A multifunctional integrated paving platform for facilitating tile adhesive paving
The multi-functional integrated paving platform integrates functions such as tile adsorption, rotation, and adhesive spreading, solving the problem of cumbersome traditional tile adhesive spreading operations, improving construction efficiency and paving quality, and adapting to different tile specifications.
Patent Information
- Application Number
- CN202411908213.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2044-12-24
AI Technical Summary
Traditional tile adhesive application is cumbersome and inefficient, and existing equipment has limited functionality, failing to meet the diverse needs of the tile laying process and increasing construction complexity and costs.
Design a multi-functional integrated tiling platform that integrates functions such as tile adsorption and fixing, rotation and cutting, and adhesive spreading. It includes an adsorption mechanism, a rotation component, a top support and stabilization component, and a tile adhesive spreading mechanism, to achieve a one-stop solution for various needs in the tile laying process.
It simplifies the construction process, improves construction efficiency, ensures accurate tile positioning and uniform adhesive distribution, enhances bonding strength, reduces material waste, adapts to tiles of different sizes and materials, and meets the needs of complex tiling scenarios.
Smart Images

Figure CN119641061B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of construction and decoration engineering, and in particular to a multifunctional integrated tiling platform that facilitates the application of tile adhesive. Background Technology
[0002] In the modern building decoration industry, ceramic tiles, as a common decorative material, are widely used in various scenarios such as floors and walls. The quality of tile laying not only affects aesthetics but also directly relates to the overall durability and safety of a building. However, the traditional tile laying process often presents many inconveniences, especially in the tile adhesive spreading stage, which is cumbersome and inefficient, becoming a key factor restricting the quality and speed of tile laying.
[0003] Traditional tile adhesive application methods mostly rely on manual labor, requiring workers to manually apply the adhesive to the back of the tiles. This process not only easily leads to adhesive waste but also makes it difficult to ensure even distribution, thus affecting the adhesion strength between the tile and the substrate and the final installation result. Furthermore, manual operation can easily cause worker fatigue, increasing the difficulty and time cost of the application.
[0004] To address these issues, various tile adhesive spreading devices have emerged on the market, improving the efficiency and uniformity of tile adhesive spreading to some extent. However, most of these devices are single-function, only capable of spreading tile adhesive and unable to meet other needs during tile laying, such as tile positioning, flipping, and support. Therefore, in actual construction, multiple pieces of equipment and tools are still required to complete the entire tile laying operation, undoubtedly increasing the complexity and cost of the work.
[0005] How to solve the above-mentioned technical problems is the challenge facing this invention. Summary of the Invention
[0006] To address the shortcomings of existing technologies, this invention provides a rationally designed, safe, and reliable multi-functional integrated tile laying platform for easy tile adhesive application, suitable for tile installation preparation in various building decoration projects. This device integrates tile adsorption and fixing, rotation and cutting, and adhesive application functions, achieving a one-stop solution from initial tile processing to adhesive application.
[0007] The technical solution adopted by the present invention to solve its technical problem is: a multi-functional integrated paving platform for facilitating the spreading of tile adhesive, including a movable base frame, a stabilizing frame provided on the movable base frame, a supporting frame provided on the stabilizing frame, an adsorption mechanism for adsorbing and fixing the tile on the supporting frame, a rotating component for realizing the rotation angle of the tile on the supporting frame, and a top support stabilizing component provided on the movable base frame to cooperate with the stabilizing frame and to ensure the stability of the paving;
[0008] The stabilizing frame is equipped with a paving support, which is provided with a tile adhesive spreading mechanism for spreading tile adhesive on the movable base frame. The tile adhesive spreading mechanism is located directly above the adsorption mechanism. The stabilizing frame is equipped with an auxiliary platform mechanism that cooperates with the adsorption mechanism and provides auxiliary support for the tiles. In use, the auxiliary platform mechanism is located below the adsorption mechanism.
[0009] Furthermore, the support frame includes two support brackets symmetrically arranged on the stabilizing frame, a tripod fixedly connected to the stabilizing frame is provided on the support bracket, and a rotating circular frame that cooperates with the rotating component is provided on the support bracket.
[0010] The rotating assembly includes rotating bearings mounted on the rotating circular frame, a rotating shaft between the two rotating bearings, an adsorption support cooperating with an adsorption mechanism mounted on the rotating shaft, and a rotating shaft penetrating the rotating bearings at both ends of the rotating shaft. A drive unit is mounted on one of the rotating shafts, and a stabilizing gear unit cooperating with the drive unit is mounted on the other rotating shaft. A drive bracket cooperating with the drive unit is mounted on one of the support brackets, and a stabilizing circular frame cooperating with the stabilizing gear unit is mounted on the other support bracket.
[0011] Furthermore, the drive unit includes a drive motor mounted on the drive bracket, and the output end of the drive motor is fixedly connected to the rotating shaft. The drive bracket is provided with a stabilizing gear unit that cooperates with the rotating shaft and with the smoothing gear unit, and the structure of the stabilizing gear unit is consistent with the structure of the smoothing gear unit.
[0012] The stabilizing gear unit includes a first gear disposed on the rotating shaft, and a plurality of second gears that mesh with the first gear are evenly disposed on the stabilizing circular frame along the circumferential direction of the stabilizing circular frame.
[0013] Furthermore, the adsorption mechanism includes an adsorption support frame disposed on the rotating assembly. The adsorption support frame is symmetrically provided with two sets of first electric rods, and each set of electric rods includes a plurality of first electric rods disposed on the adsorption support frame. The moving ends of the plurality of first electric rods are connected to the same adsorption fixing frame.
[0014] The adsorption support frame is provided with a number of second electric rods, which are connected to the same adsorption movable frame. The adsorption fixed frame is provided with an embedded groove that cooperates with the adsorption movable frame. The adsorption fixed frame is provided with a shock-absorbing component that cooperates with the adsorption movable frame.
[0015] Furthermore, the movable base frame is equipped with an electric suction cup assembly that cooperates with the adsorption movable frame.
[0016] Furthermore, the adsorption movable frame includes a movable base fixedly connected to several second electric rods, a main movable frame is provided on the movable base, and two sets of secondary movable frames are symmetrically arranged on the main movable frame. Each set of secondary movable frames includes several secondary movable frames arranged on the main movable frame.
[0017] The shock-absorbing assembly includes several shock-absorbing cylinders disposed on the adsorption fixing frame and cooperating with the inner groove. A first spring is disposed in each shock-absorbing cylinder, and a shock-absorbing circular plate cooperating with the first spring is disposed in each shock-absorbing cylinder. A shock-absorbing rod cooperating with the shock-absorbing circular plate is disposed on the adsorption movable frame. A second spring is sleeved on the shock-absorbing rod. The inner groove has a compression circular groove that cooperates with the second spring. One end of the second spring contacts the inner groove, and the other end of the second spring contacts the adsorption movable frame.
