Glass wool curing device
By designing an integrated glass wool curing device, using the sliding of the frame and the transfer plate to spray phenolic resin, cotton collection molding and curing, the problem of inefficiency of the existing device is solved, and efficient glass wool processing and simplified loading and unloading operations are achieved.
Patent Information
- Application Number
- CN202510542685.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2025-07-29
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing glass wool curing devices cannot realize the integrated spraying of phenolic resin, cotton collection and molding of glass wool, resulting in low processing efficiency and large area of the device, making it difficult to efficiently load and unload.
A glass wool curing device including a workbench, a trapezoidal table, a curing furnace, an upper mold, a lower mold groove, a frame, a spray head, a transfer plate and a driving component is designed. Through the coordinated sliding of the frame and the transfer plate, the integrated operation of spraying phenolic resin, integrating cotton molding and curing is realized. The driving component is used to synchronously calibrate the glass wool position to improve the loading and unloading efficiency.
It realizes efficient integrated processing of glass wool, improves processing efficiency, simplifies processes, reduces floor area, and improves processing quality.
Smart Images

Figure CN120384367A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of glass wool production, in particular to a precision mechanical automation production line capable of integrating glass wool. Background Art
[0002] Glass wool belongs to a category of glass fibers. It is made by fibering molten glass into a cotton-like material. Its main components are silica, alumina, calcium oxide, magnesium oxide, etc. By adding different chemical substances, the properties of glass wool can be adjusted to adapt to different application scenarios. Among them, when glass wool is solidified, it can form a glass wool board. Generally, the glass wool board uses natural ores such as quartz sand, limestone, and dolomite as the main raw materials, and is melted with chemical raw materials such as soda ash and borax into glass. In the molten state, it is blown or spun into flocculent fine fibers by external force, and then solidified and processed by adding a binder. After processes such as polishing, spraying glue, and pasting paper, it is made. It has the characteristics of heat insulation, sound absorption and noise reduction, good fire resistance, strong chemical stability, light weight and convenient construction. And when used in building insulation, industrial heat insulation, sound insulation and noise reduction, etc., glass wool can also be used in combination with aluminum silicate. Specifically, generally after the glass wool is solidified, a layer of aluminum silicate heat insulation coating is applied on its outer side or an aluminum silicate heat insulation board is installed. Through the high-temperature resistance characteristics of aluminum silicate, the overall high-temperature resistance performance of glass wool is further improved.
[0003] When glass wool is solidified into a glass wool board, generally, the glass wool felt is laid to a specified thickness, and a binder such as phenolic resin is evenly sprayed on the glass wool felt to make it have a certain strength and integrity. Then, the glass wool felt is sent into a mold, and is formed into a cotton by mechanical pressure or vacuum adsorption, etc., to form a slab with the required thickness and shape. Finally, the slab is sent into a curing furnace for curing and drying.
[0004] However, the existing glass wool curing devices generally cannot spray phenolic resin, collect cotton and form, and then cure the glass wool felt integrally. They need to be operated in multiple steps, resulting in relatively scattered processing procedures, low processing efficiency, and large overall floor area of the device. In particular, it is inconvenient to unload and cure the formed glass wool board.
[0005] The glass wool curing device with the publication number CN209440850U discloses "a glass wool curing device, which relates to the field of mechanical equipment. When in use, the base can be placed on the tabletop, and then the glass wool after cotton collection and forming is placed on the top of the moving plate. Then, the shaft rod is fixed at a suitable position on the support plate by screws. Push the moving plate to make the outer rings of the two bearings roll back and forth in the track grooves of the base, and make the curing roller roll on the shaft rod to squeeze the glass wool, so that the glass wool is cured and formed under the rolling and pressing of the curing roller. The glass wool curing device is ingeniously designed, can be manually operated, and can flexibly adjust the extrusion and curing force of the curing roller on the glass wool. The processing process is very flexible, improving the curing effect of the glass wool."
[0006] Although the above technical solution can adjust the extrusion and curing force on the glass wool, it cannot efficiently and quickly carry out integrated production and processing on the glass wool, nor can it achieve rapid blanking, resulting in low production and processing efficiency. Therefore, a glass wool curing device is proposed. Summary of the Invention
[0007] In order to overcome the deficiencies of the prior art, the present invention proposes a glass wool curing device, which can integrally process and cure the glass wool, and at the same time is convenient for loading and unloading, greatly improving the efficiency of curing and processing the glass wool.
