type of joint processing device that can flexibly adapt to composite panels of different specifications and has an integrated cleaning function is developed. Summary of the invention

[0005] In order to improve the production and processing convenience of existing equipment, the present application provides a composite plate seam processing device.

[0006] The present application provides a composite plate joint processing device, which adopts the following technical solution: comprising a fixed seat, wherein support legs are fixedly installed at the four corners of the top of the fixed seat, a top frame is fixedly installed on the top of the support legs, an adjustment mechanism is fixedly installed on the outer side of the top frame, a docking processing mechanism is fixedly installed on the outer side of the adjustment mechanism, and a composite plate to be spliced ​​is installed on the inner side of the docking processing mechanism;

[0007] The adjustment mechanism includes side rails and a power assembly. The side rails are fixedly installed on the front and back of the top frame. A displacement assembly is provided inside the side rails. The power assembly is installed on one side of the top frame. The output end of the power assembly is connected to one side of the displacement assembly.

[0008] Optionally, the inner sides of the composite boards to be spliced ​​are provided with serrated butt joint grooves, and the serrated butt joint grooves on the inner sides of the composite boards to be spliced ​​are plugged into and engaged with each other.

[0009] Optionally, the displacement assembly includes a first screw rod, which is rotatably connected to the inside of the side rail, the threads at both ends of the first screw rod have opposite rotation directions, both ends of the first screw rod are threadedly connected to sliders, the outer side of the slider is fixedly connected to a connecting arm, the outer side of the connecting arm is connected to a docking processing mechanism, and the end of the first screw rod passes through the side rail and is connected to the output end of the power assembly.

[0010] Optionally, the power assembly includes a side shaft, which is fixedly connected to the middle part of one side of the top frame, a side plate is fixedly installed on the outer side of the side shaft, a first motor is fixedly connected to the outer front end of the side plate, a first synchronous wheel and a second synchronous wheel are respectively installed at both ends of the inner side of the side plate, the inner sides of the first synchronous wheel and the second synchronous wheel are respectively connected to the outer ends of the two first screw rods, and the output end of the first motor is fixedly connected to the outer side of the first synchronous wheel.

[0011] Optionally, the docking processing mechanism includes an adjustment group, the adjustment group is fixedly connected to the top of the connecting arm, the top of the adjustment group is fixedly connected to a clamping group, the superimposed plates to be spliced ​​are clamped on the inner side of the clamping group, and a processing component is provided on the inner side of the adjustment mechanism.

[0012] Optionally, the adjustment group includes a guide rail, which is fixedly connected to the top of the connecting arm, the guide rail is internally rotatably connected to a second screw rod, the outer surface of the second screw rod is threadedly connected to a sliding block, the sliding block is slidably connected to the inside of the guide rail, the top of the guide rail is fixedly connected to the clamping group, and the outer end of the second screw rod passes through the guide rail and is fixedly connected to an adjustable armrest.

[0013] Optionally, the clamping group includes a fixing rod, which is fixedly installed on the top of the sliding block, and a clamping frame is fixedly installed on the end of the fixing rod. The top of the clamping frame is threadedly connected with a mounting screw, and the bottom of the mounting screw passes through the clamping frame and is fixedly connected with an anti-slip clamp. The superimposed plates to be spliced ​​are arranged inside the clamping frame, and the bottom of the anti-slip clamp is fitly connected to the top of the superimposed plates to be spliced.

[0014] Optionally, the processing component includes a connecting plate, a moving group and a cleaning group, the connecting plate is fixedly connected to the outer side of the side rail, the outer side of the connecting plate is fixedly connected with a rack, the moving group is fixedly connected to the outer ends of the two side rails on the front and back of the outer frame, the moving component is connected to the rack by transmission, and the cleaning group is installed on the top of the moving group.

[0015] Optionally, the moving group includes a base plate and a vertical plate, the vertical plate is fixedly connected to the inner end of the side rail, the top of the vertical plate is fixedly connected to the top rail, the inner part of the top rail is rotatably connected to a third screw rod, the outer surface of the third screw rod is threadedly connected to a sliding block, the base plate is fixedly connected to one side of the slider, the outer side of the base plate is rotatably connected to a gear, the gear and the rack are meshingly connected, the sliding block is slidably connected to the inside of the top rail, the cleaning group is fixedly connected to the inner side of the sliding block, the outer side of the gear is rotatably connected to a third synchronous wheel, the outer end of the top rail is rotatably connected to a fourth synchronous wheel, the third synchronous wheel and the fourth synchronous wheel are connected by a synchronous belt transmission, and the inner side of the fourth synchronous wheel is connected to the outer end of the third screw rod.

