An artificial quartz stone feeding platform

By designing the adjustment mechanism and flip-plate structure of the artificial quartz stone conveying platform, the problem of high difficulty in tilting and stacking semi-finished artificial quartz stone slabs was solved, achieving stable tilting and stacking and safe transportation, and reducing costs.

CN119953841BActive Publication Date: 2025-10-28GUANGDONG BANNER NEW MATERIAL TECH
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Patent Information

Application Number
CN202510200390.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2025-10-28
Estimated Expiration
2045-02-24

AI Technical Summary

Technical Problem

The existing material conveying platform cannot effectively tilt and stack semi-finished artificial quartz stone slabs, which increases the difficulty and cost of stacking, and poses safety hazards during the tilting process.

Method used

A material conveying platform for artificial quartz stone was designed. By adjusting the mechanism and flipping plate structure, and using the combination of rotating shaft, flipping plate, lifting block and clamping device, the platform can achieve tilting movement and stable clamping of semi-finished artificial quartz stone slabs. Combined with motor drive and elastic components, the stability and safety of the tilting process are ensured.

Benefits of technology

This technology enables the stable tilting and stacking of semi-finished artificial quartz stone slabs, reducing stacking difficulty and cost while improving safety and yield during transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention provides an artificial quartz stone conveying platform, belonging to the technical field of conveying platforms. It includes a frame and a rotating shaft rotatably connected to the inner wall of the frame, with both ends extending to the two sides of the frame. A flap is fixedly connected to the top of the rotating shaft, and a fixing block is fixedly connected to the top of the flap. Utilizing the self-locking property of the lead screw and slider, the semi-finished artificial quartz stone slab is moved stably and evenly, enabling the conveying platform to smoothly tilt the artificial quartz stone slab, increasing the platform's tilting capability for semi-finished artificial quartz stone slabs. This allows the platform to stack semi-finished artificial quartz stone slabs at an angle on the rack, reducing the difficulty of stacking them and simultaneously placing them at an angle on the rack, thus reducing the cost of tilting and stacking semi-finished artificial quartz stone slabs.
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Description

Technical Field

[0001] This invention belongs to the field of material conveying platform technology, and specifically relates to an artificial quartz stone material conveying platform. Background Technology

[0002] Artificial quartz stone, or simply quartz stone, is a type of artificial stone made with unsaturated polyester resin as a binder, quartz sand and glass particles as the main aggregates, and quartz powder as the main filler. Its main components include more than 90% quartz sand powder and about 10% resin, pigments, and other auxiliary materials.

[0003] A material conveying platform is a platform system specifically designed for material transport. It can move materials from one location to another. Such platforms are usually equipped with conveyor belts, sprockets, or other drive devices to achieve continuous or intermittent material transport. Its main functions are to improve production efficiency, save labor costs, and ensure the accuracy and safety of material transport.

[0004] CN215844455U describes "an artificial quartz stone conveying platform, including mounting plates, with a drive shaft and a driven shaft movably connected between the mounting plates. A drive wheel is mounted on the drive shaft, and a driven wheel is mounted on the driven shaft. A conveyor belt is installed between the drive wheel and the driven wheel. The beneficial effects achieved by this utility model are: by setting a cleaning mechanism on the top of the conveying platform, a water tank and a small water pump are installed on the top plate of the cleaning mechanism, and a nozzle is installed in the mounting groove of the top plate. The cleaning liquid in the water tank is sprayed onto the surface of the artificial quartz stone conveyed by the conveyor belt of the conveying platform through the small water pump, which can effectively clean the surface of the artificial quartz stone; side baffles are set on both sides of the bottom of the cleaning mechanism, and the cleaning mechanism is inserted into the mounting plate of the conveying platform through the side baffles. The cleaning mechanism is easy to install and disassemble, convenient for later maintenance, has a reasonable structure, and improves the functionality of the conveying platform."

[0005] The aforementioned application proposes a cleaning mechanism installed on top of the conveying platform. A water tank and a small water pump are mounted on the top plate of the cleaning mechanism, and nozzles are installed in the mounting slots of the top plate. The small water pump sprays the cleaning solution from the water tank onto the surface of the artificial quartz stone conveyed by the conveyor belt of the platform, effectively rinsing the surface. Side baffles are installed on both sides of the bottom of the cleaning mechanism, which is inserted into slots on the mounting plate of the conveying platform via these baffles. This design facilitates easy installation and disassembly, simplifying maintenance and improving the functionality of the conveying platform. However, in an artificial quartz stone slab production line, a single conveying platform can only serve one function. This is a mobile platform for finished, semi-finished, and raw materials of artificial quartz stone slabs, serving as a point-to-point mobile device between processing processes within the production workshop. However, due to the large volume and high weight of individual semi-finished artificial quartz stone slabs, existing transport platforms cannot tilt them. A stacker crane is needed to tilt and stack the semi-finished artificial quartz stone slabs onto the racks to reduce the space occupied by them. However, tilting the stacking increases the difficulty and cost of stacking the semi-finished artificial quartz stone slabs. Therefore, we propose an artificial quartz stone conveying platform. Summary of the Invention

[0006] The purpose of this invention is to provide a material conveying platform for artificial quartz stone, which aims to increase the tilting capacity of the transport platform for semi-finished artificial quartz stone slabs, so that the transport platform can tilt and stack the semi-finished artificial quartz stone slabs on the rack, reducing the difficulty of stacking the semi-finished artificial quartz stone slabs and simultaneously placing the semi-finished artificial quartz stone slabs on the rack at an angle, thereby reducing the cost of tilting and stacking the semi-finished artificial quartz stone slabs.

