A transmission device for ginseng freeze-dried powder production equipment

By designing a transmission device for the production equipment of ginseng freeze-dried powder, the problem of low manual material collection efficiency of freeze-dried powder is solved, and automatic material collection and transmission is realized, which improves work efficiency and reduces labor costs.

CN115782719BActive Publication Date: 2025-07-04YUANSHEN YIPIN (SHANGHAI) LIFE TECH CO LTD
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Patent Information

Application Number
CN202211625708.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-16
Publication Date
2025-07-04
Estimated Expiration
2042-12-16

AI Technical Summary

Technical Problem

During the existing production process of ginseng freeze-dried powder, the material collection efficiency of freeze-dried powder is low and depends on manual operations, resulting in low work efficiency and high labor costs.

Method used

A transmission device for ginseng freeze-dried powder production equipment is designed, including a rotary feeding support mechanism and a material discharge mechanism. By automatically taking out the pallet in the freeze-dryer, turning the pouring material to the material temporary storage room, and uniform discharge and collection of freeze-dried powder is achieved by using a traction rope and a conveyor belt.

Benefits of technology

It realizes automatic material collection and transmission of freeze-dried powder, improves work efficiency, reduces labor costs, and ensures centralized collection and storage of freeze-dried powder.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of transmission devices, and discloses a transmission device for ginseng freeze-dried powder production equipment, which solves the problem of low efficiency of manual material taking for existing ginseng freeze-dried powder. It includes a transmission frame. At the top of one end of the transmission frame close to the driving wheel set, a feeding port is opened. Inside the feeding port, a rotating feeding support mechanism is arranged. The rotating feeding support mechanism is connected by a number of hydraulic telescopic rods. One side of the rotating feeding support mechanism is connected to the transmission frame through a first traction rope and a first traction wheel set. At one end inside the transmission frame, a first partition is arranged. At the end of the transmission frame far from the first partition, a second partition is arranged. A material temporary storage chamber is formed between the second partition and the first partition. Inside the transmission frame, a material discharging mechanism is arranged which penetrates through the second partition and the material temporary storage chamber; through this transmission device, automatic material taking and feeding of ginseng freeze-dried powder can be realized, effectively improving the working efficiency and reducing the labor cost at the same time.
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Description

Technical Field

[0001] The present invention belongs to the technical field of transmission devices, and particularly relates to a transmission device for ginseng freeze-dried powder production equipment. Background Art

[0002] The production of ginseng freeze-dried powder generally involves grinding ginseng into powder and then freeze-drying it in a freeze-dryer. When freeze-drying ginseng freeze-dried powder inside the freeze-dryer, multiple trays are required to support the ginseng freeze-dried powder. However, currently, the trays are generally taken out manually. After the ginseng freeze-dried powder is freeze-dried, the trays are manually taken out from the inside of the freeze-dryer, and then the ginseng freeze-dried powder inside the trays is collected. The entire process requires a large amount of manpower and has low work efficiency. Therefore, a transmission device for ginseng freeze-dried powder production equipment is needed to automatically transmit and collect the freeze-dried ginseng freeze-dried powder. Summary of the Invention

[0003] In view of the above situation, in order to overcome the defects of the prior art, the present invention provides a transmission device for ginseng freeze-dried powder production equipment, effectively solving the problem of low efficiency of manual material taking for existing ginseng freeze-dried powder.

[0004] To achieve the above object, the present invention provides the following technical solution: A transmission device for ginseng freeze-dried powder production equipment, including a transmission frame. One end of the bottom of the transmission frame is provided with a driving wheel set, and the other end of the bottom of the transmission frame is provided with a steering wheel set. One end of the interior of the transmission frame is provided with a controller. One end of the top of the transmission frame is provided with a driver's seat, and the driver's seat is connected to the transmission frame through a rotating seat. One side of the driver's seat is fixedly provided with an operation panel. The top of the transmission frame near the driving wheel set is provided with a feeding port, and the interior of the feeding port is provided with a rotating feeding support mechanism matching the ginseng freeze-dried powder placement rack. The rotating feeding support mechanism is connected through a number of hydraulic telescopic rods located inside the transmission frame. One side of the rotating feeding support mechanism is connected to the transmission frame through a first traction rope and a first traction wheel set. One end of the interior of the transmission frame near the hydraulic telescopic rod is provided with a first partition board, and the other end of the interior of the transmission frame far from the first partition board is provided with a second partition board. A material storage chamber is formed between the second partition board and the first partition board. A material discharging mechanism penetrating through the second partition board and the material storage chamber is arranged inside the transmission frame. The controller is electrically connected to the driving wheel set, the steering wheel set, the operation panel, the rotating feeding support mechanism, the hydraulic telescopic rods, the first traction wheel set, and the material discharging mechanism.

