Medication container destruction apparatus
By designing a drug container destruction device that includes a verification module, a crushing module, and a weighing module, the safety and regulatory loopholes in the destruction of toxic drug containers have been addressed. This has enabled full-process digital tracking of drug information and improved measurement accuracy, thereby enhancing destruction efficiency and regulatory transparency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHENGRUI HUAXIN (SHENZHEN) TECHNOLOGY CO LTD
- Filing Date
- 2025-07-17
- Publication Date
- 2026-06-23
AI Technical Summary
Existing technologies for destroying containers of toxic drugs, narcotic drugs, and psychotropic drugs suffer from insufficient safety, regulatory loopholes, and inaccurate measurement, making it difficult to ensure the legality of the operation and the accurate counting of drug residues.
A pharmaceutical container destruction device was designed, comprising an authentication module, a crushing module, a sharps container, and a weighing module. The device authenticates the pharmaceutical container, crushes it, and uses a reactive substance to treat the remaining pharmaceuticals. Combined with the weighing module, it calculates the amount of remaining pharmaceuticals, achieving full-process digital tracking.
This improved the safety and compliance of drug container destruction, ensured the identity verification of operators, achieved full-process transparency and measurement accuracy of drug information supervision, and enhanced destruction efficiency and supervision capabilities.
Smart Images

Figure CN224389579U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of medical waste treatment technology, and in particular to a pharmaceutical container destruction device. Background Technology
[0002] Toxic drugs, narcotic drugs, and psychotropic drugs are special drugs under strict national control. Their use and disposal must comply with relevant laws and regulations to prevent abuse or illegal circulation. Currently, medical institutions typically dispose of the packaging containers of such drugs (such as ampoules, vials, and infusion bags) through manual registration, centralized incineration, or mechanical shredding. However, existing technologies have the following problems:
[0003] Insufficient safety: Traditional manual disposal methods cannot ensure the legal authority of operators, and some drug containers may contain high concentrations of drugs. If not properly handled, this may cause environmental pollution or lead to illegal channels.
[0004] Regulatory loopholes: Existing destruction equipment lacks automated identity verification and information recording functions, making it impossible to link the information of operators and destroyed drugs in real time, resulting in difficulties in regulatory traceability.
[0005] Inaccurate measurement: Before destruction, the amount of residual drugs in the container needs to be counted to meet the requirements of drug supervision. However, manual weighing is inefficient and prone to errors, making it difficult to meet the needs of high-precision supervision. Utility Model Content
[0006] The main purpose of this invention is to propose a pharmaceutical container destruction device, which aims to improve the safety, compliance and automation of the destruction of controlled pharmaceutical containers.
[0007] To achieve the above objectives, the present invention provides a pharmaceutical container destruction device, comprising:
[0008] The frame has a second feeding port;
[0009] A verification module is located on the rack, and the verification module is at least able to verify the identity of the operator and the information of the drug container to be destroyed.
[0010] A crushing module is provided on the frame. The crushing module has a feed inlet and a discharge outlet. The feed inlet is connected to a second feeding port. The crushing module is used to crush the medicine container to be destroyed that enters through the feed inlet.
[0011] A sharps container is provided on the frame and connected to the discharge port. It is used to hold the crushed medicine container and the remaining medicine. The sharps container contains a reactive substance that can react with the remaining medicine.
[0012] A weighing module is provided on the frame. The weighing module is capable of weighing the container of medicine to be destroyed that is fed into the second feeding port in order to calculate the residual medicine content in the container of medicine to be destroyed.
[0013] In one embodiment, the weighing module includes a weighing device located below the second feeding port.
[0014] In one embodiment, the weighing module and the second feeding port are both located on one side of the feed port. The weighing module further includes a push rod assembly, which can push the container of medicine to be destroyed on the weigher to move to the feed port.
[0015] In one embodiment, the push rod assembly includes a first drive structure, a push rod, and a first guide rail disposed on one side of the weighing device, wherein the first guide rail extends along the arrangement direction of the weighing device and the feed inlet, and the first drive structure drives the push rod to push the container of medicine to be destroyed to move to the feed inlet.
