Building composite board with heat preservation function and production process thereof

By setting up connecting columns and grooves on the insulation rock wool board and implanting and extruding using automation equipment, the problem of poor connectivity of the rock wool board is solved, and the strength and processing efficiency of the insulation composite board are improved.

CN120363553AInactive Publication Date: 2025-07-25ANHUI ZHONGHUI INTEGRATED HOUSING TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510537040.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2025-07-25
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the production process of existing insulation composite panels, the connection between rock wool panels is poor, resulting in insufficient overall strength, low production automation and low processing efficiency.

Method used

By setting up connection columns and connection grooves on the insulation rock wool board, and using the connector implantation mechanism and splicing composite mechanism, the automatic connection between the insulation rock wool board and the aluminum board and integrated extrusion molding are realized.

Benefits of technology

It improves the overall strength and processing efficiency of the insulation composite board, enhances the connection firmness between rock wool boards, and improves the degree of production automation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a building composite board with a heat preservation function and a production process of the building composite board, and relates to the technical field of heat preservation composite board machining.The building composite board comprises an outer aluminum board, a heat preservation rock wool board is fixedly connected to one side of the outer aluminum board, and a connecting column is fixedly connected to the heat preservation rock wool board; according to the building composite board with the heat preservation function and the production technology of the building composite board with the heat preservation function, through fixed connection between the connecting columns and the connecting grooves between the heat preservation rock wool boards, the heat preservation rock wool boards are fixedly connected through the connecting columns, and the heat preservation rock wool boards are not prone to deformation; the integrality between the heat-preservation rock wool boards is further improved, the heat-preservation layers form an integrated structure, the strength of the composite board is improved, the aluminum board and the heat-preservation rock wool boards are integrally extruded and formed through mutual cooperation of the connecting piece implanting mechanism and the splicing composite mechanism, and the machining efficiency of the heat-preservation composite board is greatly improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of processing of thermal insulation composite boards, and particularly relates to a building composite board with thermal insulation function and its production process. Background Art

[0002] A thermal insulation composite board is a composite board made by bonding a color steel plate and a rock wool board with an adhesive, which has excellent fire resistance, thermal insulation and sound insulation performance, and is widely used in building materials.

[0003] In the production and processing of existing thermal insulation composite boards, strip-shaped rock wool blocks need to be spliced first, then the surface of the spliced rock wool board is coated with glue, and then the aluminum plate and the rock wool board are bonded together to form a thermal insulation composite board. After the production of this thermal insulation board, since the rock wool blocks are only connected by gluing with the aluminum plate after being spliced into a whole rock wool board, and there is no effective connection between the rock wool blocks, the overall connection between the rock wool boards is poor, resulting in poor overall strength of the composite thermal insulation composite board. At the same time, during the production process of the thermal insulation composite board, the degree of automation of production is low, resulting in low processing efficiency of the thermal insulation composite board. Summary of the Invention

[0004] The purpose of the present invention is to provide a building composite board with thermal insulation function and its production process, and solve the deficiencies in the above background art.

[0005] The purpose of the present invention can be achieved by the following technical solutions: A building composite board with thermal insulation function, including an outer aluminum plate, one side of the outer aluminum plate is fixedly connected with a plurality of thermal insulation rock wool boards, connection columns are fixedly connected to the thermal insulation rock wool boards, connection grooves fixedly connected with the connection columns are opened at the top of the thermal insulation rock wool boards, and an inner aluminum plate is fixedly connected to one side of the thermal insulation rock wool boards.

[0006] A production process of a building composite board with thermal insulation function includes the following steps: Step 1: Cut and trim the thermal insulation rock wool boards to make them into thermal insulation rock wool boards of required sizes; Step 2: Place the outer aluminum plate and the inner aluminum plate into a forming and processing device for fixation, and at the same time place the connection columns into the forming and processing device; Step 3: Sequentially place the cut and trimmed thermal insulation rock wool boards in Step 1 into the forming and processing device, and the forming and processing device processes them to obtain a composite board.

[0007] As a further solution of the present invention: the molding processing device includes a mounting table, the top of the mounting table is rotatably connected to a plurality of driving rollers, the plurality of driving rollers are connected to each other through a transmission wheel and a transmission belt, wherein the bottom ends of two of the driving rollers are fixedly connected to a driving motor fixedly connected to the mounting table through a coupling; A connector implanting mechanism, the connector implanting mechanism is fixedly connected to the mounting platform, and the connector implanting mechanism is used to implant connectors into the thermal insulation rock wool board; A splicing composite mechanism is fixedly connected to the mounting platform and is used for composite connection between the aluminum plate and the thermal insulation composite plate.

