Organic glass fiber reinforced plastic air pipe production device
By designing the propulsion device and sliding components, the problem of unstable manual pushing during the cutting of plexiglass ducts was solved, achieving high-precision cutting and continuous operation, and reducing dimensional deviations and material waste.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGXI NORTH CHINA NEW MATERIALS CO LTD
- Filing Date
- 2025-05-07
- Publication Date
- 2026-04-28
AI Technical Summary
During the production of organic fiberglass ducts, manual hand-held pipe cutting results in low cutting efficiency, poor cutting accuracy, and large dimensional deviations due to unstable force, which affects splicing and installation and causes material waste.
The device employs a propulsion system that utilizes a servo motor, gears, and racks to achieve uniform and stable propulsion of the tube. Combined with a sliding component design, the cut tube slides out automatically, ensuring cutting accuracy and work continuity.
It improves cutting accuracy, reduces dimensional deviation, reduces material waste, ensures that the duct size meets the standard, facilitates subsequent splicing and installation, and saves labor and time costs.
Smart Images

Figure CN224169915U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of organic fiberglass duct technology, and in particular to an organic fiberglass duct production device. Background Technology
[0002] Organic fiberglass duct is a type of ventilation duct made of organic resin as the matrix and glass fiber and its products as the reinforcing material through a certain process. It has the advantages of being lightweight, high-strength, corrosion-resistant, having good thermal insulation performance, smooth inner wall, and low airflow resistance. It is widely used in building ventilation, air conditioning systems, and some places with special environmental requirements. However, organic fiberglass ducts need to be cut during the production and processing.
[0003] Existing technologies include, for example, the utility model with publication number CN220922572U. This utility model relates to the field of duct cutting, specifically a simple cutting device for duct processing. It relates to the field of duct cutting technology and includes a fixed platform. The clamping and conveying mechanism includes a first clamping member, a roller, a second clamping member, an installation roller, and an electric push rod. The electric push rod is fixedly installed on the top of the fixed platform, the second clamping member is fixedly installed on the output end of the electric push rod, and the first clamping member is fixedly installed on the top of the fixed platform, corresponding to the second clamping member. The roller is installed inside the first clamping member, and the installation roller is installed inside the second clamping member. In the technical solution provided by this utility model, the clamping and conveying mechanism allows the duct to be inserted between the first and second clamping members. The electric push rod can then push the second clamping member, causing the second and first clamping members to cooperate in clamping the duct. When the duct needs to be moved after cutting, the installation roller can be rotated to move the duct to one side for recutting, making the cutting device more convenient to use.
[0004] However, when cutting pipes, operators need to hold the pipe close to the cutting equipment. During the process, due to the unstable force applied by the operator, it is difficult to ensure a uniform speed of advancement, resulting in low cutting efficiency. In addition, manual operation makes it difficult to accurately control the pushing distance and angle, resulting in poor cutting accuracy. This not only leads to large deviations in the size of the cut duct, affecting splicing and installation, but also causes a lot of material waste due to frequent cutting errors. Utility Model Content
[0005] The purpose of this invention is to solve the problems in the existing technology where, when cutting pipes, operators need to hold the pipe close to the cutting equipment. During the process, the unstable force applied by the operator makes it difficult to ensure uniform speed, resulting in low cutting efficiency. Furthermore, manual operation makes it difficult to accurately control the pushing distance and angle, leading to poor cutting accuracy. This not only results in large deviations in the size of the cut duct, affecting splicing and installation, but also causes a large amount of material loss due to frequent cutting errors. Therefore, this invention proposes an organic fiberglass duct production device.
[0006] To achieve the above objectives, this utility model adopts the following technical solution: an organic fiberglass duct production device, comprising a base and a propulsion device, wherein a fixed platform is fixedly connected to the upper surface of the base, a cutting tool is fixedly installed on the side of the base near the fixed platform, and a duct body is provided at one end of the fixed platform; the propulsion device includes a protrusion, which is slidably connected to the base, a support plate is fixedly connected to the upper surface of the protrusion, a sliding hole is provided on one side of the support plate, a sliding plate is slidably connected to the inner wall of the sliding hole on the surface of the support plate, a connecting ring is fixedly connected to the upper surface of the sliding plate, the duct body abuts against the connecting ring, a bracket is fixedly connected to the lower surface of the sliding plate, and a wheel is rotatably connected to the lower surface of the bracket; by setting up the propulsion device, the propulsion device utilizes the cooperation of a servo motor, gears and racks to achieve uniform and stable propulsion of the duct body towards the fixed platform. Compared with manual pushing, it can ensure the accurate position of the duct body during the cutting process, greatly improve the cutting accuracy, ensure that the duct size meets the standard, facilitate subsequent splicing and installation, and reduce rework caused by dimensional deviations.
