Cleaning, drying and slicing device for trichosanthes kirilowii maxim roots

By designing a Trichosanthes root cleaning, drying and slicing device, an automated production line is used to clean, dry and slice Trichosanthes roots, solving the problem of excessive manual intervention in existing technologies and improving the processing efficiency and automation level of Trichosanthes roots.

CN224144759UActive Publication Date: 2026-04-21LUOYANG YIREN TRICHOSANTHES TECHNOLOGY CO LTD +1
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
LUOYANG YIREN TRICHOSANTHES TECHNOLOGY CO LTD
Filing Date
2025-04-02
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

In existing technologies, the processing of Trichosanthes kirilowii root involves a lot of manual labor, resulting in low processing efficiency.

Method used

A device for cleaning, drying, and slicing Trichosanthes kirilowii roots is designed, comprising a cabinet, a drive mechanism, a receiving frame, and a slicing mechanism. The device achieves the cleaning, drying, and slicing process of Trichosanthes kirilowii roots through an automated production line. The drive mechanism moves and rotates the receiving frame between different chambers to complete the cleaning, drying, and slicing of Trichosanthes kirilowii roots.

Benefits of technology

The fully automated processing of Trichosanthes kirilowii root has been achieved, which has improved processing efficiency, reduced manual intervention, ensured the cleaning and drying effect, and ensured the stability and efficiency of slicing.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224144759U_ABST
    Figure CN224144759U_ABST
Patent Text Reader

Abstract

The utility model provides a trichosanthes kirilowii maxim root cleaning, drying and slicing device, and belongs to the technical field of plant rhizome processing equipment. The device is characterized in that a cleaning chamber, a drying chamber and a slicing chamber which are sequentially communicated are arranged in a cabinet, liquid is injected into the cleaning chamber, and the liquid level of the liquid is lower than the bottom wall of the drying chamber; the driving mechanism is installed in the machine cabinet and can move between the cleaning cavity and the drying cavity in a reciprocating mode. The containing frame is of a hollow structure with an opening in the upper end and can contain snakegourd fruit roots, the containing frame is hinged to the driving mechanism, and when the containing frame is located in the cleaning cavity, the driving mechanism can drive the containing frame to move into or out of the liquid level; the slicing mechanism is installed in the slicing cavity, when the containing frame is located at the communicating position of the drying cavity and the slicing cavity, the driving mechanism can drive the containing frame to rotate so that the containing frame can move into the slicing cavity, and the containing frame can drive the trichosanthes kirilowii maxim roots to move towards the slicing mechanism so that the slicing mechanism can cut the trichosanthes kirilowii maxim roots. The processing efficiency of trichosanthes kirilowii maxim roots can be improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model belongs to the technical field of plant root and stem processing equipment, specifically relating to a device for cleaning, drying and slicing Trichosanthes kirilowii roots. Background Technology

[0002] As a part of the Trichosanthes kirilowii fruit, the root has rich medicinal value, with functions such as relieving exterior syndromes and reducing fever, promoting body fluid production and quenching thirst, and stopping diarrhea. In order to facilitate the use of Trichosanthes kirilowii root in medicine, it usually needs to be processed, including washing, drying, and slicing, before proceeding with the subsequent medicinal processes.

[0003] Currently, in the processing of Trichosanthes kirilowii root, traditional manual operations are time-consuming. As can be seen from the Chinese utility model patent application number "201920054813.7", although some equipment for processing Trichosanthes kirilowii root can reduce the manual involvement to a certain extent, some processes still require manual operation, which has an adverse effect on the processing efficiency of Trichosanthes kirilowii root. Utility Model Content

[0004] The technical problem to be solved by this utility model is how to improve the processing efficiency of Trichosanthes kirilowii root. In view of the shortcomings of the existing technology, a device for washing, drying and slicing Trichosanthes kirilowii root is provided.

[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:

[0006] This utility model provides a device for washing, drying, and slicing Trichosanthes kirilowii roots, comprising:

[0007] The cabinet contains a cleaning chamber, a drying chamber, and a slicing chamber connected in sequence. The cleaning chamber is filled with liquid, and the liquid level is lower than the bottom wall height of the drying chamber.

[0008] A drive mechanism is installed inside the cabinet and is used to reciprocate between the cleaning chamber and the drying chamber;

[0009] The container frame is a hollow structure with an opening at the top and is used to hold the Trichosanthes kirilowii root. The container frame is hinged to the driving mechanism. When the container frame is located in the cleaning chamber, the driving mechanism is used to drive the container frame to move into or out of the liquid surface.