[0007] To achieve the above objectives, the present invention provides the following technical solution:

[0008] Frame;

[0009] A rotating shaft is rotatably connected between the inner walls of the frame, and both ends of the shaft extend to the two sides of the frame. A flap is fixedly connected to the top of the rotating shaft, and a fixing block is fixedly connected to the top of the flap. Two movable slots are formed on the top of the flap, and a lifting block is provided in each of the two movable slots. A clamping groove is formed on the top of the flap, and movable clamping blocks are provided between the inner walls of the clamping groove.

[0010] An adjustment mechanism is provided between the frame and the flip plate. The adjustment mechanism is connected to the movable clamping block and the two lifting blocks to move the movable clamping block and the two lifting blocks.

[0011] In a preferred embodiment of the present invention, the adjusting mechanism includes a pushing component, a connecting rod component, an elastic component, a lifting component, and a guiding component. The lifting component is disposed at the bottom of the flip plate and is connected to two lifting blocks. The elastic component is disposed at the top of the flip plate and is connected to a movable clamping block. The connecting rod component is disposed between the inner walls of the frame and is connected to the flip plate. The pushing component is disposed between the inner walls of the frame and is connected to the connecting rod component.

[0012] In a preferred embodiment of the present invention, the elastic component includes a spring sleeve, an elastic insert rod, a reinforcing spring, and guide posts. Two guide posts are provided, which are fixedly connected between the inner walls of the clamping groove and penetrate the movable clamping block. Two spring sleeves are provided, which are fixedly connected to the bottom of the flip plate and located on one side of the clamping groove. Two elastic insert rods are provided, which are movably inserted between the inner walls of the two spring sleeves. Two reinforcing springs are provided, which are sleeved on the circumferential surfaces of the two elastic insert rods and located between the inner walls of the two spring sleeves.

[0013] In a preferred embodiment of the present invention, the lifting assembly includes a top rod, a reciprocating frame, and a second electric push rod. Two top rods are provided, and the two top rods are fixedly connected to the side end of the lifting block. The other end of the two top rods is inserted into the flap, and the extended ends of the two top rods extend to the inner wall of the clamping groove, but the extended ends of the two top rods are not connected to the clamping groove. The second electric push rod is fixedly connected to the bottom of the flap, and the reciprocating frame is fixedly connected to the output end of the second electric push rod, and the reciprocating frame is connected to the two lifting blocks.

[0014] In a preferred embodiment of the present invention, the pushing assembly includes a fixed plate, a slide rail, a limiting groove, a lead screw, a rotating motor, a slider, and limiting blocks. The fixed plate is fixedly connected to the inner wall of the frame. The slide rail is fixedly connected to the top of the fixed plate. Two limiting grooves are provided, each located at one side end of the slide rail and communicating with the inner wall of the slide rail. The lead screw is rotatably connected to the inner wall of the slide rail, with one end extending to the side end of the slide rail. The rotating motor is fixedly connected to the side end of the slide rail, and its output end is fixedly connected to the extended end of the lead screw. The slider is sleeved on the circumferential surface of the lead screw and is located between the inner walls of the slide rail. Two limiting blocks are provided, sliding between the inner walls of the two limiting grooves, and both limiting blocks are connected to the slider.

[0015] In a preferred embodiment of the present invention, the linkage assembly includes a base frame, a sliding rod, a guide block, a counterweight, a first adapter block, a push-pull rod, and a second adapter block. The base frame is fixedly connected to the bottom of the flip plate. Two sliding rods are provided and fixedly connected between the inner walls of the base frame. The guide block is sleeved on the circumferential surface of the two sliding rods and slides between the inner walls of the base frame. The counterweight is fixedly connected to the bottom of the guide block and is located on the lower side of the base frame. The first adapter block is fixedly connected to the bottom of the guide block, and the second adapter block is fixedly connected to the top of the slider. The push-pull rod is rotatably connected between the first adapter block and the second adapter block via a hinge.

[0016] In a preferred embodiment of the present invention, the guiding assembly includes two hollow covers, arc grooves, and eccentric sliders. Two hollow covers are provided, each fitted onto the circumferential surface of one of the two extended ends of the rotating shaft, and both hollow covers are fixedly connected to the two side ends of the frame. Two arc grooves are provided, each formed at one of the two side ends of the hollow cover, and each arc groove communicates with the inner wall of the two hollow covers. Two eccentric sliders are provided, each fixedly connected to the two extended ends of the rotating shaft, and the swinging ends of the two eccentric sliders slide between the inner walls of the two arc grooves.

[0017] In a preferred embodiment of the present invention, the top of the frame has two receiving slots, which are located on both sides of the tilting trough. Two rotating wheels are rotatably connected between the inner walls of the two receiving slots. Two conveyor belts are fitted on the circumferential surfaces of the four rotating wheels. A fixed frame is fixedly connected to the bottom of the flip plate, which corresponds vertically to the tilting trough. A dual-axis motor is fixedly connected to the top of the fixed frame, which is located between the inner walls of the tilting trough. The two output ends of the dual-axis motor extend to the inner walls of the two receiving slots, and are fixedly connected to the two rotating wheels. The top of the flip plate has two roller slots, which are located at the two sides of the tilting trough. Rollers are rotatably connected between the inner walls of the two roller slots.

[0018] As a preferred embodiment of the present invention, a laser positioner is installed on the side end of the fixing block, and the emitting end of the laser positioner extends to the inner wall of the fixing block.

[0019] As a preferred embodiment of the present invention, the top of the flap is provided with a through mounting hole, and the bottom of the flap is fixedly connected with a first electric push rod, the output end of the first electric push rod extending to the inner wall of the mounting hole.

