Automatic brick laying machine with rope hole interlocking bricks
By designing an automated brick laying machine with rope hole interlocking bricks, the problem of pavement alignment is solved, stable connection and efficient production are achieved, and the aesthetics and practical performance of pavement bricks are improved.
Patent Information
- Application Number
- CN202421992407.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-16
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-08-16
AI Technical Summary
Existing pavement bricks are difficult to align when laying, easily dislocation, poor resistance to deformation and impact, and are prone to loosening and offset after long-term use, affecting aesthetics and practicality.
An automated bricklaying machine with rope hole interlocking bricks is designed. Rope holes are installed on the interlocking bricks through forming devices and opening devices to realize the interlocking connection between bricks and bricks, and fixed by wire ropes to automatically produce interlocking bricks.
The automatic production of interlocking bricks is realized, and there is no need for special alignment during laying, the connection is stable, and it does not loosen when used for a long time, which improves the efficiency and aesthetics of brick laying.
Smart Images

Figure CN223173249U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of bricklaying machines, and particularly relates to an automatic bricklaying machine with rope-hole interlocking bricks.
Background Art
[0002] Pavement bricks are a kind of paving material, which are made of cement, stones, and sand as raw materials through processing, vibration pressing or other forming processes, and are used for paving sidewalks of urban roads, urban squares, etc.
[0003] Existing pavement bricks are generally made in a square shape and consist of a surface layer and a base layer. The above-mentioned square pavement bricks have the following disadvantages:
[0004] 1. When laying bricks, it is not easy to align adjacent pavement bricks and they are prone to dislocation. When laying manually, each brick needs to be aligned one by one, resulting in low laying efficiency and there is also a hidden danger of poor overall anti-deformation and impact resistance.
[0005] 2. After long-term use, phenomena such as loosening, offset, and warping will occur between pavement bricks, which not only affects the beauty of the road surface, but also reduces the practicality of pavement bricks to a certain extent.
[0006] In view of this, in-depth research has been carried out on the above problems in this case, and thus this case has emerged.
Content of the Utility Model
[0007] The utility model aims to solve the above technical problems by providing an automatic bricklaying machine with rope-hole interlocking bricks to realize the automation of brick making with rope-hole interlocking bricks.
[0008] The utility model is realized as follows: an automatic bricklaying machine with rope-hole interlocking bricks includes a forming device for forming interlocking bricks and a hole-opening device for the auxiliary forming device to open rope holes on the interlocking bricks, and the forming device is arranged at the output end of the hole-opening device.
[0009] Further, the hole-opening device includes a top plate, traveling guide rails, a rod group support frame, a guiding support frame, at least one set of hole-opening rod groups, and a rod body driving mechanism; the top plate is horizontally and fixedly assembled inside the main frame; the traveling guide rails include a left guide rail and a right guide rail, and the left guide rail and the right guide rail are respectively fixedly assembled on both sides of the bottom surface of the top plate; one end of the rod group support frame is slidably connected to the left guide rail through a left guide wheel, and the other end is slidably connected to the right guide rail through a right guide wheel; the guiding support frame is arranged in parallel with the rod group support frame and fixedly assembled on the bottom surface of the top plate; the hole-opening rod group includes a first forming rod and a second forming rod, guiding holes for the first forming rod and the second forming rod to pass through are formed on the guiding support frame, one end of the first forming rod is fixedly connected to the rod group support frame, and the other end passes through the guiding hole, one end of the second forming rod is fixedly connected to the rod group support frame, and the other end passes through the guiding hole; the rod body driving mechanism is fixedly assembled on the bottom surface of the top plate, and the output end is fixedly connected to the rod group support frame.
[0010] Further, the guiding support frame is fixedly assembled on the bottom surface of the top plate through a fine-tuning assembly.
