Oscillating dispensing device for pharmaceutical equipment

By designing an oscillating feeding device, the problem of low efficiency of manual feeding during the slicing of Chinese herbal medicines was solved, realizing automated feeding and improving the quality of medicinal materials, and adapting to the feeding needs of various sizes of medicinal materials.

CN118220861BActive Publication Date: 2026-05-29GUANGDONG OCEAN UNIVERSITY

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
GUANGDONG OCEAN UNIVERSITY
Filing Date
2024-05-06
Publication Date
2026-05-29

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    Figure CN118220861B_ABST
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Abstract

The application relates to the pharmaceutical technical field, in particular to an oscillation type discharging device of a pharmaceutical equipment, which comprises a feeding assembly and a discharging assembly, the feeding assembly and the discharging assembly are communicatively arranged, the feeding assembly is used for interval feeding towards the discharging assembly, the discharging assembly comprises a discharging box and a guide barrel, the discharging box is obliquely arranged towards the guide barrel, the discharging box can vibrate, a discharging cavity is arranged at the lower end of the discharging box close to the guide barrel, the discharging cavity and the guide barrel are communicatively arranged, the guide barrel is obliquely arranged on one side of the discharging box, and one processing assembly is arranged at the end of the guide barrel far from the discharging box, the processing assembly is used for subsequent processing of the medicine. Through arrangement of the discharging box, the discharging box automatically arranges the received medicine and sequentially removes the medicine from the discharging cavity, subsequent processing work can be conveniently carried out, manual adjustment is not needed, and therefore the work efficiency is improved.
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Description

Technical Field

[0001] This invention relates to the field of pharmaceutical technology, and more specifically to an oscillating feeding device for pharmaceutical equipment. Background Technology

[0002] In the production of Chinese herbal medicines, the herbs are usually processed after initial treatment such as picking, sun-drying, and air-drying, and then further processed. Especially for some long and thin herbs, which are inconvenient to transport and use, they often need to be sliced ​​and other subsequent processes before packaging and use. For example, common Chinese herbal medicines such as Solomon's Seal and Isatis Root generally need to be sliced.

[0003] Chinese Patent Publication No. CN205521629U discloses an automatic slicing machine for Solomon's Seal, which includes a vibrating feeding device, a feeding mechanism, and a cutting tool mechanism. The vibrating feeding device is installed at one end of the frame, and the feeding mechanism is installed at an angle on the top of the frame. The cutting tool mechanism is installed on the frame below the feeding mechanism and is driven by a power mechanism at the other end of the frame. A certain distance is reserved between the cutting tool mechanism and the feeding mechanism to form a feeding channel.

[0004] The aforementioned patent requires that each piece of Solomon's Seal bean bean bean bean be placed on a vibrating feeding device during the slicing process. This necessitates workers to continuously add material, which not only reduces work efficiency but also increases labor costs. Therefore, a device capable of continuously feeding Solomon's Seal bean bean bean for processing is needed. Summary of the Invention

[0005] To address the aforementioned issues, a vibrating feeding device for pharmaceutical equipment is provided. By setting up a feeding box, the receiving pharmaceutical materials are automatically sorted and sequentially removed from the feeding chamber, facilitating subsequent processing without the need for manual adjustment, thereby improving work efficiency.

[0006] To address the problems of existing technologies, this invention provides a vibrating feeding device for pharmaceutical equipment, comprising a feeding assembly and a feeding assembly, which are connected. The feeding assembly is used to feed materials to the feeding assembly at intervals. The feeding assembly includes a feeding box and a guide barrel. The feeding box is inclined toward the guide barrel and can vibrate. A feeding chamber is provided at the lower end of the feeding box near the guide barrel, and the feeding chamber is connected to the guide barrel. The guide barrel is inclined on one side of the feeding box. A processing assembly is provided at the end of the guide barrel away from the feeding box for subsequent processing of the pharmaceutical materials.

