A probiotics automated packaging device

By designing a probiotics automated packaging device with a multi-injection hole turntable and injectors, the problem of low efficiency of a single assembly line in the existing technology is solved, and efficient packaging and quality control of multiple types of probiotics are achieved.

CN116692077BActive Publication Date: 2025-09-09JIANGSU XINSHENAO BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202310477794.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-04-28
Publication Date
2025-09-09
Estimated Expiration
2043-04-28

AI Technical Summary

Technical Problem

The existing probiotic packaging production line has a single function, resulting in slow packaging speed and low efficiency, and is unable to effectively handle the packaging needs of multiple types of probiotics.

Method used

An automated probiotic packaging device is designed. It uses a turntable with multiple injection holes and multiple injectors, combined with a material storage box, to achieve simultaneous injection and packaging of multiple types of probiotics. The injection efficiency is optimized by adjusting the turntable speed and rotation angle, and a filter is installed in the injector for quality control.

Benefits of technology

It realizes the simultaneous filling and packaging of multiple types of probiotics, improves packaging efficiency, and ensures the quality of the probiotic finished products through the filter screen.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a probiotic automated packaging device, comprising a base, a column, a turntable, a feeder, and a material storage box; the column is vertically fixed to the surface of the base, and the column is connected to the central axis of the turntable through a rotating shaft; the column is connected to the discharge funnel through a first fixed connecting rod, and is connected to multiple feeders through a second fixed connecting rod and a lifting connecting rod; each feeder is connected to a material storage box through a telescopic connecting rod; the turntable is provided with no less than three types of feeding holes perpendicular to the turntable surface, and different types of feeding holes are adapted to corresponding feeders; the corresponding number of different types of feeding holes is the same as the angle between adjacent holes; the distance between the same type of feeding holes and the center position of the turntable is the same, and the same type of feeding holes adjacent in the clockwise or counterclockwise direction are the same distance apart. Through the automated packaging device of the present invention, probiotics of different particle sizes can be subjected to online synchronous quality screening and synchronous packaging, thereby improving the packaging quality and speed of the probiotic finished product.
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Description

Technical Field

[0001] The present invention relates to the field of automation control technology, in particular to an automated probiotics packaging device. Background Art

[0002] In recent years, with the improvement of living standards, people pay more and more attention to their own physical health, so more people choose to improve their immunity by consuming probiotics.

[0003] There are many types of probiotics, including granular probiotics, powdered probiotics and crystal ball probiotics. Most existing probiotic manufacturers use a single assembly line operation when producing probiotics, that is: one assembly line only packages the finished products of one type of probiotic. If other types of probiotics need to be packaged, a new assembly line needs to be opened. As a result, this production method often leads to slow probiotic packaging, which is time-consuming and labor-intensive.

[0004] In summary, there is an urgent need to provide an automated probiotic packaging device to solve the aforementioned technical problems. Summary of the Invention

[0005] (1) Technical issues to be solved

[0006] In view of the above-mentioned shortcomings and deficiencies of the prior art, the present invention provides a probiotics automated packaging device, which solves the problems of the existing probiotics packaging line with single work, slow working speed and low efficiency.

[0007] (2) Technical solution

[0008] In order to achieve the above objectives, the main technical solutions adopted by the present invention include:

[0009] The probiotics automated packaging device includes a base, a column, a turntable, a feeder, and a material box;

[0010] The column is fixed vertically to the surface of the base and is connected to the central axis of the turntable through a rotating shaft; the column is connected to the discharge funnel through a first fixed connecting rod, and is connected to multiple injectors through a second fixed connecting rod and a lifting connecting rod; each injector is connected to a material storage box through a telescopic connecting rod;

[0011] The turntable is a cylindrical structure, and is provided with no less than three types of injection holes perpendicular to the surface of the turntable; different types of injection holes are embedded in the turntable at different vertical depths, and the number of types of injection holes is the same as the number of injection devices, and different types of injection holes are adapted to corresponding injection devices;

[0012] The number of the different types of injection holes is the same, no less than 2; the angles between adjacent holes of different types are the same; the distances between the injection holes of the same type and the center of the turntable are the same, and the spacing between adjacent injection holes of the same type in the clockwise or counterclockwise direction is the same;

[0013] The injection hole is connected to all other types of injection holes that are closest to it, forming a connected system. In the same connected system, the proximal injection hole corresponding to the deepest injection hole has a shallower depth the closer it is to the center of the turntable, and the distal injection hole corresponding to the deepest injection hole has a shallower depth the farther it is from the center of the turntable.

