Distance angle cutting machine for glass fiber tube machining
By designing a fixed-distance beveling machine for glass fiber tube processing, and utilizing a combination of a cooling unit and a fixed-distance unit, the problem of temperature rise during the beveling of glass fiber tubes was solved, thereby improving the yield of glass fiber tubes.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2026-03-31
AI Technical Summary
When cutting fiberglass tubes at an angle, the friction between the cutting tool and the tube causes a local temperature increase, which may cause the tube surface to melt or generate sparks, affecting the yield rate.
A fixed-distance beveling machine for processing fiberglass tubes was designed, comprising a cooling unit and a fixed-distance unit. Coolant is drawn by a circulating pump and sprayed onto the cutting point through a nozzle for cooling. The coolant is reused in conjunction with a filter screen, and the cutting position is adjusted with the fixed-distance plate and slide bar.
This technology enables efficient beveling of fiberglass tubes, reduces the temperature at the cutting point, and improves the yield of fiberglass tubes.
Smart Images

Figure CN224059932U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fiberglass tube processing technology, specifically to a fixed-distance oblique cutting machine for fiberglass tube processing. Background Technology
[0002] Fiberglass pipe, also known as glass fiber tube, is a pipe material composed of glass fiber and a resin matrix. It is made by high-temperature composite process of glass fiber (such as alkali-free glass fiber) and resin matrix such as epoxy resin and unsaturated polyester resin. It adopts a layered structure, with glass fiber evenly laid on a rotating mandrel and reinforcing materials such as quartz sand sandwiched between the fibers. After high-temperature curing, it forms a high-strength pipe. As a high-performance composite material, fiberglass pipe is widely used in many industrial fields. In the process of processing fiberglass pipe, the beveling technique is a key step.
[0003] When beveling fiberglass tubes, the friction between the cutting tool and the tube can cause local temperature rise. This high temperature may cause the surface of the tube to melt or generate sparks, which in turn affects the yield of the tube. To address this, we provide a fixed-distance beveling machine for fiberglass tube processing. Utility Model Content
[0004] The purpose of this invention is to provide a fixed-distance beveling machine for processing fiberglass tubes, so as to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:
[0006] A fixed-distance beveling machine for processing fiberglass tubes includes a processing table, a cooling box fixedly installed on the bottom end of the processing table, a support bracket fixedly installed on the top left side of the processing table, and a supporting arc block fixedly installed on the top left side of the processing table below the support bracket.
[0007] A distance-fixing unit is provided on the top right side of the processing table, and a cooling unit is provided on the front left side of the processing table.
[0008] The cooling unit includes a circulation pump fixedly installed on the left side of the front of the processing table. A liquid extraction pipe is fixedly installed on the input end of the circulation pump, and the other end of the liquid extraction pipe is fixedly installed inside the front of the cooling box.
[0009] A further improvement of this utility model is that: a drain pipe is fixedly installed on the output end of the circulating pump, the other end of the drain pipe extends to the top left side of the processing table, and a nozzle is fixedly installed on the other end of the drain pipe. The nozzle sprays coolant to cool the cutting point.
[0010] A further improvement of this utility model is that a recovery tank is provided on the top of the processing table, and a filter screen is fixedly installed on the bottom of the recovery tank. The filter screen can filter the recovered coolant.
[0011] A further improvement of this utility model is that the distance-fixing unit includes a slide rod fixedly installed on the right side of the supporting arc block, the other end of the slide rod is fixedly installed on the top right side of the processing table, and a distance-fixing plate is slidably sleeved on the outer surface of the slide rod, so that the slide rod can limit the movement of the distance-fixing plate.
[0012] A further improvement of this utility model is that a pointer is fixedly installed on one bottom side of the distance plate, and a bolt is threaded inside the pointer, which can lock the distance plate.
[0013] A further improvement of this utility model is that: an electric telescopic column is fixedly installed on both the top and bottom sides of the support bracket, and a moving horizontal plate is fixedly installed on the other end of the electric telescopic column. The two ends of the moving horizontal plate are slidably sleeved on the two sliding columns of the support bracket.
[0014] A further improvement of this utility model is that a servo motor is fixedly installed on the rear side of the moving horizontal plate, and the output end of the servo motor extends to the front side of the moving horizontal plate and is fixedly connected to a slanted wheel.
