Debugging mold for glass fiber reinforced plastic production
By sliding the connecting sleeve on the roller surface and utilizing the cooperation of hydraulic rods and plug rods, the problem of difficult fiberglass removal in existing fiberglass production molds has been solved, enabling rapid material discharge and efficient replacement, and reducing the burden on workers.
Patent Information
- Application Number
- CN202423003164.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-12-06
AI Technical Summary
The existing debugging molds used in fiberglass production require separating the rollers from the transmission device, and the fiberglass cannot be removed from the roller surface without moving the rollers and the transmission device.
A debugging mold for fiberglass production was designed. By sliding the left and right sliding sleeves on the surface of the roller, and using the cooperation of hydraulic rods and plug rods, the sliding sleeves can be moved and disconnected, which facilitates the sliding out of the fiberglass.
The fiberglass can be quickly slid off the roller surface without lifting the roller, which improves work efficiency, reduces the burden on workers, and is highly applicable.
Smart Images

Figure CN223589857U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of glass steel processing, and particularly relates to a debugging mold for glass steel production. BACKGROUND
[0002] Glass steel, i.e. fiber reinforced plastic, is generally made of glass fiber reinforced unsaturated polyester, epoxy resin and phenolic resin matrix. The process flow of glass steel generally comprises mold manufacturing, mold processing, release agent, gel coat, resin (putty), felt / brocade / compound felt (multi-layer board / light wood), curing, skeleton (rib) assembly, mold removal and finishing assembly. The mold is generally a roller shaft used for layer-by-layer winding of glass steel production materials.
[0003] A debugging mold for glass steel production is disclosed in a patent with the publication number CN215849166U, which comprises a debugging table, vertical plates, lifting frames, driven pulleys and drive pulleys. Four vertical plates are welded and fixed on the top of the debugging table. Lifting frames are welded and fixed on the outer walls of the debugging table on both sides. Each of the two adjacent vertical plates is rotatably connected with a driven pulley through a bearing. Each of the other two adjacent vertical plates is rotatably connected with a drive pulley through a bearing. The shafts of the two drive pulleys are connected with the output shaft of the drive motor through a shaft coupling. The two drive motors are respectively installed and fixed on the outer side walls of the two vertical plates through a plurality of bolts. Two transmission pulleys are rollingly connected between the two drive pulleys and the two driven pulleys. A roller shaft is welded and fixed between the two transmission pulleys. The debugging mold for glass steel production saves manpower, has high production efficiency and good safety.
[0004] However, the debugging mold for glass steel production needs to separate the roller shaft from the transmission device, and the glass steel cannot be taken out from the surface of the roller shaft without moving the roller shaft and the transmission device. CONTENT OF THE UTILITY MODEL
[0005] The application aims to solve the problem that the debugging mold for glass steel production needs to separate the roller shaft from the transmission device, and the glass steel cannot be taken out from the surface of the roller shaft without moving the roller shaft and the transmission device, and provides a debugging mold for glass steel production.
[0006] The technical scheme adopted by the application is as follows: a debugging mold for glass steel production, comprising a roller shaft, characterized in that: a transmission shaft is fixedly connected to the right end of the roller shaft, a motor is installed at the top end of the transmission shaft, a plug-in shaft is movably connected to the left end of the roller shaft, a sliding seat is fixedly connected to the top end of the plug-in shaft, a base is slidingly connected to the lower end of the sliding seat, a hydraulic rod is fixedly installed on the top of the base, a sliding seat is fixedly connected to the top end of the hydraulic rod, a left supporting rod is slidingly connected to the other end of the sliding seat away from the hydraulic rod, a left sliding sleeve is slidingly connected to the left end of the surface of the roller shaft, a right sliding sleeve is slidingly connected to the right end of the surface of the roller shaft, a glass steel is sleeved on the surface of the roller shaft between the left sliding sleeve and the right sliding sleeve, the left sliding sleeve is fixedly connected to the left supporting rod at the lower end, and the right sliding sleeve is fixedly connected to the right supporting rod at the lower end.