[0007] Preferably, a pushing component is provided at the lower end of the feeding chamber. The pushing component includes a pushing motor and a pushing wheel. The pushing motor is located at the lower end of the feeding chamber, and the pushing wheel is located at the output end of the pushing motor. A pushing layer is arranged around the outer side of the pushing wheel. A through groove is provided at the lower end of the feeding chamber, and the pushing wheel is rotatably located in the through groove. The pushing layer can come into contact with the medicine.

[0008] Preferably, a discharge port is provided at the lower end of the discharge box near the guide barrel, and an installation cavity is provided at the lower end of the discharge port. An installation block is provided inside the installation cavity. The installation cavity is opened on the side facing the guide barrel. The discharge cavity and the pushing component are both provided on the installation block.

[0009] Preferably, a second mounting bracket is provided below the guide barrel, a second buffer spring is provided between the second mounting bracket and the guide barrel, and a vibrating part is also provided on the guide barrel, which drives the guide barrel to vibrate.

[0010] Preferably, the feeding assembly includes a conveyor belt and a feeding bin. The output end of the conveyor belt is located above the feeding bin, and the feeding bin is rotatably located above the input end of the conveyor belt. The lower half of the feeding bin near the feeding bin has a discharge port, and the upper half of the feeding bin away from the discharge port has a feed port. A detection unit is also provided at the upper part of the feeding bin's interior for detecting the quantity of medicine in the feeding bin.

[0011] Preferably, rotating rods are provided on both sides of the feeding bin perpendicular to the direction of conveyor belt movement, and third mounting frames are provided on both sides of the conveyor belt. The rotating rods are installed through the third mounting frames. A rotating disk is provided at the end of one of the rotating rods away from the feeding bin. A first connecting rod is rotatably installed near the outer side of the rotating disk. A crank-connecting rod mechanism is provided at the end of the first connecting rod away from the rotating disk.

[0012] Preferably, baffles are provided on both sides of the conveyor belt along the direction of movement, and the baffles are used to restrict the movement of the medicine.

[0013] Preferably, the conveyor belt is also provided with a leveling component, which includes several leveling plates. The leveling plates are arranged sequentially from high to low between two baffles along the direction of movement of the conveyor belt. The lower end face of the higher leveling plate and the upper end face of the lower leveling plate are flush with each other in two adjacent leveling plates. A buffer pad is also provided at the end of the leveling plate near the discharge bin.

[0014] Preferably, the feeding assembly further includes a cleaning box, which is disposed between the conveyor belt and the unloading box. A receiving plate is provided at the upper end of the cleaning box near the conveyor belt, and the receiving plate abuts against the output end of the conveyor belt. The cleaning box is arranged vertically, and several filter plates are arranged at intervals from top to bottom in the cleaning box. A discharge gap is provided between the lowest end of the filter plate and the inner wall of the cleaning box. The discharge gaps between adjacent filter plates are respectively located near the two sides of the cleaning box.

[0015] Preferably, the cleaning box is also provided with an impurity plate, which is inclinedly set at the lower end of the filter plate, forming a V-shape between the impurity plate and the filter plate. The cleaning box is provided with a removal port near the lowest end of the impurity plate, and the impurity plate and the removal port are connected. The removal port is connected to the outside. A collection trough is provided at the lower end of the removal port near the outside.

[0016] The advantages of this invention compared to the prior art are:

[0017] 1. This invention sets up a feeding component and a discharging component. The feeding component feeds the medicine to the discharging component at intervals. The discharging component includes a discharging box. The discharging box automatically sorts the received medicine and moves it out of the discharging chamber in sequence. This allows the long strips of medicine to be discharged in an orderly manner, which facilitates subsequent processing and improves work efficiency.

[0018] 2. The present invention provides a feeding port and an installation cavity at the lower end of the feeding box. The installation block is detachably installed on the installation cavity by bolts. The feeding cavity and the pushing component are both set on the installation block. In this way, the feeding size that the feeding box can handle can be changed by changing the installation block, thereby improving the application range of the feeding device.