[0008] As a further solution of the present invention: the connecting piece implantation mechanism includes a mounting frame fixedly connected to the mounting platform, two first electric telescopic rods are fixedly connected to the mounting frame, the bottom end of the first electric telescopic rod is fixedly connected to a mounting plate through a mounting block, a mounting tube is rotatably connected to the mounting plate, the outer surface of the mounting tube is transmission-connected to a first flipping mechanism connected to the mounting plate, the first flipping mechanism is used to drive the mounting tube to flip, one end of the mounting tube is fixedly connected to a mounting box rotatably connected to another mounting plate, a plurality of feeding pipes are fixedly connected to the mounting box, a second electric telescopic rod is fixedly connected in the mounting box, and one end of the second electric telescopic rod is connected to the mounting plate. A first fixed column slidably connected to a feed pipe is fixedly connected through a connecting plate, a first clamping block is fixedly connected to one end of the first fixed column, an implantation tube rotatably connected to an installation box is arranged below the feed pipe, a first transmission motor is fixedly connected in the installation box, an output end of the first transmission motor is fixedly connected to a first transmission shaft through a coupling, an outer surface of the first transmission shaft is transmission-connected to the implantation tube through a transmission wheel and a transmission belt, a clamping mechanism connected to the installation box is arranged on the implantation tube, the clamping mechanism is used to clamp and fix the connecting column, a first electric hydraulic rod is fixedly connected in the installation box, and a cutting knife is fixedly connected to one end of the first electric hydraulic rod; The installation box is provided with a gluing mechanism, and the gluing mechanism is used to apply glue to the thermal insulation rock wool board.

[0009] As a further solution of the present invention: the clamping mechanism includes an installation groove opened on the feed pipe, a transmission column is slidably connected in the installation groove, the bottom end of the transmission column is fixedly connected with a first transmission bevel block, the bottom of the first transmission bevel block is fixedly connected with a first spring, one side of the first transmission bevel block is slidably connected with a second transmission bevel block, one side of the second transmission bevel block is fixedly connected with a second fixed column slidably connected to the implant tube, one end of the second fixed column is fixedly connected with a second clamping block, the outer surface of the second fixed column is fixedly sleeved with a second spring fixedly connected to the installation groove, the stiffness of the first spring is greater than the stiffness of the second spring, the top end of the transmission column is fixedly connected with a first permanent magnet block, and an electromagnet block is fixedly connected in the installation box.

[0010] As a further solution of the present invention: the glue coating mechanism includes a connecting tube rotatably connected to the mounting tube, one end of the connecting tube is fixedly connected to a glue supply pump, one end of the mounting tube is fixedly connected to a first transmission tube through a pipeline, a plurality of second transmission tubes are fixedly connected to the first transmission tube, a plurality of third transmission tubes are fixedly connected to the outer surface of the first transmission tube, solenoid valves are provided on the second transmission tube and the third transmission tube, a feeding funnel is fixedly connected to the top of the implant tube, a heating plate is fixedly connected in the mounting box, and a glue sprayer is provided on the mounting table.

[0011] As a further solution of the present invention: the first flipping mechanism includes a second transmission motor fixedly connected to the mounting plate, the output end of the second transmission motor is fixedly connected to the second transmission shaft through a coupling, the outer surface of the second transmission shaft is fixedly sleeved with a first gear, and the outer surface of the first gear is meshingly connected with a second gear fixedly sleeved with the mounting tube.

[0012] As a further solution of the present invention: the splicing composite mechanism comprises a support plate fixedly connected to the mounting table, a plurality of support blocks are fixedly connected to the support plate, a mounting shaft is rotatably connected to the support block, the outer surface of the mounting shaft is transmission-connected to a second flipping mechanism connected to the support block, the second flipping mechanism is used to drive the mounting shaft to rotate, one end of the mounting shaft is fixedly connected to a mounting frame, a second electric hydraulic rod is fixedly connected in the mounting frame, one end of the second electric hydraulic rod is fixedly connected to an extrusion plate, a third electric hydraulic rod is fixedly connected in the mounting frame, and one end of the third electric hydraulic rod is fixedly connected to a baffle slidably connected to the mounting frame; The support plate is provided with a moving mechanism, and the moving mechanism is used to drive the thermal insulation rock wool board to move.

[0013] As a further solution of the present invention: The moving mechanism includes two third drive motors fixedly connected to the support plate. The output end of the third drive motor is fixedly connected with a threaded rod through a coupling. A moving block is in threaded cooperation with the outer surface of the threaded rod. A guide rod fixedly connected to the support plate is slidably connected to the moving block. One side of the moving block is fixedly connected with a fourth electro-hydraulic rod, and one end of the fourth electro-hydraulic rod is fixedly connected with an L-shaped clamping plate.

[0014] As a further solution of the present invention: The second flipping mechanism includes a fifth electro-hydraulic rod fixedly connected to the support block. One end of the fifth electro-hydraulic rod is fixedly connected with a transmission rack, and one side of the transmission rack is meshed with a third gear fixedly sleeved on the mounting shaft.

[0015] Advantages of the present invention: (1) Through the fixed connection between the connecting columns and the connecting grooves between the thermal insulation rock wool boards, the integrity between the thermal insulation rock wool boards is further improved, making the thermal insulation layer form an integrated structure and improving the strength of the thermal insulation composite board.