[0005] Preferably, the rotary feeding support mechanism is composed of a U-shaped rotary support frame, an anti-collision buffer assembly, a plurality of upper limit support wheels, a plurality of movable lower support wheels, a plurality of lower driving wheels and a driver. The anti-collision buffer assembly is connected to one side inside the U-shaped rotary support frame. The upper limit support wheels, the movable lower support wheels and the lower driving wheels are all connected to both sides adjacent to the anti-collision buffer assembly inside the U-shaped rotary support frame. The driver is fixedly connected to both sides outside the U-shaped rotary support frame and is cooperatively connected with the lower driving wheels. A limit card slot matching the ginseng freeze-dried powder placement rack is formed between the upper limit support wheels and the movable lower support wheels and the lower driving wheels.

[0006] Preferably, limit baffles are arranged on both sides outside the U-shaped rotary support frame. A strip-shaped installation groove one matching the anti-collision buffer assembly is opened on one side inside the U-shaped rotary support frame close to the anti-collision buffer assembly. Strip-shaped installation grooves two matching the upper limit support wheels, the movable lower support wheels and the lower driving wheels are opened on both sides inside the U-shaped rotary support frame close to the upper limit support wheels, the movable lower support wheels and the lower driving wheels.

[0007] Preferably, the U-shaped rotary support frame and the hydraulic telescopic rod are cooperatively connected through a movable rotating shaft. A guide plate matching the material temporary storage chamber is fixedly arranged at one end of the top of the U-shaped rotary support frame. A support bottom plate is arranged at the middle position of the bottom end of the transmission rack. A storage battery electrically connected to the controller is arranged at the top end of the support bottom plate. Limit buffer assemblies matching the U-shaped rotary support frame are arranged on both sides inside the transmission rack close to one end of the rotary feeding support mechanism.

[0008] Preferably, the anti-collision buffer assembly is composed of a buffer plate, a rubber gasket, a plurality of telescopic rods and a plurality of buffer springs. The buffer plate is fixedly connected to one end of the telescopic rod. The buffer spring is located inside the telescopic rod. The rubber gasket is fixedly connected to one side of the buffer plate.

[0009] Preferably, the limit buffer assembly is composed of a fixed installation block, a limit support rod, a limit plate, a support spring, an installation sleeve, a movable limit wheel and a movable support shaft. The limit support rod penetrates through the fixed installation block. The limit plate is fixedly connected to one end of the limit support rod. The support spring is sleeved on the limit support rod. The installation sleeve is fixedly connected to the other end of the limit support rod. The movable limit wheel is connected to the inside of the installation sleeve through the movable support shaft.

[0010] Preferably, the material discharging mechanism is composed of a second towing rope, a second towing wheel set, a first discharging conveyor belt and a second discharging conveyor belt. The second towing wheel set is fixedly connected to one end of the transmission rack. The second towing rope is connected between the second towing wheel set and the second discharging conveyor belt. The first discharging conveyor belt is located at the bottom end inside the material temporary storage chamber and is cooperatively connected with the second discharging conveyor belt through a linkage assembly.

[0011] Preferably, the linkage assembly consists of a fixed support arm and a movable connecting arm. The fixed support arm is connected between the second discharge conveyor belt and the second partition. The movable connecting arm is connected between the first discharge conveyor belt and the second discharge conveyor belt. The second discharge conveyor belt and the fixed support arm, as well as the movable connecting arm and the first and second discharge conveyor belts, are all connected by movable shafts in a matching manner.

