Glass fiber chamfering machine device
By designing a fiberglass chamfering machine device that includes a base support, a cloth roller and a pressing mechanism, and utilizing front and rear pressing components and a diamond saw blade, high-precision chamfering and cutting of fiberglass cloth is achieved, solving the problem of inaccurate chamfering in existing equipment and improving the overlapping quality and strength of fiberglass materials.
Patent Information
- Application Number
- CN202423205556.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2034-12-24
AI Technical Summary
Existing fiberglass beveling equipment struggles to achieve precise beveling during the cutting process, resulting in insufficient overlap quality and strength of fiberglass materials.
A fiberglass chamfering machine device was designed, which includes a base support, a cloth support roller and a pressing mechanism. By using front and rear pressing components, a chamfering mechanism and a diamond saw blade, stable pressing and high-precision cutting of fiberglass cloth can be achieved.
This improves the adaptability and flexibility of the fiberglass chamfering machine, ensures the stability and flatness of the fiberglass cloth during processing, reduces material waste, and enhances cutting accuracy and product quality.
Smart Images

Figure CN223660479U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass fiber processing technology, and in particular to a glass fiber beveling machine device. Background Technology
[0002] Fiberglass beveling equipment is an advanced mechanical device specifically designed for processing sheet fiberglass materials. Its main function is to precisely process the edges of fiberglass materials using beveling cutting technology, giving the edges a certain bevel angle. This not only optimizes the shape of the fiberglass but also greatly improves the quality and strength of the overlapping of sheet fiberglass in subsequent processes.
[0003] To better achieve the chamfering and cutting of sheet glass fibers, a glass fiber chamfering machine device was designed.
[0004] The information disclosed in this background section is intended only to enhance the understanding of the general background of this utility model and should not be construed as an admission or in any way implying that the information constitutes prior art known to those skilled in the art. Utility Model Content
[0005] This invention provides a glass fiber beveling machine device, thereby effectively solving the problems in the background art.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is: a fiberglass beveling machine device, comprising: a base support, a cloth support roller, and a pressing mechanism;
[0007] Both the cloth roller and the pressing mechanism are fixedly mounted on the base bracket. The pressing mechanism includes a front pressing component and a rear pressing component, and the cloth roller is fixedly mounted on one side of the rear pressing component.
[0008] The cloth roller is provided with a cloth roll, and the fiberglass cloth released from the cloth roll passes through the rear end pressing component and the front end pressing component;
[0009] A front support platform is provided below the front pressing component, and the front support platform is fixedly installed on the side of the base bracket away from the cloth roller;
[0010] The front-end clamping component is equipped with a chamfering mechanism, which moves horizontally to cut the fiberglass cloth.
[0011] Furthermore, the front-end clamping assembly also includes a front-end moving unit and a front-end clamping unit;
[0012] The front-end moving unit includes a first cylinder, a guide rail, a slider, and a front-end moving bracket.
[0013] The two guide rails are fixedly mounted on the base bracket in the vertical direction, the slider is slidably mounted on the guide rails, the front moving bracket is fixed on the slider, and the bottom of the first cylinder is fixedly mounted on the base bracket and is parallel to the guide rails in the horizontal direction.
[0014] The front-end pressing unit is fixedly installed on one side of the front-end movable bracket, and includes a second cylinder, a pressure plate and a first pressing plate;
[0015] The tops of the two second cylinders are fixed to one side of the front moving bracket, and the first clamping plate is fixedly disposed below the second cylinders.
[0016] Furthermore, the rear end clamping assembly is disposed on the other side of the front end moving bracket away from the first cylinder, and includes a rear end slide, a rear end bracket, and a second clamping plate;
[0017] The two rear slides are fixedly mounted on the other side of the front moving bracket away from the first cylinder, the rear bracket is mounted on the rear slides, and the second clamping plate is fixedly mounted below the rear bracket;
[0018] The rear slide is configured as a two-axis slide, which can drive the rear support to move in the vertical or horizontal direction.