[0011] Further, the fine-tuning assembly includes a first connecting plate and a second connecting plate arranged in parallel with each other, and a fine-tuning screw. The first connecting plate is fixedly connected to the guiding support frame, the second connecting plate is fixedly connected to the bottom surface of the top plate through bolts, a first screw hole for the fine-tuning screw to pass through is formed on the first connecting plate, and a second screw hole for the fine-tuning screw to pass through is formed on the second connecting plate.
[0012] Further, the number of the fine-tuning assemblies is two.
[0013] Further, the automatic bricklaying machine further includes a hopper and a distributing trolley. The hopper, the distributing trolley, and the hole-opening device are sequentially arranged from top to bottom inside the main frame; the distributing trolley is slidably assembled above the top plate, and the hopper is fixedly assembled on the main frame.
[0014] Further, the forming device includes a mold frame body. The mold frame body includes at least one brick mold cavity for forming interlocking bricks. The brick mold cavity includes a first inner wall and a second inner wall arranged oppositely. A first boss is formed in the middle of the first inner wall, and a third boss is formed in the middle of the first boss. A second boss is formed in the middle of the second inner wall, and a fourth boss is formed in the middle of the second boss; a first through hole and a second through hole penetrating the mold frame body are formed on the first boss. The first through hole and the second through hole are respectively located on both sides of the third boss. A third through hole and a fourth through hole penetrating the mold frame body are formed on the second boss. The third through hole and the fourth through hole are respectively located on both sides of the fourth boss. The first through hole and the third through hole are arranged oppositely, and the second through hole and the fourth through hole are arranged oppositely.
[0015] Further, before pouring the brick material, the guiding holes, the first through hole, the second through hole, the third through hole, and the fourth through hole are all at the same horizontal height.
[0016] Further, the main body of the mold frame includes two brick mold cavities arranged side by side, and the hole-opening device includes two groups of hole-opening rod groups arranged side by side. The two brick mold cavities are arranged in one-to-one correspondence with the two groups of hole-opening devices.
[0017] Further, the number of the brick mold cavities is any one of 3, 4, 5, and 6, and the number of the hole-opening rod groups is any one of 3 groups, 4 groups, 5 groups, and 6 groups. Any one brick mold cavity is arranged in one-to-one correspondence with any one group of hole-opening rod groups.
[0018] The advantages of the present utility model are as follows:
[0019] 1. The adjacent two interlocking bricks in Embodiment 1 can be interlocked together. The interlocking bricks are provided with rope holes for the steel wire ropes to pass through, so as to fixedly connect multiple interlocking bricks; the interlocking bricks do not need to be specially aligned, and it is easy for the construction workers to snap the first convex block and the second convex block into the interlocking groove, and the brick-laying efficiency is high; the connection between adjacent interlocking bricks is stable, and there will be no loosening, offset, warping and other phenomena after long-term use, and the spacing is beautiful and has practical performance.
[0020] 2. The automatic bricklaying machine in Embodiment 2 is provided with a hole-opening device. Before the forming device pours the brick material, the first forming rod and the second forming rod of the hole-opening device are inserted into the brick mold cavity of the forming device. After the interlocking bricks are formed, the first forming rod and the second forming rod are withdrawn from the brick mold cavity, and finally demolding is performed, realizing the automation of manufacturing the interlocking bricks with steel wire rope holes.
Description of the Drawings
[0021] The following further describes the present utility model with reference to the drawings in conjunction with the embodiments.
[0022] Figure 1 It is a schematic connection structure diagram of multiple interlocking bricks in Embodiment 1.
[0023] Figure 2 It is a schematic structure diagram of the interlocking brick in Embodiment 1.
[0024] Figure 3 It is a schematic structure diagram of the automatic bricklaying machine in Embodiment 2.
[0025] Figure 4 It is a bottom view of the hole-opening device in Embodiment 2.
[0026] Figure 5 It is Figure 4 The enlarged view of part A in
[0027] Figure 6 It is a schematic structure diagram of the forming device and the hole-opening device in Embodiment 2.
[0028] Figure 7 It is a schematic structural diagram of the fine-tuning component in the second embodiment.
