Intelligent test medicine storage and recovery cabin
By introducing automated cleaning systems and high-frequency vibration separation technology in the experimental drug storage and recycling chambers, the problem of leakage and cleaning difficulties of liquid drugs has been solved, and efficient solid-liquid separation and drug management have been achieved.
Patent Information
- Application Number
- CN202510766054.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-10
- Publication Date
- 2025-07-22
AI Technical Summary
Liquid drugs in traditional experimental drugs storage and recycling chambers are prone to leakage and difficult to clean, solid-liquid separation is not thorough, and the cleaning process is cumbersome and time-consuming, and there is a risk of environmental pollution.
An intelligent storage and recycling chamber for experimental drugs was designed, including an automated cleaning system of water tank, water pump, ring tube and nozzle. Combined with the liquid collection structure of the filtrate plate, incline plate and flow tube, equipped with weighing display components and disassembly components, and a micro motor drives the eccentric block for high-frequency vibration separation to achieve solid-liquid separation.
It realizes automatic cleaning of liquid drugs, prevents leakage and contamination, improves cleaning efficiency and the integrity of drug recycling, reduces workload and cleaning difficulty, and ensures environmental safety and the accuracy of drug management.
Smart Images

Figure CN120348610A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical auxiliary equipment, and particularly to an intelligent storage and recycling cabin for test drugs. Background Art
[0002] A test drug storage and recycling cabin is a device applied in the scenarios of pharmaceutical R & D and clinical trials, which is specifically used to properly store test drugs to be tested and classify and recycle the recycled drugs and related packages.
[0003] Traditional test drug storage and recycling cabins usually consist of two parts: storage and recycling. The storage part is an ordinary cabinet body with a normal temperature compartment, which is convenient for testers to store and retrieve drugs stored at normal temperature. A closed low-temperature space is created in the low-temperature area to meet the low-temperature storage requirements of specific drugs. The recycling cabin is a simple box near the storage cabin. In the normal temperature storage area, drugs are stored using the ambient temperature, and drug information is managed relying on the experience and manual records of testers. In the low-temperature area, a low-temperature environment is maintained. In the recycling link, after the drugs are used, testers directly put medicine bottles, packaging boxes, etc. into the recycling box, and then the staff regularly collect and sort them uniformly.
[0004] The structure design of the recycling bin of traditional test drug storage and recycling cabins is usually relatively simple, lacking an effective anti-leakage structure for liquid drugs. When liquid drugs are put into the recycling bin, due to the lack of protective isolation measures in the internal space, the medicine bottles are extremely easy to break during random stacking and collision, resulting in liquid leakage. Moreover, the bottom of the recycling bin is usually flat and there is no diversion and collection device. Once the liquid flows out, it quickly spreads in the bin. In addition, after the liquid drug leaks, the unpleasant smell emitted not only pollutes the test environment but also poses a potential hazard to the health of testers. During cleaning, the staff needs to wipe and adsorb the leaked liquid one by one with adsorption materials. For the liquid that seeps into the gaps and corners, special tools are also needed to clean it deeply. The process is cumbersome and time-consuming. In addition, the residual liquid is easy to form stains that are difficult to remove after drying, further increasing the cleaning difficulty. Summary of the Invention
[0005] Aiming at the deficiencies of the prior art, the present invention provides an intelligent storage and recycling cabin for test drugs, which solves the problems of easy leakage of liquid drugs in the traditional recycling bin, difficult cleaning, and incomplete solid-liquid separation.
[0006] To achieve the above object, the present invention is realized through the following technical solutions: An intelligent storage and recycling chamber for experimental drugs, comprising a first box body and a second box body. A convex block is fixedly connected inside the first box body. A recycling box is installed on the side of the convex block away from the first box body. A disassembly component is arranged between the recycling box and the convex block. A filtrate plate is installed inside the recycling box. A collection component is arranged directly below the filtrate plate. A first drawer and a second drawer are slidably connected inside the second box body. A weighing and display component is arranged inside both the first box body and the second box body. A water tank is fixedly connected to the bottom of the first box body. A water pump is installed in the middle of the water tank. The output end of the water pump is fixedly connected to a ring pipe. Nozzles are evenly installed inside the ring pipe. A damping shaft is rotatably connected inside the recycling box. A sealing plate is fixedly connected to the outside of the damping shaft. A handle and a nameplate are fixedly connected to the recycling box. An operation screen is installed on the side of the first box body close to the nameplate. A box door is installed on the second box body. A refrigeration component is arranged inside the second box body. A screening component is arranged inside the recycling box.
