Cutting device for glass steel production
Patent Information
- Application Number
- CN202522077466.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-26
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-09-26
AI Technical Summary
传统的玻璃钢切割方式多依赖人工操作,工人手持切割工具对玻璃钢进行切割
[0015]本实用新型中,通过设置的一种玻璃钢生产用切割装置,能够实现以下效果:1.本装置通过输送组件自动输送玻璃钢,横向移动组件带动等离子切割装置精准移动切割,替代了人工操作。输送电机驱动输送辊稳定输送,避免人工操作的误差,使切割精度大幅提高,同时自动化运行也极大提升了切割效率,能满足大规模玻璃钢生产的需求;2.输送辊上的磁吸卡紧槽口与限位板配合,可对玻璃钢进行可靠的磁吸限位固定,防止玻璃钢在输送和切割过程中发生偏移,从输送环节就为精准切割提供保障,确保切割后玻璃钢尺寸一致性好;3.横向电动滑轨与横向电动滑块的配合,使横向移动组件移动稳定且精度高,避免切割头晃动;液压驱动机构可灵活驱动等离子切割装置上下移动,能根据不同厚度的玻璃钢快速调整切割高度,提升了装置对不同规格玻璃钢的适应性,也进一步保证了切割效率和精度;4.切割机架顶部的卡合轨道与横向移动组件的卡合座配合,使横向移动组件安装稳固,在运行过程中不易出现松动等问题,为整个切割过程的稳定进行提供了结构支撑,进一步保障了切割的准确性和设备运行的可靠性;5.设置的吸尘罩能在切割过程中及时吸收产生的粉尘,既避免了粉尘对车间环境的污染,保护了操作人员的身体健康,又防止粉尘堆积影响设备正常运行,延长了设备的使用寿命。
Smart Images

Figure CN224780692U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of fiberglass production equipment, specifically a cutting device for fiberglass production. Background Technology
[0002] Cutting is one of the key processes in fiberglass production. Traditional fiberglass cutting methods mostly rely on manual operation, with workers using hand-held cutting tools to cut the fiberglass.
[0003] However, manual cutting has many problems. On the one hand, the precision of manual cutting is difficult to guarantee. Different workers have different operating techniques and experience, resulting in poor dimensional consistency of the cut fiberglass, which cannot meet the requirements of high-precision production. On the other hand, manual cutting is inefficient. For large-scale fiberglass production, manual cutting consumes a lot of time and labor costs, which seriously restricts the production progress.
[0004] Therefore, it is necessary to design a cutting device for fiberglass production to solve the problems mentioned above. Utility Model Content
[0005] The purpose of this invention is to provide a cutting device for fiberglass production to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution:
[0007] A cutting device for fiberglass production includes a cutting frame, a conveying assembly, a lateral moving assembly, a plasma cutting device, a limiting assembly, and a control device. The conveying assembly is located inside the cutting frame and is used to convey the fiberglass to be cut. The lateral moving assembly is located above the cutting frame and is used to drive the plasma cutting device to move laterally. The plasma cutting device is mounted on the lateral moving assembly and is used to cut the fiberglass on the conveying assembly. The limiting assembly is located on top of the conveying assembly and is used to limit and fix the fiberglass during conveying and cutting. The control device is electrically connected to the conveying assembly, the lateral moving assembly, and the plasma cutting device and is used to control the operation of the entire device.
[0008] Furthermore, the conveying assembly includes multiple conveying rollers and a conveying motor, with the conveying motor located below the conveying assembly. The conveying motor drives the conveying rollers to rotate, thereby achieving automated conveying of the fiberglass.
[0009] Furthermore, each conveyor roller is provided with a magnetic clamping slot, and a limit plate is inserted and fixed in the magnetic clamping slot. Through the dual action of magnetic attraction and mechanical limiting, the limiting and fixing effect on the fiberglass is enhanced.