[0008] In order to solve the above technical problems, the basic technical solution proposed by the present invention is:
[0009] A glass wool curing device includes a workbench, trapezoidal platforms are respectively connected to both sides of the workbench, a curing furnace is arranged at the rear of the workbench, an upper mold is slidably connected to the workbench, and a lower mold groove matching the upper mold is opened on the tabletop of the workbench. A frame is slidably connected to the workbench, spray heads are arrayed and installed on the lower end surface of the frame, and on both sides of the frame, rotating plates one that are in sliding fit with the upper end surfaces of the trapezoidal platforms are symmetrically and rotatably connected;
[0010] A rotating plate two is arranged between the rotating plates one, and both ends of the rotating plate two are respectively rotatably connected to the rotating plates one on both sides. A push plate is connected to the lower end of the rotating plate two, a baffle for limiting the rotating plate two is connected to the frame, a calibration plate for straightening and calibrating the glass wool is slidably connected to the workbench, and a driving component is further arranged on the workbench. The driving component is used to drive the calibration plates on both sides to approach or move away from each other synchronously to straighten the glass wool.
[0011] Preferably, guide rails two are respectively connected to both sides of the upper end surface of the workbench, guide rail blocks two that slide in the guide rails two are connected to both sides of the upper mold, mounting seats are connected to both sides of the workbench, and the guide rails two are installed on the mounting seats.
[0012] Preferably, guide rods are provided on both the front and rear sides of each of the second guide blocks, and the guide rods are connected to the workbench. A slider that slidably sleeves outside the guide rods is connected to the second guide block.
[0013] Preferably, guide rails I are connected to both the left and right sides of the lower end surface of the workbench, and a first guide block is slidably connected inside the guide rail I. Both ends of the frame are respectively connected to the first guide blocks on both sides and are slidably connected to the workbench through the first guide blocks.
[0014] Preferably, the frame is designed in a rectangle and is located above the trapezoidal table. Spray pipes are installed on the lower end surfaces of the front and rear side frames of the frame, and the nozzles are installed at equal intervals along the axial direction of the spray pipes.
[0015] Preferably, the mutually approaching ends of the two first rotating plates extend between the two trapezoidal tables. The two ends of the second rotating plate are respectively rotatably connected to the extending ends of the two trapezoidal tables, and the second rotating plate is located between the two trapezoidal tables.
[0016] Preferably, the baffle is connected to one side of the frame, and the baffle is located on the side of the first rotating plate away from the second rotating plate. Slide grooves I are opened on both the front and rear sides of the workbench, and the lower end of the baffle is slidably connected inside the slide groove I.
[0017] Preferably, the driving assembly includes a second slide groove, a slide frame, a slide plate, a slide rod, a slide seat, a rotating rod, a connecting rod, and a lifting plate. The second slide grooves are opened on both the left and right sides of the upper end surface of the workbench. The slide frames are connected to both the left and right sides of the lower end of the workbench. The slide plate is slidably sleeved outside the outer side surface of the slide frame, and the upper end of the slide plate penetrates through the second slide groove and extends above the workbench. The calibration plate is connected to the upper side extending end of the slide plate. A spring that sleeves outside the outer side surface of the slide frame is connected between the slide plate and the slide frame. The slide rod is connected to the workbench. The slide seat is slidably sleeved outside the slide rod. A rotating rod is rotatably connected between the slide seat and the slide plate. The upper end of the connecting rod is connected to the upper mold. The lower end of the connecting rod slidably penetrates through the workbench and extends below the slide seat, and a lifting plate that cooperates and abuts against the lower end surface of the slide seat is connected to the extending end.
[0018] Preferably, furnace doors are provided on both sides of the curing furnace, and heating devices are installed on the top and both inner side walls of the curing furnace.
[0019] Preferably, a conveyor belt is provided on the front side of the workbench. The glass wool is arranged on the conveyor belt. A telescopic member is installed on the side of the conveyor belt away from the workbench, and a vertical plate is connected to the output end of the telescopic member.