[0012] Preferably, a discharge slot matching the second discharge conveyor belt is formed on the second partition. An adjustable baffle is arranged inside the discharge slot and penetrates through the second partition. The adjustable baffle and the second partition are connected by a lifting drive assembly in a matching manner.

[0013] Preferably, the lifting drive assembly consists of a servo motor, a driving gear, and a rack. The servo motor is fixedly connected to one side of the second partition. The driving gear is connected to the output shaft of the servo motor. The rack is fixedly connected to one side of the adjustable baffle and meshes with the driving gear. A placement slot matching the driving gear is formed on one side of the second partition. A plurality of strip-shaped limiting through slots are formed inside the second partition. A plurality of limiting sliding strips matching the strip-shaped limiting through slots are arranged on one side of the adjustable baffle.

[0014] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0015] (1) During operation, by setting up a rotary feeding support mechanism composed of a U-shaped rotary support frame, an anti-collision buffer assembly, a plurality of upper limiting support wheels, a plurality of movable lower support wheels, a plurality of lower driving wheels, and a driver, the trays inside the freeze dryer can be automatically taken out, and the trays can be automatically flipped to pour materials, and the ginseng freeze-dried powder can be poured into the material temporary storage chamber for temporary storage and transmission.

[0016] (2) By setting up a material discharge mechanism composed of a second traction rope, a second traction wheel set, a first discharge conveyor belt, and a second discharge conveyor belt, the ginseng freeze-dried powder inside the material temporary storage chamber can be evenly discharged from the transmission rack, realizing the feeding and receiving of the ginseng freeze-dried powder, facilitating the centralized collection and storage of the ginseng freeze-dried powder, and effectively improving work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The drawings are used to provide a further understanding of the present invention and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation to the present invention.

[0018] In the drawings:

[0019] Figure 1 is one of the structural schematic diagrams of the transmission device for the ginseng freeze-dried powder production equipment of the present invention;

[0020] Figure 2Schematic diagram II of the transmission device structure for the ginseng freeze-dried powder production equipment of the present invention;

[0021] Figure 3 Schematic diagram of the rotating feeding support mechanism of the present invention;

[0022] Figure 4 Side schematic diagram of the rotating feeding support mechanism of the present invention;

[0023] Figure 5 Schematic diagram of the anti-collision buffer component of the present invention;

[0024] Figure 6 Schematic diagram of the limit buffer component of the present invention;

[0025] Figure 7 For the present invention Figure 1 Partial enlarged view at position A in;

[0026] Figure 8 Schematic diagram of the connection structure between the adjustable baffle and the second partition of the present invention;

[0027] Figure 9 Schematic diagram of the material discharge mechanism of the present invention;

[0028] In the figure: 1, transmission frame; 2, driving wheel set; 3, steering wheel set; 4, controller; 5, driver's seat; 6, rotating seat; 7, operation panel; 8, feed inlet; 9, ginseng freeze-dried powder placement rack; 10, rotating feeding support mechanism; 11, hydraulic telescopic rod; 12, traction rope I; 13, traction wheel set I; 14, first partition; 15, second partition; 16, material temporary storage room; 17, material discharge mechanism; 18, U-shaped rotating support frame; 19, anti-collision buffer component; 20, upper limit support wheel; 21, movable lower support wheel; 22, lower driving wheel; 23, driver; 24, limit card slot; 25, limit baffle; 26, strip-shaped installation groove I; 27, strip-shaped installation groove II; 28, movable rotating shaft; 29, guide plate; 30, support bottom plate; 31, storage battery; 32, limit buffer component; 33, buffer plate; 34, rubber gasket; 35, telescopic rod; 36, buffer spring; 37, fixed installation block; 38, limit support rod; 39, limit plate; 40, support spring; 41, installation card sleeve; 42, movable limit wheel; 43, movable support shaft; 44, traction rope II; 45, traction wheel set II; 46, first discharge conveyor belt; 47, second discharge conveyor belt; 48, linkage component; 49, fixed support arm; 50, movable connecting arm; 51, movable shaft; 52, discharge chute; 53, adjustable baffle; 54, lifting drive component; 55, servo motor; 56, driving gear; 57, rack; 58, placement groove; 59, strip-shaped limit through groove; 60, limit slide bar. Detailed implementation manners