[0016] (2) By putting a plurality of whole connecting columns into the connecting piece implanting mechanism, then sequentially putting the thermal insulation rock wool boards on the mounting table, then the connecting implanting mechanism implants the connecting columns into the thermal insulation rock wool boards and automatically applies glue to the surface of the thermal insulation rock wool boards, and then the implanted connecting columns and the glued thermal insulation rock wool boards are sent into the splicing and compounding mechanism. Then, through the splicing and compounding mechanism, the integration extrusion molding of the aluminum plate and the thermal insulation rock wool board is carried out on the thermal insulation rock wool board, greatly improving the processing efficiency of the thermal insulation composite board.

[0017] (3) Through the automatic implantation of the connecting columns into the thermal insulation sponge board by the connecting piece implanting mechanism, and at the same time automatically punching the connecting grooves on the thermal insulation rock wool board during the implantation process, and then cooperating with the glue application of the glue application mechanism, the firmness of the connection between the connecting columns and the connecting grooves is improved, further improving the processing effect of the composite board and also improving the processing efficiency of the thermal insulation composite board.

[0018] (4) Through the splicing and compounding mechanism, the implanted connecting columns and the glued thermal insulation rock wool boards are stably and automatically spliced between two aluminum plates, and then through the extrusion control of the aluminum plates, the aluminum plates are tightly connected to the glued thermal insulation rock wool boards, improving the processing effect and processing efficiency of the thermal insulation composite board. Description of the Drawings

[0019] The following further describes the present invention with reference to the drawings.

[0020] Figure 1 It is the first three-dimensional external structure view of the forming and processing device of the present invention; Figure 2It is the second three-dimensional view of the external structure of the forming and processing device of the present invention; Figure 3 It is the third three-dimensional view of the external structure of the forming and processing device of the present invention; Figure 4 It is the front view of the internal structure of the connecting piece implanting mechanism of the present invention; Figure 5 It is the present invention Figure 2 The enlarged view of A in; Figure 6 It is the present invention Figure 2 The enlarged view of B in; Figure 7 It is the present invention Figure 3 The enlarged view of C in; Figure 8 It is the present invention Figure 4 The enlarged view of D in; Figure 9 It is the present invention Figure 8 The enlarged view of E in; Figure 10 It is the three-dimensional view of the external structure of the composite board of the present invention; Figure 11 It is the connecting three-dimensional view of the external structure of the composite board of the present invention.

[0021] In the figure: 1. Outer aluminum plate; 2. Insulation rock wool board; 3. Connecting column; 4. Connecting groove; 5. Inner aluminum plate; 11. Installation table; 12. Driving roller; 13. Driving motor; 21. Installation frame; 22. First electric telescopic rod; 23. Installation block; 24. Installation plate; 25. Installation pipe; 26. Installation box; 27. Feed pipe; 28. Second electric telescopic rod; 29. First fixing column; 290. First clamping block; 291. Implanting pipe; 292. First transmission motor; 293. First transmission shaft; 294. First electric hydraulic rod; 295. Cutting knife; 31. Installation groove; 32. Transmission column; 33. First transmission inclined block; 34. First spring; 35. Second transmission inclined block; 36. Second fixing column; 37. Second spring; 38. First permanent magnet block; 39. Electromagnet block; 390. Second clamping block; 41. Connecting pipe; 42. Glue supply pump; 43. First transmission pipe; 44. Second transmission pipe; 45. Third transmission pipe; 46. Heating plate; 47. Glue spraying machine; 51. Second transmission motor; 52. Second transmission shaft; 53. First gear; 54. Second gear; 61. Support plate; 62. Support block; 63. Installation shaft; 64. Installation frame; 65. Second electric hydraulic rod; 66. Extrusion plate; 67. Third electric hydraulic rod; 68. Baffle; 71. Third transmission motor; 72. Threaded rod; 73. Moving block; 74. Fourth electric hydraulic rod; 75. L-shaped clamping plate; 81. Fourth electric hydraulic rod; 82. Transmission rack; 83. Third gear. Detailed implementation manners

[0022] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0023] Embodiment 1 See also Figure 10 and Figure 11 As shown, the present invention is a composite panel for construction with a thermal insulation function, comprising an outer aluminum plate 1, a plurality of thermal insulation rock wool plates 2 are fixedly connected to one side of the outer aluminum plate 1, a connecting column 3 is fixedly connected to the thermal insulation rock wool plate 2, a connecting groove 4 fixedly connected to the connecting column 3 is opened on the top of the thermal insulation rock wool plate 2, and an inner aluminum plate 5 is fixedly connected to one side of the thermal insulation rock wool plate 2.