[0019] Furthermore, the chamfering mechanism is slidably mounted on the front moving bracket and includes a rodless cylinder, a drive motor, and a cutter;
[0020] The rodless cylinder is fixedly mounted on the front movable bracket; the cutter is mounted on the rodless cylinder and can reciprocate along the horizontal direction; the drive motor is fixed to one side of the cutter and provides power for the rotation of the cutter's saw blade.
[0021] The saw blade is made of diamond.
[0022] Furthermore, a support slide is provided below the support roller, and the support roller can move horizontally through the support slide.
[0023] The slide table is configured as a two-axis slide table.
[0024] Furthermore, the bottom of the base support is provided with several casters, which are used to move the fiberglass beveling machine device.
[0025] Furthermore, the bottom of the base bracket is provided with several leveling bolts, which are used to adjust the level.
[0026] The beneficial effects of this utility model are as follows: by utilizing the adjustability of the front support platform, it can be precisely adjusted according to different thicknesses and chamfering requirements, thereby enhancing the adaptability and flexibility of the fiberglass chamfering machine device; the design of the front and rear clamping components ensures the stability and flatness of the fiberglass cloth during processing, reducing errors and material waste during operation. Attached Figure Description
[0027] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0028] Figure 1 This is a schematic diagram of the fiberglass beveling machine device.
[0029] Figure 2 This is a schematic diagram of the side structure of the fiberglass beveling machine device;
[0030] Figure 3 Left view of the fiberglass beveling machine device;
[0031] Figure 4 This is a schematic diagram showing the positions of the support roller and the front support platform;
[0032] Figure 5 This is a schematic diagram of the front-end clamping component structure;
[0033] Figure 6 This is a schematic diagram of the back-end clamping component structure;
[0034] Figure 7 This is a schematic diagram of the front-end support platform structure;
[0035] Reference numerals: 1. Base bracket; 11. Front support platform; 12. Cloth support slide; 13. Moving wheel; 14. Horizontal adjustment bolt; 2. Cloth support roller; 3. Pressing mechanism; 31. Front pressing assembly; 311. Chamfering mechanism; 311A. Rodless cylinder; 311B. Drive motor; 311C. Cutter; 311D. Saw blade; 312. Front moving unit; 312A. First cylinder; 312B. Guide rail; 312C. Slider; 312D. Front moving bracket; 313. Front pressing unit; 313A. Second cylinder; 313B. Pressure plate; 313C. First pressing plate; 32. Rear pressing assembly; 321. Rear slide; 322. Rear bracket; 323. Second pressing plate; 4. Cloth roll. Detailed Implementation
[0036] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0037] 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.
[0038] 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.
[0039] like Figures 1 to 4 As shown, a fiberglass beveling machine device includes: a base support 1, a cloth support roller 2, and a pressing mechanism 3;
[0040] The cloth roller 2 and the pressing mechanism 3 are both fixedly mounted on the base bracket 1. The pressing mechanism 3 includes a front pressing component 31 and a rear pressing component 32. The cloth roller 2 is fixedly mounted on one side of the rear pressing component 32.
[0041] A cloth roll 4 is provided on the cloth roller 2, and the fiberglass cloth released from the cloth roll 4 passes through the rear end pressing component 32 and the front end pressing component 31;
[0042] A front support platform 11 is provided below the front pressing component 31. The front support platform 11 is fixedly installed on the side of the base bracket 1 away from the cloth roller 2.
[0043] The front-end clamping component is equipped with a chamfering mechanism 311, which moves in the horizontal direction to cut the fiberglass cloth.
