Insulating and heat-insulating mat for building

By designing the flipping and lifting mechanisms of the insulation and heat insulation pad processing device, the problem of uneven aging of the insulation and heat insulation pad was solved, enabling rapid evaporation of moisture and harmful substances, reducing deformation and cracking, and improving product quality.

CN116811104BActive Publication Date: 2026-03-31ALUTE ENERGY SAVING DOORS & WINDOWS CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-10
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

The existing insulating and heat-insulating pads have poor bottom ventilation and volatilization during the aging process, resulting in uneven aging, requiring a long time to complete, and are prone to deformation and cracking due to internal stress.

Method used

An insulating heat insulation pad processing device was designed. Through the rotation and flipping mechanism of the support column and U-shaped frame, the insulating heat insulation pad can be automatically flipped. Combined with the lifting mechanism and conveying mechanism, it can ensure uniform aging, shorten the time and reduce environmental pollution.

Benefits of technology

It accelerates the evaporation of moisture and harmful substances, balances internal stress, reduces the risk of deformation and cracking, and improves product performance and service life.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN116811104B_ABST
    Figure CN116811104B_ABST
Patent Text Reader

Abstract

The application relates to the technical field of insulation board production, in particular to a building insulation pad processing device which is beneficial to water and harmful substance volatilization, shortens aging time and balances internal stress; the device comprises a base, a supporting column rotatably installed on the base, a third servo motor installed in the base and used for driving the supporting column to rotate intermittently, a plurality of U-shaped frames rotatably installed on the supporting column through rotating shafts, the plurality of U-shaped frames can synchronously rotate with the axes of the rotating shafts as the axes, limit grooves symmetrically arranged on the inner sides of the U-shaped frames and used for clamping insulation pad, and a lifting mechanism installed on the base and used for lifting a conveying mechanism installed on the lifting mechanism in a lifting mode, the lifting mechanism controls the conveying mechanism to lift at a fixed point, the conveying mechanism is used for receiving the insulation pad conveyed by a production line and feeding the insulation pad into the U-shaped frames.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the technical field of insulation board production, and in particular to a processing device for building insulation and heat insulation pads. Background Technology

[0002] Insulating and heat-insulating pads, also known as thermal insulation boards, are formed through foaming and high-temperature extrusion. In order to better adapt to the environment in which they are used, they need to be placed in a constant temperature and humidity environment for a period of time to ensure the stability of the boards. They will not deform when exposed to cold or preheating, and their performance is more stable.

[0003] After building wall insulation boards come off the production line, they need a natural aging period. The insulation boards are placed in a well-ventilated and dry environment to allow them to fully absorb moisture from the air and release harmful substances. At the same time, aging can also relieve the internal stress of the insulation boards, making them less prone to deformation and cracking due to internal stress during use.

[0004] The existing aging method involves placing the insulating and heat-insulating pads directly on the shelf for aging. Since the ventilation and volatilization effect at the bottom of the pads is much worse than that at the top, the aging of the bottom surface of the insulating and heat-insulating pads is slower than that of the top surface. In order for the pads to be fully aged, it is necessary to wait for the bottom surface to be fully aged, which requires a long aging time. Summary of the Invention

[0005] To solve the above-mentioned technical problems, the present invention provides a processing device for building insulation and heat insulation pads that facilitates the volatilization of moisture and harmful substances, shortens aging time, and balances internal stress.

[0006] The building insulation and heat insulation pad processing apparatus of the present invention includes:

[0007] A base, on which a support column is rotatably mounted, and a third servo motor that drives the support column to rotate intermittently is installed inside the base;

[0008] A U-shaped frame, several U-shaped frames are respectively mounted on the support column by rotating shafts, and the several U-shaped frames can rotate synchronously about the axis of their own rotating shafts; the inner side of the U-shaped frame is symmetrically provided with limit grooves for clamping the insulating and heat-insulating pads;

[0009] The base is also equipped with a lifting mechanism, and a conveying mechanism is mounted on the lifting mechanism. The lifting mechanism controls the conveying mechanism to lift at a fixed point. The conveying mechanism is used to receive the insulating and heat-insulating pads conveyed from the production line and send the insulating and heat-insulating pads into the U-shaped frame.

[0010] Furthermore, the two rows of U-shaped frames on the two opposite end faces of the support column are symmetrical to each other, and the two rows of U-shaped frames on the two adjacent end faces of the support column are staggered.