[0016] Optionally, the cleaning group includes a mounting sleeve, which is fixedly installed on the inner side of the sliding block, an electric push rod is fixedly installed on the inner side of the mounting sleeve, the output end of the electric push rod passes through the mounting sleeve and is fixedly connected to a base, a second motor is fixedly connected to the bottom of the base, a cleaning brush disc is fixedly installed on the output end of the second motor, a grinding wheel is fixedly connected to the inner side of the bottom of the cleaning brush disc, and the grinding wheel and the cleaning brush disc are arranged at the top of the seam of the superimposed plates to be spliced.

[0017] In summary, this application includes the following beneficial technical effects:

[0018] 1. The device is provided with an adjustment mechanism, so that when in operation, the superimposed board to be spliced ​​is first placed in the clamping frame of the clamping group, and the mounting screw is screwed to move the anti-skid clamping plate downward to initially clamp the superimposed board to be spliced. When facing superimposed boards of different specifications, the adjustment armrest is rotated to drive the second screw rod to rotate, driving the sliding block and the clamping group on its top to move inward, so as to flexibly adapt to superimposed boards of different widths. At the same time, the height of the anti-skid clamping plate can be adjusted by screwing the mounting screw, so as to adapt to superimposed boards of different thicknesses, which greatly improves the adaptability of the device to superimposed boards of different specifications to be spliced, and lays the foundation for subsequent splicing operations;

[0019] 2. After the clamping and installation of the superimposed plate is completed, the device can start the first motor to run, the first motor drives the synchronous wheel to rotate, and the other synchronous wheel is rotated synchronously with the help of the synchronous belt, thereby driving the first screw rod to rotate. Since the threads at both ends of the first screw rod rotate in opposite directions, when the two first screw rods rotate synchronously, the slider can be driven to slide in the side rail, and the slider drives the connecting arm to push the superimposed plate to be spliced ​​clamped on the top frame to move inward, so as to achieve fast and automatic splicing. This splicing process is efficient and accurate, giving full play to the automation advantages of the device and improving the efficiency and quality of superimposed plate splicing;

[0020] 3. During the operation of the device, when the first motor is in operation, in addition to achieving the docking of the superimposed plates, it can also synchronously drive a series of components to operate. The rotation of the first screw drives the slider to move, causing the guide rail to move laterally, thereby driving the gear on the base plate to move. The gear engages with the racks fixed on both sides of the top frame, driving the third synchronous wheel to rotate, and the fourth synchronous wheel is rotated through the synchronous belt to drive the third screw, prompting the sliding block to drive the installation sleeve to move, allowing the electric push rod to move linearly above the superimposed plates to be spliced. The electric push rod first pushes the cleaning brush plate, which is driven by the second motor to brush and clean the splicing gap, and then pushes the grinding wheel for grinding. The two processing components are symmetrically arranged. After the docking is completed, they are offset from each other, which does not affect the superimposed plates that have been spliced. This not only simplifies the processing process, but also improves the processing efficiency and convenience, and is of great promotion value. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a schematic diagram of the overall structure in the embodiment of the present application;

[0022] Figure 2 It is a schematic diagram of the rear view structure in the embodiment of the present application;

[0023] Figure 3 It is a schematic diagram of a top view structure in an embodiment of the present application;

[0024] Figure 4 This is a schematic diagram of the front structure in an embodiment of the present application;

[0025] Figure 5 It is a structural schematic diagram of a docking processing mechanism close to a top frame in an embodiment of the present application;

[0026] Figure 6 It is a structural schematic diagram of a docking processing mechanism in an embodiment of the present application, which is away from the top frame;

[0027] Figure 7 This is a schematic diagram of the structure of the adjustment group in the embodiment of the present application;

[0028] Figure 8 It is a schematic diagram of the structure of the cleaning group in the embodiment of the present application.