[0024] Embodiment 2 Based on Example 1, please refer to Figures 1 to 9 As shown, a production process of a composite board for construction with thermal insulation function comprises the following steps: Step 1: cutting and trimming the thermal insulation rock wool board 2 to cut it into thermal insulation rock wool boards 2 of a required size; Step 2: Place the outer aluminum plate 1 and the inner aluminum plate 5 into a forming processing device for fixing, and place the connecting column 3 into the forming processing device; Step three: put the thermal insulation rock wool board 2 cut and trimmed in step one into the forming and processing device in sequence, and process it in the forming and processing device to obtain a composite board.

[0025] Embodiment 3 See also Figures 1 to 9 As shown, the molding processing device includes a mounting table 11, and a plurality of driving rollers 12 are rotatably connected to the top of the mounting table 11, and the plurality of driving rollers 12 are connected to each other through a transmission wheel and a transmission belt, wherein the bottom ends of two driving rollers 12 are fixedly connected to a driving motor 13 fixedly connected to the mounting table 11 through a coupling, and the driving motor 13 is controlled by a PLC programming program, and the driving motor 13 can be controlled to rotate forward and reverse and rotate at an angle, and a connector implanting mechanism is fixedly connected to the mounting table 11, and the connector implanting mechanism is used to implant a connector into the thermal insulation rock wool board 2, and a splicing composite mechanism is provided on one side of the mounting table 11, and the splicing composite mechanism is used to perform a composite connection between an aluminum plate and a thermal insulation composite board.

[0026] The connecting piece implanting mechanism includes a mounting frame 21 fixedly connected to the mounting table 11. Two first electric telescopic rods 22 are fixedly connected to the mounting frame 21. The bottom end of the first electric telescopic rod 22 is fixedly connected with a mounting plate 24 through a mounting block 23. A mounting tube 25 is rotatably connected to the mounting plate 24. The outer surface of the mounting tube 25 is drivingly connected with a first flipping mechanism connected to the mounting plate 24. The first flipping mechanism is used to drive the mounting tube 25 to flip. One end of the mounting tube 25 is fixedly connected with a mounting box 26 rotatably connected to another mounting plate 24. A plurality of feed pipes 27 are fixedly connected to the mounting box 26. A second electric telescopic rod 28 is fixedly connected inside the mounting box 26. One end of the second electric telescopic rod 28 is fixedly connected with a first fixing column 29 slidably connected to the feed pipe 27 through a connecting plate. One end of the first fixing column 29 is fixedly connected with a first clamping block 290. Below the feed pipe 27, there is an implanting tube 291 rotatably connected to the mounting box 26. A first driving motor 292 is fixedly connected inside the mounting box 26. The output end of the first driving motor 292 is fixedly connected with a first transmission shaft 293 through a coupling. The outer surface of the first transmission shaft 293 is drivingly connected with the implanting tube 291 through a transmission wheel and a transmission belt. A clamping mechanism connected to the mounting box 26 is arranged on the implanting tube 291. The clamping mechanism is used to clamp and fix the connecting column 3. A first electric hydraulic rod 294 is fixedly connected inside the mounting box 26. One end of the first electric hydraulic rod 294 is fixedly connected with a cutting knife 295. A glue coating mechanism is arranged on the mounting box 26. The glue coating mechanism is used to coat glue on the thermal insulation rock wool board 2; The clamping mechanism includes a mounting groove 31 opened on the feed pipe 27. A transmission column 32 is slidably connected inside the mounting groove 31. The bottom end of the transmission column 32 is fixedly connected with a first transmission inclined block 33. A first spring 34 is fixedly connected to the bottom of the first transmission inclined block 33. One side of the first transmission inclined block 33 is slidably connected with a second transmission inclined block 35. One side of the second transmission inclined block 35 is fixedly connected with a second fixing column 36 slidably connected to the implanting tube 291. One end of the second fixing column 36 is fixedly connected with a second clamping block 390. The outer surface of the second fixing column 36 is fixedly sleeved with a second spring 37 fixedly connected to the mounting groove 31. The stiffness of the first spring 34 is greater than that of the second spring 37. The top end of the transmission column 32 is fixedly connected with a first permanent magnet block 38. An electromagnet block 39 is fixedly connected inside the mounting box 26; The first flipping mechanism includes a second driving motor 51 fixedly connected to the mounting plate 24. The second driving motor 51 is controlled by a PLC programming program, which can control the forward and reverse rotation and the rotation angle of the second driving motor 51. The output end of the second driving motor 51 is fixedly connected with a second transmission shaft 52 through a coupling. A first gear 53 is fixedly sleeved on the outer surface of the second transmission shaft 52. The outer surface of the first gear 53 is meshed with a second gear 54 fixedly sleeved on the mounting tube 25. Through Put each feed pipe 27 through a plurality of integral connecting columns 3. Subsequently, drive the first fixing column 29 and the first clamping block 290 to move through the second electric telescopic rod 28 on the feed pipe 27. The first clamping block 290 clamps and fixes the connecting column 3. Subsequently, drive the installation pipe 25 and the installation box 26 to rotate through the flipping mechanism, so that the feed pipe 27 rotates to a vertical position with respect to the installation table 11. Subsequently, place the thermal insulation rock wool board 2 on the installation table 11. Subsequently, drive the thermal insulation rock wool board 2 to move below the installation box 26 through the driving roller 12. Subsequently, drive the installation box 26 to move downward through the first electric telescopic rod 22, so that the implanting pipe 291 at the bottom of the installation box 26 contacts the thermal insulation rock wool board 2. Subsequently, the electromagnet block 39 is energized, exerting a downward repulsive force on the first permanent magnet block 38, thereby driving the first permanent magnet block 38 to move downward. The first permanent magnet block 38 drives the transmission column 32 and the first transmission inclined block 33 to move downward, and the first spring 34 is compressed downward. At this time, the first transmission inclined block 33 no longer abuts against the second transmission inclined block 35. The second transmission inclined block 35 drives the second fixing column 36 and the second clamping block 390 to move under the action of the force of the second spring 37, so that the second clamping block 390 enters the installation groove 31. Subsequently, the second electric telescopic rod 28 drives the first fixing column 29 and the first clamping block 290 to move, so that they no longer clamp the connecting column 3. Subsequently, the first electric telescopic rod 22 drives the installation box 26 to move upward. At this time, the connecting column 3 moves downward through the implanting pipe 291 under the action of gravity. Move the position of the installation box 26 according to the required length of the connecting column 3. When it moves to the required position, the first clamping block 290 clamps and fixes the connecting column 3. Subsequently, drive the cutting knife 295 to cut the connecting column 3 through two first electric hydraulic rods 294. Subsequently, drive the installation box 26 to move upward again, so that the top of the cut connecting column 3 enters the position of the second clamping block 390. Subsequently, the electromagnet block 39 is powered off. At this time, the first transmission inclined block 33 moves upward under the action of the force of the first spring 34. Since the stiffness of the first spring 34 is much greater than the stiffness of the second spring 37, the elastic force of the first spring 34 is greater than the elastic force of the second spring 37, and it begins to squeeze the second transmission inclined block 35. The second transmission inclined block 35 drives the second fixing column 36 and the second clamping block 390 to clamp and fix the cut connecting column 3. Subsequently, drive the first transmission shaft 293 to rotate through the first transmission motor 292. The first transmission shaft 293 drives the implanting pipe 291 to rotate through the transmission wheel and the transmission belt. The implanting pipe 291 drives the clamped connecting column 3 to rotate. At the same time, the first electric telescopic rod 22 drives the installation box 26 to move downward, so that the connecting column 3 drills into the thermal insulation rock wool board 2, and at the same time, half of the length of the connecting column 3 passes through the thermal insulation rock wool board 2. At the same time, the implanting pipe 291 drills into the thermal insulation rock wool board 2 to drill a connecting groove 4 at the top of the thermal insulation rock wool board 2, which is convenient for the connecting column 3 on the next piece to be connected to this thermal insulation rock wool board 2, thus realizing the automatic implantation of the connecting column 3 in the thermal insulation rock wool board 2 and further improving the production efficiency of the composite board.