[0010] Furthermore, the lateral movement component includes a lateral electric slide rail and a lateral electric slider. The lateral electric slider can slide along the lateral electric slide rail, thereby driving the plasma cutting device to achieve stable lateral movement.
[0011] Furthermore, a hydraulic drive mechanism is fixedly installed on the outer side of the horizontal electric slider. The bottom telescopic end of the hydraulic drive mechanism is fixedly connected to the plasma cutting device through a connecting frame, which can drive the plasma cutting device to move up and down flexibly to adapt to the cutting needs of fiberglass of different thicknesses.
[0012] Furthermore, a dust extraction hood is installed below the lateral moving component corresponding to the plasma cutting device to absorb dust generated during the cutting process in real time, thereby reducing environmental pollution.
[0013] Furthermore, locking rails are provided on the top left and right sides of the cutting frame, and locking seats are provided on the bottom left and right sides of the lateral moving component. The lateral moving component is fixedly connected by the locking seats and locking rails, which enhances the stability of the overall structure.
[0014] Compared with the prior art, the beneficial effects of this utility model are:
[0015] This utility model, through the design of a cutting device for fiberglass production, achieves the following effects: 1. This device automatically transports fiberglass via a conveying component, and the lateral moving component drives the plasma cutting device for precise cutting, replacing manual operation. The conveying motor drives the conveying rollers for stable transport, avoiding errors from manual operation and significantly improving cutting accuracy. Simultaneously, automated operation greatly enhances cutting efficiency, meeting the needs of large-scale fiberglass production; 2. The magnetic clamping slots on the conveying rollers, in conjunction with the limiting plate, reliably magnetically limit and fix the fiberglass, preventing deviation during transport and cutting. This ensures precise cutting from the transport stage, guaranteeing good dimensional consistency of the cut fiberglass; 3. The cooperation between the lateral electric slide rail and the lateral electric slider ensures stable and high-precision movement of the lateral moving component, preventing cutting head wobbling; the hydraulic drive mechanism can flexibly drive the plasma cutting device up and down, adapting to different... Thick fiberglass allows for rapid adjustment of the cutting height, enhancing the device's adaptability to different fiberglass specifications and further ensuring cutting efficiency and precision. 4. The locking rail at the top of the cutting frame cooperates with the locking seat of the lateral movement component, ensuring a stable installation of the lateral movement component and preventing loosening during operation. This provides structural support for the stable operation of the entire cutting process, further guaranteeing cutting accuracy and equipment reliability. 5. The installed dust extraction hood effectively absorbs dust generated during cutting, preventing dust pollution of the workshop environment, protecting the health of operators, and preventing dust accumulation from affecting normal equipment operation, thus extending the equipment's service life. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model;
[0017] Figure 2 This is a schematic diagram of the main structure of this utility model;
[0018] Figure 3 This is a top view of the structure of this utility model;
[0019] Figure 4 This is a schematic diagram of the connection structure between the lateral moving component and the plasma cutting device of this utility model.
[0020] In the diagram: 1. Cutting frame; 2. Conveying assembly; 3. Lateral movement assembly; 4. Plasma cutting device; 5. Limiting assembly; 6. Control device; 21. Conveying roller; 22. Conveying motor; 23. Magnetic clamping slot; 24. Limiting plate; 31. Lateral electric slide rail; 32. Lateral electric slider; 33. Hydraulic drive mechanism; 34. Connecting frame; 7. Dust hood; 8. Clamping track; 9. Clamping seat. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.
[0022] To facilitate understanding of this utility model, a more comprehensive description will be given below with reference to the accompanying drawings. Several embodiments of this utility model are provided. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided so that the disclosure of this utility model will be more thorough and complete.
[0023] Example 1
[0024] Please see Figure 1 This embodiment provides a cutting device for fiberglass production, as shown in the figure. The device includes a cutting frame 1, a conveying assembly 2, a transverse moving assembly 3, a plasma cutting device 4, a limiting assembly 5, and a control device 6.