[0010] A slicing mechanism is installed in the slicing chamber. When the receiving frame is located at the connection between the drying chamber and the slicing chamber, the driving mechanism drives the receiving frame to rotate so that the receiving frame moves into the slicing chamber. The receiving frame drives the Trichosanthes root to move toward the slicing mechanism so that the slicing mechanism can cut the Trichosanthes root.

[0011] Compared to existing technologies, the advantages of this utility model include: The Trichosanthes kirilowii root washing, drying, and slicing device comprises a cabinet, a drive mechanism, a receiving frame, and a slicing mechanism. The hollow cabinet serves as the housing structure for the entire device, ensuring its stability during transportation and use. Inside the cabinet, a washing chamber, a drying chamber, and a slicing chamber are sequentially connected. The washing chamber is filled with liquid, and the drive mechanism, installed within the cabinet, is driven by the receiving frame that holds the Trichosanthes kirilowii roots. The drive mechanism moves the receiving frame into the liquid, thus washing the roots through the liquid flow. Simultaneously, the drive mechanism can reciprocate between the washing and drying chambers, and can also move the receiving frame out of the liquid. After the Trichosanthes kirilowii root is cleaned with liquid, the receiving frame is driven into the drying chamber by a drive mechanism. The bottom wall of the drying chamber is higher than the liquid level, thus drying the Trichosanthes kirilowii root in the drying chamber while preventing the liquid in the cleaning chamber from affecting the drying chamber, ensuring the drying effect. Furthermore, a slicing mechanism is installed in the slicing chamber. When the receiving frame moves between the drying chamber and the slicing chamber, the drive mechanism rotates the receiving frame so that its opening faces the slicing mechanism. At this point, the receiving frame can drive the Trichosanthes kirilowii root towards the slicing mechanism, which then slices the root. This slicing process can be automated, requiring no manual intervention and effectively improving the efficiency of Trichosanthes kirilowii root processing.

[0012] Optionally, the cabinet is provided with a first sealing plate, a second sealing plate, and a third sealing plate inside. The first sealing plate and the second sealing plate are both vertically arranged and spaced apart in the horizontal direction. The first sealing plate is installed on the upper part of the cabinet. The first sealing plate and the third sealing plate are both located above the liquid surface. The third sealing plate extends in the horizontal direction and is connected to the bottom of the first sealing plate and the middle of the second sealing plate, respectively, so as to form the cleaning chamber and the drying chamber inside the cabinet with the first sealing plate and the second sealing plate, respectively. The side wall of the second sealing plate is connected to the inner side wall of the cabinet and is spaced apart from the inner side wall of the cabinet opposite to the first sealing plate, so as to form the slicing chamber.

[0013] Optionally, the driving mechanism includes a slide rail, a slider, and a first telescopic driving member. The slide rail extends horizontally and is installed on the inner bottom wall of the cabinet. The slider is slidably installed on the slide rail and is drivenly connected to the first telescopic driving member. The first telescopic driving member is used to drive the slider to reciprocate along the slide rail. The receiving frame is hinged to the slider.

[0014] Optionally, the driving mechanism further includes a second telescopic driving member, which is mounted on the slider and hinged to the receiving frame. The second telescopic driving member is used to drive the receiving frame to reciprocate in the vertical direction.

[0015] Optionally, the driving mechanism further includes a first rotary drive and a rotary shaft. The receiving frame is hinged to the second telescopic drive via the rotary shaft. The extension direction of the rotary shaft is perpendicular to the extension direction of the slide rail and is drivenly connected to the first rotary drive. The first rotary drive is used to drive the rotary shaft to rotate so that the opening direction of the receiving frame can be switched between vertically upward or horizontally towards the slicing mechanism.

[0016] Optionally, the receiving frame is a cylindrical structure, and the axis of the cylindrical structure is vertical. The driving mechanism further includes a second rotary driving member, which is mounted on the slider and drivenly connected to the second telescopic driving member. The second rotary driving member is used to drive the second telescopic driving member to rotate around the vertical direction, so as to drive the receiving frame to rotate.

[0017] Optionally, the receiving frame is provided with a pushing structure, which is used to be placed at the bottom of the receiving frame. When the opening of the receiving frame faces the slicing mechanism, the pushing structure is used to move along the opening direction of the receiving frame.

[0018] Optionally, the pushing structure includes a sliding column, a pushing plate, and a lifting drive component. The sliding column is installed at the center of the bottom wall of the receiving frame along the vertical direction. The pushing plate is fitted on the sliding column, and the side wall of the pushing plate is in contact with the inner side wall of the receiving frame. The lifting drive component is located below the pushing plate and is drivenly connected to the pushing plate to drive the pushing plate to move up and down along the vertical direction.

