Cement tile roll forming machine
By using the drive and cutting device of the cement tile roll forming machine, the instability problem of large-scale cement tile roll forming was solved, and efficient and stable cement tile production was achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HAIAN TIANPENG MACHINERY MFG
- Filing Date
- 2025-04-21
- Publication Date
- 2026-05-29
Smart Images

Figure CN224296101U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cement tile preparation technology, and in particular to a cement tile roll forming machine. Background Technology
[0002] Cement tiles are made by pressing concrete, while roll forming uses an aluminum alloy tile support plate to roll and form cement tiles with well-mixed cement mortar. This continuous conveying method of forming tile blanks requires a roll forming machine to improve the forming efficiency of cement tiles and the production of large quantities of cement tiles.
[0003] In the prior art, such as the patent with publication number CN109109131A, a vibratory cement tile forming machine is disclosed, which includes an upper mold box driven by a stamping mechanism and a lower mold box. The upper mold box includes a movable pressure plate, which is driven and conveyed by the stamping mechanism. The periphery of the movable pressure plate is a side frame, and the upper part of the side frame has a corner connector. The connector is fixed to the movable pressure plate by an elastic device. The lower mold box is fixed to the base by an elastic device II. The lower mold box is an integral structure, and the lower mold box and the upper mold box form a complete mold. The lower mold box is equipped with a vibration compaction device.
[0004] The above structure prevents the formation of air holes in cement tiles during the molding process. However, in the mass production of cement tiles, the batches of cement tiles are unstable during roll forming. Utility Model Content
[0005] In view of this, the purpose of this utility model is to propose a cement tile roll forming machine to solve the problem of instability in the roll forming of large batches of cement tiles during the mass production process.
[0006] To achieve the above objectives, this utility model provides a cement tile roll forming machine, including a frame and a guide rail assembly fixedly installed on the frame. A receiving hopper is fixedly installed at the center of the frame, and a forming structure is provided inside the receiving hopper. The forming structure is used for forming cement mortar on the tile support plate. A driving device is provided on one side of the receiving hopper. The driving device is fixedly installed inside the frame, and a plate mold trolley that carries the tile support plate is fixedly installed inside the driving device. The driving device is used to drive the plate mold trolley to transport the tile support plate into the receiving hopper.
[0007] Two sets of tile cutting devices are provided on the other side of the receiving hopper. The tile cutting devices are connected to the driving device. The driving device drives the tile cutting devices to cut the tiles. The two sets of tile cutting devices are used to cut the tile blank and cut the required tile shape on the tile blank, respectively. A connecting shaft is fixedly connected between the two sets of tile cutting devices. A motion guide rail is slidably installed on one side of each set of tile cutting devices. A side frame is fixedly installed on one side of the motion guide rail. The side frame is fixedly installed on one side of the machine frame.
[0008] A pressure plate device is provided above the drive device. The pressure plate device is fixedly installed on one side of the frame and is used to press down the pressure plate during conveying.
[0009] Preferably, the drive device includes a main drive reducer fixedly installed on one side of the frame, a rotary disk fixedly installed at the output end of the main drive reducer, two sets of chain head wheels fixedly installed on one side of the rotary disk, two sets of chain tail wheels movably installed inside the frame, and the two sets of chain head wheels and the two sets of chain tail wheels are connected by a drive chain. Multiple sets of mounting seats are connected to the outside of the drive chain, and the mounting seats are installed at the bottom of the pressure plate device.
[0010] A connecting rod is eccentrically connected to the other side of the rotating disk, and one end of the connecting rod is connected to the bottom end of the tile cutting device.
[0011] Preferably, the adjacent sets of drive chains are arranged in parallel to each other, and there are at least eight sets of mounting seats, which are equidistantly distributed on the outside of the drive chains.
[0012] Preferably, the forming structure includes a pressure-bearing base fixedly installed on the frame, and frame plate assemblies fixedly installed on both sides of the top of the pressure-bearing base. Pressure rollers and feeding rollers are rotatably installed inside the frame plate assemblies. The adjacent ends of the pressure rollers and feeding rollers are driven by gear meshing. A pressure template is fixedly installed at one end of two adjacent sets of frame plate assemblies, and a space is left between the pressure template and the pressure-bearing base.