[0020] The beneficial effects of the present invention are:
[0021] 1. The technical solution of the present invention is that the frame reciprocally slides from back to front above the workbench. At this time, the frame only drives the first rotating plate to slide in contact with the trapezoidal platform, and it is controlled that the first rotating plate does not disengage from the front side of the trapezoidal platform. In this way, the first rotating plate will rotate to a horizontal state backward under the resistance of the upper end surface of the trapezoidal platform. Furthermore, the first rotating plate drives the second rotating plate to synchronously rotate to a horizontal state, and then the nozzle can be controlled to spray adhesives such as phenolic resin onto the glass wool below it.
[0022] 2. The technical solution of the present invention is that by controlling the frame to slide forward until the first rotating plate disengages from the trapezoidal platform, at this time, without the resistance of the trapezoidal platform, the first rotating plate will drive the second rotating plate to rotate from the horizontal state to the vertical state under the action of gravity. Then, after controlling the upper mold to cooperate with the lower mold groove for cotton collection and forming, the frame is controlled to move backward again. At this time, the first rotating plate will re-contact the trapezoidal platform, but at this time, it slides in cooperation with the trapezoidal platform from front to back. Therefore, the first rotating plate will reverse to a horizontal state forward. At this time, the first rotating plate cannot form a contact with the second rotating plate, but the rotation connection point between the second rotating plate and the first rotating plate will move forward to the front side of the rotation axis of the first rotating plate, driving the second rotating plate to be vertically located on the front side of the rotation axis of the first rotating plate. At this time, the vertical second rotating plate will form a forward contact with the front baffle. Furthermore, as the push plate is driven to move backward, it will push the cotton-collected and formed glass wool to move into the curing furnace for curing, realizing an integrated and efficient processing operation, and at the same time, it can efficiently load and unload materials.
[0023] 3. The technical solution of the present invention is that by arranging clamping plates on both sides of the workbench that can approach or move away from each other synchronously, it is convenient to straighten the position of the glass wool transported to the workbench, so as to facilitate the accurate cotton collection and forming by the cooperation of the upper mold and the lower mold groove, improving the efficiency and also enhancing the processing quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 is a schematic structural diagram of the present invention;
[0025] Figure 2 is a cross-sectional view of the side view structure of the present invention;
[0026] Figure 3 is a schematic diagram of the workbench of the present invention and related structures thereon;
[0027] Figure 4 is a cross-sectional view of the front view structure of the workbench of the present invention;
[0028] Figure 5 is a top view schematic diagram of the related structures at the first guide rail and the frame of the present invention;
[0029] Figure 6 is a bottom view schematic diagram of the related structures at the first guide rail and the frame of the present invention;
[0030] Figure 7An upward view schematic diagram of the related structure on the frame body of the present invention;
[0031] Figure 8 A schematic structural diagram of the driving component of the present invention.
[0032] Explanation of reference numerals:
[0033] 1 - Workbench, 2 - Trapezoidal table, 3 - First guide rail, 4 - Curing furnace, 5 - Second guide rail, 6 - Upper mold, 7 - Lower mold groove, 8 - First guide rail block, 9 - Frame body, 10 - Spray pipe, 11 - Nozzle, 12 - First rotating plate, 13 - Second rotating plate, 14 - Pushing plate, 15 - Baffle plate, 16 - First sliding groove, 17 - Second sliding groove, 18 - Slide carriage, 19 - Slide plate, 20 - Calibration plate, 21 - Spring, 22 - Slide rod, 23 - Slide seat, 24 - Rotating rod, 25 - Connecting rod, 26 - Lifting plate, 27 - Second guide rail block, 28 - Guide rod, 29 - Slide block, 30 - Mounting seat, 31 - Furnace door, 32 - Heating device, 33 - Conveyor belt, 34 - Telescopic member, 35 - Vertical plate, 36 - Glass wool board. Detailed implementation manners
[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the appended Figure 1 to the appended Figure 8 drawings. It is obvious that the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0035] It should be noted that if there are directions involved in the embodiments of the present invention, they shall be subject to those shown in the drawings. For example, the front and the rear are based on Figure 1 as the standard. Specifically, the left side of Figure 1 is the front, Figure 1 and the right side of Figure 2 is the rear; at the same time, as shown in
[0036] shown, generally the left - right direction is the horizontal direction, and the up - down direction shown in the figure is the vertical direction. If a specific posture changes, the directional indication will also change accordingly.
