Draining and conveying device for konjak processing
By designing jitter components, pressure components and flip components in the konjac drainage transmission device, combining heating and air flow speed to accelerate drying, the problem of incomplete drying of the konjac surface is solved, and uniform drying and efficient processing of konjac are achieved.
Patent Information
- Application Number
- CN202510491102.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2045-04-18
AI Technical Summary
During the drying process of the existing konjac drainage transmission device, the lower surface of the konjac is blocked due to air drying and the tension of the water film adhesion, resulting in incomplete drying, affecting the overall processing quality.
A drainage transmission device including a jitter assembly, a pressure assembly and a flip assembly is designed to improve the drainage and drying efficiency of konjac by heating and speeding up the air flow rate, and to prevent adhesion below the konjac from being carried out to the conveying assembly through periodic automatic flip operation.
The uniform drying of konjac is achieved, the processing quality and efficiency are improved, and the product taste and appearance defects caused by local moisture residue are avoided.
Smart Images

Figure CN120207919A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of konjac processing, and more specifically, to a drainage and transmission device for konjac processing. Background Art
[0002] When processing konjac, it is usually necessary to peel and wash it. After cleaning, a drainage and conveying device is required to transport the konjac while drying it.
[0003] Most of the existing konjac drainage and transmission devices adopt a design of a perforated conveyor belt. The original intention is to achieve the drainage function through natural drainage during the conveying process. However, for konjac, a food material with a high water content and a slippery surface, relying solely on the natural drainage method during transportation, the drainage effect is often difficult to meet expectations. To improve the drainage efficiency, the current mainstream devices mostly adopt a technical solution combining vibration and air drying. The vibration device promotes the shedding of water inside and on the surface of konjac through mechanical vibration, while the air drying system uses air flow to accelerate the evaporation of water. However, in practical applications, this design still has significant limitations: Since konjac needs to be directly placed on the surface of the conveyor belt for transmission, the lower surface area in contact with the conveyor belt is often difficult to be fully exposed to the upper air drying flow due to the shielding of the conveyor belt, resulting in slow water evaporation in this area; at the same time, during the vibration process, due to the surface tension of water, local adhesion is likely to form between the lower surface of konjac and the conveyor belt, further hindering the effective separation of water. This design defect directly leads to a significant difference in the drying effect between the lower surface and the upper surface of konjac during transportation, forming an uneven drying phenomenon of "dry on the upper part and wet on the lower part". In the long-term operation, it not only affects the overall processing quality of konjac (such as being prone to microbial growth and affecting the subsequent shelf life), but also may cause problems such as poor product taste and appearance defects due to local water residue, ultimately restricting the quality improvement and efficiency optimization of the konjac processing industry. In view of this, we propose a drainage and transmission device for konjac processing. Summary of the Invention
[0004] The purpose of the present invention is to provide a drainage and transmission device for konjac processing, so as to solve the technical problem that although the existing konjac drainage and transmission device uses a perforated conveyor belt in combination with vibration and air drying to accelerate drainage, the lower surface of konjac in contact with the conveyor belt is not thoroughly dried due to blocked air drying and water film tension adhesion, affecting the overall processing quality.
[0005] To solve the above technical problem, the present invention provides the following technical solution: A drainage and transmission device for konjac processing, including a driver, a controller, and a conveyor belt, and further including, The conveying mechanism includes a protective component, a driver arranged inside the protective component, a conveying component driven by the driver, a bracket, a controller, and a pressure component connected to the driver. Among them, the bracket is arranged below the protective component, and the controller is located above the bracket; and, the draining mechanism includes two driven components, two shaking components connected to the two driven components, a connecting component, and a turning component. Among them, the two connecting components are connected to the two driven components, and the turning component is connected to the driven component through the connecting component.
[0006] In the process of conveying konjac, the present invention can not only improve the draining and drying efficiency of konjac by heating and accelerating the air flow rate, but also cooperate with the automatic turning of konjac in cycles to avoid the adhesion between the lower part of konjac and the conveying component, thereby ensuring the quality and efficiency of processing konjac by this device.
[0007] Preferably, the protective component is fixedly connected to the two drivers, the conveying component is arranged outside the two drivers, the conveying component is driven by the driver to operate, the pressure component is fixedly connected to one side of one of the drivers, the pressure component is fixedly connected to the protective component, the lower part of the protective component is fixedly connected to the bracket, the upper part of the bracket is fixedly connected to the controller, and the controller is electrically connected to the driver.