[0020] Compared with the prior art, the beneficial effects of the present invention are:

[0021] 1. In this solution, when tilting the flip-up plate and the semi-finished single artificial quartz stone slab, the rotating motor is started by powering on. The output end of the rotating motor drives the lead screw to rotate. The lead screw pushes the slider to reciprocate within the slide rail through the sliding cooperation with the slider. The reciprocating movement of the slider pushes and pulls the connecting rod assembly, providing power for tilting the flip-up plate and the semi-finished single artificial quartz stone slab. At the same time, the self-locking property of the lead screw and the slider ensures that the tilting movement of the semi-finished single artificial quartz stone slab is stable and uniform, realizing the smooth tilting of the artificial quartz stone slab by the artificial quartz stone conveying platform. This increases the tilting capacity of the transport platform for the semi-finished artificial quartz stone slab, allowing the transport platform to tilt and stack the semi-finished artificial quartz stone slab on the rack, reducing the difficulty of stacking the semi-finished artificial quartz stone slab, and simultaneously placing the semi-finished artificial quartz stone slab on the rack at an angle, reducing the cost of tilting and stacking the semi-finished artificial quartz stone slab.

[0022] 2. In this solution, during the clamping process of a single piece of artificial quartz stone slab semi-finished product, the output end of the second electric push rod extends and retracts. The second electric push rod pushes and pulls the reciprocating frame, which pulls the lifting blocks to move within the two movable slots. This causes the two lifting blocks to move between the fixed clamping block and the flip plate. The two lifting blocks approach one side of the single piece of artificial quartz stone slab semi-finished product to assist in clamping it. When the two lifting blocks are aligned with the fixed clamping block, one side of the single piece of artificial quartz stone slab semi-finished product is pushed out of the fixed clamping block. At the same time, the two lifting blocks push the two top rods closer to the movable clamping block. The two top rods are close to the movable clamping block, and the two top rods push the movable clamping block to reset, releasing the clamping restriction on the single piece of artificial quartz stone slab semi-finished product, facilitating the rapid unloading of the single piece of artificial quartz stone slab semi-finished product.

[0023] 3. In this solution, during the feeding process, as the two conveyor belts push the semi-finished artificial quartz stone slabs to move unidirectionally at the top of the frame, the movable clamping block first lifts one end of the semi-finished artificial quartz stone slab. Then, the semi-finished artificial quartz stone slab moves between the fixed clamping block and the movable clamping block. Subsequently, one end of the semi-finished artificial quartz stone slab approaches and inserts into the inner wall of the fixed clamping block. Finally, two reinforcing springs push the movable clamping block closer to the movable slot, so that the fixed clamping block and the movable clamping block horizontally move and clamp the semi-finished artificial quartz stone slab, thus preventing the semi-finished artificial quartz stone slab from falling off. This ensures that the semi-finished artificial quartz stone slab will not fall off or break when tilted, improving the safety of the artificial quartz stone conveying platform when tilting the artificial quartz stone slab.

[0024] 4. In this solution, the guide block is used to support and fix the first transition block and the counterweight block. The counterweight block changes the center of gravity position of the artificial quartz stone slab semi-finished product and the flip plate by moving, reducing the occurrence of the artificial quartz stone slab semi-finished product falling off due to the shift of the center of gravity during the tilting process. At the same time, it offsets the vibration caused by the instantaneous reduction of the load on the flip plate when the artificial quartz stone slab semi-finished product falls off, avoids severe friction between the artificial quartz stone slab semi-finished product and the flip plate, prevents wear on the surface of the artificial quartz stone slab semi-finished product, and improves the yield of artificial quartz stone slabs.

[0025] 5. In this solution, when feeding material onto the top of the flip plate, the dual-axis motor is started by powering on. The two output ends of the dual-axis motor drive two rotating wheels to rotate. The two rotating wheels drive two conveyor belts to roll. The two conveyor belts then drive two other rotating wheels to rotate. The rolling of the two conveyor belts drives the semi-finished artificial quartz stone slab material to move unidirectionally on the top of the fixed plate, so that the semi-finished artificial quartz stone slab material moves between the fixed clamping block and the movable clamping block, realizing the rapid feeding of the semi-finished artificial quartz stone slab material to the artificial quartz stone feeding platform. Attached Figure Description

[0026] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:

[0027] Figure 1 This is a first-view perspective perspective view of an artificial quartz stone conveying platform according to the present invention;

[0028] Figure 2 This is a second-view perspective perspective view of an artificial quartz stone conveying platform according to the present invention;

[0029] Figure 3 This is a first half-sectional view of an artificial quartz stone conveying platform according to the present invention;

[0030] Figure 4 This invention relates to an artificial quartz stone conveying platform. Figure 3 Enlarged view of point A;

[0031] Figure 5 This is a second half-sectional view of an artificial quartz stone conveying platform according to the present invention;

[0032] Figure 6 This is a third half-sectional view of an artificial quartz stone conveying platform according to the present invention;

[0033] Figure 7 This is a fourth half-sectional view of an artificial quartz stone conveying platform according to the present invention;

[0034] Figure 8 This is an exploded view of an artificial quartz stone conveying platform according to the present invention;

[0035] Figure 9 This is a half-sectional view of the clamping mechanism and guiding components of an artificial quartz stone conveying platform according to the present invention.

[0036] Figure 10 This invention relates to an artificial quartz stone conveying platform. Figure 9 Enlarged view of point B;

[0037] Figure 11 This invention relates to an artificial quartz stone conveying platform. Figure 9 Enlarged view of point C;

[0038] Figure 12 This is an exploded view of the pushing component and connecting rod component of an artificial quartz stone conveying platform according to the present invention.