[0029] Figure numerals: 1, fixed seat; 2, supporting leg; 3, top frame; 4, superimposed plate to be spliced; 5, adjustment mechanism; 51, side rail; 52, power assembly; 521, side shaft; 522, side plate; 523, first motor; 524, first synchronous wheel; 525, second synchronous wheel; 53, displacement assembly; 531, first screw rod; 532, slider; 533, connecting arm; 6, docking processing mechanism; 61, adjustment group; 611, guide rail; 612, second screw rod; 613, sliding block; 614, adjustment armrest; 62, clamping group; 621, fixed rod; 62 2. Clamping frame; 623. Mounting screw; 624. Anti-skid splint; 63. Processing assembly; 631. Connecting plate; 632. Moving group; 6321. Base plate; 6322. Vertical plate; 6323. Top rail; 6324. Third screw rod; 6325. Sliding block; 6326. Gear; 6327. Third synchronous wheel; 6328. Fourth synchronous wheel; 633. Cleaning group; 6331. Mounting sleeve; 6332. Electric push rod; 6333. Base; 6334. Second motor; 6335. Cleaning brush plate; 6336. Grinding wheel; 634. Rack. DETAILED DESCRIPTION

[0030] The following is combined with Figure 1-8 This application is described in further detail.

[0031] The present application discloses a device for processing the seams of laminated panels. Figure 1-8 As shown, it comprises a fixing seat 1, support legs 2 are fixedly installed at the four corners of the top of the fixing seat 1, a top frame 3 is fixedly installed on the top of the support leg 2, an adjustment mechanism 5 is fixedly installed on the outer side of the top frame 3, a docking processing mechanism 6 is fixedly installed on the outer side of the adjustment mechanism 5, and a composite board 4 to be spliced ​​is installed on the inner side of the docking processing mechanism 6;

[0032] The adjusting mechanism 5 comprises a side rail 51 and a power assembly 52. ​​The side rail 51 is fixedly mounted on the front and back sides of the top frame 3. A displacement assembly 53 is arranged inside the side rail 51. The power assembly 52 is mounted on one side of the top frame 3. The output end of the power assembly 52 is connected to one side of the displacement assembly 53. When the present composite board joint processing device is working, the power assembly 52 is mounted on one side of the top frame 3, and its output end is connected to the displacement assembly 53 in the side rail 51. When the power assembly 52 is started, the displacement assembly 53 is driven to move linearly inside the side rail 51 through transmission action. The movement of the displacement assembly 53 drives the docking processing mechanism 6 installed on the outside of the top frame 3 to move synchronously, thereby adjusting the position of the composite board 4 to be spliced ​​on the inner side of the top frame 3. During the displacement process, the supporting leg 2 firmly supports the entire device to ensure that the top frame 3 remains in a horizontal state. Through the precise control of the adjusting mechanism 5, the precise positioning and docking of the composite board 4 to be spliced ​​can be achieved, and at the same time, it can be automatically cleaned to provide a stable foundation for subsequent joint processing.

[0033] Please refer to Figure 1-Figure 6 and Figure 8 The cleaning group 633 includes a mounting sleeve 6331, which is fixedly mounted on the inner side of the sliding block 6325. An electric push rod 6332 is fixedly mounted on the inner side of the mounting sleeve 6331. The output end of the electric push rod 6332 passes through the mounting sleeve 6331 and is fixedly connected to a base 6333. A second motor 6334 is fixedly connected to the bottom of the base 6333. A cleaning brush plate 6335 is fixedly mounted on the output end of the second motor 6334. A grinding wheel 6336 is fixedly connected to the inner side of the bottom of the cleaning brush plate 6335. The grinding wheel 6336 and the cleaning brush plate 6335 are arranged on the top of the joint of the superimposed plates 4 to be spliced. When the sliding block 6325 moves during use, the mounting sleeve fixedly mounted on the inner side will be driven. 6331 moves synchronously. When the joint of the superimposed plates needs to be processed, the electric push rod 6332 in the mounting sleeve 6331 is started, and its output end passes through the mounting sleeve 6331 and pushes the base 6333 connected thereto to move downward, and the second motor 6334, the cleaning brush plate 6335 and the grinding wheel 6336 connected to the bottom of the base 6333 move downward accordingly, until the cleaning brush plate 6335 and the grinding wheel 6336 reach the top of the joint of the superimposed plates 4 to be spliced, then, the second motor 6334 is started, and its output end drives the cleaning brush plate 6335 to rotate to brush and clean the joint. At the same time, since the grinding wheel 6336 is fixed on the inner side of the bottom of the cleaning brush plate 6335, it will also rotate synchronously to grind the joint, thereby completing the joint processing work.