[0007] Preferably, the collection component includes an inclined plate. The inclined plate is fixedly connected inside the recycling box. A diversion pipe is fixedly connected to the inner wall of the first box body. A diversion port is opened on the side of the diversion pipe close to the recycling box. A collection trough is fixedly connected inside the first box body.
[0008] Preferably, the disassembly component includes an adapter block. The adapter block is fixedly connected to the bottom of the recycling box. One end of the adapter block away from the recycling box is rotatably connected to a pressure block. An insertion block is fixedly connected to the top of the adapter block. A slot is opened at the bottom of the convex block. A spring piece is installed between the recycling box and the pressure block. The insertion block is slidably connected to the middle of the slot.
[0009] Preferably, the weighing and display component includes a processor. The processor is installed inside the first box body. A mounting plate is fixedly connected inside the first drawer. A medicine placement groove is installed on the top of the processor. A weighing device is installed at the bottom of the mounting plate. A display screen is installed directly above the first drawer. Both the weighing device and the display screen are electrically connected to the processor.
[0010] Preferably, the refrigeration component includes a refrigeration box. The refrigeration box is fixedly connected inside the second box body. A coil pipe is sleeved outside the refrigeration box. The two ends of the coil pipe are respectively fixedly connected to an inlet and an outlet. The second drawer is slidably connected inside the refrigeration box.
[0011] Preferably, the screening assembly includes a micro motor, which is installed on the outer wall of the recycling bin. The output end of the micro motor is fixedly connected to a rotating shaft, and an eccentric block is fixedly connected to one end of the rotating shaft away from the micro motor. A rotating rod is fixedly connected inside the filtrate plate, and a spring is installed at the bottom of the filtrate plate. A guiding pipe is installed on one side of the recycling bin away from the micro motor, and a collection box is arranged directly below the guiding pipe.
[0012] Preferably, the recycling bin is slidably connected to one side of the convex block away from the box body one. The drawer two is arranged at the bottom side of the drawer one. The spray head is arranged directly above the filtrate plate. The sealing plate is rotatably connected to the middle of the recycling bin.
[0013] Preferably, the handle is arranged at the bottom side of the nameplate, and both the handle and the nameplate are slidably connected inside the box body one.
[0014] Preferably, the inclined plate is arranged directly below the convex block, and the diversion pipe is fixedly connected to the top of the collection tank.
[0015] Preferably, the eccentric block abuts against the bottom of the filtrate plate, and the rotating rod is rotatably connected to the inner wall of the recycling bin.
[0016] The present invention provides an intelligent storage and recycling cabin for experimental drugs, which has the following beneficial effects:
[0017] 1. By arranging a water tank, a water pump, a ring pipe and a spray head at the bottom of the box body one in the present invention, when it is necessary to clean the recycling bin, the operation screen starts the water pump, and the spray head can flush the inside of the recycling bin. The automated cleaning method is more efficient than the traditional manual cleaning, and the flushing waste water can also flow into the collection tank through the original diversion structure, avoiding secondary pollution and helping to reduce the cleaning difficulty and workload of the recycling bin.
[0018] 2. By arranging a filtrate plate and an inclined plate inside the recycling bin in the present invention, cooperating with the diversion pipe and the collection tank, the liquid drugs put into the recycling bin can be effectively diverted and collected, preventing the liquid from spreading randomly inside the recycling bin. At the same time, the sealing plate can be rotated through a damping shaft to close the opening of the recycling bin, preventing the odor from emitting and the liquid from splashing out, and solving the problem that liquid drugs in the traditional recycling bin are prone to leakage and pollute the environment.
