A composite thermal insulation wallboard and processing equipment

Through the design of the clamping nails and wire-bound connection nets of the insulation layer of the outer page, inner page and core board, and combined with special processing equipment, the problem of scattering and unstable connection of the composite insulation wall panels under the alternation of cold and heat is solved, and firm connection and rapid processing are achieved.

CN119754478BActive Publication Date: 2025-07-22JIANGMEN YUYUAN CONSTRUCTION ENGINEERING CO LTD
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Patent Information

Application Number
CN202411934589.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-07-22
Estimated Expiration
2044-12-26

AI Technical Summary

Technical Problem

Existing composite insulation wall panels are prone to gaps when the hot and cold changes alternately, causing skin to be scattered or scattered, and cracks and safety hazards are easily found when simply using filling mortar or glued materials to connect.

Method used

The insulation layer structure of the outer page, inner page and core board is adopted, and the clamping nails are used to tie the connecting net with the steel wire for firm connection, and the clamping nails are closely combined with the building body, and the rapid combination is achieved with special processing equipment.

Benefits of technology

It solves the problem of scattering of composite insulation wall panels during use, and avoids safety hazards of wall falling off through tight connections, achieving rapid and firm wall panel processing and installation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to the technical field of building materials, and in particular to a composite thermal insulation wallboard and processing equipment, which includes an outer panel, an inner panel and a core board thermal insulation layer. A reinforcing mesh is arranged inside the core board thermal insulation layer between the outer panel and the inner panel. Clamping nails are arranged inside the core board thermal insulation layer. The clamping nails penetrate through the inner panel and are connected with a connecting mesh by wire bundling. The clamping nails are clamped with the outer panel, and a conveying motor is fixedly connected to the outer surface of the conveying shell. This application can set buckles on the surface of the outer panel, so that the buckles can be clamped with the clamping nails inside the core board thermal insulation layer, so that the outer panel, the core board thermal insulation layer and the inner panel can be connected by the clamping nails, so that the composite thermal insulation wallboard itself will not fall apart during use, achieving the effect of clamping and firmly connecting each layer of the wallboard, and solving the problem that the thermal insulation wallboard will have gaps, resulting in warping and even falling off during long-term use due to the alternating change of heat and cold.
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Description

Technical Field

[0001] The present application relates to the technical field of building materials, and particularly relates to a composite thermal insulation wall panel and processing equipment. Background Art

[0002] A composite thermal insulation wall panel is a prefabricated building material with a "sandwich" structure, which consists of two panels wrapping an internal thermal insulation core layer. The panels include aluminum alloy plates, profiled steel plates, galvanized steel plates, etc., and the thermal insulation core layer includes polystyrene foam boards, glass wool boards, gypsum board, etc. The composite thermal insulation wall panel is generally used for the outer periphery of the wall and has excellent properties such as heat preservation and heat insulation.

[0003] Through retrieval, Chinese Patent Publication No. CN112081298B discloses a composite thermal insulation wall panel and processing equipment, which includes a first panel, a second panel, and a thermal insulation core layer arranged between the first panel and the second panel. The first panel, the second panel, and the thermal insulation core layer together form a composite thermal insulation board. First connectors and second connectors are respectively arranged on the opposite sides of the composite thermal insulation board, and the general cooperation connection between multiple thermal insulation composite boards at the external wall external corner and non-external corner is realized through the cooperation connection mode between the first connectors and the second connectors;

[0004] Regarding the above related technologies, the inventor believes that the following defects exist:

[0005] Since the thermal insulation wall is set in a "sandwich" structure and the layers are connected by gluing or pressing, gaps will be generated under the alternating change of heat and cold during use, resulting in peeling or even scattering;

[0006] When the thermal insulation wall is connected to the building body, cracks are likely to appear when simply using filling mortar or gluing materials, resulting in the peeling of the wall surface and posing a safety hazard. Summary of the Invention

[0007] In order to solve the problems mentioned in the background art, the present application provides a composite thermal insulation wall panel and processing equipment.

