Automatic slicing and stacking machine for processing of platycodon grandiflorum
By designing an automatic stacking and slicing machine, the cooperation of conveyor belts and sweeping rods enables the automated stacking and slicing of bellflower stems, solving the problem of manual splitting and placement, and improving processing efficiency and slicing quality.
Patent Information
- Application Number
- CN202411624949.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2044-11-14
AI Technical Summary
Existing bellflower slicing machines require manual splitting and placement of bellflowers, resulting in a waste of manpower and resources and reduced processing efficiency.
An automatic stacking and slicing machine was designed. It utilizes an inclined first conveyor belt and staggered partitions, combined with a sweeping rod and a drive motor, to achieve automated stacking and orientation adjustment of bellflower stems. The coordinated action of the second conveyor belt and the pressing conveyor belt ensures that the bellflower stems do not shift in position during slicing.
The automated stacking of bellflower root slices significantly reduced manpower and material resources, improved work efficiency, and ensured the consistency and stability of the quality of the slices.
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Figure CN119567338B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of processing of platycodon grandiflorum, in particular to an automatic stacking and slicing machine for processing of platycodon grandiflorum. BACKGROUND
[0002] Platycodon grandiflorum is a traditional Chinese medicinal material and a common medicinal plant. It is cylindrical or slightly spindle-shaped, with a tapering lower part, some branches, slight twisting, white or light yellowish white surface, with longitudinal twisted ridges. Platycodon grandiflorum is a traditional Chinese medicine, and its effects and functions are very extensive, including clearing heat and reducing phlegm, moistening the lungs and relieving cough, calming the mind and stabilizing the spirit, benefiting the throat and reducing swelling, and antibacterial and anti-inflammatory. Specifically, platycodon grandiflorum can clear heat and reduce phlegm, and has a certain relieving effect on symptoms such as excessive phlegm, cough, sore throat, and asthma; it can also moisten the lungs and relieve cough, and can relieve symptoms such as dry cough, little saliva, and dry mouth; in addition, platycodon grandiflorum can calm the mind and has a certain relieving effect on nervous problems such as insomnia, palpitation, and irritability. In addition to medicinal value, platycodon grandiflorum also has some applications in life, such as making dishes such as cold platycodon grandiflorum and pickled platycodon grandiflorum. When used as medicine, platycodon grandiflorum generally needs to be transversely sliced.
[0003] However, the current platycodon grandiflorum slicing machine needs to be manually separated before use, and then the platycodon grandiflorum is placed on the conveyor belt so that the slicing knife can slice transversely. This process wastes a lot of manpower and resources and slows down the efficiency of platycodon grandiflorum processing. SUMMARY
[0004] To solve the problem of manual stacking of platycodon grandiflorum slicing machine in the background art, the purpose of the present application is to provide an automatic stacking and slicing machine for processing of platycodon grandiflorum.
[0005] To achieve the above-mentioned purpose, the present application provides the following technical scheme: an automatic stacking and slicing machine for processing of platycodon grandiflorum, comprising a frame, a first conveyor belt and a second conveyor belt are cooperatively installed in the frame, the first conveyor belt is inclined by 10-80 degrees, the second conveyor belt is horizontally arranged, the second conveyor belt is located below the first conveyor belt, and a second flow guide plate is cooperatively installed between the second conveyor belt and the first conveyor belt.
[0006] Two groups of first partitions are cooperatively installed in the frame, and the two groups of first partitions are staggered, so that the spacing between adjacent two first partitions forms two kinds of width specifications, and the first partitions are located above the first conveyor belt.
[0007] The frame is also matched with two first rotating shafts, each of which is matched with a plurality of sweeping rods, the sweeping rods are circular arc rods, the sweeping rods are divided into a plurality of groups in a circular array, each group of the sweeping rods is in a spiral curve array, each of the sweeping rods is matched with a corresponding first partition plate, one end of the frame is matched with a distribution box, the distribution box is matched with a driving motor, and the driving motor is drivingly connected with the two first rotating shafts.
[0008] Preferably, the upper side of the frame is matched with a feeding hopper, and one side of the frame is matched with a warehouse door, which is communicated with the outside and the lower side of the first conveying belt.