[0016] In one embodiment, the push rod is provided with a limiting groove for the container of medicine to be destroyed to be inserted.
[0017] In one embodiment, the weighing module further includes an extension section, one side of which is connected to the weighing device and the other side is connected to the feed inlet. The weighing device and the extension section together form a conveying channel for the movement of the container of medicine to be destroyed.
[0018] In one embodiment, the frame further includes a first feeding port, which is located above the feed inlet.
[0019] In one embodiment, the feed inlet is equipped with a second sensor, which is capable of detecting the number of pharmaceutical containers to be destroyed passing through the feed inlet.
[0020] In one embodiment, a second baffle is provided at the second feeding port, the second baffle is slidably installed at the second feeding port to control the opening and closing of the second feeding port, and a first sensor is provided at the second feeding port, the first sensor being able to detect obstacles at the second feeding port.
[0021] In one embodiment, the verification module includes a face recognition module, a camera module, an identity recognition module, and a barcode scanning module. The face recognition module and the identity recognition module are used to verify the operator's information, the barcode scanning module is used to verify the information of the drug container to be destroyed, and the camera module is used to monitor the operator's operation process.
[0022] The technical solution of this utility model involves setting a second feeding port, a verification module, a crushing module, a sharps container, and a load-bearing module on the frame. The verification module can at least verify the operator's identity and the information of the medicine container to be destroyed. Only after confirming that the verification is correct can the control module control the opening of the second feeding port to ensure the compliance of the operation. The crushing module has an inlet and an outlet. The inlet is connected to the second feeding port. The operator puts the verified medicine container to be destroyed into the frame through the second feeding port and into the crushing module through the inlet, thereby thoroughly crushing the medicine container. The crushed medicine container and residual medicine enter the sharps container through the outlet. The sharps container holds the crushed medicine container and residual medicine, and contains a reactive substance that can react with the residual medicine to render it harmless, thereby reducing the possibility of environmental pollution. Furthermore, this drug container destruction equipment only requires operators to put the corresponding medicine bottles to be destroyed into the feeding port to achieve the destruction of special drugs, which is convenient for medical institutions to destroy special drugs. In addition, by introducing intelligent verification steps, it realizes closed-loop management from medication to destruction, improves regulatory transparency, achieves full-process digital tracking, and solves the problems of low efficiency and poor safety of traditional manual destruction.
[0023] Furthermore, the weighing module can weigh the container of medicine to be destroyed that is fed into the second feeding port, and can transmit the data to the control module of the whole machine. The control module can retrieve the net weight of the container of medicine to be destroyed in its memory, thereby obtaining the weight of the residual liquid inside, and then calculating the residual drug content accordingly, so as to calculate the remaining drug content, complete the tracking of drug information, and thus count the amount of residual drug in the container of medicine to be destroyed to meet the requirements of drug supervision. Attached Figure Description
[0024] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0025] Figure 1 A schematic diagram of the structure of an embodiment of the pharmaceutical container destruction device provided by this utility model;
[0026] Figure 2 for Figure 1 A schematic diagram of the structure of the medicine container destruction equipment when the first and second feeding ports are opened;
[0027] Figure 3 for Figure 1 A schematic diagram of the internal structure of a Chinese medicine container destruction device from one angle;
[0028] Figure 4 for Figure 1 Another perspective on the internal structure of a Chinese medicine container destruction device;
[0029] Figure 5 for Figure 1 Another perspective on the internal structure of a Chinese medicine container destruction equipment;
[0030] Figure 6 for Figure 1 A schematic diagram of the assembly structure of the weighing module and the crushing module in the process;
[0031] Figure 7 for Figure 1 A schematic diagram of the structure of the weighing module at one angle;
[0032] Figure 8 for Figure 1 Another structural diagram of the weighing module;
[0033] Figure 9 for Figure 1 A schematic diagram of the intermediate crushing module from one angle;
[0034] Figure 10 for Figure 1 Another structural diagram of the medium crushing module.