[0034] Please refer to Figure 1-Figure 6 and Figure 8The processing assembly 63 includes a connecting plate 631, a moving group 632 and a cleaning group 633. The connecting plate 631 is fixedly connected to the outer side of the side rail 51. The outer side of the connecting plate 631 is fixedly connected with a rack 634. The moving group 632 is fixedly connected to the outer ends of the two side rails 51 on the front and back of the outer frame. The moving group 632 is transmission-connected with the rack 634. The cleaning group 633 is installed on the top of the moving group 632. The moving group 632 includes a base plate 6321 and a vertical plate 6322. The vertical plate 6322 is fixedly connected to the inner end of the side rail 51. The top of the vertical plate 6322 is fixedly connected with a top rail 6323. The inner part of the top rail 6323 is rotatably connected with a third screw rod 6324. The outer part of the third screw rod 6324 The surface is threadedly connected with a sliding block 6325, the base plate 6321 is fixedly connected to one side of the slider 532, the outer side of the base plate 6321 is rotatably connected with a gear 6326, the gear 6326 is meshed with the rack 634, the sliding block 6325 is slidably connected to the inside of the top rail 6323, the cleaning group 633 is fixedly connected to the inner side of the sliding block 6325, the outer side of the gear 6326 is rotatably connected with a third synchronous wheel 6327, the outer end of the top rail 6323 is rotatably connected with a fourth synchronous wheel 6328, the third synchronous wheel 6327 and the fourth synchronous wheel 6328 are connected by a synchronous belt transmission, the inner side of the fourth synchronous wheel 6328 is connected to the outer end of the third screw rod 6324, the cleaning group 633 The present invention comprises a mounting sleeve 6331, wherein the mounting sleeve 6331 is fixedly mounted on the inner side of the sliding block 6325, wherein an electric push rod 6332 is fixedly mounted on the inner side of the mounting sleeve 6331, wherein the output end of the electric push rod 6332 passes through the mounting sleeve 6331 and is fixedly connected to a base 6333, wherein a second motor 6334 is fixedly connected to the bottom of the base 6333, wherein a cleaning brush plate 6335 is fixedly mounted on the output end of the second motor 6334, wherein a grinding wheel 6336 is fixedly connected to the inner side of the bottom of the cleaning brush plate 6335, wherein the grinding wheel 6336 and the cleaning brush plate 6335 are arranged on the top of the joint of the composite plate 4 to be joined, and when the processing component 63 of the composite plate joint processing device is working, the connecting plate 631 on the outer side of the side rail 51 passes through the connecting plate 631 on the outer side of the side rail 51, and ... The rack 634 forms a transmission relationship with the gear 6326 of the moving group 632. When the power assembly 52 drives the displacement assembly 53 to move along the side rail 51, the gear 6326 on the outside of the base plate 6321 meshes with the rack 634 and rotates, driving the base plate 6321 to move as a whole. The gear 6326 rotates and drives the third synchronous wheel 6327 to rotate, which is transmitted to the fourth synchronous wheel 6328 through the synchronous belt, thereby driving the third screw rod 6324 in the top rail 6323 to rotate. The rotation of the third screw rod 6324 drives the sliding block 6325 to slide linearly in the top rail 6323, thereby driving the cleaning group 633 fixed on the inner side of the sliding block 6325 to move synchronously. When the cleaning group 633 moves to the top of the joint of the superimposed plate 4 to be spliced, the electric push rod 6332 is started.Its output end pushes the base 6333 to move downward, so that the cleaning brush plate 6335 at the bottom of the second motor 6334 and the grinding wheel 6336 contact the joint area. After starting the second motor 6334, the cleaning brush plate 6335 rotates to clean the joint, and at the same time, the grinding wheel 6336 on the inner side of the bottom rotates synchronously to complete the surface grinding. Through the coordination of the gear 6326 rack 634 transmission and the screw rod sliding action, the cleaning group 633 is accurately positioned and automatically processed above the joint. No manual intervention is required in the whole process, ensuring the efficiency and consistency of the joint processing.