[0014] The communication system includes: an injection communication system and a discharge communication system, wherein the number of the injection communication system is one or more and the number of the discharge communication system is one; and the deepest injection hole passes through the turntable and is provided with a first discharge port with a controllable switch;

[0015] Each injection communication system is adapted to one or more injectors, and the first discharge port corresponding to the discharge communication system corresponds to the center position of the discharge funnel arranged below.

[0016] Optionally, the adjacent hole angle is: the angle formed by the line connecting the clockwise or counterclockwise adjacent injection holes of the same type and the center of the turntable.

[0017] Optionally, the near-center injection hole corresponding to the deepest injection hole is: in the same connected system, the injection hole that is closer to the center of the turntable in a straight line than the deepest injection hole;

[0018] The far-center injection hole corresponding to the deepest injection hole is: in the same connected system, the injection hole that is farther away from the center of the turntable in a straight line than the deepest injection hole.

[0019] Optionally, the material holding box is a hollow rectangular box-shaped structure, the lower end surface of the material holding box is provided with a second discharge port with a controllable switch, and the outer surface is provided with a first display screen;

[0020] The injector is a composite structure of a hollow cylinder and an inverted truncated cone. The upper end surface of the injector is provided with an inlet, and the outer surface is provided with a second display screen and a first adjustment button. The inside of the injector is provided with a filter screen, a holding tank and an opening and closing plate from top to bottom. The lower end surface of the injector is provided with a third discharge port with a control switch.

[0021] Optionally, the number of the material holding boxes and the number of the injectors are the same as the number of the types of injection holes;

[0022] The second discharge port of the material holding box is adapted to the position of the feed port of the corresponding injector, and the distance between the second discharge port and the feed port can be adjusted by adjusting the telescopic connecting rod.

[0023] Optionally, the first display screen is used to display the remaining weight of the probiotics contained therein; the second display screen is used to display the preset single probiotic delivery weight, and the display value of the second display screen is adjusted by adjusting the first button;

[0024] The filter is a detachable, replaceable and washable structure, used to screen the probiotic raw materials for size compliance; the holding tank is a detachable bowl-shaped structure with a smooth inner wall and a controllable switch at the bottom;

[0025] The opening and closing plate is a circular plate structure composed of two semicircles and is provided with a weight sensor; when the weight of the probiotic raw materials contained on the opening and closing plate in the fully closed state reaches a preset value displayed on the second display screen, the opening and closing plate folds downward to open.

[0026] Optionally, the third discharge port of the injector is adapted to the position of the injection hole of the corresponding turntable, and the distance between the third discharge port and the injection hole is adjusted by adjusting the lifting connecting rod.

[0027] Optionally, the rotating shaft can control the turntable to rotate clockwise or counterclockwise, and the turntable rotates a preset angle per unit time interval;

[0028] The outer surface of the turntable is provided with a third display screen and a second adjustment button. The preset unit time interval and the preset angle are adjusted by adjusting the second adjustment button. The third display screen is used to display the preset unit time interval and the preset angle.

[0029] Optionally, a probiotic packaging table is provided on the surface of the base at a position corresponding to the position directly below the discharge funnel to package the probiotics as finished products.

[0030] Optionally, the base is embedded with a controller and a power supply device, and the controller is connected to the mobile terminal via a network or Bluetooth; and the base is also provided with an external power plug;

[0031] All the aforementioned components are remotely controlled via a mobile terminal.