[0044] First, adjust the front-end support platform 11 back-to-back and height according to the chamfer angle of the fiberglass to ensure accurate positioning. Pull up the beginning of the sheet fiberglass cloth and guide it onto the front-end support platform 11, ensuring the fiberglass cloth is flat and wrinkle-free. Then, press the start switch, and the front-end clamping component 31 and the rear-end clamping component 32 will clamp the fiberglass cloth in sequence to fix its position. Next, the front-end clamping component 31 will cut the fiberglass cloth horizontally. Finally, after the cutting is completed, the front-end clamping component 31 and the rear-end clamping component 32 will automatically release, at which point the processed sheet fiberglass can be removed.
[0045] By utilizing the adjustability of the front support platform 11, precise adjustments can be made according to different thicknesses and chamfering requirements, enhancing the adaptability and flexibility of the fiberglass chamfering machine. The design of the front clamping component 31 and the rear clamping component 32 ensures the stability and flatness of the fiberglass cloth during processing, reducing errors and material waste during operation.
[0046] like Figure 5 As shown, the front-end clamping assembly 31 also includes a front-end moving unit 312 and a front-end clamping unit 313;
[0047] The front-end moving unit 312 includes a first cylinder 312A, a guide rail 312B, a slider 312C, and a front-end moving bracket 312D;
[0048] Two guide rails 312B are fixedly mounted on the base bracket 1 in the vertical direction. The slider 312C is slidably mounted on the guide rails 312B. The front moving bracket 312D is fixed on the slider 312C. The bottom of the first cylinder 312A is fixedly mounted on the base bracket 1 and is parallel to the guide rails 312B in the horizontal direction.
[0049] The front-end pressing unit 313 is fixedly installed on one side of the front-end moving bracket 312D, and includes a second cylinder 313A, a pressure plate 313B and a first pressing plate 313C.
[0050] The tops of the two second cylinders 313A are fixed to one side of the front moving bracket 312D, the pressure plate 313B is fixedly installed at the bottom of the two second cylinders 313A, and the first pressing plate 313C is fixedly installed below the second cylinders 313A.
[0051] Driven by the first cylinder 312A, the front moving bracket 312D moves up and down along the vertical guide rail 312B. The slider 312C slides smoothly on the guide rail 312B to ensure the stability of the movement. After the fiberglass cloth is placed and flattened, the second cylinder 313A of the front pressing unit 313 is activated, pushing the pressure plate 313B downward and into contact with the first pressing plate 313C to press the fiberglass cloth to fix its position for chamfering.
[0052] The cooperation of the first cylinder 312A and the slider 312C enables the front moving bracket 312D to move smoothly and vertically along the guide rail 312B. The effective clamping of the pressure plate 313B ensures the fixation and stability of the fiberglass cloth before cutting, thus preventing the fiberglass cloth from shifting or sliding during the chamfering process. In addition, the structural design of the front moving bracket 312D ensures that the entire front clamping assembly 31 can be adjusted according to different height requirements, thereby adapting to fiberglass cloths of different thicknesses and enhancing the applicability and flexibility of the equipment.
[0053] like Figure 6 As shown, the rear clamping assembly 32 is located on the other side of the front moving bracket 312D away from the first cylinder 312A, and includes a rear slide 321, a rear bracket 322, and a second clamping plate 323.
[0054] Two rear slides 321 are fixedly mounted on the other side of the front movable bracket 312D away from the first cylinder 312A, the rear bracket 322 is mounted on the rear slide 321, and the second clamping plate 323 is fixedly mounted below the rear bracket 322.
[0055] The rear slide 321 is configured as a two-axis slide, which can drive the rear support 322 to move in the vertical or horizontal direction.
[0056] After the front clamping assembly 31 fixes the fiberglass cloth in place, the rear slide 321 will start. It is a two-coordinate slide that allows the rear support 322 to move in the vertical and horizontal directions, ensuring that the rear support 322 can accurately reach the designated position. As the rear support 322 moves down and contacts the second clamping plate 323, it tightly presses the fiberglass cloth, preparing it for chamfering.
