A fully automatic tile press

The press roller gap is automatically adjusted through the wedge-shaped block and the indicator rotary rod system, which solves the problem of deviation caused by loosening of the upper and lower press rollers of the tile press, and automatically recovers materials through the discharge components, improving operational convenience and production efficiency.

CN116174539BActive Publication Date: 2025-07-08QIANJIANG DUST ABATEMENT EQUIP CO LTD
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Patent Information

Application Number
CN202310276057.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-16
Publication Date
2025-07-08
Estimated Expiration
2043-03-16

AI Technical Summary

Technical Problem

After long-term use of the tile press, the upper and lower pressing rollers are prone to loosening, causing the plate to deviate, which is difficult to adjust and the labor intensity of material recycling.

Method used

The wedge-shaped block and indicator rotary rod system are used to detect the change in the pressure roller gap in real time, automatically adjust and display deviations, and combine the discharge component to achieve automatic material recovery.

Benefits of technology

The pressure roller gap adjustment process is simplified, the production loss of workpiece deviation is reduced, and the labor intensity of workers is reduced through automatic recycling and production efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of tile pressing machines, and discloses a fully automatic tile pressing machine, which includes a frame. A number of groups of press roller pairs are arranged in the frame, including an upper press roller and a lower press roller. Both ends of the upper press roller are rotatably connected to sliding plates on the side plates of the frame. Wedge blocks I are arranged on both sides of the sliding plate. The two wedge blocks I are respectively matched with two wedge blocks II. The wedge blocks II are horizontally slidably connected to the frame on both sides of the sliding plate. The other side surface of the wedge block II is in wedge fit with a wedge block III. The wedge block III is perpendicular to the sliding plate. The two wedge blocks III slidably penetrate through both ends of a limiting plate. The limiting plate is fixed to the side plate of the frame. An indicating rotating rod is hinged to one end far from the wedge block III. The indicating rotating rod is rotatably connected to an indicating plate outside the limiting plate. The present invention has the following advantages and effects: It replaces the cumbersome steps of using a feeler gauge to measure the distance between the upper press roller and the lower press roller in the past, significantly improves the convenience of operation, timely handles the situation of workpiece deviation, and reduces the production losses caused by workpiece deviation.
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Description

Technical Field

[0001] The present invention relates to the technical field of tile pressing machines, and particularly to a fully automatic tile pressing machine. Background Art

[0002] A tile pressing machine is a machine composed of feeding, forming, and post-forming cutting. Its color plate has a flat and beautiful appearance, uniform paint pattern, high strength, and is durable. It is widely used in industrial and civil buildings, such as the roofs and walls of factories, warehouses, stadiums, exhibition halls, and theaters.

[0003] When the tile pressing machine is working, first place the color steel plate to be processed by cold bending and tile pressing between the cold bending and tile pressing rollers, start the power system to make the motor drive the sprocket, and the sprocket drives the cold bending and tile pressing rollers to cold press the color steel plate. Through the rotation of several cold bending and tile pressing rollers and relying on friction to drive the profiled steel to move forward smoothly and slowly, while gradually pressing to form the required arc.

[0004] After the tile pressing machine is used for a long time, the upper and lower pressure rollers will become loose, causing the distance between the rollers in the upper and lower pressure rollers to change, resulting in the phenomenon of the plate running off. Currently, after adjusting the pressure rollers, a feeler gauge is used to measure the distance between the two ends of the upper and lower pressure rollers to ensure that the heights at both ends are the same. Since the number of pressure rollers is large, the adjustment is time-consuming. Therefore, a mechanism that is convenient for observing the reset of the pressure rollers is needed to reduce the operation intensity of workers. In addition, at present, many tile pressing machines do not recycle the color steel plate after cutting it, resulting in additional recycling required by workers and further increasing the labor intensity. Summary of the Invention

[0005] The purpose of the present invention is to provide a fully automatic tile pressing machine, which has the effects of simply and quickly adjusting the gap between the upper and lower pressure rollers to prevent running off, and automatically recycling materials to significantly reduce the labor intensity.

