Full-automatic material supplementing and counting mechanism and multi-material tablet packaging machine
The fully automatic feeding and counting mechanism solves the problems of existing tablet packaging machines being unable to handle multiple materials and having inaccurate counting, realizing automatic feeding and counting of multiple materials, and improving packaging efficiency and product stability.
Patent Information
- Application Number
- CN202520545018.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2035-03-25
AI Technical Summary
Existing tablet packaging machines cannot process multiple materials simultaneously, and are prone to slow packaging progress and poor continuity due to manual delays in material replenishment, while material stacking leads to inaccurate counting.
The design includes a fully automatic feeding and counting mechanism, comprising a hopper, a vibratory feeding component, a vibratory feeder, a vibratory discharge component, a counter, and a loading container. The mechanism uses a photoelectric sensor to detect the amount of material for automatic feeding, and the vibratory feeder and discharge component ensure accurate material counting. A receiving hopper is also included to prevent material from falling into the wrong container.
It enables automatic replenishment and counting of various materials, improving packaging efficiency and yield, solving the problem of inaccurate counting caused by material stacking, and ensuring product stability and consistency.
Smart Images

Figure CN223791888U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of packaging equipment technology, and in particular to a fully automatic feeding and counting mechanism and a multi-material tablet packaging machine. Background Technology
[0002] Tablet packaging machines are primarily used for packaging round and granular items in pharmaceutical, chemical, and industrial products, such as sugar-coated tablets, uncoated tablets, steel balls, and capsules. They can continuously and automatically complete the entire packaging process, including bag making, metering, filling, sealing, cutting, and counting. The feeding and counting mechanisms within the tablet packaging machine are used for replenishing materials and counting. Through highly flexible configuration and accurate metering capabilities, they adapt to the increasingly personalized packaging needs of tablets and capsules in the market.
[0003] Existing tablet packaging machines typically use a vibration system to disperse the material, then use photoelectric sensors to count the material, and finally automatically dispense the material into pre-set bags or containers. However, existing tablet packaging machines can generally only hold one type of material at a time, making them unsuitable for applications requiring multiple materials to be packaged in the same container. Furthermore, manual replenishment is necessary, which can lead to slow packaging progress and poor continuity due to human error or busy schedules, resulting in low efficiency. Moreover, existing tablet packaging machines are prone to material stacking and overlapping due to vibration, leading to inaccurate counting.
[0004] Therefore, there is an urgent need to design a fully automatic feeding and counting mechanism and a multi-material tablet packaging machine that can simultaneously and automatically feed and count multiple materials. This is not only suitable for situations where multiple materials need to be packaged in the same container, but also effectively avoids the problems of slow packaging progress and poor continuity caused by manual feeding delays, thus significantly improving versatility, packaging efficiency, and yield. Simultaneously, it effectively solves the problem of material stacking, further improving counting accuracy and ensuring product stability and consistency. Utility Model Content
[0005] To overcome the problems existing in related technologies, this application provides a fully automatic feeding and counting mechanism and a multi-material tablet packaging machine. This fully automatic feeding and counting mechanism and multi-material tablet packaging machine can simultaneously and automatically feed and count multiple materials. It is not only suitable for situations requiring multiple materials to be packaged in the same container, but also effectively avoids the problems of slow packaging progress and poor continuity caused by manual delayed feeding, effectively improving versatility, packaging efficiency, and yield. At the same time, it effectively solves the problem of material stacking, further improving the accuracy of counting and ensuring product stability and consistency.
[0006] The first aspect of this application is to provide a fully automatic feeding and counting mechanism, including a hopper, a vibrating feeding assembly, a vibrating plate, a vibrating discharging assembly, a counter, and a loading container; the hopper is disposed at the front end of the vibrating feeding assembly and is located directly above the vibrating feeding assembly; the vibrating feeding assembly is inclinedly disposed between the hopper and the vibrating plate for conveying material in the hopper to the vibrating plate; the vibrating discharging assembly is disposed at the end side of the vibrating plate and is connected to the vibrating plate; the loading container is disposed at the rear side of the vibrating discharging assembly and is located below the vibrating discharging assembly; the counter is disposed between the vibrating discharging assembly and the loading container.