[0008] A composite thermal insulation wall panel and processing equipment provided by the present application adopt the following technical solutions: including an outer page board, an inner page board, and a core board thermal insulation layer. A reinforcing mesh is arranged inside the core board thermal insulation layer between the outer page board and the inner page board. Clamping nails are arranged inside the core board thermal insulation layer. The clamping nails penetrate through the inner page board and are connected with a connecting mesh by steel wire bundling. The clamping nails are clamped with the outer page board;

[0009] It also includes processing equipment for composite thermal insulation wall panels. The processing equipment includes a conveying shell. A conveying motor is fixedly connected to the outer surface of the conveying shell. The output end of the conveying motor is fixedly connected to a linkage gear. A first transport shaft is meshed with the outer surface of the linkage gear. A first conveyor belt is sleeved on the outer surface of the first transport shaft. A second transport shaft is meshed with the surface of the linkage gear. A second conveyor belt is sleeved on the surface of the second transport shaft. The second conveyor belt and the first conveyor belt are on the same horizontal plane. A backing plate is arranged inside the second conveyor belt. The backing plate is fixedly connected to the conveying shell. A slideway shell is fixedly connected to the upper end of the conveying shell. A correction motor is fixedly connected to the outer surface of the slideway shell. The output end of the correction motor is fixedly connected to a correction shaft. The correction shaft is located at the bottom end inside the slideway shell. A stop rod is rotatably connected to the inside of the slideway shell. The stop rod is connected to the correction shaft through a transmission belt. A first pressing column is fixedly connected to the inner top surface of the slideway shell. A pushing shell is fixedly connected to the end face of the conveying shell. A correction plate is fixedly connected to the upper end of the pushing shell. A lifting motor is fixedly connected to the surface of the correction plate. The output end of the lifting motor is fixedly connected to a lifting threaded rod. A lifting plate is threadedly connected to the outer surface of the lifting threaded rod. A misalignment gear is meshed with the surface of the lifting plate. The misalignment gear is rotatably connected to the correction plate. A cutting plate is meshed with the outer surface of the misalignment gear. The cutting plate is slidably connected to the correction plate. A discharge bin is fixedly connected to the end face of the pushing shell. A pushing plate is slidably connected to the inside of the discharge bin. An extrusion plate is slidably connected to the inside of the discharge bin. The extrusion plate is above the pushing plate. An inlet motor is arranged inside the discharge bin. The output end of the inlet motor is fixedly connected to a transmission shaft. The transmission shaft is connected to a conveying belt through a belt. The conveying belt and the extrusion plate are on the same horizontal plane. A second pressing column is arranged at the upper end inside the discharge bin.

[0010] Optionally, the outer page board consists of a flat plate on the surface layer and a buckle. The buckle is snap-connected inside the clamping nail to ensure the integrity of the thermal insulation wall panel.

[0011] Optionally, one end of the clamping nail is an empty shell and the other end is a threaded rod. The clamping nail penetrates through the core board thermal insulation layer and the inner page board, and the threaded rod of the clamping nail makes the connection network tied by steel wires on the surface more firm.

[0012] Optionally, the middle of the first transport shaft is a round shaft, and both ends are straight gears. The gears at both ends of the first transport shaft are meshed with the linkage gear, and both groups of linkage gears are meshed with the second transport shaft.

[0013] Optionally, the slideway shell is in the shape of a square shell. An inclined flat plate is arranged inside the slideway shell, and a blocking key is arranged inside the slideway shell.

[0014] Optionally, the correction shaft consists of a blocking shaft, a worm shaft and a docking gear. The blocking shaft is rotatably connected to the blocking key. Both ends of the blocking shaft are fixedly connected with worm shafts. The thread directions of the worm shafts at both ends of the blocking shaft are opposite. A docking gear is fixedly connected to the end face of the worm shaft. There are two groups of correction shafts, and the docking gears of the two groups of correction shafts are meshed with each other. A pulley is arranged on the surface of one group of correction shafts and the transmission belt is sleeved on the outside.