[0039] In the diagram: 1. Frame; 2. Fixing plate; 3. Tilting groove; 4. Receiving groove; 5. Fixing frame; 6. Dual-axis motor; 7. Rotary wheel; 8. Conveyor belt; 9. Roller; 10. Rotating shaft; 11. Tilting plate; 12. Mounting hole; 13. First electric push rod; 14. Base frame; 15. Slide rod; 16. Guide block; 17. Counterweight block; 18. First transition block; 19. Push-pull rod; 20. Slide rail; 21. Limiting groove; 22. Lead screw; 23. Rotary element. 24. Motor; 25. Slider; 26. Limiting block; 27. Second adapter block; 28. Hollow cover; 29. ​​Arc groove; 30. Eccentric slider; 31. Movable groove; 32. Fixed clamping block; 33. Lifting block; 34. Top rod; 35. Reciprocating frame; 36. Second electric push rod; 37. Clamping groove; 38. Spring sleeve; 39. Elastic insertion rod; 40. Movable clamping block; 41. Laser positioner; 42. Reinforcing spring; 43. Guide post; 44. Roller groove. Detailed Implementation

[0040] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0041] Example 1

[0042] Reference Figure 1 - Figure 12 A type of artificial quartz stone conveying platform, comprising:

[0043] Frame 1;

[0044] A rotating shaft 10 is rotatably connected to the inner wall of the frame 1, and both ends of the rotating shaft 10 extend to the two side ends of the frame 1. A flap 11 is fixedly connected to the top of the rotating shaft 10, and a fixing block 31 is fixedly connected to the top of the flap 11. Two movable slots 30 are opened on the top of the flap 11, and lifting blocks 32 are provided in each of the two movable slots 30. A clamping groove 36 is opened on the top of the flap 11, and movable clamping blocks 39 are provided between the inner walls of the clamping groove 36; and

[0045] An adjustment mechanism is located between the frame 1 and the flip plate 11. The adjustment mechanism is connected to the movable clamping block 39 and the two lifting blocks 32 to move the movable clamping block 39 and the two lifting blocks 32.

[0046] In this invention, the frame 1 is used to support and fix the rotating shaft 10, two rollers 9, four rotating wheels 7, and the adjustment mechanism. The rotating shaft 10 is used to support and fix the flip plate 11. The fixing block 31 is used to clamp the semi-finished and finished artificial quartz stone slabs. The two movable slots 30 are used to accommodate two lifting blocks 32. The two lifting blocks 32 clamp the semi-finished artificial quartz stone slabs by moving towards the movable clamping block 39. The clamping slot 36 is used to accommodate the movable clamping block 39 and two guide posts 42. The movable clamping block 39 is used to block the movement of the semi-finished artificial quartz stone slabs, so that the semi-finished artificial quartz stone slabs can move in one direction. The adjustment mechanism is connected to the movable clamping block 39 and the two lifting blocks 32 to move the movable clamping block 39 and the two lifting blocks 32.

[0047] The adjustment mechanism includes a pushing component, a connecting rod component, an elastic component, a lifting component, and a guiding component. The lifting component is located at the bottom of the flap 11 and is connected to two lifting blocks 32. The elastic component is located at the top of the flap 11 and is connected to the movable clamping block 39. The connecting rod component is located between the inner walls of the frame 1 and is connected to the flap 11. The pushing component is located between the inner walls of the frame 1 and is connected to the connecting rod component.

[0048] In this invention, the lifting component is used to push the two lifting blocks 32 to move within the two movable slots 30, the elastic component is used to push the movable clamping block 39 closer to the fixed clamping block 31, the connecting rod component is used to push the flip plate 11 and the semi-finished artificial quartz stone slab material to tilt, and the pushing component is used to provide power for tilting the semi-finished artificial quartz stone slab material.

[0049] The elastic component includes a spring sleeve 37, an elastic insert rod 38, a reinforcing spring 41, and a guide post 42. Two guide posts 42 are provided, and the two guide posts 42 are fixedly connected between the inner walls of the clamping groove 36 and pass through the movable clamping block 39. Two spring sleeves 37 are provided, and the two spring sleeves 37 are fixedly connected to the bottom of the flap 11 and are located on one side of the clamping groove 36. Two elastic insert rods 38 are provided, and the two elastic insert rods 38 are movably inserted between the inner walls of the two spring sleeves 37. Two reinforcing springs 41 are provided, and the two reinforcing springs 41 are sleeved on the circumferential surface of the two elastic insert rods 38 and are located between the inner walls of the two spring sleeves 37.

[0050] In this invention, two guide posts 42 are used to support the sliding of the movable clamping block 39. During feeding, the movable clamping block 39 approaches the movable groove 30 to lift one end of the semi-finished artificial quartz slab. During feeding, the movable clamping block 39, the fixed clamping block 31, and the two lifting blocks 32 clamp and fix the semi-finished artificial quartz slab. Two spring sleeves 37 are used to accommodate two elastic inserts 38 and two reinforcing springs 41. The two elastic inserts 38 push the movable clamping block 39 to reciprocate within the clamping groove 36 by slidingly engaging with the two spring sleeves 37. The two reinforcing springs 41 push the movable clamping block 39 closer to the fixed clamping block 31. During feeding, two conveyor belts 8 push the semi-finished artificial quartz slab onto the top of the frame 1. During the unidirectional movement, the movable clamping block 39 first lifts one end of the semi-finished artificial quartz stone slab. Then, the semi-finished artificial quartz stone slab moves between the fixed clamping block 31 and the movable clamping block 39. After that, one end of the semi-finished artificial quartz stone slab approaches and inserts into the inner wall of the fixed clamping block 31. Finally, the two reinforcing springs 41 push the movable clamping block 39 closer to the movable groove 30, so that the fixed clamping block 31 and the movable clamping block 39 horizontally move and clamp the semi-finished artificial quartz stone slab, thereby preventing the semi-finished artificial quartz stone slab from falling off. This ensures that the semi-finished artificial quartz stone slab will not fall off or break when tilted, improving the safety of the artificial quartz stone conveying platform when tilting the artificial quartz stone slab.