[0007] In a preferred embodiment of this application, the vibration feeding assembly includes a feeding vibrator and a feeding trough; the feeding trough includes a first feeding plate, a second feeding plate, a baffle, and an opening; the first end of the first feeding plate is located directly below the hopper, and the tail end is connected to the second feeding plate; the inclination angle of the second feeding plate is greater than the inclination angle of the first feeding plate; the baffle is vertically arranged around the periphery of the first feeding plate and the second feeding plate; the opening is located at the tail end of the second feeding plate; the feeding vibrator is located below the first feeding plate and is connected to the first feeding plate.
[0008] In a preferred embodiment of this application, the vibratory feeder includes a disc and a channel; the disc is disposed below the tail end of the vibratory feeding assembly; the channel extends spirally upward along the circumference of the disc until the outlet of the channel is connected to the vibratory discharge assembly.
[0009] In a preferred embodiment of this application, the vibratory discharge assembly includes a discharge vibrator and a discharge trough; the discharge trough is inclined downwards and disposed beside the vibratory plate and is connected to the vibratory plate; the discharge vibrator is disposed below the discharge trough and is connected to the discharge trough.
[0010] In a preferred embodiment of this application, a photoelectric sensor is also included; the photoelectric sensor is mounted on the side of the feeding trough via a mounting bracket and located above the vibrating plate, for detecting the material in the feeding trough.
[0011] In a preferred embodiment of this application, a receiving hopper is further included; the receiving hopper is vertically disposed between the vibrating discharge assembly and the loading container, and the top end of the receiving hopper is lower than the tail end of the vibrating discharge assembly, while the bottom end is higher than the top end of the loading container.
[0012] In a preferred embodiment of this application, the tilt angle of the first feeding plate is in the range of 0-10 degrees, and the tilt angle of the second feeding plate is in the range of 10-20 degrees.
[0013] A second aspect of this application is to provide a multi-material tablet packaging machine, including the aforementioned fully automatic feeding and counting mechanism.
[0014] In a preferred embodiment of this application, a material conveying line is further included; several fully automatic feeding and counting mechanisms are provided; several fully automatic feeding and counting mechanisms are symmetrically arranged on both sides of the material conveying line; and the loading container is provided on the material conveying line.
[0015] The technical solution provided in this application has the following beneficial effects:
[0016] (1) The fully automatic feeding and counting mechanism of this application includes a hopper, a vibratory feeding component, a vibratory plate, a vibratory discharge component, a counter, a loading container, and a receiving hopper. By setting the width of the channel slightly larger than the widest part of the material, and cooperating with the flat vibration of the vibratory plate, the stacked material is dispersed, so that the material can only move one by one in the channel before the counting operation is performed, thereby effectively solving the problem of inaccurate counting caused by material stacking and ensuring the stability and consistency of the product; by setting a photoelectric sensor to detect the material on the vibratory plate, and cooperating with the vibratory feeding mechanism, fully automatic and timely feeding operation can be realized, effectively avoiding the problem of slow packaging progress and poor continuity caused by manual delayed feeding, and effectively improving packaging efficiency and yield; by setting a receiving hopper, the material is effectively ensured to fall into the loading container accurately; by setting the tilt angle of the first feeding plate to 0-10 degrees, the material can be prevented from accumulating too much on the first feeding plate; by setting the tilt angle of the second feeding plate to be greater than the tilt angle of the first feeding plate, the material can be moved faster on the second feeding plate and the material can fall from the outlet.
[0017] (2) The multi-material tablet packaging machine provided in this application includes a material conveying line and several fully automatic feeding and counting mechanisms. By symmetrically arranging several fully automatic feeding and counting mechanisms on both sides of the material conveying line, it is possible to automatically feed and count multiple materials at the same time, which is effective for situations where multiple materials need to be packaged in the same packaging container, and greatly improves versatility.
[0018] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and do not limit this application. Attached Figure Description
[0019] The above and other objects, features and advantages of this application will become more apparent from the more detailed description of exemplary embodiments thereof in conjunction with the accompanying drawings, wherein the same reference numerals generally represent the same components in the exemplary embodiments thereof.