[0025] Example 2
[0026] Please see Figure 1 as well as Figure 3Based on Embodiment 1, this embodiment further defines the cutting frame 1 as the basic support structure of the entire device, providing a platform for the installation and operation of other components. The conveying component 2 is located inside the cutting frame 1 and is used to convey the fiberglass to be cut. It includes multiple conveying rollers 21 and a conveying motor 22 located below the conveying component 2. The conveying motor 22 drives the conveying rollers 21 to rotate, thereby realizing the conveying of fiberglass. Each conveying roller 21 is provided with a corresponding magnetic clamping slot 23. A limit plate 24 is inserted and fixed inside the magnetic clamping slot 23. Through the cooperation of the magnetic clamping slot 23 and the limit plate 24, the fiberglass can be limited and fixed to prevent it from shifting during the conveying process.
[0027] Example 3
[0028] Please see Figure 2 as well as Figure 4 Based on Embodiment 1, this embodiment further defines the lateral movement component 3 as being located above the cutting frame 1, used to drive the plasma cutting device 4 to move laterally. It includes a lateral electric slide rail 31 and a lateral electric slider 32. The lateral electric slider 32 can slide on the lateral electric slide rail 31, thereby driving the plasma cutting device 4 to move laterally. A hydraulic drive mechanism 33 is also fixedly installed on the outer side of the lateral electric slider 32, used to drive the plasma cutting device 4 to move up and down. The bottom telescopic end of the hydraulic drive mechanism 33 is fixedly connected to the plasma cutting device 4 through a connecting frame 34. In this way, the height of the plasma cutting device 4 can be flexibly adjusted according to the thickness of the fiberglass, etc., to ensure the cutting effect.
[0029] Example 4
[0030] Please see Figure 4 Based on Embodiment 1, this embodiment further specifies that the plasma cutting device 4 is installed on the transverse moving assembly 3 for cutting the fiberglass on the conveying assembly 2. A dust collection hood 7 is provided below the transverse moving assembly 3 corresponding to the plasma cutting device 4. The opening of the dust collection hood 7 is funnel-shaped. During the cutting process, the dust collection hood 7 can absorb the generated dust, reducing the impact of dust on the environment and equipment. The rear end of the dust collection hood 7 has a standard interface reserved, which can be connected to external dust collection equipment (such as industrial vacuum cleaners or bag filters) through pipes to realize centralized collection and treatment of dust and avoid secondary pollution.
[0031] Example 5
[0032] Please see Figure 1 as well as Figure 4Based on embodiment 1, this embodiment further defines the limiting component 5 as being located on the top of the conveying component 2, which is used to limit the fiberglass during conveying and cutting. The top left and right sides of the cutting frame 1 are equipped with locking rails 8, and the bottom left and right sides of the transverse moving component 3 are equipped with locking seats 9 corresponding to the locking rails 8. The transverse moving component 3 is fixedly connected to the locking rails 8 by locking seats 9. This connection method makes the transverse moving component 3 installed stably and less prone to loosening during operation.
[0033] Example 6
[0034] Please see Figure 1 Based on Example 1, this embodiment further defines the control device 6 as electrically connected to the conveying component 2, the transverse moving component 3, and the plasma cutting device 4, for controlling the operation of the entire device. The operator can set relevant parameters, such as conveying speed and cutting path, through the control device 6 to realize the automated operation of the device.