[0051] The lifting assembly includes a top rod 33, a reciprocating frame 34, and a second electric push rod 35. There are two top rods 33, which are fixedly connected to the side of the lifting block 32. The other ends of the two top rods 33 are inserted into the flap 11. The extended ends of the two top rods 33 extend to the inner wall of the clamping groove 36, but are not connected to the clamping groove 36. The second electric push rod 35 is fixedly connected to the bottom of the flap 11. The reciprocating frame 34 is fixedly connected to the output end of the second electric push rod 35 and is connected to the two lifting blocks 32.

[0052] In this invention, two push rods 33 slide within the frame 1, supporting and fixing two lifting blocks 32. Simultaneously, the two push rods 33 also counteract the compressive force of the two reinforcing springs 41, pushing the movable clamping block 39 away from the fixed clamping block 31, thus releasing the clamping restriction on the semi-finished single piece of artificial quartz slab. The second electric push rod 35, through the contraction of its output end, pushes the reciprocating frame 34 to reciprocate. The reciprocating frame 34 pulls the two lifting blocks 32 within the movable groove 30. During the clamping process of the semi-finished single piece of artificial quartz slab, the output end of the second electric push rod 35 extends and retracts, pushing and pulling the reciprocating frame 34, which in turn pulls the lifting blocks 32 within the two movable grooves 30. The two lifting blocks 32 move within the groove 30, moving between the fixed clamping block 31 and the flip plate 11. The two lifting blocks 32 approach one side of the semi-finished single artificial quartz stone slab, assisting in clamping the semi-finished single artificial quartz stone slab. When the two lifting blocks 32 are aligned with the fixed clamping block 31, one side of the semi-finished single artificial quartz stone slab is pushed out from the fixed clamping block 31. At the same time, the two lifting blocks 32 push the two top rods 33 closer to the movable clamping block 39. The two top rods 33 are close to the movable clamping block 39, and the two top rods 33 push the movable clamping block 39 to reset, releasing the clamping restriction on the semi-finished single artificial quartz stone slab, facilitating the rapid unloading of the semi-finished single artificial quartz stone slab.

[0053] The pushing assembly includes a fixed plate 2, a slide rail 20, a limiting groove 21, a lead screw 22, a rotating motor 23, a slider 24, and a limiting block 25. The fixed plate 2 is fixedly connected to the inner wall of the frame 1. The slide rail 20 is fixedly connected to the top of the fixed plate 2. Two limiting grooves 21 are provided, which are opened at the two side ends of the slide rail 20. Both limiting grooves 21 are connected to the inner wall of the slide rail 20. The lead screw 22 is rotatably connected to the inner wall of the slide rail 20. One end of the lead screw 22 extends to the side end of the slide rail 20. The rotating motor 23 is fixedly connected to the side end of the slide rail 20. The output end of the rotating motor 23 is fixedly connected to the extension end of the lead screw 22. The slider 24 is sleeved on the circumferential surface of the lead screw 22 and is located between the inner walls of the slide rail 20. Two limiting blocks 25 are provided. The two limiting blocks 25 slide between the inner walls of the two limiting grooves 21 and are connected to the slider 24.

[0054] In this invention, the fixing plate 2 supports and fixes the slide rail 20, which accommodates the lead screw 22 and the slider 24. The slide rail 20 also supports and fixes the rotary motor 23. Two limiting grooves 21 accommodate the sliding of two limiting blocks 25. The lead screw 22, through sliding engagement with the slider 24, pushes the slider 24 to reciprocate within the slide rail 20. The rotary motor 23 drives the lead screw 22 to rotate, and the slider 24 drives the second transition block 26 to reciprocate. The limiting blocks 25, through sliding engagement with the two limiting grooves 21, guide and restrict the movement of the slider 24. When tilting the flip plate 11 and the semi-finished single artificial quartz slab, the rotary motor 23 is powered on and started. The output end of the rotary motor 23 drives the lead screw 22 to rotate. 22 pushes the slider 24 to reciprocate within the slide rail 20 through sliding cooperation with the slider 24. The reciprocating movement of the slider 24 pushes and pulls the connecting rod assembly, providing power for the tilting of the flip plate 11 and the semi-finished artificial quartz stone slab. At the same time, the self-locking property of the screw 22 and the slider 24 ensures that the tilting movement of the semi-finished artificial quartz stone slab is stable and uniform, realizing the smooth tilting of the artificial quartz stone conveying platform on the artificial quartz stone slab, increasing the tilting capacity of the transport platform on the semi-finished artificial quartz stone slab, so that the transport platform can tilt and stack the semi-finished artificial quartz stone slab on the rack, reducing the difficulty of stacking the semi-finished artificial quartz stone slab, and simultaneously placing the semi-finished artificial quartz stone slab on the rack at an angle, reducing the cost of tilting and stacking the semi-finished artificial quartz stone slab.

[0055] The linkage assembly includes a base frame 14, a slide bar 15, a guide block 16, a counterweight block 17, a first adapter block 18, a push-pull rod 19, and a second adapter block 26. The base frame 14 is fixedly connected to the bottom of the flip plate 11. There are two slide bars 15, which are fixedly connected between the inner walls of the base frame 14. The guide block 16 is fitted onto the circumferential surface of the two slide bars 15 and slides between the inner walls of the base frame 14. The counterweight block 17 is fixedly connected to the bottom of the guide block 16 and is located on the lower side of the base frame 14. The first adapter block 18 is fixedly connected to the bottom of the guide block 16. The second adapter block 26 is fixedly connected to the top of the slider 24. The push-pull rod 19 is rotatably connected between the first adapter block 18 and the second adapter block 26 via a hinge.