[0035] Please refer to Figure 1-Figure 4 The displacement assembly 53 includes a first screw rod 531, which is rotatably connected to the inside of the side rail 51. The two ends of the first screw rod 531 have opposite threaded directions. Both ends of the first screw rod 531 are threadedly connected to a slider 532. The outer side of the slider 532 is fixedly connected to a connecting arm 533. The outer side of the connecting arm 533 is connected to the docking processing mechanism 6. The end of the first screw rod 531 passes through the side rail 51 and is connected to the output end of the power assembly 52. ​​The power assembly 52 includes a side shaft 521. The side shaft 521 is fixedly connected to the middle part of one side of the top frame 3, and a side plate 522 is fixedly installed on the outer side of the side shaft 521. The outer front end of the side plate 522 is fixedly connected to the first motor 523. The inner ends of the side plate 522 are respectively installed with a first synchronous wheel 524 and a second synchronous wheel 525. The inner sides of the first synchronous wheel 524 and the second synchronous wheel 525 are respectively connected to the outer ends of the two first screw rods 531. The output end of the first motor 523 is fixedly connected to the outer side of the first synchronous wheel 524. The joint processing of the composite plate When the displacement assembly 53 of the device works with the power assembly 52, the first motor 523 of the power assembly 52 is fixed to the front end of the outer side of the side plate 522, and its output end is connected to the first synchronous wheel 524. When the first motor 523 is started, the first synchronous wheel 524 is driven to rotate, and the transmission is transmitted to the second synchronous wheel 525 through the synchronous belt, so that the two first screw rods 531 rotate synchronously. The threads at both ends of the first screw rod 531 rotate in opposite directions and are respectively threadedly connected to the two sliders 532. As the screw rod rotates, the sliders 532 at both ends move in the same direction along the screw rod in the side rail 51. Linear sliding in the forward or reverse direction, the connecting arm 533 on the outer side of the slider 532 is connected to the docking processing mechanism 6. Therefore, when the slider 532 moves, the connecting arm 533 drives the docking processing mechanism 6 to move as a whole, thereby realizing the automatic convergence or separation of the overlapping plates 4 to be spliced. The side shaft 521 of the power component 52 is fixed to the middle part of one side of the top frame 3, and the side plate 522 maintains stable support through the side shaft 521, ensuring that the first motor 523 and the synchronous wheel group are smoothly transmitted during operation, thereby ensuring that the displacement component 53 can accurately adjust the position of the overlapping plates and automatically dock them.

[0036] Please refer to Figure 4The inner sides of the superimposed plates 4 to be spliced ​​are all provided with serrated docking grooves, and the serrated docking grooves on the inner sides of the superimposed plates 4 to be spliced ​​are plugged into and interlocked with each other. The interlocking structure of the serrated docking grooves ensures the splicing accuracy and can also cause them to be in a bite state after being butted against each other, thereby improving the splicing stability.

[0037] Please refer to Figure 1-Figure 6 The docking processing mechanism 6 includes an adjustment group 61, which is fixedly connected to the top of the connecting arm 533. The top of the adjustment group 61 is fixedly connected to a clamping group 62. The superimposed plate 4 to be spliced ​​is clamped on the inner side of the clamping group 62. The inner side of the adjustment mechanism 5 is provided with a processing component 63. The adjustment group 61 includes a guide rail 611, which is fixedly connected to the top of the connecting arm 533. The inner side of the guide rail 611 is rotatably connected to a second screw rod 612. The outer surface of the second screw rod 612 is threadedly connected to a sliding block 613. The sliding block 613 is slidably connected to the The top of the guide rail 611 is fixedly connected to the clamping group 62. The outer end of the second screw rod 612 passes through the guide rail 611 and is fixedly connected to an adjustable handrail 614. The clamping group 62 includes a fixing rod 621. The fixing rod 621 is fixedly installed on the top of the sliding block 613. The end of the fixing rod 621 is fixedly installed with a clamping frame 622. The top of the clamping frame 622 is threadedly connected with a mounting screw 623. The bottom of the mounting screw 623 passes through the clamping frame 622 and is fixedly connected with an anti-slip clamp 624. The superimposed plate 4 to be spliced ​​is arranged on the clamping frame 6 The bottom of the anti-slip splint 624 is fitted and connected with the top of the superimposed board 4 to be spliced. When the docking processing mechanism 6 of the superimposed board seam processing device is working, the power component 52 drives the first screw rod 531 to rotate, driving the sliders 532 at both ends to slide toward each other in the side rails 51, and the adjustment group 61 is pushed to move as a whole through the connecting arm 533. The guide rail 611 of the adjustment group 61 is fixed to the top of the connecting arm 533, and the adjusting armrest 614 is rotated to drive the second screw rod 612 to rotate, driving the sliding block 613 to move in the guide rail 611, thereby adjusting the lateral position of the clamping group 62 to adapt to the superimposed boards of different widths. Connect the overlapping plates 4, the fixing rod 621 of the clamping group 62 is installed on the top of the sliding block 613, and after the overlapping plates 4 to be spliced ​​are placed in the clamping frame 622, the installing screw 623 is screwed to drive the anti-slip clamping plate 624 to move downward, and its bottom is in contact with the top of the overlapping plates, and the plates are clamped and fixed by friction. When the two overlapping plates 4 to be spliced ​​are moved to the docking position with the adjustment group 61, their inner toothed docking grooves are plugged into each other to complete precise splicing. The whole process is combined with the transmission and manual adjustment of the first screw rod 531 and the second screw rod 612 to realize automatic docking and stable clamping of overlapping plates of different specifications.