[0015] Optionally, one end of the shift lever is a round rod and the other end is provided with a pulley. The shift lever is arranged above the inclined plate inside the slideway housing. The first pressing column is arranged above the blocking shaft. A magnetic disk is arranged at the lower end of the first pressing column, and the upper end of the first pressing column is a telescopic rod.

[0016] Optionally, the lifting plate includes a friction plate and a first rack. There are two groups of lifting plates which are symmetrically distributed. The friction plate is slidably connected with the correction plate. A threaded hole is arranged at the upper end of the friction plate. First racks are fixedly connected to both ends of the upper surface of the friction plate. The upper end of the cutting plate is a second rack which is connected with the first rack through a staggered gear. The lower end of the cutting plate is a flat plate. One group of flat plates away from the conveying housing is provided with an inclined surface to facilitate the pushing and extrusion of the wallboard entering the discharge bin.

[0017] Optionally, one end of the pushing plate is a flat plate and the other end is a telescopic rod. One end of the extrusion plate is a triangular plate and the other end is a spring shaft. The triangular plate of the extrusion plate is flush with the conveyor belt. A spring shaft is sleeved outside the spring shaft of the extrusion plate and is slidably connected with the discharge bin.

[0018] In summary, the present application includes the following beneficial technical effects:

[0019] For the composite heat-insulating wallboard and processing equipment thereof, by arranging buckles on the surface of the outer page board, the buckles can be clamped with the clamping nails inside the heat-insulating layer of the core board, so that the outer page board, the heat-insulating layer of the core board and the inner page board can be connected through the clamping nails, and the composite heat-insulating wallboard will not fall apart during use, achieving the effect of clamping and firmly connecting each layer of the wallboard and solving the problem that the heat-insulating wallboard will have gaps, resulting in warping and even falling off due to the alternating change of heat and cold during long-term use.

[0020] For the composite heat-insulating wallboard and processing equipment thereof, by arranging the clamping nails protruding outside the wallboard, the clamping nails can be inserted into the inside of the building body. By arranging a connecting net on the surface of the clamping nails, the wall body and the building body can be tightly connected together through grouting, integrating the wall body and the building body, achieving the effect of tightly combining the heat-insulating wallboard and the building body and solving the problem that cracks are likely to occur when only using filling mortar or bonding materials for connection, resulting in the peeling off of the wall surface and posing a safety hazard.

[0021] For the composite heat-insulating wallboard and processing equipment thereof, by arranging a linkage gear to drive the first transport shaft and the second transport shaft, the inner page board and the reinforcing mesh can be moved to appropriate processing positions. By arranging a correction shaft to rotate and correct the angular position of the clamping nails, it is convenient for docking with the inner page board. By transporting the outer page board and pressing it on the clamping nails and being pushed out by the pushing plate, the main processing of the wall body is completed, achieving the effect of quickly processing and combining into a wallboard and solving the problem that the processing of the composite wallboard is cumbersome and troublesome. Description of the Drawings

[0022] Figure 1 It is a schematic diagram of the overall structure of the thermal insulation wall panel in the embodiment of the present application;

[0023] Figure 2 It is a schematic diagram of the structure of the clamping nail in the embodiment of the present application;

[0024] Figure 3 It is a schematic diagram of the overall structure of the processing equipment in the embodiment of the present application;

[0025] Figure 4 It is a schematic diagram of the structure of the first transport shaft in the embodiment of the present application;

[0026] Figure 5 It is a schematic diagram of the structure of the correction shaft in the embodiment of the present application;

[0027] Figure 6 It is a schematic diagram of the structure of the lifting plate in the embodiment of the present application;

[0028] Figure 7 It is a schematic diagram of the structure of the extrusion plate in the embodiment of the present application;

[0029] Figure 8 It is a schematic diagram of the structure of the pushing plate in the embodiment of the present application;

[0030] Figure 9 It is a schematic diagram of the structure of the discharge bin in the embodiment of the present application;

[0031] Figure 10 It is a schematic diagram of the structure of the cutting-off plate in the embodiment of the present application.