[0029] Figure 8 It is a schematic structural diagram of the mold frame body in the second embodiment.
[0030] Figure 9 It is a cross-sectional view of the mold frame body in the second embodiment.
[0031] Figure 10 It is a schematic structural diagram of the horizontal driving mechanism in the second embodiment.
[0032] Bricklaying machine 100, forming device 1, mold frame body 11, brick mold cavity 12, first inner wall 13, first boss 131, third boss 132, first through hole 133, second through hole 134, second inner wall 14, second boss 141, fourth boss 142, third through hole 143, fourth through hole 144, second lifting mechanism 15, hole-opening device 2, top plate 21, traveling guide rail 22, left guide rail 221, right guide rail 222, T-shaped connecting block 223, rod group support frame 23, left guide wheel 231, right guide wheel 232, guide support frame 24, guide hole 241, hole-opening rod group 25, first forming rod 251, second forming rod 252, rod body driving mechanism 26, fine-tuning component 27, first connecting plate 271, second connecting plate 272, fine-tuning screw 273, main frame 3, feeding trolley 4, horizontal driving mechanism 5, rotating shaft 51, short swing arm 52, long swing arm 53, connecting rod 54, driving cylinder 55, hopper 6, auxiliary frame 7, stack bottom plate 8, vibrating table 9, pressing head component 10, first lifting mechanism 101, interlocking brick 200, first side wall 201, second side wall 202, first convex block 203, second convex block 204, interlocking groove 205, rope hole 206, steel wire rope 300.
Detailed implementation manners
[0033] In order to better understand the technical solution of the present invention, the technical solution of the present invention will be described in detail below in conjunction with the specification drawings and specific implementation manners.
[0034] It should be noted here that the orientation or positional relationship indicated by terms such as "center", "longitudinal", "lateral", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing these embodiments and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. In addition, terms such as "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first", "second", etc. may explicitly or implicitly include one or more of such features.
[0035] Embodiment 1
[0036] Please refer to Figure 1 and 2 As shown, this embodiment provides an interlocking brick 200. The interlocking brick 200 includes a first side wall 201 and a second side wall 202 which are oppositely arranged. First bumps 203 and second bumps 204 are respectively formed at both ends of the first side wall 201 and the second side wall 202. Interlocking grooves 205 for accommodating the first bumps 203 and the second bumps 204 are formed in the middle of the first side wall 201 and the second side wall 202. A rope hole 206 penetrating through the first side wall 201 and the second side wall 202 is formed in the interlocking brick 200. The rope hole 206 is used for a steel wire rope 300 to pass through so as to fixedly connect adjacent interlocking bricks 200 together.
[0037] For the interlocking brick 200 of this embodiment, two adjacent ones can be interlocked together. The interlocking brick 200 is provided with a rope hole 206 for the steel wire rope 300 to pass through so as to fixedly connect multiple interlocking bricks 200. When laying the interlocking brick 200, there is no need for special alignment. Construction workers can easily snap the first bumps 203 and the second bumps 204 into the interlocking grooves 205, and the brick-laying efficiency is high. The connection between adjacent interlocking bricks 200 is stable, and phenomena such as loosening, offset, and warping will not occur after long-term use, combining both aesthetics and practical performance.
[0038] Embodiment 2
[0039] Refer to Figures 3 to 10 As shown, this embodiment provides an automatic brick-laying machine 100 with an interlocking brick having a rope hole, which includes a forming device 1 for forming the interlocking brick 200 and a hole-opening device 2 for assisting the forming device 1 to open the rope hole 206 in the interlocking brick 200. The forming device 1 is arranged at the output end of the hole-opening device 2.
[0040] An opening device 2 is provided on the automatic bricklaying machine 100 of this embodiment. Before the forming device 1 pours the brick material, the first forming rod 251 and the second forming rod 252 of the opening device 2 are inserted into the brick mold cavity 12 of the forming device 1. After the interlocking brick 200 is formed, the first forming rod 251 and the second forming rod 252 are withdrawn from the brick mold cavity 12, and finally demolding is performed to realize the automation of brick making for the interlocking brick 200 with a wire rope hole.