[0027] The glue - applying mechanism includes a connecting pipe 41 rotatably connected to the installation pipe 25. One end of the connecting pipe 41 is fixedly connected with a glue - supply pump 42. One end of the installation pipe 25 is fixedly connected with a first transmission pipe 43 through a pipeline. A plurality of second transmission pipes 44 are fixedly connected to the first transmission pipe 43. A plurality of third transmission pipes 45 are fixedly connected to the outer surface of the first transmission pipe 43. Electromagnetic valves are arranged on both the second transmission pipes 44 and the third transmission pipes 45. The top of the implantation pipe 291 is fixedly connected with a feeding funnel. A heating plate 46 is fixedly connected inside the installation box 26. The temperature of the installation box 26 is maintained by the heating plate 46 to prevent the glue from solidifying. A glue - spraying machine 47 is arranged on the installation table 11.

[0028] After the connecting column 3 is implanted into the thermal insulation rock wool board 2, at this time, the glue - supply pump 42 pumps the external glue into the installation pipe 25 through the connecting pipe 41. Then, the installation pipe 25 supplies glue to the second transmission pipes 44 and the third transmission pipes 45 through the first transmission pipe 43. First, the electromagnetic valve on the second transmission pipe 44 is opened. Then, the second transmission pipe 44 leads the glue to the feeding funnel at the top of the implantation pipe 291. Then, it enters the implantation pipe 291 through the feeding funnel. Then, it enters the connecting groove 4 on the thermal insulation rock wool board 2 through the implantation pipe 291. At the same time, the installation box 26 and the implantation pipe 291 are driven to move upward slowly. When the implantation pipe 291 is pulled out from the connecting groove 4, then the electromagnetic valve on the second transmission pipe 44 is closed. Then, the electromagnetic valve on the third transmission pipe 45 is opened. Then, the third transmission pipe 45 injects glue onto the thermal insulation rock wool board 2. At the same time, the thermal insulation rock wool board 2 is driven to move left and right reciprocally by the driving roller 12, so that the top of the thermal insulation rock wool board 2 is evenly coated with glue. Thus, when two thermal insulation rock wool boards 2 are connected, the glue can connect the two boards, and at the same time, the glue makes the connecting column 3 and the connecting groove 4 be tightly connected and fixed, further improving the firmness of the connection between the thermal insulation rock wool boards 2. At the same time, during the moving process, the two side surfaces of the thermal insulation rock wool board 2 are evenly sprayed with glue by the glue - spraying machine 47.

