Discharging device
By designing the discharge device of the vibrating screen plate, heater and conveyor belt, the problem of screening and conveying in konjac fine powder processing is solved, efficient screening and dehumidification effects are achieved, and the discharge efficiency is improved.
Patent Information
- Application Number
- CN202422288509.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-19
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-09-19
AI Technical Summary
魔芋精粉加工后缺乏有效的筛选和输送方式,且存在粘附问题,导致排料不便。
A material discharge device including a vibrating screen plate, a heater and a conveyor belt is designed, and the screening is performed through the vibrating screen plate, dehumidification is used by the heater, and conveyed by the conveyor belt, combining the inclined plate and cleaning components to clean the adhered materials.
It realizes effective screening and transportation of konjac fine powder, reduces adhesion phenomenon, and improves the discharge efficiency and effect.
Smart Images

Figure CN223073536U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of konjac processing, and specifically relates to a discharging device. Background Art
[0002] Konjac is a herbaceous plant. Konjac has a delicious taste, good texture and has the effect of treating diseases and anti-cancer. At the same time, it is an alkaline food. With the increasing emphasis on food health care by people, it is becoming more and more popular. However, konjac itself has a certain toxicity, so it needs to be fully processed before consumption. The processing of konjac refined powder is a common processing method of konjac. After the konjac refined powder is processed, it needs to be discharged to discharge the refined powder.
[0003] The transportation after the refined powder is processed lacks screening of the refined powder, and generally uses a screw conveyor for transportation. Since the refined powder still has a certain amount of moisture, it may adhere, making it inconvenient to discharge. Summary of the Utility Model
[0004] In view of the problems existing in the prior art, the utility model discloses a discharging device. The technical solution adopted is that it includes a docking cylinder, a lower collecting cylinder, a vibrating sieve plate, sieve holes, a vibrating sieve installation structure, a lower discharging channel, a right outlet, a conveyor belt, a conveyor belt motor, belt pulleys, a front window, a cleaning part, a mounting plate, an inclined plate and an inclined plate installation structure. The docking cylinder is connected to the lower discharge port of the refined powder machine. The lower collecting cylinder is integrally formed at the lower part of the docking cylinder. A vibrating sieve installation structure is arranged in the docking cylinder, and the vibrating sieve plate is installed through it. Sieve holes are distributed on the vibrating sieve plate. Through the vibrating sieve installation structure, the vibrating sieve plate can vibrate to screen the refined powder. The lower collecting cylinder is connected to the lower discharging channel below and is mutually communicated. A right outlet is opened on the right side of the lower discharging channel, and a conveyor belt is arranged inside. The conveyor belt is installed in cooperation with the belt pulleys, and the belt pulleys are driven by the conveyor belt motor. The falling materials are transported out by the conveyor belt. A front window is opened on the front side of the lower discharging channel, and a cleaning part is arranged inside. The arranged cleaning part can clean the materials adhering to the conveyor belt and take out the refined powder cleaned from the front window in the later stage. The mounting plate is fixed on the surface of the conveyor belt. The lower half of the mounting plate is made of an elastic material, and an inclined plate installation structure is arranged on its rear side, and the inclined plate is installed through the inclined plate installation structure.
[0005] As a preferred technical solution of the present utility model, the vibrating screen installation structure includes an arc baffle, a side wall installation groove, a vibration motor, and a side wall through hole. The side wall of the docking cylinder is provided with a side wall installation groove, and vibration motors are evenly installed on the bottom surface in the side wall installation groove. The output end of the vibration motor is connected to the bottom surface of the vibrating screen plate. An arc baffle is integrally formed on the vibrating screen plate, and the arc baffle shields the side wall installation groove to prevent fine powder from falling into the side wall installation groove during the vibrating screen process. The side wall of the docking cylinder is provided with a side wall through hole, and the cable of the external power supply extends through the side wall through hole to supply power to the vibration motor. A heater and a number of vertical heating rods are evenly distributed on the bottom surface of the vibrating screen plate. The heater is connected to the external power supply, and the cable used for the external power supply also passes through the side wall through hole. The setting of the heater has a certain dehumidifying effect during the falling process of the fine powder. The heating rods and the heater are both existing technologies.
[0006] As a preferred technical solution of the present utility model, the positions of the heating rods are arranged staggeredly with the positions of the sieve holes.
[0007] As a preferred technical solution of the present utility model, the cleaning part includes a cleaning motor, a rotating shaft, and a cleaning cylinder. A number of cleaning motors are distributed on the front side of the lower discharge channel. The cleaning motors drive the rotating shaft rotatably installed in the lower discharge channel. A cleaning cylinder is fixed on the rotating shaft, and cleaning brushes are distributed on the outer wall of the cleaning cylinder. The cleaning motors are connected to the external power supply and drive the rotating shaft to rotate counterclockwise. During the rotation process, the cleaning cylinder and the cleaning brushes clean the conveyor belt that moves to the lower part.