[0041] Preferably, referring to Figures 4 to 6 As shown, the opening device 2 includes a top plate 21, a walking guide rail 22, a rod group support frame 23, a guide support frame 24, at least one set of opening rod groups 25, and a rod body driving mechanism 26.
[0042] The top plate 21 is horizontally and fixedly installed in the main frame 3.
[0043] The walking guide rail 22 includes a left guide rail 221 and a right guide rail 222. The left guide rail 221 and the right guide rail 222 are respectively fixedly assembled on both sides of the bottom surface of the top plate 21. To improve the installation stability of the walking guide rail 22, the sides of the left guide rail 221 and the right guide rail 222 are fixedly connected to the main frame 3 through a plurality of equally spaced T-shaped connection blocks 223.
[0044] One end of the rod group support frame 23 is slidably connected to the left guide rail 221 through a left guide wheel 231, and the other end is slidably connected to the right guide rail 222 through a right guide wheel 232.
[0045] The guide support frame 24 is arranged in parallel with the rod group support frame 23 and is fixedly assembled on the bottom surface of the top plate 21.
[0046] The opening rod group 25 includes a first forming rod 251 and a second forming rod 252. A guide hole 241 for the first forming rod 251 and the second forming rod 252 to pass through is formed on the guide support frame 24. One end of the first forming rod 251 is fixedly connected to the rod group support frame 23, and the other end passes through the guide hole 241. One end of the second forming rod 252 is fixedly connected to the rod group support frame 23, and the other end passes through the guide hole 241.
[0047] The rod body driving mechanism 26 is fixedly assembled on the bottom surface of the top plate 21, and the output end is fixedly connected to the rod group support frame 23. Before pouring the brick material, the driving mechanism 26 drives the rod group support frame 23 to slide along the left guide rail 221 and the right guide rail 222, driving the first forming rod 251 to sequentially insert into the first through hole 133 and the third through hole 143, and driving the second forming rod 252 to sequentially insert into the second through hole 134 and the fourth through hole 144.
[0048] Preferably, referring to Figure 6 and 7As shown, the guiding support frame 24 is fixedly assembled to the bottom surface of the top plate 21 through the fine-tuning assembly 27. The fine-tuning assembly 27 is provided for adjusting the vertical height and connection stability of the guiding support frame 24.
[0049] Preferably, the fine-tuning assembly 27 includes a first connecting plate 271 and a second connecting plate 272 which are arranged in parallel with each other, and a fine-tuning screw 273. The first connecting plate 271 is fixedly connected to the guiding support frame 24. The second connecting plate 272 is fixedly connected to the bottom surface of the top plate 21 by bolts. A first screw hole for the fine-tuning screw 273 to pass through is formed on the first connecting plate 271, and a second screw hole for the fine-tuning screw 273 to pass through is formed on the second connecting plate 272. By rotating the fine-tuning screw 273, the gap between the first connecting plate 271 and the second connecting plate 272 is adjusted, thereby finely adjusting the height of the opening rod group 25 to ensure that the guiding hole 241, the first through hole 133, the second through hole 134, the third through hole 143, and the fourth through hole 144 are all at the same horizontal height.
[0050] Preferably, the number of the fine-tuning assemblies 27 is two. Arranging two fine-tuning assemblies 27 can increase the connection strength between the guiding support frame 24 and the bottom surface of the top plate 21.
[0051] Preferably, referring to Figures 3 - 4 As shown, the automatic bricklaying machine 100 further includes a hopper 6 and a distributing trolley 4. The hopper 6, the distributing trolley 4, and the opening device 2 are sequentially arranged from top to bottom inside the main frame 3. The distributing trolley 4 is slidably assembled above the top plate 21, and the hopper 6 is fixedly assembled on the main frame 3. After the raw materials are poured into the hopper 6 and mixed, they enter the distributing trolley 4 to form brick materials. The rod driving mechanism 26 drives the first forming rod 251 and the second forming rod 252 to insert into the third through hole 143 and the fourth through hole 144. Then, the horizontal driving mechanism 5 drives the distributing trolley 4 to slide horizontally onto the die frame main body 11 and pour the brick materials into the brick die cavity 12. Finally, the horizontal driving mechanism 5 drives the distributing trolley 4 to return to its original position.