[0029] Example Four Based on the technology of Practical Example Three, please refer to Figure 2 、 Figure 3 、 Figure 6 、 Figure 7 and Figure 9As shown in the figure, the splicing composite mechanism includes a support plate 61 fixedly connected to the mounting table 11. A plurality of support blocks 62 are fixedly connected to the support plate 61. An installation shaft 63 is rotatably connected to the support blocks 62. The outer surface of the installation shaft 63 is drivingly connected to a second flipping mechanism connected to the support blocks 62. The second flipping mechanism is used to drive the installation shaft 63 to rotate. One end of the installation shaft 63 is fixedly connected to an installation frame 64. A second electric hydraulic rod 65 is fixedly connected inside the installation frame 64. One end of the second electric hydraulic rod 65 is fixedly connected to a pressing plate 66. A third electric hydraulic rod 67 is fixedly connected inside the installation frame 64. One end of the third electric hydraulic rod 67 is fixedly connected to a baffle 68 slidably connected to the installation frame 64; A moving mechanism is arranged on the support plate 61, and the moving mechanism is used to drive the thermal insulation rock wool board 2 to move.

[0030] The moving mechanism includes two third driving motors 71 fixedly connected to the support plate 61. The output end of the third driving motor 71 is fixedly connected to a threaded rod 72 through a coupling. A moving block 73 is in threaded cooperation with the outer surface of the threaded rod 72. A guide rod fixedly connected to the support plate 61 is slidably connected to the moving block 73. One side of the moving block 73 is fixedly connected to a fourth electric hydraulic rod 74. One end of the fourth electric hydraulic rod 74 is fixedly connected to an L-shaped clamping plate 75.

[0031] The second flipping mechanism includes a fifth electric hydraulic rod 81 fixedly connected to the support block 62. One end of the fifth electric hydraulic rod 81 is fixedly connected to a transmission rack 82. A third gear 83 fixedly sleeved on the installation shaft 63 is meshed with one side of the transmission rack 82. The fifth electric hydraulic rod 81 drives the transmission rack 82 to move. The transmission rack 82 drives the third gear 83 to rotate. The third gear 83 drives the installation shaft 63 to rotate. The installation shaft 63 drives the installation frame 64 to rotate.

[0032] First, the second flipping mechanism drives the two mounting frames 64 to rotate to the horizontal position. Subsequently, two aluminum plates are respectively placed into the mounting frames 64. Then, the third electro-hydraulic rod 67 drives the baffle 68 to move to the top of the aluminum plates. Subsequently, the second electro-hydraulic rod 65 drives the pressing plate 66 to move, and the pressing plate 66 presses the aluminum plates, causing the aluminum plates to be pressed against the baffle 68, realizing the fixation of the aluminum plates. At the same time, it prevents the aluminum plates from bending during the vertical process and maintains the flatness of the aluminum plates. Then, the second flipping mechanism drives the two mounting frames 64 to rotate to the vertical position. When the thermal insulation rock wool board 2 is completely coated with glue, at this time, the driving wheel 12 drives the thermal insulation rock wool board 2 to move towards the position of the mounting frame 64. Meanwhile, the staff places the next thermal insulation rock wool board 2 on the mounting table 11. At this time, the third driving motor 71 drives the threaded rod 72 to rotate, and the threaded rod 72 drives the moving block 73 to move, making the left L-shaped clamping plate 75 higher than the right L-shaped clamping plate 75, and the right L-shaped clamping plate 75 is flush with the bottom of the thermal insulation rock wool board 2. At this time, the thermal insulation rock wool board 2 enters the L-shaped clamping plate 75 and moves to the left. Meanwhile, the driving roller drives the new thermal insulation rock wool board 2 to move. The new thermal insulation rock wool board 2 pushes the coated thermal insulation rock wool board 2 between the two L-shaped clamping plates 75. Then, it drives the new thermal insulation rock wool board 2 to move to the right to the position where the connecting column 3 of the mounting table 11 is implanted. At the same time, the coated thermal insulation rock wool board 2 enters between the two L-shaped clamping plates 75 under the action of gravity. Then, the fourth electro-hydraulic rod 74 drives the L-shaped clamping plate 75 to clamp and fix the thermal insulation rock wool board 2. Then, it enters between the two mounting frames 64. In turn, multiple implanted connecting columns 3 and coated thermal insulation rock wool boards 2 are stacked. The connecting column 3 is inserted into the connecting groove 4. After each stacking connection, it drives the L-shaped clamping plate 75 to move to the top of the thermal insulation rock wool board 2. Then, it drives the L-shaped clamping plate 75 to move downward to squeeze and connect the two thermal insulation rock wool boards 2. When multiple thermal insulation rock wool boards 2 are all inserted between the mounting frames 64, then the third electro-hydraulic rod 67 drives the baffle 68 to move so that it no longer blocks the aluminum plates. Then, the second electro-hydraulic rod 65 drives the pressing plate 66 to move, and the pressing plate 66 presses the two aluminum plates. At the same time, it is bonded through the glue on the surface of the thermal insulation rock wool board 2, making the aluminum plates fixedly compounded on the thermal insulation rock wool board 2. Then, the second flipping mechanism drives one side of the mounting frame 64 to rotate to the horizontal position. Then, the compounded plate is taken out to realize the integrated forming processing of the composite board.