[0007] By adopting the above technical scheme, the surface of the roller shaft is used for winding and sleeving the glass steel waiting for processing, and the left sliding sleeve and the right sliding sleeve are slidingly sleeved on the surface of the roller shaft and located at the left and right ends of the glass steel respectively. When processing, the left and right ends of the roller shaft are movably connected to the plug-in shaft and fixedly connected to the transmission shaft respectively. The motor drives the transmission shaft to rotate, and then drives the roller shaft to rotate. After the processing is completed, when the glass steel needs to be taken out, the output of the motor can be stopped first. Then the hydraulic rod on the left end surface of the base is started, driving the sliding seat to move to the left end, and the plug-in shaft is separated from the left end of the roller shaft. While the sliding seat moves, the left supporting rod will be driven to move to the left end through the plug-in rod, and then the left sliding sleeve and the right sliding sleeve will slide to the left end. After waiting for the left sliding sleeve to move away from the surface of the roller shaft as a whole, the bolts on the top of the left sliding sleeve are removed, and the connection between the left sliding sleeve and the right sliding sleeve is released. At this time, the left supporting rod is slid to one side of the sliding seat through the plug-in rod, leaving enough space for the left end of the roller shaft, and finally the glass steel on the surface of the roller shaft is pushed to slide out of the surface of the roller shaft to the left end.
[0008] In a preferred embodiment, the left end of the roller shaft is fixedly connected to a connecting sleeve, and the plug-in shaft is movably connected to the left end of the roller shaft through the connecting sleeve.
[0009] By adopting the above technical scheme, the connecting sleeve is used to install the plug-in shaft to provide space for the rotation of the roller shaft.
[0010] In a preferred embodiment, the top of the right sliding sleeve is fixedly connected to a connecting plate, and the other end of the connecting plate away from the right sliding sleeve is threadedly connected to a bolt.
[0011] By adopting the above technical scheme, the right sliding sleeve is connected to the left sliding sleeve through the connecting plate.
[0012] In a preferred embodiment, a threaded groove is formed in the top of the left sliding sleeve, and a bolt is threadedly connected in the threaded groove.
[0013] By adopting the technical scheme, the threaded groove at the top of the left sliding sleeve is used for mounting the bolt, and the left sliding sleeve and the right sliding sleeve can limit the glass fiber reinforced plastic.
[0014] In a preferred embodiment, the bottom of the left supporting rod is provided with a sliding hole, and the bottom of the right supporting rod is provided with a sliding hole.
[0015] By adopting the technical scheme, the bottom of the left supporting rod and the bottom of the right supporting rod are provided with sliding holes, which can slide on the surface of the sliding rod, and the bottom of the roller shaft can be assisted and supported.
[0016] In a preferred embodiment, the surface of the base is provided with a sliding groove, and the sliding groove is fixedly connected with a sliding rod inside.
[0017] By adopting the technical scheme, the sliding rod installed in the sliding groove can provide a sliding space for the sliding seat, the left supporting rod and the right supporting rod.
[0018] In a preferred embodiment, the inside of the left supporting rod and above the sliding hole is provided with a plug-in groove, the plug-in groove is slidably connected with a plug-in rod inside, and the top end of the plug-in rod is fixedly connected with a sliding seat.
[0019] By adopting the technical scheme, the front end surface of the plug-in rod is provided with two limiting screws, which can limit the left supporting rod in the middle. The sliding seat can be moved to pull the left supporting rod through the plug-in rod. When the left supporting rod needs to be slid alone, the screws on the surface of the plug-in rod can be removed.
[0020] In a preferred embodiment, the right end surface of the base is fixedly connected with a fixed seat, and the top of the fixed seat is provided with a motor.
[0021] By adopting the technical scheme, the fixed seat is used for supporting the motor, and the motor can be started to drive the roller shaft to rotate.