[0013] A mold reducer is fixedly installed inside the frame. The output end of the mold reducer is fixedly connected to the other end of the pressure roller through a chain and a sprocket. A chain tensioning device is installed inside the chain.
[0014] Preferably, the outer cross-section of the pressure roller, the pressure template, and the pressure-bearing base are all configured as W-shaped grooves for forming the tile blank, and the top height of the pressure-bearing base is flush with the bottom height of the guide rail assembly.
[0015] Preferably, the tile cutting device includes a connecting frame slidably mounted on an action guide rail. A tile cutting servo motor is fixedly mounted on the top of the connecting frame, and the bottom of the connecting frame is connected to one end of a connecting rod. The output end of the tile cutting servo motor is connected to a spindle wheel, and a connector is eccentrically connected to one end of the spindle wheel. A tile cutting buffer cylinder is fixedly mounted on the bottom end of the connector. A cutter frame plate is movably connected to the output end of the tile cutting buffer cylinder, and water spray components are provided on both sides of the cutter frame plate.
[0016] Preferably, a vertical guide rail is fitted onto one side of the cutter frame plate, and the vertical guide rail is fixedly installed on one side of the connecting frame.
[0017] Preferably, the pressure plate support device includes two sets of hydraulic cylinders fixedly installed on one side of the frame. The output ends of the two sets of hydraulic cylinders are movably connected to a frame. A connecting spindle is movably installed at the end of the frame. Bearing seats are movably installed at both ends of the connecting spindle. The bearing seats are installed on one side of the frame. A base plate is fixedly installed at the end of the frame. Springs are movably connected around the bottom of the base plate. Guide roller frames are fixedly installed at the bottom ends of adjacent springs.
[0018] Preferably, the two adjacent sets of guide roller frames and the plate mold trolley are arranged vertically in correspondence, and multiple bonding rollers are equidistantly distributed inside the guide roller frame.
[0019] Preferably, the exterior of the mold trolley is equipped with multiple sets of rollers, and the interior of the frame is equipped with partitions corresponding to the rollers, with the partitions located on the upper and lower sides of the rollers.
[0020] The beneficial effects of this utility model are:
[0021] Empty tile pallets enter the guide rail assembly on the frame. The drive unit inside the frame drives the mold pusher to move the tile pallets forward. The tile pallet pressing device presses down on the tile pallets to prevent them from tilting and to ensure the direction of movement. At the same time, the mixed cement mortar enters the receiving hopper and falls onto the empty tile pallets. As the tile pallets are conveyed, they enter the forming structure, where the cement mortar is rolled and formed onto the tile pallets. The formed cement tiles are conveyed along with the tile pallets, and the drive unit simultaneously drives the tile cutting device. When the tiles reach the position of the first set of tile cutting devices, the cement tiles are cut into tile blanks according to the dimensions. The second set of tile cutting devices cuts the tile blanks into the required tile shapes. Simultaneously, the tiles are conveyed out of the main machine and into the conveyor line along with the tile pallets. The overall forming efficiency is high and stable, making it suitable for the production of large quantities of cement tiles. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only for this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 This is a three-dimensional structural diagram of the entire utility model;
[0024] Figure 2 This is a side view of the overall structure of this utility model;
[0025] Figure 3 This is a schematic diagram of the overall semi-sectional structure of this utility model;
[0026] Figure 4 This is a three-dimensional structural diagram of the medium-pressure tile support plate device of this utility model;
[0027] Figure 5 This is a three-dimensional structural diagram of the plate mold trolley of this utility model;
[0028] Figure 6 This is a side view of the molding structure in this utility model;
[0029] Figure 7 This is a top view schematic diagram of the molding structure in this utility model;
[0030] Figure 8 This is a side view of the drive device in this utility model.
[0031] Figure 9 This is a top view of the drive device in this utility model;
[0032] Figure 10 This is a three-dimensional structural diagram of the tile-cutting device in this utility model.