[0018] The electric suction cup assembly includes an electric negative pressure machine mounted on the movable base frame. The movable frame is equipped with a plurality of negative pressure suction cups. The electric negative pressure machine is equipped with a negative pressure main pipe located on the main movable frame. The secondary movable frame is equipped with a plurality of negative pressure secondary pipes connected to the negative pressure suction cups.
[0019] Furthermore, the auxiliary platform mechanism includes a vertical slot formed on the stabilizing frame, a vertical frame that slides in the vertical slot, a synchronization frame on the vertical frame, a first linear drive member for driving the vertical frame to move up and down in the vertical slot, synchronization arms symmetrically arranged on the synchronization frame, and a synchronization drive component for controlling the synchronization arms to move in the same direction and in opposite directions.
[0020] The synchronous arm is provided with a telescopic arm that slides with the synchronous arm. The synchronous arm is provided with a second linear drive for controlling the telescopic arm to extend and retract. The telescopic arm is provided with an abutting base at one end away from the synchronous arm. The abutting base is provided with an angle plate that cooperates with the abutting base. The angle plate is provided with an abutting component for contacting the tile. The abutting base is provided with an angle component for controlling the angle plate to rotate.
[0021] The stabilizing frame is equipped with a central control component for controlling the linkage between the angle component and the rotation component.
[0022] Furthermore, the contact component includes a contact plate, and the angle plate is provided with a plurality of contact hydraulic rods for controlling the contact plate to contact the tile. The contact plate is provided with a damping plate, and a plurality of damping springs are provided between the damping plate and the contact plate.
[0023] The angle assembly includes an angle rotating seat disposed on the abutting base, an angle rotating shaft disposed on the angle rotating seat, a rotating hinge seat disposed on the angle plate that cooperates with the angle rotating shaft, and an angle motor disposed on the angle rotating seat that cooperates with the angle rotating shaft.
[0024] The central control component includes a first angle sensor that cooperates with the rotation component, a second angle sensor that cooperates with the angle rotation shaft and the rotation component on the angle rotation seat, a central control chip that cooperates with the rotation component and is electrically connected to the second angle sensor on the stabilizing frame, the central control chip being electrically connected to the angle motor, and a battery pack that cooperates with the central control chip on the movable base frame.
[0025] Furthermore, a second linear drive is provided at the bottom end of the synchronous arm, a stabilizing groove is provided on the synchronous arm, a stabilizing rod is provided on the telescopic arm that slides in cooperation with the stabilizing groove, and a telescopic base is provided at the bottom end of the synchronous arm that cooperates with the second linear drive; and the second linear drive includes a telescopic hydraulic rod provided on the telescopic base, the fixed end of the telescopic hydraulic rod is fixedly connected to the telescopic base, and the telescopic end of the telescopic hydraulic rod is fixedly connected to the telescopic arm.
[0026] Furthermore, the synchronous drive assembly includes a first slide groove formed on the synchronous frame and slidingly engaged with the synchronous arm, a second slide groove formed on the synchronous frame and communicating with the first slide groove, and a third slide groove formed on the synchronous frame and engaging with the second slide groove.
[0027] The synchronization frame is provided with a drive frame, the drive frame is provided with a drive groove, the drive groove is provided with a drive bracket that slides in the drive groove, and the drive frame is provided with a third linear drive member for driving the drive bracket to move along the length direction of the drive groove. The second slide groove is provided with a drive base connected to the synchronization arm, and both ends of the drive bracket are provided with drive connecting rods connected to the drive base on the same side of the synchronization arm.
[0028] A stabilizing frame is provided on the drive base, and a triangular stabilizing frame is provided on the stabilizing frame, which is connected to the synchronizing arm and forms a triangular support with the stabilizing frame.
[0029] Furthermore, the tile adhesive spreading mechanism includes a spreading frame fixedly connected to the spreading support, a spreading movable frame on the spreading frame, a driving electric rod on the spreading frame for driving the spreading sliding frame to move, a tile adhesive placement hopper on the spreading movable frame, a material feeding component on the tile adhesive placement hopper, and a spreading component that cooperates with the material feeding component on the tile adhesive placement hopper.
[0030] Furthermore, the tile adhesive placement hopper includes a tile adhesive placement box placed on the paving frame, a feeding hopper is provided at the bottom of the tile adhesive placement box, the feeding assembly is provided on the feeding hopper, a plurality of feeding ports are provided at the bottom of the feeding hopper, and a feeding plate for opening and closing the feeding ports is provided at the feeding ports.
[0031] The feeding assembly includes a feeding shaft disposed in a feeding hopper, a feeding motor that cooperates with the feeding shaft on the feeding hopper, a feeding partition plate evenly disposed along the circumferential direction of the feeding shaft on the feeding shaft, and a plurality of partition ring plates evenly disposed along the axial direction of the feeding shaft to divide the feeding partition plate into a plurality of feeding areas and cooperate with the feeding port one by one;
[0032] The paving assembly includes a paving frame located at one end of the paving movable frame away from the drive electric rod. The paving frame has a placement groove, in which a serrated scraper for spreading tile adhesive on the back of the tile is placed. The paving frame is equipped with an extrusion screw, and an extrusion plate that cooperates with the serrated scraper is provided on the extrusion screw.
[0033] Furthermore, the movable base frame is provided with a tile placement platform that cooperates with the adsorption mechanism, the movable base frame is provided with a stabilizing hydraulic leg assembly that cooperates with the top support stabilizing assembly, and the movable base frame is provided with a moving wheel assembly.
[0034] The tile placement platform includes a placement plate located directly above the movable base frame. Several shock-absorbing springs connected to the movable base frame are provided at the bottom end of the placement plate, and a handheld tile suction cup that cooperates with the adsorption mechanism and is used for hand-held handling of the tile is provided on the front of the tile.
[0035] The stabilizing hydraulic leg assembly includes four stabilizing hydraulic legs respectively disposed at the four corners of the movable base frame;
[0036] The mobile wheel assembly includes a wheel frame disposed at the bottom end of the mobile base, an axle disposed on the wheel frame, mobile wheels disposed at both ends of the axle, and an electric drive unit that cooperates with one of the axles disposed on the mobile base.
[0037] The top support stabilizing assembly includes a top support frame mounted on the stabilizing frame, a top support slide that slides with the top support frame, a plurality of top support rods at the top of the top support slide, a top support plate that contacts the ceiling on the top support rods, and a plurality of top support hydraulic cylinders that cooperate with the top support slide on the movable base frame.
[0038] This invention integrates multiple functions such as tile adsorption, flipping, support, positioning, and tile adhesive spreading, avoiding the cumbersome process of using multiple equipment and tools in traditional construction, greatly simplifying the construction steps and improving the overall construction efficiency.