[0008] Preferably, the driven component is engaged with the shaking component, the driven component is in transmission connection with the connecting component, and the turning component is clamped in the connecting component; The driven component is in transmission connection with the conveying component, the shaking component is slidably connected inside the protective component, and the connecting component is fixedly connected above the protective component.
[0009] Preferably, the protective component includes two protective side plates, and reinforcing plates are fixedly connected above both of the two protective side plates, and two limiting grooves are opened on one side of each of the two protective side plates; The driver is fixedly connected to one side of the protective side plate, the pressure component is fixedly connected to one side of one of the protective side plates, the bracket is fixedly connected to the lower part of the protective side plate, the driven component is clamped with the two protective side plates, and the connecting component is fixedly connected above the protective side plate.
[0010] Preferably, the pressure component includes a blower, the blower is communicated with a conduit, the other end of the conduit is respectively communicated with a plurality of exhaust hoods through a plurality of sub-conduits, and heaters are fixedly connected between adjacent two of the exhaust hoods; The exhaust hoods and the heaters are fixedly connected between the two protective side plates, the blower is in transmission connection with the driver, and the exhaust hoods and the heaters are located above the conveying component.
[0011] Preferably, the conveying assembly includes a conveyor belt, and a plurality of water drainage holes are formed in the outer side of the conveyor belt; The inner wall of the conveyor belt is in transmission connection with a driver, and the inner wall of the conveyor belt is in transmission connection with a driven assembly.
[0012] Preferably, the driven assembly includes a rotating shaft, two bearings are sleeved outside the rotating shaft, a driven wheel is fixedly connected to the outside of the rotating shaft, both ends of the rotating shaft pass through the two bearings and are respectively fixedly connected to two transmission wheels. The number of the transmission wheels is four. The two transmission wheels on one side are in transmission connection through a transmission belt. Two half gears are fixedly connected to the outside of the rotating shaft; The rotating shaft is meshed with a shaking assembly through the half gears, the rotating shaft is in transmission connection with a connecting assembly through the transmission wheels and the transmission belt, the outer wall of the driven wheel is in transmission connection with the inner wall of the conveyor belt, and the bearings are clamped on one side of the protective side plate.
[0013] Preferably, the shaking assembly includes two positioning plates, elastic telescopic rods are fixedly connected to the lower sides of the two positioning plates, limit blocks are fixedly connected to the bottom ends of the elastic telescopic rods, a toothed plate is fixedly connected to the other side of the limit blocks, a connecting block is fixedly connected to one side of the toothed plate, mounting cylinders are clamped on one side of the two connecting blocks, and the same rotating cylinder is sleeved in the two mounting cylinders; The toothed plate is meshed with the half gears, the limit blocks are slidably connected in limit grooves, and the two positioning plates are respectively fixedly connected to the two protective side plates.
[0014] Preferably, the connecting assembly includes two reinforcing ribs, connecting cylinders are clamped in the two reinforcing ribs, rotating rods are sleeved in the two connecting cylinders, first gears are fixedly connected to the opposite ends of the two rotating rods, and the first gears are quarter gears; The reinforcing ribs are fixedly connected above a reinforcing plate, the rotating rods are in transmission connection with the rotating shaft through the transmission wheels and the transmission belt, and a turning-over assembly is clamped between the two reinforcing ribs.
[0015] Preferably, the turning-over assembly includes two sleeves, connecting rods are sleeved in the two sleeves, a second gear is fixedly connected to one end of each connecting rod, both ends of the same driving rod are fixedly connected to one ends of the two connecting rods passing through the second gear, coil springs are fixedly connected to the outside of the two connecting rods, a dial is fixedly connected to the outside of the driving rod, and a plurality of friction strips are fixedly connected to one side of the dial; The sleeves are clamped on one side of the reinforcing ribs, the first gears are meshed with the second gears, and the other ends of the two coil springs are respectively fixedly connected to the two reinforcing ribs.