[0029] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments; based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0030] Embodiment 1 is given by Figure 1 and Figure 2 A conveying device for a ginseng freeze-dried powder production device of the present invention includes a conveying frame 1. One end of the bottom of the conveying frame 1 is provided with a driving wheel set 2, and the other end of the bottom of the conveying frame 1 is provided with a steering wheel set 3. One end of the inside of the conveying frame 1 is provided with a controller 4. One end of the top of the conveying frame 1 is provided with a driving position 5. The driving position 5 is connected to the conveying frame 1 through a rotating seat 6. One side of the driving position 5 is fixedly provided with an operation panel 7. The top of the conveying frame 1 near one end of the driving wheel set 2 is provided with a feeding port 8. Inside the feeding port 8 is provided a rotating feeding support mechanism 10 that matches the ginseng freeze-dried powder placement rack 9. The rotating feeding support mechanism 10 is connected through a number of hydraulic telescopic rods 11 located inside the conveying frame 1. One side of the rotating feeding support mechanism 10 is connected to the conveying frame 1 through a first traction rope 12 and a first traction wheel set 13. One end of the inside of the conveying frame 1 near the hydraulic telescopic rod 11 is provided with a first partition 14, and the other end of the inside of the conveying frame 1 far from the first partition 14 is provided with a second partition 15. A material temporary storage chamber 16 is formed between the second partition 15 and the first partition 14. A material discharging mechanism 17 that penetrates through the second partition 15 and the material temporary storage chamber 16 is provided inside the conveying frame 1. The controller 4 is electrically connected to the driving wheel set 2, the steering wheel set 3, the operation panel 7, the rotating feeding support mechanism 10, the hydraulic telescopic rod 11, the first traction wheel set 13, and the material discharging mechanism 17;

[0031] When manually driving the device, it is convenient to adjust the direction of the driving position 5 through the rotating seat 6. When taking materials, the driving position 5 faces the side of the rotating feeding support mechanism 10, and when discharging materials, the driving position 5 faces the side of the material discharging mechanism 17. The device is driven to move through the driving wheel set 2 and the steering wheel set 3 to realize the transfer and conveyance of materials. When taking materials, the rotating feeding support mechanism 10 extends into the freeze-dryer to support and take out the ginseng freeze-dried powder placement rack 9. The taken-out ginseng freeze-dried powder placement rack 9 is flipped so that the ginseng freeze-dried powder inside the ginseng freeze-dried powder placement rack 9 is transferred to the inside of the material temporary storage chamber 16. The device is moved to the ginseng freeze-dried powder collection point, and then the ginseng freeze-dried powder is evenly discharged through the material discharging mechanism 17.

[0032] Embodiment 2 is given by Figures 1 to 4Provided that the rotary feeding support mechanism 10 is composed of a U-shaped rotary support frame 18, an anti-collision buffer assembly 19, a plurality of upper limit support wheels 20, a plurality of movable lower support wheels 21, a plurality of lower driving wheels 22 and a driver 23. The anti-collision buffer assembly 19 is connected to one side inside the U-shaped rotary support frame 18. The upper limit support wheels 20, the movable lower support wheels 21 and the lower driving wheels 22 are all connected to both sides adjacent to the anti-collision buffer assembly 19 inside the U-shaped rotary support frame 18. The driver 23 is fixedly connected to both sides outside the U-shaped rotary support frame 18 and is cooperatively connected with the lower driving wheels 22. A limiting card slot 24 matching the ginseng freeze-dried powder placement rack 9 is formed between the upper limit support wheels 20 and the movable lower support wheels 21 and the lower driving wheels 22. Limiting baffles 25 are provided on both sides outside the U-shaped rotary support frame 18. A strip-shaped installation groove one 26 matching the anti-collision buffer assembly 19 is formed on one side inside the U-shaped rotary support frame 18 close to the anti-collision buffer assembly 19. Strip-shaped installation grooves two 27 matching the upper limit support wheels 20, the movable lower support wheels 21 and the lower driving wheels 22 are formed on both sides inside the U-shaped rotary support frame 18 close to the upper limit support wheels 20, the movable lower support wheels 21 and the lower driving wheels 22. The U-shaped rotary support frame 18 and the hydraulic expansion link 11 are cooperatively connected through a movable rotating shaft 28. A guide plate 29 matching the material temporary storage chamber 16 is fixedly provided at one end of the top of the U-shaped rotary support frame 18. A support bottom plate 30 is provided at the middle position of the bottom end of the transmission rack 1. A storage battery 31 electrically connected to the controller 4 is provided at the top end of the support bottom plate 30. Limiting buffer assemblies 32 matching the U-shaped rotary support frame 18 are provided on both sides inside the transmission rack 1 close to one end of the rotary feeding support mechanism 10;