[0019] 3. This invention features a feeding hopper and a conveyor belt. The feeding hopper rotates continuously, and each rotation pours a portion of the medicine onto the conveyor belt, which then transports the medicine into the feeding box. This replenishes the feeding hopper with sufficient medicine at a time. The coordinated intervals between the feeding hopper and the conveyor belt facilitate the rapid dispensing of a portion of the medicine into the feeding box, enabling the feeding device to handle the dispensing of large quantities of medicine.

[0020] 4. This invention features a cleaning box with multiple filter plates and impurity plates arranged at an angle inside. When the medicine passes through the filter plates, impurities pass through the filter plates and fall onto the impurity plates. The multiple filter plates effectively remove impurities from the medicine, resulting in cleaner medicine during subsequent processing and improving the quality of the medicine.

[0021] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0022] Figure 1 A three-dimensional structural diagram of a vibrating feeding device for pharmaceutical equipment. Figure 1 .

[0023] Figure 2 A three-dimensional structural diagram of a vibrating feeding device for pharmaceutical equipment. Figure 2 .

[0024] Figure 3 This is a three-dimensional structural diagram of the feeding box of a vibrating feeding device for pharmaceutical equipment.

[0025] Figure 4 This is an exploded view of the feeding box of a vibrating feeding device for pharmaceutical equipment.

[0026] Figure 5 This is an exploded view of the mounting block of a vibrating feeding device for pharmaceutical equipment.

[0027] Figure 6 This is a partial three-dimensional structural diagram of the feeding component of an oscillating feeding device for pharmaceutical equipment.

[0028] Figure 7 A partial three-dimensional structural diagram of the feeding component of a vibrating feeding device for pharmaceutical equipment. Figure 1 .

[0029] Figure 8 This is a three-dimensional structural diagram of the feeding bin and crank-connecting rod mechanism of an oscillating feeding device for pharmaceutical equipment.

[0030] Figure 9 A partial three-dimensional structural diagram of the feeding component of a vibrating feeding device for pharmaceutical equipment. Figure 2 .

[0031] Figure 10 This is a partial three-dimensional structural diagram of the cleaning box of a vibrating feeding device for pharmaceutical equipment.

[0032] Figure 11 This is a partial sectional view of the cleaning box of a vibrating feeding device for pharmaceutical equipment.

[0033] The diagram is labeled as follows: 1. Feeding assembly; 11. Conveyor belt; 111. Baffle plate; 112. Leveling component; 1121. Paving plate; 1122. Buffer pad; 12. Discharge bin; 121. Inlet; 122. Outlet; 123. Rotating rod; 124. Rotating disc; 13. Crank-connecting rod mechanism; 131. First connecting rod; 132. Second connecting rod; 133. Third connecting rod; 134. Limiting groove; 135. Drive motor; 136. Drive disc; 14. Cleaning box; 141. Receiving plate; 142. Filter plate; 1421. Impurity plate; 143. Discharge gap; 144. Third mounting plate; 45. Third mounting bracket; 146. Third buffer spring; 147. Impurity removal port; 1471. Collection trough; 1472. Opening and closing door; 2. Feeding assembly; 21. Feeding box; 211. Feeding cavity; 2111. Through groove; 212. First mounting plate; 213. First mounting bracket; 214. First buffer spring; 215. Feeding port; 2151. Mounting cavity; 22. Guide barrel; 221. Second mounting bracket; 222. Second buffer spring; 223. Vibrating part; 23. Pushing component; 231. Pushing motor; 232. Pushing wheel; 2321. Pushing layer; 24. Mounting block; 3. Processing assembly. Detailed Implementation

[0034] To further understand the features, technical means, and specific objectives and functions achieved by the present invention, the present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments.

[0035] Reference Figures 1 to 11 A vibrating feeding device for pharmaceutical equipment includes a feeding component 1 and a feeding component 2, which are connected together. The feeding component 1 is used to feed materials to the feeding component 2 at intervals.