[0035] Explanation of icon numbers:
[0036] 1. Frame; 11. First feeding port; 12. Second feeding port; 13. Main body; 131. Operating platform; 14. Mounting unit; 15. Second baffle; 17. First sensor; 2. Verification module; 21. Face recognition module; 22. Camera module; 23. Identity recognition module; 24. Code scanning module; 3. Crushing module; 31. Feed inlet; 311. Enclosure; 33. Crushing roller; 34. Third drive structure; 37. Second sensor; 38. Gear set; 4. Sharps box; 5. Verification module; 6. Weighing module; 61. Weigher; 62. Push rod assembly; 621. First drive structure; 622. Push rod; 623. Limiting groove; 624. First guide rail; 63. Extension part; 64. Transmission belt; 65. Drive wheel; 66. Driven wheel; 7. Display module.
[0037] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0038] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.
[0039] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.
[0040] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0041] This utility model proposes a pharmaceutical container destruction device. The special pharmaceutical containers destroyed by this device mainly refer to ampoules or vials, syringes, and disposable infusion pumps containing narcotic drugs, psychotropic substances, etc., which may contain residual liquid. This pharmaceutical container destruction device is typically based on the hospital's narcotic drug management process, where RFID electronic tags or QR codes are affixed to the bottom of the bottles. This device can solve the problems of information tracking, management, and harmless disposal of special pharmaceuticals, especially narcotic drugs; moreover, the device can automatically generate reports based on a background database to track information on the bottles themselves; thus improving the control capabilities of special pharmaceuticals and enhancing management efficiency.
[0042] This utility model proposes a device for destroying medicine containers.
[0043] Please see Figures 1 to 5 In one embodiment of this utility model, the drug container destruction device includes:
[0044] The frame 1 has a second feeding port 12.
[0045] Verification module 2, located on rack 1, is capable of verifying at least the identity of the operator and the information of the drug container to be destroyed;
[0046] The crushing module 3 is located on the frame 1. The crushing module 3 has a feed inlet 31 and a discharge outlet. The feed inlet 31 is connected to the second feeding port 12. The crushing module 3 is used to crush the medicine containers to be destroyed that enter through the feed inlet 31.
[0047] The sharps container 4 is located on the frame 1 and connected to the discharge port. It is used to hold the crushed medicine container and the remaining medicine. The sharps container 4 contains a reactive substance that can react with the remaining medicine.
[0048] Weighing module 6 is located on frame 1. Weighing module 6 can weigh the medicine container to be destroyed that is fed into the second feeding port 12 in order to calculate the residual medicine content in the medicine container to be destroyed.
[0049] Specifically, the frame 1, as the supporting structure of the entire equipment, has good load-bearing capacity and stability to ensure that the modules will not shift or be damaged during operation. Verification module 2, crushing module 3, sharps container 4, and weighing module 6 are all located on the frame 1. Verification module 2 can at least verify the operator's identity and the information of the medicine containers to be destroyed. This verification module 2 can achieve identity verification through biometric technology (such as fingerprint recognition, facial recognition) and / or RFID tag identification technology, and obtain the information of the medicine containers to be destroyed by scanning the barcodes or QR codes on the medicine containers to achieve drug information tracking. Furthermore, the output of verification module 2 directly affects the initiation of subsequent processes. Only after confirming that the verification is correct can the control module control the opening of the second feeding port 12 to ensure the compliance of the operation.
[0050] For example, verification module 2 includes a face recognition module 21, a camera module 22, an identity recognition module 23, and a barcode scanning module 24. Both face recognition module 21 and identity recognition module 23 are used to verify operator information, barcode scanning module 24 is used to verify information about the medicine container to be destroyed, and camera module 22 is used to monitor the operator's operation process. Specifically, face recognition module 21 detects the user's facial information, identity recognition module 23 verifies the operator's identification information to verify the user's identity and ensure that the operation is performed by the right person. Barcode scanning module 24 verifies information about the medicine container to be destroyed to track medicine information, and camera module 22 records the entire process to monitor the operator's operation, ensuring the legality and compliance of the operation and facilitating the retrieval of evidence of the destruction of the corresponding medicine, further improving regulatory transparency. In addition, a fingerprint recognition module can also be added to achieve multi-factor authentication and ensure the compliance of the operation.