[0039] This invention utilizes an adsorption mechanism, allowing the platform to firmly hold the tiles, preventing displacement during flipping and spreading, and ensuring precise tile positioning. The auxiliary platform mechanism, through the coordinated work of components such as the vertical frame, synchronous arm, and telescopic arm, provides stable support for the tiles, ensuring their horizontal and vertical alignment during installation, thereby guaranteeing installation quality.
[0040] The tile adhesive spreading mechanism in this invention employs optimized feeding and spreading components, which can precisely control the amount and distribution of tile adhesive, ensuring that the tile adhesive is evenly and fully covered on the back of the tile, thereby improving bonding strength and reducing material waste.
[0041] The platform in this invention is equipped with a central control component, enabling precise control and coordinated operation of various components, making operation simpler and faster. Simultaneously, through auxiliary devices such as angle components, the platform can adjust the angle and position of the tiles according to actual needs, meeting the requirements of complex tiling scenarios.
[0042] The platform structure design in this invention fully considers the diversity of tile specifications. By adjusting the parameters of components such as the adsorption mechanism and auxiliary platform mechanism, it can easily adapt to tiles of different sizes, shapes and materials, thereby improving the versatility and practicality of the platform. Attached Figure Description
[0043] Figure 1 This is a three-dimensional structural diagram of the preliminary processing state of the present invention;
[0044] Figure 2 This is a first three-dimensional structural diagram of the tile adhesive under the laying state of the present invention;
[0045] Figure 3 This is a schematic diagram of the enlarged structure at point A of the present invention.
[0046] Figure 4 This is a side view of the present invention.
[0047] Figure 5This is a cross-sectional view (AA) of the present invention.
[0048] Figure 6 This is a schematic diagram of the enlarged structure at point B of the present invention.
[0049] Figure 7 This is a schematic diagram of the enlarged structure at point C of the present invention.
[0050] Figure 8 This is a schematic diagram of the enlarged structure at point D of the present invention.
[0051] Figure 9 This is a schematic diagram of the enlarged structure at point E of the present invention.
[0052] Figure 10 This is a diagram showing the connection between the movable base frame and the tile adhesive spreading mechanism of the present invention.
[0053] Figure 11 This is a schematic diagram of the enlarged structure at point F of the present invention.
[0054] Figure 12 This is a schematic diagram of the enlarged structure at point G in this invention.
[0055] Figure 13 This is an exploded view of the tile adhesive spreading mechanism of the present invention.
[0056] Figure 14 This is a schematic diagram of the enlarged structure at point H in this invention.
[0057] Figure 15 This is a diagram showing the assembly of the adsorption mechanism and the rotating component of the present invention.
[0058] Figure 16 This is a three-dimensional structural diagram of the auxiliary platform mechanism of the present invention.
[0059] Figure 17 This is a three-dimensional schematic diagram of a portion of the auxiliary platform mechanism of the present invention.
[0060] Figure 18 This is a diagram showing the assembly of the mobile base frame and auxiliary platform mechanism of the present invention.
[0061] The attached diagram is labeled as follows: 100, movable base frame; 110, stabilizing frame; 111, vertical groove; 120, tile placement platform; 121, placement plate; 122, shock-absorbing spring; 123, handheld tile suction cup; 130, stabilizing hydraulic leg assembly; 131, stabilizing hydraulic leg; 140, movable wheel assembly; 141, wheel frame; 142, axle; 143, movable wheel; 200, support frame; 210, support bracket; 220, tripod; 230, rotating circular frame; 300, adsorption mechanism; 310, adsorption support frame; 320, first set of electric rods; 330, second set of electric rods; 340, adsorption fixing frame; 341, embedded groove; 350, adsorption movable frame; 351, movable base; 352, main movable... 353. Moving frame; 360. Secondary moving frame; 361. Shock-absorbing assembly; 362. Shock-absorbing cylinder; 363. First spring; 364. Shock-absorbing circular plate; 365. Shock-absorbing rod; 366. Second spring; 367. Extrusion groove; 371. Electric suction cup assembly; 372. Negative pressure main pipe; 373. Negative pressure secondary pipe; 400. Negative pressure suction cup; 410. Rotating assembly; 420. Rotating bearing; 430. Adsorption support; 440. Rotating shaft; 450. Drive unit; 451. Drive motor; 460. Smoothing gear unit; 461. First gear; 462. Second gear; 470. Stabilizing gear unit; 500. Top support stabilizing assembly; 510. Top support frame; 520. Top support slide; 530. Top support rod; 5 40. Top support plate; 550. Top support hydraulic cylinder; 600. Auxiliary platform mechanism; 601. Vertical frame; 602. Synchronizing frame; 603. First slide groove; 604. Second slide groove; 605. Third slide groove; 606. First linear drive component; 607. Synchronizing arm; 608. Stabilizing slide groove; 609. Telescopic base; 610. Synchronizing drive assembly; 611. Drive frame; 612. Drive groove; 613. Drive bracket; 614. Third linear drive component; 615. Drive base; 616. Drive linkage; 617. Stabilizing frame; 618. Triangular stabilizer; 620. Telescopic arm; 630. Second linear drive component; 631. Telescopic hydraulic rod; 640. Abutment base; 650. Angle plate; 660. Abutment assembly; 661. Contact plate; 662. Contact hydraulic rod; 663. Shock absorber plate; 664. Shock absorber spring; 670. Angle assembly; 671. Angle rotating seat; 672. Rotating hinge seat; 673. Angle motor; 680. Central control assembly; 681. First angle sensor; 682. Second angle sensor; 683. Central control chip; 684. Battery pack; 700. Tile adhesive paving mechanism; 710. Paving frame; 720. Paving movable frame; 730. Drive electric rod; 740. Tile adhesive placement hopper; 741. Tile adhesive placement box; 742. Discharge hopper; 743. Discharge port; 744. Discharge plate; 750. Discharge assembly; 751. Discharge shaft; 752. Discharge motor; 753. Dividing partition;754. Separator ring plate; 760. Paving assembly; 761. Paving frame; 762. Placement trough; 763. Serrated scraper; 764. Extrusion screw; 765. Extrusion plate; 800. Paving support. Detailed Implementation
[0062] See Figures 1 to 18 As shown, a multi-functional integrated tiling platform for easy tile adhesive application includes a movable base frame 100, a stabilizing frame 110 on the movable base frame 100, a support frame 200 on the stabilizing frame 110, an adsorption mechanism 300 for adsorbing and fixing tiles on the support frame 200, a rotating component 400 for realizing tile angle rotation on the support frame 200, and a top support stabilizing component 500 on the movable base frame 100 that cooperates with the stabilizing frame 110 to ensure tiling stability.
