Nylon chip recovery device
By combining a bladeless fan with a magnetic adsorption structure, the problem of nylon chips getting stuck during transportation is solved, achieving efficient raw material transportation and packaging storage, and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HANGZHOU HANGDING NYLON TECHNOLOGY CO LTD
- Filing Date
- 2025-03-27
- Publication Date
- 2026-04-28
AI Technical Summary
Nylon chips are prone to getting stuck in the conveying pipes during packaging and transportation, resulting in product waste. Furthermore, existing equipment causes poor user experience due to continuous pipe vibration.
The system employs a bladeless fan and drive motor in conjunction with a magnetic adsorption structure. The bladeless fan drives the movement of raw materials, while the magnetic blocks and electromagnets utilize an adsorption and reset mechanism to reduce the probability of jamming and improve transportation efficiency.
It effectively reduces the difficulty for staff in packaging and storing raw materials, improves the user experience, reduces the probability of raw materials getting stuck, and improves transportation efficiency.
Smart Images

Figure CN224171345U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of recycling device technology, and in particular to a nylon chip recycling device. Background Technology
[0002] Nylon, also known as nylon fiber, was the world's first synthetic fiber, and its synthesis represented a major breakthrough in the synthetic fiber industry. Currently, nylon chips are processed into granules, which then need to be packaged and stored. However, during the packaging and transport process, the granules can get stuck in the conveyor pipes, leading to waste.
[0003] Chinese utility model patent CN215884232U discloses a nylon chip recycling device, including a housing and a conveying pipe. The conveying pipe is fixed inside the housing. A guide pipe is fixed to the top of the housing. A motor is fixed to the inner wall of the guide pipe. A fan is fixed to the side end of the motor. A flexible connecting pipe is fixed to the conveying pipe. A vibrating pipe is fixed to the flexible connecting pipe. A fixing plate is fixed to the inner wall of the housing. A motor is fixed to the side end of the fixing plate. A rotating rod is fixed to the side end of the motor. A cam is fixed to the middle of the rotating rod. The rotation of the cam causes the vibrating pipe to vibrate, and the output of the motor causes the fan to rotate. The vibration of the vibrating pipe can prevent the product from getting stuck in the conveying pipe during the conveying process, thereby avoiding the problem of product waste.
[0004] Regarding the aforementioned technologies, the inventors believe the following drawbacks exist: The device conveys nylon raw materials into the conveying pipe via a guide pipe and drives the material movement via a fan. To reduce the probability of the raw material getting stuck in the vibrating pipe, operators need to drive a cam to continuously strike the vibrating pipe. Because the vibrating pipe needs to vibrate continuously, a flexible connecting pipe is required between the vibrating pipe and the conveying pipe. In actual use, some raw materials easily get stuck in the gaps of the flexible connecting pipe, resulting in a poor user experience. Utility Model Content
[0005] To address the aforementioned problems, this utility model provides a nylon chip recycling device.
[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a nylon chip recycling device, comprising a housing and a guide pipe connected to the upper end of the housing, a connecting groove is provided on one side wall of the housing, a barrier net is provided on the inner wall of the connecting groove, a first conveying pipe is connected to the other side wall of the housing, an auxiliary component for accelerating the transport efficiency of raw materials is provided on the first conveying pipe, sliding grooves are provided on the two opposite inner walls of the housing, and a moving component for driving the movement of raw materials is provided on the housing.
[0007] By adopting the above technical solution, when workers need to recycle nylon chips, they need to slice the nylon and move the sliced nylon into the housing through the guide pipe. Furthermore, workers only need to activate the auxiliary component and the moving component in sequence to move the raw materials accumulated on the bottom wall of the housing towards the first conveying pipe under the action of the moving component, and then move them into the first conveying pipe through the auxiliary component, thereby reducing the difficulty for workers to package and store the raw materials.
[0008] Furthermore, the auxiliary components include a first pipe connector connected to the first delivery pipe, a bladeless fan connected to the first pipe connector, a second pipe connector connected to the bladeless fan, and a second delivery pipe connected to the second pipe connector.
[0009] Furthermore, a support plate is fixed to the bottom surface of the housing, and the upper surface of the support plate is connected to the bottom of the bladeless fan.
[0010] By adopting the above technical solution, when workers need to package and store raw materials, they need to move the raw materials inside the shell to the outside of the shell through the first conveying pipe. At this time, workers only need to turn on the bladeless fan to allow the air inside the shell to be discharged through the first conveying pipe, thereby allowing the raw materials inside the shell to move with the air to the first conveying pipe, and finally be discharged through the second conveying pipe.