[0020] Figure 1This is a schematic diagram of the structure of the fully automatic feeding and counting mechanism shown in the embodiments of this application;
[0021] Figure 2 This is a partial structural schematic diagram of the fully automatic feeding and counting mechanism shown in the embodiments of this application;
[0022] Figure 3 This is a schematic diagram of the structure of a multi-material tablet packaging machine shown in an embodiment of this application;
[0023] Figure 4 This is a schematic diagram of the structure of a multi-material tablet packaging machine shown in an embodiment of this application.
[0024] Explanation of reference numerals in the attached figures:
[0025] 1. Hopper; 11. Top cover; 12. Material gate handle; 13. Insert block; 14. Mounting plate; 2. Vibration feeding assembly; 21. Feeding vibrator; 22. Discharge chute; 221. First discharge plate; 222. Second discharge plate; 223. Baffle; 224. Opening; 3. Vibration plate; 31. Disc; 32. Channel; 4. Vibration discharge assembly; 41. Discharge vibrator; 42. Discharge chute; 5. Counter; 6. Loading container; 7. Photoelectric sensor; 8. Receiving hopper; 9. Material conveying line. Detailed Implementation
[0026] Preferred embodiments of the present application will now be described in more detail with reference to the accompanying drawings. While preferred embodiments of the present application are shown in the drawings, it should be understood that the present application may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided to make the present application more thorough and complete, and to fully convey the scope of the present application to those skilled in the art.
[0027] The terminology used in this application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The singular forms “a,” “the,” and “the” used in this application and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any or all possible combinations of one or more of the associated listed items.
[0028] It should be understood that although the terms "first," "second," "third," etc., may be used in this application to describe various information, this information should not be limited to these terms. These terms are only used to distinguish information of the same type from one another. For example, without departing from the scope of this application, first information may also be referred to as second information, and similarly, second information may also be referred to as first information. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0029] Existing tablet packaging machines generally require manual replenishment, which can lead to slow packaging progress and poor continuity due to human negligence or busy schedules, resulting in low efficiency. Furthermore, existing tablet packaging machines are prone to material stacking and overlapping due to vibration and other factors, leading to inaccurate counting.
[0030] To address the aforementioned issues, this application provides a fully automated feeding and counting mechanism. This mechanism effectively avoids slow packaging progress and poor continuity caused by manual feeding delays, thus significantly improving versatility, packaging efficiency, and yield. Simultaneously, it effectively solves the problem of material stacking, further enhancing counting accuracy and ensuring product stability and consistency.
[0031] The technical solutions of the embodiments of this application are described in detail below with reference to the accompanying drawings.
[0032] Example 1
[0033] Please see Figures 1-4 The fully automatic feeding and counting mechanism of this application includes a hopper 1, a vibrating feeding component 2, a vibrating plate 3, a vibrating discharging component 4, a counter 5, and a loading container 6. The hopper 1 is located at the head end of the vibrating feeding component 2 and directly above it, for storing materials. The vibrating feeding component 2 is inclined between the hopper 1 and the vibrating plate 3, for conveying materials from the hopper 1 to the vibrating plate 3. The vibrating discharging component 4 is located at the end of the vibrating plate 3 and communicates with it, for conveying materials from the vibrating plate 3. The loading container 6 is located at the tail end of the vibrating discharging component 4 and below it, for loading the materials conveyed by the vibrating discharging component 4, facilitating subsequent packaging. The counter 5 is located between the vibrating discharging component 4 and the loading container 6 to count the amount of material falling into the loading container 6, thereby ensuring that the quantity of items in each package strictly conforms to a set value.
[0034] Specifically, the hopper 1 includes a hopper, a top cover 11, a material gate handle 12, and an insert block 13. The hopper is fixed above the vibrating feeding assembly 2 by a mounting plate 14 and is generally inverted conical in shape. The top cover 11 is located at the top of the hopper and is adapted to fit the hopper, so that the top cover 11 can cover the top of the hopper to prevent debris from falling into the hopper. For easy material addition, the top cover 11 is also provided with a handle. The material gate handle 12 is located on the mounting plate 14 and is connected to the insert block 13. The insert block 13 is inserted into the bottom of the hopper and is used to adjust the size of the hopper's outlet to accommodate different types and sizes of materials or to control the material feeding speed. Furthermore, to avoid problems such as poor continuity caused by untimely manual replenishment, the fully automatic replenishment and counting mechanism also includes a photoelectric sensor 7. The photoelectric sensor 7 is mounted on the side of the feeding trough 22 via a mounting bracket and is located above the vibratory feeder 3, for detecting the material in the vibratory feeder 3. When the material in the vibratory feeder 3 is detected to be less than a preset value, the vibratory replenishment component 2 is activated for automatic replenishment.