[0037] As Figures 1 - 7 shown, the present invention discloses a glass wool curing device, which includes a workbench 1. Trapezoidal tables 2 are respectively connected to both sides of the workbench 1. A curing furnace 4 is arranged at the rear of the workbench 1. An upper mold 6 is slidably connected to the workbench 1, and a lower mold groove 7 matching the upper mold 6 is formed on the table surface of the workbench 1. A frame body 9 is slidably connected to the workbench 1. Nozzles 11 are array - mounted on the lower end surface of the frame body 9. First rotating plates 12 that are rotatably connected symmetrically on both sides of the frame body 9 and are in sliding contact with the upper end surfaces of the trapezoidal tables 2 are provided.
[0038] A second rotating plate 13 is arranged between the first rotating plates 12, and both ends of the second rotating plate 13 are rotatably connected to the first rotating plates 12 on both sides respectively. A push plate 14 is connected to the lower end of the second rotating plate 13. A baffle 15 for limiting the second rotating plate 13 is connected to the frame 9. A calibration plate 20 for aligning and calibrating the glass wool 36 is slidably connected to the workbench 1. A driving assembly is also arranged on the workbench 1, and the driving assembly is used to drive the calibration plates 20 on both sides to approach or move away from each other synchronously, so as to align the glass wool 36.
[0039] Guide rails two 5 are connected to both sides of the upper end surface of the workbench 1. Guide rail blocks two 27 that slide within the guide rails two 5 are connected to both sides of the upper mold 6. Mounting seats 30 are connected to both sides of the workbench 1, and the guide rails two 5 are mounted on the mounting seats 30, which can ensure the stable up and down movement of the upper mold 6.
[0040] Guide rods 28 are arranged on the front and rear sides of each guide rail block two 27, and the guide rods 28 are connected to the workbench 1. A slider 29 that is slidably sleeved outside the guide rod 28 is connected to the guide rail block two 27. The sliding sleeve connection of the slider 29 connected to the guide rail block two 27 and the guide rod 28 can further stabilize the up and down movement of the upper mold 6.
[0041] Guide rails one 3 are connected to the left and right sides of the lower end surface of the workbench 1, and guide rail blocks one 8 that slide within the guide rails one 3 are connected to both ends of the frame 9 respectively, and the frame 9 is slidably connected to the workbench 1 through the guide rail blocks one 8. The arrangement of the guide rails one 3 can drive the guide rail blocks one to move back and forth, and then drive the frame 9 to slide back and forth on the workbench 1.
[0042] The frame 9 is designed as a rectangle, and the frame 9 is located above the trapezoidal table 2. Nozzles 10 are installed on the lower end surfaces of the front and rear side frames of the frame 9, and the spray heads 11 are installed at equal intervals along the axial direction of the nozzles 10. One end of the nozzle 10 can be connected to a phenolic resin storage container to ensure the supply of phenolic resin sprayed by the spray heads 11. At the same time, the spray heads 11 are arranged in two rows on the front and rear sides of the frame 9, which can avoid the possible obstruction of the phenolic resin sprayed by the spray heads 11 by the second rotating plate 13. That is, when the cooperation between the first rotating plate 12 and the trapezoidal table 2 makes the first rotating plate 12 in a backward rotating state, the front row of spray heads 11 can be opened, and when the cooperation between the first rotating plate 12 and the trapezoidal table 2 makes the first rotating plate 12 in a forward rotating state, the rear row of spray heads 11 can be opened.
