Analyzing equipment for online detection of medicines

The automated cleaning system solves the problem of manual cleaning of the liquid storage detection box in the online drug detection equipment, realizes continuous operation of the equipment and accuracy of the detection results, and improves overall efficiency and cleanliness.

CN223992882UActive Publication Date: 2026-03-13YUNNAN MEDICAL HEALTH COLLEGE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

Existing online drug testing equipment requires manual cleaning of the liquid storage testing box when processing multiple drug samples, which leads to longer testing time, reduced efficiency, inconsistent or delayed test results.

Method used

An automated cleaning system was designed, including a rotating disc, an electric push rod, and a high-pressure rotating nozzle. By automating the cleaning, storage, and testing of the test box, the manual cleaning steps are eliminated, enabling continuous operation of the equipment and ensuring the accuracy of the test results.

Benefits of technology

It improves the overall efficiency of drug testing, reduces manual operation, ensures the cleanliness of the liquid storage test box, reduces the risk of human error and cross-contamination, and guarantees the continuity and consistency of test results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of medicine detection equipment, and discloses analysis equipment for online medicine detection, which comprises a support table, a medicine analysis equipment main body arranged on the upper surface of the support table, and a first electric push rod fixedly arranged on the upper surface of the support table, according to the analysis equipment for drug online detection, frequent manual cleaning steps are eliminated through an automatic cleaning system, the time required for cleaning is greatly shortened, and therefore the overall efficiency of drug detection is improved, the labor intensity of workers is reduced, and the detection efficiency is improved. According to the automatic cleaning process, the workload of operators is reduced, the labor intensity is reduced, the operators can put more energy into other key tasks, the cleanliness of the liquid storage detection box is ensured, the risks of personal errors and cross contamination are reduced, and the accuracy and consistency of detection results are improved.
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Description

Technical Field

[0001] This utility model relates to the field of drug detection equipment technology, specifically to an analytical device for online drug detection. Background Technology

[0002] With the rapid development of the pharmaceutical industry, drug quality control and production efficiency have become increasingly important issues. In the drug production process, real-time monitoring of parameters such as drug mixing uniformity, content, and purity is of great significance for ensuring drug quality and improving production efficiency.

[0003] While existing online drug detection equipment can meet basic detection needs, its design shortcomings become apparent when processing multiple drug samples. The liquid storage detection cartridges in the equipment require manual cleaning after each use for reuse. Frequent manual cleaning extends the overall drug detection time, reduces operational efficiency, and interrupts equipment operation due to cleaning steps. This not only affects the continuity of detection but may also lead to inconsistent or delayed test results. Therefore, we propose an analytical device for online drug detection to address the aforementioned problems. Utility Model Content

[0004] To address the shortcomings of existing technologies, this invention provides an analytical device for online drug detection. It solves the problem that the liquid storage detection box in the device needs to be manually cleaned after use for reuse. Frequent manual cleaning steps prolong the overall drug detection time, reduce operational efficiency, and interrupt the operation of the device due to the cleaning steps. This not only affects the continuity of detection but may also lead to inconsistent or delayed detection results.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: an analytical device for online drug detection, comprising a support platform, a drug analysis device body mounted on the upper surface of the support platform, and a first electric push rod fixedly mounted on the upper surface of the support platform. The output end of the first electric push rod is fixedly mounted with a detection probe through a mounting plate. The detection probe and the drug analysis device body are electrically connected through a wire. A rotating disk is provided above the support platform, and a drive motor for driving the rotating disk to rotate is mounted on the support platform.

[0006] The upper surface of the rotating disk is fixed with multiple sets of support frames arranged in a ring at equal intervals;

[0007] The support frame is equipped with a storage and testing box;

[0008] The support frame is equipped with a rotating mechanism that can drive the storage and testing box to flip over.

[0009] The support platform is equipped with a cleaning mechanism for cleaning the storage and testing boxes.