[0051] The pulverizing module 3 has an inlet 31 and an outlet. The inlet 31 is connected to the second feeding port 12. The operator feeds the verified drug container to be destroyed into the frame 1 through the second feeding port 12. The container passes through the weighing module 6 and then into the pulverizing module 3 through the inlet 31, thus thoroughly pulverizing the drug container. The pulverized drug container and residual drug enter the sharps container 4 through the outlet. The sharps container 4 contains the pulverized drug container and residual drug, and contains a reactive substance that reacts with the residual drug to render it harmless, thereby reducing the possibility of environmental pollution. This drug container destruction equipment only requires the operator to feed the corresponding drug container into the feeding port to destroy special drugs, facilitating the destruction of special drugs in medical institutions. Furthermore, by introducing intelligent verification steps, it achieves closed-loop management from medication to destruction, improving regulatory transparency and achieving full-process digital tracking, solving the problems of low efficiency and poor safety of traditional manual destruction.
[0052] The weighing module 6 can weigh the container of medicine to be destroyed that is fed into the second feeding port 12 to calculate the residual medicine content inside the container. It should be noted that the second feeding port 12 is mainly used for feeding containers containing residual medicine, such as disposable infusion pumps, ampoules, or vials. When the container of medicine to be destroyed falls onto the weighing module 6, it can be weighed, and the data can be transmitted to the control module of the whole machine. The control module can retrieve the net weight of the container of medicine to be destroyed from its memory to obtain the weight of the residual liquid inside, and then calculate the residual medicine content accordingly to verify the remaining medicine content and complete the tracking of medicine information.
[0053] In this solution, the drug container destruction equipment also includes a control module, which is electrically connected to the verification module 2, the crushing module 3 and the load-bearing module respectively, to control the operation of the verification module 2, the crushing module 3 and the load-bearing module, and to ensure the orderly progress of each step.
[0054] In this embodiment, the frame 1 includes a main body 13 and a mounting part 14 located on the upper side of the main body 13. The drug container destruction equipment also includes a display module 7. The display module 7 and the verification module 2 are both located on the mounting part 14. The crushing module 3, the sharps box 4, and the weighing module 6 are all located on the main body 13. The first feeding port 11 is located on the top of the main body 13. The main body 13 serves as the main part of the frame 1. The mounting part 14 is located on the upper side of the main body 13, and the thickness of the mounting part 14 is less than the thickness of the main body 13. Therefore, the mounting part 14 only occupies part of the space of the main body 13, and the remaining space forms an operating platform 131. The second feeding port 12 is located on the operating platform 131. The display module 7 and the verification module 2 are both located on the mounting part 14. This allows the operator to perform relevant operations while standing in front of the frame 1, without having to repeatedly stand up or squat down during the operation, thus facilitating user operation. Furthermore, the display module 7 can indicate the movement process of the equipment and guide or prompt the operator. Furthermore, the display module 7 can be a touch screen, and it is electrically connected to the control module, meaning it can also serve as an operation panel, facilitating user control of the various modules of the device. Simultaneously, the installation section 14 and the main body 13 facilitate functional partitioning of the device, thereby simplifying maintenance.
[0055] The crushing module 3, sharps container 4, and weighing module 6 are all located in the main body 13. The main body 13 is cabinet-shaped and can be divided into multiple layers. The sharps container 4 can be positioned on the lower layer of the crushing module 3, and the weighing module 5 can be positioned on the upper layer, facilitating the installation of multiple modules. A cabinet door is located on one side of the main body 13, which can be opened and closed to allow operators to easily empty or replace the sharps container 4. With the door open, users can directly observe the operation of each module, facilitating future maintenance.