[0043] The mutually approaching ends of the first rotating plates 12 on both sides extend between the trapezoidal platforms 2 on both sides. The two ends of the second rotating plate 13 are respectively rotatably connected to the extending ends of the trapezoidal platforms 2 on both sides, and the second rotating plate 13 is located between the trapezoidal platforms 2 on both sides. That is, a part of the first rotating plates 12 on both sides coincides with the trapezoidal platforms 2 to achieve fitting and sliding cooperation with the trapezoidal platforms 2, and the other part is located between the trapezoidal platforms 2 on both sides to facilitate rotatable connection with the second rotating plate 13. In this way, since the second rotating plate 13 is connected to one side surface of the first rotating plate 12, that is, the second rotating plate 13 is rotatably connected to the rear side surface of the first rotating plate 12. Thus, when the first rotating plate 12 rotates backward, it will drive the second rotating plate 13 to rotate around the rotation axis of the first rotating plate 12 as the center. When the first rotating plate 12 rotates forward, it will not conflict with the second rotating plate 13, but only drive the second rotating plate 13 to move forward appropriately, and the second rotating plate 13 still remains in the vertical state.
[0044] The baffle 15 is connected to one side of the frame 9, and the baffle 15 is located on the side of the first rotating plate 12 away from the second rotating plate 13. Sliding grooves 16 are provided on the front and rear sides of the workbench 1. The lower end of the baffle 15 is slidably connected in the sliding groove 16. With such a setting of the baffle 15, when the first rotating plate 12 rotates forward, it can drive the second rotating plate 13 to move forward appropriately. The vertically arranged second rotating plate 13 will conflict with the baffle 15, causing the second rotating plate 13 to rotate forward to a limited position. After the cotton collecting and forming process of the glass wool 36 is completed, through the limitation of the vertically arranged second rotating plate 13 and the baffle 15, the push plate 14 is driven to push the glass wool 36 to move backward into the curing furnace 4. The provision of the sliding groove 16 facilitates the second rotating plate 13 to move when the overall rotation direction of the first rotating plate 12 is separated from the trapezoidal platform 2. When the push plate 14 slides therein, it will not cause the push plate 14 to conflict with the workbench 1 and be limited, thus hindering the adjustment.
[0045] Specifically:
[0046] The frame 9 reciprocally slides from back to front above the workbench 1. At this time, the frame 9 only drives the first rotating plate 12 to fit and slide with the trapezoidal platform 2, and controls the first rotating plate 12 not to separate from the front side of the trapezoidal platform 2. In this way, under the resistance of the upper end surface of the trapezoidal platform 2, the first rotating plate 12 will rotate to a horizontal state backward, and then the first rotating plate 12 drives the second rotating plate 13 to rotate to the horizontal state synchronously. By controlling the cooperation between the frame 9, the trapezoidal platform 2 and the first rotating plate 12, the first rotating plate 12 can perform reciprocating sliding in the backward horizontal rotation state, thereby controlling the nozzle 11 to spray binders such as phenolic resin onto the glass wool 36 below it;
[0047] The frame 9 slides forward until the first rotating plate 12 disengages from the trapezoidal platform 2. At this time, without the resistance of the trapezoidal platform 2, the first rotating plate 12 will drive the second rotating plate 13 to rotate from the horizontal state to the vertical state under the action of gravity. Then, after controlling the upper mold 6 to cooperate with the lower mold groove 7 for cotton collection and forming, the frame 9 is controlled to move backward again. At this time, the first rotating plate 12 will re-contact the trapezoidal platform 2, but this time it is a sliding cooperation with the trapezoidal platform 2 from front to back. Therefore, the first rotating plate 12 will reverse to the forward horizontal state. At this time, the first rotating plate 12 cannot form a contact with the second rotating plate 13, but the rotation connection point between the second rotating plate 13 and the first rotating plate 12 will move forward to the front side of the rotation axis of the first rotating plate 12, driving the second rotating plate 13 to be vertically located in front of the rotation axis of the first rotating plate 12. At this time, the vertical second rotating plate 13 will form a forward contact with the front baffle 15. Then, as the push plate 14 is driven to move backward, it will push the cotton-collected and formed glass wool 36 into the curing furnace 4 for curing, realizing an integrated and efficient processing operation, and at the same time enabling efficient loading and unloading;
[0048] Embodiment 2:
[0049] As Figures 1 - 8 shown, the present invention discloses a glass wool curing device. Compared with Embodiment 1, the structure of the driving component is disclosed in this embodiment.