[0033] When the rotary feeding support mechanism 10 enters the interior of the freeze dryer, the U-shaped rotary support frame 18 is inserted into both sides of the bottom layer of the ginseng freeze-dried powder placement rack 9, so that both sides of the bottom plate of the ginseng freeze-dried powder placement rack 9 enter between the limit card slots 24. The upper limit support wheel 20, the movable lower support wheel 21 and the lower drive wheel 22 are used to support and limit the ginseng freeze-dried powder placement rack 9. The hydraulic telescopic rod 11 is started, and the ginseng freeze-dried powder placement rack 9 is slightly lifted by the hydraulic telescopic rod 11, so that the bottom end of the ginseng freeze-dried powder placement rack 9 is separated from the freeze dryer. Then the driver 23 is started, and the lower drive wheel 22 is driven to rotate by the driver 23, so as to drive the ginseng freeze-dried powder placement rack 9 to move, so that the ginseng freeze-dried powder placement rack 9 is completely moved into the interior of the U-shaped rotary support frame 18. The artificial driving device moves to drive the ginseng freeze-dried powder placement rack 9 to move out of the freeze dryer. At this time, the first traction wheel group 13 is started, and the first traction rope 12 is driven to contract by the first traction wheel group 13. The U-shaped rotary support frame 18 is driven to rotate 90° by the first traction rope 12, so as to drive the ginseng freeze-dried powder placement rack 9 to rotate 90°, so that the ginseng freeze-dried powder inside the ginseng freeze-dried powder placement rack 9 is poured into the interior of the material temporary storage chamber 16. During the pouring process, the guide plate 29 can guide the ginseng freeze-dried powder to prevent the ginseng freeze-dried powder from falling into the gaps of the device.

[0034] Embodiment 3 is given by Figure 3 , Figure 5 and Figure 6 The anti-collision buffer assembly 19 is composed of a buffer plate 33, a rubber gasket 34, a plurality of telescopic rods 35 and a plurality of buffer springs 36. The buffer plate 33 is fixedly connected to one end of the telescopic rod 35. The buffer spring 36 is located inside the telescopic rod 35. The rubber gasket 34 is fixedly connected to one side of the buffer plate 33. The limit buffer assembly 32 is composed of a fixed mounting block 37, a limit support rod 38, a limit plate 39, a support spring 40, a mounting collar 41, a movable limit wheel 42 and a movable support shaft 43. The limit support rod 38 is inserted through the fixed mounting block 37. The limit plate 39 is fixedly connected to one end of the limit support rod 38. The support spring 40 is sleeved on the limit support rod 38. The mounting collar 41 is fixedly connected to the other end of the limit support rod 38. The movable limit wheel 42 is connected to the inside of the mounting collar 41 through the movable support shaft 43;

[0035] When the ginseng freeze-dried powder placement rack 9 rotates, one end of the ginseng freeze-dried powder placement rack 9 will contact the anti-collision buffer assembly 19. Through the anti-collision buffer assembly 19, buffering of the ginseng freeze-dried powder placement rack 9 can be achieved, avoiding impact on the U-shaped rotating support frame 18 by the ginseng freeze-dried powder placement rack 9. During buffering, it is carried out through the compression of the buffer spring 36 and the rubber gasket 34, effectively improving the buffering effect; when the U-shaped rotating support frame 18 rotates, buffering of the U-shaped rotating support frame 18 is achieved through the limit buffer assembly 32, and at the same time, it can drive the U-shaped rotating support frame 18 to return to its position after the feeding is completed, avoiding the situation where the U-shaped rotating support frame 18 cannot return to its position when it is in the vertical state. After the U-shaped rotating support frame 18 contacts the movable limit wheel 42, the movable limit wheel 42 will be compressed. The movable limit wheel 42 moves on one side of the limit baffle 25, and at the same time, the driving support spring 40 is compressed, thereby realizing buffering of the U-shaped rotating support frame 18. After the feeding is completed, the first traction wheel group 13 rotates in reverse. At this time, the U-shaped rotating support frame 18 is not affected by the pulling force. The support spring 40 automatically resets through its own elastic force, thereby driving the U-shaped rotating support frame 18 to tilt outward, and then it can return to its position by the self-weight of the U-shaped rotating support frame 18.