[0033] The components in the diagram are labeled as follows: 1. Frame; 2. Guide rail assembly; 3. Drive unit; 31. Tail chain wheel; 32. Drive chain; 33. Main drive reducer; 34. Rotary disc; 35. Chain head wheel; 36. Connecting rod; 37. Mounting base; 4. Plate mold trolley; 5. Pressing tile support plate device; 51. Hydraulic cylinder; 52. Connecting spindle; 53. Bearing seat; 54. Frame; 55. Spring; 56. Guide roller frame; 57. Base plate; 58. Applying roller; 6. Forming structure; 61. Receiving hopper. 62. Frame assembly; 63. Chain tensioning device; 64. Pressure base; 65. Pressing template; 66. Pressure roller; 67. Feeding roller; 68. Mold reducer; 7. Tile cutting device; 71. Tile cutting servo motor; 72. Tile cutting buffer cylinder; 73. Main shaft wheel; 74. Connector; 75. Cutting blade frame plate; 76. Water spray component; 77. Action guide rail; 78. Connecting frame; 79. Vertical guide rail; 8. Connecting shaft; 9. Side frame; 10. Partition plate; 12. Roller. Detailed Implementation
[0034] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments.
[0035] like Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 , Figure 9 , Figure 10As shown, a cement tile roll forming machine includes a frame 1 and a guide rail assembly 2 fixedly installed on the frame 1. A receiving hopper 61 is fixedly installed at the center of the frame 1. A forming structure 6 is provided inside the receiving hopper 61. The forming structure 6 is used for forming cement mortar on the tile support plate. A driving device 3 is provided on one side of the receiving hopper 61. The driving device 3 is fixedly installed inside the frame 1, and a plate mold trolley 4 that carries the tile support plate is fixedly installed inside the driving device 3. The driving device 3 is used to drive the plate mold trolley 4 to transport the tile support plate into the receiving hopper 61.
[0036] Two sets of tile cutting devices 7 are provided on the other side of the receiving hopper 61. The tile cutting devices 7 are connected to the driving device 3. The driving device 3 drives the tile cutting devices 7 to cut the tiles. The two sets of tile cutting devices 7 are used to cut the tile blank and cut the required tile shape on the tile blank, respectively. A connecting shaft 8 is fixedly connected between the two sets of tile cutting devices 7. A motion guide rail 77 is slidably installed on one side of each set of tile cutting devices 7. A side frame 9 is fixedly installed on one side of the motion guide rail 77. The side frame 9 is fixedly installed on one side of the frame 1.
[0037] A pressure plate device 5 is provided above the drive unit 3. The pressure plate device 5 is fixedly installed on one side of the frame 1 and is used to press down the pressure plate of the conveying plate.
[0038] In this embodiment, the empty tile pallet enters the guide rail group 2 on the frame 1. The drive device 3 inside the frame 1 drives the plate mold pusher 4 to move the tile pallet forward. The tile pallet pressing device 5 presses down on the tile pallet to prevent it from tilting up and to ensure the running direction of the tile pallet. At the same time, the mixed cement mortar enters the receiving hopper 61 and falls onto the empty tile pallet. As the tile pallet is conveyed, it enters the forming structure 6, where the cement mortar is rolled and formed on the tile pallet. The formed cement tile is conveyed along with the tile pallet, and the drive device 3 simultaneously drives the tile cutting device 7. When it reaches the position of the first set of tile cutting devices 7, the cement tile is divided into tile blanks according to the size. The second set of tile cutting devices 7 cuts the tile blanks into the required tile shape. At the same time, the tile is conveyed out of the main machine and enters the conveyor line along with the tile pallet. The overall forming efficiency is high and stable, and it is suitable for the production of large batches of cement tiles.