[0015] Due to the adoption of the above technical solution, the technological progress achieved by this utility model compared to the prior art is as follows:
[0016] 1. This utility model provides a fixed-distance beveling machine for processing fiberglass tubes. By setting a fixed-distance plate against one end of the tube body, the fixed-distance plate can be adjusted according to the cutting needs of the tube body. It slides on the outer surface of the slide rod, and the adjustment distance can be checked with the help of the pointer. With the help of the bolt, it is fixed in the groove at the top of the processing table, thereby improving the work efficiency.
[0017] 2. This utility model provides a fixed-distance beveling machine for processing fiberglass tubes. By setting up a circulation pump and starting it, the coolant inside the cooling tank is drawn out by the liquid extraction pipe. The coolant is then transported to the cutting point by the drain pipe and nozzle to cool the cutting point. The downward flowing liquid enters the inside of the recovery tank and is filtered by the filter screen. It then re-enters the inside of the cooling tank for reuse. This achieves rapid cooling and improves the yield of fiberglass tubes. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the support bracket structure of this utility model;
[0020] Figure 3 For the present utility model Figure 2 Enlarged structural diagram at point A;
[0021] Figure 4 This is a schematic diagram of the circulating pump structure of this utility model;
[0022] Figure 5 This is a schematic diagram of the recycling tank structure of this utility model.
[0023] In the diagram: 1. Processing table; 11. Circulating pump; 12. Liquid extraction pipe; 13. Liquid discharge pipe; 14. Nozzle; 15. Recovery tank; 16. Filter screen; 2. Cooling box; 3. Support bracket; 31. Electric telescopic column; 32. Moving horizontal plate; 33. Servo motor; 34. Bevel cutting wheel; 4. Supporting arc block; 41. Slide rod; 42. Spacer plate; 43. Pointer; 44. Bolt. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0025] Example 1
[0026] like Figure 1-5 As shown, this utility model provides a fixed-distance beveling machine for processing fiberglass tubes, including a processing table 1. A cooling box 2 is fixedly installed on the bottom end of the processing table 1. A support bracket 3 is fixedly installed on the top left side of the processing table 1. A supporting arc block 4 is fixedly installed on the top left side of the processing table 1 below the support bracket 3. A fixed-distance unit is provided on the top right side of the processing table 1. A cooling unit is provided on the front left side of the processing table 1. The fixed-distance unit includes a slide rod 41 fixedly installed on the right side of the supporting arc block 4. The other end of the slide rod 41 is fixedly installed on the top right side of the processing table 1. A spacer plate 42 is slidably sleeved on the outer surface of 41. A pointer 43 is fixedly installed on the bottom side of one side of the spacer plate 42. A bolt 44 is threaded inside the pointer 43. Electric telescopic columns 31 are fixedly installed on both sides of the top and bottom ends of the support bracket 3. A moving horizontal plate 32 is fixedly installed on the other end of the electric telescopic column 31. The two ends of the moving horizontal plate 32 are slidably sleeved on the two sliding columns of the support bracket 3. A servo motor 33 is fixedly installed on the rear side of the moving horizontal plate 32. The output end of the servo motor 33 extends to the front side of the moving horizontal plate 32 and is fixedly connected to a slanted wheel 34.
[0027] Furthermore, by setting a spacer plate 42 to abut against one end of the tube, the spacer plate 42 can be adjusted to its position according to the tube cutting needs, slide on the outer surface of the slide rod 41, and check the adjustment distance with the pointer 43. With the help of the bolt 44, it is rotated to abut against the top groove of the processing table 1 to fix the adjustment of the spacer plate 42.
[0028] Example 2
[0029] like Figure 1-5 As shown, based on Embodiment 1, this utility model provides a technical solution: Preferably, the cooling unit includes a circulation pump 11 fixedly installed on the left side in front of the processing table 1, a liquid extraction pipe 12 fixedly installed on the input end of the circulation pump 11, the other end of the liquid extraction pipe 12 fixedly installed inside the front of the cooling box 2, a drain pipe 13 fixedly installed on the output end of the circulation pump 11, the other end of the drain pipe 13 extending to the top left side of the processing table 1, a nozzle 14 fixedly installed on the other end of the drain pipe 13, a recovery tank 15 is opened on the top of the processing table 1, and a filter screen 16 is fixedly installed on the bottom of the inside of the recovery tank 15.