[0056] In this invention, the base frame 14 is used to accommodate two sliding rods 15 and a guide block 16. The two sliding rods 15 are used to support the sliding of the guide block 16. The guide block 16 is used to support and fix the first transition block 18 and the counterweight block 17. The counterweight block 17 changes the center of gravity position of the artificial quartz stone slab semi-finished product and the flip plate 11 by moving, reducing the occurrence of the artificial quartz stone slab semi-finished product falling off due to the shift of the center of gravity during the tilting process. At the same time, it offsets the vibration caused by the instantaneous reduction of the load on the flip plate 11 when the artificial quartz stone slab semi-finished product falls off, avoids severe friction between the artificial quartz stone slab semi-finished product and the flip plate 11, prevents wear on the surface of the artificial quartz stone slab semi-finished product, and improves the yield of artificial quartz stone slabs.

[0057] The guiding assembly includes two hollow covers 27, arc grooves 28, and eccentric sliders 29. Two hollow covers 27 are provided, which are fitted onto the circumferential surfaces of the two extended ends of the rotating shaft 10, and both hollow covers 27 are fixedly connected to the two side ends of the frame 1. Two arc grooves 28 are provided, which are opened at the two side ends of the hollow covers 27, and the two arc grooves 28 are respectively connected to the inner walls of the two hollow covers 27. Two eccentric sliders 29 are provided, which are fixedly connected to the two extended ends of the rotating shaft 10, and the swing ends of the two eccentric sliders 29 slide between the inner walls of the two arc grooves 28.

[0058] In this invention, two hollow covers 27 are used to accommodate two eccentric sliders 29 and two extended ends of the rotating shaft 10, and two arc grooves 28 are used to accommodate the sliding of the two eccentric sliders 29. The two eccentric sliders 29, through sliding cooperation with the two arc grooves 28, limit the tilt angle of the flip plate 11 and the semi-finished artificial quartz stone slab, so as to avoid the semi-finished artificial quartz stone slab causing the artificial quartz stone conveying platform to tip over due to excessive tilt angle, thereby avoiding the safety hazard of tipping over the artificial quartz stone conveying platform and improving the safety of the artificial quartz stone conveying platform.

[0059] The top of the frame 1 has two receiving slots 4, which are located on both sides of the tilting trough 3. Two rotating wheels 7 are rotatably connected between the inner walls of the two receiving slots 4. Two conveyor belts 8 are fitted on the circumferential surface of the four rotating wheels 7. The bottom of the flip plate 11 is fixedly connected to a fixed frame 5, which corresponds vertically to the tilting trough 3. The top of the fixed frame 5 is fixedly connected to a dual-axis motor 6, which is located between the inner walls of the tilting trough 3. The two output ends of the dual-axis motor 6 extend to the inner walls of the two receiving slots 4, and are fixedly connected to the two rotating wheels 7. The top of the flip plate 11 has two roller slots 43, which are located at the two side ends of the tilting trough 3. Rollers 9 are rotatably connected between the inner walls of the two roller slots 43.

[0060] In this invention, two receiving grooves 4 are used to accommodate two conveyor belts 8 and four rotating wheels 7. The four rotating wheels 7 drive the two conveyor belts 8 to rotate. A fixing frame 5 is used to support and fix a dual-shaft motor 6. The dual-shaft motor 6 drives two of the four rotating wheels 7 to rotate. Two roller grooves 43 are used to accommodate two rollers 9 to rotate. The two rollers 9 assist in supporting the semi-finished artificial quartz stone slab material through rotation. The top of the two rollers 9 is slightly higher than the movable clamping block 39. When feeding material onto the top of the flip plate 11, the dual-shaft motor is energized and started. The two output ends of the dual-axis motor 6 drive two rotating wheels 7 to rotate. The two rotating wheels 7 drive two conveyor belts 8 to roll. The two conveyor belts 8 then drive two other rotating wheels 7 to rotate. The rolling of the two conveyor belts 8 drives the semi-finished artificial quartz stone slab material to move unidirectionally on the top of the fixed plate 2, so that the semi-finished artificial quartz stone slab material moves between the fixed clamping block 31 and the movable clamping block 39, realizing the rapid feeding of the semi-finished artificial quartz stone slab material to the artificial quartz stone feeding platform.

[0061] A laser positioner 40 is installed on the side of the fixed block 31, and the emitting end of the laser positioner 40 extends to the inner wall of the fixed block 31.

[0062] In this invention, the laser positioner 40 is used to emit infrared laser to the semi-finished artificial quartz stone slab between the fixed clamping block 31 and the movable clamping block 39, to detect the accurate position of the semi-finished artificial quartz stone slab in real time, and to provide trigger data for the start-up of various motors and push rods in the artificial quartz stone conveying platform.

[0063] The top of the flap 11 has a through-hole 12, and the bottom of the flap 11 is fixedly connected to a first electric push rod 13, the output end of the first electric push rod 13 extending to the inner wall of the mounting hole 12.

[0064] In this invention, the mounting hole 12 is used to accommodate the output end of the first electric push rod 13. The first electric push rod 13 is used to push the semi-finished artificial quartz stone slab material out from between the fixed clamping block 31 and the movable clamping block 39. During the inclined feeding process, the output end of the first electric push rod 13 pushes the semi-finished artificial quartz stone slab material out from the movable clamping block 39, the fixed clamping block 31 and the two lifting blocks 32, so that the semi-finished artificial quartz stone slab material falls into the material rack that is connected, thereby achieving rapid feeding.