[0019] 3. By arranging a weighing device at the bottom of the inner mounting plate of the drawer one in the present invention, and transmitting the data to the processor for processing and then displaying it through the display screen, the real-time and accurate monitoring of the remaining amount of drugs is realized, avoiding the problems of easy error and untimely manual recording, facilitating the experimental personnel to timely master the drug situation and ensuring the smooth progress of the experiment.
[0020] 4. The present invention provides a structure composed of an adapter block, a pressing block, a spring piece, an inserting block and a slot between the recycling bin and the bump. Together with the handle, when it is necessary to disassemble and assemble the recycling bin, pulling the handle and squeezing the pressing block can disengage the inserting block from the slot, enabling the recycling bin to quickly slide out of the first box body. During installation, the inserting block can automatically reset and fix, facilitating the replacement and in-depth cleaning of the recycling bin, and improving the convenience of equipment maintenance.
[0021] 5. The present invention drives an eccentric block to regularly impact the bottom of the filtrate plate through a micro-motor, and cooperates with a bottom spring to generate high-frequency vibration, enabling the efficient separation of the drug packaging from the residual liquid. The separated liquid is diverted to the collection tank through an inclined plate, and the solid impurities fall into a pull-out collection box through a guiding pipe. When linked with the spraying system, the combined action of vibration and water flow flushes the filtrate plate, which helps to improve the drug recovery efficiency and collection integrity, reduce the probability of blockage of the filtrate plate, shorten the flushing time, and solve the problems of incomplete separation and cumbersome cleaning in traditional recycling. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is a perspective view of the present invention;
[0023] Figure 2 is a schematic diagram of the medicine placement slot of the present invention;
[0024] Figure 3 is a schematic diagram of the processor of the present invention;
[0025] Figure 4 is a schematic diagram of the collection component of the present invention;
[0026] Figure 5 is a schematic diagram of the disassembly component of the present invention;
[0027] Figure 6 is a schematic diagram of the screening component of the present invention;
[0028] Figure 7 is a schematic diagram of the weighing and display component of the present invention;
[0029] Figure 8 is a schematic diagram of the refrigeration component of the present invention.
[0030] Among them, 1. the first box body; 2. the second box body; 3. the first drawer; 4. the second drawer; 5. the recycling box; 6. the collection assembly; 61. the inclined plate; 62. the diversion pipe; 63. the collection tank; 64. the diversion port; 7. the disassembly assembly; 71. the connection block; 72. the pressing block; 73. the elastic sheet; 74. the insertion block; 75. the slot; 8. the weighing and display assembly; 81. the processor; 82. the mounting plate; 83. the weighing device; 84. the medicine placement groove; 85. the display screen; 9. the refrigeration assembly; 91. the refrigeration box; 92. the coil pipe; 93. the inlet; 94. the outlet; 10. the convex block; 11. the filtrate plate; 12. the sealing plate; 13. the damping shaft; 14. the handle; 15. the nameplate; 16. the water tank; 17. the water pump; 18. the annular pipe; 19. the nozzle; 20. the box door; 21. the operation screen; 22. the screening assembly; 2201. the micro motor; 2202. the rotating shaft; 2203. the eccentric block; 2204. the spring; 2205. the rotating rod; 2206. the guiding pipe; 2207. the collection box. Detailed implementation manners
[0031] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0032] Please refer to the attached Figure 1 - attached Figure 6 , an intelligent storage and recycling cabin for test drugs provided by an embodiment of the present invention includes the first box body 1 and the second box body 2. A convex block 10 is fixedly connected to the inside of the first box body 1. A recycling box 5 is installed on the side of the convex block 10 away from the first box body 1. A disassembly assembly 7 is arranged between the recycling box 5 and the convex block 10. A filtrate plate 11 is installed inside the recycling box 5. A collection assembly 6 is arranged directly below the filtrate plate 11. A first drawer 3 and a second drawer 4 are slidably connected to the inside of the second box body 2. A weighing and display assembly 8 is arranged inside both the first box body 1 and the second box body 2. A water tank 16 is fixedly connected to the bottom of the first box body 1. A water pump 17 is installed in the middle of the water tank 16. The output end of the water pump 17 is fixedly connected to an annular pipe 18. Nozzles 19 are evenly installed inside the annular pipe 18. A damping shaft 13 is rotatably connected to the inside of the recycling box 5. A sealing plate 12 is fixedly connected to the outside of the damping shaft 13. A handle 14 and a nameplate 15 are fixedly connected to the recycling box 5. An operation screen 21 is installed on the side of the first box body 1 close to the nameplate 15. A box door 20 is installed on the second box body 2. A refrigeration assembly 9 is arranged inside the second box body 2. A screening assembly 22 is arranged inside the recycling box 5. The recycling box 5 is slidably connected to the side of the convex block 10 away from the first box body 1. The second drawer 4 is arranged on the bottom side of the first drawer 3. The nozzles 19 are arranged directly above the filtrate plate 11. The sealing plate 12 is rotatably connected to the middle of the recycling box 5.