[0006] The above technical purpose of the present invention is achieved through the following technical solutions: It includes a frame, and several groups of pressure roller pairs are arranged in the frame. Each pressure roller pair includes an upper pressure roller and a lower pressure roller. The two ends of the upper pressure roller are rotatably connected to the sliding plates on the side plates of the frame. It is characterized in that: wedge-shaped blocks one are arranged on both sides of the sliding plate, and the two wedge-shaped blocks one are respectively matched with two wedge-shaped blocks two. The wedge-shaped blocks two are horizontally slidably connected to the frame on both sides of the sliding plate. The other side of the wedge-shaped blocks two is matched with wedge-shaped blocks three. The wedge-shaped blocks three are perpendicular to the sliding plate. The two wedge-shaped blocks three slide through both ends of a limiting plate. The limiting plate is fixed to the side plate of the frame. One end of the wedge-shaped block three far from the frame is hinged with an indicating rotating rod, and the indicating rotating rod is rotatably connected to an indicating plate outside the limiting plate.

[0007] By adopting the above technical solution, after each set of pressure rollers has been used for a long time, the sliding plate will show varying degrees of downward movement, causing the distance between the upper and lower pressure rollers on one side to become smaller, resulting in the workpiece running off track during transportation. When the sliding plate slides downward, the wedge-shaped block one on the side of the sliding plate close to the discharge rack also slides downward at this time. This wedge-shaped block one pushes the wedge-shaped block two cooperating with it to slide in the direction of the discharge rack. Since the side of the wedge-shaped block two also cooperates with the wedge-shaped block three, when the wedge-shaped block two slides, it will push the wedge-shaped block three to slide in the limiting plate in the direction away from the sliding plate. Since one end of the wedge-shaped block three is hinged to the indicating rotating rod, the indicating rotating rod is pushed to rotate counterclockwise. When the indicating rotating rod rotates counterclockwise, the pointer at the top of the rotating shaft in the middle of the indicating rotating rod rotates. Since the indicating plate is fixed to the limiting plate and does not move, the pointer is separated from the reset line on the limiting plate at this time. By whether the pointer coincides with the reset line, it can be determined whether the sliding plate slides up and down. When it is found that the sliding plate slides, by rotating the existing rotating rod on the sliding plate, after the pointer coincides with the reset line, the sliding plate can be reset. Through the above settings, the cumbersome steps of using a feeler gauge to measure the distance between the upper and lower pressure rollers in the past are replaced, significantly improving the convenience of operation, promptly handling the situation of the workpiece running off track, and reducing the production losses caused by the workpiece running off track.

[0008] The further setting of the present invention is: a pointer is fixed at the top of the rotating shaft of the indicating rotating rod, a reset line is arranged on the upper surface of the indicating plate, the pointer and the reset line can coincide, and movable through slots are arranged at both ends of the indicating rotating rod, and the wedge-shaped block three is slidably connected in the movable through slots.

[0009] By adopting the above technical solution, the design of the movable through slots gives the indicating rotating rod the space for movement when rotating, ensuring smooth rotation.

[0010] The further setting of the present invention is: connecting short rods are fixed on both sides of the two wedge-shaped blocks two away from each other, the other ends of the connecting short rods are fixed to the inner side of the limiting plate, and a first spring is sleeved outside the connecting short rods, and the first spring drives the wedge-shaped block two to approach the wedge-shaped block one.

[0011] By adopting the above technical solution, the two first springs drive the two wedge-shaped blocks two to closely adhere to the wedge-shaped block one. When the sliding plate slides any length, it can be presented and processed in a timely manner, improving the overall production efficiency.