[0011] Furthermore, a main shaft is rotatably mounted inside the support column, and a fourth servo motor is fixedly mounted at the bottom of the support column. The fourth servo motor is used to drive the main shaft to rotate along its own axis. Several active bevel gears are coaxially fixedly sleeved on the main shaft, and a driven bevel gear is coaxially sleeved on each rotating shaft. The driven bevel gears are respectively meshed with and connected to the several active bevel gears.

[0012] Furthermore, the U-shaped frame is fixedly mounted on the rotating shaft by bolts, and the U-shaped frame can be replaced by unscrewing the bolts.

[0013] Furthermore, the base is provided with a guide groove, and the lifting mechanism includes two sets of side plates slidably mounted on the guide groove. A drive mechanism is also installed inside the base, which is used to drive the two sets of side plates to move synchronously relative to each other. A driven belt gear and a driving belt gear are rotatably mounted on the outer wall of each set of side plates, and a synchronous belt is tensioned between the driven belt gear and the driving belt gear.

[0014] Both sets of side plates have a first guide rail vertically mounted on their inner walls. Each set of first guide rails has a first slider slidably mounted on it. The conveying mechanism is fixedly mounted between the two sets of first sliders, and the first sliders are respectively fixedly connected to the synchronous belt on the same set of side plates. The two sets of first sliders are located at the same height.

[0015] Furthermore, a spline shaft is rotatably mounted on the base, and a spline groove is provided on the drive belt gear. Two sets of spline grooves are slidably sleeved on the spline shaft, and the two sets of spline grooves rotate synchronously with the spline shaft. A first servo motor is also mounted on the base, and the first servo motor is used to drive the spline shaft to rotate.

[0016] Furthermore, the conveying mechanism includes two sets of mounting frames, with two sets of belt rollers rotatably mounted between the two sets of mounting frames. The length of the belt rollers can be adjusted according to the distance between the two sets of mounting frames. A conveyor belt is tensioned and sleeved between the two sets of belt rollers. A second servo motor is fixedly mounted on the mounting frame, and the second servo motor is used to drive the belt rollers to rotate. A limit mechanism is also installed between the two sets of mounting frames to ensure that the second servo motor is always located in the exact center of the two sets of mounting frames.

[0017] Furthermore, the belt roller includes two sets of drive shafts and rollers rotatably mounted on the mounting frame. Each set of drive shafts is provided with a synchronization rib along the axial direction. Side covers are coaxially fixedly mounted at both ends of the rollers. Synchronization grooves are provided through the side covers. The side covers are slidably sleeved on the synchronization ribs by relying on the synchronization grooves. The conveyor belt is tensioned and sleeved between the two sets of rollers. The output shaft of the second servo motor is coaxially fixedly connected to one of the drive shafts.

[0018] Furthermore, the limiting mechanism includes two sets of second guide rails fixedly installed on the inner walls of two sets of mounting frames. A second slider is slidably installed on each set of second guide rails. A connecting rod is rotatably connected between the two sets of second sliders. A central shaft is rotatably installed at the center of the connecting rod. A limiting frame is fixedly installed on the central shaft. The limiting frame is parallel to the mounting frame. Both ends of the limiting frame are fixedly provided with retaining plates. A retaining groove is provided in the middle of the outer circumference of the two sets of rollers. The two sets of retaining plates are rotatably clamped into the two sets of retaining grooves respectively.

[0019] Furthermore, at least two sets of the connecting rod, the second slider, and the central shaft are provided, and a limit frame is positioned by two or more sets of central shafts.

[0020] Compared with the prior art, the beneficial effects of the present invention are as follows: by turning the insulation and heat insulation pad over during the aging process, it is beneficial to accelerate the evaporation of moisture and harmful substances inside the insulation and heat insulation pad, greatly reducing the pollution of the indoor environment by the building insulation board; at the same time, it can balance the internal properties of the insulation and heat insulation pad, making it less prone to deformation and cracking due to internal stress during use, thereby improving the service life and performance of the product. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the structure of the present invention;

[0022] Figure 2 This is an enlarged schematic diagram showing the connection between the U-shaped frame and the main shaft and other structures.

[0023] Figure 3 This is an enlarged schematic diagram of the U-shaped frame structure;

[0024] Figure 4 This is an enlarged schematic diagram of the lifting mechanism and the conveying mechanism;

[0025] Figure 5 yes Figure 4 Enlarged structural diagram of section A in the middle;

[0026] Figure 6 This is an enlarged schematic diagram of the conveying mechanism;

[0027] Figure 7 This is an enlarged schematic diagram of the conveyor mechanism without the conveyor belt installed.