[0038] The implementation principle of a composite plate seam processing device in an embodiment of the present application is as follows: the device relies on the setting of the adjustment mechanism 5 so that during operation, the composite plate to be spliced ​​can be placed in the clamping frame 622 of the clamping group 62, and the anti-slip clamping plate 624 is driven to move downward by screwing the mounting screw 623, thereby auxiliary clamping of the composite plate 4 to be spliced. In actual use, the adjustment armrest 614 can be rotated according to the specifications of the composite plate 4 to be spliced, and the rotation of the adjustment armrest 614 drives the second screw rod 612 to rotate, and the rotation of the second screw rod 612 drives the sliding block 613 to move inward. As the second screw rod 612 continues to rotate, the sliding block 613 drives the clamping group 62 at its top to move synchronously. By adjusting the positions of the two clamping groups 62, it is possible to flexibly adapt to composite plates 4 to be spliced ​​with different widths, and in the docking process, the anti-slip clamping plate 624 is driven to move downward by screwing the mounting screw 623, which can be adjusted to adapt to different thicknesses. The first motor 523 is started to drive the synchronous wheel 523 to rotate, and the rotation of the synchronous wheel drives another synchronous wheel to rotate through the synchronous belt, thereby assisting in driving the first screw rod 531 to rotate, and synchronously causing the two first screw rods 531 to rotate synchronously. Since the threads at both ends of the first screw rod 531 rotate in opposite directions, the rotation of the two first screw rods 531 synchronously drives the slider 532 to slide in the side rail 51, and the slider 532 drives the connecting arms 533 on both sides of the top frame 3 to move back and forth, and the connecting arms 533 move inward to push the clamped and positioned composite panels 4 on the top frame 3 to move inward, so as to realize the mutual splicing of the two composite panels 4 to be spliced. As a result, the device can quickly and automatically complete the docking of the two composite panels 4 to be spliced, and at the same time can flexibly adapt to the composite panels 4 to be spliced ​​of different sizes, which significantly improves the adaptability of the device during the overall use process;