[0033] Working principle of the present invention: By placing multiple integral connecting columns 3 into the connecting piece implanting mechanism, then successively placing the thermal insulation rock wool board 2 on the mounting table, and then the connecting implanting mechanism implants the connecting columns into the thermal insulation rock wool board 2 and automatically applies glue to the surface of the thermal insulation rock wool board 2. Subsequently, the implanted connecting columns 3 and the thermal insulation rock wool board 2 after glue application are sent into the splicing and compounding mechanism. Then, the splicing and compounding mechanism integrally extrudes the aluminum plate and the thermal insulation rock wool board, greatly improving the processing efficiency of the thermal insulation composite board.

[0034] The above has described in detail one embodiment of the present invention, but the content described is only the preferred embodiment of the present invention and cannot be considered as limiting the scope of implementation of the present invention. All equivalent changes and improvements made according to the scope of the application of the present invention should still fall within the scope covered by the patent of the present invention.

Claims

1. A composite board for construction with heat preservation function, characterized in that, The invention comprises an outer aluminum plate (1), a plurality of thermal insulation rock wool plates (2) are fixedly connected to one side of the outer aluminum plate (1), a connecting column (3) is fixedly connected to the thermal insulation rock wool plate (2), a connecting groove (4) fixedly connected to the connecting column (3) is formed on the top of the thermal insulation rock wool plate (2), and an inner aluminum plate (5) is fixedly connected to one side of the thermal insulation rock wool plate (2).

2. The production process of a building composite board with heat preservation function according to claim 1, characterized in that The following steps are involved: Step 1: cutting and trimming the thermal insulation rock wool board (3) to cut it into thermal insulation rock wool boards (2) of a desired size; Step 2: placing the outer aluminum plate (1) and the inner aluminum plate (5) into a molding device for fixing, and placing the connecting column (3) into the molding device at the same time; Step 3: The thermal insulation rock wool panels (2) cut and trimmed in step 1 are sequentially placed into a forming and processing device, and the forming and processing device processes the panels to obtain composite panels.

3. The production process of a building composite board with heat preservation function according to claim 2, characterized in that The molding processing device comprises a mounting platform (11), the top of the mounting platform (11) is rotatably connected to a plurality of driving rollers (12), the plurality of driving rollers (12) are connected to each other through a driving wheel and a driving belt, wherein the bottom ends of two of the driving rollers (12) are fixedly connected to a driving motor (13) fixedly connected to the mounting platform (11) through a coupling; A connector implanting mechanism, the connector implanting mechanism being fixedly connected to the mounting platform (11), the connector implanting mechanism being used to implant connectors into the thermal insulation rock wool board (2); A splicing composite structure, wherein the splicing composite structure is fixedly connected to the mounting platform (11), and the splicing composite structure is used to compositely connect the aluminum plate and the thermal insulation composite plate.

4. The production process of a building composite board with heat preservation function according to claim 3, characterized in that The connecting piece implanting mechanism includes a mounting frame (21) fixedly connected to the mounting table (11). Two first electric telescopic rods (22) are fixedly connected to the mounting frame (21). The bottom end of the first electric telescopic rod (22) is fixedly connected to a mounting plate (24) through a mounting block (23). A mounting tube (25) is rotatably connected to the mounting plate (24). The outer surface of the mounting tube (25) is drivingly connected to a first flipping mechanism connected to the mounting plate (24). The first flipping mechanism is used to drive the mounting tube (25) to flip. One end of the mounting tube (25) is fixedly connected to a mounting box (26) rotatably connected to another mounting plate (24). A plurality of feed pipes (27) are fixedly connected to the mounting box (26). A second electric telescopic rod (28) is fixedly connected inside the mounting box (26). One end of the second electric telescopic rod (28) is fixedly connected to a first fixing column (29) slidably connected to the feed pipe (27) through a connecting plate. One end of the first fixing column (29) is fixedly connected to a first clamping block (290). A planting tube (291) rotatably connected to the mounting box (26) is arranged below the feed pipe (27). A first driving motor (292) is fixedly connected inside the mounting box (26). The output end of the first driving motor (292) is fixedly connected to a first transmission shaft (293) through a coupling. The outer surface of the first transmission shaft (293) is drivingly connected to the planting tube (291) through a transmission wheel and a transmission belt. A clamping mechanism connected to the mounting box (26) is arranged on the planting tube (291). The clamping mechanism is used to clamp and fix the connecting column (3). A first electric hydraulic rod (294) is fixedly connected inside the mounting box (26). One end of the first electric hydraulic rod (294) is fixedly connected to a cutting knife (295). A gluing mechanism is arranged on the mounting box (26). The gluing mechanism is used to glue the thermal insulation rock wool board (2).