[0028] Figure 8 This is an enlarged schematic diagram showing the connection between the central axis and the limiting frame and other structures;

[0029] Figure 9 This is an enlarged schematic diagram of the roller structure;

[0030] The attached diagram shows the following components: 1. Base; 2. Support column; 3. U-shaped frame; 4. Rotating shaft; 5. Limiting groove; 6. Lifting mechanism; 7. Conveying mechanism; 8. Main shaft; 9. Driving bevel gear; 10. Driven bevel gear; 11. Guide groove; 12. Side plate; 13. Drive mechanism; 14. Driven belt gear; 15. Driving belt gear; 16. Synchronous belt; 17. Spline groove; 18. Spline shaft; 19. First servo motor; 20. First guide rail; 21. Mounting bracket; 22. First slider; 23. Belt roller; 24. Second servo motor; 25. Conveyor belt; 26. Second guide rail; 27. Connecting rod; 28. Second slider; 29. ​​Central shaft; 30. Limiting frame; 31. Bearing plate; 32. Roller; 33. Side cover; 34. Synchronous groove; 35. Drive shaft; 36. Synchronous rib; 37. Bearing groove. Detailed Implementation

[0031] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0032] In the description of this invention, it should be noted that the orientations or positional relationships indicated by terms such as "center", "up", "down", "left", "right", "vertical", "horizontal", "inner", and "outer" are based on the orientations or positional relationships shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0033] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances. This embodiment is written in a progressive manner.

[0034] like Figures 1 to 9 As shown, the building insulation and heat insulation pad processing apparatus of the present invention includes:

[0035] A base 1, on which a support column 2 is rotatably mounted, and inside the base 1 is a third servo motor that drives the support column 2 to rotate intermittently;

[0036] The U-shaped frame 3 consists of several U-shaped frames 3 arranged in four rows. A row of U-shaped frames 3 is installed on each of the four end faces of the support column 2. Each U-shaped frame 3 is rotatably mounted on the support column 2 by means of a rotating shaft 4. Several U-shaped frames 3 can rotate synchronously about the axis of their own rotating shaft 4. The inner side of the U-shaped frame 3 is symmetrically provided with limit grooves 5 for clamping the insulating and heat-insulating pads to prevent the insulating and heat-insulating pads from falling off when the U-shaped frame 3 is flipped.

[0037] Lifting mechanism 6, and base 1 are also equipped with lifting mechanism 6. Lifting mechanism 6 can be lifted and installed with conveying mechanism 7. Lifting mechanism 6 controls conveying mechanism 7 to lift and lower at fixed points. Conveying mechanism 7 is used to receive insulating and heat-insulating pads conveyed from the production line and send the insulating and heat-insulating pads into U-shaped frame 3.

[0038] To ensure that several U-shaped frames 3 do not interfere with each other during synchronous rotation, the two rows of U-shaped frames 3 on the two opposite end faces of the support column 2 are symmetrical to each other, and the two rows of U-shaped frames 3 on the two adjacent end faces of the support column 2 are staggered. Through the above settings, it is possible to avoid collisions and interference between U-shaped frames 3 on the same horizontal plane during rotation along their own axis of rotation 4, thereby improving the operational stability of the equipment.

[0039] Specifically, how to drive several U-shaped frames 3 to rotate along their own axis 4, such as... Figure 2 As shown, a main shaft 8 is rotatably mounted inside the support column 2, and a fourth servo motor is fixedly mounted at the bottom of the support column 2. The fourth servo motor is used to drive the main shaft 8 to rotate along its own axis. Several driving bevel gears 9 are coaxially fixedly sleeved on the main shaft 8, and a driven bevel gear 10 is coaxially sleeved on each rotating shaft 4. The driven bevel gears 10 are respectively meshed with the driving bevel gears 9. By controlling the fourth servo motor to rotate 180 degrees, several U-shaped frames 3 can be driven to rotate under the transmission of the main shaft 8, driving bevel gears 9 and driven bevel gears 10, thereby realizing the flipping of the insulating heat insulation pad plate clamped on the U-shaped frame 3.