[0032] (3) Beneficial effects

[0033] First, the present invention can realize the simultaneous injection and packaging of multiple types of probiotics by providing a turntable with multiple injection holes, multiple injectors, and material storage boxes;

[0034] Second, according to the actual production and packaging conditions, the speed and single rotation angle of the regulating turntable are adjusted to maximize the injection efficiency of probiotics;

[0035] Third, by installing a filter in the injector, the quality of different probiotic raw materials can be controlled, further improving the quality of the finished probiotic products. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] Figure 1 A schematic diagram of the structure of an automated probiotics packaging device according to one embodiment of the present invention;

[0037] Figure 2 A schematic diagram of the structure of a material container according to an embodiment of the present invention;

[0038] Figure 3 A schematic diagram of the structure of an injector according to an embodiment of the present invention;

[0039] Figure 4 A schematic cross-sectional view of an automated probiotics packaging device according to one embodiment of the present invention;

[0040] Figure 5 A schematic cross-sectional view of an automated probiotics packaging device according to one embodiment of the present invention;

[0041] Figure 6 A top view of a turntable provided in accordance with an embodiment of the present invention;

[0042] Figure 7 A schematic diagram of the structure of an automated probiotics packaging device according to one embodiment of the present invention;

[0043] Figure 8 A top view of a turntable provided in accordance with an embodiment of the present invention;

[0044] above Figures 1 to 8 The symbols in include:

[0045] Base 1, column 2, turntable 3, injector 4, material holding box 5, rotating shaft 6, first fixed connecting rod 7, discharge funnel 8, second fixed connecting rod 9, lifting connecting rod 10, telescopic connecting rod 11, injection hole 12, injection connection system 13, discharge connection system 14, first discharge port 15, second discharge port 16, first display screen 17, feed port 18, second display screen 19, first adjustment button 20, filter screen 21, holding tank 22, opening and closing plate 23, third discharge port 24, third display screen 25, second adjustment button 26, external power plug 27. DETAILED DESCRIPTION

[0046] In order to better explain the present invention and facilitate understanding, the present invention is described in detail below through specific implementation methods in conjunction with the accompanying drawings.

[0047] The present invention is capable of realizing simultaneous filling and packaging of multiple types of probiotics by providing a turntable with multiple filling holes, multiple injectors, and a material storage box; and, according to actual production and packaging conditions, the rotation speed and single rotation angle of the regulating turntable are adjusted to maximize the filling efficiency of the probiotics; and, by providing a filter screen in the injector, the quality of different probiotic raw materials is controlled, thereby further improving the quality of the finished probiotic products.

[0048] To better understand the above technical solutions, exemplary embodiments of the present invention will be described in more detail below with reference to the accompanying drawings. Although exemplary embodiments of the present invention are shown in the accompanying drawings, it should be understood that the present invention can be implemented in various forms and should not be limited by the embodiments described herein. Instead, these embodiments are provided to enable a clearer and more thorough understanding of the present invention and to fully convey the scope of the present invention to those skilled in the art.

[0049] Example 1

[0050] This embodiment proposes to provide an automated packaging device for probiotics, which includes the following components: a base 1, a column 2, a turntable 3, a feeder 4, a material holding box 5, a rotating shaft 6, a first fixed connecting rod 7, a discharge funnel 8, a second fixed connecting rod 9, a lifting connecting rod 10, a telescopic connecting rod 11, a feeding hole 12, a feeding connection system 13, a discharge connection system 14, a first discharge port 15, a second discharge port 16, a first display screen 17, a feed port 18, a second display screen 19, a first adjustment button 20, a filter screen 21, a holding pool 22, an opening and closing plate 23, a third discharge port 24, a third display screen 25, a second adjustment button 26, and an external power plug 27.

[0051] In this embodiment, Figure 1 As shown, the main components of the probiotics automated packaging device include a base 1, a column 2, a turntable 3, an injector 4, and a material box 5. The specific structure is: the column 2 is vertically fixed to the surface of the base 1, and the column 2 is connected to the central axis of the turntable 3 through a rotating shaft 6; the column 2 is connected to the discharge funnel 8 through a first fixed connecting rod 7, and is connected to multiple injectors 4 through a second fixed connecting rod 9 and a lifting connecting rod 10; each injector 4 is connected to a material box 7 through a telescopic connecting rod 11.

[0052] In this embodiment, the base 1 is embedded with a controller and a power supply device. The controller is connected to a mobile terminal via a network or Bluetooth, and the probiotic automated packaging device can be remotely controlled via the mobile terminal. The power supply device is removable and replaceable. If the power supply device is insufficient, an external power plug 27 can be used for external power supply.

[0053] In this embodiment, Figure 2As shown, the material box 5 is a hollow rectangular box structure for containing probiotic raw materials; the lower end surface of the material box 5 is provided with a second discharge port 16 with a controllable switch, and the outer surface of the material box 5 is provided with a first display screen 17, which is used to display the remaining weight of the probiotics contained therein.