[0019] Optionally, the slicing mechanism includes a third rotary drive and a rotary blade. The third rotary drive is mounted on the inner wall of the slicing chamber and is drivenly connected to the rotary blade. The third rotary drive is used to drive the rotary blade to rotate, and the rotation trajectory of the rotary blade intersects with the trajectory of the receiving frame driving the Trichosanthes kirilowii root to move.

[0020] Optionally, the slicing mechanism further includes a limiting cylinder and a support. The support is installed on the inner bottom wall of the slicing chamber, and the limiting cylinder is installed on the support with its opening facing the receiving frame. The end face of the limiting cylinder facing away from the opening end is provided with a discharge port. When the receiving frame moves into the slicing chamber, the receiving frame moves into the limiting cylinder and drives the Trichosanthes kirilowii root to move out through the discharge port. Attached Figure Description

[0021] The present invention will now be described in further detail with reference to the accompanying drawings.

[0022] Figure 1 : A schematic diagram of the structure of the Trichosanthes kirilowii root washing, drying and slicing device in this embodiment of the present invention;

[0023] Figure 2 : Figure 1 The cross-sectional structural diagram shown from view A;

[0024] Figure 3 : A schematic diagram of the internal structure of the Trichosanthes kirilowii root washing, drying and slicing device in an embodiment of this utility model;

[0025] Figure 4 : A schematic diagram of the internal structure of the Trichosanthes kirilowii root washing, drying and slicing device from another perspective in this embodiment of the present invention.

[0026] Among them, 1-cabinet, 11-cleaning chamber, 12-drying chamber, 13-slicing chamber, 14-first sealing plate, 15-second sealing plate, 16-third sealing plate, 17-feed inlet, 18-loading box, 2-drive mechanism, 21-slide rail, 22-slider, 23-second telescopic drive, 24-rotating shaft, 25-second rotating drive, 3-accommodating frame, 31-pushing structure, 311-sliding column, 312-pushing plate, 313-lifting drive, 4-slicing mechanism, 41-third rotating drive, 42-rotating blade, 43-limiting cylinder, 431-discharge port, 44-support. Detailed Implementation

[0027] To better understand this utility model, the following embodiments further illustrate its content, but the scope of protection of this utility model is not limited to the embodiments described below. Numerous specific details are set forth in the following description to provide a more thorough understanding of this utility model. However, it will be apparent to those skilled in the art that this utility model can be practiced without one or more of these details.

[0028] It should be noted that the Z-axis in the attached figures represents the vertical direction, i.e., the up-down position, with the positive direction of the Z-axis representing upward and the negative direction representing downward; the Y-axis in the attached figures represents the horizontal direction and is designated as the front-back position, with the positive direction of the Y-axis representing the front and the negative direction representing the back; the X-axis in the attached figures represents the left-right position, with the positive direction of the X-axis representing the right and the negative direction representing the left. It should also be noted that the aforementioned representations of the Z, Y, and X axes are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0029] The term "comprising" and its variations as used herein are open-ended, meaning "including but not limited to"; the term "based on" means "at least partially based on"; the term "one embodiment" means "at least one embodiment"; the term "another embodiment" means "at least one additional embodiment"; the term "some embodiments" means "at least some embodiments"; and the term "optionally" means "optional embodiments". Definitions of other terms will be given in the following description. It should be noted that the concepts of "first," "second," etc., mentioned in this utility model are only used to distinguish different devices, modules, or units, and are not used to limit the order of functions performed by these devices, modules, or units or their interdependencies.

[0030] It should be noted that the terms "one" and "multiple" used in this utility model are illustrative rather than restrictive. Those skilled in the art should understand that, unless otherwise expressly indicated in the context, they should be understood as "one or more".

[0031] This utility model provides a device for washing, drying, and slicing Trichosanthes kirilowii roots, comprising: a cabinet 1, wherein a washing chamber 11, a drying chamber 12, and a slicing chamber 13 are sequentially connected within the cabinet 1; liquid is injected into the washing chamber 11, and the liquid level is lower than the bottom wall height of the drying chamber 12; a drive mechanism 2, which is installed inside the cabinet 1 and is used to reciprocate between the washing chamber 11 and the drying chamber 12; and a receiving frame 3, which is a hollow structure with an open top and is used to receive Trichosanthes kirilowii roots. The trichosanthes root is contained in a receiving frame 3, which is hinged to the driving mechanism 2. When the receiving frame 3 is located in the cleaning chamber 11, the driving mechanism 2 is used to drive the receiving frame 3 to move into or out of the liquid surface. The slicing mechanism 4 is installed in the slicing chamber 13. When the receiving frame 3 is located at the connection between the drying chamber 12 and the slicing chamber 13, the driving mechanism 2 is used to drive the receiving frame 3 to rotate so that the receiving frame 3 moves into the slicing chamber 13. The receiving frame 3 is used to drive the trichosanthes root to move toward the slicing mechanism 4 so that the slicing mechanism 4 can cut the trichosanthes root.