[0040] In this embodiment, by moving the aforementioned equipment to the end of the insulating and heat-insulating pad foaming production line, the already formed insulating and heat-insulating pads are received by the conveying mechanism 7, and then the lifting mechanism 6 drives the conveying mechanism 7 to rise to a designated position. The conveying mechanism 7 then inserts the insulating and heat-insulating pads into the limiting grooves 5 on the U-shaped frames 3 at the same height. The lifting mechanism 6 then controls the conveying mechanism 7 to reset, repeating the above process, and raising the conveying mechanism 7 to different heights of the U-shaped frames 3 for insertion. When several U-shaped frames 3 on one end face of the support column 2 are filled with insulating and heat-insulating pads, the third servo motor controls the support column 2 to rotate 90 degrees, aligning the U-shaped frames 3 on the other end face of the support column 2 with the conveying mechanism 7. The process continues until all the U-shaped frames 3 on the support column 2 are filled with insulating and heat-insulating pads. After a certain period of aging, the fourth servo motor is controlled to rotate 180 degrees, which drives several U-shaped frames 3 to rotate under the transmission of the main shaft 8, the driving bevel gear 9, and the driven bevel gear 10. This allows the insulating and heat-insulating pads mounted on the U-shaped frames 3 to be flipped over. Flipping the insulating and heat-insulating pads during aging helps to accelerate the evaporation of moisture and harmful substances inside the insulating and heat-insulating pads, greatly reducing the pollution of the building insulation board to the indoor environment. At the same time, it can balance the internal properties of the insulating and heat-insulating pads, making them less prone to deformation and cracking due to internal stress during use, thereby improving the service life and performance of the product.

[0041] In order to make the equipment adaptable to different sizes of lifting mechanism 6 and conveying mechanism 7 with adjustable width, the U-shaped frame 3 can be replaced. Specifically, the U-shaped frame 3 is fixedly installed on the rotating shaft 4 by bolts, and the U-shaped frame 3 can be replaced by turning the bolts.

[0042] The base 1 is provided with a guide groove 11. The lifting mechanism 6 includes two sets of side plates 12 that are slidably installed inside the guide groove 11. The base 1 is also equipped with a drive mechanism 13. The drive mechanism 13 is used to drive the two sets of side plates 12 to move closer or further apart synchronously. The drive mechanism 13 adopts a double-thread screw nut pair, that is, two sets of screw threads with opposite helical directions are symmetrically arranged on the same screw. At the same time, the drive mechanism 13 can also adopt a double-head servo linear cylinder to synchronously control the two sets of side plates 12.

[0043] Each set of side plates 12 has a driven belt gear 14 and a driving belt gear 15 rotatably mounted on its outer wall. A synchronous belt 16 is tensioned between the driven belt gear 14 and the driving belt gear 15. The driving belt gear 15 is provided with a spline groove 17. The two sets of spline grooves 17 are slidably mounted on the spline shaft 18 and rotate synchronously with the spline shaft 18. A first servo motor 19 is also mounted on the base 1. The first servo motor 19 is used to drive the spline shaft 18 to rotate along its own axis. A first guide rail 20 is vertically mounted on the inner wall of each set of side plates 12. A first slider 22 is slidably mounted on each set of first guide rails 20. The conveying mechanism 7 is fixedly mounted between the two sets of first sliders 22. The first sliders 22 are respectively fixedly connected to the synchronous belt 16 on the same set of side plates 12. The two sets of first sliders 22 are located at the same height.

[0044] In this embodiment, the drive mechanism 13 facilitates the control of the two sets of side plates 12 to move closer or further apart, thereby adjusting the distance between them. The spline groove 17 and spline shaft 18 facilitate transmission, allowing for the synchronous rotation of the two sets of drive gears 15, ensuring the synchronicity of the two sets of timing belts 16. This also ensures that the synchronous rotation remains constant even after changes in the distance between the two sets of side plates 12, enhancing the flexibility of the equipment. Furthermore, the driven gear 14, drive gear 15, and timing belt 16 can also employ a sprocket and chain structure for transmission, ensuring that there is no slippage between the driven gear 14, drive gear 15, and timing belt 16.

[0045] To enable the conveying mechanism 7 to adjust its width as the two sets of side plates 12 move, the conveying mechanism 7 includes two sets of mounting frames 21 respectively fixedly mounted on the two sets of first sliders 22. Two sets of belt rollers 23 are rotatably mounted between the two sets of mounting frames 21. The length of the belt rollers 23 can be changed as the distance between the two sets of mounting frames 21 is adjusted. A conveyor belt 25 is tensioned and sleeved between the two sets of belt rollers 23. A second servo motor 24 is also fixedly mounted on one set of mounting frames 21. The second servo motor 24 is used to drive one set of belt rollers 23 to rotate along its own axis. A limiting mechanism is also installed between the two sets of mounting frames 21. The limiting mechanism is used to ensure that the second servo motor 24 is always located in the middle of the two sets of mounting frames 21 and will not change position as the distance between the two sets of mounting frames 21 is adjusted.