[0056] In one embodiment, the weighing module 6 includes a weighing device 61, which is located below the second feeding port 12. When the medicine container to be destroyed is fed through the second feeding port 12, it can fall directly onto the weighing device 61, thereby weighing the medicine container to be destroyed, thus improving the rationality of the module settings and reducing the destruction steps.
[0057] Please see Figures 6 to 8In this embodiment of the invention, the weighing module 6 and the second feeding port 12 are both located on one side of the inlet 31. The weighing module 6 also includes a pusher assembly 62, which can push the medicine container to be destroyed on the weigher 61 to the inlet 31. In this solution, the weighing module 6 and the second feeding port 12 are both located on one side of the inlet 31. The weighed medicine container to be destroyed is pushed into the inlet 31 by the pusher assembly 62, which facilitates the feeding of the medicine container to be destroyed into the inlet 31 without the need for additional manual transfer of the medicine container to be destroyed, thereby improving machine automation.
[0058] Furthermore, the push rod assembly 62 includes a first drive structure 621, a push rod 622, and a first guide rail 624 disposed on one side of the weighing device 61. The first guide rail 624 extends along the arrangement direction of the weighing device 61 and the feed inlet 31. The drive structure drives the push rod 622 to push the container of medicine to be destroyed to the feed inlet 31. Specifically, the first drive structure 621 drives the push rod 622 to slide along the first guide rail 624 through a pulley structure. The pulley structure includes a drive wheel 65, a driven wheel 66, and a transmission belt 64. The drive wheel 65 is connected to the output shaft of the first drive structure 621. The driven wheel 66 is disposed at the far end of the first guide rail 624. The transmission belt 64 surrounds the drive wheel 65 and the driven wheel 66 and is fixedly connected to the push rod 622. When the first drive structure 621 is activated, the drive wheel 65 drives the transmission belt 64 to move, which in turn drives the push rod 622 to move along the first guide rail 624, so as to smoothly move the medicine container to be destroyed from the weighing device 61 to the feed inlet 31. A slider or roller can be provided at the bottom of the push rod 622 to cooperate with the first guide rail 624 to reduce frictional resistance and improve the stability and durability of the push rod 622's movement. Through the above design, the push rod assembly 62 can efficiently and reliably push the weighed medicine container to the feed inlet 31, ensuring the continuity and automation of the destruction process, while reducing the need for manual intervention and improving overall operational efficiency.
[0059] In this solution, the push rod 622 slides between the weighing device 61 and the feed inlet 31 to move the container of medicine to be destroyed, thereby improving the stability of the movement of the container. In other embodiments, the push rod assembly 62 is located on the side of the weighing device 61 away from the feed inlet 31, and the push rod assembly 62 includes a telescopic rod and a drive motor. The drive motor drives the telescopic rod to extend and retract, thereby pushing the container of medicine to be destroyed into the feed inlet 31.
[0060] In order to ensure that the push rod 622 can stably push the medicine container to be destroyed, in one embodiment, the push rod 622 is provided with a limiting groove 623 for the medicine container to be destroyed to be inserted into, thereby reducing the possibility of the medicine container to be destroyed being offset relative to the push rod 622 and improving the working reliability of the push rod assembly 62.
[0061] In the embodiments of this utility model, see again Figures 6 to 8 The weighing module 6 also includes an extension section 63. One side of the extension section 63 is connected to the weighing device 61, and the other side is connected to the feed inlet 31. The weighing device 61 and the extension section 63 together form a conveying channel for the movement of the medicine containers to be destroyed. The extension section 63 connects the weighing device 61 and the feed inlet 31, effectively preventing the medicine containers from jamming or shifting during transfer. It also ensures the accuracy of the weighing data, avoiding weighing errors caused by container shaking or misalignment. Furthermore, this structure simplifies the equipment layout and improves the continuity and efficiency of the medicine destruction process.