[0032] Specifically, the drying chamber 12 is equipped with a drying structure, which can be a heating wire or a heating rod, etc.; the slicing mechanism 4 can be a cutting blade that moves up and down, or a slicing blade that rotates to cut.

[0033] In this embodiment, as Figure 1 and Figure 2As shown, a Trichosanthes kirilowii root washing, drying, and slicing device is composed of a cabinet 1, a drive mechanism 2, a receiving frame 3, and a slicing mechanism 4. The hollow cabinet 1 serves as the housing structure for the entire device, ensuring its stability during transportation and use. Inside the cabinet 1, a washing chamber 11, a drying chamber 12, and a slicing chamber 13 are sequentially connected. The washing chamber 11 is filled with liquid. The drive mechanism 2 is installed inside the cabinet 1 and is driven by the receiving frame 3, which holds the Trichosanthes kirilowii roots. The drive mechanism 2 can move the receiving frame 3 into the liquid surface, thus washing the roots within the frame through the liquid flow. Simultaneously, the drive mechanism 2 can reciprocate between the washing chamber 11 and the drying chamber 12, and can also move the receiving frame 3 out of the liquid surface. This process, through the liquid flow... After cleaning the Trichosanthes kirilowii root, the receiving frame 3 is moved into the drying chamber 12 by the drive mechanism 2. The bottom wall of the drying chamber 12 is higher than the liquid level, so the drying of the Trichosanthes kirilowii root can be completed in the drying chamber 12, while avoiding the liquid in the cleaning chamber 11 from affecting the drying chamber 12, thus ensuring the drying effect. On this basis, a slicing mechanism 4 is set in the slicing chamber 13. At the same time, when the receiving frame 3 moves between the drying chamber 12 and the slicing chamber 13, the drive mechanism 2 can drive the receiving frame 3 to rotate, so that the opening of the receiving frame 3 faces the slicing mechanism 4. At this time, the receiving frame 3 can drive the Trichosanthes kirilowii root to move towards the slicing mechanism 4, and then the slicing mechanism 4 can slice the Trichosanthes kirilowii root, realizing the slicing processing of the Trichosanthes kirilowii root. The entire processing of Trichosanthes kirilowii root can be realized through automated operation without manual intervention, effectively improving the efficiency of Trichosanthes kirilowii root processing.

[0034] It should be noted that, in this embodiment, as Figure 1 and Figure 2 As shown, a feed inlet 17 is provided on the top wall of the cabinet 1. The feed inlet 17 corresponds vertically to the opening of the receiving frame 3 located in the cleaning chamber 11. The Trichosanthes kirilowii root can be placed into the receiving frame 3 from the feed inlet 17 using an automated structure such as a robotic arm. Figure 2 and Figure 3 As shown, a loading box 18 with an upward opening is also provided in the slicing chamber 13. The loading box 18 is slidably installed in the cabinet 1 and can be moved into or out of the cabinet 1. At the same time, the loading box 18 is located on the falling trajectory of the slices of Trichosanthes kirilowii root after they are cut, so that the slices can fall directly into the loading box 18. After the loading box 18 is full of slices, it is moved out of the cabinet 1.

[0035] Optionally, the cabinet 1 is provided with a first sealing plate 14, a second sealing plate 15 and a third sealing plate 16 inside. The first sealing plate 14 and the second sealing plate 15 are both vertically arranged and distributed at intervals in the horizontal direction. The first sealing plate 14 is installed on the upper part of the cabinet 1. The first sealing plate 14 and the third sealing plate 16 are both located above the liquid surface. The third sealing plate 16 extends in the horizontal direction and is connected to the bottom of the first sealing plate 14 and the middle of the second sealing plate 15, respectively, so as to form a cleaning chamber 11 and a drying chamber 12 inside the cabinet 1 with the first sealing plate 14 and the second sealing plate 15, respectively. The side wall of the second sealing plate 15 is connected to the inner side wall of the cabinet 1 and is spaced away from the inner side wall of the first sealing plate 14 opposite to the cabinet 1, so as to form a slicing chamber 13.