[0054] In this embodiment, Figure 1 As shown, the number of material holding boxes 5 and injectors 4 is the same, which is the same as the number of types of injection holes 12; the second discharge port 16 of the material holding box 5 is adapted to the position of the corresponding inlet 18 of the injector 4, and the distance between the second discharge port 16 and the inlet 18 is adjusted by adjusting the telescopic connecting rod 11.

[0055] In this embodiment, Figure 3 As shown, the injector 4 is a composite structure of a hollow cylinder connected to an inverted truncated cone. The upper end surface of the injector 4 is provided with an inlet 18, and the outer surface is provided with a second display screen 19 and a first adjustment button 20. The second display screen 19 is used to display the preset single probiotic delivery weight, and the preset single probiotic delivery weight is adjusted by adjusting the first button 20. The injector 4 is provided with a filter screen 21, a storage tank 22 and an opening and closing plate 23 from top to bottom. Among them, the filter screen 21 is a detachable, replaceable and washable structure used to screen the probiotic raw materials for size compliance; the storage tank 22 is a detachable bowl-shaped structure with a smooth inner wall and a controllable switch at the bottom; the opening and closing plate 23 is a circular plate structure composed of two semicircles and is equipped with a weight sensor. When the weight of the probiotic raw materials on the opening and closing plate 23 in the fully closed state reaches the preset value displayed on the second display screen 18, the opening and closing plate 23 folds downward to open. The lower end surface of the injector 4 is provided with a third discharge port 24 with a control switch.

[0056] In this embodiment, Figure 1 As shown, the third discharge port 24 of the injector 4 is adapted to the position of the corresponding injection hole 12 of the turntable 3 , and the distance between the third discharge port 24 and the injection hole 12 is adjusted by adjusting the lifting connecting rod 10 .

[0057] In this embodiment, Figure 1 As shown, the turntable 3 is a cylindrical structure, and the turntable 3 is provided with no less than 3 types of injection holes 12 perpendicular to the surface of the turntable 3; it should be noted that different types of injection holes 12 are provided to adapt to the packaging of different types of probiotics, and one injection hole 12 needs to correspond to a preset probiotic raw material; generally speaking, probiotic raw materials can be divided into three types: granules, powders and crystal balls, so the types of injection holes 12 can be set to 3. If the types of probiotic raw materials involved in the probiotic packaging production line increase, more injection holes 12 can be set, and this application does not make specific limitations.

[0058] In this embodiment, Figure 1 and Figure 2 As shown, the structural morphology of different types of injection holes 12 differs in that different types of injection holes 12 are embedded in the turntable 3 at different vertical depths. There is no specific limitation on whether the calibers and cross-sectional shapes corresponding to different types of injection holes 12 are the same. The caliber and cross-sectional shape can be set according to specific circumstances. The caliber and cross-sectional shape of the injection hole 12 only need to match the corresponding injector 4. The cross-sectional shape can be conventional shapes such as circle, ellipse, square, etc.

[0059] In this embodiment, Figure 1 As shown, the number of types of injection holes 12 is the same as the number of injection devices 4. Different types of injection holes 12 are adapted to corresponding injection devices 4, and the corresponding numbers of different types of injection holes 12 are the same, which is no less than 2. It should be noted that: if the injection devices 4 set in the automatic packaging device are not all put into actual use, it is only necessary to enable the injection holes 12 corresponding to the injection devices 4 actually used.

[0060] In this embodiment, Figure 4 and Figure 5 As shown, the injection hole 12 is connected with all other types of injection holes 12 that are closest to it, forming a communication system.

[0061] In this embodiment, within the same connected system, for the proximal injection hole corresponding to the deepest injection hole, the closer it is to the center of the turntable 3, the shallower its depth; and for the distal injection hole corresponding to the deepest injection hole in the same connected system, the farther it is from the center of the turntable 3, the shallower its depth. It should be noted that the proximal injection hole corresponding to the deepest injection hole is the injection hole that is closer to the center of the turntable 3 in a straight line relative to the deepest injection hole in the same connected system; and the distal injection hole corresponding to the deepest injection hole is the injection hole that is farther from the center of the turntable 3 in a straight line relative to the deepest injection hole in the same connected system.