[0012] A further setting of the present invention is that a discharging assembly is provided at the discharging end of the frame. The discharging assembly includes two discharging frames respectively arranged on both sides of the frame. A driving rod is arranged above the discharging frame. One end of the driving rod slidably penetrates through the connecting block at the top of the rotating disk. The rotating disk is fixedly connected to the output shaft of the first motor located at the bottom of the discharging frame. The other end of the driving rod is hinged with a push rod. The push rod is slidably connected through a sliding square groove. The other end of the push rod is connected with a wedge-shaped pushing block. Wedge-shaped sliding blocks slidably penetrate through the upper and lower sides of the sliding square groove. The wedge-shaped sliding blocks cooperate with the wedge-shaped pushing block. Clamping plates are arranged outside the sliding square groove at both sides of the wedge-shaped sliding blocks. When the wedge-shaped pushing block approaches the clamping plates, it drives the two clamping plates to approach each other.

[0013] By adopting the above technical solution, when the workpiece comes out from the discharging end of the frame and enters the upper end surface of the plate below the two clamping plates on both sides, at this time, the wedge-shaped pushing block on the push rod is the farthest from the clamping plates, and the upper and lower plates of the clamping plates are in a separated state. Then, the first motor is started. The first motor drives the rotating disk to rotate. The rotating disk drives the driving rod to rotate. The driving rod rotates clockwise, driving the push rod to slide towards the clamping plates. As the wedge-shaped pushing block on the driving rod slides, it drives the two wedge-shaped sliding blocks to approach each other, so that the upper and lower parts of the clamping plates approach to stably clamp the workpiece. As the driving rod further rotates clockwise, it drives the entire sliding square groove to slide, pulling out the workpiece to be cut. As the driving rod further rotates clockwise, the driving rod drives the push rod to slide into the sliding square groove. At this time, the upper and lower plates of the clamping plates are separated from each other, and the workpiece falls into the recovery box between the two discharging frames. As the driving rod further rotates clockwise to the starting point, the sliding square groove also slides to the original position closer to the discharging end of the frame. By setting the discharging assembly, automatic recovery of materials is realized, reducing the labor intensity of workers and improving work efficiency.

[0014] A further setting of the present invention is that a feeding frame is provided at the feeding end of the frame. A guiding mechanism is arranged on the feeding frame. The guiding mechanism includes two supporting plates arranged in parallel at both ends of the feeding frame and slidably connected to the feeding frame. The upper end surface of each supporting plate is rotatably connected with a number of guiding wheels.

[0015] By adopting the above technical solution, the distance between the two supporting plates can be adjusted to adapt to workpieces of different sizes, expanding the scope of use. The setting of the guiding wheels can reduce the resistance of the workpiece during movement and facilitate feeding.

[0016] A further setting of the present invention is that a driving assembly is also arranged on the feeding frame. The driving assembly includes a belt perpendicular to the feeding frame. The belt is sleeved and rotatably connected to a driving belt pulley and a driven belt pulley. The two supporting plates are respectively connected to the upper belt and the lower belt. When the belt rotates, it drives the supporting plates to approach and separate. The driving belt pulley is coaxially fixedly connected to the output shaft of the second motor.

[0017] By adopting the above technical solution, the second motor rotates, driving the driving pulley and the driven pulley to rotate, so that the distance between the two support plates changes, which is applicable to workpieces of different sizes.

[0018] A further setting of the present invention is that: a first slider is provided at the bottom of the sliding square groove, and a first sliding rod parallel to the frame is provided on the upper end surface of the discharge rack, and the first slider is slidably connected to the first sliding rod.

[0019] A further setting of the present invention is that: a second spring is sleeved outside the driving rod, the second spring drives the driving rod away from the rotating disk, and an anti-disengagement portion is provided at the end of the driving rod outside the connecting block.

[0020] By adopting the above technical solution, the setting of the anti-disengagement portion avoids the driving rod from disengaging from the connecting block, and the setting of the second spring ensures that the driving rod can push the push rod to slide and push the sliding square groove to slide on the first sliding rod when rotating.