[0008] As a preferred technical solution of the present utility model, the inclined plate installation structure includes a torsion spring installation box, an installation rotating shaft, and a limiting plate. The torsion spring installation box is fixed on the rear side of the installation plate. There is a torsion spring in the torsion spring installation box. The installation rotating shaft is rotatably installed through the torsion spring. The inclined plate is fixed on the end surface of the installation rotating shaft. A limiting plate is also fixed on the rear side of the installation plate to limit the inclination angle of the inclined plate. The setting of the inclined plate helps with discharging.
[0009] The beneficial effects of the present utility model: The vibrating screen plate is installed through the vibrating screen installation structure arranged in the docking cylinder. After the fine powder is processed, it falls onto the vibrating screen plate for vibrating screening. During the continuous feeding process of the fine powder, dehumidification treatment is carried out using the heater and the heating rods, and finally it falls on the conveyor belt, and the conveyor belt is used for transporting the fine powder. The setting of the inclined plate can improve the conveying effect. The cleaning part arranged in the lower discharge channel cleans the conveyor belt below it, cleans the materials adhered to the surface of the conveyor belt, and takes them out through the front side window subsequently. Description of the Drawings
[0010] Figure 1 is a schematic structural diagram of the present utility model;
[0011] Figure 2 is a schematic front sectional structural diagram of the present utility model;
[0012] Figure 3 This is a schematic cross-sectional structure diagram of some components of the present utility model.
[0013] In the figure: docking cylinder 1, lower collecting cylinder 2, vibrating sieve plate 3, sieve holes 4, arc baffle 5, lower discharge channel 6, right side outlet 7, conveyor belt 8, conveyor belt motor 9, belt pulley 91, front side window 10, cleaning motor 11, side wall mounting groove 12, vibration motor 13, heating rod 14, side wall through hole 15, mounting plate 16, torsion spring mounting box 161, mounting rotating shaft 162, limiting plate 163, inclined plate 17, rotating shaft 18, cleaning cylinder 19. Specific embodiments
[0014] Embodiment 1
[0015] As Figures 1 to 3 shown, the present utility model discloses a discharge device, and the technical solution adopted is that it includes a docking cylinder 1, a lower collecting cylinder 2, a vibrating sieve plate 3, sieve holes 4, a vibrating sieve mounting structure, a lower discharge channel 6, a right side outlet 7, a conveyor belt 8, a conveyor belt motor 9, a belt pulley 91, a front side window 10, a cleaning part, a mounting plate 16, an inclined plate 17 and an inclined plate mounting structure. The lower part of the docking cylinder 1 is integrally formed with the lower collecting cylinder 2. A vibrating sieve mounting structure is arranged in the docking cylinder 1, and the vibrating sieve plate 3 is mounted through it. Sieve holes 4 are distributed on the vibrating sieve plate 3. The lower collecting cylinder 2 is connected to the lower discharge channel 6 below and is mutually communicated. A right side outlet 7 is opened on the right side of the lower discharge channel 6, and a conveyor belt 8 is arranged inside. The conveyor belt 8 is cooperatively mounted with the belt pulley 91, and the belt pulley 91 is driven by the conveyor belt motor 9. A front side window 10 is opened on the front side of the lower discharge channel 6, and a cleaning part is arranged inside. A mounting plate 16 is fixed on the surface of the conveyor belt 8. The mounting plate 16 is made of an elastic material, and an inclined plate mounting structure is arranged on its rear side surface, and the inclined plate 17 is mounted through the inclined plate mounting structure.
[0016] As a preferred technical solution of the present utility model, the vibrating sieve mounting structure includes an arc baffle 5, a side wall mounting groove 12, a vibration motor 13 and a side wall through hole 15. A side wall mounting groove 12 is opened on the side wall of the docking cylinder 1. Vibration motors 13 are evenly mounted on the bottom surface in the side wall mounting groove 12. The output end of the vibration motor 13 is connected to the bottom surface of the vibrating sieve plate 3. An arc baffle 5 is integrally formed on the vibrating sieve plate 3, and the arc baffle 5 shields the side wall mounting groove 12. A side wall through hole 15 is opened on the side wall of the docking cylinder 1, and the cable of the external power supply extends into the vibration motor 13 through the side wall through hole 15 to supply power. A heater and a number of vertically distributed heating rods 14 are evenly arranged on the bottom surface of the vibrating sieve plate 3. The heater is connected to the external power supply, and the cable used for the external power supply also passes through the side wall through hole 15.
[0017] As a preferred technical solution of the present utility model, the positions of the heating rods 14 are staggered with the positions of the sieve holes 4.
[0018] As a preferred technical solution of the present utility model, the cleaning part can clean the conveyor belt to prevent it from adhering and accumulating on the conveyor belt and affecting subsequent conveying. Its specific structure includes a cleaning motor 11, a rotating shaft 18 and a cleaning cylinder 19. A number of cleaning motors 11 are distributed on the front side of the lower discharge channel 6. The cleaning motor 11 drives the rotating shaft 18 rotatably installed in the lower discharge channel 6. The cleaning cylinder 19 is fixed on the rotating shaft 18, and cleaning brushes are distributed on the outer wall of the cleaning cylinder 19.