[0062] In this embodiment, the communication system includes: an injection communication system 13 and a discharge communication system 14, wherein the communication system with the injection hole 12 that has not been injected is the injection communication system 13, and the communication system without the injection hole 12 that has not been injected is the discharge communication system 14; it should be noted that the number of the injection communication system 13 is one or more, and the number of the discharge communication system 14 is one. Figure 1 As shown, the deepest injection hole corresponding to each communication system passes through the turntable 3 and is provided with a first discharge port 15 with a controllable switch. The first discharge port 15 corresponding to the discharge communication system 14 corresponds to the center position of the discharge funnel 8 provided below.

[0063] In this embodiment, Figure 4As shown, three injection holes 12 of different vertical depths form the same communication system, wherein the injection hole 12 at the outermost position is the deepest injection hole, and the vertical depths of the two injection holes 12 inside it are both smaller than its vertical depth, and the closer the injection hole 12 is to the center of the turntable 3, the shallower the vertical depth. Figure 5 As shown, three injection holes 12 of different vertical depths form a single connected system. The middle injection hole 12 is the deepest, and the injection holes 12 on either side of it have a smaller vertical depth. It should be noted that based on the structure of the aforementioned connected system, it is possible to achieve that, regardless of how many types of probiotic raw materials are injected into the connected system, all of the probiotic raw materials will ultimately flow out through the first discharge port 15 corresponding to the discharge connected system 14.

[0064] In this embodiment, each injection communication system is adapted to one or more injectors 4. Each injection communication system is adapted to one or more injectors 4, depending on the specific situation corresponding to the total number of injection communication systems and the total number of injectors 4. Figure 1 As shown, each injection communication system is adapted to an injector 4. Specifically, Figure 1 In the embodiment, for the multiple injection holes 12 in each injection connection system, each injector 4 performs synchronous and simultaneous injection based only on a certain injection hole 12 adapted to it. After completing this injection, the rotating shaft 6 can control the turntable 3 to rotate clockwise or counterclockwise. The turntable 3 rotates a preset angle per unit time interval so that each injection connection system reaches the injection position corresponding to the next injector 4.

[0065] In this embodiment, Figure 1 As shown, a third display screen 25 and a second adjustment button 26 are provided on the outer surface of the turntable 3. The preset unit time interval and the preset angle are adjusted by adjusting the second adjustment button 26. The third display screen 25 is used to display the preset unit time interval and the preset angle.

[0066] In this embodiment, regarding the position distribution of the injection holes 12 on the turntable 3, it should be noted that:

[0067] You can Figure 1 and Figure 6 As shown, the multiple injection holes 12 corresponding to each communication system are distributed in a radially equidistant arrangement, or as shown in FIG. Figure 7 and Figure 8 As shown, the distribution of the multiple injection holes 12 corresponding to each communication system is arranged without any specific rules; this application does not make any specific limitation on the distribution of the multiple injection holes 12 corresponding to each communication system.

[0068] In this embodiment, regarding the position distribution of the injection holes 12 on the turntable 3, it is also necessary to explain that:

[0069] First, the angles between adjacent holes corresponding to different types of injection holes 12 are the same;

[0070] The adjacent hole angle is the angle formed by the line connecting the clockwise or counterclockwise adjacent injection holes 12 of the same type and the center of the turntable 3.

[0071] Second, the distances between the injection holes 12 of the same type and the center of the turntable 3 are the same, and the injection holes 12 of the same type adjacent in the clockwise or counterclockwise direction are the same as each other.

[0072] In this embodiment, the reason why the first and second points above need to be met is that: the position of the injector 4 is pre-set, and during operation, it is generally only necessary to adjust the height of the injector 4 in the vertical direction by lifting the connecting rod 10, and the horizontal direction is often not adjusted; and then, when the turntable 3 rotates the preset angle at a unit time interval, it is only necessary to meet the first and second points above to ensure that: after each rotation of the turntable 3, each injection connection system 13 can achieve position matching with the corresponding injector 4, and the discharge connection system 14 can achieve position matching with the discharge funnel 8.

[0073] In this embodiment, a probiotic packaging table is provided on the surface of the base 1 at a position corresponding to the position directly below the discharge funnel 8 to package the probiotics as finished products.