[0009] Preferably, the frame is matched with a first flow guide plate, which is located between the feeding hopper and the first conveying belt, the first flow guide plate is arranged in an inclined manner, the upper surface of the second flow guide plate is in a circular arc shape, and the circular arc plate of the second flow guide plate is arranged to be tangent to the first conveying belt and the second conveying belt.
[0010] Preferably, the frame is matched with a plurality of protective shells, the protective shells are matched with a plurality of glass observation windows, and each of the protective shells is arranged to correspond to a corresponding first rotating shaft.
[0011] Preferably, one side of the first partition plate is matched with a vibration motor, and the other side of the first partition plate is matched with a material groove.
[0012] Preferably, the frame is fixedly matched with a first fixed plate, the lower side of the first fixed plate is matched with two groups of second partition plates, the two groups of second partition plates are arranged in a staggered manner, and the second partition plates are arranged to correspond to the first partition plates one by one.
[0013] Preferably, the frame is matched with two second rotating shafts arranged in parallel, the second rotating shafts penetrate through the first partition plates, one side of the frame is matched with a servo motor, the servo motor is drivingly connected with the second rotating shafts, and the second rotating shafts are matched with a plurality of pressing rollers, and the pressing rollers are arranged to correspond to the first partition plates one by one.
[0014] Preferably, the frame is fixedly matched with a support plate, and the support plate is located on the second conveying belt.
[0015] Preferably, the frame is fixedly matched with a second fixed plate, and the second fixed plate is matched with a mounting rack.
[0016] The frame is matched with a pressing conveying belt, the pressing conveying belt is located below the mounting frame, the surface of the pressing conveying belt is provided with a "V" shaped rubber pattern, the pressing conveying belt is arranged in an obtuse triangle, the lower surface of the pressing conveying belt is arranged in parallel with the upper surface of the second conveying belt, and the one end of the pressing conveying belt is arranged in a horn shape with the second conveying belt.
[0017] Preferably, two symmetrical hydraulic cylinders are matched and arranged on the frame, the piston rods of the hydraulic cylinders are vertically upward, a cutting knife is fixedly arranged between the piston rods of the two hydraulic cylinders, the cutting knife is arranged opposite to the second conveying belt, an opening is arranged on the mounting frame, the cutting knife is arranged in correspondence with the opening, a cleaning brush is fixedly arranged on the lower side of the mounting frame, the cleaning brush is arranged opposite to the pressing conveying belt, and the cleaning brush is arranged in an inclined manner.
[0018] Compared with the prior art, the application has the following beneficial effects:
[0019] 1、In actual application, the bagged jujube is easily poured into the feeding hopper, and then falls on the first partition plate, and gradually slides to the lower end of the partition plate under the slight vibration of the partition plate, in the process, the neatly arranged jujubes naturally fall into the first conveying belt, and the jujubes arranged irregularly are adjusted in direction under the vibration of the partition plate, when the jujubes move below the sweeping rod, the sweeping rod starts to rotate, which not only can scatter the jujubes, but also can adjust the arrangement direction of the jujubes, so that more jujubes can accurately fall on the first conveying belt.
[0020] 2、The sweeping rod in the application adopts a layout mode of multiple circumferential arrays, each group of sweeping rods is spirally arranged on the first rotating shaft, which ensures that only one sweeping rod is in contact with the corresponding first partition plate at the same time, which helps to more accurately complete the scattering and direction adjustment of the jujubes, and the sweeping rod sequentially scatters and adjusts the direction of the jujubes from one end of the shaft to the other end, thereby greatly improving the effect and efficiency of automatic stacking.
[0021] 3、The application ingeniously uses the synergistic effect of the second conveying belt and the pressing conveying belt to accurately lock the jujube slices during the jujube slicing process, which effectively prevents the jujube slices from shifting during slicing, thereby avoiding irregular slicing. Through the optimization of the application, the consistency of jujube slicing is significantly improved, ensuring the stability and reliability of the slicing quality. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 It is a basic structure schematic diagram of the automatic stacking and slicing machine for jujube processing.