[0011] Furthermore, the moving component includes two sliding blocks that are slidably disposed in two sliding grooves respectively. Each of the two sliding blocks has a moving groove on its sidewall that is close to each other. The moving component also includes two sliding blocks that are slidably disposed in two moving grooves respectively, a moving plate that is mounted on the two sliding blocks, a drive motor fixed on the sidewall of the housing, a threaded rod that is fixed to the output shaft of the drive motor, and a drive device disposed on the housing for driving the moving plate. The threaded rod passes through the sliding block and is threadedly connected.
[0012] Furthermore, the driving device includes a first magnet block fixed to the upper surface of the moving block and an electromagnet fixed to the top wall of the moving groove.
[0013] By adopting the above technical solution, when the bladeless fan is turned on, in order to accelerate the movement of raw materials outside the casing, the operator needs to turn on the drive motor, causing the output shaft of the drive motor to rotate. This, in turn, causes the threaded rod to rotate along the output shaft of the drive motor, thereby moving the sliding block along the extension direction of the sliding groove. This, in turn, causes the moving plate to move towards the first conveying pipe along with the sliding block, thus moving the raw materials towards the first conveying pipe under the action of the moving plate. Subsequently, when the sliding block moves to its farthest point, the operator needs to reverse the drive motor and turn on the electromagnet. This causes the electromagnet to attract the first magnetic block, causing the moving block and moving plate to move upwards. Under the action of the reversed threaded rod, they move away from the first conveying pipe, thus resetting the sliding block. Furthermore, the operator only needs to turn off the electromagnet to reset the moving block under the action of gravity, causing the moving plate to press against the inner bottom wall of the casing again, thereby reducing the difficulty of handling raw materials.
[0014] Furthermore, a second magnet is fixed to the bottom surface of the movable block, and a third magnet is fixed to the inner bottom wall of the movable groove, which is attracted to the second magnet.
[0015] By adopting the above technical solution, when the operator turns off the electromagnet, the second and third magnets attract each other, which allows the moving block to quickly reset, thereby reducing the probability of the moving block getting stuck and improving the operator's user experience.
[0016] Furthermore, a push plate is fixed to the lower end of the side wall of the movable plate away from the drive motor.
[0017] Furthermore, the two opposite sidewalls of the movable plate are flush with the two opposite sidewalls of the sliding block.
[0018] By adopting the above technical solution, the probability of raw materials entering the moving tank is reduced, thereby reducing the probability of the moving block getting stuck, and thus improving the user experience for staff.
[0019] In summary, this utility model has the following beneficial effects:
[0020] 1. In this application, when workers need to recycle nylon chips, they need to slice the nylon and move the sliced nylon into the housing through the guide pipe. Furthermore, workers only need to activate the auxiliary component and the moving component in sequence to move the raw material accumulated on the bottom wall of the housing towards the first conveying pipe under the action of the moving component, and then move it into the first conveying pipe through the auxiliary component, thereby reducing the difficulty for workers to package and store the raw material;
[0021] 2. In this application, when workers need to package and store raw materials, they need to move the raw materials inside the shell to the outside of the shell through the first conveying pipe. At this time, workers only need to turn on the bladeless fan to allow the air inside the shell to be discharged through the first conveying pipe, thereby allowing the raw materials inside the shell to move with the air to the first conveying pipe and finally be discharged through the second conveying pipe;
[0022] 3. In this application, when the operator turns on the bladeless fan, to accelerate the movement of the raw materials outside the casing, the operator needs to turn on the drive motor, causing the output shaft of the drive motor to rotate. This causes the threaded rod to rotate along the output shaft of the drive motor, thereby moving the sliding block along the extension direction of the sliding groove. This, in turn, causes the moving plate to move towards the first conveying pipe along with the sliding block, thus moving the raw materials towards the first conveying pipe under the action of the moving plate. Subsequently, when the sliding block reaches its farthest point, the operator needs to reverse the drive motor and turn on the electromagnet. This causes the electromagnet to attract the first magnetic block, causing the moving block and moving plate to move upwards. Under the action of the reversed threaded rod, they move away from the first conveying pipe, thus resetting the sliding block. Furthermore, the operator only needs to turn off the electromagnet to reset the moving block under gravity, causing the moving plate to press against the inner bottom wall of the casing again, thereby reducing the difficulty of handling the raw materials. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model;
[0024] Figure 2 This is a schematic diagram of the auxiliary components and their connection structure according to an embodiment of the present utility model;
[0025] Figure 3 This is a schematic diagram of the push plate and its connection structure according to an embodiment of the present utility model;
[0026] Figure 4 This is a schematic diagram of the mobile component and its connection structure according to an embodiment of the present utility model;
[0027] Figure 5 This is a schematic diagram of the driving device and its connection structure according to an embodiment of the present utility model.