[0050] The driving component includes a second chute 17, a sliding frame 18, a sliding plate 19, a sliding rod 22, a sliding seat 23, a rotating rod 24, a connecting rod 25, and a lifting plate 26. The second chute 17 is opened on the upper end surface of the left and right sides of the workbench 1. The sliding frame 18 is connected to the lower left and right sides of the workbench 1. The sliding plate 19 is slidably sleeved on the outer side of the sliding frame 18, and the upper end of the sliding plate 19 penetrates through the second chute 17 and extends above the workbench 1. The calibration plate 20 is connected to the upper extension end of the sliding plate 19. A spring 21 sleeved on the outer side of the sliding frame 18 is connected between the sliding plate 19 and the sliding frame 18. The sliding rod 22 is connected to the workbench 1. The sliding seat 23 is slidably sleeved on the outer side of the sliding rod 22. A rotating rod 24 is rotatably connected between the sliding seat 23 and the sliding plate 19. The upper end of the connecting rod 25 is connected to the upper mold 6. The lower end of the connecting rod 25 slidably penetrates through the workbench 1 and extends below the sliding seat 23, and a lifting plate 26 that cooperates with and contacts the lower end surface of the sliding seat 23 is connected to the extension end.
[0051] Before spraying phenolic resin on the glass wool 36, first control the upper mold 6 to move upward, pull the lifting plate 26 to drive the sliding seat 23 to move upward, so as to push the rotating rod 24 to rotate, drive the calibration plates 20 on both sides to approach each other, and straighten the glass wool 36 that may be placed obliquely between the calibration plates 20 on both sides, so as to facilitate the subsequent cooperation between the upper mold 6 and the lower mold groove 7 to collect and form the glass wool 36.
[0052] Embodiment 3:
[0053] AsFigure 2 As shown, the present invention discloses a glass wool curing device. Compared with Embodiment 2, this embodiment discloses the relevant structures of the curing furnace 4 and the equipment used in conjunction with the workbench 1.
[0054] Furnace doors 31 are provided on both sides of the curing furnace 4. Heating devices 32 are installed on the top and both inner walls of the curing furnace 4. A conveyor belt 33 is provided on the front side of the workbench 1. The glass wool 36 is arranged on the conveyor belt 33. A telescopic member 34 is installed on the side of the conveyor belt 33 away from the workbench 1, and the output end of the telescopic member 34 is connected to a vertical plate 35. The setting of the conveyor belt 33 enables the continuous supply of glass wool 36 on the front side of the workbench 1. Then, the telescopic member 34 drives the vertical plate 35 to move towards the workbench 1, so as to drive the glass wool 36 on the conveyor belt 33 to be transferred onto the workbench 1 for curing processing. Since the vertical plate 35 is perpendicular to the left and right sides of the workbench 1, the glass wool 36 pushed onto the workbench 1 is in a state parallel to the two sides of the workbench 1, and the position pushed onto the workbench 1 can be set, but it may not be centered in the middle of the workbench 1. Therefore, it is necessary to drive the calibration plate 20 through the driving assembly to adjust the glass wool 36 to be centered.
[0055] According to the disclosure and teaching of the above specification, those skilled in the art to which the present invention pertains can also make changes and modifications to the above embodiments. Therefore, the present invention is not limited to the specific embodiments disclosed and described above, and some modifications and changes to the present invention should also fall within the protection scope of the claims of the present invention. In addition, although some specific terms are used in this specification, these terms are only for convenience of description and do not constitute any limitation to the present invention.
Claims
1. A glass wool curing device, comprising a workbench (1), trapezoidal platforms (2) are respectively and evenly connected to both sides of the workbench (1), and a curing furnace (4) is arranged at the rear side of the workbench (1), characterized in that, A upper mold (6) is slidably connected to the workbench (1), and a lower mold groove (7) matching the upper mold (6) is formed on the tabletop of the workbench (1). A frame (9) is slidably connected to the workbench (1). Nozzles (11) are arrayedly installed on the lower end surface of the frame (9). Rotating plates one (12) that are in sliding fit with the upper end surface of the trapezoidal table (2) are symmetrically and rotatably connected to both sides of the frame (9). A rotating plate two (13) is arranged between the rotating plates one (12). The two ends of the rotating plate two (13) are respectively rotatably connected to the rotating plates one (12) on both sides. A push plate (14) is connected to the lower end of the rotating plate two (13). A baffle (15) for limiting the rotating plate two (13) is connected to the frame (9). A calibration plate (20) for straightening and calibrating the glass wool (36) is slidably connected to the workbench (1). A driving assembly is further arranged on the workbench (1). The driving assembly is used to drive the two calibration plates (20) on both sides to approach or move away from each other synchronously so as to straighten the glass wool (36).