[0036] Embodiment 4 is given by Figure 1 、 Figure 7 and Figure 9 The material discharge mechanism 17 is composed of a second traction rope 44, a second traction wheel group 45, a first discharge conveyor belt 46 and a second discharge conveyor belt 47. The second traction wheel group 45 is fixedly connected to one end of the transmission rack 1. The second traction rope 44 is connected between the second traction wheel group 45 and the second discharge conveyor belt 47. The first discharge conveyor belt 46 is located at the bottom inside the material temporary storage chamber 16 and is connected to the second discharge conveyor belt 47 in cooperation through a linkage assembly 48. The linkage assembly 48 is composed of a fixed support arm 49 and a movable connecting arm 50. The fixed support arm 49 is connected between the second discharge conveyor belt 47 and the second partition 15. The movable connecting arm 50 is connected between the first discharge conveyor belt 46 and the second discharge conveyor belt 47. The second discharge conveyor belt 47 and the fixed support arm 49, and the movable connecting arm 50 and the first discharge conveyor belt 46 and the second discharge conveyor belt 47 are all connected in cooperation through a movable shaft 51;

[0037] During discharging, start the first discharging conveyor belt 46 and the second discharging conveyor belt 47. The materials on the first discharging conveyor belt 46 are transferred to the second discharging conveyor belt 47 and then discharged by the second discharging conveyor belt 47. The height of the second discharging conveyor belt 47 can be adjusted according to the height of the receiving bin. During adjustment, start the second traction wheel set 45, and drive the second traction rope 44 to extend or contract through the second traction wheel set 45, so as to drive one end of the second discharging conveyor belt 47 to rise or fall. During the lifting and lowering process of the second discharging conveyor belt 47, drive the first discharging conveyor belt 46 to lift and lower synchronously through the movable connecting arm 50, so that a certain distance is maintained between the first discharging conveyor belt 46 and the second discharging conveyor belt 47, avoiding the contact between the second discharging conveyor belt 47 and the first discharging conveyor belt 46 and affecting the movement.

[0038] Example Five is given by Figure 2 、 Figure 7 and Figure 8 An outlet groove 52 matching the second discharging conveyor belt 47 is formed on the second partition plate 15. An adjustable baffle 53 inserted through the second partition plate 15 is arranged inside the outlet groove 52. The adjustable baffle 53 and the second partition plate 15 are connected in cooperation through a lifting drive assembly 54. The lifting drive assembly 54 is composed of a servo motor 55, a drive gear 56 and a rack 57. The servo motor 55 is fixedly connected to one side of the second partition plate 15. The drive gear 56 is connected to the output shaft of the servo motor 55. The rack 57 is fixedly connected to one side of the adjustable baffle 53 and meshes with the drive gear 56. A placement groove 58 matching the drive gear 56 is formed on one side of the second partition plate 15. A plurality of strip-shaped limiting through grooves 59 are formed inside the second partition plate 15. A plurality of limiting sliding strips 60 matching the strip-shaped limiting through grooves 59 are arranged on one side of the adjustable baffle 53;

[0039] During discharging, the discharge amount of ginseng freeze-dried powder on the first discharging conveyor belt 46 can be controlled by the adjustable baffle 53 to avoid the spillage caused by the large amount of discharged ginseng freeze-dried powder. During adjustment, drive the drive gear 56 to rotate through the servo motor 55, drive the rack 57 to move up and down through the drive gear 56, and drive the adjustable baffle 53 to move up and down through the rack 57. The adjustable baffle 53 can scrape the ginseng freeze-dried powder to avoid the spillage caused by the simultaneous discharge of a large amount of ginseng freeze-dried powder.