[0023] Figure 2 It is a basic structure schematic diagram of the automatic stacking and slicing machine for jujube processing after installing the protective shell.
[0024] Figure 3 It is a front view of the automatic stacking and slicing machine for jujube processing. Figure 2
[0025] Figure 4 It is a top view of the automatic stacking and slicing machine for jujube processing. Figure 2
[0026] Figure 5 It is a half-sectional view of the automatic stacking and slicing machine for jujube processing. Figure 1
[0027] Figure 6 It is a front view of the automatic stacking and slicing machine for jujube processing. Figure 5
[0028] Figure 7 It is an enlarged view of part A of the automatic stacking and slicing machine for jujube processing. Figure 6
[0029] Figure 8 It is a jujube processing diagram during the use of the automatic stacking and slicing machine for jujube processing.
[0030] Figure 9 It is a jujube position diagram during the use of the automatic stacking and slicing machine for jujube processing.
[0031] In the diagram: 101, Frame; 102, Door; 103, Distribution Box; 104, Feed Hopper; 105, First Guide Plate; 106, Vibrating Motor; 107, Material Trough; 108, First Fixing Plate; 109, First Conveyor Belt; 110, Second Conveyor Belt; 201, First Rotating Shaft; 202, Sweeping Rod; 203, Protective Shell; 204, Drive Motor; 301, First Baffle; 302, Second Baffle; 303, Second Guide Plate; 401, Second Rotating Shaft; 402, Pressure Roller; 403, Servo Motor; 501, Second Fixing Plate; 502, Mounting Frame; 503, Hydraulic Cylinder; 504, Pressure Conveyor Belt; 505, Cutting Blade; 506, Support Plate; 507, Cleaning Brush. Detailed Implementation
[0032] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0033] like Figures 1-9 As shown, when using this application, the bagged bellflower root can be directly poured into the feed hopper 104. The bellflower root falls onto the first partition 301. Under the vibration of the first partition 301 (driven by the vibration motor 106), the bellflower root slowly vibrates downwards along the first partition 301. During this process, the bellflower root facing the correct direction will fall into the gap formed by the first partition 301 and be transported to the second conveyor belt 110 by the first conveyor belt 109. When the bellflower root facing the wrong direction reaches the position of the sweeping rod 202, the drive motor 204 drives the first rotating shaft 201 to rotate, causing the sweeping rod 202 to rotate, thereby causing the bellflower root to pass through the first... When the rotating shaft 201 is below, it will be hit by the sweeping rod 202, causing it to move upwards towards the first partition 301 and change its orientation. This will cause the bellflower to be in the correct direction and fall onto the first conveyor belt 109. When the bellflower falls onto the second conveyor belt 110 via the first conveyor belt 109, it will move towards the cutting blade 505 under the drive of the second conveyor belt 110. When it passes the pressing conveyor belt 504, the bellflower will be clamped between the second conveyor belt 110 and the pressing conveyor belt 504 and sent below the cutting blade 505. The cutting blade 505 is controlled to move up and down by the hydraulic cylinder 503, thereby realizing the cutting operation of the bellflower.
[0034] The automatic stacking and slicing machine for processing Platycodon grandiflorus provided in this embodiment includes a frame 101, which is generally in the shape of a right trapezoid. A first conveyor belt 109 and a second conveyor belt 110 are installed inside the frame 101. The surface of the first conveyor belt 109 is covered with anti-slip textures, which are herringbone patterns. The anti-slip textures can prevent Platycodon grandiflorus from sliding on the first conveyor belt 109 and causing blockage. The first conveyor belt 109 is inclined at 10-80 degrees. In this embodiment, the two ends of the first conveyor belt 109 are set at 35 degrees. The first conveyor belt 109 is inclined in a curve by multiple rotating rollers. The second conveyor belt 110 is set horizontally and is located below the first conveyor belt 109. A second guide plate 303 is installed between the second conveyor belt 110 and the first conveyor belt 109. The second conveyor belt 110 is equipped with a high-strength nylon polyester conveyor belt.