[0052] Preferably, referring to Figures 6 - 9As shown in the figure, the forming device 1 includes a mold frame body 11. The mold frame body 11 includes at least one brick mold cavity 12 for forming interlocking bricks 200. The brick mold cavity 12 includes a first inner wall 13 and a second inner wall 14 which are oppositely arranged. A first boss 131 is formed in the middle of the first inner wall 13, and a third boss 132 is formed in the middle of the first boss 131. A second boss 141 is formed in the middle of the second inner wall 14, and a fourth boss 142 is formed in the middle of the second boss 141. A first through hole 133 and a second through hole 134 penetrating the mold frame body 11 are formed on the first boss 131. The first through hole 133 and the second through hole 134 are respectively located on both sides of the third boss 132. A third through hole 143 and a fourth through hole 144 penetrating the mold frame body 11 are formed on the second boss 141. The third through hole 143 and the fourth through hole 144 are respectively located on both sides of the fourth boss 142. The first through hole 133 and the third through hole 143 are oppositely arranged, and the second through hole 134 and the fourth through hole 144 are oppositely arranged. By designing the first boss 131 and the second boss 141 on the first inner wall 13 and the second inner wall 14, the first convex block 203 and the second convex block 204 are formed on both sides of the interlocking brick 200. By designing the third boss 132 and the fourth boss 142, the interlocking groove 205 is formed on the first side wall 201 and the second side wall 202. By designing the first through hole 133 and the third through hole 143, the first forming rod 251 can be inserted before pouring the brick material. By designing the second through hole 134 and the fourth through hole 144, the second forming rod 252 can be inserted before pouring the brick material, so as to open the rope hole 206 on the interlocking brick 200.
[0053] Preferably, before pouring the brick material, the guide holes 241, the first through hole 133, the second through hole 134, the third through hole 143, and the fourth through hole 144 are all at the same horizontal height, ensuring the smooth sliding of the first forming rod 251 and the second forming rod 252 and efficient hole opening.
[0054] Before pouring the brick material into the interlocking brick 200, the rod body driving mechanism 26 drives the rod group support frame 23 to slide along the walking guide rail 22, driving the first forming rod 251 to sequentially pass through the guide hole 241 and the first through hole and then enter the third through hole 143, and at the same time driving the second forming rod 252 to sequentially pass through the guide hole 241 and the second through hole and then enter the fourth through hole 144. The rod body driving mechanism 26 adopts a cylinder or an oil cylinder to drive the rod group support frame 23 to horizontally slide along the walking guide rail 22. Preferably, in order to improve the brick making efficiency, the mold frame body 11 includes 2 brick mold cavities 12 arranged side by side, and the hole opening device 2 includes 2 groups of hole opening rod groups 25 arranged side by side. The 2 brick mold cavities 12 are arranged in one-to-one correspondence with the 2 groups of hole opening rod groups 25 arranged side by side.
[0055] Preferably, the number of brick mold cavities 12 can also be any one of 3, 4, 5, 6, or more, and the number of groups of hole-opening rod groups 25 can also be any one of 3 groups, 4 groups, 5 groups, 6 groups, or more groups. Any brick mold cavity 12 is arranged in one-to-one correspondence with any group of hole-opening rod groups 25.