[0074] Based on the probiotic automated packaging device described in Example 1, by providing a turntable with multiple injection holes, as well as multiple injectors and material boxes, it is possible to achieve simultaneous injection and packaging of multiple types of probiotics; and, according to actual production and packaging conditions, the rotation speed and single rotation angle of the adjustment turntable are adjusted to maximize the injection efficiency of the probiotics; and, by providing a filter screen in the injector, the quality of different probiotic raw materials is controlled, thereby further improving the quality of the probiotic finished product.

[0075] Example 2

[0076] This embodiment provides an operating method for the probiotics automated packaging device described in Example 1, and the method specifically includes:

[0077] As Figure 1Taking the probiotic automated packaging device shown as an example, adjust the distance and position correspondence between the injector 4 and the material box 5, between the injector 4 and the turntable 3, and between the turntable 3 and the discharge funnel 8; pre-set relevant parameters for the injector 4 and the turntable 3; pour granular, crystal ball and powdered probiotics into the two material boxes 5 respectively; start the probiotic automated packaging device, and the three material boxes 5 inject the corresponding probiotic raw materials into the corresponding injectors 4. After the injector 4 pre-treats the probiotic raw materials inside, the probiotic raw materials are injected into the turntable 3. After the three different probiotic raw materials are mixed on the turntable 3, they fall into the preset position through the discharge funnel 8 and are packaged.

[0078] Based on the operating method of the probiotic automated packaging device described in Example 2, by providing a turntable with multiple injection holes, as well as multiple injectors and material boxes, it is possible to achieve simultaneous injection and packaging of multiple types of probiotics; and, according to the actual production and packaging conditions, the rotation speed and single rotation angle of the adjustment turntable are adjusted to maximize the injection efficiency of the probiotics; and, by providing a filter screen in the injector, the quality of different probiotic raw materials is controlled, thereby further improving the quality of the probiotic finished product.

[0079] It should be noted that in the claims, any reference signs placed between parentheses should not be construed as limiting the claims. The word "comprising" does not exclude the presence of components or steps not listed in a claim. The word "a" or "an" preceding a component does not exclude the presence of a plurality of such components. The use of the words first, second, third, etc., is merely for convenience and does not denote any order. These words should be understood as part of the component name.

[0080] In addition, it should be noted that, in the description of this specification, the description of the terms "one embodiment", "some embodiments", "embodiment", "example", "specific example" or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and the features of different embodiments or examples, unless they are contradictory.

[0081] Although the preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments after learning the basic creative concept. Therefore, the claims should be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the present invention.

[0082] Obviously, those skilled in the art may make various modifications and variations to the present invention without departing from the spirit and scope of the present invention. Thus, if such modifications and variations fall within the scope of the claims and their equivalents, the present invention shall also include such modifications and variations.

Claims

1. A probiotics automated packaging device, characterized in that: The packaging device comprises a base (1), a column (2), a turntable (3), a material injector (4), and a material storage box (5); The column (2) is vertically fixed to the surface of the base (1), and the column (2) is connected to the central axis of the turntable (3) through a rotating shaft (6); the column (2) is connected to the discharge funnel (8) through a first fixed connecting rod (7), and is connected to multiple injectors (4) through a second fixed connecting rod (9) and a lifting connecting rod (10); each injector (4) is connected to a material storage box (5) through a telescopic connecting rod (11); The turntable (3) is a cylindrical structure, and is provided with at least three types of injection holes (12) perpendicular to the surface of the turntable (3); different types of injection holes (12) are embedded in the turntable (3) at different vertical depths, and the number of types of injection holes (12) is the same as the number of injection devices (4) provided, and different types of injection holes (12) are adapted to corresponding injection devices (4); The number of injection holes (12) of different types is the same, and is no less than 2; the angles between adjacent holes of different types are the same; the distances between injection holes (12) of the same type and the center of the turntable (3) are the same, and the spacing between adjacent injection holes (12) of the same type in the clockwise or counterclockwise direction is the same; The injection hole (12) is connected with all other types of single injection holes (12) that are closest to it to form a connected system; in the same connected system, for the near-center injection hole corresponding to the deepest injection hole, the closer it is to the center of the turntable (3), the shallower its depth is; for the far-center injection hole corresponding to the deepest injection hole, the farther it is from the center of the turntable (3), the shallower its depth is; The communication system comprises: an injection communication system (13) and a discharge communication system (14), wherein the number of the injection communication system (13) is one or more, and the number of the discharge communication system (14) is one; and the deepest injection hole passes through the turntable (3) and is provided with a first discharge port (15) with a controllable switch; Each injection communication system is compatible with one or more injectors (4), and the first discharge port (15) corresponding to the discharge communication system corresponds to the center position of the discharge funnel (8) arranged below.