[0063] The stabilizing frame 110 is provided with a paving support 800, and the paving support 800 is provided with a tile adhesive spreading mechanism 700 for spreading tile adhesive on the movable base frame 100. The tile adhesive spreading mechanism 700 is located directly above the adsorption mechanism 300. The stabilizing frame 110 is provided with an auxiliary platform mechanism 600 that cooperates with the adsorption mechanism 300 and is used to provide auxiliary support for the tiles. In use, the auxiliary platform mechanism 600 is located below the adsorption mechanism 300.
[0064] Specifically, the movable base frame 100 serves as the foundation of the entire device, and its structural design ensures the stability of the device during operation and its ease of movement. The stabilizing frame 110 is fixed to the movable base frame 100 via welding or bolting, forming a more stable support structure to ensure the stable operation of components such as the upper support frame 200, the adsorption mechanism 300, and the rotating component 400. The support frame 200, through its structural design, can bear the weight of the adsorption mechanism 300 and the rotating component 400, while ensuring these components maintain a relatively stable position during operation. The adsorption mechanism 300 typically employs a negative pressure adsorption principle, using electric or pneumatic suction cups to firmly adsorb the tiles onto the support frame 200, ensuring that the tiles do not slip during angle adjustment, tile adhesive application, and installation. The rotating component 400, through a motor, reducer, and drive shaft, drives the tiles on the adsorption mechanism 300 to rotate, thereby achieving precise adjustment of the tile angle. The top support stabilizing component 500 typically extends during tile laying, contacting the ceiling to provide additional support and ensure tile stability during installation. The paving support 800, through its structural design, can support the weight of the tile adhesive spreading mechanism 700 while ensuring the mechanism maintains a relatively stable position during operation, thus achieving uniform spreading of the tile adhesive. The tile adhesive spreading mechanism 700 evenly spreads the tile adhesive from the hopper onto the tiles; its design ensures uniformity and consistency of the adhesive, thereby improving installation quality. The auxiliary platform mechanism 600 provides additional support to the tiles during tile adhesive spreading and initial treatment; its design ensures the tiles remain flat and stable throughout the installation process.
[0065] Furthermore, the support frame 200 includes two support brackets 210 symmetrically arranged on the stabilizing frame 110. The support brackets 210 are provided with a triangular frame 220 fixedly connected to the stabilizing frame 110, and the support brackets 210 are provided with a rotating circular frame 230 that cooperates with the rotating assembly 400.
[0066] The rotating assembly 400 includes a rotating bearing 410 disposed on the rotating circular frame 230, a rotating shaft 420 disposed between the two rotating bearings 410, an adsorption support 430 cooperating with the adsorption mechanism 300 disposed on the rotating shaft 420, and a rotating shaft 440 passing through the rotating bearing 410 at both ends of the rotating shaft 420. A driving unit 450 is disposed on one of the rotating shafts 440, and a stabilizing gear unit 460 cooperating with the driving unit 450 is disposed on the other rotating shaft 440. A driving bracket 613 cooperating with the driving unit 450 is disposed on one of the support brackets 210, and a stabilizing circular frame cooperating with the stabilizing gear unit 460 is disposed on the other support bracket 210.
[0067] Furthermore, the drive unit 450 includes a drive motor 451 mounted on the drive bracket 613, and the output end of the drive motor 451 is fixedly connected to the rotating shaft 440. The drive bracket 613 is provided with a stabilizing gear unit 470 that cooperates with the rotating shaft 440 and the smoothing gear unit 460, and the structure of the stabilizing gear unit 470 is the same as that of the smoothing gear unit 460.
[0068] The stabilizing gear unit 460 includes a first gear 461 disposed on the rotating shaft 440, and a plurality of second gears 462 that mesh with the first gear 461 are evenly disposed on the stabilizing circular frame along the circumferential direction of the stabilizing circular frame.
[0069] Specifically, the support frame 200 includes two support brackets 210 symmetrically arranged on the stabilizing frame 110. Each support bracket 210 has a triangular bracket 220 fixedly connected to the stabilizing frame 110, and a rotating circular bracket 230 that cooperates with the rotating assembly 400, providing a stable support structure to ensure the normal operation of the rotating assembly 400 and the adsorption mechanism 300. The rotating assembly 400 achieves the angular rotation of the tile through a rotating bearing 410 and a rotating shaft 420. The adsorption support 430 is mounted on the rotating shaft 420 and cooperates with the adsorption mechanism 300 to ensure the tile is fixed during rotation. The rotating shaft 420 has rotating shafts 440 passing through the rotating bearings 410 at both ends. One rotating shaft 440 is equipped with a drive unit 450, and the other rotating shaft 440 is equipped with a smoothing gear unit 460. The rotating assembly 400 enables precise adjustment of the tile angle, ensuring controllable tile angle during processing. The drive unit 450 provides stable power output, ensuring smooth rotation of the rotating shaft 420 and reducing vibration and noise. The smoothing gear unit 460 ensures the stable rotation of the rotating shaft 420 through the meshing of multiple gears, thereby improving the accuracy and reliability of angle adjustment.
[0070] Furthermore, the adsorption mechanism 300 includes an adsorption support frame 310 disposed on the rotating assembly 400. The adsorption support frame 310 is symmetrically provided with two sets of first electric rods, and each set of electric rods includes a plurality of first electric rods disposed on the adsorption support frame 310. The moving ends of the plurality of first electric rods are connected to the same adsorption fixing frame 340.
[0071] The adsorption support frame 310 is provided with a plurality of second electric rods, which are connected to the same adsorption movable frame 350. The adsorption fixed frame 340 is provided with an embedded groove 341 that cooperates with the adsorption movable frame 350. The adsorption fixed frame 340 is provided with a shock-absorbing component 360 that cooperates with the adsorption movable frame 350.
[0072] Furthermore, the movable base frame 100 is provided with an electric suction cup assembly 370 that cooperates with the adsorption movable frame 350.
[0073] Furthermore, the adsorption movable frame 350 includes a movable base 351 fixedly connected to a plurality of second electric rods. A main movable frame 352 is provided on the movable base 351. Two sets of secondary movable frames 353 are symmetrically arranged on the main movable frame 352. Each set of secondary movable frames 353 includes a plurality of secondary movable frames 353 arranged on the main movable frame 352.
[0074] The shock-absorbing assembly 360 includes a plurality of shock-absorbing cylinders 361 disposed on the adsorption fixing frame 340 and cooperating with the inner groove 341. A first spring 362 is disposed in each shock-absorbing cylinder 361, and a shock-absorbing circular plate 363 cooperating with the first spring 362 is disposed in each shock-absorbing cylinder 361. A shock-absorbing rod 364 cooperating with the shock-absorbing circular plate 363 is disposed on the adsorption movable frame 350. A second spring 365 is sleeved on the shock-absorbing rod 364. The inner groove 341 has a compression circular groove 366 cooperating with the second spring 365. One end of the second spring 365 is in contact with the inner groove 341, and the other end of the second spring 365 is in contact with the adsorption movable frame 350.