[0010] Preferably, the upper surface of the support platform is fixed with an open mounting base, the drive motor is fixedly installed in the mounting base, a central shaft is fixed at the bottom center of the rotating disk, and the central shaft and the mounting base are rotatably connected by bearings, and the output end of the drive motor is fixedly connected to the central shaft.

[0011] Preferably, the rotating mechanism includes a second electric push rod fixedly mounted on the surface of the support frame by a fixing block and a rack fixed to the output end of the second electric push rod. The surface of the storage and detection box is fixed with symmetrically arranged connecting shafts, and the connecting shafts are rotatably connected to the support frame through bearings. One set of connecting shafts is fixed with gears that mesh with the rack. The surface of the support frame is fixed with a protective cover to shield and protect the second electric push rod. The support frame is provided with four sets of protective covers.

[0012] Preferably, the cleaning mechanism includes a sewage storage shell fixed on the upper surface of the support platform and a crossbeam plate fixed on the upper surface of the sewage storage shell. A third electric push rod is fixed on the upper surface of the crossbeam plate, and the output end of the third electric push rod is fixed to a conical bucket shell through a connecting plate.

[0013] An annular disc is fixed to the open portion of the upper surface of the conical shell. A drainage disc is fixed inside the annular disc. A high-pressure rotary nozzle is fixedly installed on the drainage disc. An L-shaped pipe is fixed to the input end of the high-pressure rotary nozzle. A water pump is fixed to the upper surface of the support platform. A water storage tank is fixed to the upper surface of the support platform near the water pump. The input end of the water pump is fixed and connected to the water storage tank via a connecting pipe. One end of the connecting pipe passes through the outside of the water storage tank and extends to the bottom of the inner cavity of the water storage tank. A delivery hose is fixed to the output end of the water pump. One end of the L-shaped pipe passes through the inside of the sewage storage shell and extends to the outside of the sewage storage shell, and is fixedly connected to one end of the delivery hose.

[0014] Preferably, a drain pipe is fixedly connected to one bottom side of the sewage storage shell, and a control valve is installed on the drain pipe.

[0015] Preferably, a dryer is fixedly installed on the upper surface of the support platform at a position corresponding to one of the sets of storage and testing boxes.

[0016] Beneficial effects

[0017] This invention provides an analytical device for online drug detection. Compared with the prior art, it has the following advantages:

[0018] This analytical device for online drug testing eliminates frequent manual cleaning steps through an automated cleaning system, significantly reducing cleaning time and thus improving the overall efficiency of drug testing. The automated cleaning process reduces the workload and labor intensity of operators, allowing them to focus more on other critical tasks. It also ensures the cleanliness of the liquid storage test box, reducing the risk of human error and cross-contamination, and improving the accuracy and consistency of test results. At the same time, the device can automatically complete the cleaning work without interrupting the testing process, ensuring the continuity of the testing process and avoiding inconsistent or delayed test results due to equipment downtime. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0020] Figure 2 This is a sectional view of the support platform and mounting base structure of this utility model;

[0021] Figure 3 This is a cross-sectional view of the protective cover structure of this utility model;

[0022] Figure 4 This is a schematic diagram of the cleaning mechanism of this utility model.

[0023] In the diagram: 101, support platform; 102, main body of drug analysis equipment; 103, detection probe; 104, first electric push rod; 105, mounting base; 106, drive motor; 107, rotating disk; 108, support frame; 109, storage and detection box; 110, dryer; 2, rotating mechanism; 201, second electric push rod; 202, rack; 203, gear; 204, protective cover; 3, cleaning mechanism; 301, water tank; 302, water pump; 303, conveying hose; 304, sewage storage shell; 305, conical shell; 306, L-shaped pipe; 307, annular disk; 308, drainage tray; 309, high-pressure rotating nozzle; 310, crossbeam plate; 311, third electric push rod. Detailed Implementation

[0024] 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 protection scope of the present utility model.