[0033] Specifically, during the drug storage stage, by reasonably planning the storage space, the drugs at room temperature can be orderly stored in the first drawer 3 inside the second box body 2, providing a stable and convenient environment for accessing the drugs stored at room temperature. For drugs that require low-temperature storage, they are placed in the second drawer 4, avoiding the deterioration of drugs caused by improper storage environments and improving the safety and reliability of drug storage. When the recycling box 5 needs to be cleaned, the water pump 17 is started through the operation screen 21. The water in the water tank 16 will be pumped into the annular pipe 18 under the action of the water pump 17. The nozzles 19 evenly distributed on the annular pipe 18 can spray water at an appropriate pressure and range to comprehensively and carefully wash the inside of the recycling box 5. The filtrate plate 11 can filter out larger impurities to prevent them from blocking the diversion pipe 62. This automated cleaning method not only improves the cleaning efficiency, reduces the workload and difficulty of manual cleaning, but also avoids the pollution of the test environment caused by the leakage of liquid drugs, ensuring the cleanliness and safety of the recycling box 5. By slidably connecting the recycling box 5 to the side of the bump 10 away from the first box body 1, the convenient pulling of the recycling box 5 is realized, facilitating cleaning and maintenance. By arranging the second drawer 4 at the bottom side of the first drawer 3, the partitioned storage of drugs under different storage conditions is completed, making drug management more orderly.
[0034] Please refer to the attached Figure 2 - attached Figure 5 Figure, the collection assembly 6 includes an inclined plate 61. The inclined plate 61 is fixedly connected to the inside of the recycling box 5. The inner wall of the first box body 1 is fixedly connected with a diversion pipe 62. A diversion port 64 is opened on the side of the diversion pipe 62 close to the recycling box 5. A collection trough 63 is fixedly connected to the inside of the first box body 1. The inclined plate 61 is arranged directly below the bump 10. The diversion pipe 62 is fixedly connected to the top of the collection trough 63.
[0035] Specifically, by arranging an inclined inclined plate 61 inside the recycling box 5, when liquid drugs are put into the recycling box 5, under the action of gravity, the liquid flows along the slope of the inclined plate 61 towards the diversion port 64 of the diversion pipe 62, and finally flows into the collection trough 63 through the diversion pipe 62 to complete the collection, reducing the cleaning difficulty and the risk of cross-contamination, and realizing the orderly recycling of liquid drugs. By arranging a rotatable sealing plate 12 inside the recycling box 5, the sealing plate 12 rotates around the damping shaft 13 as the axis. When the recycling box 5 is in an idle state, the sealing plate 12 can be rotated to the position of closing the opening, effectively blocking the internal odor from spreading to the external environment, and at the same time preventing the liquid from splashing out due to accidental collision, which helps to improve the safety and environmental protection of the drug recycling process.
[0036] Please refer to the attached Figure 5The disassembly component 7 includes a connecting block 71, which is fixedly connected to the bottom of the recycling box 5. The end of the connecting block 71 away from the recycling box 5 is rotatably connected to a pressing block 72. The top of the connecting block 71 is fixedly connected to an insert block 74. A slot 75 is provided at the bottom of the protrusion 10. A spring piece 73 is installed between the recycling box 5 and the pressing block 72. The insert block 74 is slidably connected to the middle of the slot 75.