[0075] The electric suction cup assembly 370 includes an electric negative pressure machine mounted on the movable base frame 100. The movable frame is provided with a plurality of negative pressure suction cups 373. The electric negative pressure machine is provided with a negative pressure main pipe 371 located on the main movable frame 352. The secondary movable frame 353 is provided with a plurality of negative pressure secondary pipes 372 connected to the negative pressure suction cups 373.
[0076] Specifically, the adsorption support frame 310 is provided with an adsorption support 430 located on the rotating assembly 400.
[0077] Preferably, the adsorption support frame 310 is provided with a guide rod, and the adsorption support frame 310 is provided with a guide cylinder that cooperates with the guide rod.
[0078] Specifically, the adsorption support frame 310 serves as the main structure of the adsorption mechanism 300. It is fixedly mounted on the rotating assembly 400 and used to support and connect other components. Two sets of first electric rods are symmetrically arranged on the adsorption support frame 310, each set comprising several first electric rods, whose moving ends are connected to the same adsorption fixing frame 340. By controlling the extension and retraction of the first electric rods, the height and position of the adsorption fixing frame 340 can be adjusted to accommodate tiles of different sizes and shapes. Similarly, several second electric rods are also provided on the adsorption support frame 310, whose moving ends are connected to the same adsorption movable frame 350. The adsorption movable frame 350 can move up and down under the drive of the second electric rods, cooperating with the adsorption fixing frame 340 to clamp the tiles. The adsorption fixing frame 340 has an embedded groove 341 for accommodating the adsorption movable frame 350. The shock-absorbing assembly 360 includes components such as a shock-absorbing cylinder 361, a first spring 362, a shock-absorbing circular plate 363, and a shock-absorbing rod 364. These components work together between the movable suction frame 350 and the fixed suction frame 340 to buffer and dampen shocks, protecting the tiles from impact and damage. The electric suction cup assembly 370 includes components such as an electric negative pressure generator, a main negative pressure pipe 371, and a secondary negative pressure pipe 372. The electric negative pressure generator generates negative pressure, which is transmitted to the negative pressure suction cup 373 through the main negative pressure pipe 371 and the secondary negative pressure pipe 372, thereby firmly adhering to the tiles.
[0079] Furthermore, the auxiliary platform mechanism 600 includes a vertical groove 111 formed on the stabilizing frame 110, a vertical frame 601 that slides in and engages with the vertical groove 111, a synchronization frame 602 on the vertical frame 601, a first linear drive member 606 for driving the vertical frame 601 to perform lifting and lowering movements in the vertical groove 111, synchronization arms 607 symmetrically arranged on the synchronization frame 602, and a synchronization drive assembly 610 for controlling the synchronization arms 607 to perform unidirectional and opposite-directional movements on the synchronization frame 602;
[0080] The synchronous arm 607 is provided with a telescopic arm 620 that slides with the synchronous arm 607. The synchronous arm 607 is provided with a second linear drive member 630 for controlling the telescopic arm 620 to perform telescopic movement. The telescopic arm 620 is provided with an abutment base 640 at one end away from the synchronous arm 607. The abutment base 640 is provided with an angle plate 650 that cooperates with the abutment base 640. The angle plate 650 is provided with an abutment component 660 for contacting the tile. The abutment base 640 is provided with an angle component 670 for controlling the angle plate 650 to rotate.
[0081] The stabilizing frame 110 is provided with a central control component 680 for controlling the linkage between the angle component 670 and the rotation component 400.
[0082] Specifically, during the use of the auxiliary platform mechanism 600, the vertical frame 601 is raised and lowered through the sliding engagement of the vertical groove 111 and the vertical frame 601, and driven by the first linear drive component 606, providing support at different heights. The synchronous drive component 610 controls the unidirectional and opposite-directional movement of the synchronous arm 607, ensuring stable support for the tile at different positions. Through the cooperation of the telescopic arm 620 and the second linear drive component 630, the telescopic arm 620 is extended and retracted, providing support at different positions. The cooperation of the angle plate 650 and the angle component 670 enables the adjustment of the tile angle, ensuring the accuracy of the tile during processing. Through the real-time monitoring and control of the central control component 680, the linkage between the angle component 670 and the rotation component 400 is ensured, improving the accuracy and coordination of angle adjustment and rotation.
[0083] Furthermore, the abutment component 660 includes an abutment plate 661, and the angle plate 650 is provided with a plurality of abutment hydraulic rods 662 for controlling the contact between the abutment plate 661 and the tile. The abutment plate 661 is provided with a damping plate 663, and a plurality of damping springs 664 are provided between the damping plate 663 and the abutment plate 661.
[0084] The angle assembly 670 includes an angle rotating seat 671 disposed on the abutment base 640, an angle rotating shaft 440 disposed on the angle rotating seat 671, a rotating hinge seat 672 disposed on the angle plate 650 that cooperates with the angle rotating shaft 440, and an angle motor 673 disposed on the angle rotating seat 671 that cooperates with the angle rotating shaft 440.
[0085] The central control component 680 includes a first angle sensor 681 that cooperates with the rotation component 400. A second angle sensor 682 that cooperates with the angle rotation shaft 440 and the rotation component 400 is provided on the angle rotation seat 671. A central control chip that cooperates with the rotation component 400 and is electrically connected to the second angle sensor 682 is provided on the stabilizing frame 110. The central control chip is electrically connected to the angle motor 673. A battery pack that cooperates with the central control chip is provided on the movable base frame 100.
[0086] Specifically, the central control chip is electrically connected to the drive motor 451 of the aforementioned rotating component 400, and the first angle sensor 681 is a first angle sensor 681 that cooperates with the rotating shaft 440 of the aforementioned rotating component 400.
[0087] Specifically, the contact component 660 primarily addresses the impact and damage that may occur when the contact plate 661 contacts the tile. Through the cooperation of the contact hydraulic rod 662 and the damping spring 664, it ensures the gentleness and stability of the contact plate 661 when contacting the tile, reducing damage. The angle component 670 includes an angle rotating seat 671 mounted on the contact base 640. The angle rotating seat 671 has an angle rotating shaft 440, and the angle plate 650 has a rotating hinge 672 that cooperates with the angle rotating shaft 440. The angle rotating seat 671 also has an angle motor 673 that cooperates with the angle rotating shaft 440, thus solving the problems of insufficient precision and inaccurate control during angle adjustment. Through the cooperation of the angle motor 673 and the angle rotating shaft 440, precise rotation of the angle plate 650 is achieved, ensuring the accuracy of angle adjustment during tile processing. In the central control component 680, through real-time monitoring by the first angle sensor 681 and the second angle sensor 682, the central control chip controls the operation of the angle motor 673 and the drive motor 451 based on the sensor data, ensuring the accuracy and coordination of angle adjustment and rotation.