[0025] like Figure 1 As shown:

[0026] An analytical device for online drug detection includes a support platform 101, a drug analysis device body 102 mounted on the upper surface of the support platform 101, and a first electric push rod 104 fixedly mounted on the upper surface of the support platform 101. A detection probe 103 is fixedly mounted on the output end of the first electric push rod 104 through a mounting plate. The detection probe 103 and the drug analysis device body 102 are electrically connected by wires.

[0027] In this implementation plan: To address the technical problems existing in the prior art, such as those disclosed in the background art above, "Although the existing online drug detection equipment can meet basic detection needs, its design deficiencies become obvious when processing multiple drug samples. The liquid storage detection box in the equipment needs to be manually cleaned after use for reuse. Frequent manual cleaning steps prolong the overall drug detection time, reduce operational efficiency, and interrupt the operation of the equipment due to the cleaning steps. This not only affects the continuity of detection but may also lead to inconsistent or delayed detection results." In combination with the actual use, this problem is obviously a real and difficult-to-solve issue. All electrical equipment involved in this product is powered by an external power source.

[0028] It should be noted that the detection probe 103 has a built-in disinfection and cleaning mechanism that automatically cleans and disinfects the detection probe 103.

[0029] Furthermore:

[0030] like Figures 1-4 As shown:

[0031] Based on the above: A rotating disk 107 is provided above the support platform 101, and a drive motor 106 is installed on the support platform 101 to drive the rotating disk 107 to rotate. An open mounting base 105 is fixed on the upper surface of the support platform 101. The drive motor 106 is fixedly installed in the mounting base 105. A central shaft is fixed at the bottom center of the rotating disk 107, and the central shaft and the mounting base 105 are rotatably connected by bearings. The output end of the drive motor 106 is fixedly connected to the central shaft.

[0032] Multiple sets of support frames 108 arranged in a ring at equal intervals are fixed on the upper surface of the rotating disk 107;

[0033] A storage and testing box 109 is installed on the support frame 108;

[0034] A rotating mechanism 2 is installed on the support frame 108 to drive the storage and testing box 109 to flip over;

[0035] The rotating mechanism 2 includes a second electric push rod 201 fixedly mounted on the surface of the support frame 108 by a fixing block and a rack 202 fixed to the output end of the second electric push rod 201. The surface of the storage and detection box 109 is fixed with symmetrically arranged connecting shafts, and the connecting shafts are rotatably connected to the support frame 108 through bearings. One set of connecting shafts is fixed with gears 203 that mesh with the rack 202. The surface of the support frame 108 is fixed with a protective cover 204 that shields and protects the second electric push rod 201. The support frame 108 is provided with four sets of protective covers.

[0036] A cleaning mechanism 3 is installed on the support platform 101 to clean the storage and testing box 109;

[0037] The cleaning mechanism 3 includes a sewage storage shell 304 fixed on the upper surface of the support platform 101 and a crossbeam plate 310 fixed on the upper surface of the sewage storage shell 304. A third electric push rod 311 is fixed on the upper surface of the crossbeam plate 310, and a cone bucket shell 305 is fixed to the output end of the third electric push rod 311 through a connecting plate.

[0038] An annular disc 307 is fixed at the open end of the upper surface of the cone-shaped housing 305. A drainage disc 308 is fixed inside the annular disc 307. Multiple sets of through holes are opened on the surface of the drainage disc 308. A high-pressure rotary nozzle 309 is fixedly installed on the drainage disc 308. An L-shaped pipe 306 is fixed at the input end of the high-pressure rotary nozzle 309. A water pump 302 is fixed on the upper surface of the support platform 101. A water storage tank 301 is fixed on the upper surface of the support platform 101 near the water pump 302. The input end of the water pump 302 is fixed and connected to the water storage tank 301 through a connecting pipe. One end of the connecting pipe passes through the outside of the water storage tank 301 and extends to the bottom of the inner cavity of the water storage tank 301. A delivery hose 303 is fixed at the output end of the water pump 302. One end of the L-shaped pipe 306 passes through the inside of the sewage storage housing 304 and extends to the outside of the sewage storage housing 304, and is fixedly connected to one end of the delivery hose 303.