[0036] The feeding assembly 2 includes a feeding box 21 and a guide barrel 22. The feeding box 21 is inclined, with the inclination direction close to the guide barrel 22. A feeding cavity 211 is provided at the lower end of the feeding box 21 near the guide barrel 22. The side of the feeding cavity 211 near the guide barrel 22 is connected to the outside. The feeding cavity 211 is elongated and elongated to fit the size of the medicine. The feeding cavity 211 and the guide barrel 22 are connected so that when the medicine enters the feeding cavity 211, the medicine can enter the guide barrel 22. A vibration motor (a common technology, not shown in the figure) is provided on the feeding box 21. In order to achieve better vibration, a first mounting plate 212 is provided on the side of the feeding box 21, and a first mounting bracket 213 is provided at the lower end of the first mounting plate 212. A first buffer spring 214 is provided between the first mounting bracket 213 and the first mounting plate 212. Therefore, the feeding box 21 vibrates continuously. When the medicine enters the feeding box 21, the feeding box 21 vibrates continuously, and the medicine enters the feeding chamber 211. The feeding chamber 211 can only accommodate the entry of one medicine. In this way, the medicine can enter the guide barrel 22 from the feeding chamber 211 in sequence.

[0037] The guide barrel 22 is set at an angle, and a processing component 3 is set at the end of the guide barrel 22 away from the feeding box 21. The processing component 3 can be a slicer, a packaging machine, or other machinery. The medicinal materials are arranged sequentially and enter the processing component 3. This makes the subsequent processing of long strip-shaped medicinal materials more efficient and simple. This feeding device can automatically and orderly feed long strip-shaped medicinal materials, which facilitates the subsequent work and improves work efficiency. It can be used not only for Solomon's seal, but also for other long strip-shaped medicinal materials.

[0038] Reference Figures 3 to 5 When the medicine enters the feeding chamber 211, although it can be moved out of the feeding box 211 through vibration and tilting, the movement speed is slow, affecting work efficiency. Therefore, a pushing component 23 is provided at the lower end of the feeding chamber 211. The pushing component 23 includes a pushing motor 231 and a pushing wheel 232. The pushing wheel 232 is rotatably mounted on the pushing motor 231, and a pushing layer 2321 is arranged around the outer side of the pushing wheel 232. The rotation direction of the pushing wheel 232 is towards the guide barrel 22. The lower end of 211 is provided with a through groove 2111, and the pusher wheel 232 is rotatably disposed in the through groove 2111. In this way, the pusher layer 2321 on the pusher wheel 232 can pass through the through groove 2111 and contact the medicine in the feeding chamber 211. The rotation direction of the pusher wheel 232 is towards the guide barrel 22. In this way, the pusher layer 2321 contacts and pushes the medicine in the feeding chamber 211, and the medicine in the feeding chamber 211 moves out of the feeding chamber 211 more quickly. This facilitates the entry of subsequent medicine into the feeding chamber 211 and improves the feeding efficiency.

[0039] Furthermore, the pusher layer 2321 is made of a relatively rough material, so that after the pusher layer 2321 comes into contact with the medicine, the pusher layer 2321 can more effectively push the medicine.

[0040] Reference Figure 4 and Figure 5 When dealing with different medicinal materials, although the materials are all long and thin, their sizes vary. Therefore, a fixed feeding chamber 211 is not suitable for various medicinal materials, reducing the applicability of the device. Thus, a feeding port 215 is provided at the lower end of the feeding box 21 near the guide barrel 22. A mounting cavity 2151 is provided at the lower end of the feeding port 215. A mounting block 24 is provided inside the mounting cavity 2151. The mounting cavity 2151 has an opening on the side facing the guide barrel 22, that is, the end of the mounting block 24 facing the guide barrel 22 is connected to the outside. The mounting block 24 is fixedly connected to the mounting cavity 2151 by bolts. Since the feeding box 21 vibrates, fixing the mounting block 24 with bolts is more stable, and the mounting block 24 can be replaced by removing the bolts.

[0041] Both the feeding chamber 211 and the pushing component 23 are set on the mounting block 24. By setting different sized feeding chambers 211 and corresponding pushing components 23 on the mounting block 24, and by replacing the mounting block 24 installed in the mounting chamber 2151, the discharge of medicine from the feeding box 21 can be changed without replacing the feeding box 21, thus increasing the scope of application of the device.