[0036] In this optional embodiment, in order to ensure the structural stability of each chamber within the cabinet 1, such as... Figure 2 and Figure 3 As shown, a first sealing plate 14, a second sealing plate 15, and a third sealing plate 16 are arranged inside the cabinet 1. The first sealing plate 14 and the second sealing plate 15 are both vertically arranged and spaced apart horizontally, thus dividing the interior of the cabinet 1 into three horizontal sections. The first sealing plate 14 is installed at the top of the cabinet 1, and both the first sealing plate 14 and the third sealing plate 16 are located above the liquid surface. The third sealing plate 16 extends horizontally and connects to the bottom of the first sealing plate 14 and the middle of the second sealing plate 15, forming a "4" shape. At this point, the third sealing plate 16 and the first sealing plate 15... Plate 14, in conjunction with the inner wall of cabinet 1, forms an L-shaped cleaning chamber 11 inside cabinet 1. Above the horizontal section of cleaning chamber 11 is the drying chamber 12, separated by the third sealing plate 16. This ensures that there is enough space in cleaning chamber 11 to hold liquid, improving the cleaning effect, and also ensures that the liquid level is lower than that in drying chamber 12, improving the drying effect. On this basis, the side wall of the second sealing plate 15 is connected to the inner side wall of cabinet 1, and is spaced away from the inner side wall of the first sealing plate 14 opposite to cabinet 1, thereby forming a slicing chamber 13 to ensure the stability of subsequent slicing.

[0037] It should be noted that, as Figure 3 and Figure 4 As shown, in order to ensure the movement of the receiving frame 3 in the three chambers, holes for the receiving frame 3 to pass through are provided on the first sealing plate 14 and the second sealing plate 15. At the same time, channels for the drive mechanism 2 to pass through are provided on the first sealing plate 14, the second sealing plate 15 and the third sealing plate 16. In order to ensure that the rotating receiving frame 3 can move into the slicing chamber 13, an arc-shaped opening is provided at the connection between the channel of the third sealing plate 16 and the channel of the second sealing plate 15 to provide rotation space for the bottom of the receiving frame 3. At the same time, a clearance opening is provided below the hole of the second sealing plate 15 to provide receiving space for the receiving frame 3 after rotation.

[0038] Optionally, the drive mechanism 2 includes a slide rail 21, a slider 22 and a first telescopic drive member. The slide rail 21 extends horizontally and is installed on the inner bottom wall of the cabinet 1. The slider 22 is slidably installed on the slide rail 21 and is drivenly connected to the first telescopic drive member. The first telescopic drive member is used to drive the slider 22 to move back and forth along the slide rail 21. The receiving frame 3 is hinged to the slider 22.

[0039] Specifically, the first telescopic drive component is a telescopic motor or a telescopic hydraulic cylinder, etc.

[0040] In this optional embodiment, such as Figure 3 and Figure 4 As shown, a drive mechanism 2 is composed of a slide rail 21, a slider 22, and a first telescopic drive component. The slide rail 21 extends horizontally and is installed on the inner bottom wall of the cabinet 1. The slider 22 is slidably installed on the slide rail 21 and is driven by the first telescopic drive component. Thus, the first telescopic drive component can drive the slider 22 to reciprocate along the slide rail 21. On this basis, the receiving frame 3 is hinged to the slider 22. When the slider 22 moves, it can drive the receiving frame 3 to move, thereby realizing the drive mechanism 2 to drive the receiving frame 3 and ensuring the stable movement of the receiving frame 3.

[0041] Optionally, the drive mechanism 2 further includes a second telescopic drive member 23, which is mounted on the slider 22 and hinged to the receiving frame 3. The second telescopic drive member 23 is used to drive the receiving frame 3 to reciprocate in the vertical direction.

[0042] Specifically, such as Figure 3 and Figure 4 As shown, the second telescopic drive component 23 is a telescopic hydraulic cylinder or a telescopic electric cylinder, etc.

[0043] In this optional embodiment, such as Figure 3 and Figure 4 As shown, the drive mechanism 2 is also provided with a second telescopic drive member 23, wherein the second telescopic drive member 23 is mounted on the slider 22 and hinged to the receiving frame 3. The second telescopic drive member 23 can extend and retract in the vertical direction, thereby driving the receiving frame 3 to move up and down, realizing the movement of the receiving frame 3 into and out of the liquid, thereby ensuring the cleaning effect of the Trichosanthes kirilowii root in the receiving frame 3 and facilitating the subsequent movement of the receiving frame 3 into the drying chamber 12.

[0044] Optionally, the drive mechanism 2 further includes a first rotary drive and a rotary shaft 24. The receiving frame 3 is hinged to the second telescopic drive 23 via the rotary shaft 24. The extension direction of the rotary shaft 24 is perpendicular to the extension direction of the slide rail 21 and is driven by the first rotary drive. The first rotary drive is used to drive the rotary shaft 24 to rotate so that the opening direction of the receiving frame 3 can be switched between vertically upward or horizontally towards the slicing mechanism 4.

[0045] Specifically, the first rotary drive component is a rotary motor or a servo motor, etc.