[0088] Furthermore, a second linear drive member 630 is provided at the bottom end of the synchronous arm 607, a stabilizing groove 608 is provided on the synchronous arm 607, a stabilizing rod is provided on the telescopic arm 620 that slides with the stabilizing groove, and a telescopic base 609 that cooperates with the second linear drive member 630 is provided at the bottom end of the synchronous arm 607; and the second linear drive member 630 includes a telescopic hydraulic rod 631 provided on the telescopic base 609, the fixed end of the telescopic hydraulic rod 631 is fixedly connected to the telescopic base 609, and the telescopic end of the telescopic hydraulic rod 631 is fixedly connected to the telescopic arm 620.
[0089] Furthermore, the synchronous drive assembly 610 includes a first slide groove 603 formed on the synchronous frame 602 and slidably engaged with the synchronous arm 607, a second slide groove 604 formed on the synchronous frame 602 and communicating with the first slide groove 603, and a third slide groove 605 formed on the synchronous frame 602 and engaging with the second slide groove 604.
[0090] The synchronization frame 602 is provided with a drive frame 611, the drive frame 611 is provided with a drive groove 612, the drive groove 612 is provided with a drive bracket 613 that slides in cooperation with the drive groove 612, and the drive frame 611 is provided with a third linear drive member 614 for driving the drive bracket 613 to move along the length direction of the drive groove 612. The second sliding groove 604 is provided with a drive base 615 connected to the synchronization arm 607. Both ends of the drive bracket 613 are provided with drive connecting rods 616 connected to the drive base 615 on the same side as the synchronization arm 607.
[0091] A stabilizing frame 617 is provided on the driving base 615, and a triangular stabilizing frame 618 is provided on the stabilizing frame 617, which is connected to the synchronizing arm 607 and forms a triangular support with the stabilizing frame 617.
[0092] Specifically, during tile processing, the synchronous drive assembly 610 ensures stable support of the tile at different positions. Especially during operations such as tile flipping and angle adjustment, the unidirectional and counter-directional movements of the synchronous arms 607 precisely control the tile's position, ensuring smooth processing. Through the cooperation of multi-stage slides and drive linkages 616, the synchronous drive assembly 610 effectively solves the problems of insufficient stability and inaccurate control of the synchronous arms 607 during movement, improving the efficiency and quality of tile processing.
[0093] Furthermore, the tile adhesive spreading mechanism 700 includes a spreading frame 710 fixedly connected to the spreading support 800, a spreading movable frame 720 provided on the spreading frame 710, a driving electric rod 730 for driving the spreading sliding frame to move on the spreading frame 710, a tile adhesive placement hopper 740 provided on the spreading movable frame 720, a material feeding assembly 750 provided on the tile adhesive placement hopper 740, and a spreading assembly 760 cooperating with the material feeding assembly 750 provided on the tile adhesive placement hopper 740.
[0094] Furthermore, the tile adhesive placement hopper 740 includes a tile adhesive placement box 741 placed on the paving frame 720. A feeding hopper 742 is provided at the bottom end of the tile adhesive placement box 741. The feeding assembly 750 is disposed on the feeding hopper 742. A plurality of feeding ports 743 are provided at the bottom end of the feeding hopper 742, and a feeding plate 744 for opening and closing the feeding ports 743 is provided at each feeding port 743.
[0095] The feeding assembly 750 includes a feeding shaft 751 disposed in a feeding hopper 742. A feeding motor 752 that cooperates with the feeding shaft 751 is disposed on the feeding hopper 742. A material dividing plate 753 is evenly disposed on the feeding shaft 751 along the circumferential direction of the feeding shaft 751. A plurality of dividing ring plates 754 are evenly disposed on the feeding shaft 751 along the axial direction of the feeding shaft 751 to divide the material dividing plate 753 into a plurality of feeding areas and cooperate with the feeding port 743 one by one.
[0096] The paving assembly 760 includes a paving frame 761 disposed at one end of the paving movable frame 720 away from the drive electric rod 730. The paving frame 761 has a placement groove 762, in which a serrated scraper 763 for spreading tile adhesive on the back of the tile is disposed. The paving frame 761 is provided with an extrusion screw 764, and the extrusion screw 764 is provided with an extrusion plate 765 that cooperates with the serrated scraper 763.
[0097] In the tile adhesive spreading mechanism 700, the tile adhesive spreading mechanism 700 includes a spreading frame 710 fixedly connected to a spreading support 800, and a spreading movable frame 720 is mounted on the spreading frame 710. These structures constitute the main body of the spreading mechanism, used to support and move the tile adhesive placement hopper 740 and other related components. The spreading movable frame 720 is equipped with the tile adhesive placement hopper 740, and the tile adhesive placement hopper 740 is equipped with a feeding assembly 750 and a spreading assembly 760. The tile adhesive placement hopper 740 is used to store tile adhesive, and the feeding assembly 750 and the spreading assembly 760 spread the tile adhesive evenly on the back of the tiles. The feeding assembly 750 is mounted on the feeding hopper 742, and the bottom end of the feeding hopper 742 is provided with several feeding ports 743, and a feeding plate 744 is provided at each feeding port 743 for opening and closing the feeding ports 743. The dispensing assembly 750 controls the flow rate and dispensing position of the tile adhesive, ensuring that the adhesive is evenly distributed on the back of the tile. The dispensing shaft 751 and the dispensing partition 753 in the dispensing assembly 750 evenly distribute the tile adhesive into the dispensing port 743. The number of opening windows in the dispensing plate 744 is selected according to the size of the tile, and the dispensing plate 744 controls the opening and closing of the dispensing port 743. The paving assembly 760 includes a paving frame 761 located at the end of the paving frame 720 away from the drive motor rod 730. The paving frame 761 has a placement groove 762, in which a serrated scraper 763 is placed to spread the tile adhesive onto the back of the tile. An extrusion screw 764 is mounted on the paving frame 761, and an extrusion plate 765 that cooperates with the serrated scraper 763 is mounted on the extrusion screw 764. The function of the paving assembly 760 is to evenly spread the tile adhesive on the back of the tile and ensure a tight bond between the adhesive and the tile.
[0098] Furthermore, the movable base frame 100 is provided with a tile placement platform 120 that cooperates with the adsorption mechanism 300, the movable base frame 100 is provided with a stabilizing hydraulic leg assembly 130 that cooperates with the top support stabilizing assembly 500, and the movable base frame 100 is provided with a moving wheel assembly 140.