[0039] As one implementation method, such as Figure 3 , Figure 8 , Figure 9 As shown, the drive device 3 includes a main drive reducer 33 fixedly installed on one side of the frame 1. A rotary disk 34 is fixedly installed at the output end of the main drive reducer 33. Two sets of sprocket head wheels 35 are fixedly installed on one side of the rotary disk 34. Two sets of sprocket tail wheels 31 are movably installed inside the frame 1. The two sets of sprocket head wheels 35 and the two sets of sprocket tail wheels 31 are connected by a drive chain 32. Multiple sets of mounting seats 37 are connected to the outside of the drive chain 32. The mounting seats 37 are installed at the bottom of the pressure plate device 5.
[0040] A connecting rod 36 is eccentrically connected to the other side of the rotating disk 34, and one end of the connecting rod 36 is connected to the bottom end of the tile cutting device 7.
[0041] The drive chains 32 are arranged in parallel to each other, and there are at least eight sets of mounting seats 37, which are equidistantly distributed on the outside of the drive chains 32.
[0042] In this embodiment, the main drive reducer 33 drives the rotating disk 34 and the chain head wheel 35 to rotate simultaneously. Since the chain head wheel 35 and the chain tail wheel 31 are connected by the drive chain 32, the drive chain 32 moves back and forth between the chain head wheel 35 and the chain tail wheel 31. At the same time, the plate mold trolley 4 is installed on the mounting base 37 outside the drive chain 32, thereby driving the plate mold trolley 4 to move the plate tray forward.
[0043] At the same time, the connecting rod 36, which is eccentrically connected to the outer side of the rotating disk 34, swings. The connecting rod 36 drives the tile cutting device 7 to perform reciprocating linear motion. When the tile cutting device 7 reaches the position, it begins the tile cutting operation.
[0044] As one implementation method, such as Figure 2 , Figure 3 , Figure 6 , Figure 7 As shown, the forming structure 6 includes a pressure-bearing base 64 fixedly installed on the frame 1. Frame plate assemblies 62 are fixedly installed on both sides of the top of the pressure-bearing base 64. Pressure rollers 66 and feeding rollers 67 are rotatably installed inside the frame plate assemblies 62. The adjacent ends of the pressure rollers 66 and feeding rollers 67 are driven by gear meshing. A pressure template 65 is fixedly installed at one end of two adjacent sets of frame plate assemblies 62. There is a space between the pressure template 65 and the pressure-bearing base 64.
[0045] A mold reducer 68 is fixedly installed inside the frame 1. The output end of the mold reducer 68 is fixedly connected to the other end of the pressure roller 66 through a chain and a sprocket. A chain tensioning device 63 is installed inside the chain.
[0046] The outer sections of the pressure roller 66, the pressure template 65, and the pressure base 64 are all designed to form W-shaped grooves for forming tile blanks. The top height of the pressure base 64 is flush with the bottom height of the guide rail assembly 2.
[0047] In this embodiment, the mold reducer 68 drives the pressure roller 66 to rotate via a chain and sprocket. Under the action of the chain tensioning device 63, the pressure roller 66 and the feeding roller 67 rotate simultaneously. The well-mixed cement mortar enters the receiving hopper 61. After being stirred by the feeding roller 67, the mortar falls evenly onto the tile support plate and enters the pressure roller 66 for pre-rolling along with the empty tile support plate. After being rolled, it enters the pressing mold 65 and is shaped and compacted by the pressing mold. It passes through the W-shaped groove and is then sent out of the receiving hopper 61 along with the tile support plate.
[0048] As one implementation method, such as Figure 1 , Figure 2 ,and Figure 10 As shown, the tile cutting device 7 includes a connecting frame 78 that is slidably mounted on the action guide rail 77. A tile cutting servo motor 71 is fixedly mounted on the top of the connecting frame 78. The bottom of the connecting frame 78 is connected to one end of the connecting rod 36. The output end of the tile cutting servo motor 71 is connected to a spindle wheel 73. One end of the spindle wheel 73 is eccentrically connected to a connector 74. A tile cutting buffer cylinder 72 is fixedly mounted on the bottom of the connector 74. A cutter frame plate 75 is movably connected to the output end of the tile cutting buffer cylinder 72. Water spray components 76 are provided on both sides of the cutter frame plate 75.