[0019] As a preferred technical solution of the present utility model, the inclined plate mounting structure includes a torsion spring mounting box 161, a mounting rotating shaft 162 and a limiting plate 163. The torsion spring mounting box 161 is fixed to the rear side of the mounting plate 16. There is a torsion spring in the torsion spring mounting box 161. The mounting rotating shaft 162 is rotatably installed through the torsion spring. The inclined plate 17 is fixed to the end face of the mounting rotating shaft 162. A limiting plate 163 is also fixed to the rear side of the mounting plate 16.
[0020] The working principle of the present utility model: During use, after the fine powder is processed, it falls from the fine powder machine onto the vibrating sieve plate 3. The fine powder is vibrated and screened by the vibrating sieve plate 3 and the vibrating motor 13. During the process of the fine powder falling from the docking cylinder 1, the heater and the heating rod 14 are used to dehumidify the fine powder. The fine powder continues to fall onto the conveyor belt 8. The conveyor belt motor 9 powered by an external power source is started to convey and discharge the fine powder outward through the conveyor belt. The cleaning part arranged in the lower discharge channel 6 cleans the conveyor belt 8 from below, cleans the materials adhering to the surface of the conveyor belt 8 and takes them out through the front side window subsequently.
[0021] The components not described in detail in this article are prior art.
[0022] Although the specific embodiments of the present utility model are described in detail above, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those of ordinary skill in the art, various changes can be made without departing from the purpose of the present utility model, and the modifications or deformations that do not involve creative labor are still within the protection scope of the present utility model.
Claims
1. A nesting device, characterized in that: It includes a docking cylinder (1), a lower collecting cylinder (2), a vibrating sieve plate (3), sieve holes (4), a vibrating sieve installation structure, a lower discharge channel (6), a right-side outlet (7), a conveyor belt (8), a conveyor belt motor (9), a belt pulley (91), a front-side window (10), a cleaning part, a mounting plate (16), an inclined plate (17) and an inclined plate installation structure; the lower part of the docking cylinder (1) is integrally formed with the lower collecting cylinder (2); a vibrating sieve installation structure is arranged in the docking cylinder (1), and the vibrating sieve plate (3) is installed through it; sieve holes (4) are distributed on the vibrating sieve plate (3); the lower collecting cylinder (2) is connected to the lower discharge channel (6) below and is mutually communicated; a right-side outlet (7) is opened on the right side of the lower discharge channel (6), a conveyor belt (8) is arranged inside, the conveyor belt (8) is cooperatively installed with the belt pulley (91), and the belt pulley (91) is driven by the conveyor belt motor (9); a front-side window (10) is opened on the front side of the lower discharge channel (6), and a cleaning part is arranged inside; a mounting plate (16) is fixed on the surface of the conveyor belt (8), the lower half of the mounting plate (16) is made of an elastic material, and an inclined plate installation structure is arranged on its rear side, and the inclined plate (17) is installed through the inclined plate installation structure.
2. The blanking device according to claim 1, wherein: The vibrating sieve installation structure includes an arc baffle (5), a side-wall installation groove (12), a vibrating motor (13) and a side-wall through hole (15); a side-wall installation groove (12) is opened on the side wall of the docking cylinder (1), and vibrating motors (13) are evenly installed on the bottom surface in the side-wall installation groove (12); the output end of the vibrating motor (13) is connected to the bottom surface of the vibrating sieve plate (3); an arc baffle (5) is integrally formed on the vibrating sieve plate (3), and the arc baffle (5) shields the side-wall installation groove (12); a side-wall through hole (15) is opened on the side wall of the docking cylinder (1), and the cable of the external power supply extends into the docking cylinder (1) through the side-wall through hole (15) to supply power to the vibrating motor (13).
3. The blanking device according to claim 2, characterized in that: A heater and a number of vertical heating rods (14) evenly distributed are installed on the bottom surface of the vibrating sieve plate (3), the heater is used with an external power supply, and the cable used for the external power supply also passes through the side-wall through hole (15).
4. The discharging device according to claim 3, characterized in that: The positions of the heating rods (14) are staggered with the positions of the sieve holes (4).
5. The discharging device according to claim 1, wherein: The cleaning part includes a cleaning motor (11), a rotating shaft (18) and a cleaning cylinder (19); a number of cleaning motors (11) are distributed on the front side of the lower discharge channel (6), and the cleaning motors (11) drive the rotating shaft (18) rotatably installed in the lower discharge channel (6); a cleaning cylinder (19) is fixed on the rotating shaft (18), and cleaning brushes are distributed on the outer wall of the cleaning cylinder (19).
6. The discharging device according to claim 1, characterized in that: The inclined plate installation structure includes a torsion spring installation box (161), a mounting rotating shaft (162) and a limiting plate (163); a torsion spring installation box (161) is fixed on the rear side of the mounting plate (16), a torsion spring is provided in the torsion spring installation box (161), and the mounting rotating shaft (162) is rotatably installed through the torsion spring; the inclined plate (17) is fixed on the end surface of the mounting rotating shaft (162); a limiting plate (163) is also fixed on the rear side of the mounting plate (16).