[0016] Compared with the prior art, the beneficial effects of the present invention are: 1. The present invention designs a jitter component, a pressure component and a turning component. When the driver operates, it will drive the conveying component and the pressure component to operate together. At this time, the driven component will also operate under the drive of the conveying component. Subsequently, the konjac that needs to be drained is placed above the conveying component, and the konjac is dried by discharging gas and high temperature through the pressure component. As the driven component operates, the jitter component will move upward under the drive of the driven component, squeezing the conveying component to deform it; when the jitter component disengages from the driven component, it will quickly reset, thus realizing the jitter effect on the konjac above the conveying component. At the same time, when the driver operates one circle (360 degrees), the connecting component will push the turning component to flip the konjac, turning over the konjac being conveyed on the conveyor belt. In this way, during the process of conveying the konjac, the device can not only improve the draining and drying efficiency of the konjac by heating and accelerating the air flow rate, but also cooperate with the periodic automatic turning operation to avoid adhesion between the lower part of the konjac and the conveying component, thereby ensuring the quality and efficiency of processing konjac by the device.
[0017] 2. The present invention also designs a jitter component and a driver. When the driver operates, the fan operates synchronously. The driver drives the conveyor belt to operate. At this time, when the konjac is placed above the conveyor belt, the conveying of the konjac can be realized. When the conveyor belt drives the konjac to move twice past the heater and the exhaust hood, the fan injects gas into the exhaust hood through the conduit and the sub-manifold, so that a large amount of air is discharged from the exhaust hood. This process can not only increase the surface temperature of the konjac, but also accelerate the air flow rate on the surface of the konjac, thereby accelerating the evaporation of the water on the surface of the konjac and completing the accelerated draining and drying of the konjac. When the conveyor belt operates, the driven wheel will rotate with the conveyor belt. When the semi-gear rotates 180 degrees, it will contact the toothed plate. As the semi-gear continues to rotate, it drives the toothed plate and the limit block to move upward along the limit groove. When the semi-gear rotates 180 degrees again, the toothed plate drives the rotating cylinder to squeeze the conveyor belt, making the conveyor belt bulge upward and deform. When the semi-gear rotates to disengage the toothed plate from the semi-gear, the elastic telescopic rod pushes the limit block and the rotating cylinder to reset, restoring the conveyor belt to its original state, thus realizing the jitter effect on the conveyor belt. The device only needs to start the motor to complete the air drying, heating and jitter draining of the konjac, reducing the operation difficulty. Moreover, through the cooperation of multiple components, the processing effect of the device on the konjac is improved.
[0018] 3. The present invention also designs a turning-over component and a connecting component. When the driven wheel rotates, it drives the first gear to rotate through the rotating shaft and the transmission wheel. At this time, the first gear rotates in the same direction as the driven wheel. During the rotation of 360 degrees, the first gear will contact the second gear and drive the second gear to rotate in the opposite direction. When the second gear rotates, it will drive the second gear to rotate 90 degrees, making its rotation direction opposite to that of the driven wheel and the first gear, and the second gear is perpendicular to the conveyor belt after rotation, thus forming a barrier to the konjac above the conveyor belt, causing the konjac to accumulate on one side of the baffle. As the first gear continues to rotate, the first gear disengages from the second gear. At this time, the spiral spring will quickly drive the connecting rod to reset, and then the baffle will stir the konjac during the reset process. Since the konjac adheres to the surface of the baffle under the drive of the conveyor belt, the baffle can smoothly stir the konjac when reset, completing the turning-over process of the konjac. This process repeats. Since multiple baffles are provided above the conveyor belt, the device can continuously turn over the konjac during use. In addition, the device can process the residual moisture on the surface of the konjac in all directions (360 degrees), ensuring that the overall dryness degree of the konjac surface is consistent, thereby guaranteeing the quality of the konjac processed by the device and avoiding the situation where the taste of the konjac product is affected by local residual moisture. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the structure of the conveying component of the present invention; Figure 3 is a schematic diagram of the structure of the protection component of the present invention; Figure 4 is a schematic sectional view of the conveying component of the present invention; Figure 5 is of the present invention Figure 4 magnified schematic diagram of part A; Figure 6 is a schematic diagram of the structure of the shaking component of the present invention; Figure 7 is a schematic diagram of the structure of the driven component of the present invention; Figure 8 is an exploded schematic diagram of the turning-over component of the present invention.