[0022] As described above, due to the adoption of the above technical scheme, the beneficial effects of the present application are:
[0023] In the present application, the hydraulic rod on the left end surface of the base is started to move the sliding seat to the left end, and the plug-in shaft is separated from the left end of the roller shaft. After waiting for the left sliding sleeve to move away from the surface of the roller shaft, the bolts on the top of the left sliding sleeve are removed to disconnect the left sliding sleeve and the right sliding sleeve. Then, the left supporting rod is slid to one side of the sliding seat through the plug-in rod, and enough space is reserved for the left end of the roller shaft. Finally, the glass fiber reinforced plastic on the surface of the roller shaft is pushed to slide out of the surface of the roller shaft to the left end, and the discharging is completed. Compared with the traditional glass fiber reinforced plastic discharging, the device does not need to lift the roller shaft, and the glass fiber reinforced plastic can be quickly slid out of one end of the roller shaft, which is convenient for subsequent replacement of new glass fiber reinforced plastic, has high work efficiency, strong applicability and reduces the burden of workers. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figure 1 A debugging mold structure schematic diagram for glass steel production in the application;
[0025] Figure 2 A plan structure diagram when the debugging mold is processed in the application;
[0026] Figure 3 A plan structure diagram when the glass steel is disassembled in the application.
[0027] Marked in the figure: 1, roller shaft; 2, left sliding sleeve; 3, right sliding sleeve; 4, transmission shaft; 5, motor; 6, left support rod; 7, right support rod; 8, plug-in slot; 9, sliding hole; 10, connecting plate; 11, bolt; 12, base; 13, sliding groove; 14, sliding rod; 15, fixed seat; 16, glass steel; 17, connecting sleeve; 18, plug-in shaft; 19, sliding seat; 20, plug-in rod; 21, hydraulic rod; 22, threaded slot. DETAILED DESCRIPTION
[0028] To make the purpose, technical scheme and advantages of the embodiments of the application more clear, the technical scheme in the embodiments of the application will be described clearly and completely below in combination with the embodiments of the application. Obviously, the described embodiments are part of the embodiments of the application, rather than all the embodiments of the application. Based on the embodiments in the application, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the application.
[0029] Embodiment:
[0030] Reference Figures 1-3, including the roller shaft 1, the right end of the roller shaft 1 is fixedly connected with the transmission shaft 4, the top end of the transmission shaft 4 is installed with the motor 5, the left end of the roller shaft 1 is movably connected with the plug-in shaft 18, the top end of the plug-in shaft 18 is fixedly connected with the sliding seat 19, the lower end of the sliding seat 19 is slidably connected with the base 12, the top of the base 12 is fixedly installed with the hydraulic rod 21, the top end of the hydraulic rod 21 is fixedly connected with the sliding seat 19, the other end of the sliding seat 19 away from the hydraulic rod 21 is slidably connected with the left supporting rod 6, the surface left end of the roller shaft 1 is slidably connected with the left sliding sleeve 2, the surface right end of the roller shaft 1 is slidably connected with the right sliding sleeve 3, the surface of the roller shaft 1 and between the left sliding sleeve 2 and the right sliding sleeve 3 is sleeved with the glass steel 16, the lower end of the left sliding sleeve 2 is fixedly connected with the left supporting rod 6, and the lower end of the right sliding sleeve 3 is fixedly connected with the right supporting rod 7. The surface of the roller shaft 1 is used for winding the glass steel 16 to be processed, and the left sliding sleeve 2 and the right sliding sleeve 3 are slidably sleeved on the surface of the roller shaft 1 and at the left and right ends of the glass steel 16 respectively. When processing, the left and right ends of the roller shaft 1 are movably connected with the plug-in shaft 18 and fixedly connected with the transmission shaft 4 respectively. The motor 5 drives the transmission shaft 4 to rotate, and then drives the roller shaft 1 to rotate. After the processing is completed, when the glass steel 16 needs to be taken out, the output of the motor can be stopped first. Then the hydraulic rod 21 on the left surface of the base 12 is started, driving the sliding seat 19 to move to the left end, and the plug-in shaft 18 is away from the left end of the roller shaft 1. While the sliding seat 19 moves, the left supporting rod 6 will be driven to move to the left end through the plug-in rod 20, and then the left sliding sleeve 2 and the right sliding sleeve 3 are slid to the left end, and after the left sliding sleeve 2 is completely away from the surface of the roller shaft 1, the bolts 11 on the top of the left sliding sleeve 2 are removed, and the connection between the left sliding sleeve 2 and the right sliding sleeve 3 is released. At this time, the left supporting rod 6 is slid to one side of the sliding seat 19 through the plug-in rod 20, leaving enough space for the left end of the roller shaft 1, and finally the glass steel 16 on the surface of the roller shaft 1 is slid to the left end to slide out of the surface of the roller shaft 1, completing the discharging. Compared with the traditional glass steel discharging, the device does not need to lift the roller shaft, and the glass steel can be quickly slid out of one end of the roller shaft, facilitating subsequent replacement of new glass steel, high working efficiency, strong applicability, and reducing the burden of workers.