[0039] In this embodiment: When using the analytical device for online drug detection, the drug (which may be in liquid form) is poured into the leftmost storage and detection box 109. By starting the drive motor 106, the rotating disk 107 can be driven to rotate. The drive motor 106 is controlled by the PLC controller and can drive the rotating disk 107 to rotate to a certain angle. The rotation of the rotating disk 107 drives the support frame 108 and the storage and detection box 109 to rotate, so that the storage and detection box 109 containing the drug to be detected corresponds to the detection probe 103. Then the operation of the drive motor 106 is stopped.

[0040] refer to Figure 1As shown: Next, the first electric push rod 104 is activated to drive the detection probe 103 to move down, so that the detection probe 103 comes into contact with the drug inside the storage detection box 109, so that the main body 102 of the drug analysis device can perform analysis and detection operations.

[0041] After the test is completed, the first electric push rod 104 can drive the test probe 103 to move upward and reset.

[0042] refer to Figure 2 As shown: Next, the drive motor 106 is started again, which in turn drives the rotating disk 107, support frame 108 and storage and detection box 109 to rotate to the same angle and then stop.

[0043] After the drug storage and testing box 109 has completed the test, the rotating mechanism 2 drives the storage and testing box 109 to rotate 180°.

[0044] For detailed instructions, please refer to [link / reference]. Figure 3 As shown: by starting the second electric push rod 201, the rack 202 is moved, and the rack 202 and the gear 203 are meshed and connected, thereby driving the gear 203 to rotate. The gear 203 drives the connecting shaft to rotate, and the connecting shaft can drive the storage and detection box 109 to rotate synchronously, thereby driving the storage and detection box 109 to flip to 180°.

[0045] refer to Figure 4 As shown: The third electric push rod 311 is activated, and the crossbeam plate 310 supports the third electric push rod 311. A protective housing cover is provided on the outside of the third electric push rod 311 to protect it. Activation of the third electric push rod 311 drives components such as the cone-shaped housing 305 and the annular disk 307 to move upwards until the annular disk 307 contacts the open end of the overturned storage and testing box 109, thus activating the storage and testing box 109. The opening of 09 is sealed. At this time, the high-pressure rotary nozzle 309 is located in the cavity of the storage and testing box 109. By starting the water pump 302, the cleaning fluid inside the water tank 301 is extracted and delivered to the delivery hose 303. The delivery hose 303 delivers the fluid to the L-shaped pipe 306 and then discharges it through the high-pressure rotary nozzle 309. The high-pressure water flow discharged by the high-pressure rotary nozzle 309 is discharged to the inner surface of the storage and testing box 109 to rinse the inner cavity of the storage and testing box 109.

[0046] The flushing wastewater flows into the conical shell 305 through the through hole of the drain pan 308, and is discharged into the wastewater storage shell 304 through the conical shell 305;

[0047] When the annular disc 307 contacts the open end of the storage and testing box 109, the bottom end of the conical shell 305 is still inside the sewage storage shell 304, which allows for better drainage of the discharged sewage and reduces splashing. At the same time, the sealing of the storage and testing box 109 by the annular disc 307 also prevents splashing while rinsing the storage and testing box 109.

[0048] This solution eliminates frequent manual cleaning steps through an automated cleaning system, significantly reducing cleaning time and thus improving the overall efficiency of drug testing. The automated cleaning process reduces the workload and labor intensity of operators, allowing them to focus more on other critical tasks. It also ensures the cleanliness of the liquid storage test box, reducing the risk of human error and cross-contamination, and improving the accuracy and consistency of test results. At the same time, the equipment can automatically complete the cleaning work without interrupting the testing process, ensuring the continuity of the testing process and avoiding inconsistent or delayed test results due to equipment downtime.