[0020] Explanation of the marks in the figure: 1. Conveying mechanism; 2. Water draining mechanism; 11. Protection component; 12. Driver; 13. Pressure component; 14. Conveying component; 15. Bracket; 16. Controller; 21. Driven component; 22. Shaking component; 23. Connecting component; 24. Turning-over component; 111. Protection side plate; 112. Reinforcement plate; 113. Limiting groove; 131, Fan; 132, Duct; 133, Branch Pipe; 134, Exhaust Hood; 135, Heater; 141, Conveyor Belt; 142, Drainage Hole; 211, Rotating Shaft; 212, Bearing; 213, Driven Wheel; 214, Half Gear; 215, Driving Wheel; 216, Transmission Belt; 221, Positioning Plate; 222, Elastic Telescopic Rod; 223, Limit Block; 224, Tooth Plate; 225, Connecting Block; 226, Installation Tube; 227, Rotating Tube; 231, Reinforcing Rib; 232, Connecting Tube; 233, Rotating Rod; 234, First Gear; 241, Sleeve; 242, Connecting Rod; 243, Second Gear; 244, Driving Rod; 245, Torsion Spring; 246, Paddle; 247, Friction Strip. Detailed Embodiment
[0021] As Figures 1 to 8 shown, a drainage and transmission device for konjac processing according to the present invention includes a driver 12, a controller 16, and a conveyor belt 141, and further includes The conveying mechanism 1 includes a protection component 11, a driver 12 arranged inside the protection component 11, a conveying component 14 driven by the driver 12, a bracket 15, a controller 16, and a pressure component 13 connected to the driver 12. Among them, the bracket 15 is arranged below the protection component 11, and the controller 16 is located above the bracket 15; and, the water draining mechanism 2 includes two driven components 21, two jitter components 22 connected to the two driven components 21, a connecting component 23, and a turning component 24. Among them, the two connecting components 23 are connected to the two driven components 21, and the turning component 24 is connected to the driven component 21 through the connecting component 23. By designing the jitter component 22, the pressure component 13, and the turning component 24, when the driver 12 operates, it will drive the conveying component 14 and the pressure component 13 to operate together. At this time, the driven component 21 will also rotate under the drive of the conveying component 14. Subsequently, the konjac that needs to be drained is placed above the conveying component 14, and the konjac is dried by discharging gas and high temperature through the pressure component 13. As the driven component 21 operates, the jitter component 22 will be driven by the driven component 21 to move upward, squeezing the conveying component 14 to deform it; when the jitter component 22 disengages from the driven component 21, it will quickly reset, thus realizing the jitter effect on the konjac above the conveying component 14. At the same time, when the driver 12 rotates 360 degrees in one circle, the connecting component 23 will push the turning component 24 to flip the konjac, turning over the konjac being conveyed on the conveyor belt 141. In this way, during the process of conveying the konjac, the device can not only improve the water draining and drying efficiency of the konjac by heating and accelerating the air flow rate, but also cooperate with the periodic automatic turning operation to avoid the adhesion of the lower part of the konjac to the conveying component 14, thereby ensuring the quality and efficiency of the device in processing konjac.
[0022] In an embodiment of the present invention, between the protection components 11 are fixedly connected to the two drivers 12. The conveying component 14 is arranged outside the two drivers 12, and the conveying component 14 is driven to operate by the drivers 12. The pressure component 13 is fixedly connected to one side of one of the drivers 12, the pressure component 13 is fixedly connected to the protection component 11, the lower part of the protection component 11 is fixedly connected to the bracket 15, the upper part of the bracket 15 is fixedly connected to the controller 16, the controller 16 is electrically connected to the drivers 12, the driven component 21 meshes with the jitter component 22, the driven component 21 is in transmission connection with the connection component 23, the turning-over component 24 is clamped in the connection component 23, the driven component 21 is in transmission connection with the conveying component 14, the jitter component 22 is slidably connected in the protection component 11, and the connection component 23 is fixedly connected above the protection component 11. By designing the jitter component 22 and the drivers 12, when the drivers 12 operate, the fan 131 operates synchronously. The drivers 12 drive the conveyor belt 141 to rotate. At this time, when the konjac is placed above the conveyor belt 141, the conveying of the konjac can be realized. When the conveyor belt 141 drives the konjac to move twice past the heater 135 and the exhaust hood 134, the fan 131 injects gas into the exhaust hood 134 through the conduit 132 and the sub-inlet pipe 133, so that a large amount of air is discharged from the exhaust hood 134. This process can not only increase the surface temperature of the konjac, but also accelerate the air flow rate on the surface of the konjac, thereby accelerating the evaporation of the moisture on the surface of the konjac and completing the accelerated water drainage and drying of the konjac. When the conveyor belt 141 operates, the driven wheel 213 will rotate together with the conveyor belt 141. When the semi-gear 214 rotates 180 degrees, it will contact the toothed plate 224. As the semi-gear 214 continues to rotate, it drives the toothed plate 224 and the limit block 223 to move upward along the limit groove 113. When the semi-gear 214 rotates 180 degrees again, the toothed plate 224 drives the rotating cylinder 227 to squeeze the transmission belt 216, causing the transmission belt 216 to bulge and deform upward. When the semi-gear 214 rotates to disengage the toothed plate 224 from the semi-gear 214, the elastic telescopic rod 222 pushes the limit block 223 and the rotating cylinder 227 to reset, restoring the conveyor belt to its original state, thus realizing the jitter effect on the conveyor belt. This device only needs to start the motor to complete the air drying, heating and jitter water drainage of the konjac, reducing the operation difficulty. Moreover, through the cooperation of multiple components, the processing effect of this device on the konjac is improved.