[0035] The vibratory feeding assembly 2 includes a feeding vibrator 21 and a feeding trough 22. The feeding trough 22 is located below the hopper 1 and is connected to the hopper 1 via a connecting block. Specifically, the feeding trough 22 includes a first feeding plate 221, a second feeding plate 222, a baffle 223, and an opening 224. The first end of the first feeding plate 221 is located directly below the hopper 1, and the second feeding plate 222 is located at the tail end of the first feeding plate 221 and connected to it. The baffle 223 is vertically arranged around the first feeding plate 221 and the second feeding plate 222, forming a groove with them to prevent material from falling from the first feeding plate 221 and the second feeding plate 222 into non-target areas. The opening 224 is located at the tail end of the second feeding plate 222, so that when the material moving cabinet is placed on the second feeding plate 222, it can fall from the opening 224 onto the vibrating plate 3 below.
[0036] Furthermore, in order to better move the material, the tilt angle of the second feeding plate 222 is greater than the tilt angle of the first feeding plate 221; for example, the tilt angle of the first feeding plate 221 is in the range of 0-10 degrees, and the tilt angle of the second feeding plate 222 is in the range of 10-20 degrees; by setting the tilt angle of the first feeding plate 221 to 0-10 degrees, excessive accumulation of material on the first feeding plate 221 can be prevented; by setting the tilt angle of the second feeding plate 222 to be greater than the tilt angle of the first feeding plate 221, the moving speed of the material on the second feeding plate 222 can be accelerated, and the material can easily fall from the outlet.
[0037] The feeding vibrator 21 is located below and connected to the first feeding plate 221. When the photoelectric sensor 7 detects that the amount of material in the vibrating plate 3 is less than a preset value, the feeding vibrator 21 is turned on, causing the hopper 1 and the feeding trough 22 to vibrate synchronously, so that the material in the hopper 1 falls onto the vibrating plate 3 to complete the automatic feeding function; when the photoelectric sensor 7 detects that the amount of material in the vibrating plate 3 exceeds the preset value, the feeding vibrator 21 is turned off to stop feeding and save energy.
[0038] The vibratory feeder 3 includes a disc 31 and a channel 32. The disc 31 is located below the tail end of the vibratory feeding assembly 2, facilitating the material on the vibratory feeding assembly 2 to fall onto the disc 31. The channel 32 extends spirally upward along the circumference of the disc 31 until its outlet connects with the vibratory discharge assembly 4. Specifically, the channel 32 includes an inlet and an outlet, with the outlet being higher than the inlet. The inlet is located on the disc 31. Furthermore, to facilitate accurate counting later, the width of the channel 32 is slightly larger than the widest point of the material, allowing the material to move one piece at a time within the channel 32. When the material falls onto the disc 31, the vibratory feeder 3 continuously vibrates, causing the material to move towards the edge of the disc 31 until it enters the inlet. Then, it rises continuously along the channel 32 until it reaches the vibratory discharge assembly 4 from the outlet.
[0039] The vibrating discharge assembly 4 includes a discharge vibrator 41 and a discharge trough 42. The discharge trough 42 is inclined downwards and disposed beside the vibrating plate 3, and is connected to the vibrating plate 3. The discharge vibrator 41 is disposed below the discharge trough 42 and is connected to the discharge trough 42. Specifically, the discharge trough 42 has a V-shaped cross-section and is inclined downwards at the outlet of the channel 32, and is connected to the outlet, so that the material exiting the outlet can move downwards along the discharge trough 42. When the material moves into the discharge trough 42, the regular vibration of the discharge vibrator 41 causes the material to move rhythmically downwards and fall into the loading container 6 below, facilitating subsequent packaging operations.