[0042] In order to ensure that the mounting blocks 24 with different feeding cavities 211 can be effectively installed in the feeding port 215, the mounting blocks 24 are all the same size, only the size of the feeding cavities 211 is different. Correspondingly, the size of the feeding port 215 is also larger than that of common medicines. In this way, although different mounting blocks 24 are provided with different feeding cavities 211, the mounting blocks 24 of the same size can be effectively installed in the mounting cavities 2151.

[0043] Reference Figure 2 and Figure 6 During the feeding process, the medicine is fed into the processing component 3 through the guide barrel 22. Although the guide barrel 22 is set at an angle, the medicine may still get stuck inside the guide barrel 22. Therefore, a second mounting bracket 221 is set below the guide barrel 22. A second buffer spring 222 is set between the second mounting bracket 221 and the guide barrel 22. A vibration part 223 is also set on the guide barrel 22. The vibration part 223 drives the guide barrel 22 to vibrate. The second buffer spring 222 ensures that the guide barrel 22 can vibrate effectively.

[0044] By vibrating the guide barrel 22, the guide barrel 22 can vibrate continuously, so that the medicine in the guide barrel 22 can be moved out of the guide barrel 22 more smoothly. The vibrating part 223 is selected as a vibration motor, which can easily and quickly complete the vibration of the guide barrel 22.

[0045] Reference Figure 7 and Figure 8 When there is too much medicine in the feeding bin 21, the speed of vibrating feeding will also decrease. The feeding assembly 1 includes a conveyor belt 11 and a feeding bin 12. The output end of the conveyor belt 11 is set near the top of the feeding bin 21. The feeding bin 12 is rotatably set above the input end of the conveyor belt 11. The lower half of the feeding bin 12 near the feeding bin 21 is provided with a discharge port 122, and the upper half of the feeding bin 12 away from the discharge port 122 is provided with a feed port 121. When the feeding bin 12 rotates, it rotates towards the side of the discharge port 122, and the medicine in the feeding bin 12 falls directly down. After the feeding bin 12 rotates a part, it returns to its original position. The feeding bin 12 tilts slightly towards the side of the feed port 121, so that the medicine will not fall from the discharge port 122. One rotation of the feeding bin 12 will pour a part of the medicine onto the conveyor belt 11.

[0046] The conveyor belt 11 carries the medicine poured out of the feeding bin 12 and moves it into the feeding box 21. It moves a portion of the medicine at a time, so that there is not too much medicine in the feeding box 21 at once, which facilitates the vibration and feeding of the feeding box 21 and prevents the feeding efficiency of the feeding box 21 from being reduced due to too much medicine.

[0047] The upper part of the feeding hopper 12 is also equipped with a detection unit. The detection unit is used to detect the amount of medicine in the feeding hopper 12. When the amount of medicine is low, the detection unit transmits the data to the control center (the control center is the central control of the device, which is existing technology and will not be elaborated on here). The control center notifies the workers to replenish the medicine in time through the feed port 121. In this way, only a large amount of medicine needs to be replenished each time, and the feeding device can continue to feed for a period of time. The operation is simple and can handle the feeding of a large amount of medicine. The detection unit can be a detection camera or a distance sensor, etc.

[0048] Reference Figure 7 and Figure 8Rotating rods 123 are provided on both sides of the feeding bin 12 perpendicular to the direction of movement of the conveyor belt 11. Third mounting frames 145 are provided on both sides of the conveyor belt 11. The rotating rods 123 are installed through the third mounting frames 145. A rotating disk 124 is provided at one end of the rotating rod 123 away from the feeding bin 12. A first connecting rod 131 is rotatably provided near the outer side of the rotating disk 124. A crank-connecting rod mechanism 13 is provided at the end of the first connecting rod 131 away from the rotating disk 124. The crank-connecting rod mechanism 13 drives one end of the first connecting rod 131 to move up and down, thereby driving the rotating disk 124 to rotate cyclically at a certain angle, thus completing the cyclic rotation of the feeding bin 12. The feeding bin 12 can cyclically discharge materials.