[0057] The rear clamping assembly 32 is adjusted in multiple directions via the rear slide table 321 to ensure precise clamping of the fiberglass cloth. The use of the two-axis slide table increases the flexibility of the rear clamping assembly 32 adjustment, allowing the rear support 322 to be adjusted to the optimal position according to the needs of the cutting process, thereby maintaining the stability of the fiberglass cloth position throughout the entire cutting process.
[0058] In this embodiment, the chamfering mechanism 311 is slidably mounted on the front moving bracket 312D, and includes a rodless cylinder 311A, a drive motor 311B, and a cutter 311C;
[0059] The rodless cylinder 311A is fixedly mounted on the front movable bracket 312D; the cutter 311C is mounted on the rodless cylinder 311A and can reciprocate in the horizontal direction; the drive motor 311B is fixed on one side of the cutter 311C and provides power for the rotation of the saw blade 311D of the cutter 311C.
[0060] Among them, the material of saw blade 311D is diamond.
[0061] The chamfering mechanism 311 is mounted on the front moving bracket 312D. The rodless cylinder 311A, as the driving element, is fixed on the front moving bracket 312D and controls the cutter 311C to reciprocate in the horizontal direction, making the cutting process continuous and uniform. The drive motor 311B is mounted on one side of the cutter 311C and provides the necessary rotational power to the saw blade 311D inside the cutter 311C. The saw blade 311D is made of diamond material to meet the high hardness cutting requirements of glass fiber materials. The chamfering mechanism 311 can achieve high-precision horizontal cutting during operation. The rodless cylinder 311A provides smooth reciprocating motion, ensuring the uniformity and straightness of the cutting. The use of the diamond saw blade 311D ensures high efficiency and durability in the cutting process. The strong output of the drive motor 311B ensures that the saw blade 311D can rotate at an appropriate speed, thereby reducing wear and improving cutting efficiency when cutting glass fiber.
[0062] like Figure 7 As shown, a support roller 2 is provided below a support slide 12, which allows the support roller 2 to move horizontally.
[0063] Among them, the top slide 12 is set as a two-axis slide.
[0064] The support roller 2 moves horizontally by being mounted on the support slide 12. The support slide 12 is designed as a two-axis slide, which allows the support roller 2 to be precisely positioned to adapt to fiberglass fabrics of different widths and tensions. This enhances the flexibility and adaptability of the entire fiberglass chamfering machine, making the fiberglass fabric placement more uniform and stable. By precisely controlling the position of the support roller 2, the processing quality of the fiberglass fabric can be effectively improved, ensuring that the fabric is flat and crease-free during the cutting and chamfering process, thereby improving the overall performance and appearance quality of the final product.
[0065] In this embodiment, the bottom of the base support 1 is provided with several movable wheels 13, which are used to rotate the fiberglass beveling machine device.
[0066] The base support 1 is equipped with several casters 13 at its bottom. The casters 13 enable the fiberglass beveling machine to move easily within the working area. By using the casters 13, the flexibility and mobility of the fiberglass beveling machine are greatly enhanced. The position of the fiberglass beveling machine can be easily adjusted according to the layout and needs of the production line. This not only saves the space required to set up fixed equipment, but also provides convenience for different production tasks or changes in the working environment, thus enhancing the applicability of the fiberglass beveling machine in various production scenarios.
[0067] In this embodiment, the bottom of the base bracket 1 is also provided with several horizontal adjustment bolts 14, which are used to adjust the level.
[0068] The bottom of the base bracket 1 is equipped with several leveling bolts 14. The bolts are used to adjust the horizontal position of the fiberglass beveling machine, adjust and stabilize the horizontal state of the fiberglass beveling machine, and ensure the accuracy and stability of the fiberglass beveling machine during operation. The application of leveling bolts 14 improves the adaptability of the fiberglass beveling machine under different ground conditions. No matter whether the ground is completely flat or not, the level can be ensured by adjusting the bolts, thereby ensuring the processing quality.