[0040] During work, by setting up a rotating feeding support mechanism composed of a U-shaped rotating support frame, an anti-collision buffer component, several upper limit support wheels, several movable lower support wheels, several lower driving wheels and a driver, the trays inside the freeze dryer can be automatically taken out, and the trays can be automatically flipped to achieve discharging, pouring the ginseng freeze-dried powder into the material temporary storage chamber for temporary storage and transmission; by setting up a material discharging mechanism composed of a second traction rope, a second traction wheel set, a first discharge conveyor belt and a second discharge conveyor belt, the ginseng freeze-dried powder inside the material temporary storage chamber can be evenly discharged from the transmission rack, realizing the feeding and receiving of the ginseng freeze-dried powder, facilitating the centralized collection and storage of the ginseng freeze-dried powder, and effectively improving work efficiency.

Claims

1. A transmission device for ginseng freeze-dried powder production equipment, comprising a transmission frame (1), characterized in that: One end of the bottom of the transmission rack (1) is provided with a driving wheel set (2), the other end of the bottom of the transmission rack (1) is provided with a steering wheel set (3), one end of the inside of the transmission rack (1) is provided with a controller (4), one end of the top of the transmission rack (1) is provided with a driver's seat (5), the driver's seat (5) is connected to the transmission rack (1) through a rotating seat (6), one side of the driver's seat (5) is fixedly provided with an operation panel (7), a feeding port (8) is opened at the top of the transmission rack (1) near one end of the driving wheel set (2), a rotating feeding support mechanism (10) matching the ginseng freeze-dried powder placement rack (9) is arranged inside the feeding port (8), the rotating feeding support mechanism (10) is connected through a number of hydraulic telescopic rods (11) located inside the transmission rack (1), one side of the rotating feeding support mechanism (10) is connected to the transmission rack (1) through a traction rope one (12) and a traction wheel set one (13), a first partition board (14) is arranged at one end of the inside of the transmission rack (1) near the hydraulic telescopic rod (11), a second partition board (15) is arranged at the other end of the inside of the transmission rack (1) away from the first partition board (14), a material temporary storage chamber (16) is formed between the second partition board (15) and the first partition board (14), a material discharging mechanism (17) penetrating through the second partition board (15) and the material temporary storage chamber (16) is arranged inside the transmission rack (1), and the controller (4) is electrically connected to the driving wheel set (2), the steering wheel set (3), the operation panel (7), the rotating feeding support mechanism (10), the hydraulic telescopic rod (11), the traction wheel set one (13) and the material discharging mechanism (17); The rotating feeding support mechanism (10) is composed of a U-shaped rotating support frame (18), an anti-collision buffer assembly (19), a number of upper limit support wheels (20), a number of movable lower support wheels (21), a number of lower driving wheels (22) and a driver (23). The anti-collision buffer assembly (19) is connected to one side inside the U-shaped rotating support frame (18). The upper limit support wheels (20), the movable lower support wheels (21) and the lower driving wheels (22) are all connected to both sides adjacent to the anti-collision buffer assembly (19) inside the U-shaped rotating support frame (18). The driver (23) is fixedly connected to both sides outside the U-shaped rotating support frame (18) and is matched with the lower driving wheels (22). A limit card slot (24) matching the ginseng freeze-dried powder placement rack (9) is formed between the upper limit support wheels (20) and the movable lower support wheels (21) and the lower driving wheels (22).

2. The transfer device for a ginseng freeze-dried powder production equipment according to claim 1, characterized in that: Limit baffles (25) are arranged on both sides outside the U-shaped rotating support frame (18). A strip-shaped installation groove one (26) matching the anti-collision buffer assembly (19) is opened on one side inside the U-shaped rotating support frame (18) near the anti-collision buffer assembly (19). Strip-shaped installation grooves two (27) matching the upper limit support wheels (20), the movable lower support wheels (21) and the lower driving wheels (22) are opened on both sides inside the U-shaped rotating support frame (18) near the upper limit support wheels (20), the movable lower support wheels (21) and the lower driving wheels (22).