[0049] The crank-connecting rod mechanism 13 includes a drive motor 135. A drive disk 136 is provided at the output end of the drive motor 135. A third connecting rod 133 is rotatably provided at one end of the drive disk 136 near the outer side. A second connecting rod 132 is provided between the third connecting rod 133 and the first connecting rod 131. The two ends of the second connecting rod 132 are rotatably provided on the first connecting rod 131 and the third connecting rod 133, respectively. A limiting groove 134 is also provided on the third mounting bracket 145. The second connecting rod 132 is movably positioned within the limiting groove 134. The limiting groove restricts the second connecting rod 132 to move only up and down. Therefore, when the drive motor 135 drives the drive disk 136 to rotate, the drive disk 136 rotates one revolution, and the feeding bin 12 completes one dumping of the medicine. The rotation direction of the drive motor 135 is fixed and does not need to be changed. The structure is simple and easy to use.

[0050] Reference Figure 9 When the medicine moves within the conveyor belt 11, it may move out from the side of the conveyor belt 11. Therefore, baffles 111 are provided on both sides of the conveyor belt 11 along the direction of movement. The baffles 111 restrict the movement of the medicine and prevent it from moving out from the side of the conveyor belt 11.

[0051] Reference Figure 7 and Figure 9 During a single pour, the medicinal materials tend to pile up, causing them to clump together during discharge. This overlapping and intertwined material can interfere with subsequent vibration processing. Therefore, a leveling component 112 is installed on the conveyor belt 11. The leveling component 112 includes several leveling plates 1121, which are arranged sequentially from high to low between two baffle plates 111 along the direction of movement of the conveyor belt 11. The lower end face of the higher leveling plate 1121 and the upper end face of the lower leveling plate 1121 are flush. This way, when the medicinal materials pass through the leveling plates 1121, they are leveled sequentially from high to low, preventing the materials from piling up and facilitating subsequent discharge. Furthermore, the coordinated use of multiple leveling plates 1121 allows only a portion of the medicinal materials to be leveled at a time, preventing the materials from being compressed due to excessive leveling.

[0052] A buffer pad 1122 is also provided at one end of the paving plate 1121 near the feeding hopper 12. The buffer pad 1122 is made of elastic material so that the medicine will not be scratched by the paving plate 1121 when it comes into contact with it.

[0053] Reference Figure 2 , Figure 10 and Figure 11 The feeding assembly 1 also includes a cleaning box 14, which is located between the conveyor belt 11 and the discharge box 21. A receiving plate 141 is provided at the upper end of the cleaning box 14 near the conveyor belt 11, and the receiving plate 141 abuts against the output end of the conveyor belt 11, so that the medicine on the conveyor belt 11 enters the cleaning box 14. The cleaning box 14 is arranged vertically, and several filter plates 142 are arranged at intervals and at an angle from top to bottom in the cleaning box 14. The lowest point of the filter plates 142 is flush with the inner wall of the cleaning box 14. A discharge gap 143 is provided between the filter plates 142. The discharge gaps 143 between adjacent filter plates 142 are respectively set close to the two sides of the cleaning box 14. When the medicine enters the cleaning box 14, the medicine rolls and slides on the filter plates 142 and moves from one filter plate 142 to another. The rolling speed of the medicine will be different, so the medicine is dispersed and no longer squeezed together. The medicine falls into the discharge box 21 more dispersedly, which facilitates the discharge.

[0054] Furthermore, when the medicine tends to be cylindrical (most rod-shaped medicines are cylindrical), the cylindrical material tends to roll more when moving on the filter plate 142. Therefore, the direction of the discharge gap 143 is consistent with the direction of the discharge chamber 211. This allows the medicine to roll down from the filter plate 142 and enter the discharge chamber 211 more directly, improving the discharge efficiency.