[0056] Preferably, referring to Figure 10 As shown in the figure, it further includes two horizontal driving mechanisms 5 for driving the cloth trolley to slide horizontally. The two horizontal driving mechanisms 5 are respectively assembled on both sides of the vehicle frame 41. The horizontal driving mechanism 5 includes a rotating shaft 51, a short swing arm 52, a long swing arm 53, a connecting rod 54, and a driving cylinder 55. The rotating shaft 51 is fixedly connected to the main frame 3. One end of the short swing arm 52 is connected to the rotating shaft 51, and the other end is connected to the output end of the driving cylinder 55. One end of the long swing arm 53 is connected to the rotating shaft 51, and the other end is rotatably connected to the connecting rod 54. The other end of the connecting rod 54 is fixedly connected to the vehicle frame 41. The driving cylinder 55 pulls the short swing arm 52 to rotate, drives the rotating shaft 51 to rotate, and then drives the long swing arm 53 to rotate. The long swing arm 53 drives the connecting rod 54 to push the vehicle frame 41 to slide.
[0057] Preferably, referring to Figure 1 As shown in the figure, the automatic bricklaying machine 100 further includes a sub-frame 7. The sub-frame 7 and the main frame 3 are arranged side by side. The sub-frame 7 includes a stack bottom plate 8 provided below the mold frame body 11, a vibration table 9 provided below the stack bottom plate 8, a pressing head component 10 provided above the mold frame body 11, a first lifting mechanism 101 for driving the pressing head component 10 to lift and lower, and a second lifting mechanism 15 for driving the mold frame body 11 to lift and lower. The vibration table 9 is fixedly assembled at the bottom of the sub-frame 7, and the stack bottom plate 8 is assembled on the vibration table 9. The vibration table 9, the pressing head component 10, the first lifting mechanism 101, and the second lifting mechanism 15 are all conventional structures and will not be elaborated here.
[0058] The brick-making process of the automatic bricklaying machine 100 with rope-hole interlocking bricks in this embodiment includes the following steps:
[0059] Step 1: After the raw materials are poured into the hopper 6 and mixed, they enter the cloth trolley 4 and are mixed to form brick materials.
[0060] Step 2: Before pouring the brick materials, the second lifting mechanism 15 drives the mold frame body 11 to descend and fit onto the stack bottom plate 8 so that the guide holes 241, the first through hole, the second through hole, the third through hole 143, and the fourth through hole 144 are all at the same horizontal height. The rod driving mechanism 26 drives the first forming rod 251 and the second forming rod 252 to insert into the third through hole 143 and the fourth through hole 144. Then, the horizontal driving mechanism 5 drives the cloth trolley 4 to slide horizontally onto the mold frame body 11 and pour the brick materials into the brick mold cavity 12. Finally, the horizontal driving mechanism 5 drives the cloth trolley 4 to return to its original position.
[0061] Step 3: The vibrating table 9 vibrates to cause the air bubbles doped in the brick material in the brick mold cavity 12 to overflow, and the first lifting mechanism 101 drives the pressing head component 10 to descend to cover the brick mold cavity 12 and press and form it;
[0062] Step 4: Open the mold. The first lifting mechanism 101 first drives the pressing head component 10 to rise, and then the second lifting mechanism 15 drives the mold frame main body 11 to rise by at least the height of one brick. The rod driving mechanism 26 drives the first forming rod 251 and the second forming rod 252 to withdraw from the mold frame main body 11, and thus the production of the rope-hole interlocking brick 200 can be completed.
[0063] Although the specific embodiments of the present invention have been described above, those skilled in the art should understand that the specific embodiments we described are illustrative rather than used to limit the scope of the present invention. Equivalent modifications and variations made by those skilled in the art in accordance with the spirit of the present invention should be covered by the scope protected by the claims of the present invention.