[0062] The extension 63 can be a flat plate structure, with its top surface flush with the bearing surface of the weighing device 61, to ensure that the medicine container to be destroyed can smoothly transition to the extension 63 after weighing and slide into the feed inlet 31 along the conveying channel. Furthermore, the length of the extension 63 can be adjusted according to actual needs to accommodate medicine containers of different sizes or different equipment layouts. In a preferred embodiment, the extension 63 and the weighing device 61 are connected in a detachable manner, such as by bolt fixing or snap-fit, for easy maintenance or replacement. Of course, in other embodiments, the extension 63 may not be provided, that is, one side of the weighing device 61 directly abuts against the feed inlet 31.
[0063] Furthermore, the feed inlet 31 is equipped with a second sensor 37, which can detect the number of medicine containers to be destroyed passing through the feed inlet 31. Specifically, the second sensor 37 is electrically connected to the control module. This second sensor 37 can detect the medicine containers to be destroyed passing through the feed inlet 31 and transmit the data to the control module to ensure that the pusher assembly 62 pushes the medicine containers to be destroyed into the pulverizing module 3. When batch transfer is required, the second sensor 37 can continuously transmit detection signals to the control module. The control module records the medicine containers to be destroyed entering the pulverizing module 3, thereby completing a second verification of the medicine containers to be destroyed.
[0064] See Figures 1 to 6 , Figure 9 and Figure 10 In this embodiment of the invention, the frame 1 also has a first feeding port 11, which is located above the feed inlet 31. Specifically, the first feeding port 11 is mainly used to feed medicine containers without residual medicine, such as syringes, as well as ampoules or vials without residual medicine inside. By setting the first feeding port 11 and the second feeding port 12, the medicine containers to be destroyed can be classified and fed, thereby reducing unnecessary verification steps and improving destruction efficiency.
[0065] Furthermore, in this solution, a verification module 5 is provided between the first feeding port 11 and the feeding port 31 of the crushing module 3. The verification module 5 is used to perform a second verification of the verified information of the drug containers to be destroyed, further ensuring the accuracy of the information. After verification, the verification module 5 automatically feeds the qualified drug containers into the feeding port 31 of the crushing module 3, further improving the automation level of the equipment and the accuracy of verification. The existence of this verification module 5 also helps to realize the batch feeding of drug containers to be destroyed. Moreover, the verification module 5 can further block the feeding port 31, thereby providing a buffer for the equipment from the feeding and crushing process. The verified drug containers to be destroyed are fed into the crushing module 3 for crushing, while the operator can feed through the first feeding port 11; that is, the feeding and crushing processes are carried out simultaneously, which helps to improve the crushing efficiency.
[0066] In this design, the first feeding port 11 is located above the inlet 31, and the second feeding port 12 is located on one side of the inlet 31. The top surface of the weighing module 6 is higher than or flush with one side of the inlet 31, ensuring that the containers of medicines to be destroyed fall smoothly into the inlet 31. To further improve the reliability of the equipment, a surrounding plate 311 is provided on the side of the inlet 31 that abuts against the weighing module 6, thus forming a barrier around the inlet 31 and reducing the possibility of the containers of medicines to be destroyed falling out of the inlet 31. This barrier gradually expands away from the inlet 31, thereby increasing the feeding area of the inlet 31 and facilitating the feeding of materials into the inlet 31 by the verification module 5.
[0067] To improve the safety of equipment use, in one embodiment, a second baffle 15 is provided at the second feeding port 12. The second baffle 15 is slidably installed at the second feeding port 12 to control the opening and closing of the second feeding port 12. A first sensor 17 is also provided at the second feeding port 12, capable of detecting obstacles at the second feeding port 12. Specifically, the second baffle 15 can be slidably installed on a fourth guide rail. A sixth drive structure drives the second baffle 15 to slide on the fourth guide rail, thereby controlling the opening and closing of the second feeding port 12. The sixth drive structure is electrically connected to the control module, thereby controlling its operation and ultimately controlling the closing of the second feeding port 12. The first sensor 17 is also provided at the second feeding port 12, capable of detecting obstacles at the second feeding port 12, thus determining that there are no obstructions at the second feeding port 12, thereby improving safety and reducing the possibility of fingers being pinched by the second baffle 15.