[0035] Two sets of first partitions 301 are installed inside the frame 101. The two sets of first partitions 301 are staggered, so that the gap between two adjacent first partitions 301 has two width specifications. The first partitions 301 are located above the first conveyor belt 109, and the first partitions 301 are set at a certain distance from the first conveyor belt 109 so that the first partitions 301 will not come into contact with the running first conveyor belt 109. A connecting plate is installed at the upper end of the first partition 301. The connecting plate is installed on the frame 101 through a buffer pad. A vibration motor 106 is installed on the connecting plate to provide vibration to the first partition 301. The lower end of the first partition 301 is installed on the frame 101 in an upward manner. A material trough 107 is installed at the lower end of the first partition 301. Some unscreened stalks fall into the material trough 107 and are recycled through the material trough 107.
[0036] Two first rotating shafts 201 are also installed on the frame 101. Each first rotating shaft 201 is equipped with several sweeping rods 202. The sweeping rods 202 are arc rods and are divided into several groups of circumferential arrays. Each group of sweeping rods 202 is arranged in a spiral curve array. Each sweeping rod 202 is matched with a corresponding first partition 301. A power distribution box 103 is installed at one end of the frame 101. A drive motor 204 is installed on the power distribution box 103. The drive motor 204 drives the two first rotating shafts 201.
[0037] The upper side of the frame 101 is fitted with a feeding hopper 104, and one side of the frame 101 is fitted with a warehouse door 102, which is communicated with the outside and below the first conveying belt 109, and the warehouse door 102 is used for maintenance of the machine. A hydraulic station is installed below the first conveying belt 109 to provide hydraulic and pneumatic power. The hydraulic station is a conventional prior art and is not shown in the figure. The frame 101 is fitted with a first guide plate 105, which is used to prevent the chrysanthemum stems from falling between the upper end of the first conveying belt 109 and the frame 101.
[0038] The first guide plate 105 is located between the feeding hopper 104 and the first conveying belt 109, and is inclinedly arranged. The upper surface of the second guide plate 303 is arc-shaped, and the arc plate of the second guide plate 303 is tangentially arranged with the first conveying belt 109 and the second conveying belt 110. The second guide plate 303 is used to prevent the chrysanthemum stems from being stuck when falling from the first conveying belt 109 to the second conveying belt 110.
[0039] A plurality of protective shells 203 are fitted on the frame 101, and a plurality of glass observation windows are installed on the protective shells 203. The inside of the protective shell 203 can be observed through the glass observation window. Each protective shell 203 is correspondingly arranged with a corresponding first rotating shaft 201.
[0040] A first fixed plate 108 is fixedly installed on the frame 101, and two groups of second partition plates 302 are fitted on the lower side of the first fixed plate 108. The two groups of second partition plates 302 are staggered. The second partition plates 302 are arranged one by one opposite to the first partition plates 301. After installation, the first partition plates 301 and the second partition plates 302 are fixedly connected at the joint. In this embodiment, the second partition plates 302 are arranged 0.5 mm apart from the second conveying belt 110, so that the second conveying belt 110 does not collide with the second partition plates 302 when rotating.
[0041] Two parallel second rotating shafts 401 are fitted on the frame 101, and the second rotating shafts 401 penetrate through the first partition plates 301. A servo motor 403 is fitted on one side of the frame 101, and the servo motor 403 is drivingly connected with the second rotating shafts 401. A plurality of pressing rollers 402 are fitted on the second rotating shafts 401, and the pressing rollers 402 are arranged one by one opposite to the first partition plates 301. The pressing rollers 402 are made of soft silica gel, and a plurality of grooves are formed on the pressing rollers 402 to increase the friction. The pressing rollers 402 are used to limit the chrysanthemum stems and make the chrysanthemum stems fully fall on the first conveying belt 109, so as to prevent the chrysanthemum stems from being stuck between the first conveying belt 109 and the second conveying belt 110, and increase the time between two maintenances.
[0042] A support plate 506 is fixedly installed inside the frame 101. The support plate 506 is located on the second conveyor belt 110. The support plate 506 is correspondingly set with the cutting blade 505 to provide support for the second conveyor belt 110 and prevent incomplete cutting. A second fixing plate 501 is fixedly installed on the frame 101, and a mounting bracket 502 is installed on the second fixing plate 501.