[0040] Furthermore, to ensure that the material falls accurately into the loading container 6, the fully automatic feeding and counting mechanism also includes a receiving hopper 8. The receiving hopper 8 is vertically arranged between the vibrating discharge assembly 4 and the loading container 6, with its top end lower than the tail end of the vibrating discharge assembly 4 and its bottom end higher than the top end of the loading container 6. Specifically, the cross-sectional shape of the receiving hopper 8 is generally an inverted trapezoid. The lower end of the discharge trough 42 is located directly above the receiving hopper 8, and the bottom end of the receiving hopper 8 is located directly above the loading container 6, so that the material in the discharge trough 42 can fall accurately into the loading container 6 along the direction of the receiving hopper 8.
[0041] Working principle:
[0042] When the photoelectric sensor detects that the material on the vibrating plate 3 is less than a preset value, the feeding vibrator 21 is activated, causing the hopper 1 and the discharge chute 22 to vibrate synchronously. This causes the material in the hopper 1 to fall onto the vibrating plate 3. Then, with the horizontal vibration of the vibrating plate 3, the material moves one by one towards the edge of the disc 31 until it enters the inlet. Then, it rises continuously along the channel 32 until it moves from the outlet into the discharge chute 42. With the regular vibration of the discharge vibrator 41, the material moves rhythmically downward and falls from the outlet into the receiving hopper 8. Then, under the action of gravity, it falls into the loading container 6 below along the direction of the hopper. During this process, the counter 5 counts the material, thereby completing the fully automatic feeding and counting operation.
[0043] In this first embodiment, the fully automatic feeding and counting mechanism of this application includes a hopper, a vibratory feeding assembly, a vibratory plate, a vibratory discharge assembly, a counter, a loading container, and a receiving hopper. By setting the channel width slightly larger than the widest point of the material, and coordinating with the flat vibration of the vibrating plate, the stacked material is dispersed, allowing the material to move one by one within the channel before counting. This effectively solves the problem of inaccurate counting caused by material stacking, ensuring product stability and consistency. By using photoelectric sensors to detect the material on the vibrating plate, and coordinating with the vibration replenishment mechanism, fully automatic and timely replenishment is achieved, effectively avoiding slow packaging progress and poor continuity caused by manual delays in replenishment, thus significantly improving packaging efficiency and yield. The inclusion of a receiving hopper ensures that the material falls accurately into the loading container, preventing counting errors. Setting the tilt angle of the first feeding plate to 0-10 degrees prevents excessive material accumulation on it. Setting the tilt angle of the second feeding plate greater than that of the first feeding plate accelerates the movement of the material on the second feeding plate and facilitates its fall from the outlet.
[0044] Example 2
[0045] Existing tablet packaging machines typically only allow one type of material to be placed at a time, making them unsuitable for applications requiring multiple materials to be packaged in the same container. To address this issue, this application proposes a solution. Please refer to [link / reference]. Figures 1-4 Specifically:
[0046] Based on the structure of Embodiment 1 above, Embodiment 2 of this application also provides a multi-material tablet packaging machine, including the aforementioned fully automatic feeding and counting mechanism. Specifically, several fully automatic feeding and counting mechanisms are provided; the multi-material tablet packaging machine also includes a material conveying line 9, with several fully automatic feeding and counting mechanisms symmetrically arranged on both sides of the material conveying line 9; for example, eight fully automatic feeding and counting mechanisms are provided, symmetrically arranged on both sides of the material conveying line 9, that is, four are arranged on one side of the material conveying line 9, and the loading container 6 is arranged on the material conveying line 9. For example, the loading container 6 can be one in a group or two in a group, and arranged sequentially along the conveying direction of the material conveying line 9. When one loading container 6 is a group, the materials in two oppositely arranged automatic feeding and counting mechanisms can fall into the same loading container 6. When two loading containers 6 are a group, the materials in four automatic feeding and counting mechanisms in the same row can fall into the same loading container 6, thereby effectively adapting to situations where multiple materials need to be packaged in the same packaging container.