[0069] In this embodiment, the placement of the fiberglass cloth requires manual inspection to check for wrinkles when the chamfer is clamped.
[0070] After the fiberglass cloth is placed, it needs to be manually checked for wrinkles when it is beveling and clamped. This step ensures that the fiberglass cloth is in an ideal state before beveling and cutting, thereby avoiding uneven cutting or errors caused by cloth wrinkles. Through manual inspection, problems with cloth placement can be detected and corrected in time, ensuring the accuracy and quality of the cutting process, which helps to improve the consistency and appearance quality of the finished product, and enhances the reliability of the entire production process and the market competitiveness of the product.
[0071] Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A fiberglass beveling machine device, characterized in that, The utility model relates to a glass fiber chamfering machine device, including: Base support, cloth roller and pressure mechanism; The cloth roller and the pressure mechanism are fixedly arranged on the base support, the pressure mechanism includes front end pressure assembly and rear end pressure assembly, the cloth roller is fixedly arranged on one side of the rear end pressure assembly; The cloth roller is provided with cloth roll, and the glass fiber cloth discharged from the cloth roll passes through the rear end pressure assembly and the front end pressure assembly; The front end support platform is arranged below the front end pressure assembly, and the front end support platform is fixedly arranged on the side of the base support away from the cloth roller; Wherein, the front end pressure assembly is provided with a chamfering mechanism, which moves in the horizontal direction to cut the glass fiber cloth.
2. The glass fiber chamfering device of claim 1, wherein, The front end pressure assembly further includes a front end moving unit and a front end pressing unit; The front end moving unit includes a first cylinder, a guide rail, a sliding block and a front end moving support; Two guide rails are fixedly arranged on the base support in the vertical direction, the sliding block is slidingly arranged on the guide rail, the front end moving support is fixed on the sliding block, and the bottom of the first cylinder is fixedly arranged on the base support and parallel to the guide rail in the horizontal direction; The front end pressing unit is fixedly arranged on one side of the front end moving support and includes a second cylinder, a pressing plate and a first pressing plate; The top of two second cylinders is fixedly arranged on one side of the front end moving support, and the first pressing plate is fixedly arranged below the second cylinder.
3. The glass fiber chamfering device of claim 2, wherein, The rear end pressure assembly is arranged on the other side of the first cylinder away from the first cylinder, and includes a rear end sliding table, a rear end support and a second pressing plate; Two rear end sliding tables are fixedly arranged on the other side of the first cylinder away from the first cylinder, the rear end support is arranged on the rear end sliding table, and the second pressing plate is fixedly arranged below the rear end support; Wherein, the rear end sliding table is arranged as a two-coordinate sliding table, which can drive the rear end support to move in the vertical direction or the horizontal direction.
4. The fiberglass chamfering device of claim 3, wherein, The chamfering mechanism is slidingly arranged on the front end moving support and includes a rodless cylinder, a driving motor and a cutter; The rodless cylinder is fixedly arranged on the front end moving support, the cutter is arranged on the rodless cylinder and can reciprocate in the horizontal direction; The driving motor is fixed on one side of the cutter to provide power for the rotation of the saw blade of the cutter; Wherein, the material of the saw blade is diamond.
5. The glass fiber chamfering device of claim 1, wherein, A cloth sliding table is arranged below the cloth roller, and the cloth roller can move in the horizontal direction through the cloth sliding table; Wherein, the cloth sliding table is arranged as a two-coordinate sliding table.
6. The glass fiber chamfering device of claim 1, wherein, A plurality of moving wheels are arranged at the bottom of the base support, and the moving wheels are used for the turnover of the glass fiber chamfering machine device.
7. The glass fiber chamfering device of claim 6, wherein, A plurality of horizontal adjusting bolts are further arranged at the bottom of the base support, and the horizontal adjusting bolts are used for adjusting the horizontal direction.