5. The production process of a building composite board with heat preservation function according to claim 4, characterized in that The clamping mechanism includes a mounting groove (31) opened on the feed pipe (27). A transmission column (32) is slidably connected inside the mounting groove (31). The bottom end of the transmission column (32) is fixedly connected to a first transmission inclined block (33). A first spring (34) is fixedly connected to the bottom of the first transmission inclined block (33). A second transmission inclined block (35) is slidably connected to one side of the first transmission inclined block (33). A second fixing column (36) slidably connected to the planting tube (291) is fixedly connected to one side of the second transmission inclined block (35). One end of the second fixing column (36) is fixedly connected to a second clamping block (390). A second spring (37) fixedly connected to the mounting groove (31) is fixedly sleeved on the outer surface of the second fixing column (36). The stiffness of the first spring (34) is greater than that of the second spring (37). A first permanent magnet block (38) is fixedly connected to the top end of the transmission column (32). An electromagnet block (39) is fixedly connected inside the mounting box (26).

6. The production process of a building composite board with heat preservation function according to claim 4, characterized in that, The glue - applying mechanism includes a connecting pipe (41) rotatably connected to the installation pipe (25). One end of the connecting pipe (41) is fixedly connected to a glue - supply pump (42). One end of the installation pipe (25) is fixedly connected to a first transmission pipe (43) through a pipeline. A plurality of second transmission pipes (44) are fixedly connected to the first transmission pipe (43). A plurality of third transmission pipes (45) are fixedly connected to the outer surface of the first transmission pipe (43). Electromagnetic valves are arranged on both the second transmission pipe (44) and the third transmission pipe (45). The top of the implantation pipe (291) is fixedly connected to a feed hopper. A heating plate (46) is fixedly connected inside the installation box (26). A glue - spraying machine (47) is arranged on the installation table (11).

7. The production process of a building composite board with heat preservation function according to claim 4, characterized in that, The first flipping mechanism includes a second driving motor (51) fixedly connected to the installation plate (24). The output end of the second driving motor (51) is fixedly connected to a second transmission shaft (52) through a coupling. A first gear (53) is fixedly sleeved on the outer surface of the second transmission shaft (52). The outer surface of the first gear (53) is meshed with a second gear (54) fixedly sleeved on the installation pipe (25).

8. The production process of a building composite board with heat preservation function according to claim 1, characterized in that The splicing and composite mechanism includes a support plate (61) fixedly connected to the installation table (11). A plurality of support blocks (62) are fixedly connected to the support plate (61). An installation shaft (63) is rotatably connected to the support block (62). The outer surface of the installation shaft (63) is drivingly connected to a second flipping mechanism connected to the support block (62). The second flipping mechanism is used to drive the installation shaft (63) to rotate. One end of the installation shaft (63) is fixedly connected to an installation frame (64). A second electric hydraulic rod (65) is fixedly connected inside the installation frame (64). One end of the second electric hydraulic rod (65) is fixedly connected to a pressing plate (66). A third electric hydraulic rod (67) is fixedly connected inside the installation frame (64). One end of the third electric hydraulic rod (67) is fixedly connected to a baffle (68) slidably connected to the installation frame (64). A moving mechanism is arranged on the support plate (61). The moving mechanism is used to drive the thermal insulation rock wool board (2) to move.

9. The production process of a building composite board with heat preservation function according to claim 8, characterized in that, The moving mechanism includes two third driving motors (71) fixedly connected to the support plate (61). The output end of the third driving motor (71) is fixedly connected to a threaded rod (72) through a coupling. A moving block (73) is in threaded fit with the outer surface of the threaded rod (72). A guide rod fixedly connected to the support plate (61) is slidably connected to the moving block (73). One side of the moving block (73) is fixedly connected to a fourth electric hydraulic rod (74). One end of the fourth electric hydraulic rod (74) is fixedly connected to an L - shaped clamping plate (75).

10. The production process of a building composite board with heat preservation function according to claim 8, characterized in that, The second flipping mechanism includes a fifth electro-hydraulic rod (81) fixedly connected to the support block (62). One end of the fifth electro-hydraulic rod (81) is fixedly connected to a transmission rack (82), and one side of the transmission rack (82) is meshed with a third gear (83) fixedly sleeved on the mounting shaft (63).