[0043] A pressing conveyor belt 504 is installed inside the frame 101. The pressing conveyor belt 504 is located below the mounting frame 502. The surface of the pressing conveyor belt 504 has a herringbone-shaped rubber texture. The pressing conveyor belt 504 is set in an obtuse triangle shape. The lower surface of the pressing conveyor belt 504 is parallel to the upper surface of the second conveyor belt 110. One end of the pressing conveyor belt 504 is open between the second conveyor belt 110 and the pressing conveyor belt 504, so that the bellflower can enter the space between the second conveyor belt 110 and the pressing conveyor belt 504 more smoothly. It can also prevent the bellflower from moving during cutting, thereby improving the slicing effect of the bellflower.
[0044] Two symmetrically mounted hydraulic cylinders 503 are installed on the frame 101. The piston rods of the hydraulic cylinders 503 are vertically upward. A cutting blade 505 is fixedly installed between the piston rods of the two hydraulic cylinders 503. The cutting blade 505 is positioned opposite to the second conveyor belt 110. An opening is provided on the mounting frame 502. The cutting blade 505 is positioned to cooperate with the opening. A cleaning brush 507 is fixedly installed on the lower side of the mounting frame 502. The cleaning brush 507 is positioned opposite to the pressing conveyor belt 504. The cleaning brush 507 is installed at an angle. The cleaning brush 507 can clean the residue that adheres to the pressing conveyor belt 504 during production.
[0045] It should be noted that in practical application, the present invention simply requires pouring the bagged bellflower stems into the feed hopper 104. The bellflower stems then fall onto the first partition 301. With slight vibration of the partition, they gradually slide towards the lower end of the partition. During this process, neatly arranged bellflower stems naturally fall onto the first conveyor belt 109, while misaligned bellflower stems will adjust their orientation under the vibration of the partition. When the bellflower stems move to below the sweeping rod 202, the sweeping rod 202 begins to rotate. Each set of sweeping rods 202 is spirally mounted on the first rotating shaft 201, cleverly ensuring that only one sweeping rod 202 contacts the corresponding first partition 301 at any given time. This design helps to more accurately complete the dispersing and orientation adjustment of each bellflower stem. As the first rotating shaft 201 rotates, the sweeping rods 202 sequentially disperse and adjust the orientation of the bellflower stems from one end of the shaft to the other, thereby greatly improving the effect and efficiency of automatic stacking. In this embodiment, as shown... Figure 9As shown, the luffa in the wrong position is placed horizontally on the first partition 301, at this time the first rotating shaft 201 rotates, only one sweeping rod 202 will first collide with one end of the luffa in a unified time, causing the luffa to rotate a certain degree, if it rotates 10 degrees at this time, it is not enough to fall between the two first partitions 301, at this time the adjacent sweeping rod 202 will collide with the luffa again, causing the luffa to rotate a certain degree again, and further causing the luffa to change to a luffa in the correct position falling on the first conveyor belt 109.
[0046] It is worth mentioning that the two groups of first partitions 301 are staggered, forming two different spacings, this design not only adapts to luffas of different sizes, but also significantly enhances the versatility and flexibility of the application, whether it is large or small luffa, it can be properly handled in the application, thus meeting the needs of various practical applications. During the slicing of the luffa, the second conveyor belt 110 and the pressing conveyor belt 504 are used in coordination to precisely lock the luffa, which effectively prevents the luffa from shifting during slicing, thereby avoiding irregular slicing. Through the optimization of the application, the consistency of luffa slicing is significantly improved, ensuring the stability and reliability of the slicing quality.
[0047] It needs to be further explained that in this paper, relationship terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between the entities or operations. Moreover, the term "includes", "contains" or any other variant thereof is intended to cover non-exclusive inclusion, so that the process, method, article or equipment including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or equipment.