[0007] Preferably, a return spring is fixedly connected to the upper surface of the slide plate. The side of the return spring away from the slide plate is fixedly connected to the support plate. By setting the return spring, during the operation of the propulsion device, when the connecting ring abuts against the fixed platform, the slide plate is forced to slide towards the support plate to complete the pipe pushing and cutting action. When the servo motor drives the gear to rotate in the opposite direction to reset the support plate and the connecting ring disengages from the fixed platform, the return spring will generate elastic force.
[0008] Preferably, a fixing ring is fixedly connected to the lower surface of the tray, and a servo motor is fixedly connected to the surface of the fixing ring.
[0009] Preferably, the drive end of the servo motor is fixedly connected to a gear, and the surface of the base is fixedly connected to a rack. By setting the rack and cooperating precisely with the gear, the moving distance and speed of the pallet can be controlled relatively accurately. Due to the tooth profile design of the gear and rack, the transmission between them has a certain regularity, which can ensure that the moving distance of the pallet is relatively stable during each cut.
[0010] Preferably, the rack has teeth on its surface, and the gear meshes with the rack.
[0011] Preferably, a sliding component is provided on the side of the base near the fixed platform. The sliding component includes a ladder, which is fixedly connected to the base. A circular roller is rotatably connected to the surface of the ladder. By setting the sliding component, after the tube is cut, the circular roller and the trapezoidal ladder design of the sliding component allow the tube to slide out of the base automatically, effectively solving the problem of the tube accumulating on the base after cutting. This eliminates the need for frequent manual cleaning, saves manpower and time costs, and ensures the continuity of the cutting work.
[0012] Preferably, there are multiple rollers arranged in a linear array along the surface of the ladder. By setting the ladder, which is designed in a trapezoidal shape, the cut tube can be allowed to slide naturally down the inclined surface using the principle of gravity. When the tube falls onto the ladder, it can easily slide out of the base in a preset direction with the help of the slope of the ladder.
[0013] Compared with the prior art, the advantages and positive effects of this utility model are as follows:
[0014] 1. In this utility model, by setting up a propulsion device, when cutting the pipe, the pipe is inserted into the support plate, and at the same time, the pipe abuts against the connecting ring. Then, the servo motor is started, and the servo motor drives the gear to rotate. As the gear rotates, it works with the rack to move the support plate towards the fixed platform. The sliding plate, with the help of the wheel, follows the movement of the support plate. Therefore, the pipe is slowly inserted into the fixed platform. Then, the cutting tool cuts the pipe. When the connecting ring abuts against the fixed platform, the sliding plate is pushed towards the support plate until the pipe is completely pushed into the fixed platform. Then, the servo motor drives the gear to rotate in the opposite direction to reset the support plate. Then, the connecting ring disengages from the fixed platform, and the reset spring generates elastic force to squeeze the sliding plate back to its original position. By setting up a propulsion device, the propulsion device uses the cooperation of the servo motor, gear and rack to achieve uniform and stable propulsion of the pipe towards the fixed platform. Compared with manual pushing, it can ensure the accurate position of the pipe during the cutting process, greatly improve the cutting accuracy, ensure that the duct size meets the standard, facilitate subsequent splicing and installation, and reduce rework caused by dimensional deviations.
[0015] 2. In this utility model, by setting a sliding component, after the tube is cut, it falls onto the ladder platform. The roller rotates, and since the ladder platform is trapezoidal, the tube slides out of the base, which helps to reduce the accumulation of tubes on the base after cutting. By setting a sliding component, the roller and trapezoidal platform design of the sliding component enable the tube to slide out of the base automatically after cutting, effectively solving the problem of tubes accumulating on the base after cutting. It eliminates the need for frequent manual cleaning, saves manpower and time costs, and ensures the continuity of cutting work. Attached Figure Description
[0016] Figure 1 This utility model provides a three-dimensional structural diagram of an organic fiberglass duct production device;
[0017] Figure 2 This utility model provides a schematic diagram of the propulsion device structure for an organic fiberglass duct production apparatus;
[0018] Figure 3 This utility model proposes a production device for organic fiberglass ducts. Figure 2 A magnified structural diagram at point A;
[0019] Figure 4This utility model provides a partial structural schematic diagram of an organic fiberglass duct production device;
[0020] Figure 5 This utility model presents a schematic diagram of the sliding component structure of an organic fiberglass duct production device.