[0039] Based on the setting of the docking mechanism, during the operation of the device, when the first motor 523 drives the first synchronous wheel 524 to drive the second synchronous wheel 525 to rotate synchronously, the two first screw rods 531 can be synchronously caused to rotate, and the rotation of the two first screw rods 531 synchronously drives the slider 532 to move, and the slider 532 drives the guide rail 611 to move horizontally during the movement, and the displacement of the guide rail 611 drives the gear 6326 on the base plate 6321 to move, and the gear 6326 on the base plate 6321 is meshed and connected with the rack 634, and the rack 634 is fixed on both sides of the top frame 3, and as the gear 6326 moves, the rack 634 drives the gear 6326 to move. The movable gear 6326 rotates, and the rotation of the gear 6326 drives the third synchronous wheel 6327 to rotate. The third synchronous wheel 6327 is connected to the fourth synchronous wheel 6328 through a synchronous belt. The rotation of the third synchronous wheel 6327 drives the fourth synchronous wheel 6328 to rotate through the synchronous belt. The rotation of the fourth synchronous wheel 6328 drives the third screw rod 6324 in the top rail 6323 to rotate. The rotation of the third screw rod 6324 drives the sliding block 6325 to slide in the top rail 6323. The sliding of the sliding block 6325 drives the installation sleeve 6331 to move. The displacement of the installation sleeve 6331 drives the electric push rod 6332 to move in the top rail 6323. The upper part of the superimposed plate 4 makes a linear displacement, starts the electric push rod 6332, pushes the second motor 6334 downward, and the second motor 6334 moves downward to drive the cleaning brush plate 6335 to contact the inner splicing gap of the superimposed plate 4 to be spliced, starts the second motor 6334, drives the cleaning brush plate 6335 to brush and clean the inner splicing gap of the superimposed plate 4 to be spliced, and further starts the electric push rod 6332, so that the grinding wheel 6336 contacts the gap of the superimposed plate 4 to be spliced, and drives the grinding wheel 6336 to rotate through the second motor 6334 to grind the inner gap of the superimposed plate 4 to be spliced. It can be seen that this The device can utilize the operation of the first motor 523 to synchronously dock two superimposed panels 4 to be spliced, and during the docking process, the gap on the top is brushed, rubbed and polished to clean, which enables the device to have a cleaning function during docking. The overall use is convenient and the processing operation flow can be simplified. In addition, since the two processing components 63 are symmetrically arranged, after the docking is completed, the two cleaning groups 633 are just moved to the outermost side of the top frame 3 and are offset from each other to avoid affecting the superimposed panels 4 to be spliced, which effectively improves the processing efficiency and convenience of the device in the overall processing process, and has a high value of promotion and application.

[0040] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A composite plate joint processing device, characterized in that; The invention comprises a fixing seat (1), wherein supporting legs (2) are fixedly mounted at the four corners of the top of the fixing seat (1), a top frame (3) is fixedly mounted on the top of the supporting legs (2), an adjusting mechanism (5) is fixedly mounted on the outer side of the top frame (3), a docking processing mechanism (6) is fixedly mounted on the outer side of the adjusting mechanism (5), and a composite plate (4) to be spliced ​​is mounted on the inner side of the docking processing mechanism (6); The adjustment mechanism (5) comprises a side rail (51) and a power assembly (52); the side rail (51) is fixedly mounted on the front and back sides of the top frame (3); a displacement assembly (53) is arranged inside the side rail (51); the power assembly (52) is mounted on one side of the top frame (3); and an output end of the power assembly (52) is connected to one side of the displacement assembly (53).

2. A composite plate joint processing device according to claim 1, characterized in that: The inner sides of the composite plates (4) to be spliced ​​are all provided with tooth-shaped butt joint grooves, and the tooth-shaped butt joint grooves on the inner sides of the composite plates (4) to be spliced ​​are plugged into and engaged with each other.

3. A composite plate joint processing device according to claim 2, characterized in that: The displacement assembly (53) comprises a first screw rod (531), the first screw rod (531) is rotatably connected to the inside of the side rail (51), the two ends of the first screw rod (531) have opposite threaded directions, both ends of the first screw rod (531) are threadedly connected to a slider (532), the outer side of the slider (532) is fixedly connected to a connecting arm (533), the outer side of the connecting arm (533) is connected to a docking processing mechanism (6), and the end of the first screw rod (531) passes through the side rail (51) and is connected to the output end of the power assembly (52).

4. The device for processing a joint of a laminated plate according to claim 3, characterized in that: The power assembly (52) comprises a side shaft (521), the side shaft (521) is fixedly connected to the middle part of one side of the top frame (3), a side plate (522) is fixedly installed on the outer side of the side shaft (521), a first motor (523) is fixedly connected to the outer front end of the side plate (522), a first synchronous wheel (524) and a second synchronous wheel (525) are respectively installed at the two ends of the inner side of the side plate (522), the inner sides of the first synchronous wheel (524) and the second synchronous wheel (525) are respectively connected to the outer ends of the two first screw rods (531), and the output end of the first motor (523) is fixedly connected to the outer side of the first synchronous wheel (524).