[0046] In this optional embodiment, such as Figures 2 to 4 As shown, the drive mechanism 2 is also provided with a first rotary drive and a rotary shaft 24. The receiving frame 3 can be hinged to the second telescopic drive 23 via the rotary shaft 24. The extension direction of the rotary shaft 24 is perpendicular to the extension direction of the slide rail 21. The rotary shaft 24 is also driven by the first rotary drive, so that the rotary shaft 24 can be driven to rotate back and forth via the first rotary drive, thereby causing the receiving frame 3 to rotate relative to the second telescopic drive 23. This allows the opening direction of the receiving frame 3 to switch between vertically upward and horizontally towards the slicing mechanism 4, realizing the rapid slicing of Trichosanthes kirilowii root and the stable reset of the receiving frame 3, ensuring the cyclical continuity of Trichosanthes kirilowii root processing.

[0047] Optionally, the receiving frame 3 is a cylindrical structure with the axis of the cylindrical structure being vertical. The driving mechanism 2 also includes a second rotary driving member 25, which is mounted on the slider 22 and drivenly connected to the second telescopic driving member 23. The second rotary driving member 25 is used to drive the second telescopic driving member 23 to rotate around the vertical direction, thereby driving the receiving frame 3 to rotate.

[0048] In this optional embodiment, in order to ensure the cleaning and drying effect of the Trichosanthes kirilowii roots in the receiving frame 3, such as... Figures 2 to 4 As shown, the receiving frame 3 is configured as a cylindrical structure with the axis of the cylindrical structure being vertical. The driving mechanism 2 is also provided with a second rotary driving component 25, which can be a rotary motor or a servo motor, etc. At this time, the second rotary driving component 25 is mounted on the slider 22 and is simultaneously driven and connected to the second telescopic driving component 23. In this way, the second rotary driving component 25 can drive the second telescopic driving component 23 to rotate in the vertical direction, thereby driving the receiving frame 3 to rotate. When the receiving frame 3 moves below the liquid surface or is located in the drying chamber 12, the rotation of the receiving frame 3 can drive the liquid to flow, improving the cleaning effect, or the rotation of the receiving frame 3 can make the Trichosanthes kirilowii root evenly heated, improving the drying effect.

[0049] Optionally, the receiving frame 3 is provided with a pushing structure 31 inside. The pushing structure 31 is used to be placed at the bottom of the receiving frame 3. When the opening of the receiving frame 3 faces the slicing mechanism 4, the pushing structure 31 is used to move along the opening direction of the receiving frame 3.

[0050] In this optional embodiment, to ensure that the Trichosanthes root can move stably toward the slicing mechanism 4, such as... Figures 2 to 4As shown, a pushing structure 31 is provided inside the receiving frame 3. The initial position of the pushing structure 31 is located at the bottom of the receiving frame 3. When the opening of the receiving frame 3 faces the slicing mechanism 4, the pushing structure 31 can move along the opening direction of the receiving frame 3, thereby stably pushing the Trichosanthes root out of the opening of the receiving frame 3 and moving towards the slicing mechanism 4, so that the slicing mechanism 4 can realize the slicing operation of the Trichosanthes root.

[0051] Optionally, the pushing structure 31 includes a sliding column 311, a pushing plate 312, and a lifting drive 313. The sliding column 311 is installed vertically at the center of the bottom wall of the receiving frame 3. The pushing plate 312 is fitted on the sliding column 311. The side wall of the pushing plate 312 is in contact with the inner side wall of the receiving frame 3. The lifting drive 313 is located below the pushing plate 312 and is drivenly connected to the pushing plate 312 to drive the pushing plate 312 to move up and down vertically.

[0052] Specifically, such as Figure 2 and Figure 4 As shown, the lifting drive component 313 can be a telescopic motor or a linear drive component, etc.

[0053] In this optional embodiment, such as Figures 2 to 4 As shown, a pushing structure 31 is formed by a sliding column 311, a pushing plate 312, and a lifting drive 313. The sliding column 311 is installed vertically at the center of the bottom wall of the receiving frame 3, and the pushing plate 312 is fitted on the sliding column 311. The side wall of the pushing plate 312 is in contact with the inner side wall of the receiving frame 3. With this configuration, the Trichosanthes kirilowii root falling into the receiving frame 3 can be placed on the pushing plate 312. The lifting drive 313 is located below the pushing plate 312 and is driven by the pushing plate 312. With this configuration, under the limiting action of the sliding column 311, the lifting drive 313 can drive the pushing plate 312 to move up and down vertically, thereby moving closer to or away from the opening of the receiving frame 3, so that the Trichosanthes kirilowii root on the pushing plate 312 can be stably moved out of the receiving frame 3, which is convenient for the slicing mechanism 4 to slice.