[0065] A method for using an artificial quartz stone conveying platform includes the following steps:

[0066] S1. Loading materials:

[0067] The semi-finished artificial quartz stone slab moves from the side of the frame 1 to the top of the frame 1. The dual-axis motor 6 is powered on and started. The two output ends of the dual-axis motor 6 drive two of the four rotating wheels 7 to rotate. The two rotating wheels 7 drive two conveyor belts 8 to roll. The two conveyor belts 8 then drive the other two rotating wheels 7 to rotate. The two conveyor belts 8 move the semi-finished artificial quartz stone slab in one direction at the top of the frame 1. The movable clamping block 39 lifts one end of the semi-finished artificial quartz stone slab. The semi-finished artificial quartz stone slab moves between the fixed clamping block 31 and the movable clamping block 39. One end of the semi-finished artificial quartz stone slab approaches and inserts into the inner wall of the fixed clamping block 31. Between them, two reinforcing springs 41 push the movable clamping block 39 closer to the semi-finished artificial quartz stone slab. The laser positioner 40 detects that the semi-finished artificial quartz stone slab is approaching and activates the second electric push rod 35. The output end of the second electric push rod 35 extends and pushes the reciprocating frame 34. The reciprocating frame 34 pushes the two lifting blocks 32. The two lifting blocks 32 approach one side of the semi-finished artificial quartz stone slab and assist in clamping the semi-finished artificial quartz stone slab. This allows the fixed clamping block 31, the movable clamping block 39, and the two lifting blocks 32 to horizontally move and clamp the semi-finished artificial quartz stone slab, thereby realizing the feeding of the semi-finished artificial quartz stone slab.

[0068] S2, Sheet tilt:

[0069] After the semi-finished artificial quartz slab material is fed in, the rotating motor 23 is started. The output end of the rotating motor 23 drives the lead screw 22 to rotate. The lead screw 22 pushes and pulls the second adapter block 26 through the sliding engagement with the slider 24. The output end of the second adapter block 26 pushes the first adapter block 18. The first adapter block 18 drives the guide block 16 and the counterweight block 17 to move. The guide block 16 slides between the inner walls of the base frame 14 through the sliding engagement with the two sliding rods 15. When the guide block 16 is close to the rotating shaft 10 and the counterweight block 17 is at the bottom of the rotating shaft 10, the push-pull rod 19 still pushes the first adapter block 18, the guide block 16 and the base frame 14. 14 drives the flip plate 11, rotating shaft 10, fixed block 31, movable clamping block 39, two second electric push rods 35, elastic component, lifting component and artificial quartz stone slab semi-finished product to tilt, so that the fixed block 31 is in contact with the material rack chassis placed on the side of the frame 1. At the same time, when the rotating shaft 10, flip plate 11 and artificial quartz stone slab semi-finished product tilt, the rotating shaft 10 drives the two eccentric sliders 29 to deflect. The two eccentric sliders 29 limit the tilt angle limit of the rotating shaft 10, flip plate 11 and artificial quartz stone slab semi-finished product through sliding cooperation with the two arc grooves 28, so as to realize the tilting of the artificial quartz stone slab semi-finished product.

[0070] S3, stripping:

[0071] After the fixed locking block 31 is aligned with the material rack chassis of frame 1, the second electric push rod 35 is activated by power. The output end of the second electric push rod 35 extends and pushes the reciprocating frame 34. The reciprocating frame 34 pulls the two lifting blocks 32 into the two movable slots 30 for lifting. The two lifting blocks 32 are aligned with the fixed locking block 31. At the same time, the two lifting blocks 32 lift the single artificial quartz stone slab semi-finished product and the two top rods 33. The two top rods 33 push the movable clamping block 39 upward to counteract the compression of the two reinforcing springs 41, releasing the movable clamping block 39 from the single artificial quartz stone slab semi-finished product. The laser positioner 40 detects that the two lifting blocks 32 are aligned with the fixed block 31 and activates the first electric push rod 13. The output end of the first electric push rod 13 extends out of the mounting hole 12 and pushes the single artificial quartz stone slab semi-finished product out from the top of the fixed block 31 and the two lifting blocks 32, so that the single artificial quartz stone slab semi-finished product falls off between the fixed block 31 and the movable clamping block 39, making it convenient for employees to push the artificial quartz stone slab semi-finished product to tilt and stack it on the material rack, thus realizing the unloading of the artificial quartz stone slab.