[0032] Description of the drawings: 1. Outer page board; 101. Buckle; 2. Inner page board; 3. Core board insulation layer; 301. Reinforcing mesh; 4. Clamping nail; 5. Connecting mesh; 6. Conveyor shell; 7. Conveyor motor; 8. Linkage gear; 9. First transport shaft; 10. First conveyor belt; 11. Second transport shaft; 12. Second conveyor belt; 13. Pad; 14. Slideway shell; 141. Blocking key; 15. Correction motor; 16. Correction shaft; 161. Blocking shaft; 162. Worm shaft; 163. Docking gear; 17. Stop bar; 18. Transmission belt; 19. Pushing shell; 20. Correction plate; 21. Lifting motor; 22. Lifting threaded rod; 23. Lifting plate; 231. Friction plate; 232. First rack; 24. First pressing column; 25. Misaligned gear; 26. Cutting-off plate; 261. Second rack; 262. Flat plate; 27. Discharge bin; 28. Pushing plate; 29. Extrusion plate; 30. Feeding motor; 31. Transmission shaft; 32. Conveyor belt; 33. Second pressing column. Detailed implementation manners

[0033] The following further elaborates on the present application in conjunction with the attached Figures 1-10 drawings.

[0034] An embodiment of the present application discloses a composite thermal insulation wall panel. As Figures 1-2 shown, it includes an outer panel 1, an inner panel 2 and a core board thermal insulation layer 3. A steel wire mesh 301 is arranged inside the core board thermal insulation layer 3 between the outer panel 1 and the inner panel 2. Clamping nails 4 are arranged inside the core board thermal insulation layer 3. The outer panel 1 is composed of a flat plate on the surface and a buckle 101. The buckle 101 is clamped inside the clamping nail 4 to ensure the integrity of the thermal insulation wall panel. The outer panel 1 is adhesively connected to the core board thermal insulation layer 3 through clamping of the buckle 101 with the clamping nail 4, so that the outer panel 1 will not peel and scatter during use.

[0035] The clamping nail 4 passes through the inner panel 2 and is connected with a connecting net 5 through wire bundling. The clamping nail 4 is clamped with the outer panel 1. One end of the clamping nail 4 is an empty shell and the other end is a threaded rod. The clamping nail 4 passes through the core board thermal insulation layer 3 and the inner panel 2. The threaded rod of the clamping nail 4 makes the connecting net 5 connected by wire bundling on the surface more firm. The clamping nail 4 plays a role of clamping and strengthening when passing through the inner panel 2 and the core board thermal insulation layer 3, and the protruding clamping nail 4 can be inserted into the installed building body, making the wall panel installation more firm.

[0036] An embodiment of the present application discloses a composite thermal insulation wall panel and a processing device. As Figures 3-10 shown, it includes a processing device for the composite thermal insulation wall panel. The processing device includes a conveying shell 6. A conveying motor 7 is fixedly connected to the outer surface of the conveying shell 6. The output end of the conveying motor 7 is fixedly connected with a linkage gear 8. A first conveying shaft 9 is meshed with the outer surface of the linkage gear 8. A first conveyor belt 10 is sleeved on the outer surface of the first conveying shaft 9. A second conveying shaft 11 is meshed with the surface of the linkage gear 8. A second conveyor belt 12 is sleeved on the surface of the second conveying shaft 11. The middle of the first conveying shaft 9 is a round shaft and both ends are straight gears. The gears at both ends of the first conveying shaft 9 are meshed with the linkage gear 8, and both groups of linkage gears 8 are meshed with the second conveying shaft 11. The first conveying shaft 9 can drive the first conveyor belt 10 to rotate by rotation, and can also drive the linkage gears 8 on both sides to rotate simultaneously.