[0023] In an embodiment of the present invention, the protection component 11 includes two protection side plates 111, and reinforcement plates 112 are fixedly connected above the two protection side plates 111. Two limiting grooves 113 are formed on one side of each of the two protection side plates 111. The driver 12 is fixedly connected to one side of the protection side plate 111. The pressure component 13 is fixedly connected to one side of one of the protection side plates 111. The bracket 15 is fixedly connected to the lower part of the protection side plate 111. The driven component 21 is clamped with the two protection side plates 111. The connection component 23 is fixedly connected above the protection side plate 111. The pressure component 13 includes a blower 131. The blower 131 is communicated with a conduit 132. The other end of the conduit 132 is respectively communicated with a plurality of exhaust hoods 134 through a plurality of sub-conduits 133. A heater 135 is fixedly connected between adjacent two exhaust hoods 134. The exhaust hoods 134 and the heater 135 are fixedly connected between the two protection side plates 111. The blower 131 is in transmission connection with the driver 12. The exhaust hoods 134 and the heater 135 are located above the conveying component 14. The conveying component 14 includes a conveyor belt 141. A plurality of water drainage holes 142 are formed in the conveyor belt 141. The inner wall of the conveyor belt 141 is in transmission connection with the driver 12. The inner wall of the conveyor belt 141 is in transmission connection with the driven component 21. By designing a plurality of friction strips 247 on the surface of the dial plate 246, the friction force between the dial plate 246 and the konjac is increased, so as to avoid the situation that the konjac slides when the konjac is flipped by the dial plate 246, and ensure that the dial plate 246 can stably flip the konjac; By designing the limiting groove 113 on one side of the protection side plate 111, the moving direction of the limiting block 223 is restricted, and the pressure generated when the toothed plate 224 moves is shared by the elastic telescopic rod 222, thereby improving the service life of the device.
[0024] As another embodiment of the present invention, the driven component 21 includes a rotating shaft 211, two bearings 212 are connected to the outer surface of the rotating shaft 211, a driven wheel 213 is fixedly connected to the outside of the rotating shaft 211, two ends of the rotating shaft 211 pass through the two bearings 212 and are respectively fixedly connected to two transmission wheels 215, the number of the transmission wheels 215 is four, the two transmission wheels 215 located on one side are connected by transmission belts 216, two half gears 214 are fixedly connected to the outside of the rotating shaft 211, the rotating shaft 211 is meshed with the shaking component 22 through the half gears 214, the rotating shaft 211 is connected to the connecting component 23 through the transmission wheel 215 and the transmission belt 216, the outer wall of the driven wheel 213 is connected to the inner wall of the conveyor belt 141, and the bearings 212 are clamped in On one side of the protective side plate 111, the shaking component 22 includes two positioning plates 221, the bottom of the two positioning plates 221 are fixedly connected with elastic telescopic rods 222, the bottom ends of the elastic telescopic rods 222 are fixedly connected with limit blocks 223, the other side of the limit blocks 223 is fixedly connected with a tooth plate 224, one side of the tooth plate 224 is fixedly connected with a connecting block 225, one side of the two connecting blocks 225 are clamped with mounting tubes 226, the two mounting tubes 226 are sleeved with the same rotating cylinder 227, the tooth plate 224 is meshed with the half gear 214, the limit blocks 223 are slidably connected in the limit groove 113, the two positioning