[0054] Optionally, the slicing mechanism 4 includes a third rotary drive 41 and a rotary blade 42. The third rotary drive 41 is mounted on the inner wall of the slicing chamber 13 and is drivenly connected to the rotary blade 42. The third rotary drive 41 is used to drive the rotary blade 42 to rotate, and the rotation trajectory of the rotary blade 42 intersects the trajectory of the receiving frame 3 driving the Trichosanthes kirilowii root to move.

[0055] Specifically, such as Figure 2 and Figure 4 As shown, the third rotary drive component 41 is a rotary motor or servo motor, etc.

[0056] In this optional embodiment, such as Figure 2 and Figure 4As shown, a slicing mechanism 4 is composed of a third rotary drive 41 and a rotary blade 42. The third rotary drive 41 is mounted on the inner wall of the slicing chamber 13 and is driven by the rotary blade 42. The rotary drive 41 drives the rotary blade 42 to rotate, and the rotation trajectory of the rotary blade 42 intersects with the trajectory of the trichosanthes root driven by the receiving frame 3. This arrangement ensures that the trichosanthes root passes through the rotation trajectory of the rotary blade 42 during movement, thereby achieving cutting of the trichosanthes root by the rotary blade 42 and completing continuous slicing operations.

[0057] Optionally, the slicing mechanism 4 also includes a limiting cylinder 43 and a bracket 44. The bracket 44 is installed on the inner bottom wall of the slicing chamber 13, and the limiting cylinder 43 is installed on the bracket 44 with its opening facing the receiving frame 3. The end face of the limiting cylinder 43 facing away from the opening end is provided with a discharge port 431. When the receiving frame 3 moves into the slicing chamber 13, the receiving frame 3 moves into the limiting cylinder 43 and drives the Trichosanthes kirilowii root to move out through the discharge port 431.

[0058] In this optional embodiment, to ensure the stability of the Trichosanthes root during the slicing process, such as... Figures 2 to 4 As shown, the slicing mechanism 4 is also provided with a limiting cylinder 43 and a bracket 44. The bracket 44 is installed on the inner bottom wall of the slicing chamber 13, while the limiting cylinder 43 is installed on the bracket 44, thereby ensuring the installation stability of the limiting cylinder 43. On this basis, the opening of the limiting cylinder 43 faces the receiving frame 3, and the end face of the limiting cylinder 43 facing away from the opening end is provided with a discharge port 431. When the receiving frame 3 moves into the slicing chamber 13, the receiving frame 3 can move into the limiting cylinder 43 under the driving operation of the driving mechanism 2. At this time, the receiving frame 3 drives the Trichosanthes kirilowii root to move. Under the action of gravity, the Trichosanthes kirilowii root is concentrated at the bottom of the horizontally placed receiving frame 3. It can be aligned with the discharge port 431 during the movement and moved out through the discharge port 431. At this time, the side wall of the discharge port 431 can limit the Trichosanthes kirilowii root. When the Trichosanthes kirilowii root collides with the rotating blade 42 to achieve cutting, it can prevent the Trichosanthes kirilowii root from turning over, thereby ensuring the slicing stability of the Trichosanthes kirilowii root.

[0059] The above are merely preferred embodiments of this utility model and are not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A cleaning, drying and slicing device for gualou roots, characterized in that, include: The cabinet (1) is provided with a cleaning chamber (11), a drying chamber (12) and a slicing chamber (13) connected in sequence. The cleaning chamber (11) is filled with liquid, and the liquid level is lower than the bottom wall height of the drying chamber (12). A drive mechanism (2) is installed inside the cabinet (1) and is used to reciprocate between the cleaning chamber (11) and the drying chamber (12); The container (3) is a hollow structure with an opening at the top and is used to hold the root of Trichosanthes kirilowii. The container (3) is hinged to the driving mechanism (2). When the container (3) is located in the cleaning chamber (11), the driving mechanism (2) is used to drive the container (3) to move into or out of the liquid surface. The slicing mechanism (4) is installed in the slicing chamber (13). When the receiving frame (3) is located at the connection between the drying chamber (12) and the slicing chamber (13), the driving mechanism (2) is used to drive the receiving frame (3) to rotate so that the receiving frame (3) moves into the slicing chamber (13). The receiving frame (3) is used to drive the Trichosanthes root to move toward the slicing mechanism (4) so ​​that the slicing mechanism (4) can cut the Trichosanthes root.