[0037] The second conveyor belt 12 and the first conveyor belt 10 are on the same horizontal plane. A backing plate 13 is arranged inside the second conveyor belt 12. The backing plate 13 is fixedly connected with the conveying shell 6. A slideway shell 14 is fixedly connected to the upper end of the conveying shell 6. A correction motor 15 is fixedly connected to the outer surface of the slideway shell 14. The outer shape of the slideway shell 14 is a square shell. An inclined flat plate is arranged inside the slideway shell 14. A blocking key 141 is arranged inside the slideway shell 14. The slideway shell 14 can make the clamping nail 4 slide inside by arranging an inclined flat plate inside.

[0038] A correction shaft 16 is fixedly connected to the output end of the correction motor 15. The correction shaft 16 is located at the bottom end inside the slideway housing 14. A stop lever 17 is rotatably connected inside the slideway housing 14. The stop lever 17 is connected to the correction shaft 16 through a transmission belt 18. The correction shaft 16 is composed of a blocking shaft 161, a worm shaft 162, and a docking gear 163. The blocking shaft 161 is rotatably connected to the blocking key 141. Both ends of the blocking shaft 161 are fixedly connected with worm shafts 162. The thread directions of the worm shafts 162 at both ends of the blocking shaft 161 are opposite. A docking gear 163 is fixedly connected to the end face of the worm shaft 162. There are two groups of correction shafts 16. The docking gears 163 of the two groups of correction shafts 16 are meshed with each other. A pulley is arranged on the surface of one group of correction shafts 16 and the transmission belt 18 is sleeved on the outside. By setting two groups of correction shafts 16 and rotating them simultaneously, the clamping nails 4 can correct their directions under the influence of gravity between the two groups of correction shafts 16. By setting the thread directions of the worm shafts 162 at both ends of the correction shaft 16 to be opposite, the clamping nails 4 can move to a suitable position on the surface of the correction shaft 16 through the rotation of the correction shaft 16 to facilitate extrusion and descent.

[0039] A first pressing column 24 is fixedly connected to the inner top surface of the slideway housing 14. A pushing shell 19 is fixedly connected to the end face of the conveying shell 6. One end of the stop lever 17 is a round rod and a pulley is arranged at the other end. The stop lever 17 is arranged above the inclined flat plate inside the slideway housing 14. The first pressing column 24 is arranged above the blocking shaft 161. A magnetic disk is arranged at the lower end of the first pressing column 24. The upper end of the first pressing column 24 is a telescopic rod. The stop lever 17 can block the clamping nails 4 and make them slide down one by one to prevent stacking.

[0040] The upper end of the pushing shell 19 is fixedly connected with a correction plate 20. The surface of the correction plate 20 is fixedly connected with a lifting motor 21. The output end of the lifting motor 21 is fixedly connected with a lifting screw rod 22. The outer surface of the lifting screw rod 22 is threadedly connected with a lifting plate 23. The surface of the lifting plate 23 meshes with a misaligned gear 25. The misaligned gear 25 is rotatably connected with the correction plate 20. The outer surface of the misaligned gear 25 meshes with a cutting plate 26. The cutting plate 26 is slidably connected with the correction plate 20. The end face of the pushing shell 19 is fixedly connected with a discharge bin 27. The inner side of the discharge bin 27 is slidably connected with a pushing plate 28. The lifting plate 23 includes a friction plate 231 and a first rack 232. There are two groups of lifting plates 23 distributed symmetrically. The friction plate 231 is slidably connected with the correction plate 20. The upper end of the friction plate 231 is provided with a threaded hole. Both ends of the upper surface of the friction plate 231 are fixedly connected with a first rack 232. The upper end of the cutting plate 26 is a second rack 261 connected to the first rack through the misaligned gear 25. The lower end of the cutting plate 26 is a flat plate 262. One group of flat plates 262 away from the conveying shell 6 is provided with an inclined surface to facilitate pushing and extruding the wallboard into the discharge bin 27. The lifting plate 23 can use the friction plate 231 to lift the tendon net 301, so that the tendon net 301 can be wrapped inside the sprayed foamed heat-insulating material, and use the frame formed by the cutting plate 26 and the correction plate 20 to prevent the problem of the foamed heat-insulating material overflowing. The cutting plate 26 can use the inclined surface on one side to squeeze, push and insert into the gap between the wallboards to facilitate the continuity of processing.