Claims
1. An automatic bricklaying machine with rope-hole interlocking bricks, characterized in that: It includes a forming device for forming interlocking bricks and a hole-opening device for the auxiliary forming device to open rope holes on the interlocking bricks. The forming device is arranged at the output end of the hole-opening device; The forming device includes a die frame body. The die frame body includes at least one brick die cavity for forming interlocking bricks. The brick die cavity includes a first inner wall and a second inner wall arranged oppositely. A first boss is formed in the middle of the first inner wall, and a third boss is formed in the middle of the first boss. A second boss is formed in the middle of the second inner wall, and a fourth boss is formed in the middle of the second boss. A first through hole and a second through hole penetrating the die frame body are formed on the first boss. The first through hole and the second through hole are respectively located on both sides of the third boss. A third through hole and a fourth through hole penetrating the die frame body are formed on the second boss. The third through hole and the fourth through hole are respectively located on both sides of the fourth boss. The first through hole and the third through hole are arranged oppositely, and the second through hole and the fourth through hole are arranged oppositely.
2. The automatic bricklaying machine with rope-hole interlocking bricks according to claim 1, characterized in that: The hole-opening device includes a top plate, a walking guide rail, a rod group support frame, a guiding support frame, at least one group of hole-opening rod groups, and a rod body driving mechanism; The top plate is horizontally fixedly assembled inside the main frame; The walking guide rail includes a left guide rail and a right guide rail. The left guide rail and the right guide rail are respectively fixedly assembled on both sides of the bottom surface of the top plate; One end of the rod group support frame is slidably connected to the left guide rail through a left guide wheel, and the other end is slidably connected to the right guide rail through a right guide wheel; The guiding support frame is arranged in parallel with the rod group support frame and fixedly assembled on the bottom surface of the top plate; The hole-opening rod group includes a first forming rod and a second forming rod. A guiding hole for the first forming rod and the second forming rod to pass through is formed on the guiding support frame. One end of the first forming rod is fixedly connected to the rod group support frame, and the other end passes through the guiding hole. One end of the second forming rod is fixedly connected to the rod group support frame, and the other end passes through the guiding hole; The rod body driving mechanism is fixedly assembled on the bottom surface of the top plate, and the output end is fixedly connected to the rod group support frame.
3. The automated bricklaying machine with rope-hole interlocking bricks according to claim 2, characterized in that: The guiding support frame is fixedly assembled on the bottom surface of the top plate through a fine-tuning component.
4. The automatic bricklaying machine with rope-hole interlocking bricks according to claim 3, wherein: The fine-tuning component includes a first connecting plate and a second connecting plate arranged in parallel with each other, and a fine-tuning screw. The first connecting plate is fixedly connected to the guiding support frame. The second connecting plate is fixedly connected to the bottom surface of the top plate through bolts. A first screw hole for the fine-tuning screw to pass through is formed on the first connecting plate, and a second screw hole for the fine-tuning screw to pass through is formed on the second connecting plate.
5. The automated bricklaying machine with rope-hole interlocking bricks according to claim 4, characterized in that: The number of the fine-tuning components is two.
6. The automatic bricklaying machine with rope-hole interlocking bricks according to any one of claims 2-5, characterized in that: The automatic bricklaying machine further includes a hopper and a cloth trolley. The hopper, the cloth trolley, and the hole-opening device are arranged in sequence from top to bottom inside the main frame. The cloth trolley is slidably assembled above the top plate, and the hopper is fixedly assembled on the main frame.
7. The automatic bricklaying machine with rope-hole interlocking bricks according to claim 6, characterized in that: Before pouring brick materials, the guiding hole, the first through hole, the second through hole, the third through hole, and the fourth through hole are all at the same horizontal height.
8. The automatic bricklaying machine with rope-hole interlocking bricks according to claim 7, characterized in that: The die frame body includes 2 brick die cavities arranged side by side, and the hole-opening device includes 2 groups of hole-opening rod groups arranged side by side. The 2 brick die cavities are arranged in one-to-one correspondence with the 2 groups of hole-opening devices.
9. The automatic bricklaying machine with rope-hole interlocking bricks according to claim 8, characterized in that: The number of the brick mold cavities is any one of 3, 4, 5, and 6, and the number of the opening rod groups is any one of 3 groups, 4 groups, 5 groups, and 6 groups. Any one brick mold cavity is arranged in one-to-one correspondence with any one group of opening rod groups.