[0068] In another embodiment, a second baffle 15 is also provided at the first feeding port 11. The second baffle 15 is slidably installed at the first feeding port 11 to control the opening and closing of the first feeding port 11. A first sensor 17 is also provided at the first feeding port 11, capable of detecting obstacles at the first feeding port 11. Specifically, the second baffle 15 can be slidably installed on a third guide rail. A fifth drive structure drives the second baffle 15 to slide on the third guide rail, thereby controlling the opening and closing of the first feeding port 11. The fifth drive structure is electrically connected to the control module, thereby controlling its operation and ultimately controlling the closing of the first feeding port 11. Furthermore, the first sensor 17 at the first feeding port 11 can detect obstacles at the first feeding port 11, thus determining that there are no obstacles obstructing the first feeding port 11, thereby improving safety and reducing the possibility of fingers being pinched by the second baffle 15.
[0069] The above are merely exemplary embodiments of this utility model and are not intended to limit the scope of this utility model. Any equivalent structural transformations made based on the technical concept of this utility model and the contents of this utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the protection scope of this utility model.
Claims
1. A pharmaceutical container destruction device, characterized in that, include: The frame has a second feeding port; A verification module is located on the rack, and the verification module is at least able to verify the identity of the operator and the information of the drug container to be destroyed. A crushing module is provided on the frame. The crushing module has a feed inlet and a discharge outlet. The feed inlet is connected to a second feeding port. The crushing module is used to crush the medicine container to be destroyed that enters through the feed inlet. A sharps container is provided on the frame and connected to the discharge port. It is used to hold the crushed medicine container and the remaining medicine. The sharps container contains a reactive substance that can react with the remaining medicine. A weighing module is provided on the frame. The weighing module is capable of weighing the container of medicine to be destroyed that is fed into the second feeding port in order to calculate the residual medicine content in the container of medicine to be destroyed.
2. The pharmaceutical container destruction equipment as described in claim 1, characterized in that, The weighing module includes a weighing device, which is located below the second feeding port.
3. The pharmaceutical container destruction equipment as described in claim 2, characterized in that, The weighing module and the second feeding port are both located on one side of the feeding port. The weighing module also includes a push rod assembly, which can push the container of medicine to be destroyed on the weigher to move to the feeding port.
4. The pharmaceutical container destruction equipment as described in claim 3, characterized in that, The push rod assembly includes a first drive structure, a push rod, and a first guide rail disposed on one side of the weighing device. The first guide rail extends along the arrangement direction of the weighing device and the feed inlet. The first drive structure drives the push rod to push the container of medicine to be destroyed to the feed inlet.
5. The pharmaceutical container destruction equipment as described in claim 4, characterized in that, The push rod is provided with a limiting groove for the container of medicine to be destroyed to be inserted.
6. The pharmaceutical container destruction equipment as described in claim 3, characterized in that, The weighing module also includes an extension section, one side of which is connected to the weighing device and the other side is connected to the feed inlet. The weighing device and the extension section together form a conveying channel for the movement of the container of medicine to be destroyed.
7. The pharmaceutical container destruction equipment as described in claim 3, characterized in that, The frame also has a first feeding port, which is located above the feed inlet.
8. The pharmaceutical container destruction equipment as described in claim 1, characterized in that, The feed inlet is equipped with a second sensor, which can detect the number of medicine containers to be destroyed passing through the feed inlet.
9. The pharmaceutical container destruction equipment as described in claim 1, characterized in that, A second baffle is provided at the second feeding port. The second baffle is slidably installed at the second feeding port to control the opening and closing of the second feeding port. A first sensor is provided at the second feeding port, which can detect obstacles at the second feeding port.
10. The pharmaceutical container destruction equipment as described in any one of claims 1 to 9, characterized in that, The verification module includes a face recognition module, a camera module, an identity recognition module, and a barcode scanning module. The face recognition module and the identity recognition module are used to verify the operator's information, the barcode scanning module is used to verify the information of the medicine container to be destroyed, and the camera module is used to monitor the operator's operation process.