[0021] A further setting of the present invention is that: a second sliding rod is provided on the feeding rack, a second slider is provided on the bottom surface of the support plate, the second slider is slidably connected to the second sliding rod, and a screw rod is threadedly connected to the second slider, and the screw rod intermittently abuts against the second sliding rod.

[0022] By adopting the above technical solution, the setting of the screw rod ensures the stability of the two support plates after determining the distance, strengthens the feeding direction of the workpiece, and reduces the situation of workpiece deviation.

[0023] A further setting of the present invention is that: a plurality of rotating rollers are further provided on the feeding rack, the rotating rollers are parallel to the sliding rod, and the rotating rollers are inclined upward in the direction towards the frame.

[0024] By adopting the above technical solution, the setting of the rotating rollers facilitates the feeding of the workpiece and improves the feeding smoothness.

[0025] The beneficial effects of the present invention are:

[0026] 1. Whether the pointer coincides with the reset line can be used to determine whether the sliding plate slides up and down. When it is found that the sliding plate slides, by rotating the existing rotating rod on the sliding plate, after the pointer coincides with the reset line, the sliding plate can be reset. Through the above setting, the cumbersome steps of using a feeler gauge to measure the distance between the upper pressing roller and the lower pressing roller in the past are replaced, the operation convenience is significantly improved, the situation of workpiece deviation can be timely handled, and the production loss caused by workpiece deviation is reduced.

[0027] 2. By setting the discharge assembly, the automatic recovery of materials is realized, the labor intensity of workers is reduced, and the work efficiency is improved. Description of the Drawings

[0028] To more clearly illustrate the technical solutions in the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0029] Figure 1 It is a schematic structural diagram of the present invention.

[0030] Figure 2 It is a schematic structural diagram of the feeding end in the present invention.

[0031] Figure 3 It is a schematic connection structure diagram of each pair of pressure rollers in the present invention.

[0032] Figure 4 is Figure 3 a schematic structural diagram at the sliding plate in

[0033] Figure 5 is Figure 4 an exploded structural diagram of

[0034] Figure 6 It is a schematic structural diagram of the discharging end of the present invention.

[0035] Figure 7 is Figure 6 a schematic connection structure diagram above the discharging rack in

[0036] In the figure, 1, frame; 2, pair of pressure rollers; 21, upper pressure roller; 22, lower pressure roller; 3, sliding plate; 4, first wedge block; 5, second wedge block; 6, third wedge block; 7, limiting plate; 8, indicating rotating rod; 9, indicating plate; 10, pointer; 11, reset wire; 12, movable through groove; 13, connecting short rod; 14, first spring; 15, discharging rack; 16, driving rod; 17, rotating disk; 18, first motor; 19, push rod; 20, sliding square groove; 21, wedge-shaped push block; 22, wedge-shaped slider; 23, clamping plate; 24, feeding rack; 25, support plate; 26, guide wheel; 27, belt; 28, driving belt pulley; 29, driven belt pulley; 30, second motor; 31, first slider; 32, first sliding rod; 33, second spring; 34, anti-disengagement part; 35, second sliding rod; 36, second slider; 37, rotating roller. Specific embodiments