[0049] The cutter frame plate 75 is fitted with a vertical guide rail 79 on one side, and the vertical guide rail 79 is fixedly installed on one side of the connecting frame 78.
[0050] In this embodiment, the connecting rod 36 in the drive device 3 drives the tile cutting device 7 to perform reciprocating linear motion. When the connecting frame 78 moves to one end of the action guide rail 77, the tile cutting servo motor 71 drives the main shaft wheel 73 to rotate. The main shaft wheel 73 drives the eccentric connector 74 to rotate. The connector 74 drives the tile cutting buffer cylinder 72 to move downward, forming an up-and-down reciprocating motion. The tile cutting buffer cylinder 72 drives the cutter frame plate 75 to move downward to perform the tile cutting operation. The water spray component 76 sprays water to keep the tile cutting process clean.
[0051] As one implementation method, such as Figure 1 , Figure 2 and Figure 4 As shown, the pressure plate support device 5 includes two sets of hydraulic cylinders 51 fixedly installed on one side of the frame 1. The output ends of the two sets of hydraulic cylinders 51 are movably connected to a frame 54. A connecting spindle 52 is movably installed at the end of the frame 54. Bearing seats 53 are movably installed at both ends of the connecting spindle 52. The bearing seats 53 are installed on one side of the frame 1. A base plate 57 is fixedly installed at the end of the frame 54. Springs 55 are movably connected around the bottom of the base plate 57. Guide roller frames 56 are fixedly installed at the bottom ends of the adjacent springs 55.
[0052] Among them, two adjacent sets of guide roller frames 56 and the plate mold trolley 4 are arranged vertically and vertically, and multiple sticking rollers 58 are equidistantly distributed inside the guide roller frame 56.
[0053] In this embodiment, the hydraulic cylinder 51 drives the frame 54 upward. Since the bottom end of the frame 54 is connected to the bearing seat 53, after the frame 54 is pushed by the hydraulic cylinder 51, the bottom plate 57 at the top of the frame 54 moves downward. The guide roller frame 56 connected by the springs 55 around the bottom plate 57 corresponds to the plate mold trolley 4. When the tile tray is driven and conveyed by the drive device 3, the contact roller 58 in the guide roller frame 56 contacts the tile tray to prevent the tray from tilting up and causing failure, and to ensure the continuity of the tile tray movement.
[0054] As one implementation method, such as Figure 2 , Figure 5 As shown, the exterior of the mold trolley 4 is equipped with multiple sets of rollers 12, and the interior of the frame 1 is equipped with partitions 10 corresponding to the rollers 12. The partitions 10 are located on the upper and lower sides of the rollers 12.
[0055] In this embodiment, the drive chain 32 reciprocates between the head wheel 35 and the tail wheel 31, thereby driving the plate mold trolley 4 to move. The rollers 12 on the outside of the plate mold trolley 4 move inside the upper and lower adjacent partitions 10, ensuring that the plate mold trolley 4 drives the tile tray to move smoothly when the drive chain 32 moves.
[0056] Working principle:
[0057] The empty tile tray enters the guide rail assembly 2 on the frame 1. The drive unit 3 inside the frame 1 drives the rotating disk 34 and the sprocket 35 to rotate simultaneously via the main drive reducer 33. Since the sprocket 35 and the sprocket 31 are connected by a drive chain 32, the drive chain 32 reciprocates between the sprocket 35 and the sprocket 31. At the same time, a mold trolley 4 is mounted on the mounting base 37 outside the drive chain 32, which in turn drives the mold trolley 4 to move the tile tray forward. As the tile tray moves forward, it is propelled by a hydraulic cylinder. 51 drives the upward push frame 54. Since the bottom end of the frame 54 is connected to the bearing seat 53, after the frame 54 is pushed by the hydraulic cylinder 51, the bottom plate 57 at the top of the frame 54 moves downward. The guide roller frame 56 connected by the springs 55 around the bottom plate 57 corresponds to the plate mold trolley 4. When the tile tray is driven and conveyed by the drive device 3, the contact roller 58 in the guide roller frame 56 contacts the tile tray to prevent the tile tray from tilting up and to ensure the running direction of the tile tray until the tile tray is conveyed to the pressure base 64.