[0037] When the locking nut 75 is in the state of being lifted up, the locking nut 73 is in the state of being lifted and the locking nut 73 is in the state of being lifted and the lock nut 73 is in the state of being lifted and the lock nut 73 is in the state of being lifted and the lock nut 73 is in the state of being lifted and the lock nut 73 is in the state of being lifted and the lock nut 73 is in the state of being lifted and the lock nut 73 is in the state of being lifted and the lock nut 73
[0038] Please refer to the attached Figure 3 and attached Figure 7 The weighing display assembly 8 includes a processor 81, which is installed inside the box body 1. A mounting plate 82 is fixedly connected to the inside of the drawer 3. A medicine placement slot 84 is installed on the top of the processor 81, a weighing device 83 is installed on the bottom of the mounting plate 82, and a display screen 85 is installed directly above the drawer 3. The weighing device 83 and the display screen 85 are both electrically connected to the processor 81.
[0039] Specifically, by setting a weighing device 83 at the bottom of the mounting plate 82 inside the drawer 3, the weight data of the medicine stored in the drawer 3 can be obtained in real time. The weighing device 83 transmits the collected data to the processor 81 in the box body 1. After analysis and processing by the processor 81, the remaining medicine information is intuitively displayed through the display screen 85 above the drawer 3. This method avoids the limitations of manual operation, realizes accurate monitoring and real-time feedback of the remaining medicine, and helps the experimenters to arrange the medication plan reasonably.
[0040] Please refer to the attached Figure 8 The refrigeration assembly 9 includes a refrigeration box 91, which is fixedly connected to the inside of the box body 2. A coil 92 is sleeved on the outside of the refrigeration box 91. The two ends of the coil 92 are respectively fixedly connected with an inlet 93 and an outlet 94. The drawer 24 is slidably connected to the inside of the refrigeration box 91.
[0041] Specifically, a refrigeration cycle channel is constructed through the inlet 93 and the outlet 94. The refrigeration medium circulates between the coil 92 and the refrigeration box 91, continuously taking away the heat in the second drawer 4 and stably maintaining a low-temperature environment, providing suitable storage conditions for storing drugs at low temperature. This method effectively avoids the damage to drugs caused by abnormal temperature and ensures the stability of drugs during storage.
[0042] Please refer to the appendix Figure 5 - appendix Figure 6 Specifically, the screening assembly 22 includes a micro motor 2201. The micro motor 2201 is installed on the outer wall of the recycling box 5. The output end of the micro motor 2201 is fixedly connected to a rotating shaft 2202. One end of the rotating shaft 2202 away from the micro motor 2201 is fixedly connected to an eccentric block 2203. A rotating rod 2205 is fixedly connected inside the filtrate plate 11. A spring 2204 is installed at the bottom of the filtrate plate 11. A guiding pipe 2206 is installed on one side of the recycling box 5 away from the micro motor 2201. A collection box 2207 is arranged directly below the guiding pipe 2206. The eccentric block 2203 abuts against the bottom of the filtrate plate 11. The rotating rod 2205 is rotatably connected to the inner wall of the recycling box 5.
[0043] Specifically, the micro motor 2201 drives the rotating shaft 2202 to rotate, causing the eccentric block 2203 to regularly strike the bottom of the filtrate plate 11. At the same time, the bottom spring 2204 assists in generating high-frequency vibration, cooperating with the rotation of the rotating shaft 2202 to form a composite disturbance, fully separating the drug packages and residual liquid on the filtrate plate 11; the separated liquid is guided by the inclined plate 61 to the diversion pipe 62 and flows into the collection tank 63, while the solid impurities fall into the pull-out collection box 2207 through the guiding pipe 2206. This method, through the synergistic effect of high-frequency vibration and the diversion structure, helps to solve the problem of incomplete separation of drug residues in traditional recycling, ensuring efficient solid-liquid separation to reduce drug loss; at the same time, the independent diversion channel avoids solid-liquid mixing and blockage, and the pull-out collection box 2207 and the guiding pipe 2206 facilitate the centralized cleaning of solid impurities, greatly improving the recycling efficiency and the convenience of equipment maintenance compared with traditional methods.