[0055] Of course, in order to prevent the medicine from remaining on the filter plate 142, a vibration motor (not shown in the figure) can be installed on the outside of the cleaning box 14. When the vibration motor is installed, a third mounting plate 144 is installed on the outside of the cleaning box 14. A third mounting bracket 145 is installed at the lower end of the third mounting plate 144. A third buffer spring 146 is installed between the third mounting bracket 145 and the third mounting plate 144.

[0056] Reference Figure 10 and Figure 11When medicinal materials are sun-dried or air-dried, they often contain impurities. Therefore, an impurity plate 1421 is installed in the cleaning box 14. The impurity plate 1421 is inclined and set at the lower end of the filter plate 142, forming a V-shape between the impurity plate 1421 and the filter plate 142. When the medicinal materials pass through the filter plate 142, the impurities on the medicinal materials will fall off as they roll and enter the impurity plate 1421 through the filter plate 142. The cleaning box 14 is provided with a removal port 147 near the lowest end of the impurity plate 1421. The impurity plate 1421 and the removal port 147 are connected. The removal port 147 is connected to the outside. A collection trough 1471 is provided at the lower end of the removal port 147 near the outside. The impurities fall on the inclined impurity plate 1421 and eventually fall into the collection trough 1471, which facilitates the cleaning of impurities.

[0057] Furthermore, a switch door 1472 is provided on one side of the collection tank 1471. The switch door 1472 can be opened, so that the collection tank 1471 can be cleaned quickly and impurities will not overflow the collection tank 1471. The switch door 1472 can be slidably set on the collection tank 1471 or rotated on the collection tank 1471, similar to a door in reality, which will not be elaborated on here.

[0058] This invention employs a feeding assembly 1 and a discharging assembly 2. The feeding assembly 1 feeds materials to the discharging assembly 2 at intervals. The discharging assembly 2 includes a discharging box 21, which automatically organizes the received medicinal materials and sequentially removes them from the discharging chamber 211. This ensures that long strips of medicinal materials are fed out in an orderly manner, facilitating subsequent processing and improving work efficiency. Simultaneously, a cleaning box 14 is provided. The medicinal materials fed by the feeding assembly 1 pass through the cleaning box 14 and then move into the discharging box. Multiple filter plates 142 and impurity plates 1421 are inclinedly arranged inside the cleaning box 14. When the medicinal materials pass through the filter plates 142, impurities pass through and fall onto the impurity plates 1421. The multiple filter plates 142 effectively remove impurities from the medicinal materials, resulting in cleaner materials and improved quality during subsequent processing.

[0059] The above embodiments only illustrate one or more implementations of the present invention, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of the present invention. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these all fall within the protection scope of the present invention. Therefore, the protection scope of the present invention should be determined by the appended claims.

Claims

1. A vibrating feeding device for pharmaceutical equipment, characterized in that, It includes a feeding component (1) and a discharging component (2), which are connected together; The feeding assembly (1) is used to feed the intermittently downward feeding assembly (2); The feeding assembly (2) includes a feeding box (21) and a guide barrel (22). The feeding box (21) is inclined toward the guide barrel (22). The feeding box (21) can vibrate. A feeding chamber (211) is provided at the lower end of the feeding box (21) near the guide barrel (22). The feeding chamber (211) and the guide barrel (22) are connected. The guide bucket (22) is inclined and set on one side of the feeding box (21). A processing component (3) is set at the end of the guide bucket (22) away from the feeding box (21). The processing component (3) is used to perform subsequent processing on the medicine. A first mounting plate (212) is provided on the side of the feeding box (21), a first mounting bracket (213) is provided at the lower end of the first mounting plate (212), and a first buffer spring (214) is provided between the first mounting bracket (213) and the first mounting plate (212). The lower end of the feeding chamber (211) is provided with a pushing component (23), which includes a pushing motor (231) and a pushing wheel (232). The pusher motor (231) is located at the lower end of the feeding chamber (211); The pusher wheel (232) is set on the output end of the pusher motor (231). The pusher wheel (232) is surrounded by a pusher layer (2321). The lower end of the feeding chamber (211) is provided with a through groove (2111). The pusher wheel (232) is rotated in the through groove (2111). The pusher layer (2321) can come into contact with the medicine. The lower end of the feeding box (21) is provided with a feeding port (215) near the guide barrel (22). The lower end of the feeding port (215) is provided with an installation cavity (2151). An installation block (24) is provided in the installation cavity (2151). The installation cavity (2151) is open on the side facing the guide barrel (22). The feeding chamber (211) and the pushing component (23) are both located on the mounting block (24).