[0021] Legend: 1. Base; 2. Fixing platform; 3. Cutting tool; 4. Tube body; 5. Propulsion device; 51. Support plate; 52. Protrusion; 53. Sliding assembly; 531. Ladder platform; 532. Circular roller; 54. Connecting ring; 55. Bracket; 56. Circular wheel; 57. Rack; 58. Return spring; 59. Slide plate; 510. Servo motor; 511. Gear; 512. Fixing ring. Detailed Implementation
[0022] Please see Figures 1-5 This utility model provides a technical solution: an organic fiberglass duct production device, including a base 1 and a propulsion device 5. A fixed platform 2 is fixedly connected to the upper surface of the base 1. A cutting tool 3 is fixedly installed on the side of the base 1 near the fixed platform 2. A pipe body 4 is provided at one end of the fixed platform 2.
[0023] In this implementation scheme: the propulsion device 5 includes a protrusion 52, which is slidably connected to the base 1. A support plate 51 is fixedly connected to the upper surface of the protrusion 52. A sliding hole is opened on one side of the support plate 51. A sliding plate 59 is slidably connected to the inner wall of the sliding hole on the surface of the support plate 51. A connecting ring 54 is fixedly connected to the upper surface of the sliding plate 59. The pipe body 4 abuts against the connecting ring 54. A bracket 55 is fixedly connected to the lower surface of the sliding plate 59. A wheel 56 is rotatably connected to the lower surface of the bracket 55. By setting the propulsion device 5, the propulsion device 5 utilizes the cooperation of a servo motor 510, a gear 511, and a rack 57 to achieve uniform and stable propulsion of the pipe body 4 towards the fixed platform 2. Compared with manual pushing, it can ensure the accurate position of the pipe body 4 during the cutting process, greatly improve the cutting accuracy, ensure that the duct size meets the standard, facilitate subsequent splicing and installation, and reduce rework caused by size deviation.
[0024] Specifically, a return spring 58 is fixedly connected to the upper surface of the slide plate 59. The side of the return spring 58 away from the slide plate 59 is fixedly connected to the support plate 51. By setting the return spring 58, during the operation of the push device 5, when the connecting ring 54 abuts against the fixed platform 2, the slide plate 59 is forced to slide towards the support plate 51, completing the pipe pushing and cutting action. When the servo motor 510 drives the gear 511 to rotate in the opposite direction, causing the support plate 51 to reset, and the connecting ring 54 disengages from the fixed platform 2, the return spring 58 will generate elastic force.
[0025] Specifically, a retaining ring 512 is fixedly connected to the lower surface of the tray 51, and a servo motor 510 is fixedly connected to the surface of the retaining ring 512.
[0026] Specifically, the drive end of the servo motor 510 is fixedly connected to a gear 511, and the surface of the base 1 is fixedly connected to a rack 57. By setting the rack 57 and precisely cooperating with the gear 511, the moving distance and speed of the pallet 51 can be controlled relatively accurately. Due to the tooth design of the gear 511 and the rack 57, the transmission between them has a certain regularity, which can ensure that the moving distance of the pallet 51 is relatively stable during each cut.
[0027] Specifically, the surface of the rack 57 is provided with locking teeth, and the gear 511 meshes with the rack 57.
[0028] Specifically, a sliding component 53 is provided on the side of the base 1 near the fixed platform 2. The sliding component 53 includes a ladder 531, which is fixedly connected to the base 1. A roller 532 is rotatably connected to the surface of the ladder 531.
[0029] In this embodiment: by setting up a sliding component 53, after the tube body 4 is cut, the design of the circular roller 532 and the trapezoidal platform 531 of the sliding component 53 enables the tube body 4 to automatically slide out of the base 1, which effectively solves the problem of the tube body 4 accumulating on the base 1 after cutting. It eliminates the need for frequent manual cleaning, saves manpower and time costs, and ensures the continuity of the cutting work.
[0030] Specifically, there are multiple rollers 532, which are arranged in a linear array along the surface of the ladder 531.
[0031] In this embodiment: by setting a ladder 531, which is designed in a trapezoidal shape, the cut tube 4 can be allowed to slide down the inclined surface naturally using the principle of gravity. When the tube 4 falls onto the ladder 531, the tube 4 can easily slide out of the base 1 in a preset direction with the help of the slope of the ladder 531.