[0031] With reference to Figure 2 and Figure 3 , the left end of the roller shaft 1 is fixedly connected with the connecting sleeve 17, and the left end of the roller shaft 1 is movably connected with the plug-in shaft 18 through the connecting sleeve 17. The connecting sleeve 17 is used for installing the plug-in shaft 18, for providing the space for the rotation of the roller shaft 1, and for improving the stability of the device.
[0032] With reference to Figure 1 , the top of the right sliding sleeve 3 is fixedly connected with the connecting plate 10, and the other end of the connecting plate 10 away from the right sliding sleeve 3 is threadedly connected with the bolt 11. The right sliding sleeve 3 is connected with the left sliding sleeve 2 through the connecting plate 10.
[0033] With reference to Figure 1 and Figure 3The top of the left sliding sleeve 2 is provided with a threaded groove 22, and the threaded groove 22 is internally threaded connected with a bolt 11. The threaded groove 22 of the top of the left sliding sleeve 2 is used for installing the bolt 11, and the left sliding sleeve 2 and the right sliding sleeve 3 can limit the glass fiber reinforced plastic.
[0034] Referring to Figure 1 and Figure 2 The bottom of the left supporting rod 6 is provided with a sliding hole 9, and the bottom of the right supporting rod 7 is provided with a sliding hole 9. The sliding hole 9 is internally and slidingly connected with a sliding rod 14. The bottom of the left supporting rod 6 and the right supporting rod 7 is provided with a sliding hole 9, which can slide on the surface of the sliding rod 14, and can assist in supporting the bottom of the roller shaft 1.
[0035] Referring to Figure 2 The surface of the base 12 is provided with a sliding groove 13, and the sliding groove 13 is internally and fixedly connected with a sliding rod 14. The sliding rod 14 installed in the sliding groove 13 can provide a space for the sliding of the sliding seat 19, the left supporting rod 6 and the right supporting rod 7.
[0036] Referring to Figure 1 The inside of the left supporting rod 6 and above the sliding hole 9 is provided with a plug-in groove 8, and the plug-in groove 8 is internally and slidingly connected with a plug-in rod 20. The top end of the plug-in rod 20 is fixedly connected with a sliding seat 19. Two limiting screws are installed on the front end surface of the plug-in rod 20, which can limit the middle left supporting rod 6. The sliding seat 19 can be moved to drive the plug-in rod 20 to pull the left supporting rod 6. When the left supporting rod 6 needs to be slid alone, the screws on the surface of the plug-in rod 20 can be removed to reserve space for disassembling the glass fiber reinforced plastic.
[0037] Referring to Figure 2 The right end surface of the base 12 is fixedly connected with a fixed seat 15, and the top of the fixed seat 15 is installed with a motor 5. The fixed seat 15 is used for supporting the motor 5, and the starting of the motor 5 can drive the roller shaft 1 to rotate.