2. The oscillating feeding device for pharmaceutical equipment according to claim 1, characterized in that, A second mounting bracket (221) is provided below the guide barrel (22), and a second buffer spring (222) is provided between the second mounting bracket (221) and the guide barrel (22). A vibration part (223) is also provided on the guide barrel (22), and the vibration part (223) drives the guide barrel (22) to vibrate.

3. The oscillating feeding device for pharmaceutical equipment according to claim 1, characterized in that, The feeding assembly (1) includes a conveyor belt (11) and a feeding bin (12). The output end of the conveyor belt (11) is located above the feeding box (21). The feeding bin (12) is rotatably located above the input end of the conveyor belt (11). The lower half of the feeding bin (12) near the feeding box (21) has a discharge port (122), and the upper half of the feeding bin (12) away from the discharge port (122) has a feed inlet (121). The upper part of the feeding bin (12) is also equipped with a detection unit, which is used to detect the amount of medicine in the feeding bin (12).

4. The oscillating feeding device for pharmaceutical equipment according to claim 3, characterized in that, Rotating rods (123) are provided on both sides of the feeding bin (12) perpendicular to the direction of movement of the conveyor belt (11). Third mounting frames (145) are provided on both sides of the conveyor belt (11). The rotating rods (123) are installed through the third mounting frames (145). A rotating disk (124) is provided at one end of the rotating rod (123) away from the feeding bin (12). A first connecting rod (131) is rotatably provided near the outer side of the rotating disk (124). A crank-connecting rod mechanism (13) is provided at one end of the first connecting rod (131) away from the rotating disk (124).

5. The oscillating feeding device for pharmaceutical equipment according to claim 3, characterized in that, The conveyor belt (11) is provided with baffles (111) on both sides along the direction of movement. The baffles (111) are used to restrict the movement of the medicine.

6. The oscillating feeding device for pharmaceutical equipment according to claim 5, characterized in that, A leveling component (112) is also provided on the conveyor belt (11). The leveling component (112) includes several leveling plates (1121). The leveling plates (1121) are arranged in sequence from high to low between two baffles (111) along the direction of movement of the conveyor belt (11). The lower end face of the higher leveling plate (1121) and the upper end face of the lower leveling plate (1121) of two adjacent leveling plates (1121) are flush. A buffer pad (1122) is also provided at the end of the leveling plate (1121) near the discharge bin (12).

7. The oscillating feeding device for pharmaceutical equipment according to claim 3, characterized in that, The feeding assembly (1) also includes a cleaning box (14), which is set between the conveyor belt (11) and the unloading box (21). A receiving plate (141) is provided at the upper end of the cleaning box (14) near the conveyor belt (11). The receiving plate (141) and the output end of the conveyor belt (11) abut against each other. The cleaning box (14) is set vertically. Several filter plates (142) are set at intervals from top to bottom in the cleaning box (14). A discharge gap (143) is set between the lowest end of the filter plate (142) and the inner wall of the cleaning box (14). The discharge gaps (143) between adjacent filter plates (142) are set close to the two sides of the cleaning box (14).

8. The oscillating feeding device for pharmaceutical equipment according to claim 7, characterized in that, The cleaning box (14) is also equipped with an impurity plate (1421). The impurity plate (1421) is inclined and set at the lower end of the filter plate (142). The impurity plate (1421) and the filter plate (142) form a V-shape. The cleaning box (14) is provided with a removal port (147) near the lowest end of the impurity plate (1421). The impurity plate (1421) and the removal port (147) are connected. The removal port (147) is connected to the outside. A collection trough (1471) is provided at the lower end of the removal port (147) near the outside.