[0044] Working principle: During the drug storage stage, normal-temperature drugs can be stored in the first drawer 3 inside the second box body 2, while low-temperature drugs are placed in the second drawer 4. A weighing device 83 is provided at the bottom of the mounting plate 82 inside the first drawer 3, which can weigh the drug weight in real time. The data is transmitted to the processor 81 inside the first box body 1 for processing and is displayed on the display screen 85 above the first drawer 3 to show the remaining amount of drugs. A coil 92 is sleeved outside the refrigeration box 91 where the second drawer 4 is located, and a refrigeration cycle is carried out through the inlet 93 and the outlet 94 to maintain the low-temperature environment inside the second drawer 4 and ensure the storage conditions for low-temperature drugs;
[0045] The recovered medicine is put into the recovery box 5, and the liquid medicine drips down through the filter plate 11. The inclined plate 61 inside the recovery box 5 guides the liquid to the diversion port 64 of the diversion pipe 62, and then flows into the collection tank 63 through the diversion pipe 62 for collection. The sealing plate 12 rotates through the damping shaft 13, and when the recovery box 5 is not in use, the opening can be closed to prevent the smell from spreading and the liquid from splashing out;
[0046] When it is necessary to clean the recovery box 5, the water pump 17 is started through the operation screen 21. The water in the water tank 16 is pumped into the ring pipe 18 by the water pump 17, and then sprayed out from the nozzles 19 evenly distributed on the ring pipe 18 to wash the inside of the recovery box 5. The flushing wastewater also flows into the collection tank 63 through the filter plate 11, the inclined plate 61, and the diversion pipe 62. At the same time, the micro motor 2201 is started to drive the rotating shaft 2202 to rotate. The eccentric block 2203 regularly impacts the bottom of the filter plate 11, and cooperates with the bottom spring 2204 to generate high-frequency vibration and the rotation assistance of the rotating shaft 2202, so that the medicine package on the filter plate 11 is separated from the residual liquid. The liquid is guided to the diversion port 64 of the diversion pipe 62 through the inclined plate 61 and flows into the collection tank 63; the solid impurities fall into the collection box 2207 through the guiding pipe 2206;
[0047] When it is necessary to disassemble and assemble the recovery box 5, hold the handle 14 and pull it outwards, squeeze the pressing block 72 upwards. The pressing block 72 squeezes the elastic piece 73. While the elastic piece 73 generates elastic deformation, it drives the insertion block 74 to move downwards. The insertion block 74 is disengaged from the insertion slot 75, so that the insertion block 74 loses the limit on the recovery box 5, and the recovery box 5 can slide freely on the convex block 10, so as to quickly slide out of the box body 1, realizing convenient disassembly; during installation, align the recovery box 5 with the convex block 10 and push it in. The elastic piece 73 restores its elasticity, drives the insertion block 74 to reset, and the insertion block 74 is inserted into the insertion slot 75 to firmly fix the recovery box 5 on the convex block 10.
[0048] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An intelligent storage and recycling cabin for a test drug, comprising a first box body (1) and a second box body (2), characterized in that, Inside the first box body (1), a convex block (10) is fixedly connected. On the side of the convex block (10) away from the first box body (1), a recycling box (5) is installed. A disassembly component (7) is arranged between the recycling box (5) and the convex block (10). Inside the recycling box (5), a filtrate plate (11) is installed. A collection component (6) is arranged directly below the filtrate plate (11). Inside the second box body (2), a first drawer (3) and a second drawer (4) are slidably connected. A weighing and display component (8) is arranged inside both the first box body (1) and the second box body (2). At the bottom of the first box body (1), a water tank (16) is fixedly connected. In the middle of the water tank (16), a water pump (17) is installed. The output end of the water pump (17) is fixedly connected to an annular pipe (18). Inside the annular pipe (18), spray heads (19) are evenly installed. Inside the recycling box (5), a damping shaft (13) is rotatably connected. On the outer side of the damping shaft (13), a sealing plate (12) is fixedly connected. On the recycling box (5), a handle (14) and a nameplate (15) are fixedly connected. On the side of the first box body (1) close to the nameplate (15), an operation screen (21) is installed. On the second box body (2), a box door (20) is installed. Inside the second box body (2), a refrigeration component (9) is arranged. Inside the recycling box (5), a screening component (22) is arranged.