[0041] An extrusion plate 29 is slidably connected to the inner side of the discharge bin 27. The extrusion plate 29 is above the pushing plate 28. An inlet motor 30 is arranged inside the discharge bin 27. The output end of the inlet motor 30 is fixedly connected with a transmission shaft 31. The transmission shaft 31 is connected with a conveyor belt 32 through a belt. The conveyor belt 32 is on the same horizontal plane as the extrusion plate 29. One end of the pushing plate 28 is a flat plate and the other end is a telescopic rod. One end of the extrusion plate 29 is a triangular plate and the other end is a spring shaft. The triangular plate of the extrusion plate 29 is flush with the conveyor belt 32. A spring is sleeved outside the spring shaft of the extrusion plate 29 and is slidably connected with the discharge bin 27. The pushing plate 28 can push the finished heat-insulating wallboard out of the device. The outer page plate 1 can slide on the surface through the extrusion plate 29 so that it is aligned with the clamping nail 4 and then descends to be buckled.

[0042] A second pressing column 33 is arranged at the upper end inside the discharge bin 27.

[0043] When the composite heat-insulating wallboard in the embodiment of the present application is used, the outer page plate 1 is used as the surface wallboard. The clamping nails 4 are inserted into the holes reserved on the surface of the building body, and concrete is used for pouring to wrap the connecting net 5 inside and fix it on the outside of the building body.

[0044] The implementation principle of a composite thermal insulation wall panel and processing equipment in an embodiment of this application is as follows: When in use, first stack the steel bar mesh 301 above the inner panel 2 and place it on the surface of the first conveyor belt 10. Start the conveying motor 7 to drive the linkage gear 8 to rotate, so that the first conveying shaft 9 drives the first conveyor belt 10 to rotate. Drive the second conveying shaft 11 through the linkage gear 8, so that the second conveyor belt 12 rotates simultaneously to move the inner panel 2;

[0045] Pour the clamping nails 4 inside the chute housing 14. Through the inclined plate arranged inside the chute housing 14, the clamping nails 4 slide down. Start the correction motor 15 to drive the correction shaft 16 to rotate. While the correction shaft 16 rotates, drive the blocking rod 17 to rotate through the transmission belt 18, so that the blocking rod 17 blocks the passage of the clamping nails 4, so that the clamping nails 4 fall on the surface of the correction shaft 16 one by one. Affected by the shape of the clamping nails 4, the clamping nails 4 are hung between the two correction shafts 16. Through the rotation of the correction shaft 16, the clamping nails 4 reach one end of the blocking shaft 161 and the blocking key 141. Start the first pressing column 24 to descend close to the clamping nails 4 for magnetic adsorption and press the clamping nails 4 through the steel bar mesh 301 and the inner panel 2 above the second conveyor belt 12. The second conveyor belt 12 continues to drive the steel bar mesh 301 and the inner panel 2 and push them into the inner side of the extrusion shell 19. Start the lifting motor 21 to drive the lifting threaded rod 22 to rotate, so that the lifting threaded rod 22 drives the lifting plate 23 to rise, so that the friction plate 231 drives the steel bar mesh 301 to be lifted from the inner panel 2. At the same time, while the lifting plate 23 rises, the first rack 232 drives the cutting plate 26 to descend through the misaligned gear 25, so that the cutting plate 26 and the correction plate 20 enclose a square. Spray the external foamed heat insulation material on the surface of the inner panel 2, so that the heat insulation material wraps outside the steel bar mesh 301. The wall panel formed by foaming is pushed by the next group of materials into the lower part of the extrusion plate 29 of the discharge bin 27;