[0032] Working principle: By setting up the propulsion device 5, when cutting the pipe body 4, the pipe body 4 is inserted into the support plate 51, and at the same time, the pipe body 4 abuts against the connecting ring 54. Then, the servo motor 510 is started, and the servo motor 510 drives the gear 511 to rotate. As the gear 511 rotates, it works with the rack 57 to move the support plate 51 towards the fixed platform 2. The sliding plate 59, in conjunction with the wheel 56, follows the movement of the support plate 51. Therefore, the pipe body 4 is slowly inserted into the fixed platform 2. Then, the cutting tool 3 cuts the pipe. When the connecting ring 54 abuts against the fixed platform 2, the sliding plate 59 is forced to slide towards the support plate 51 until... After the pipe is fully pushed into the fixed platform 2, the servo motor 510 drives the gear 511 to rotate in the opposite direction, causing the support plate 51 to reset. Then the connecting ring 54 disengages from the fixed platform 2, and the reset spring 58 generates elastic force to squeeze the slide plate 59 to reset. By setting up the pushing device 5, the pushing device 5 uses the cooperation of the servo motor 510, gear 511 and rack 57 to achieve uniform and stable pushing of the pipe body 4 towards the fixed platform 2. Compared with manual pushing, it can ensure the accurate position of the pipe body 4 during the cutting process, greatly improve the cutting accuracy, ensure that the duct size meets the standard, which is conducive to subsequent splicing and installation and reduces rework caused by size deviation.
[0033] By setting the sliding component 53, after the tube body 4 is cut, it falls onto the ladder platform 531. The roller 532 rotates, and since the ladder platform 531 is trapezoidal, the tube body 4 slides out of the base 1, which helps to reduce the accumulation of the tube body 4 on the base 1 after cutting. By setting the sliding component 53, the design of the roller 532 and the trapezoidal ladder platform 531 of the sliding component 53 allows the tube body 4 to slide out of the base 1 automatically, effectively solving the problem of the tube body 4 accumulating on the base 1 after cutting. It eliminates the need for frequent manual cleaning, saves manpower and time costs, and ensures the continuity of the cutting work.
Claims
1. An apparatus for producing organic fiberglass ducts, comprising a base (1) and a propulsion device (5), characterized in that: A fixed platform (2) is fixedly connected to the upper surface of the base (1). A cutting tool (3) is fixedly installed on the side of the base (1) near the fixed platform (2). A tube (4) is provided at one end of the fixed platform (2). The pushing device (5) includes a protrusion (52). The protrusion (52) is slidably connected to the base (1). A support plate (51) is fixedly connected to the upper surface of the protrusion (52). A sliding hole is opened on one side of the support plate (51). A sliding plate (59) is slidably connected to the inner wall of the sliding hole on the surface of the support plate (51). A connecting ring (54) is fixedly connected to the upper surface of the sliding plate (59). The tube (4) abuts against the connecting ring (54). A bracket (55) is fixedly connected to the lower surface of the sliding plate (59). A wheel (56) is rotatably connected to the lower surface of the bracket (55).
2. The organic fiberglass duct production apparatus according to claim 1, characterized in that: A return spring (58) is fixedly connected to the upper surface of the slide plate (59), and the side of the return spring (58) away from the slide plate (59) is fixedly connected to the support plate (51).
3. The organic fiberglass duct production apparatus according to claim 2, characterized in that: A fixing ring (512) is fixedly connected to the lower surface of the tray (51), and a servo motor (510) is fixedly connected to the surface of the fixing ring (512).
4. The organic fiberglass duct production apparatus according to claim 3, characterized in that: The drive end of the servo motor (510) is fixedly connected to a gear (511), and the surface of the base (1) is fixedly connected to a rack (57).
5. The organic fiberglass duct production apparatus according to claim 4, characterized in that: The rack (57) has teeth on its surface, and the gear (511) meshes with the rack (57).
6. The organic fiberglass duct production apparatus according to claim 1, characterized in that: The base (1) is provided with a sliding component (53) on the side near the fixed platform (2). The sliding component (53) includes a ladder (531), which is fixedly connected to the base (1). A circular roller (532) is rotatably connected to the surface of the ladder (531).
7. The organic fiberglass duct production apparatus according to claim 6, characterized in that: There are multiple rollers (532), and the multiple rollers (532) are arranged in a linear array along the surface of the platform (531).
Citation Information
Patent Citations
Simple cutting device for air pipe machining
CN220922572U