2. The intelligent storage and recycling cabin for a test drug according to claim 1, characterized in that, The collection component (6) includes an inclined plate (61). The inclined plate (61) is fixedly connected inside the recycling box (5). The inner wall of the first box body (1) is fixedly connected with a diversion pipe (62). On the side of the diversion pipe (62) close to the recycling box (5), a diversion port (64) is opened. Inside the first box body (1), a collection trough (63) is fixedly connected.
3. The intelligent storage and recycling cabin for a test drug according to claim 1, characterized in that, The disassembly component (7) includes a connection block (71). The connection block (71) is fixedly connected to the bottom of the recycling box (5). One end of the connection block (71) away from the recycling box (5) is rotatably connected with a pressure block (72). On the top of the connection block (71), an insertion block (74) is fixedly connected. At the bottom of the convex block (10), a slot (75) is opened. A spring piece (73) is installed between the recycling box (5) and the pressure block (72). The insertion block (74) is slidably connected to the middle of the slot (75).
4. An intelligent storage and recycling chamber for a test drug according to claim 1, characterized in that, The weighing and display component (8) includes a processor (81). The processor (81) is installed inside the first box body (1). Inside the first drawer (3), a mounting plate (82) is fixedly connected. On the top of the processor (81), a medicine placing slot (84) is installed. At the bottom of the mounting plate (82), a weighing device (83) is installed. Above the first drawer (3), a display screen (85) is installed. Both the weighing device (83) and the display screen (85) are electrically connected to the processor (81).
5. An intelligent storage and recycling cabin for a test drug according to claim 1, wherein, The refrigeration assembly (9) includes a refrigeration box (91), the refrigeration box (91) is fixedly connected inside the second box body (2), a coil pipe (92) is sleeved outside the refrigeration box (91), both ends of the coil pipe (92) are respectively fixedly connected with an inlet (93) and an outlet (94), and the second drawer (4) is slidably connected inside the refrigeration box (91).
6. The intelligent storage and recycling cabin for a test drug according to claim 1, wherein The screening assembly (22) includes a micro motor (2201), the micro motor (2201) is installed on the outer wall of the recycling box (5), the output end of the micro motor (2201) is fixedly connected with a rotating shaft (2202), an eccentric block (2203) is fixedly connected to the end of the rotating shaft (2202) away from the micro motor (2201), a rotating rod (2205) is fixedly connected inside the filtrate plate (11), a spring (2204) is installed at the bottom of the filtrate plate (11), a guiding pipe (2206) is installed on the side of the recycling box (5) away from the micro motor (2201), and a collection box (2207) is arranged directly below the guiding pipe (2206).
7. An intelligent storage and recovery chamber for a test drug according to claim 1, characterized in that, The recycling box (5) is slidably connected to the side of the bump (10) away from the first box body (1), the second drawer (4) is arranged at the bottom side of the first drawer (3), the spray head (19) is arranged directly above the filtrate plate (11), and the sealing plate (12) is rotatably connected to the middle of the recycling box (5).
8. An intelligent storage and recycling cabin for a test drug according to claim 1, characterized in that, The handle (14) is arranged at the bottom side of the nameplate (15), and both the handle (14) and the nameplate (15) are slidably connected inside the first box body (1).
9. The intelligent storage and recycling chamber for test drugs according to claim 2, characterized in that, The inclined plate (61) is arranged directly below the bump (10), and the diversion pipe (62) is fixedly connected to the top of the collection trough (63).
10. The intelligent storage and recycling chamber for a test drug according to claim 6, characterized in that, The eccentric block (2203) abuts against the bottom of the filtrate plate (11), and the rotating rod (2205) is rotatably connected to the inner wall of the recycling box (5).