[0049] It should be noted that the solution also includes an electrical control cabinet, which is installed on the support platform 101. During use, each electrical device can be started and operated through the electrical control cabinet. The power connection method of each electrical device is an existing mature technology and is well known to those in the field, so it will not be elaborated further here.

[0050] Furthermore;

[0051] In an optional embodiment, a drain pipe is fixedly connected to one bottom side of the sewage storage shell 304, and a control valve is installed on the drain pipe.

[0052] In this embodiment: a drain pipe is provided on one side of the sewage storage shell 304, and a control valve is installed on the drain pipe. By turning the control valve, the blockage of the drain pipe can be released, and the sewage inside the sewage storage shell 304 is discharged through the drain pipe.

[0053] Furthermore;

[0054] In an optional embodiment, a dryer 110 is fixedly installed on the upper surface of the support platform 101 at a position corresponding to one of the sets of storage and testing boxes 109, and the blowing end of the dryer 110 corresponds to one of the sets of storage and testing boxes 109.

[0055] In this embodiment: after rinsing the storage and testing box 109, the drive motor 106 is started again to drive the storage and testing box 109 to rotate, so that the storage and testing box 109 to be cleaned corresponds to the dryer 110. The airflow generated by the start of the dryer 110 dries the cleaned storage and testing box 109.

[0056] After drying, the storage and testing box 109 is rotated back to its initial position by the drive motor 106, and at the same time, the storage and testing box 109 is rotated 180° again by the rotating mechanism 2 for the next storage of medicine liquid.

[0057] The working principle and usage process of this utility model are as follows: In use, the analytical device for online drug detection pours the drug into the leftmost storage and detection box 109. The drive motor 106 is activated, driving the rotating disk 107 to rotate. The rotating disk 107 rotates to a certain angle, which in turn drives the support frame 108 and the storage and detection box 109 to rotate, aligning the storage and detection box 109 containing the drug with the detection probe 103. Then, the drive motor 106 is stopped. Next, the first electric push rod 104 is activated to drive the detection probe 103 downwards, allowing the detection probe 103 to contact the drug inside the storage and detection box 109. The main body 102 of the drug analysis equipment is used for analysis and detection operations. After the detection is completed, the first electric push rod 104 can drive the detection probe 103 to move upward and reset. Then, the drive motor 106 is started again, which drives the rotating disk 107, support frame 108 and storage detection box 109 to rotate to the same angle and stop. Specifically, the second electric push rod 201 is started, which drives the rack 202 to move. The rack 202 and gear 203 are meshed and connected, which drives the gear 203 to rotate. The gear 203 drives the connecting shaft to rotate, which drives the storage detection box 109 to rotate synchronously, thereby driving the storage detection box 109 to rotate 180°. The third electric push rod 31 is started. 1. By activating the third electric push rod 311, the cone-shaped housing 305 and the annular disc 307 are driven to move upward until the annular disc 307 contacts the open end of the overturned storage and testing box 109, sealing the open end of the storage and testing box 109. At this time, the high-pressure rotary nozzle 309 is located inside the cavity of the storage and testing box 109. By activating the water pump 302, the cleaning fluid inside the water tank 301 is extracted and transported to the delivery hose 303. The delivery hose 303 then transports the fluid to the L-shaped pipe 306, and then discharges it through the high-pressure rotary nozzle 309. The high-pressure water discharged by the rotating high-pressure rotary nozzle 309 is discharged onto the inner surface of the storage and testing box 109 to clean the storage and testing box 109. The inner cavity is rinsed; the rinsed wastewater flows into the conical shell 305 through the through hole of the drain pan 308, and is discharged into the wastewater storage shell 304 through the conical shell 305; after rinsing the storage and detection box 109, the drive motor 106 is started again to drive the storage and detection box 109 to rotate, so that the storage and detection box 109 to be cleaned corresponds to the dryer 110. The airflow generated by the start of the dryer 110 dries the cleaned storage and detection box 109; after drying, the storage and detection box 109 is rotated back to the initial position by the drive motor 106, and at the same time, the rotating mechanism 2 drives the storage and detection box 109 to rotate 180° again for the next storage of medicine liquid.