3. The transfer device for a ginseng freeze-dried powder production device according to claim 2, characterized in that: The U-shaped rotating support frame (18) is connected to the hydraulic telescopic rod (11) through a movable rotating shaft (28). One end at the top of the U-shaped rotating support frame (18) is fixedly provided with a guide plate (29) that matches the material temporary storage chamber (16). A support bottom plate (30) is arranged at the middle position of the bottom end of the transmission rack (1). A storage battery (31) electrically connected to the controller (4) is arranged at the top end of the support bottom plate (30). Limiting and buffering components (32) that match the U-shaped rotating support frame (18) are arranged on both sides inside the transmission rack (1) near one end of the rotating feeding support mechanism (10).

4. The transfer device for ginseng freeze-dried powder production equipment according to claim 1, characterized in that: The anti-collision and buffering component (19) is composed of a buffer plate (33), a rubber gasket (34), a plurality of telescopic rods (35) and a plurality of buffer springs (36). The buffer plate (33) is fixedly connected to one end of the telescopic rod (35). The buffer spring (36) is located inside the telescopic rod (35). The rubber gasket (34) is fixedly connected to one side of the buffer plate (33).

5. The transfer device for the ginseng freeze-dried powder production equipment according to claim 3, characterized in that: The limiting and buffering component (32) is composed of a fixed mounting block (37), a limiting support rod (38), a limiting plate (39), a support spring (40), a mounting collar (41), a movable limiting wheel (42) and a movable support shaft (43). The limiting support rod (38) is inserted through the fixed mounting block (37). The limiting plate (39) is fixedly connected to one end of the limiting support rod (38). The support spring (40) is sleeved on the limiting support rod (38). The mounting collar (41) is fixedly connected to the other end of the limiting support rod (38). The movable limiting wheel (42) is connected to the inside of the mounting collar (41) through the movable support shaft (43).

6. The transfer device for the ginseng freeze-dried powder production equipment according to claim 1, characterized in that: The material discharging mechanism (17) is composed of a second towing rope (44), a second towing wheel set (45), a first discharging conveyor belt (46) and a second discharging conveyor belt (47). The second towing wheel set (45) is fixedly connected to one end of the transmission rack (1). The second towing rope (44) is connected between the second towing wheel set (45) and the second discharging conveyor belt (47). The first discharging conveyor belt (46) is located at the bottom end inside the material temporary storage chamber (16) and is connected to the second discharging conveyor belt (47) through a linkage component (48).

7. The transfer device for the ginseng freeze-dried powder production equipment according to claim 6, characterized in that: The linkage component (48) is composed of a fixed support arm (49) and a movable connecting arm (50). The fixed support arm (49) is connected between the second discharging conveyor belt (47) and the second partition plate (15). The movable connecting arm (50) is connected between the first discharging conveyor belt (46) and the second discharging conveyor belt (47). The second discharging conveyor belt (47) and the fixed support arm (49), and the movable connecting arm (50) and the first discharging conveyor belt (46) and the second discharging conveyor belt (47) are all connected through a movable shaft (51).

8. The transfer device for the ginseng freeze-dried powder production equipment according to claim 6, characterized in that: An discharge chute (52) matching the second discharge conveyor belt (47) is formed in the second partition plate (15). An adjustable baffle plate (53) inserted through the second partition plate (15) is arranged inside the discharge chute (52). The adjustable baffle plate (53) and the second partition plate (15) are connected through a lifting drive assembly (54) in a cooperative manner.

9. The transfer device for a ginseng freeze-dried powder production device according to claim 8, characterized in that: The lifting drive assembly (54) is composed of a servo motor (55), a drive gear (56) and a rack (57). The servo motor (55) is fixedly connected to one side of the second partition plate (15). The drive gear (56) is connected to the output shaft of the servo motor (55). The rack (57) is fixedly connected to one side of the adjustable baffle plate (53) and meshes with the drive gear (56). A placement groove (58) matching the drive gear (56) is formed in one side of the second partition plate (15). A plurality of strip-shaped limiting through grooves (59) are formed inside the second partition plate (15). A plurality of limiting sliding strips (60) matching the strip-shaped limiting through grooves (59) are arranged on one side of the adjustable baffle plate (53).

Citation Information

Patent Citations

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    CN107826017A

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