[0046] Furthermore, the belt roller 23 includes a drive shaft 35 and a roller 32 rotatably mounted on the mounting frame 21. Each drive shaft 35 is provided with a synchronization rib 36 along the axial direction. Both ends of the roller 32 are coaxially fixedly mounted with side covers 33. A synchronization groove 34 is provided through the side cover 33. The side cover 33 is slidably sleeved on the synchronization rib 36 by relying on the synchronization groove 34. The roller 32 and the drive shaft 35 rotate synchronously. At the same time, the roller 32 and the drive shaft 35 can be relatively displaced along the axial direction. The conveyor belt 25 is tensioned and sleeved between the two sets of rollers 32. The output shaft of the second servo motor 24 is coaxially fixedly connected to one of the drive shafts 35. With the above arrangement, it can be ensured that the rotation of the two sets of side covers 33 is not affected when the two sets of mounting frames 21 are relatively far apart or relatively close.

[0047] More specifically, the limiting mechanism includes two sets of second guide rails 26 fixedly installed on the inner walls of two sets of mounting frames 21. Each set of second guide rails 26 is slidably mounted with a second slider 28. A connecting rod 27 is rotatably connected between the two sets of second sliders 28. A central shaft 29 is rotatably mounted at the center of the connecting rod 27. A limiting frame 30 is fixedly mounted on the central shaft 29. The limiting frame 30 is parallel to the mounting frame 21. Both ends of the limiting frame 30 are fixedly provided with retaining plates 31. A retaining groove 37 is provided in the middle of the outer circumference of the two sets of rollers 32. The two sets of retaining plates 31 are rotatably clamped in the two sets of retaining grooves 37 respectively.

[0048] With the above settings, when the two sets of mounting frames 21 move synchronously relative to each other, under the connection of the connecting rod 27 and the second slider 28, the central shaft 29 is always located in the middle of the two sets of mounting frames 21, so that the limiting frame 30 can always remain in the middle of the two sets of mounting frames 21. Under the limiting action of the two sets of bearings 31 and the clamping groove 37, the position of the belt roller 23 is limited, ensuring that the positions of the two sets of belt rollers 23 and the conveyor belt 25 remain unchanged.

[0049] Furthermore, the height of the mounting frame 21 is higher than the conveying surface of the conveyor belt 25, thereby serving the purpose of limiting the conveying of the insulating and heat-insulating pad. At least two sets of connecting rod 27, second slider 28 and central shaft 29 are provided. The two sets of central shafts 29 are used to position one limiting frame 30, ensuring that the limiting frame 30 will not rotate.

[0050] The building insulation and heat insulation pad processing device of the present invention can be installed, connected or set in a common mechanical way, and can be implemented as long as it can achieve its beneficial effect.

[0051] The above description is only a preferred embodiment of the present invention. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention.