[0037] The technical solution of the present invention will be clearly and completely described below in conjunction with specific embodiments. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0038] Embodiment, a fully automatic tile press, such as Figures 1-5, including a frame 1, in which several groups of pressure roller pairs 2 are arranged. The pressure roller pair 2 includes an upper pressure roller 21 and a lower pressure roller 22. The two ends of the upper pressure roller 21 are rotatably connected to the sliding plates 3 on the side plates of the frame 1. It is characterized in that: wedge-shaped blocks 4 are arranged on both sides of the sliding plate 3, and the two wedge-shaped blocks 4 are respectively matched with two wedge-shaped blocks 5. The wedge-shaped blocks 5 are horizontally slidably connected to the frame 1 on both sides of the sliding plate 3. The other side surface of the wedge-shaped block 5 is matched with a wedge-shaped block 6. The wedge-shaped block 6 is perpendicular to the sliding plate 3. The two wedge-shaped blocks 6 slidably penetrate through both ends of the limiting plate 7. The limiting plate 7 is fixed to the side plate of the frame 1. One end of the wedge-shaped block 6 far from the frame 1 is hinged with an indicating rotating rod 8. The indicating rotating rod 8 is rotatably connected to an indicating plate 9 outside the limiting plate 7. A pointer 10 is fixed to the top of the rotating shaft of the indicating rotating rod 8. A reset line 11 is arranged on the upper surface of the indicating plate 9. The pointer 10 and the reset line 11 can coincide. Activity through grooves 12 are arranged at both ends of the indicating rotating rod 8. The wedge-shaped block 6 is slidably connected to the activity through grooves 12. Connecting short rods 13 are fixed to both sides of the two wedge-shaped blocks 5 away from each other. The other end of the connecting short rod 13 is fixed to the inner side of the limiting plate 7. A first spring 14 is sleeved outside the connecting short rod 13. The first spring 14 drives the wedge-shaped block 5 to approach the wedge-shaped block 4. When each group of pressure roller pairs 2 is used for a long time, the sliding plate 3 will show different degrees of downward movement, causing the distance between the upper pressure roller 21 and the lower pressure roller 22 on one side to become smaller, resulting in the workpiece running off track during transportation. When the sliding plate 3 slides downward, at this time, the wedge-shaped block 4 on the side of the sliding plate 3 close to the discharge rack 15 also slides downward. This wedge-shaped block 4 pushes the wedge-shaped block 5 matched with it to slide towards the discharge rack 15. Since the side surface of the wedge-shaped block 5 is also matched with the wedge-shaped block 6, when the wedge-shaped block 5 slides, it will push the wedge-shaped block 6 to slide in the limiting plate 7 in a direction away from the sliding plate 3. Since one end of the wedge-shaped block 6 is hinged to the indicating rotating rod 8, the indicating rotating rod 8 is pushed to rotate counterclockwise. When the indicating rotating rod 8 rotates counterclockwise, the pointer 10 at the top of the rotating shaft in the middle of the indicating rotating rod 8 rotates. Since the indicating plate 9 is fixed to the limiting plate 7 and does not move, at this time, the pointer 10 is separated from the reset line 11 on the limiting plate 7. By whether the pointer 10 coincides with the reset line 11, it can be determined whether the sliding plate 3 slides up and down. When it is found that the sliding plate 3 slides, by rotating the existing rotating rod on the sliding plate 3, after the pointer 10 coincides with the reset line 11, the sliding plate 3 can be reset. Through the above settings, the cumbersome steps of using a feeler gauge to measure the distance between the upper pressure roller 21 and the lower pressure roller 22 in the past are replaced, significantly improving the convenience of operation, promptly dealing with the situation of the workpiece running off track, and reducing the production losses caused by the workpiece running off track.