2. The probiotics automated packaging device according to claim 1, characterized in that: The adjacent hole angle is the angle formed by the line connecting the clockwise or counterclockwise adjacent injection holes (12) of the same type and the center of the turntable (3).

3. The probiotics automated packaging device according to claim 1, characterized in that: The near-center injection hole corresponding to the deepest injection hole is: in the same connected system, the injection hole that is closer to the center of the turntable (3) in a straight line relative to the deepest injection hole; The far-center injection hole corresponding to the deepest injection hole is: in the same connected system, the injection hole that is farther away from the center of the turntable (3) in a straight line than the deepest injection hole.

4. The probiotics automated packaging device according to claim 1, characterized in that: The material holding box (5) is a hollow rectangular box-shaped structure, the lower end surface of the material holding box (5) is provided with a second discharge port (16) with a controllable switch, and the outer surface is provided with a first display screen (17); The injector (4) is a composite structure of a hollow cylinder connected to an inverted truncated cone. The upper end surface of the injector (4) is provided with an inlet (18), and the outer surface is provided with a second display screen (19) and a first adjustment button (20); the interior of the injector (4) is provided with a filter screen (21), a holding pool (22) and an opening and closing plate (23) from top to bottom; and the lower end surface of the injector (4) is provided with a third discharge port (24) with a control switch.

5. The probiotics automated packaging device according to claim 4, characterized in that: The number of the material holding boxes (5) and the injectors (4) is the same as the number of the types of the injection holes (12); The second discharge port (16) of the material holding box (5) is adapted to the position of the corresponding feed port (18) of the injector (4), and the distance between the second discharge port (16) and the feed port (18) can be adjusted by adjusting the telescopic connecting rod (11).

6. The probiotics automated packaging device according to claim 4, characterized in that: The first display screen (17) is used to display the remaining weight of the probiotics contained therein; the second display screen (19) is used to display the preset single probiotic delivery weight, and the display value of the second display screen (19) is adjusted by the first adjustment button (20); The filter (21) is a detachable, replaceable and washable structure, and is used to screen the probiotic raw materials for size compliance; the holding tank (22) is a detachable bowl-shaped structure with a smooth inner wall, and a controllable switch is provided at the bottom; The opening and closing plate (23) is a circular plate structure composed of two semicircles and is provided with a weight sensor; when the weight of the probiotic raw material contained on the opening and closing plate (23) in the fully closed state reaches a preset value displayed on the second display screen (19), the opening and closing plate (23) is folded downward to open.

7. The probiotics automated packaging device according to claim 4, characterized in that: The third discharge port (24) of the injector (4) is adapted to the position of the corresponding injection hole (12) of the turntable (3), and the distance between the third discharge port (24) and the injection hole (12) is adjusted by adjusting the lifting connecting rod (10).

8. The probiotics automated packaging device according to claim 1, characterized in that: The rotating shaft (6) can control the turntable (3) to rotate clockwise or counterclockwise, and the turntable (3) rotates by a preset angle per unit time interval; The outer surface of the turntable (3) is provided with a third display screen (25) and a second adjustment button (26). The preset unit time interval and the preset angle are adjusted by adjusting the second adjustment button (26). The third display screen (25) is used to display the preset unit time interval and the preset angle.

9. The probiotics automated packaging device according to claim 1, characterized in that: A probiotics packaging platform is provided on the surface of the base (1) at a position corresponding to the position directly below the discharge funnel (8) for packaging the probiotics as finished products.

10. An automated probiotic packaging device according to any one of claims 1 to 9, characterized in that: The base (1) is embedded with a controller and a power supply device, and the controller is connected to the mobile terminal via a network or Bluetooth; and the base (1) is also provided with an external power plug (27); All components in claims 1-9 are remotely controlled via a mobile terminal.