[0046] Place the outer panel 1 above the conveyor belt 32. Start the feeding motor 30 to drive the rotation through the transmission shaft 31 to transport the outer panel 1 above the extrusion plate 29. Press the outer panel 1 through the second pressing column 33, so that the extrusion plate 29 compresses the springs on both sides and contracts. The outer panel 1 is pressed and slides down and is initially combined with the clamping nails 4 through the buckle 101 to form a composite heat insulation wall panel. Connect the connecting net 5 and the clamping nails 4 through wire bundling to form a composite heat insulation wall panel.

[0047] The above are all the preferred embodiments of this application. It does not limit the protection scope of this application accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of this application should be covered within the protection scope of this application.

Claims

1. A processing device for composite thermal insulation wall panels, which is used to produce composite thermal insulation wall panels. The composite thermal insulation wall panel includes an outer panel (1), an inner panel (2) and a core board thermal insulation layer (3). A steel wire mesh (301) is arranged inside the core board thermal insulation layer (3) between the outer panel (1) and the inner panel (2). Clamping nails (4) are arranged inside the core board thermal insulation layer (3). The clamping nails (4) penetrate through the inner panel (2) and are connected with a connecting net (5) by steel wire bundling. The clamping nails (4) are clamped with the outer panel (1). The outer panel (1) is composed of a flat plate on the surface and a buckle (101). The buckle (101) is clamped inside the clamping nail (4) to ensure the integrity of the thermal insulation wall panel. One end of the clamping nail (4) is an empty shell and the other end is a threaded rod. The clamping nail (4) penetrates through the core board thermal insulation layer (3) and the inner panel (2). The threaded rod of the clamping nail (4) is used to make the connection of the connecting net (5) bundled with steel wire on the surface more firm. It is characterized in that: The processing equipment for composite thermal insulation wall panels includes a conveying shell (6). A conveying motor (7) is fixedly connected to the outer surface of the conveying shell (6). The output end of the conveying motor (7) is fixedly connected to a linkage gear (8). A first conveying shaft (9) is meshed with the outer surface of the linkage gear (8). A first conveyor belt (10) is sleeved on the outer surface of the first conveying shaft (9). A second conveying shaft (11) is meshed with the surface of the linkage gear (8). A second conveyor belt (12) is sleeved on the surface of the second conveying shaft (11). The second conveyor belt (12) and the first conveyor belt (10) are on the same horizontal plane. A backing plate (13) is arranged inside the second conveyor belt (12). The backing plate (13) is fixedly connected to the conveying shell (6). A slideway shell (14) is fixedly connected to the upper end of the conveying shell (6). A correction motor (15) is fixedly connected to the outer surface of the slideway shell (14). The output end of the correction motor (15) is fixedly connected to a correction shaft (16). The correction shaft (16) is located at the bottom end inside the slideway shell (14). A stop rod (17) is rotatably connected inside the slideway shell (14). The stop rod (17) is connected to the correction shaft (16) through a transmission belt (18). A first pressing column (24) is fixedly connected to the inner top surface of the slideway shell (14). A pushing shell (19) is fixedly connected to the end face of the conveying shell (6). A correction plate (20) is fixedly connected to the upper end of the pushing shell (19). A lifting motor (21) is fixedly connected to the surface of the correction plate (20). The output end of the lifting motor (21) is fixedly connected to a lifting threaded rod (22). A lifting plate (23) is threadedly connected to the outer surface of the lifting threaded rod (22). A misalignment gear (25) is meshed with the surface of the lifting plate (23). The misalignment gear (25) is rotatably connected to the correction plate (20). A cutting-off plate (26) is meshed with the outer surface of the misalignment gear (25). The cutting-off plate (26) is slidably connected to the correction plate (20). A discharge bin (27) is fixedly connected to the end face of the pushing shell (19). A pushing plate (28) is slidably connected inside the discharge bin (27). An extrusion plate (29) is slidably connected inside the discharge bin (27). The extrusion plate (29) is above the pushing plate (28). A feeding motor (30) is arranged inside the discharge bin (27). The output end of the feeding motor (30) is fixedly connected to a transmission shaft (31). The transmission shaft (31) is connected to a conveying belt (32) through a belt. The conveying belt (32) and the extrusion plate (29) are on the same horizontal plane. A second pressing column (33) is arranged at the upper end inside the discharge bin (27).