[0072] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A material conveying platform for artificial quartz stone, characterized in that, include; Frame (1); A rotating shaft (10) is rotatably connected between the inner walls of the frame (1), and both ends of the rotating shaft (10) extend to the two side ends of the frame (1). A flip plate (11) is fixedly connected to the top of the rotating shaft (10), and a fixing block (31) is fixedly connected to the top of the flip plate (11). Two movable slots (30) are opened on the top of the flip plate (11), and lifting blocks (32) are provided in both movable slots (30). A clamping groove (36) is opened on the top of the flip plate (11), and movable clamping blocks (39) are provided between the inner walls of the clamping groove (36). An adjustment mechanism is provided between the frame (1) and the flip plate (11). The adjustment mechanism is connected to the movable clamping block (39) and the two lifting blocks (32) to move the movable clamping block (39) and the two lifting blocks (32). The adjustment mechanism includes a pushing component, a connecting rod component, an elastic component, a lifting component, and a guiding component. The lifting component is located at the bottom of the flap (11) and is connected to two lifting blocks (32). The elastic component is located at the top of the flap (11) and is connected to a movable clamping block (39). The connecting rod component is located between the inner walls of the frame (1) and is connected to the flap (11). The pushing component is located between the inner walls of the frame (1) and is connected to the connecting rod component. The elastic component includes a spring sleeve (37), an elastic rod (38), a reinforcing spring (41), and a guide post (42). Two guide posts (42) are provided, and the two guide posts (42) are fixedly connected between the inner walls of the clamping groove (36), and the two guide posts (42) pass through the movable clamping block (39). Two spring sleeves (37) are provided, and the two spring sleeves (37) are fixedly connected to the bottom of the flip plate (11), and the two spring sleeves (37) are located on one side of the clamping groove (36). Two elastic rods (38) are provided, and the two elastic rods (38) are movably inserted between the inner walls of the two spring sleeves (37). Two reinforcing springs (41) are provided, and the two reinforcing springs (41) are sleeved on the circumferential surface of the two elastic rods (38), and the two reinforcing springs (41) are located between the inner walls of the two spring sleeves (37). The pushing assembly includes a fixed plate (2), a slide rail (20), a limiting groove (21), a lead screw (22), a rotating motor (23), a slider (24), and a limiting block (25). The fixed plate (2) is fixedly connected to the inner wall of the frame (1). The slide rail (20) is fixedly connected to the top of the fixed plate (2). There are two limiting grooves (21), which are located at the two sides of the slide rail (20) and are connected to the inner wall of the slide rail (20). The lead screw (22) is rotatably connected to the slide rail (20). Between the inner walls, one end of the lead screw (22) extends to the side end of the slide rail (20), the rotating motor (23) is fixedly connected to the side end of the slide rail (20), the output end of the rotating motor (23) is fixedly connected to the extension end of the lead screw (22), the slider (24) is sleeved on the circumferential surface of the lead screw (22), the slider (24) is located between the inner walls of the slide rail (20), and two limiting blocks (25) are provided. The two limiting blocks (25) slide between the inner walls of the two limiting grooves (21), and both limiting blocks (25) are connected to the slider (24).

2. The artificial quartz stone conveying platform according to claim 1, characterized in that, The lifting assembly includes a top rod (33), a reciprocating frame (34), and a second electric push rod (35). There are two top rods (33), which are fixedly connected to the side of the lifting block (32). The other ends of the two top rods (33) are inserted into the flap (11). The extension ends of the two top rods (33) extend to the inner wall of the clamping groove (36), and the extension ends of the two top rods (33) are not connected to the clamping groove (36). The second electric push rod (35) is fixedly connected to the bottom of the flap (11). The reciprocating frame (34) is fixedly connected to the output end of the second electric push rod (35), and the reciprocating frame (34) is connected to the two lifting blocks (32).

3. The artificial quartz stone conveying platform according to claim 2, characterized in that, The linkage assembly includes a base frame (14), slide rods (15), guide blocks (16), counterweights (17), a first adapter block (18), a push-pull rod (19), and a second adapter block (26). The base frame (14) is fixedly connected to the bottom of the flap (11). There are two slide rods (15), which are fixedly connected between the inner walls of the base frame (14). The guide block (16) is fitted onto the circumferential surface of the two slide rods (15). Block (16) slides between the inner walls of the base frame (14), the counterweight block (17) is fixedly connected to the bottom of the guide block (16), the counterweight block (17) is located on the lower side of the base frame (14), the first adapter block (18) is fixedly connected to the bottom of the guide block (16), the second adapter block (26) is fixedly connected to the top of the slider (24), and the push-pull rod (19) is rotatably connected between the first adapter block (18) and the second adapter block (26) through a hinge.

4. The artificial quartz stone conveying platform according to claim 3, characterized in that, The guiding assembly includes two hollow covers (27), arc grooves (28), and eccentric sliders (29). There are two hollow covers (27), which are fitted onto the circumferential surfaces of the two extended ends of the rotating shaft (10) and are fixedly connected to the two side ends of the frame (1). There are two arc grooves (28), which are opened at the two side ends of the hollow covers (27) and are respectively connected to the inner walls of the two hollow covers (27). There are two eccentric sliders (29), which are fixedly connected to the two extended ends of the rotating shaft (10) and have their swing ends sliding between the inner walls of the two arc grooves (28).

5. The artificial quartz stone conveying platform according to claim 4, characterized in that, The top of the frame (1) has two receiving slots (4), which are located on both sides of the tilting slot (3). Two rotating wheels (7) are rotatably connected between the inner walls of the two receiving slots (4). Two conveyor belts (8) are fitted on the circumferential surface of the four rotating wheels (7). A fixed frame (5) is fixedly connected to the bottom of the flip plate (11). The fixed frame (5) corresponds vertically to the tilting slot (3). A dual-axis motor (6) is fixedly connected to the top of the fixed frame (5). The dual-axis motor (6) is located between the inner walls of the tilting slot (3). The two output ends of the dual-axis motor (6) extend to the inner walls of the two receiving slots (4) respectively. The two output ends of the dual-axis motor (6) are fixedly connected to the two rotating wheels (7). The top of the flip plate (11) has two roller slots (43), which are located at the two side ends of the tilting slot (3). Rollers (9) are rotatably connected between the inner walls of the two roller slots (43).

6. The artificial quartz stone conveying platform according to claim 5, characterized in that, A laser locator (40) is installed on the side end of the fixed block (31), and the emitting end of the laser locator (40) extends to the inner wall of the fixed block (31).

7. The artificial quartz stone conveying platform according to claim 6, characterized in that, The top of the flap (11) is provided with a mounting hole (12), and the bottom of the flap (11) is fixedly connected with a first electric push rod (13), the output end of the first electric push rod (13) extends to the inner wall of the mounting hole (12).

Citation Information

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