[0099] The tile placement platform 120 includes a placement plate 121 located directly above the movable base frame 100. Several shock-absorbing springs 122 connected to the movable base frame 100 are provided at the bottom end of the placement plate 121. A handheld tile suction cup 123 is provided on the front of the tile, which cooperates with the adsorption mechanism 300 and is used for hand-held handling of the tile.
[0100] The stabilizing hydraulic leg assembly 130 includes four stabilizing hydraulic legs 131 respectively disposed at the four corners of the movable base frame 100;
[0101] The mobile wheel assembly 140 includes a wheel frame 141 disposed at the bottom end of the mobile base 100, an axle 142 disposed on the wheel frame 141, mobile wheels 143 disposed at both ends of the axle 142, and an electric drive unit that cooperates with one of the axles 142 disposed on the mobile base 100.
[0102] The top support stabilizing assembly 500 includes a top support frame 510 mounted on the stabilizing frame 110, a top support slide 520 that slides with the top support frame 510, a plurality of top support rods 530 at the top end of the top support slide 520, a top support plate 540 that contacts the ceiling mounted on the top support rods 530, and a plurality of top support hydraulic cylinders 550 that cooperate with the top support slide 520 mounted on the movable base frame 100.
[0103] Preferably, the movable base frame 100 is provided with a support frame that cooperates with the top support hydraulic cylinder 550.
[0104] Specifically, the structure of the aforementioned electric drive unit is basically the same as that of commercially available electric drive structures used to drive wheels, and will not be elaborated upon in this article.
[0105] The technical features of this invention not described can be implemented by or using existing technology, and will not be repeated here. Of course, the above description is not a limitation of this invention, and this invention is not limited to the examples above. Any changes, modifications, additions or substitutions made by those skilled in the art within the scope of this invention should also be within the protection scope of this invention.
Claims
1. A multi-functional integrated tiling platform for easy application of tile adhesive, characterized in that: The device includes a movable base frame (100), a stabilizing frame (110) on the movable base frame (100), a supporting frame (200) on the stabilizing frame (110), an adsorption mechanism (300) on the supporting frame (200) for adsorbing and fixing the tiles, a rotating component (400) on the supporting frame (200) for realizing the rotation angle of the tiles, and a top support stabilizing component (500) on the movable base frame (100) that cooperates with the stabilizing frame (110) and is used to ensure the stability of the installation. The stabilizing frame (110) is provided with a paving support (800), and the paving support (800) is provided with a tile adhesive paving mechanism (700) for paving tile adhesive on the movable base frame (100). The tile adhesive paving mechanism (700) is located directly above the adsorption mechanism (300). The stabilizing frame (110) is provided with an auxiliary platform mechanism (600) that cooperates with the adsorption mechanism (300) and provides auxiliary support for the tiles. The auxiliary platform mechanism (600) includes a vertical slot (111) formed on the stabilizing frame (110), a vertical frame (601) slidably engaged with the vertical slot (111), a synchronization frame (602) on the vertical frame (601), a first linear drive member (606) for driving the vertical frame (601) to perform lifting and lowering movements in the vertical slot (111), synchronization arms (607) symmetrically arranged on the synchronization frame (602), and a synchronization drive assembly (610) for controlling the synchronization arms (607) to perform unidirectional and opposite-directional movements on the synchronization frame (602). The synchronous arm (607) is provided with a telescopic arm (620) that slides with the synchronous arm (607). The synchronous arm (607) is provided with a second linear drive (630) for controlling the telescopic arm (620) to perform telescopic movement. A contact base (640) is provided at one end of the telescopic arm (620) away from the synchronous arm (607). An angle plate (650) that cooperates with the contact base (640) is provided on the contact base (640). A contact component (660) for contacting the tile is provided on the angle plate (650). An angle component (670) for controlling the angle plate (650) to rotate is provided on the contact base (640). The stabilizing frame (110) is provided with a central control component (680) for controlling the linkage between the angle component (670) and the rotation component (400).
2. The multi-functional integrated tiling platform for facilitating tile adhesive application as described in claim 1, characterized in that: The support frame (200) includes two support brackets (210) symmetrically arranged on the stabilizing frame (110). A tripod (220) fixedly connected to the stabilizing frame (110) is provided on the support bracket (210). A rotating circular frame (230) cooperating with the rotating component (400) is provided on the support bracket (210). The rotating assembly (400) includes a rotating bearing (410) disposed on the rotating circular frame (230), a rotating shaft (420) disposed between the two rotating bearings (410), an adsorption support (430) cooperating with the adsorption mechanism (300) disposed on the rotating shaft (420), and a rotating shaft (440) passing through the rotating bearing (410) disposed at both ends of the rotating shaft (420). A driving unit (450) is disposed on one of the rotating shafts (440), and a smoothing gear unit (460) cooperating with the driving unit (450) is disposed on the other rotating shaft (440). A driving bracket (613) cooperating with the driving unit (450) is disposed on one of the support brackets (210), and a smoothing circular frame cooperating with the smoothing gear unit (460) is disposed on the other support bracket (210).
3. The multi-functional integrated tiling platform for facilitating tile adhesive application as described in claim 1, characterized in that: The adsorption mechanism (300) includes an adsorption support frame (310) disposed on the rotating assembly (400). The adsorption support frame (310) is symmetrically provided with two sets of first electric rods (320), and each set of electric rods includes a plurality of first electric rods (320) disposed on the adsorption support frame (310). The moving ends of the plurality of first electric rods are connected to the same adsorption fixing frame (340). The adsorption support frame (310) is provided with a plurality of second electric rods (330), and the plurality of second electric rods (330) are connected to the same adsorption movable frame (350). The adsorption fixed frame (340) is provided with an embedded groove (341) that cooperates with the adsorption movable frame (350). The adsorption fixed frame (340) is provided with a shock-absorbing component (360) that cooperates with the adsorption movable frame (350). Furthermore, the movable base frame (100) is provided with an electric suction cup assembly (370) that cooperates with the adsorption movable frame (350).
4. The multi-functional integrated tiling platform for facilitating tile adhesive application as described in claim 3, characterized in that: The adsorption movable frame (350) includes a movable base (351) fixedly connected to a plurality of second electric rods. A main movable frame (352) is provided on the movable base (351). Two sets of secondary movable frames (353) are symmetrically arranged on the main movable frame (352). Each set of secondary movable frames (353) includes a plurality of secondary movable frames (353) arranged on the main movable frame (352). The shock-absorbing assembly (360) includes a plurality of shock-absorbing cylinders (361) disposed on the adsorption fixing frame (340) and cooperating with the inner groove (341). A first spring (362) is disposed in the shock-absorbing cylinder (361), and a shock-absorbing circular plate (363) cooperating with the first spring (362) is disposed in the shock-absorbing cylinder (361). A shock-absorbing rod (364) cooperating with the shock-absorbing circular plate (363) is disposed on the adsorption movable frame (350). A second spring (365) is sleeved on the shock-absorbing rod (364). The inner groove (341) has a compression circular groove (366) cooperating with the second spring (365). One end of the second spring (365) is in contact with the inner groove (341), and the other end of the second spring (365) is in contact with the adsorption movable frame (350). The electric suction cup assembly (370) includes an electric negative pressure machine mounted on the movable base frame (100), a plurality of negative pressure suction cups (373) mounted on the secondary movable frame, a negative pressure main pipe (371) mounted on the electric negative pressure machine and located on the main movable frame (352), and a plurality of negative pressure secondary pipes (372) connected to the negative pressure suction cups (373) mounted on the secondary movable frame (353).