[0028] In the diagram: 1. Shell; 11. Feed pipe; 2. Connecting groove; 21. Barrier mesh; 3. First conveying pipe; 4. Auxiliary component; 41. First pipe joint; 42. Bladeless fan; 43. Second pipe joint; 44. Second conveying pipe; 45. Sliding groove; 5. Moving component; 51. Sliding block; 52. Moving block; 53. Moving plate; 54. Drive motor; 55. Threaded rod; 56. Moving groove; 6. Drive device; 61. First magnet; 62. Electromagnet; 7. Support plate; 8. Second magnet; 81. Third magnet; 9. Push plate. Detailed Implementation
[0029] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.
[0030] like Figure 1-5 As shown in the figure, this application discloses a nylon chip recycling device, including a housing 1, a guide pipe 11, a barrier net 21, a first conveying pipe 3, an auxiliary component 4, a moving component 5, a support plate 7, a second magnet block 8, a third magnet block 81, and a push plate 9. The guide pipe 11 has a cylindrical structure and is connected to the upper end of the housing 1. A connecting groove 2 is provided on one side wall of the housing 1, and the barrier net 21 is disposed on the inner wall of the connecting groove 2. The first conveying pipe 3 has a cylindrical structure and is connected to the other side wall of the housing 1.
[0031] Auxiliary component 4 is mounted on the first conveying pipe 3 to accelerate raw material transportation efficiency. Auxiliary component 4 includes a first pipe connector 41, a bladeless fan 42, a second pipe connector 43, and a second conveying pipe 44. The first pipe connector 41 is connected to the first conveying pipe 3, and the bladeless fan 42 is connected to the first pipe connector 41. The second pipe connector 43 is connected to the bladeless fan 42. The second conveying pipe 44 is a cylindrical structure and is connected to the second pipe connector 43. The support plate 7 is a plate-shaped structure, fixed to the bottom surface of the housing 1, and its upper surface is connected to the bottom of the bladeless fan 42.
[0032] When workers need to package and store raw materials, they need to move the raw materials inside the shell 1 to the outside of the shell 1 through the first conveying pipe 3. At this time, workers only need to turn on the bladeless fan 42 to allow the air inside the shell 1 to be discharged through the first conveying pipe 3, so that the raw materials inside the shell 1 can move with the air to the first conveying pipe 3 and finally be discharged through the second conveying pipe 44.
[0033] Sliding grooves 45 are formed on the two opposing inner walls of the housing 1. A moving assembly 5 is mounted on the housing 1 to drive the movement of raw materials. The moving assembly 5 includes a sliding block 51, a moving block 52, a moving plate 53, a drive motor 54, a threaded rod 55, and a drive device 6. The sliding block 51 is a rectangular block structure, and two sliding blocks 51 are provided, each slidingly disposed within one of the two sliding grooves 45. Moving grooves 56 are formed on the side walls of the two adjacent sliding blocks 51. The moving block 52 is a rectangular block structure, and two moving blocks 52 are provided, each slidingly disposed within one of the two moving grooves 56. The moving plate 53 is a rectangular plate structure, and the moving plates 53 are mounted together on the two moving blocks 52. The drive motor 54 is fixed to the side wall of the housing 1. The threaded rod 55 is fixed to the output shaft of the drive motor 54, and the threaded rod 55 passes through the sliding block 51 and is threadedly connected.
[0034] The driving device 6 is mounted on the housing 1 and is used to drive the moving plate 53. The driving device 6 includes a first magnet block 61 and an electromagnet 62. The first magnet block 61 is a block structure and is fixed to the upper surface of the moving block 52, while the electromagnet 62 is fixed to the inner top wall of the moving groove 56.
[0035] When the bladeless fan 42 is turned on, to accelerate the movement of raw materials outside the housing 1, the drive motor 54 is activated. This causes the output shaft of the drive motor 54 to rotate, which in turn causes the threaded rod 55 to rotate along the output shaft of the drive motor 54. This causes the sliding block 51 to move along the extension direction of the sliding groove 45, and the moving plate 53 to move towards the first conveying pipe 3 along with the sliding block 51. Consequently, the raw materials move towards the first conveying pipe 3 under the action of the moving plate 53. Subsequently, when the sliding block 51 reaches its farthest point, the drive motor 54 is reversed, and the electromagnet 62 is activated. This causes the electromagnet 62 to attract the first magnet block 61, causing the moving block 52 and the moving plate 53 to move upwards. Under the action of the reversed threaded rod 55, they move away from the first conveying pipe 3, thus resetting the sliding block 51. Furthermore, the operator only needs to turn off the electromagnet 62, which allows the moving block 52 to reset under the action of gravity, causing the moving plate 53 to press against the inner bottom wall of the housing 1 again, thereby reducing the difficulty of handling raw materials.