2. The glass wool curing device according to claim 1, characterized in that, Guide rails two (5) are connected to both sides of the upper end surface of the workbench (1). Guide rail blocks two (27) that slide in the guide rails two (5) are connected to both sides of the upper mold (6). Mounting seats (30) are connected to both sides of the workbench (1). The guide rails two (5) are mounted on the mounting seats (30).
3. The glass wool curing device according to claim 2, characterized in that, Guide rods (28) are arranged on the front and rear sides of each of the guide rail blocks two (27), and the guide rods (28) are connected to the workbench (1). A slider (29) that is slidably sleeved outside the guide rod (28) is connected to the guide rail block two (27).
4. A glass wool curing device according to claim 1, wherein, Guide rails one (3) are connected to the left and right sides of the lower end surface of the workbench (1). Guide rail blocks one (8) are slidably connected in the guide rails one (3). The two ends of the frame (9) are respectively connected to the guide rail blocks one (8) on both sides and are slidably connected to the workbench (1) through the guide rail blocks one (8).
5. A glass wool curing device according to claim 1, characterized in that, The frame (9) is designed in a rectangular shape and is located above the trapezoidal table (2). Spray pipes (10) are installed on the lower end surfaces of the front and rear side frames of the frame (9). The nozzles (11) are installed at equal intervals along the axial direction of the spray pipes (10).
6. The glass wool curing device according to claim 1, characterized in that, The mutually approaching ends of the two rotating plates one (12) extend between the two trapezoidal tables (2). The two ends of the rotating plate two (13) are respectively rotatably connected to the extending ends of the two trapezoidal tables (2), and the rotating plate two (13) is located between the two trapezoidal tables (2).
7. A glass wool curing device according to claim 1, wherein, The baffle (15) is connected to one side of the frame (9), and the baffle (15) is located on the side of the rotating plate one (12) away from the rotating plate two (13). Chute one (16) is formed on the front and rear sides of the workbench (1). The lower end of the baffle (15) is slidably connected in the chute one (16).
8. The glass wool curing device according to claim 1, characterized in that, The driving assembly includes a second chute (17), a carriage (18), a sliding plate (19), a sliding rod (22), a sliding seat (23), a rotating rod (24), a connecting rod (25), and a lifting plate (26). The second chute (17) is opened on the left and right sides of the upper end surface of the workbench (1). The carriage (18) is connected to the left and right sides of the lower end of the workbench (1). The sliding plate (19) is slidably sleeved on the outer side of the carriage (18), and the upper end of the sliding plate (19) penetrates through the second chute (17) and extends above the workbench (1). The calibration plate (20) is connected to the upper side extension end of the sliding plate (19). A spring (21) sleeved on the outer side of the carriage (18) is connected between the sliding plate (19) and the carriage (18). The sliding rod (22) is connected to the workbench (1). The sliding seat (23) is slidably sleeved on the outer side of the sliding rod (22). A rotating rod (24) is rotatably connected between the sliding seat (23) and the sliding plate (19). The upper end of the connecting rod (25) is connected to the upper die (6). The lower end of the connecting rod (25) slidably penetrates through the workbench (1) and extends below the sliding seat (23), and a lifting plate (26) that cooperates with and abuts against the lower end surface of the sliding seat (23) is connected to the extension end.
9. The glass wool curing device according to claim 1, characterized in that, Furnace doors (31) are provided on both sides of the curing furnace (4), and heating devices (32) are installed on the top and both inner walls of the curing furnace (4).
10. A glass wool curing device according to claim 1, characterized in that, A conveyor belt (33) is provided on the front side of the workbench (1). The glass wool (36) is arranged on the conveyor belt (33). A telescopic member (34) is installed on the side of the conveyor belt (33) away from the workbench (1), and a vertical plate (35) is connected to the output end of the telescopic member (34).
Citation Information
Patent Citations
Glass wool curing device
CN209440850U