[0035] The working process of this utility model is as follows: When using the fiberglass production cutting device, the cutting parameters are first set by the control device 6, and the external dust collection equipment is started at the same time to form a stable negative pressure in the discharge channel of the dust hood 7, preparing for dust absorption. Then, the fiberglass to be cut is placed on the conveying roller 21 of the conveying assembly 2. The magnetic clamping slot 23 on the conveying roller 21 cooperates with the limiting plate 24 to limit and fix the fiberglass and prevent conveying deviation. Subsequently, the control device 6 starts the conveying motor 22 to drive the conveying roller 21 to rotate and convey the fiberglass to the bottom of the plasma cutting device 4. When the fiberglass is conveyed to the cutting position, the control device 6 starts the transverse movement assembly 3, so that the transverse electric slider 32 moves along the... The horizontal electric slide rail 31 moves, simultaneously driving the plasma cutting device 4 and the dust collection hood 7 to move horizontally in sync. The dust collection hood 7 is always aligned with the cutting point of the plasma cutting device 4, ensuring that the dust generated during cutting does not escape the dust collection range. The plasma cutting device 4 cuts the fiberglass according to the preset path. The fiberglass dust and debris generated during the cutting process are sucked into the hood in real time under the negative pressure of the dust collection hood 7. If the thickness of the fiberglass changes, the control device 6 can drive the hydraulic drive mechanism 33 to extend and retract, and adjust the height of the plasma cutting device 4 through the connecting frame 34. At this time, the dust collection hood 7 moves up and down synchronously with the plasma cutting device 4, always maintaining a reasonable distance from the cutting point to ensure that the dust absorption effect is not weakened.
[0036] After cutting is completed, the conveying component 2 transports the cut fiberglass to the next process. The lateral moving component 3 drives the plasma cutting device 4 and the dust collection hood 7 back to their initial positions. The dust collection hood 7 continues to maintain a negative pressure state for 10-30 seconds to absorb the dust remaining in the cutting area and prevent secondary dust diffusion during subsequent operations. After turning off the external dust collection equipment, the dust collection hood 7 can be removed through the detachable fixing bracket to clean the inner wall of the hood and prevent dust accumulation from affecting the next use.
[0037] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A cutting device for fiberglass production, characterized in that: The device includes a cutting frame (1), a conveying assembly (2) located inside the cutting frame (1), a transverse moving assembly (3) located above the cutting frame (1), and a plasma cutting device (4) located on the transverse moving assembly (3). The top of the conveying assembly (2) is provided with a limiting assembly (5). The conveying assembly (2) is used to convey the fiberglass to be cut, and the limiting assembly (5) is used to limit the fiberglass. The plasma cutting device (4) cuts the fiberglass on the conveying assembly (2). It also includes a control device (6) for controlling the cutting device.
2. The cutting device for fiberglass production according to claim 1, characterized in that: The conveying assembly (2) includes a plurality of conveying rollers (21) and a conveying motor (22) located below the conveying assembly (2), the conveying motor (22) driving the conveying rollers (21) to rotate in order to convey fiberglass.
3. The cutting device for fiberglass production according to claim 2, characterized in that: Each of the conveying rollers (21) is provided with a corresponding magnetic clamping slot (23), and a limiting plate (24) is inserted and fixed inside the magnetic clamping slot (23) for limiting and fixing the fiberglass.
4. The cutting device for fiberglass production according to claim 1, characterized in that: The lateral movement component (3) includes a lateral electric slide rail (31) and a lateral electric slider (32), the lateral electric slider (32) sliding on the lateral electric slide rail (31) to drive the plasma cutting device (4) to move laterally.
5. A cutting device for fiberglass production according to claim 4, characterized in that: A hydraulic drive mechanism (33) is also fixedly installed on the outside of the horizontal electric slider (32) to drive the plasma cutting device (4) to move up and down. The bottom telescopic end of the hydraulic drive mechanism (33) is fixedly connected to the plasma cutting device (4) through the connecting frame (34).
6. The cutting device for fiberglass production according to claim 1, characterized in that: A dust suction hood (7) is provided below the lateral moving component (3) corresponding to the plasma cutting device (4) to absorb the dust generated during the cutting process.
7. A cutting device for fiberglass production according to claim 1, characterized in that: The top left and right sides of the cutting frame (1) are provided with locking rails (8), and the bottom left and right sides of the transverse moving component (3) are provided with locking seats (9) corresponding to the locking rails (8). The transverse moving component (3) is fixedly connected by locking seats (9) and locking rails (8).