Claims

1. A processing device for an insulating thermal mat for construction, characterized in that, The utility model relates to a kind of insulation heat insulation pad production line, including: Base (1), support column (2) is rotatably mounted on the base (1), third servo motor is installed in the base (1), and third servo motor drives support column (2) intermittent rotation; U-shaped frame (3), several U-shaped frames (3) are rotatably mounted on support column (2) by rotating shaft (4), and several U-shaped frames (3) can be synchronously rotated with the axis of rotating shaft (4) as the axis;The inner side of the U-shaped frame (3) is symmetrically provided with a limiting groove (5) for clamping an insulation heat insulation pad; Lifting mechanism (6), lifting mechanism (6) is further installed on the base (1), and conveying mechanism (7) is liftably installed on the lifting mechanism (6), the lifting mechanism (6) controls the fixed-point lifting of conveying mechanism (7), and conveying mechanism (7) is used to receive the insulation heat insulation pad conveyed by production line, and the insulation heat insulation pad is sent into the U-shaped frame (3); The conveying mechanism (7) includes two groups of mounting frames (21), two groups of mounting frames (21) are rotatably mounted between two groups of belt rollers (23), the length of the belt roller (23) can be changed with the distance adjustment between two groups of mounting frames (21);Two groups of belt rollers (23) are tensioned with a conveying belt (25) between them, a second servo motor (24) is fixedly installed on the mounting frame (21), and the second servo motor (24) is used to drive the rotation of the belt roller (23);Limiting mechanism is further installed between two groups of mounting frames (21), and the limiting mechanism is used to ensure that the second servo motor (24) is always located in the middle of two groups of mounting frames (21); The belt roller (23) includes two groups of drive shafts (35) and roller cylinders (32) rotatably installed on the mounting frame (21), a synchronization ridge (36) is provided on each drive shaft (35) along the axis direction, side covers (33) are coaxially fixedly installed at both ends of the roller cylinder (32), a synchronization groove (34) is penetratingly provided on the side cover (33), the side cover (33) is slidingly sleeved on the synchronization ridge (36) by means of the synchronization groove (34), the conveying belt (25) is tensioned between two groups of roller cylinders (32), and the output shaft of the second servo motor (24) is coaxially fixedly connected with one of the drive shafts (35); The limiting mechanism includes two groups of second guide rails (26) fixedly installed on the inner walls of two groups of mounting frames (21), a second sliding block (28) is slidingly installed on each second guide rail (26), and a connecting rod (27) is rotatably connected between two groups of second sliding blocks (28), a center shaft (29) is rotatably installed at the center of the connecting rod (27), a limiting frame (30) is fixedly installed on the center shaft (29), the limiting frame (30) is parallel to the mounting frame (21), and a tile holder (31) is fixedly provided at both ends of the limiting frame (30), a holding groove (37) is provided at the middle part of the circumferential outer wall of two groups of roller cylinders (32), and two groups of tile holders (31) are rotatably clamped in two groups of holding grooves (37) respectively. The connecting rod (27), the second sliding block (28) and the middle shaft (29) are provided with at least two sets, and one limiting frame (30) is positioned by the two groups of middle shafts (29).

2. The apparatus for processing an insulation board for building according to claim 1, wherein The support column (2) is symmetrical to the two rows of U-shaped frames (3) on the two end faces, and the two rows of U-shaped frames (3) on the adjacent two end faces of the support column (2) are staggered.

3. The apparatus for processing an insulation board for building according to claim 2, wherein The support column (2) is internally rotatably installed with a main shaft (8), and a fourth servo motor is fixedly installed at the bottom of the support column (2), the fourth servo motor is used to drive the main shaft (8) to rotate along the axis thereof, a plurality of driving bevel gears (9) are coaxially fixedly sleeved on the main shaft (8), a driven bevel gear (10) is coaxially sleeved on each rotating shaft (4), and the plurality of driven bevel gears (10) are respectively meshed and connected with the plurality of driving bevel gears (9).

4. The apparatus for processing an insulation board for building according to claim 1, wherein The U-shaped frame (3) is fixedly installed on the rotating shaft (4) through bolts, and the U-shaped frame (3) is replaced by screwing the bolts.

5. The apparatus for processing an insulation board for building according to claim 1, wherein The base (1) is provided with a guide groove (11), the lifting mechanism (6) comprises two groups of side plates (12) which are slidingly installed on the guide groove (11), and a driving mechanism (13) is further installed in the base (1), the driving mechanism (13) is used to drive the two groups of side plates (12) to synchronously move relative to each other; a driven belt gear (14) and a driving belt gear (15) are rotatably installed on the outer wall of each group of side plates (12), and a synchronous belt (16) is tensioned and sleeved between the driven belt gear (14) and the driving belt gear (15); First guide rails (20) are vertically installed on the inner walls of the two groups of side plates (12), first sliding blocks (22) are slidingly installed on each group of first guide rails (20), the conveying mechanism (7) is fixedly installed between the two groups of first sliding blocks (22), and the first sliding blocks (22) are fixedly connected with the synchronous belt (16) on the same group of side plates (12), and the two groups of first sliding blocks (22) are located at the same height.

6. The apparatus for processing an insulation mat for building according to claim 5, wherein A spline shaft (18) is rotatably installed on the base (1), spline grooves (17) are arranged on the driving belt gears (15), two groups of spline grooves (17) are slidingly sleeved on the spline shaft (18), and the two groups of spline grooves (17) rotate synchronously with the spline shaft (18), and a first servo motor (19) is further installed on the base (1), and the first servo motor (19) is used to drive the spline shaft (18) to rotate.

Citation Information

Patent Citations

  • Airing device for insulation board production line

    CN210709184U

  • Heat insulation board airing device

    CN219063951U