[0058] Simultaneously, the mixed cement mortar enters the receiving hopper 61 and falls onto the empty tile tray. As the tray is conveyed, it enters the forming structure 6. The mold reducer 68 drives the pressure roller 66 to rotate via a chain and sprocket. Under the action of the chain tensioning device 63, the pressure roller 66 and the feeding roller 67 rotate simultaneously. The mixed cement mortar enters the receiving hopper 61 and, after being mixed by the feeding roller 67, falls evenly onto the tile tray. Together with the empty tile tray, it enters the pressure roller 66 for pre-rolling. After rolling, it enters the pressing mold 65 for shaping and compaction. Passing through the W-shaped groove, it is then conveyed out of the receiving hopper 61 along with the tile tray. The formed cement tile is conveyed along with the tile tray, and the connecting frame 78 is driven by the connecting rod 36 within the drive device 3 to move along the guide rail 77. As shown in the picture, the two sets of connecting frames 78 are connected by connecting shafts 8, and the two sets of tile cutting devices 7 move synchronously. When the connecting frame 78 moves to one end of the action guide rail 77, the tile cutting servo motor 71 drives the main shaft wheel 73 to rotate. The main shaft wheel 73 drives the eccentric connecting head 74 to rotate. The connecting head 74 drives the tile cutting buffer cylinder 72 to move downward, forming an up-and-down reciprocating motion. The tile cutting buffer cylinder 72 drives the cutting frame plate 75 to move downward to perform tile cutting. When it reaches the position of the first set of tile cutting devices 7, the cement tile is divided into tile blanks according to the size. The second set of tile cutting devices 7 cuts the tile blanks into the required tile shapes. At the same time, the tile blanks are conveyed out of the main machine and into the conveyor line along with the tile pallet. The overall forming efficiency is high and stable, and it is suitable for the production of large batches of cement tiles.
[0059] Those skilled in the art should understand that the discussion of any of the above embodiments is merely exemplary and is not intended to imply that the scope of the present invention (including the claims) is limited to these examples; within the framework of the present invention, the technical features of the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other variations of the different aspects of the present invention as described above, which are not provided in the details for the sake of brevity.
[0060] This utility model is intended to cover all such substitutions, modifications, and variations that fall within the broad scope of the appended claims. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A cement tile roll forming machine, comprising a frame (1) and a guide rail assembly (2) fixedly mounted on the frame (1), characterized in that, A receiving hopper (61) is fixedly installed at the center of the frame (1). A forming structure (6) is provided inside the receiving hopper (61). The forming structure (6) is used for forming cement mortar on the tile tray. A driving device (3) is provided on one side of the receiving hopper (61). The driving device (3) is fixedly installed inside the frame (1). A plate mold trolley (4) that carries the tile tray is fixedly installed inside the driving device (3). The driving device (3) is used to drive the plate mold trolley (4) to transport the tile tray into the receiving hopper (61). Two sets of tile cutting devices (7) are provided on the other side of the receiving hopper (61). The tile cutting devices (7) are connected to the driving device (3). The driving device (3) drives the tile cutting devices (7) to cut the tiles. The two sets of tile cutting devices (7) are used to cut the tile blank and cut the required tile shape on the tile blank, respectively. A connecting shaft (8) is fixedly connected between the two sets of tile cutting devices (7). An action guide rail (77) is slidably installed on one side of each of the two sets of tile cutting devices (7). A side frame (9) is fixedly installed on one side of the action guide rail (77). The side frame (9) is fixedly installed on one side of the frame (1). A pressure plate device (5) is provided above the drive device (3). The pressure plate device (5) is fixedly installed on one side of the frame (1). The pressure plate device (5) is used to press down the pressure plate during conveying.