[0030] Furthermore, by starting the circulation pump 11, the coolant inside the cooling tank 2 is drawn outward with the liquid extraction pipe 12, and the coolant is delivered to the cutting point with the drain pipe 13 and the nozzle 14 to cool the cutting point. The downward flowing liquid enters the inside of the recovery tank 15 and is filtered with the filter screen 16, and then enters the inside of the cooling tank 2 again for reuse.
[0031] The working principle of the fixed-distance beveling machine for processing fiberglass tubes will be explained in detail below.
[0032] like Figure 1-5 As shown, during use, the fiberglass tube to be cut is placed on top of the supporting arc block 4, with its other end abutting against the spacer plate 42. The spacer plate 42 can be adjusted according to the cutting needs of the tube and slides on the outer surface of the slide rod 41. The adjustment distance is checked with the pointer 43. The spacer plate 42 is fixed by rotating the bolt 44 into the top groove of the processing table 1. During cutting, the electric telescopic column 31 pushes the moving horizontal plate 32 to cause the oblique cutting wheel 34 to move downward. The output end of the servo motor 33 drives the oblique cutting wheel 34 to rotate, performing oblique cutting on the fiberglass tube. During oblique cutting, the circulation pump 11 is started, and the liquid extraction pipe 12 draws the coolant out of the cooling tank 2. The coolant is then transported to the cutting point by the drain pipe 13 and the nozzle 14 to cool the cutting point. The downward flowing liquid enters the inside of the recovery tank 15 and is filtered by the filter screen 16, and then enters the inside of the cooling tank 2 again for reuse.
[0033] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the protection scope of the present invention.
Claims
1. A distance angle cutting machine for processing glass fiber pipe, comprising a processing table (1), characterized in that: The bottom end of the processing table (1) is fixedly installed with a cooling box (2), the top left side of the processing table (1) is fixedly installed with a supporting bracket (3), and the top left side of the processing table (1) is fixedly installed with a supporting arc block (4) below the supporting bracket (3); The top right side of the processing table (1) is provided with a distance unit, and the front left side of the processing table (1) is provided with a cooling unit; The cooling unit comprises a circulating pump (11) fixedly installed on the front left side of the processing table (1), a liquid suction pipe (12) fixedly installed on the input end of the circulating pump (11), and the other end of the liquid suction pipe (12) is fixedly installed in the front of the cooling box (2).
2. The distance cutting machine for processing glass fiber pipe according to claim 1, characterized in that: The output end of the circulating pump (11) is fixedly installed with a liquid discharge pipe (13), the other end of the liquid discharge pipe (13) extends on the top left side of the processing table (1), and the other end of the liquid discharge pipe (13) is fixedly installed with a nozzle (14).
3. The distance cutting machine for processing fiberglass pipe according to claim 1, characterized in that: The top of the processing table (1) is provided with a recovery groove (15), and the inside bottom end of the recovery groove (15) is fixedly installed with a filter screen (16).
4. The distance cutting machine for processing fiberglass pipe according to claim 1, characterized in that: The distance unit comprises a sliding rod (41) fixedly installed on the right side of the supporting arc block (4), the other end of the sliding rod (41) is fixedly installed on the top right side of the processing table (1), and the outer surface of the sliding rod (41) is slidably sleeved with a distance plate (42).
5. The distance cutting machine for processing fiberglass pipe according to claim 4, characterized in that: The side bottom end of the distance plate (42) is fixedly installed with a pointer (43), and the inside of the pointer (43) is threadedly connected with a bolt (44).
6. The distance cutting machine for processing fiberglass pipe according to claim 1, characterized in that: The top bottom end of the supporting bracket (3) is fixedly installed with an electric telescopic column (31) on both sides, the other end of the electric telescopic column (31) is fixedly installed with a moving cross plate (32), and the both ends of the moving cross plate (32) are slidably sleeved on the two sides of the supporting bracket (3).
7. The distance cutting machine for processing fiberglass pipe according to claim 6, characterized in that: The rear side of the moving cross plate (32) is fixedly installed with a servo motor (33), the output end of the servo motor (33) extends on the front side of the moving cross plate (32) and is fixedly connected with an oblique cutting wheel (34).