[0047] In this embodiment, the multi-material tablet packaging machine provided includes a material conveying line and several fully automatic feeding and counting mechanisms. By symmetrically arranging several fully automatic feeding and counting mechanisms on both sides of the material conveying line, it can simultaneously automatically feed and count multiple materials, effectively adapting to situations where multiple materials need to be packaged in the same packaging container, greatly improving versatility.
[0048] In the description of this application, it should be understood that the orientation or positional relationship indicated by directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" is usually based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this application and simplifying the description. Unless otherwise stated, these directional terms 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 on the scope of protection of this application; the directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.
[0049] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.
Claims
1. A fully automated feeding and counting mechanism, characterized in that, The full-automatic feeding and counting mechanism comprises a hopper (1), a vibration feeding assembly (2), a vibration disc (3), a vibration discharging assembly (4), a counter (5) and a loading container (6). The hopper (1) is arranged at the front end of the vibration feeding assembly (2) and directly above the vibration feeding assembly (2). The vibration feeding assembly (2) is arranged obliquely between the hopper (1) and the vibration disc (3) and is used for conveying the material in the hopper (1) to the vibration disc (3). The vibration discharging assembly (4) is arranged at the side of the vibration disc (3) and is in communication with the vibration disc (3). The loading container (6) is arranged at the rear side of the vibration discharging assembly (4) and below the vibration discharging assembly (4). The counter (5) is arranged between the vibration discharging assembly (4) and the loading container (6).
2. The full-automatic feeding and counting mechanism according to claim 1, wherein the vibration feeding assembly (2) comprises a feeding vibrator (21) and a discharging chute (22). The discharging chute (22) comprises a first discharging plate (221), a second discharging plate (222), a baffle (223) and an opening (224). The front end of the first discharging plate (221) is arranged directly below the hopper (1) and the rear end is connected with the second discharging plate (222). The inclination angle of the second discharging plate (222) is greater than that of the first discharging plate (221). The baffle (223) is arranged vertically around the first discharging plate (221) and the second discharging plate (222). The opening (224) is arranged at the rear end of the second discharging plate (222). The feeding vibrator (21) is arranged below the first discharging plate (221) and is connected with the first discharging plate (221).
3. The full-automatic feeding and counting mechanism according to claim 1, wherein the vibration disc (3) comprises a disc (31) and a channel (32). The disc (31) is arranged below the rear end of the vibration feeding assembly (2). The channel (32) extends upward in a spiral shape along the circumferential direction of the disc (31) until the outlet of the channel (32) is in communication with the vibration discharging assembly (4).
4. The full-automatic feeding and counting mechanism according to claim 1, wherein the vibration discharging assembly (4) comprises a discharging vibrator (41) and a discharging chute (42). The discharging chute (42) is arranged obliquely downward beside the vibration disc (3) and is in communication with the vibration disc (3). The discharging vibrator (41) is arranged below the discharging chute (42) and is connected with the discharging chute (42). The photoelectric sensor (7) is arranged beside the discharging chute (22) and above the vibration disc (3) through a mounting frame and is used for detecting the material in the discharging chute (22). The receiving hopper (8) is arranged below the vibration discharging assembly (4). 5. The fully automated refill and counting mechanism of claim 2, wherein, 6. The fully automated replenishment and counting mechanism of claim 1, wherein, The receiving hopper (8) is vertically arranged between the vibrating discharge assembly (4) and the loading container (6), and the top end of the receiving hopper (8) is lower than the tail end of the vibrating discharge assembly (4), and the bottom end is higher than the top end of the loading container (6).
7. The full-automatic material supplementing and counting mechanism according to claim 2, wherein, The inclination angle of the first blanking plate (221) ranges from 0 to 10 degrees, and the inclination angle of the second blanking plate (222) ranges from 10 to 20 degrees.
8. A multi-material tablet packaging machine characterized by, The full-automatic material supplementing and counting mechanism according to any one of claims 1-7.
9. The multi-material tablet packaging machine of claim 8, wherein, Further comprising a material conveying line (9); The full-automatic material supplementing and counting mechanism is provided with a plurality of; The plurality of full-automatic material supplementing and counting mechanisms are symmetrically arranged on both sides of the material conveying line (9); The loading container (6) is arranged on the material conveying line (9).