2. The cement tile roll forming machine according to claim 1, characterized in that, The drive device (3) includes a main drive reducer (33) fixedly installed on one side of the frame (1). A rotating disk (34) is fixedly installed at the output end of the main drive reducer (33). Two sets of chain head wheels (35) are fixedly installed on one side of the rotating disk (34). Two sets of chain tail wheels (31) are movably installed inside the frame (1). The two sets of chain head wheels (35) and the two sets of chain tail wheels (31) are connected by a drive chain (32). Multiple sets of mounting seats (37) are connected to the outside of the drive chain (32). The mounting seats (37) are installed at the bottom of the pressure plate device (5). A connecting rod (36) is eccentrically connected to the other side of the rotating disk (34), and one end of the connecting rod (36) is connected to the bottom end of the tile cutting device (7).
3. A cement tile roll forming machine according to claim 2, characterized in that, The adjacent sets of drive chains (32) are arranged in parallel to each other, and there are at least eight sets of mounting seats (37), which are equidistantly distributed on the outside of the drive chains (32).
4. A cement tile roll forming machine according to claim 2, characterized in that, The forming structure (6) includes a pressure-bearing base (64) fixedly installed on the frame (1). Frame plate assemblies (62) are fixedly installed on both sides of the top of the pressure-bearing base (64). Pressure rollers (66) and feeding rollers (67) are rotatably installed inside the frame plate assemblies (62). The adjacent ends of the pressure rollers (66) and feeding rollers (67) are driven by gear meshing. A pressure template (65) is fixedly installed at one end of two adjacent sets of frame plate assemblies (62). There is a space between the pressure template (65) and the pressure-bearing base (64). A mold reducer (68) is fixedly installed inside the frame (1). The output end of the mold reducer (68) is fixedly connected to the other end of the pressure roller (66) through a chain and a sprocket. A chain tensioning device (63) is provided inside the chain.
5. A cement tile roll forming machine according to claim 4, characterized in that, The outer sections of the pressure roller (66), pressure template (65), and pressure base (64) are all configured as W-shaped grooves for forming tile blanks. The top height of the pressure base (64) is flush with the bottom height of the guide rail assembly (2).
6. A cement tile roll forming machine according to claim 2, characterized in that, The tile cutting device (7) includes a connecting frame (78) slidably mounted on an action guide rail (77). A tile cutting servo motor (71) is fixedly mounted on the top of the connecting frame (78). The bottom of the connecting frame (78) is connected to one end of a connecting rod (36). A spindle wheel (73) is connected to the output end of the tile cutting servo motor (71). A connector (74) is eccentrically connected to one end of the spindle wheel (73). A tile cutting buffer cylinder (72) is fixedly mounted on the bottom end of the connector (74). A cutter frame plate (75) is movably connected to the output end of the tile cutting buffer cylinder (72). Water spray components (76) are provided on both sides of the cutter frame plate (75).
7. A cement tile roll forming machine according to claim 6, characterized in that, A vertical guide rail (79) is fitted onto one side of the cutter frame plate (75), and the vertical guide rail (79) is fixedly installed on one side of the connecting frame (78).
8. A cement tile roll forming machine according to claim 2, characterized in that, The pressure plate support device (5) includes two sets of hydraulic cylinders (51) fixedly installed on one side of the frame (1). The output ends of the two sets of hydraulic cylinders (51) are movably connected to a frame (54). A connecting spindle (52) is movably installed at the end of the frame (54). Bearing seats (53) are movably installed at both ends of the connecting spindle (52). The bearing seats (53) are installed on one side of the frame (1). A base plate (57) is fixedly installed at the end of the frame (54). Springs (55) are movably connected around the bottom of the base plate (57). A guide roller frame (56) is fixedly installed at the bottom end of the adjacent springs (55).
9. A cement tile roll forming machine according to claim 8, characterized in that, The two adjacent sets of guide roller frames (56) and the plate mold trolley (4) are arranged vertically in correspondence. Multiple sticking rollers (58) are evenly distributed inside the guide roller frame (56).
10. A cement tile roll forming machine according to claim 2, characterized in that, The outside of the plate mold trolley (4) is equipped with multiple sets of rollers (12), and the inside of the frame (1) is equipped with partitions (10) corresponding to the rollers (12), with the partitions (10) located on the upper and lower sides of the rollers (12).