[0048] Although embodiments of the application have been shown and described, it is to be understood that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the application, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An automatic loading and slicing machine for processing of the root of the balloon vine, characterized in that: Including frame (101), first conveyor belt (109) and second conveyor belt (110) are installed in the frame (101), the first conveyor belt (109) is arranged at 10-80 degrees, the second conveyor belt (110) is horizontally arranged, the second conveyor belt (110) is below the first conveyor belt (109), and the second guide plate (303) is installed between the second conveyor belt (110) and the first conveyor belt (109); Two groups of first partitions (301) are installed in the frame (101), the two groups of first partitions (301) are staggered, so that the interval between adjacent two first partitions (301) forms two width specifications, and the first partition (301) is above the first conveyor belt (109); Two first rotating shafts (201) are also installed on the frame (101), a plurality of sweeping rods (202) are installed on each first rotating shaft (201), the sweeping rod (202) is a circular arc rod, the sweeping rod (202) is divided into a plurality of groups in a circumferential array, each group of sweeping rods (202) is arranged in a spiral curve array, each sweeping rod (202) is arranged in cooperation with the corresponding first partition (301), one end of the frame (101) is provided with a distribution box (103), a driving motor (204) is installed on the distribution box (103), and the driving motor (204) is drivingly connected with the two first rotating shafts (201).
2. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 1, characterized in that: The upper side of the frame (101) is provided with a feeding hopper (104), one side of the frame (101) is provided with a warehouse door (102), and the warehouse door (102) is communicated with the outside and the lower side of the first conveyor belt (109).
3. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 1, characterized in that: A first guide plate (105) is installed in the frame (101), the first guide plate (105) is located between the feeding hopper (104) and the first conveyor belt (109), the first guide plate (105) is arranged at an inclination, and the upper surface of the second guide plate (303) is in the shape of a circular arc, and the circular arc plate of the second guide plate (303) is tangent to the first conveyor belt (109) and the second conveyor belt (110).
4. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 1, characterized in that: A plurality of protective shells (203) are installed on the frame (101), a plurality of glass observation windows are installed on the protective shell (203), and each protective shell (203) is correspondingly arranged with the corresponding first rotating shaft (201).
5. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 1, characterized in that: A vibrating motor (106) is installed on one side of the first partition (301), and a material groove (107) is installed on the other side of the first partition (301).
6. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 1, characterized in that: A first fixed plate (108) is fixedly installed on the frame (101), two groups of second partitions (302) are installed on the lower side of the first fixed plate (108), the two groups of second partitions (302) are staggered, and the second partition (302) is arranged opposite to the first partition (301).
7. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 1, characterized in that: Two parallel second rotating shafts (401) are installed on the frame (101). The second rotating shafts (401) pass through the first partition (301). A servo motor (403) is installed on one side of the frame (101). The servo motor (403) drives the second rotating shafts (401). Several pressure rollers (402) are installed on the second rotating shafts (401). The pressure rollers (402) are arranged in a one-to-one correspondence with the first partition (301).
8. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 1, characterized in that: A support plate (506) is fixedly installed inside the frame (101), and the support plate (506) is located on the second conveyor belt (110).
9. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 1, characterized in that: A second fixing plate (501) is fixedly installed on the frame (101), and a mounting bracket (502) is installed on the second fixing plate (501); A pressing conveyor belt (504) is installed inside the frame (101). The pressing conveyor belt (504) is located below the mounting frame (502). The surface of the pressing conveyor belt (504) is provided with a herringbone pattern. The pressing conveyor belt (504) is arranged in an obtuse triangle shape. The lower surface of the pressing conveyor belt (504) is parallel to the upper surface of the second conveyor belt (110). One end of the pressing conveyor belt (504) is arranged in a funnel shape with the second conveyor belt (110).
10. The automatic stacking and slicing machine for processing of Jerusalem artichoke according to claim 9, characterized in that: Two symmetrically mounted hydraulic cylinders (503) are fitted on the frame (101). The piston rods of the hydraulic cylinders (503) are vertically upward. A cutting blade (505) is fixedly installed between the piston rods of the two hydraulic cylinders (503). The cutting blade (505) is positioned opposite to the second conveyor belt (110). An opening is provided on the mounting frame (502). The cutting blade (505) is fitted with the opening. A cleaning brush (507) is fixedly installed on the lower side of the mounting frame (502). The cleaning brush (507) is positioned opposite to the pressing conveyor belt (504). The cleaning brush (507) is installed at an angle.
Citation Information
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