plates 221 are respectively fixedly connected to the two protective side plates 111, and by designing the flip assembly 24 and the connecting assembly 23, the driven wheel When the first gear 234 rotates, the first gear 234 will be driven to rotate through the rotating shaft 211 and the transmission wheel 215. At this time, the first gear 234 rotates in the same direction as the driven wheel 213. During the rotation of 360 degrees, the first gear 234 will contact the second gear 243 and drive the second gear 243 to rotate in the opposite direction. When the second gear 243 rotates, it will drive the second gear 243 to rotate 90 degrees, so that the rotation direction is opposite to that of the driven wheel 213 and the first gear 234. After the second gear 243 rotates, it is in a vertical state with the conveyor belt 141, thereby forming a barrier to the konjac above the conveyor belt 141, so that the konjac is accumulated on one side of the paddle plate 246. As the first gear 234 continues to rotate, the first gear 234 and the second gear 234 are in contact with each other. 243 is out of contact, at which time the coil spring 245 will quickly drive the connecting rod 242 to reset, thereby causing the paddle 246 to paddle the konjac during the resetting process. Since the konjac is attached to the surface of the paddle 246 driven by the conveyor belt 141, the paddle 246 can smoothly paddle the konjac during the resetting process to complete the turning over of the konjac, and so on. Since a plurality of paddles 246 are arranged above the conveyor belt 141, the device can continuously turn over the konjac during use. In addition, the device can process the residual moisture on the surface of the konjac in an all-round 360-degree manner to ensure that the overall dryness of the konjac surface is consistent, thereby ensuring the quality of the konjac processed by the device and avoiding the situation where the taste of the konjac product is affected by local residual moisture.
[0025] As another embodiment of the present invention, the connecting component 23 includes two reinforcing ribs 231. Connecting cylinders 232 are clamped inside both of the two reinforcing ribs 231. Rotating rods 233 are sleeved inside both of the two connecting cylinders 232. Fixedly connected to opposite ends of the two rotating rods 233 are first gears 234. The first gears 234 are quarter gears. The reinforcing ribs 231 are fixedly connected above the reinforcing plate 112. The rotating rods 233 are in transmission connection with the rotating shaft 211 through transmission wheels 215 and transmission belts 216. The turning component 24 is clamped between the two reinforcing ribs 231. The turning component 24 includes two sleeves 241. Connecting rods 242 are sleeved inside both of the two sleeves 241. Fixedly connected to one end of the connecting rod 242 is a second gear 243. One ends of the two connecting rods 242 pass through the second gear 243 and are fixedly connected to both ends of the same driving rod 244. Spring coils 245 are fixedly connected outside both of the two connecting rods 242. A dial plate 246 is fixedly connected outside the driving rod 244. A number of friction strips 247 are fixedly connected to one side of the dial plate 246. The sleeves 241 are clamped to one side of the reinforcing ribs 231. The first gear 234 meshes with the second gear 243. The other ends of the two spring coils 245 are respectively fixedly connected to the two reinforcing ribs 231. By designing the rotation direction of the second gear 243 to be opposite to that of the rotating shaft 211, it is ensured that the conveyor belt 141 can keep the konjac in contact with the surface of the dial plate 246 when pushing the konjac to move, and the moving direction of the konjac can increase the friction with the dial plate 246, ensuring that there is sufficient friction to guarantee the turning of the konjac when the dial plate 246 resets, and improving the stability of the operation of the device.