[0039] Such as Figure 1 , 6, as shown in FIGS. 7, a discharging assembly is provided at the discharging end of the frame 1. The discharging assembly includes two discharging frames 15 respectively arranged on both sides of the frame 1. A driving rod 16 is arranged above the discharging frame 15. One end of the driving rod 16 slidably penetrates through a connecting block at the top of the rotating disc 17. The rotating disc 17 is fixedly connected to the output shaft of a first motor 18 located at the bottom of the discharging frame 15. The other end of the driving rod 16 is hinged to a push rod 19. The push rod 19 is slidably connected through a sliding square groove 20. The other end of the push rod 19 is connected to a wedge-shaped pushing block 21. Wedge-shaped sliding blocks 22 are slidably penetrated through the upper and lower sides of the sliding square groove 20. The wedge-shaped sliding blocks 22 cooperate with the wedge-shaped pushing block 21. Clamping plates 23 are arranged outside the sliding square groove 20 where the two wedge-shaped sliding blocks 22 are located. When the wedge-shaped pushing block 21 approaches the clamping plates 23, it drives the two clamping plates 23 to approach each other. A first slider 31 is arranged at the bottom of the sliding square groove 20. A first sliding rod 32 parallel to the frame 1 is arranged on the upper end surface of the discharging frame 15. The first slider 31 is slidably connected in the first sliding rod 32. A second spring 33 is sleeved outside the driving rod 16. The second spring 33 drives the driving rod 16 away from the rotating disc 17. An anti-disengagement portion 34 is arranged at the end of the driving rod 16 outside the connecting block. The setting of the anti-disengagement portion 34 prevents the driving rod 16 from disengaging from the connecting block. The setting of the second spring 33 ensures that the driving rod 16 can push the push rod 19 to slide and push the sliding square groove 20 to slide on the first sliding rod 32 when rotating. When the workpiece comes out from the discharging end of the frame 1 and enters the upper end surface of the plate below the two clamping plates 23 on both sides, at this time, the wedge-shaped pushing block 21 on the push rod 19 is farthest from the clamping plates 23, and the upper and lower plates of the clamping plates 23 are in a separated state. Then, the first motor 18 is started. The first motor 18 drives the rotating disc 17 to rotate. The rotating disc 17 drives the driving rod 16 to rotate. The driving rod 16 rotates clockwise, driving the push rod 19 to slide towards the clamping plates 23. As the wedge-shaped pushing block 21 on the driving rod 16 slides, it drives the two wedge-shaped sliding blocks 22 to approach each other, so that the upper and lower parts of the clamping plates 23 approach to stably clamp the workpiece. As the driving rod 16 further rotates clockwise, it drives the entire sliding square groove 20 to slide, pulling out the workpiece to be cut. As the driving rod 16 further rotates clockwise, the driving rod 16 drives the push rod 19 to slide into the sliding square groove 20. At this time, the upper and lower plates of the clamping plates 23 are separated from each other, and the workpiece falls into the recovery box between the two discharging frames 15. As the driving rod 16 further rotates clockwise to the starting point, the sliding square groove 20 also slides to the original position closer to the discharging end of the frame 1. By setting the discharging assembly, the automatic recovery of materials is realized, the labor intensity of workers is reduced, and the work efficiency is improved.

[0040] As Figures 1-2As shown in the figure, a feed rack 24 is provided at the feed end of the frame 1. A driving assembly is provided on the feed rack 24. The driving assembly includes a belt 27 perpendicular to the feed rack 24. The belt 27 is sleeved and rotatably connected to a driving belt pulley 27 and a driven belt pulley 27. Two support plates 25 are respectively connected to the upper belt 27 and the lower belt 27. When the belt 27 rotates, it drives the support plates 25 to approach and move away from each other. The driving belt pulley 27 is coaxially fixed to the output shaft of the second motor 30. When the second motor 30 rotates, it drives the rotating belt pulley 27 and the driven belt pulley 27 to rotate, so that the distance between the two support plates 25 changes, which is suitable for workpieces of different sizes. A guiding mechanism is provided on the feed rack 24. The guiding mechanism includes two support plates 25 arranged in parallel at both ends of the feed rack 24 and slidably connected to the feed rack 24. Each upper end surface of the support plate 25 is rotatably connected with a plurality of guiding wheels 26. The distance between the two support plates 25 is adjustable to adapt to workpieces of different sizes, expanding the scope of use. The setting of the guiding wheels 26 can reduce the resistance of the workpiece during movement and facilitate feeding.

[0041] As Figure 2 shown, a plurality of rotating rollers 37 are also provided on the feed rack 24. The rotating rollers 37 are parallel to the sliding rod. The rotating rollers 37 are inclined upward in the direction towards the frame 1, which is convenient for feeding the workpiece and improving the smoothness of feeding.