5. The multi-functional integrated tiling platform for facilitating tile adhesive application as described in claim 1, characterized in that: The contact assembly (660) includes a contact plate (661), and the angle plate (650) is provided with a plurality of contact hydraulic rods (662) for controlling the contact plate (661) to contact the tile. The contact plate (661) is provided with a damping plate (663), and a plurality of damping springs (664) are provided between the damping plate (663) and the contact plate (661). The angle assembly (670) includes an angle rotating seat (671) disposed on the abutment base (640), an angle rotating shaft (440) disposed on the angle rotating seat (671), a rotating hinge seat (672) cooperating with the angle rotating shaft (440) disposed on the angle plate (650), and an angle motor (673) cooperating with the angle rotating shaft (440) disposed on the angle rotating seat (671). The central control component (680) includes a first angle sensor (681) that cooperates with the rotation component (400), a second angle sensor (682) that cooperates with the angle rotating shaft (440) and the rotation component (400) is provided on the angle rotating seat (671), and a central control chip that cooperates with the rotation component (400) and is electrically connected to the second angle sensor (682) is provided on the stabilizing frame (110), the central control chip is electrically connected to the angle motor (673), and a battery pack that cooperates with the central control chip is provided on the moving base frame (100).
6. The multi-functional integrated tiling platform for facilitating tile adhesive application as described in claim 1, characterized in that: The synchronous drive assembly (610) includes a first slide groove (603) formed on the synchronous frame (602) and slidably engaged with the synchronous arm (607), a second slide groove (604) formed on the synchronous frame (602) and communicating with the first slide groove (603), and a third slide groove (605) formed on the synchronous frame (602) and engaging with the second slide groove (604). The synchronous frame (602) is provided with a drive frame (611), the drive frame (611) is provided with a drive groove (612), the drive groove (612) is provided with a drive bracket (613) that slides in the drive groove (612), and the drive frame (611) is provided with a third linear drive member (614) for driving the drive bracket (613) to move along the length direction of the drive groove (612). The second slide groove (604) is provided with a drive base (615) connected to the synchronous arm (607). Both ends of the drive bracket (613) are provided with drive connecting rods (616) connected to the drive base (615) on the same side as the synchronous arm (607). The drive base (615) is provided with a stabilizer (617), and the stabilizer (617) is provided with a triangular stabilizer (618) that is connected to the synchronous arm (607) and forms a triangular support with the stabilizer (617).
7. The multi-functional integrated tiling platform for facilitating tile adhesive application as described in claim 1, characterized in that: The tile adhesive spreading mechanism (700) includes a spreading frame (710) fixedly connected to the spreading support (800), a spreading movable frame (720) is provided on the spreading frame (710), a driving electric rod (730) for driving the spreading sliding frame to move is provided on the spreading frame (710), a tile adhesive placement hopper (740) is provided on the spreading movable frame (720), a material feeding assembly (750) is provided on the tile adhesive placement hopper (740), and a spreading assembly (760) that cooperates with the material feeding assembly (750) is provided on the tile adhesive placement hopper (740).
8. The multi-functional integrated tiling platform for facilitating tile adhesive application as described in claim 7, characterized in that: The tile adhesive placement hopper (740) includes a tile adhesive placement box (741) placed on the paving frame (720). A feeding hopper (742) is provided at the bottom of the tile adhesive placement box (741). The feeding assembly (750) is provided on the feeding hopper (742). A plurality of feeding ports (743) are provided at the bottom of the feeding hopper (742), and a feeding plate (744) for opening and closing the feeding ports (743) is provided at the feeding ports (743). The feeding assembly (750) includes a feeding shaft (751) disposed in a feeding hopper (742). A feeding motor (752) cooperating with the feeding shaft (751) is disposed on the feeding hopper (742). A material dividing plate (753) is uniformly disposed on the feeding shaft (751) along the circumferential direction of the feeding shaft (751). A plurality of dividing ring plates (754) are uniformly disposed on the feeding shaft (751) along the axial direction of the feeding shaft (751) to divide the material dividing plate (753) into a plurality of feeding areas and to cooperate with the feeding port (743) one by one. The paving assembly (760) includes a paving frame (761) located at one end of the paving mobile frame (720) away from the drive electric rod (730). The paving frame (761) has a placement groove (762) in which a serrated scraper (763) for spreading tile adhesive on the back of the tile is provided. The paving frame (761) is provided with an extrusion screw (764), and the extrusion screw (764) is provided with an extrusion plate (765) that cooperates with the serrated scraper (763).
9. The multi-functional integrated tiling platform for facilitating tile adhesive application as described in claim 1, characterized in that: The movable base frame (100) is provided with a tile placement platform (120) that cooperates with the adsorption mechanism (300), the movable base frame (100) is provided with a stabilizing hydraulic leg assembly (130) that cooperates with the top support stabilizing assembly (500), and the movable base frame (100) is provided with a moving wheel assembly (140). The tile placement platform (120) includes a placement plate (121) located directly above the movable base frame (100). The bottom end of the placement plate (121) is provided with a plurality of shock-absorbing springs (122) connected to the movable base frame (100). The front of the tile is provided with a handheld tile suction cup (123) that cooperates with the adsorption mechanism (300) and is used for hand-held handling of the tile. The stabilizing hydraulic leg assembly (130) includes four stabilizing hydraulic legs (131) respectively disposed at the four corners of the movable base frame (100); The movable wheel assembly (140) includes a wheel frame (141) disposed at the bottom end of the movable base (100), an axle (142) disposed on the wheel frame (141), movable wheels (143) disposed at both ends of the axle (142), and an electric drive unit that cooperates with one of the axles (142) disposed on the movable base (100). The top support stabilizing assembly (500) includes a top support frame (510) disposed on the stabilizing frame (110), a top support slide (520) disposed on the top support frame (510) and slidingly engaged with the top support frame (510), a plurality of top support rods (530) disposed at the top end of the top support slide (520), a top support plate (540) disposed on the top support rod (530) and contacting the ceiling, and a plurality of top support hydraulic cylinders (550) disposed on the movable base frame (100) and cooperating with the top support slide (520).
Citation Information
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