2. The cleaning and drying and slicing device for gualou root according to claim 1, characterized in that, The cabinet (1) is equipped with a first sealing plate (14), a second sealing plate (15), and a third sealing plate (16). The first sealing plate (14) and the second sealing plate (15) are both vertically arranged and spaced apart in the horizontal direction. The first sealing plate (14) is installed on the upper part of the cabinet (1). The first sealing plate (14) and the third sealing plate (16) are both located above the liquid surface. The third sealing plate (16) extends in the horizontal direction and is respectively connected to the first sealing plate (14). The bottom of the first sealing plate (14) and the middle of the second sealing plate (15) are connected to form the cleaning chamber (11) and the drying chamber (12) inside the cabinet (1) respectively with the first sealing plate (14) and the second sealing plate (15). The side wall of the second sealing plate (15) is connected to the inner side wall of the cabinet (1) and is spaced apart from the inner side wall of the first sealing plate (14) relative to the second sealing plate (15) of the cabinet (1) to form the slicing chamber (13).

3. The cleaning and drying and slicing device for the gualou root according to claim 1, wherein, The drive mechanism (2) includes a slide rail (21), a slider (22) and a first telescopic drive member. The slide rail (21) extends horizontally and is installed on the inner bottom wall of the cabinet (1). The slider (22) is slidably installed on the slide rail (21) and is drivenly connected to the first telescopic drive member. The first telescopic drive member is used to drive the slider (22) to move back and forth along the slide rail (21). The receiving frame (3) is hinged to the slider (22).

4. The cleaning and drying and slicing device for gualou root according to claim 3, characterized in that, The drive mechanism (2) further includes a second telescopic drive member (23), which is mounted on the slider (22) and hinged to the receiving frame (3). The second telescopic drive member (23) is used to drive the receiving frame (3) to reciprocate in the vertical direction.

5. The cleaning and drying and slicing device for gualou root according to claim 4, wherein, The drive mechanism (2) further includes a first rotary drive and a rotary shaft (24). The receiving frame (3) is hinged to the second telescopic drive (23) through the rotary shaft (24). The extension direction of the rotary shaft (24) is perpendicular to the extension direction of the slide rail (21) and is drivenly connected to the first rotary drive. The first rotary drive is used to drive the rotary shaft (24) to rotate so that the opening direction of the receiving frame (3) can be switched between vertically upward or horizontally towards the slicing mechanism (4).

6. The cleaning and drying and slicing device for gualou root according to claim 5, wherein, The receiving frame (3) is a cylindrical structure, and the axis of the cylindrical structure is vertical. The driving mechanism (2) also includes a second rotary driving member (25). The second rotary driving member (25) is mounted on the slider (22) and is driven to connect with the second telescopic driving member (23). The second rotary driving member (25) is used to drive the second telescopic driving member (23) to rotate around the vertical direction, so as to drive the receiving frame (3) to rotate.

7. The cleaning and drying slicing device for gualou root according to any one of claims 4 to 6, characterized in that, The receiving frame (3) is provided with a pushing structure (31) inside. The pushing structure (31) is used to be placed at the bottom of the receiving frame (3). When the opening of the receiving frame (3) faces the slicing mechanism (4), the pushing structure (31) is used to move along the opening direction of the receiving frame (3).

8. The cleaning and drying and slicing device for gualou root according to claim 7, wherein, The pushing structure (31) includes a sliding column (311), a pushing plate (312), and a lifting drive (313). The sliding column (311) is installed at the center of the bottom wall of the receiving frame (3) along the vertical direction. The pushing plate (312) is fitted on the sliding column (311). The side wall of the pushing plate (312) is in contact with the inner side wall of the receiving frame (3). The lifting drive (313) is located below the pushing plate (312) and is drivenly connected to the pushing plate (312) to drive the pushing plate (312) to move up and down along the vertical direction.

9. The cleaning and drying slicing device for gualou root according to any one of claims 1 to 6, wherein, The slicing mechanism (4) includes a third rotating drive (41) and a rotating blade (42). The third rotating drive (41) is installed on the inner wall of the slicing chamber (13) and is driven to connect with the rotating blade (42). The third rotating drive (41) is used to drive the rotating blade (42) to rotate, and the rotation trajectory of the rotating blade (42) intersects with the trajectory of the receiving frame (3) driving the Trichosanthes kirilowii root to move.

10. The cleaning and drying and slicing device for gualou root according to claim 9, wherein, The slicing mechanism (4) further comprises a limiting cylinder (43) and a support (44), the support (44) is installed on the inner bottom of the slicing chamber (13), the limiting cylinder (43) is installed on the support (44) and the opening faces the containing frame (3), an outlet (431) is arranged on the end face of the opening end of the limiting cylinder (43), when the containing frame (3) moves into the slicing chamber (13), the containing frame (3) moves into the limiting cylinder (43) and drives the gualou root to move out through the outlet (431).

Citation Information

Patent Citations

  • Trichosanthes kirilowii root cleaning, drying and slicing device

    CN209394735U