[0036] The second magnet 8 is a block structure and is fixed to the bottom surface of the moving block 52. The third magnet 81 is a block structure and is fixed to the inner bottom wall of the moving groove 56, and the second magnet 8 and the third magnet 8 are attracted to each other. When the operator turns off the electromagnet 62, the second magnet 8 and the third magnet 81 attract each other, which allows the moving block 52 to quickly reset, thereby reducing the probability of the moving block 52 getting stuck and improving the user experience.
[0037] The push plate 9 has a plate-like structure and is fixed to the lower end of the side wall of the moving plate 53 away from the drive motor 54. The two opposite side walls of the moving plate 53 are flush with the two opposite side walls of the sliding block 51. This arrangement reduces the probability of raw materials entering the moving trough 56, thereby reducing the probability of the moving block 52 getting stuck and improving the user experience for operators.
[0038] The operating principle of the nylon chip recycling device in this embodiment is as follows: When workers need to recycle nylon chips, they need to slice the nylon and move the sliced nylon into the housing 1 through the guide pipe 11. Furthermore, workers only need to sequentially activate the auxiliary component 4 and the moving component 5 to move the raw materials accumulated on the bottom wall of the housing 1 towards the first conveying pipe 3 under the action of the moving component 5, and then move them into the first conveying pipe 3 through the auxiliary component 4, thereby reducing the difficulty for workers in packaging and storing the raw materials.
[0039] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.
Claims
1. A nylon chip recycling device, comprising a housing (1) and a feed pipe (11) connected to the upper end of the housing (1), characterized in that: A connecting groove (2) is provided on one side wall of the housing (1), and a barrier mesh (21) is provided on the inner wall of the connecting groove (2). A first conveying pipe (3) is connected to the other side wall of the housing (1). An auxiliary component (4) for accelerating the transport efficiency of raw materials is provided on the first conveying pipe (3). Sliding grooves (45) are provided on the two opposite inner walls of the housing (1). A moving component (5) for driving the movement of raw materials is provided on the housing (1).
2. The nylon chip recycling device according to claim 1, characterized in that: The auxiliary component (4) includes a first pipe connector (41) connected to the first delivery pipe (3), a bladeless fan (42) connected to the first pipe connector (41), a second pipe connector (43) connected to the bladeless fan (42), and a second delivery pipe (44) connected to the second pipe connector (43).
3. The nylon chip recycling device according to claim 2, characterized in that: A support plate (7) is fixed to the bottom surface of the housing (1), and the upper surface of the support plate (7) is connected to the bottom of the bladeless fan (42).
4. The nylon chip recycling device according to claim 3, characterized in that: The moving component (5) includes two sliding blocks (51) that are respectively slidably disposed in two sliding grooves (45). The two sliding blocks (51) are provided with moving grooves (56) on their side walls that are close to each other. The moving component (5) also includes two moving blocks (52) that are respectively slidably disposed in two moving grooves (56), a moving plate (53) that is jointly mounted on the two moving blocks (52), a drive motor (54) fixed on the side wall of the housing (1), a threaded rod (55) that is fixed to the output shaft of the drive motor (54), and a drive device (6) that is disposed on the housing (1) for driving the moving plate (53). The threaded rod (55) passes through the sliding block (51) and is threadedly connected.
5. A nylon chip recycling device according to claim 4, characterized in that: The drive device (6) includes a first magnet block (61) fixed on the upper surface of the moving block (52) and an electromagnet (62) fixed on the inner top wall of the moving groove (56).
6. A nylon chip recycling device according to claim 5, characterized in that: The bottom surface of the movable block (52) is fixed with a second magnet block (8), and the inner bottom wall of the movable groove (56) is fixed with a third magnet block (81) that is attracted to the second magnet block (8).
7. A nylon chip recycling device according to claim 6, characterized in that: A push plate (9) is fixed to the lower end of the side wall of the movable plate (53) away from the drive motor (54).
8. A nylon chip recycling device according to claim 7, characterized in that: The two opposite sidewalls of the movable plate (53) are flush with the two opposite sidewalls of the sliding block (51).
Citation Information
Patent Citations
Nylon chip recovery device
CN215884232U