[0026] Working principle: This embodiment provides a draining and conveying device for konjac processing. When in use, when the driver 12 operates, it will drive the conveying component 14 to operate. At the same time, the pressure component 13 also starts to operate. At this time, the driven component 21 rotates following the drive of the conveying component 14. Subsequently, the konjac that needs to be drained is placed above the conveying component 14, and the gas and high temperature discharged by the pressure component 13 are used to dry the konjac. With the operation of the driven component 21, the shaking component 22 will move upward under its drive, squeezing the conveying component 14 to deform it; when the shaking component 22 disengages from the driven component 21, it will quickly reset, thereby completing the shaking operation on the konjac above the conveying component 14. At the same time, when the driver 12 operates one circle, the connecting component 23 will push the turning component 24 to turn over the konjac being conveyed on the conveyor belt 141. When driver 12 is running, blower fan 131 is synchronously operated, and driver 12 drives conveyer belt 141 running, and konjac is placed on conveyer belt 141 tops this moment, and can realize the conveying to konjac, when conveyer belt 141 drives konjac to move twice through below heater 135 and exhaust hood 134, blower fan 131 injects gas in exhaust hood 134 by conduit 132 and branch pipe 133, and a large amount of air is discharged from exhaust hood 134, and this process can improve konjac surface temperature, and can accelerate the air velocity on konjac surface again, and then accelerate the evaporation of konjac surface moisture, and finish the accelerated draining drying to konjac, and when conveyer belt 141 is running, from The driving wheel 213 rotates together with the conveyor belt 141. When the half gear 214 rotates 180 degrees, it contacts the tooth plate 224. As the half gear 214 continues to rotate, the tooth plate 224 and the limit block 223 are driven to move upward along the limit groove 113. When the half gear 214 rotates 180 degrees again, the tooth plate 224 drives the rotating drum 227 to squeeze the transmission belt 216, so that the transmission belt 216 bulges upward and deforms. When the half gear 214 rotates to separate the tooth plate 224 from the half gear 214, the elastic telescopic rod 222 pushes the limit block 223 and the rotating drum 227 to reset, so that the conveyor belt returns to its original state, thereby achieving a shaking effect on the conveyor belt. When the driven wheel 213 rotates, the first gear 234 is driven to rotate through the rotating shaft 211 and the transmission wheel 215. At this time, the first gear 234 rotates in the same direction as the driven wheel 213. During the rotation of 360 degrees, the first gear 234 contacts the second gear 243 and drives the second gear 243 to rotate in the opposite direction, thereby causing the second gear 243 to rotate 90 degrees in the opposite direction with the driven wheel 213 and the first gear 234, so that it is in a vertical state with the conveyor belt 141, blocking the konjac above the conveyor belt 141, and causing the konjac to accumulate on one side of the paddle plate 246. As the first gear 234 continues to rotate, the first gear 234 is disengaged from the second gear 243, and the coil spring 245 quickly drives the connecting rod 242 to reset. The paddle plate 246 pokes the konjac during the resetting process. Since the konjac is attached to the surface of the paddle plate 246 driven by the conveyor belt 141, the paddle plate 246 can smoothly poke the konjac during the resetting process, thereby completing the turning over of the konjac, and so on.
[0027] The embodiments of the present invention disclose preferred embodiments, but are not limited thereto. A person skilled in the art can easily understand the spirit of the present invention based on the above embodiments and make different extensions and changes. However, as long as they do not deviate from the spirit of the present invention, they are all within the protection scope of the present invention.
Claims
1. A drainage and transmission device for konjac processing, comprising a driver (12), a controller (16) and a conveyor belt (141), characterized in that: Also includes, A conveying mechanism (1), comprising a protective component (11), a driver (12) disposed in the protective component (11), a conveying component (14) driven by the driver (12), a support (15), a controller (16), and a pressure component (13) connected to the driver (12), wherein the support (15) is disposed below the protective component (11), and the controller (16) is located above the support (15); and The drain mechanism (2) comprises two driven assemblies (21), two shaking assemblies (22) connected to the two driven assemblies (21), a connecting assembly (23) and a flipping assembly (24), wherein the two connecting assemblies (23) are connected to the two driven assemblies (21), and the flipping assembly (24) is connected to the driven assembly (21) via the connecting assembly (23).
2. The drain transmission device for konjac processing according to claim 1, characterized in that, The protection component (11) is fixedly connected to the two drivers (12), the conveying component (14) is arranged outside the two drivers (12), the conveying component (14) is driven by the driver (12), the pressure component (13) is fixedly connected to one side of one of the drivers (12), the pressure component (13) is fixedly connected to the protection component (11), the bottom of the protection component (11) is fixedly connected to the bracket (15), the top of the bracket (15) is fixedly connected to the controller (16), and the controller (16) is electrically connected to the driver (12).
3. The drain transmission device for konjac processing according to claim 2, characterized in that, The driven component (21) is meshed with the shaking component (22), the driven component (21) is drivingly connected to the connecting component (23), and the turning component (24) is clamped in the connecting component (23); The driven component (21) is drivingly connected to the conveying component (14), the shaking component (22) is slidably connected in the protection component (11), and the connecting component (23) is fixedly connected above the protection component (11).
4. The drain transmission device for konjac processing according to claim 3, characterized in that, The protection assembly (11) comprises two protection side plates (111), and a reinforcement plate (112) is fixedly connected to the top of each of the two protection side plates (111), and two limiting grooves (113) are provided on one side of each of the two protection side plates (111); The driver (12) is fixedly connected to one side of the protective side plate (111), the pressure assembly (13) is fixedly connected to one side of one of the protective side plates (111), the bracket (15) is fixedly connected below the protective side plates (111), the driven assembly (21) is clamped with the two protective side plates (111), and the connection assembly (23) is fixedly connected above the protective side plates (111).