[0042] The working principle of a fully automatic tile press is as follows:

[0043] First, start the second motor 30. When the second motor 30 rotates, it drives the rotating belt pulley 27 and the driven belt pulley 27 to rotate, so that the distance between the two support plates 25 changes. After the distance between the two support plates 25 is adjusted, the screw on the second slider 36 is intermittently abutted against the second sliding rod 35, ensuring the stability of the two support plates 25 after determining the distance, strengthening the feeding direction of the workpiece, and reducing the situation of workpiece deviation. Subsequently, the workpiece is fed.

[0044] By observing whether the pointer 10 coincides with the reset line 11, it can be determined whether the sliding plate 3 slides up and down. When it is found that the sliding plate 3 slides, by rotating the existing rotating rod on the sliding plate 3, after the pointer 10 coincides with the reset line 11, the sliding plate 3 can be reset. Through the above settings, the cumbersome steps of using a feeler gauge to measure the distance between the upper pressing roller 21 and the lower pressing roller 22 in the past are replaced, significantly improving the convenience of operation, timely dealing with the situation of workpiece deviation, and reducing the production losses caused by workpiece deviation.

[0045] After the workpiece comes out from the discharge end of the rack 1, it goes deep into the upper end face of the plate below the two clamping plates 23 on both sides. At this time, the wedge-shaped push block 21 on the push rod 19 is the farthest from the clamping plate 23, and the upper and lower plates of the clamping plate 23 are in a separated state. Then, the first motor 18 is started. The first motor 18 drives the rotating disk 17 to rotate, the rotating disk 17 drives the driving rod 16 to rotate, the driving rod 16 rotates clockwise, driving the push rod 19 to slide towards the clamping plate 23. As the wedge-shaped push block 21 on the driving rod 16 slides, the two wedge-shaped sliders 22 are driven to approach each other, so that the upper and lower parts of the clamping plate 23 approach to stably clamp the workpiece. As the driving rod 16 further rotates clockwise, the whole sliding square groove 20 is driven to slide, pulling out the workpiece to be cut. As the driving rod 16 further rotates clockwise, the driving rod 16 drives the push rod 19 to slide into the sliding square groove 20. At this time, the upper and lower plates of the clamping plate 23 are separated from each other, and the workpiece falls into the recycling box between the two discharge racks 15. As the driving rod 16 further rotates clockwise to the starting point, the sliding square groove 20 also slides to the original position closer to the discharge end of the rack 1. By setting the discharge assembly, the automatic recycling of materials is realized, reducing the labor intensity of workers and improving work efficiency.

Claims

1. A fully automatic tile press, comprising a frame (1), wherein a plurality of groups of press roller pairs (2) are arranged in the frame (1), the press roller pairs (2) include upper press rollers and lower press rollers, and two ends of the upper press rollers are rotatably connected to sliding plates (3) on the side plates of the frame (1), and it is characterized in that: On both sides of the sliding plate (3), there are first wedge blocks (4). The two first wedge blocks (4) are respectively matched with two second wedge blocks (5). The second wedge blocks (5) are horizontally and slidably connected in the frame (1) on both sides of the sliding plate (3). The other side surface of the second wedge blocks (5) is matched with third wedge blocks (6). The third wedge blocks (6) are perpendicular to the sliding plate (3). The two third wedge blocks (6) slidably penetrate through both ends of the limiting plate (7). The limiting plate (7) is fixed on the side plate of the frame (1). One end of the third wedge block (6) far from the frame (1) is hinged with an indicating rotating rod (8). The indicating rotating rod (8) is rotatably connected in an indicating plate (9) outside the limiting plate (7).