5. The device for processing a joint of a laminated plate according to claim 1, characterized in that: The docking processing mechanism (6) comprises an adjustment group (61), the adjustment group (61) is fixedly connected to the top of the connecting arm (533), the top of the adjustment group (61) is fixedly connected to a clamping group (62), the superimposed plates (4) to be spliced ​​are clamped on the inner side of the clamping group (62), and the inner side of the adjustment mechanism (5) is provided with a processing component (63).

6. The device for processing a joint of a laminated plate according to claim 5, characterized in that: The adjustment group (61) comprises a guide rail (611), wherein the guide rail (611) is fixedly connected to the top of the connecting arm (533), the interior of the guide rail (611) is rotatably connected to a second screw rod (612), the outer surface of the second screw rod (612) is threadedly connected to a sliding block (613), the sliding block (613) is slidably connected to the interior of the guide rail (611), the top of the guide rail (611) is fixedly connected to the clamping group (62), and the outer end of the second screw rod (612) passes through the guide rail (611) and is fixedly connected to an adjustment armrest (614).

7. The device for processing a joint of a laminated plate according to claim 6, characterized in that: The clamping group (62) includes a fixing rod (621), and the fixing rod (621) is fixedly installed on the top of the sliding block (613). The end of the fixing rod (621) is fixedly installed with a clamping frame (622). The top of the clamping frame (622) is threadedly connected with a mounting screw (623), and the bottom of the mounting screw (623) passes through the clamping frame (622) and is fixedly connected with an anti-slip clamp (624). The composite board (4) to be spliced ​​is arranged inside the clamping frame (622), and the bottom of the anti-slip clamp (624) is fit-connected with the top of the composite board (4) to be spliced.

8. The device for processing a joint of a laminated plate according to claim 5, characterized in that: The processing assembly (63) comprises a connecting plate (631), a moving group (632) and a cleaning group (633); the connecting plate (631) is fixedly connected to the outer side of the side rail (51); a rack (634) is fixedly connected to the outer side of the connecting plate (631); the moving group (632) is fixedly connected to the outer ends of the two side rails (51) on the front and back sides of the outer frame; the moving group (632) is transmission-connected to the rack (634); and the cleaning group (633) is mounted on the top of the moving group (632).

9. The device for processing a joint of a laminated plate according to claim 8, characterized in that: The moving group (632) comprises a base plate (6321) and a vertical plate (6322), wherein the vertical plate (6322) is fixedly connected to the inner end of the side rail (51), the top of the vertical plate (6322) is fixedly connected to a top rail (6323), the interior of the top rail (6323) is rotatably connected to a third screw rod (6324), the outer surface of the third screw rod (6324) is threadedly connected to a sliding block (6325), the base plate (6321) is fixedly connected to one side of the slider (532), the outer side of the base plate (6321) is rotatably connected to a gear (6326), and the gear (63 26) and the rack (634) are meshedly connected, the sliding block (6325) is slidably connected to the inside of the top rail (6323), the cleaning group (633) is fixedly connected to the inner side of the sliding block (6325), the outer side of the gear (6326) is rotatably connected to the third synchronous wheel (6327), the outer end of the top rail (6323) is rotatably connected to the fourth synchronous wheel (6328), the third synchronous wheel (6327) and the fourth synchronous wheel (6328) are connected by a synchronous belt transmission, and the inner side of the fourth synchronous wheel (6328) is connected to the outer end of the third screw rod (6324).

10. The device for processing a joint of a laminated plate according to claim 9, characterized in that: The cleaning group (633) includes a mounting sleeve (6331), wherein the mounting sleeve (6331) is fixedly mounted on the inner side of the sliding block (6325), an electric push rod (6332) is fixedly mounted on the inner side of the mounting sleeve (6331), an output end of the electric push rod (6332) passes through the mounting sleeve (6331) and is fixedly connected to a base (6333), a second motor (6334) is fixedly connected to the bottom of the base (6333), a cleaning brush disc (6335) is fixedly mounted on the output end of the second motor (6334), a grinding wheel (6336) is fixedly connected to the inner side of the bottom of the cleaning brush disc (6335), and the grinding wheel (6336) and the cleaning brush disc (6335) are arranged at the top of the joint of the superimposed plates (4) to be spliced.

Citation Information

Patent Citations

  • A prestressed ribbed composite slab joint fitting device and method

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