[0038] The implementation principle of the embodiment of the debugging mold for glass steel production is as follows: during processing, the left and right ends of the roller shaft 1 are movably connected with the plug-in shaft 18 and fixedly connected with the transmission shaft 4. The motor 5 drives the transmission shaft 4 to rotate, and then drives the roller shaft 1 to rotate. After the processing is completed, the glass steel 16 needs to be taken out, the output of the motor can be stopped first. Then the hydraulic rod 21 on the left end surface of the base 12 is started, driving the sliding seat 19 to move to the left end, so that the plug-in shaft 18 is separated from the left end of the roller shaft 1. Two limiting screws are installed on the front end surface of the plug-in rod 20, which can limit the left supporting rod 6 in the middle. The plug-in rod 20 can be pulled to pull the left supporting rod 6 by moving the sliding seat 19. When the left supporting rod 6 needs to be slid alone, the screw on the surface of the plug-in rod 20 can be removed to reserve space for the glass steel. When the sliding seat 19 moves, the left supporting rod 6 is driven to move to the left end by the plug-in rod 20, and then the left sliding sleeve 2 and the right sliding sleeve 3 are driven to slide to the left end. After the left sliding sleeve 2 is separated from the surface of the roller shaft 1, the bolt 11 on the top of the left sliding sleeve 2 is removed, and the connection between the left sliding sleeve 2 and the right sliding sleeve 3 is released. The threaded groove 22 on the top of the left sliding sleeve 2 is used to install the bolt 11, and the left sliding sleeve 2 and the right sliding sleeve 3 can limit the glass steel. Then the left supporting rod 6 is slid to one side of the sliding seat 19 through the plug-in rod 20, enough space is reserved for the left end of the roller shaft 1, and finally the glass steel 16 on the surface of the roller shaft 1 is pushed to slide to the left end of the roller shaft 1, and the discharging is completed. Compared with the traditional glass steel discharging, the device does not need to lift the roller shaft, and the glass steel can be quickly slid from one end of the roller shaft, which is convenient for subsequent replacement of new glass steel, has high work efficiency, high applicability, and reduces the burden of workers.
[0039] The above embodiments are only used to illustrate the technical solutions of the present application, but not limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. A debugging mold for glass steel production, comprising a roller shaft (1), characterized in that: The right end of the roller shaft (1) is fixedly connected with a transmission shaft (4), the top end of the transmission shaft (4) is installed with a motor (5), the left end of the roller shaft (1) is movably connected with a plug-in shaft (18), the top end of the plug-in shaft (18) is fixedly connected with a sliding seat (19), the lower end of the sliding seat (19) is slidably connected with a base (12), the top of the base (12) is fixedly installed with a hydraulic rod (21), the top end of the hydraulic rod (21) is fixedly connected with the sliding seat (19), the other end of the sliding seat (19) away from the hydraulic rod (21) is slidably connected with a left supporting rod (6), the surface left end of the roller shaft (1) is slidably connected with a left sliding sleeve (2), the surface right end of the roller shaft (1) is slidably connected with a right sliding sleeve (3), the surface of the roller shaft (1) and between the left sliding sleeve (2) and the right sliding sleeve (3) is sleeved with a glass steel (16), the lower end of the left sliding sleeve (2) is fixedly connected with the left supporting rod (6), and the lower end of the right sliding sleeve (3) is fixedly connected with a right supporting rod (7).
2. The debugging mold for glass steel production of claim 1, wherein: The left end of the roller shaft (1) is fixedly connected with a connecting sleeve (17), and the left end of the roller shaft (1) is movably connected with the plug-in shaft (18) through the connecting sleeve (17).
3. The debugging mold for fiberglass production as described in claim 1, characterized in that: The top of the right sliding sleeve (3) is fixedly connected with a connecting plate (10), and the other end of the connecting plate (10) away from the right sliding sleeve (3) is threadedly connected with a bolt (11).
4. The debugging mold for fiberglass production as described in claim 1, characterized in that: The top of the left sliding sleeve (2) is provided with a threaded groove (22), and the threaded groove (22) is internally threadedly connected with the bolt (11).
5. The debugging mold for producing glass steel according to claim 1, characterized in that: The bottom of the left supporting rod (6) is provided with a sliding hole (9), the bottom of the right supporting rod (7) is provided with a sliding hole (9), and the sliding hole (9) is slidably connected with a sliding rod (14) in the inside.
6. The debugging mold for producing glass steel according to claim 1, characterized in that: The surface of the base (12) is provided with a sliding groove (13), and the sliding groove (13) is fixedly connected with the sliding rod (14) in the inside.
7. The debugging mold for producing glass steel according to claim 1, characterized in that: The inside of the left supporting rod (6) and above the sliding hole (9) are provided with a plug-in groove (8), the plug-in groove (8) is slidably connected with a plug-in rod (20) in the inside, and the top end of the plug-in rod (20) is fixedly connected with the sliding seat (19).
8. The debugging mold for producing glass steel according to claim 1, characterized in that: The right end surface of the base (12) is fixedly connected with a fixing seat (15), and the top of the fixing seat (15) is installed with the motor (5).
Citation Information
Patent Citations
Debugging mold for glass fiber reinforced plastic production
CN215849166U