5. The drain transmission device for konjac processing according to claim 4, characterized in that, The pressure assembly (13) comprises a fan (131), the fan (131) being connected to a conduit (132), the other end of the conduit (132) being respectively connected to a plurality of exhaust hoods (134) via a plurality of branch pipes (133), and a heater (135) being fixedly connected between two adjacent exhaust hoods (134); The exhaust hood (134) and the heater (135) are fixedly connected between the two protective side plates (111); the fan (131) is transmission-connected to the driver (12); and the exhaust hood (134) and the heater (135) are located above the conveying assembly (14).
6. The draining transmission device for konjac processing according to claim 5, characterized in that, The conveying assembly (14) comprises a conveying belt (141), and a plurality of drainage holes (142) are formed on the outside of the conveying belt (141); The inner wall of the conveyor belt (141) is in driving connection with the driver (12), and the inner wall of the conveyor belt (141) is in driving connection with the driven component (21).
7. The draining and transmitting device for konjac processing according to claim 6, characterized in that: The driven component (21) comprises a rotating shaft (211), the rotating shaft (211) being outer-connected with two bearings (212), the rotating shaft (211) being externally fixedly connected with a driven wheel (213), the two ends of the rotating shaft (211) passing through the two bearings (212) and respectively being fixedly connected with two transmission wheels (215), the number of the transmission wheels (215) being four, the two transmission wheels (215) located on one side being transmission-connected via a transmission belt (216), and the rotating shaft (211) being externally fixedly connected with two half gears (214); The rotating shaft (211) is meshed with the shaking assembly (22) via a half gear (214); the rotating shaft (211) is transmission-connected to the connecting assembly (23) via a transmission wheel (215) and a transmission belt (216); the outer wall of the driven wheel (213) is transmission-connected to the inner wall of the conveyor belt (141); and the bearing (212) is clamped on one side of the protective side plate (111).
8. The draining and transmitting device for konjac processing according to claim 7, characterized in that: The shaking assembly (22) comprises two positioning plates (221), the lower parts of the two positioning plates (221) are fixedly connected with elastic telescopic rods (222), the bottom ends of the elastic telescopic rods (222) are fixedly connected with limit blocks (223), the other side of the limit blocks (223) is fixedly connected with a tooth plate (224), one side of the tooth plate (224) is fixedly connected with a connecting block (225), one side of the two connecting blocks (225) are clamped with mounting cylinders (226), and the same rotating cylinder (227) is sleeved inside the two mounting cylinders (226); The tooth plate (224) meshes with the half gear (214), the limit block (223) is slidably connected in the limit groove (113), and the two positioning plates (221) are fixedly connected to the two protective side plates (111) respectively.
9. The draining and transmitting device for konjac processing according to claim 8, characterized in that: The connection assembly (23) comprises two reinforcing ribs (231), a connecting tube (232) is clamped in each of the two reinforcing ribs (231), a rotating rod (233) is sleeved in each of the two connecting tubes (232), and opposite ends of the two rotating rods (233) are fixedly connected to a first gear (234), the first gear (234) being a quarter gear; The reinforcing ribs (231) are fixedly connected above the reinforcing plate (112); the rotating rod (233) is transmission-connected to the rotating shaft (211) via a transmission wheel (215) and a transmission belt (216); and the two reinforcing ribs (231) are clamped with the turning assembly (24).
10. The drainage transmission device for konjac processing according to claim 9, characterized in that: The flip assembly (24) comprises two sleeves (241), the two sleeves (241) are sleeved with connecting rods (242), one end of the connecting rod (242) is fixedly connected to a second gear (243), one end of the two connecting rods (242) passes through the second gear (243) and is fixedly connected to two ends of the same driving rod (244), the outside of the two connecting rods (242) is fixedly connected to a coil spring (245), the outside of the driving rod (244) is fixedly connected to a shifting plate (246), and one side of the shifting plate (246) is fixedly connected to a plurality of friction strips (247); The sleeve (241) is clamped on one side of the reinforcing rib (231), the first gear (234) is meshed with the second gear (243), and the other ends of the two coil springs (245) are respectively fixedly connected to the two reinforcing ribs (231).
Citation Information
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