[0058] Furthermore, any content not described in detail in this specification is existing technology known to those skilled in the art.

Claims

1. An analysis device for online detection of drugs, comprising a support table (101), a drug analysis device main body (102) mounted on the upper surface of the support table (101), and a first electric push rod (104) fixedly mounted on the upper surface of the support table (101), and the output end of the first electric push rod (104) is fixedly mounted with a detection probe (103), characterized in that, The upper portion of the support table (101) is provided with a rotating disc (107), and the support table (101) is provided with a driving motor (106) for driving the rotating disc (107) to rotate; A plurality of groups of support frames (108) are fixedly arranged on the upper surface of the rotating disc (107) in a ring shape at equal intervals; The support frame (108) is provided with a storage detection box (109); The support frame (108) is provided with a rotating mechanism (2) for driving the storage detection box (109) to overturn; The support table (101) is provided with a cleaning mechanism (3) for cleaning the storage detection box (109).

2. The analytical apparatus for online detection of drugs according to claim 1, characterized in that: The upper surface of the support table (101) is fixedly provided with a mounting seat (105) in an open structure, the driving motor (106) is fixedly installed in the mounting seat (105), the bottom end center of the rotating disc (107) is fixedly provided with a center shaft, the center shaft and the mounting seat (105) are rotationally connected through a bearing, and the output end of the driving motor (106) is fixedly connected with the center shaft.

3. The analytical device for online detection of drugs according to claim 2, characterized in that: The rotating mechanism (2) comprises a second electric push rod (201) fixedly installed on the surface of the support frame (108) through a fixed block and a rack (202) fixedly installed at the output end of the second electric push rod (201), the surface of the storage detection box (109) is fixedly provided with a plurality of connection shafts arranged in a symmetrical manner, the connection shafts are rotationally connected with the support frame (108) through bearings, the surface of one group of connection shafts is fixedly provided with a gear (203) engaged with the rack (202), the surface of the support frame (108) is fixedly provided with a protective cover (204) for shielding and protecting the second electric push rod (201), and the support frame (108) is provided with four groups.

4. The analytical apparatus for online detection of drugs as claimed in claim 1 wherein: The cleaning mechanism (3) comprises a sewage storage shell (304) fixedly installed on the upper surface of the support table (101) and a cross beam plate (310) fixedly installed on the upper surface of the sewage storage shell (304), the upper surface of the cross beam plate (310) is fixedly provided with a third electric push rod (311), and the output end of the third electric push rod (311) is fixedly provided with a conical bucket shell (305) through a connecting plate; The upper surface of the conical bucket shell (305) is fixed with an annular disc (307), the inside of the annular disc (307) is fixed with a water repellent disc (308), the water repellent disc (308) is fixedly installed with a high-pressure rotating nozzle (309), the input end of the high-pressure rotating nozzle (309) is fixed with an L-shaped pipe (306), the upper surface of the support table (101) is fixed with a water pump (302), the upper surface of the support table (101) is fixed with a water storage tank (301) near the water pump (302), the input end of the water pump (302) is fixed and communicated with the water storage tank (301) through a connecting pipe, one end of the connecting pipe penetrates to the outside of the water storage tank (301) and extends to the bottom of the inner cavity of the water storage tank (301), the output end of the water pump (302) is fixed with a conveying hose (303), one end of the L-shaped pipe (306) penetrates to the inside of the sewage storage shell (304) and extends to the outside of the sewage storage shell (304) and is fixedly connected with one end of the conveying hose (303).

5. The analytical device for online detection of drugs according to claim 4, characterized in that: One side of the sewage storage shell (304) is fixedly communicated with a drainage pipe, and a control valve is installed on the drainage pipe.

6. The analytical apparatus for online detection of drugs as claimed in claim 1 wherein: The upper surface of the support table (101) is fixedly installed with a dryer (110) at a position corresponding to one group of storage detection boxes (109).