2. The processing equipment for a composite thermal insulation wallboard according to claim 1, characterized in that: The middle of the first conveying shaft (9) is a round shaft, and both ends are straight gears. The gears at both ends of the first conveying shaft (9) are meshed with the linkage gear (8), and both groups of linkage gears (8) are meshed with the second conveying shaft (11).

3. The processing equipment for a composite thermal insulation wallboard according to claim 1, characterized in that: The slideway shell (14) is in the shape of a square shell. An inclined flat plate is arranged inside the slideway shell (14). A blocking key (141) is arranged inside the slideway shell (14).

4. The processing equipment for a composite thermal insulation wallboard according to claim 3, characterized in that: The correction shaft (16) consists of a blocking shaft (161), a worm shaft (162) and a docking gear (163). The blocking shaft (161) is rotatably connected to the blocking key (141). Worm shafts (162) are fixedly connected to both ends of the blocking shaft (161). The thread directions of the worm shafts (162) at both ends of the blocking shaft (161) are opposite. The docking gear (163) is fixedly connected to the end face of the worm shaft (162). There are two groups of correction shafts (16), and the docking gears (163) of the two groups of correction shafts (16) are meshed with each other. A pulley is arranged on the surface of one group of correction shafts (16), and the transmission belt (18) is sleeved on the outside.

5. The processing equipment for a composite thermal insulation wallboard according to claim 4, characterized in that: One end of the blocking rod (17) is a round rod and the other end is provided with a pulley. The blocking rod (17) is arranged above the inclined flat plate on the inner side of the slideway housing (14). The first pressing column (24) is arranged above the blocking shaft (161). A disk with magnetism is arranged at the lower end of the first pressing column (24). The upper end of the first pressing column (24) is a telescopic rod.

6. The processing equipment for a composite thermal insulation wallboard according to claim 1, characterized in that: The lifting plate (23) includes a friction plate (231) and a first rack (232). There are two groups of lifting plates (23) which are symmetrically distributed. The friction plate (231) is slidably connected to the correction plate (20). Threaded holes are arranged at the upper end of the friction plate (231). First racks (232) are fixedly connected to both ends of the upper surface of the friction plate (231). The upper end of the cutting plate (26) is a second rack (261) which is connected to the first rack through a misaligned gear (25). The lower end of the cutting plate (26) is a flat plate (262). An inclined surface is arranged on the flat plate (262) of the group away from the conveying housing (6) to facilitate pushing and extruding the wallboard entering the discharge bin (27).

7. The processing equipment for a composite thermal insulation wallboard according to claim 1, characterized in that: One end of the pushing plate (28) is a flat plate and the other end is a telescopic rod. One end of the pressing plate (29) is a triangular plate and the other end is a spring shaft. The triangular plate of the pressing plate (29) is flush with the conveyor belt (32). A spring shaft is sleeved outside the spring shaft of the pressing plate (29), and it is slidably connected to the discharge bin (27).

Citation Information

Patent Citations

  • A composite thermal insulation wall panel and processing equipment

    CN112081298B

  • Prefabricated shear wall with interlayer insulation layer and preparing method thereof

    CN105569208A