2. The full-automatic tile press according to claim 1, wherein: At the top of the rotating shaft of the indicating rotating rod (8), there is a pointer (10). On the upper surface of the indicating plate (9), there is a reset wire (11). The pointer (10) and the reset wire (11) can coincide. At both ends of the indicating rotating rod (8), there are movable through slots (12). The third wedge block (6) is slidably connected in the movable through slots (12).

3. The full-automatic tile press according to claim 2, characterized in that: On both sides of the two second wedge blocks (5) away from each other, there are fixed connecting short rods (13). The other ends of the connecting short rods (13) are fixed inside the limiting plate (7). A first spring (14) is sleeved outside the connecting short rods (13). The first spring (14) drives the second wedge blocks (5) to approach the first wedge blocks (4).

4. An automatic tile press according to claim 3, characterized in that: At the discharging end of the frame (1), there is a discharging assembly. The discharging assembly includes two discharging frames (15) respectively arranged on both sides of the frame (1). Above the discharging frames (15), there is a driving rod (16). One end of the driving rod (16) slidably penetrates through the connecting block at the top of the rotating disc (17). The rotating disc (17) is fixedly connected with the output shaft of a first motor (18) located at the bottom of the discharging frame (1). The other end of the driving rod (16) is hinged with a push rod (19). The push rod (19) is slidably connected through a sliding square groove (20). The other end of the push rod (19) is connected with a wedge-shaped pushing block (21). Wedge-shaped sliding blocks (22) slidably penetrate through the upper and lower sides of the sliding square groove (20). The wedge-shaped sliding blocks (22) are matched with the wedge-shaped pushing block (21). Outside the sliding square groove (20) where the two wedge-shaped sliding blocks (22) are located, there are clamping plates (23). When the wedge-shaped pushing block (21) approaches the clamping plates (23), it drives the two clamping plates (23) to approach each other.

5. The full-automatic tile press according to claim 4, characterized in that: At the feeding end of the frame (1), there is a feeding frame (24). On the feeding frame (24), there is a guiding mechanism. The guiding mechanism includes two supporting plates (25) arranged in parallel at both ends of the feeding frame (24) and slidably connected in the feeding frame (24). On the upper end surface of each supporting plate (25), there are several guiding wheels (26) rotatably connected.

6. The full-automatic tile press according to claim 5, characterized in that: A driving assembly is further provided on the feeding rack (24). The driving assembly includes a belt (27) perpendicular to the feeding rack (24). The belt (27) is sleeved and rotatably connected to a driving belt (27) wheel and a driven belt (27) wheel. The two support plates (25) are respectively connected to the upper layer belt (27) and the lower layer belt (27). When the belt (27) rotates, it drives the support plate (25) to approach and move away. The driving belt (27) wheel is coaxially fixed to the output shaft of the second motor (30).

7. The full-automatic tile press according to claim 6, wherein: A first slider (31) is provided at the bottom of the sliding square groove (20). A first sliding rod (32) parallel to the machine frame (1) is provided on the upper end surface of the discharging rack (15). The first slider (31) is slidably connected to the first sliding rod (32).

8. The full-automatic tile press according to claim 7, characterized in that: A second spring (33) is sleeved outside the driving rod (16). The second spring (33) drives the driving rod (16) away from the rotating disc (17). An anti - detachment portion (34) is provided at the end of the driving rod (16) located outside the connecting block.

9. The full-automatic tile press according to claim 8, wherein: A second sliding rod (35) is provided on the feeding rack (24). A second slider (36) is provided on the bottom surface of the support plate (25). The second slider (36) is slidably connected to the second sliding rod (35). A screw rod is threadedly connected to the second slider (36), and the screw rod intermittently abuts against the second sliding rod (35).

10. A fully automatic tile press according to claim 9, characterized in that: A number of rotating rollers (37) are further provided on the feeding rack (24). The rotating rollers (37) are parallel to the sliding rod, and the rotating rollers (37) are inclined upward in the direction towards the machine frame (1).

Citation Information

Patent Citations

  • Full-automatic tile press

    CN116373369A